1 /*
2  *  Catch v2.13.0
3  *  Generated: 2020-07-12 20:07:49.015950
4  *  ----------------------------------------------------------
5  *  This file has been merged from multiple headers. Please don't edit it directly
6  *  Copyright (c) 2020 Two Blue Cubes Ltd. All rights reserved.
7  *
8  *  Distributed under the Boost Software License, Version 1.0. (See accompanying
9  *  file LICENSE_1_0.txt or copy at http://www.boost.org/LICENSE_1_0.txt)
10  */
11 #ifndef TWOBLUECUBES_SINGLE_INCLUDE_CATCH_HPP_INCLUDED
12 #define TWOBLUECUBES_SINGLE_INCLUDE_CATCH_HPP_INCLUDED
13 // start catch.hpp
14 
15 
16 #define CATCH_VERSION_MAJOR 2
17 #define CATCH_VERSION_MINOR 13
18 #define CATCH_VERSION_PATCH 0
19 
20 #ifdef __clang__
21 #    pragma clang system_header
22 #elif defined __GNUC__
23 #    pragma GCC system_header
24 #endif
25 
26 // start catch_suppress_warnings.h
27 
28 #ifdef __clang__
29 #   ifdef __ICC // icpc defines the __clang__ macro
30 #       pragma warning(push)
31 #       pragma warning(disable: 161 1682)
32 #   else // __ICC
33 #       pragma clang diagnostic push
34 #       pragma clang diagnostic ignored "-Wpadded"
35 #       pragma clang diagnostic ignored "-Wswitch-enum"
36 #       pragma clang diagnostic ignored "-Wcovered-switch-default"
37 #    endif
38 #elif defined __GNUC__
39      // Because REQUIREs trigger GCC's -Wparentheses, and because still
40      // supported version of g++ have only buggy support for _Pragmas,
41      // Wparentheses have to be suppressed globally.
42 #    pragma GCC diagnostic ignored "-Wparentheses" // See #674 for details
43 
44 #    pragma GCC diagnostic push
45 #    pragma GCC diagnostic ignored "-Wunused-variable"
46 #    pragma GCC diagnostic ignored "-Wpadded"
47 #endif
48 // end catch_suppress_warnings.h
49 #if defined(CATCH_CONFIG_MAIN) || defined(CATCH_CONFIG_RUNNER)
50 #  define CATCH_IMPL
51 #  define CATCH_CONFIG_ALL_PARTS
52 #endif
53 
54 // In the impl file, we want to have access to all parts of the headers
55 // Can also be used to sanely support PCHs
56 #if defined(CATCH_CONFIG_ALL_PARTS)
57 #  define CATCH_CONFIG_EXTERNAL_INTERFACES
58 #  if defined(CATCH_CONFIG_DISABLE_MATCHERS)
59 #    undef CATCH_CONFIG_DISABLE_MATCHERS
60 #  endif
61 #  if !defined(CATCH_CONFIG_ENABLE_CHRONO_STRINGMAKER)
62 #    define CATCH_CONFIG_ENABLE_CHRONO_STRINGMAKER
63 #  endif
64 #endif
65 
66 #if !defined(CATCH_CONFIG_IMPL_ONLY)
67 // start catch_platform.h
68 
69 #ifdef __APPLE__
70 # include <TargetConditionals.h>
71 # if TARGET_OS_OSX == 1
72 #  define CATCH_PLATFORM_MAC
73 # elif TARGET_OS_IPHONE == 1
74 #  define CATCH_PLATFORM_IPHONE
75 # endif
76 
77 #elif defined(linux) || defined(__linux) || defined(__linux__)
78 #  define CATCH_PLATFORM_LINUX
79 
80 #elif defined(WIN32) || defined(__WIN32__) || defined(_WIN32) || defined(_MSC_VER) || defined(__MINGW32__)
81 #  define CATCH_PLATFORM_WINDOWS
82 #endif
83 
84 // end catch_platform.h
85 
86 #ifdef CATCH_IMPL
87 #  ifndef CLARA_CONFIG_MAIN
88 #    define CLARA_CONFIG_MAIN_NOT_DEFINED
89 #    define CLARA_CONFIG_MAIN
90 #  endif
91 #endif
92 
93 // start catch_user_interfaces.h
94 
95 namespace Catch {
96     unsigned int rngSeed();
97 }
98 
99 // end catch_user_interfaces.h
100 // start catch_tag_alias_autoregistrar.h
101 
102 // start catch_common.h
103 
104 // start catch_compiler_capabilities.h
105 
106 // Detect a number of compiler features - by compiler
107 // The following features are defined:
108 //
109 // CATCH_CONFIG_COUNTER : is the __COUNTER__ macro supported?
110 // CATCH_CONFIG_WINDOWS_SEH : is Windows SEH supported?
111 // CATCH_CONFIG_POSIX_SIGNALS : are POSIX signals supported?
112 // CATCH_CONFIG_DISABLE_EXCEPTIONS : Are exceptions enabled?
113 // ****************
114 // Note to maintainers: if new toggles are added please document them
115 // in configuration.md, too
116 // ****************
117 
118 // In general each macro has a _NO_<feature name> form
119 // (e.g. CATCH_CONFIG_NO_POSIX_SIGNALS) which disables the feature.
120 // Many features, at point of detection, define an _INTERNAL_ macro, so they
121 // can be combined, en-mass, with the _NO_ forms later.
122 
123 #ifdef __cplusplus
124 
125 #  if (__cplusplus >= 201402L) || (defined(_MSVC_LANG) && _MSVC_LANG >= 201402L)
126 #    define CATCH_CPP14_OR_GREATER
127 #  endif
128 
129 #  if (__cplusplus >= 201703L) || (defined(_MSVC_LANG) && _MSVC_LANG >= 201703L)
130 #    define CATCH_CPP17_OR_GREATER
131 #  endif
132 
133 #endif
134 
135 #if defined(__cpp_lib_uncaught_exceptions)
136 #  define CATCH_INTERNAL_CONFIG_CPP17_UNCAUGHT_EXCEPTIONS
137 #endif
138 
139 // We have to avoid both ICC and Clang, because they try to mask themselves
140 // as gcc, and we want only GCC in this block
141 #if defined(__GNUC__) && !defined(__clang__) && !defined(__ICC)
142 #    define CATCH_INTERNAL_START_WARNINGS_SUPPRESSION _Pragma( "GCC diagnostic push" )
143 #    define CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION  _Pragma( "GCC diagnostic pop" )
144 
145 #    define CATCH_INTERNAL_IGNORE_BUT_WARN(...) (void)__builtin_constant_p(__VA_ARGS__)
146 
147 #endif
148 
149 #if defined(__clang__)
150 
151 #    define CATCH_INTERNAL_START_WARNINGS_SUPPRESSION _Pragma( "clang diagnostic push" )
152 #    define CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION  _Pragma( "clang diagnostic pop" )
153 
154 // As of this writing, IBM XL's implementation of __builtin_constant_p has a bug
155 // which results in calls to destructors being emitted for each temporary,
156 // without a matching initialization. In practice, this can result in something
157 // like `std::string::~string` being called on an uninitialized value.
158 //
159 // For example, this code will likely segfault under IBM XL:
160 // ```
161 // REQUIRE(std::string("12") + "34" == "1234")
162 // ```
163 //
164 // Therefore, `CATCH_INTERNAL_IGNORE_BUT_WARN` is not implemented.
165 #  if !defined(__ibmxl__)
166 #    define CATCH_INTERNAL_IGNORE_BUT_WARN(...) (void)__builtin_constant_p(__VA_ARGS__) /* NOLINT(cppcoreguidelines-pro-type-vararg, hicpp-vararg) */
167 #  endif
168 
169 #    define CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS \
170          _Pragma( "clang diagnostic ignored \"-Wexit-time-destructors\"" ) \
171          _Pragma( "clang diagnostic ignored \"-Wglobal-constructors\"")
172 
173 #    define CATCH_INTERNAL_SUPPRESS_PARENTHESES_WARNINGS \
174          _Pragma( "clang diagnostic ignored \"-Wparentheses\"" )
175 
176 #    define CATCH_INTERNAL_SUPPRESS_UNUSED_WARNINGS \
177          _Pragma( "clang diagnostic ignored \"-Wunused-variable\"" )
178 
179 #    define CATCH_INTERNAL_SUPPRESS_ZERO_VARIADIC_WARNINGS \
180          _Pragma( "clang diagnostic ignored \"-Wgnu-zero-variadic-macro-arguments\"" )
181 
182 #    define CATCH_INTERNAL_SUPPRESS_UNUSED_TEMPLATE_WARNINGS \
183          _Pragma( "clang diagnostic ignored \"-Wunused-template\"" )
184 
185 #endif // __clang__
186 
187 ////////////////////////////////////////////////////////////////////////////////
188 // Assume that non-Windows platforms support posix signals by default
189 #if !defined(CATCH_PLATFORM_WINDOWS)
190     #define CATCH_INTERNAL_CONFIG_POSIX_SIGNALS
191 #endif
192 
193 ////////////////////////////////////////////////////////////////////////////////
194 // We know some environments not to support full POSIX signals
195 #if defined(__CYGWIN__) || defined(__QNX__) || defined(__EMSCRIPTEN__) || defined(__DJGPP__)
196     #define CATCH_INTERNAL_CONFIG_NO_POSIX_SIGNALS
197 #endif
198 
199 #ifdef __OS400__
200 #       define CATCH_INTERNAL_CONFIG_NO_POSIX_SIGNALS
201 #       define CATCH_CONFIG_COLOUR_NONE
202 #endif
203 
204 ////////////////////////////////////////////////////////////////////////////////
205 // Android somehow still does not support std::to_string
206 #if defined(__ANDROID__)
207 #    define CATCH_INTERNAL_CONFIG_NO_CPP11_TO_STRING
208 #    define CATCH_INTERNAL_CONFIG_ANDROID_LOGWRITE
209 #endif
210 
211 ////////////////////////////////////////////////////////////////////////////////
212 // Not all Windows environments support SEH properly
213 #if defined(__MINGW32__)
214 #    define CATCH_INTERNAL_CONFIG_NO_WINDOWS_SEH
215 #endif
216 
217 ////////////////////////////////////////////////////////////////////////////////
218 // PS4
219 #if defined(__ORBIS__)
220 #    define CATCH_INTERNAL_CONFIG_NO_NEW_CAPTURE
221 #endif
222 
223 ////////////////////////////////////////////////////////////////////////////////
224 // Cygwin
225 #ifdef __CYGWIN__
226 
227 // Required for some versions of Cygwin to declare gettimeofday
228 // see: http://stackoverflow.com/questions/36901803/gettimeofday-not-declared-in-this-scope-cygwin
229 #   define _BSD_SOURCE
230 // some versions of cygwin (most) do not support std::to_string. Use the libstd check.
231 // https://gcc.gnu.org/onlinedocs/gcc-4.8.2/libstdc++/api/a01053_source.html line 2812-2813
232 # if !((__cplusplus >= 201103L) && defined(_GLIBCXX_USE_C99) \
233            && !defined(_GLIBCXX_HAVE_BROKEN_VSWPRINTF))
234 
235 #    define CATCH_INTERNAL_CONFIG_NO_CPP11_TO_STRING
236 
237 # endif
238 #endif // __CYGWIN__
239 
240 ////////////////////////////////////////////////////////////////////////////////
241 // Visual C++
242 #if defined(_MSC_VER)
243 
244 #  define CATCH_INTERNAL_START_WARNINGS_SUPPRESSION __pragma( warning(push) )
245 #  define CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION  __pragma( warning(pop) )
246 
247 #  if _MSC_VER >= 1900 // Visual Studio 2015 or newer
248 #    define CATCH_INTERNAL_CONFIG_CPP17_UNCAUGHT_EXCEPTIONS
249 #  endif
250 
251 // Universal Windows platform does not support SEH
252 // Or console colours (or console at all...)
253 #  if defined(WINAPI_FAMILY) && (WINAPI_FAMILY == WINAPI_FAMILY_APP)
254 #    define CATCH_CONFIG_COLOUR_NONE
255 #  else
256 #    define CATCH_INTERNAL_CONFIG_WINDOWS_SEH
257 #  endif
258 
259 // MSVC traditional preprocessor needs some workaround for __VA_ARGS__
260 // _MSVC_TRADITIONAL == 0 means new conformant preprocessor
261 // _MSVC_TRADITIONAL == 1 means old traditional non-conformant preprocessor
262 #  if !defined(__clang__) // Handle Clang masquerading for msvc
263 #    if !defined(_MSVC_TRADITIONAL) || (defined(_MSVC_TRADITIONAL) && _MSVC_TRADITIONAL)
264 #      define CATCH_INTERNAL_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
265 #    endif // MSVC_TRADITIONAL
266 #  endif // __clang__
267 
268 #endif // _MSC_VER
269 
270 #if defined(_REENTRANT) || defined(_MSC_VER)
271 // Enable async processing, as -pthread is specified or no additional linking is required
272 # define CATCH_INTERNAL_CONFIG_USE_ASYNC
273 #endif // _MSC_VER
274 
275 ////////////////////////////////////////////////////////////////////////////////
276 // Check if we are compiled with -fno-exceptions or equivalent
277 #if defined(__EXCEPTIONS) || defined(__cpp_exceptions) || defined(_CPPUNWIND)
278 #  define CATCH_INTERNAL_CONFIG_EXCEPTIONS_ENABLED
279 #endif
280 
281 ////////////////////////////////////////////////////////////////////////////////
282 // DJGPP
283 #ifdef __DJGPP__
284 #  define CATCH_INTERNAL_CONFIG_NO_WCHAR
285 #endif // __DJGPP__
286 
287 ////////////////////////////////////////////////////////////////////////////////
288 // Embarcadero C++Build
289 #if defined(__BORLANDC__)
290     #define CATCH_INTERNAL_CONFIG_POLYFILL_ISNAN
291 #endif
292 
293 ////////////////////////////////////////////////////////////////////////////////
294 
295 // Use of __COUNTER__ is suppressed during code analysis in
296 // CLion/AppCode 2017.2.x and former, because __COUNTER__ is not properly
297 // handled by it.
298 // Otherwise all supported compilers support COUNTER macro,
299 // but user still might want to turn it off
300 #if ( !defined(__JETBRAINS_IDE__) || __JETBRAINS_IDE__ >= 20170300L )
301     #define CATCH_INTERNAL_CONFIG_COUNTER
302 #endif
303 
304 ////////////////////////////////////////////////////////////////////////////////
305 
306 // RTX is a special version of Windows that is real time.
307 // This means that it is detected as Windows, but does not provide
308 // the same set of capabilities as real Windows does.
309 #if defined(UNDER_RTSS) || defined(RTX64_BUILD)
310     #define CATCH_INTERNAL_CONFIG_NO_WINDOWS_SEH
311     #define CATCH_INTERNAL_CONFIG_NO_ASYNC
312     #define CATCH_CONFIG_COLOUR_NONE
313 #endif
314 
315 #if !defined(_GLIBCXX_USE_C99_MATH_TR1)
316 #define CATCH_INTERNAL_CONFIG_GLOBAL_NEXTAFTER
317 #endif
318 
319 // Various stdlib support checks that require __has_include
320 #if defined(__has_include)
321   // Check if string_view is available and usable
322   #if __has_include(<string_view>) && defined(CATCH_CPP17_OR_GREATER)
323   #    define CATCH_INTERNAL_CONFIG_CPP17_STRING_VIEW
324   #endif
325 
326   // Check if optional is available and usable
327   #  if __has_include(<optional>) && defined(CATCH_CPP17_OR_GREATER)
328   #    define CATCH_INTERNAL_CONFIG_CPP17_OPTIONAL
329   #  endif // __has_include(<optional>) && defined(CATCH_CPP17_OR_GREATER)
330 
331   // Check if byte is available and usable
332   #  if __has_include(<cstddef>) && defined(CATCH_CPP17_OR_GREATER)
333   #    define CATCH_INTERNAL_CONFIG_CPP17_BYTE
334   #  endif // __has_include(<cstddef>) && defined(CATCH_CPP17_OR_GREATER)
335 
336   // Check if variant is available and usable
337   #  if __has_include(<variant>) && defined(CATCH_CPP17_OR_GREATER)
338   #    if defined(__clang__) && (__clang_major__ < 8)
339          // work around clang bug with libstdc++ https://bugs.llvm.org/show_bug.cgi?id=31852
340          // fix should be in clang 8, workaround in libstdc++ 8.2
341   #      include <ciso646>
342   #      if defined(__GLIBCXX__) && defined(_GLIBCXX_RELEASE) && (_GLIBCXX_RELEASE < 9)
343   #        define CATCH_CONFIG_NO_CPP17_VARIANT
344   #      else
345   #        define CATCH_INTERNAL_CONFIG_CPP17_VARIANT
346   #      endif // defined(__GLIBCXX__) && defined(_GLIBCXX_RELEASE) && (_GLIBCXX_RELEASE < 9)
347   #    else
348   #      define CATCH_INTERNAL_CONFIG_CPP17_VARIANT
349   #    endif // defined(__clang__) && (__clang_major__ < 8)
350   #  endif // __has_include(<variant>) && defined(CATCH_CPP17_OR_GREATER)
351 #endif // defined(__has_include)
352 
353 #if defined(CATCH_INTERNAL_CONFIG_COUNTER) && !defined(CATCH_CONFIG_NO_COUNTER) && !defined(CATCH_CONFIG_COUNTER)
354 #   define CATCH_CONFIG_COUNTER
355 #endif
356 #if defined(CATCH_INTERNAL_CONFIG_WINDOWS_SEH) && !defined(CATCH_CONFIG_NO_WINDOWS_SEH) && !defined(CATCH_CONFIG_WINDOWS_SEH) && !defined(CATCH_INTERNAL_CONFIG_NO_WINDOWS_SEH)
357 #   define CATCH_CONFIG_WINDOWS_SEH
358 #endif
359 // This is set by default, because we assume that unix compilers are posix-signal-compatible by default.
360 #if defined(CATCH_INTERNAL_CONFIG_POSIX_SIGNALS) && !defined(CATCH_INTERNAL_CONFIG_NO_POSIX_SIGNALS) && !defined(CATCH_CONFIG_NO_POSIX_SIGNALS) && !defined(CATCH_CONFIG_POSIX_SIGNALS)
361 #   define CATCH_CONFIG_POSIX_SIGNALS
362 #endif
363 // This is set by default, because we assume that compilers with no wchar_t support are just rare exceptions.
364 #if !defined(CATCH_INTERNAL_CONFIG_NO_WCHAR) && !defined(CATCH_CONFIG_NO_WCHAR) && !defined(CATCH_CONFIG_WCHAR)
365 #   define CATCH_CONFIG_WCHAR
366 #endif
367 
368 #if !defined(CATCH_INTERNAL_CONFIG_NO_CPP11_TO_STRING) && !defined(CATCH_CONFIG_NO_CPP11_TO_STRING) && !defined(CATCH_CONFIG_CPP11_TO_STRING)
369 #    define CATCH_CONFIG_CPP11_TO_STRING
370 #endif
371 
372 #if defined(CATCH_INTERNAL_CONFIG_CPP17_OPTIONAL) && !defined(CATCH_CONFIG_NO_CPP17_OPTIONAL) && !defined(CATCH_CONFIG_CPP17_OPTIONAL)
373 #  define CATCH_CONFIG_CPP17_OPTIONAL
374 #endif
375 
376 #if defined(CATCH_INTERNAL_CONFIG_CPP17_UNCAUGHT_EXCEPTIONS) && !defined(CATCH_CONFIG_NO_CPP17_UNCAUGHT_EXCEPTIONS) && !defined(CATCH_CONFIG_CPP17_UNCAUGHT_EXCEPTIONS)
377 #  define CATCH_CONFIG_CPP17_UNCAUGHT_EXCEPTIONS
378 #endif
379 
380 #if defined(CATCH_INTERNAL_CONFIG_CPP17_STRING_VIEW) && !defined(CATCH_CONFIG_NO_CPP17_STRING_VIEW) && !defined(CATCH_CONFIG_CPP17_STRING_VIEW)
381 #  define CATCH_CONFIG_CPP17_STRING_VIEW
382 #endif
383 
384 #if defined(CATCH_INTERNAL_CONFIG_CPP17_VARIANT) && !defined(CATCH_CONFIG_NO_CPP17_VARIANT) && !defined(CATCH_CONFIG_CPP17_VARIANT)
385 #  define CATCH_CONFIG_CPP17_VARIANT
386 #endif
387 
388 #if defined(CATCH_INTERNAL_CONFIG_CPP17_BYTE) && !defined(CATCH_CONFIG_NO_CPP17_BYTE) && !defined(CATCH_CONFIG_CPP17_BYTE)
389 #  define CATCH_CONFIG_CPP17_BYTE
390 #endif
391 
392 #if defined(CATCH_CONFIG_EXPERIMENTAL_REDIRECT)
393 #  define CATCH_INTERNAL_CONFIG_NEW_CAPTURE
394 #endif
395 
396 #if defined(CATCH_INTERNAL_CONFIG_NEW_CAPTURE) && !defined(CATCH_INTERNAL_CONFIG_NO_NEW_CAPTURE) && !defined(CATCH_CONFIG_NO_NEW_CAPTURE) && !defined(CATCH_CONFIG_NEW_CAPTURE)
397 #  define CATCH_CONFIG_NEW_CAPTURE
398 #endif
399 
400 #if !defined(CATCH_INTERNAL_CONFIG_EXCEPTIONS_ENABLED) && !defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
401 #  define CATCH_CONFIG_DISABLE_EXCEPTIONS
402 #endif
403 
404 #if defined(CATCH_INTERNAL_CONFIG_POLYFILL_ISNAN) && !defined(CATCH_CONFIG_NO_POLYFILL_ISNAN) && !defined(CATCH_CONFIG_POLYFILL_ISNAN)
405 #  define CATCH_CONFIG_POLYFILL_ISNAN
406 #endif
407 
408 #if defined(CATCH_INTERNAL_CONFIG_USE_ASYNC)  && !defined(CATCH_INTERNAL_CONFIG_NO_ASYNC) && !defined(CATCH_CONFIG_NO_USE_ASYNC) && !defined(CATCH_CONFIG_USE_ASYNC)
409 #  define CATCH_CONFIG_USE_ASYNC
410 #endif
411 
412 #if defined(CATCH_INTERNAL_CONFIG_ANDROID_LOGWRITE) && !defined(CATCH_CONFIG_NO_ANDROID_LOGWRITE) && !defined(CATCH_CONFIG_ANDROID_LOGWRITE)
413 #  define CATCH_CONFIG_ANDROID_LOGWRITE
414 #endif
415 
416 #if defined(CATCH_INTERNAL_CONFIG_GLOBAL_NEXTAFTER) && !defined(CATCH_CONFIG_NO_GLOBAL_NEXTAFTER) && !defined(CATCH_CONFIG_GLOBAL_NEXTAFTER)
417 #  define CATCH_CONFIG_GLOBAL_NEXTAFTER
418 #endif
419 
420 // Even if we do not think the compiler has that warning, we still have
421 // to provide a macro that can be used by the code.
422 #if !defined(CATCH_INTERNAL_START_WARNINGS_SUPPRESSION)
423 #   define CATCH_INTERNAL_START_WARNINGS_SUPPRESSION
424 #endif
425 #if !defined(CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION)
426 #   define CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION
427 #endif
428 #if !defined(CATCH_INTERNAL_SUPPRESS_PARENTHESES_WARNINGS)
429 #   define CATCH_INTERNAL_SUPPRESS_PARENTHESES_WARNINGS
430 #endif
431 #if !defined(CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS)
432 #   define CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS
433 #endif
434 #if !defined(CATCH_INTERNAL_SUPPRESS_UNUSED_WARNINGS)
435 #   define CATCH_INTERNAL_SUPPRESS_UNUSED_WARNINGS
436 #endif
437 #if !defined(CATCH_INTERNAL_SUPPRESS_ZERO_VARIADIC_WARNINGS)
438 #   define CATCH_INTERNAL_SUPPRESS_ZERO_VARIADIC_WARNINGS
439 #endif
440 
441 // The goal of this macro is to avoid evaluation of the arguments, but
442 // still have the compiler warn on problems inside...
443 #if !defined(CATCH_INTERNAL_IGNORE_BUT_WARN)
444 #   define CATCH_INTERNAL_IGNORE_BUT_WARN(...)
445 #endif
446 
447 #if defined(__APPLE__) && defined(__apple_build_version__) && (__clang_major__ < 10)
448 #   undef CATCH_INTERNAL_SUPPRESS_UNUSED_TEMPLATE_WARNINGS
449 #elif defined(__clang__) && (__clang_major__ < 5)
450 #   undef CATCH_INTERNAL_SUPPRESS_UNUSED_TEMPLATE_WARNINGS
451 #endif
452 
453 #if !defined(CATCH_INTERNAL_SUPPRESS_UNUSED_TEMPLATE_WARNINGS)
454 #   define CATCH_INTERNAL_SUPPRESS_UNUSED_TEMPLATE_WARNINGS
455 #endif
456 
457 #if defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
458 #define CATCH_TRY if ((true))
459 #define CATCH_CATCH_ALL if ((false))
460 #define CATCH_CATCH_ANON(type) if ((false))
461 #else
462 #define CATCH_TRY try
463 #define CATCH_CATCH_ALL catch (...)
464 #define CATCH_CATCH_ANON(type) catch (type)
465 #endif
466 
467 #if defined(CATCH_INTERNAL_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR) && !defined(CATCH_CONFIG_NO_TRADITIONAL_MSVC_PREPROCESSOR) && !defined(CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR)
468 #define CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
469 #endif
470 
471 // end catch_compiler_capabilities.h
472 #define INTERNAL_CATCH_UNIQUE_NAME_LINE2( name, line ) name##line
473 #define INTERNAL_CATCH_UNIQUE_NAME_LINE( name, line ) INTERNAL_CATCH_UNIQUE_NAME_LINE2( name, line )
474 #ifdef CATCH_CONFIG_COUNTER
475 #  define INTERNAL_CATCH_UNIQUE_NAME( name ) INTERNAL_CATCH_UNIQUE_NAME_LINE( name, __COUNTER__ )
476 #else
477 #  define INTERNAL_CATCH_UNIQUE_NAME( name ) INTERNAL_CATCH_UNIQUE_NAME_LINE( name, __LINE__ )
478 #endif
479 
480 #include <iosfwd>
481 #include <string>
482 #include <cstdint>
483 
484 // We need a dummy global operator<< so we can bring it into Catch namespace later
485 struct Catch_global_namespace_dummy {};
486 std::ostream& operator<<(std::ostream&, Catch_global_namespace_dummy);
487 
488 namespace Catch {
489 
490     struct CaseSensitive { enum Choice {
491         Yes,
492         No
493     }; };
494 
495     class NonCopyable {
496         NonCopyable( NonCopyable const& )              = delete;
497         NonCopyable( NonCopyable && )                  = delete;
498         NonCopyable& operator = ( NonCopyable const& ) = delete;
499         NonCopyable& operator = ( NonCopyable && )     = delete;
500 
501     protected:
502         NonCopyable();
503         virtual ~NonCopyable();
504     };
505 
506     struct SourceLineInfo {
507 
508         SourceLineInfo() = delete;
SourceLineInfoCatch::SourceLineInfo509         SourceLineInfo( char const* _file, std::size_t _line ) noexcept
510         :   file( _file ),
511             line( _line )
512         {}
513 
514         SourceLineInfo( SourceLineInfo const& other )            = default;
515         SourceLineInfo& operator = ( SourceLineInfo const& )     = default;
516         SourceLineInfo( SourceLineInfo&& )              noexcept = default;
517         SourceLineInfo& operator = ( SourceLineInfo&& ) noexcept = default;
518 
emptyCatch::SourceLineInfo519         bool empty() const noexcept { return file[0] == '\0'; }
520         bool operator == ( SourceLineInfo const& other ) const noexcept;
521         bool operator < ( SourceLineInfo const& other ) const noexcept;
522 
523         char const* file;
524         std::size_t line;
525     };
526 
527     std::ostream& operator << ( std::ostream& os, SourceLineInfo const& info );
528 
529     // Bring in operator<< from global namespace into Catch namespace
530     // This is necessary because the overload of operator<< above makes
531     // lookup stop at namespace Catch
532     using ::operator<<;
533 
534     // Use this in variadic streaming macros to allow
535     //    >> +StreamEndStop
536     // as well as
537     //    >> stuff +StreamEndStop
538     struct StreamEndStop {
539         std::string operator+() const;
540     };
541     template<typename T>
operator +(T const & value,StreamEndStop)542     T const& operator + ( T const& value, StreamEndStop ) {
543         return value;
544     }
545 }
546 
547 #define CATCH_INTERNAL_LINEINFO \
548     ::Catch::SourceLineInfo( __FILE__, static_cast<std::size_t>( __LINE__ ) )
549 
550 // end catch_common.h
551 namespace Catch {
552 
553     struct RegistrarForTagAliases {
554         RegistrarForTagAliases( char const* alias, char const* tag, SourceLineInfo const& lineInfo );
555     };
556 
557 } // end namespace Catch
558 
559 #define CATCH_REGISTER_TAG_ALIAS( alias, spec ) \
560     CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
561     CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS \
562     namespace{ Catch::RegistrarForTagAliases INTERNAL_CATCH_UNIQUE_NAME( AutoRegisterTagAlias )( alias, spec, CATCH_INTERNAL_LINEINFO ); } \
563     CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION
564 
565 // end catch_tag_alias_autoregistrar.h
566 // start catch_test_registry.h
567 
568 // start catch_interfaces_testcase.h
569 
570 #include <vector>
571 
572 namespace Catch {
573 
574     class TestSpec;
575 
576     struct ITestInvoker {
577         virtual void invoke () const = 0;
578         virtual ~ITestInvoker();
579     };
580 
581     class TestCase;
582     struct IConfig;
583 
584     struct ITestCaseRegistry {
585         virtual ~ITestCaseRegistry();
586         virtual std::vector<TestCase> const& getAllTests() const = 0;
587         virtual std::vector<TestCase> const& getAllTestsSorted( IConfig const& config ) const = 0;
588     };
589 
590     bool isThrowSafe( TestCase const& testCase, IConfig const& config );
591     bool matchTest( TestCase const& testCase, TestSpec const& testSpec, IConfig const& config );
592     std::vector<TestCase> filterTests( std::vector<TestCase> const& testCases, TestSpec const& testSpec, IConfig const& config );
593     std::vector<TestCase> const& getAllTestCasesSorted( IConfig const& config );
594 
595 }
596 
597 // end catch_interfaces_testcase.h
598 // start catch_stringref.h
599 
600 #include <cstddef>
601 #include <string>
602 #include <iosfwd>
603 #include <cassert>
604 
605 namespace Catch {
606 
607     /// A non-owning string class (similar to the forthcoming std::string_view)
608     /// Note that, because a StringRef may be a substring of another string,
609     /// it may not be null terminated.
610     class StringRef {
611     public:
612         using size_type = std::size_t;
613         using const_iterator = const char*;
614 
615     private:
616         static constexpr char const* const s_empty = "";
617 
618         char const* m_start = s_empty;
619         size_type m_size = 0;
620 
621     public: // construction
622         constexpr StringRef() noexcept = default;
623 
624         StringRef( char const* rawChars ) noexcept;
625 
StringRef(char const * rawChars,size_type size)626         constexpr StringRef( char const* rawChars, size_type size ) noexcept
627         :   m_start( rawChars ),
628             m_size( size )
629         {}
630 
StringRef(std::string const & stdString)631         StringRef( std::string const& stdString ) noexcept
632         :   m_start( stdString.c_str() ),
633             m_size( stdString.size() )
634         {}
635 
operator std::string() const636         explicit operator std::string() const {
637             return std::string(m_start, m_size);
638         }
639 
640     public: // operators
641         auto operator == ( StringRef const& other ) const noexcept -> bool;
operator !=(StringRef const & other) const642         auto operator != (StringRef const& other) const noexcept -> bool {
643             return !(*this == other);
644         }
645 
operator [](size_type index) const646         auto operator[] ( size_type index ) const noexcept -> char {
647             assert(index < m_size);
648             return m_start[index];
649         }
650 
651     public: // named queries
empty() const652         constexpr auto empty() const noexcept -> bool {
653             return m_size == 0;
654         }
size() const655         constexpr auto size() const noexcept -> size_type {
656             return m_size;
657         }
658 
659         // Returns the current start pointer. If the StringRef is not
660         // null-terminated, throws std::domain_exception
661         auto c_str() const -> char const*;
662 
663     public: // substrings and searches
664         // Returns a substring of [start, start + length).
665         // If start + length > size(), then the substring is [start, size()).
666         // If start > size(), then the substring is empty.
667         auto substr( size_type start, size_type length ) const noexcept -> StringRef;
668 
669         // Returns the current start pointer. May not be null-terminated.
670         auto data() const noexcept -> char const*;
671 
isNullTerminated() const672         constexpr auto isNullTerminated() const noexcept -> bool {
673             return m_start[m_size] == '\0';
674         }
675 
676     public: // iterators
begin() const677         constexpr const_iterator begin() const { return m_start; }
end() const678         constexpr const_iterator end() const { return m_start + m_size; }
679     };
680 
681     auto operator += ( std::string& lhs, StringRef const& sr ) -> std::string&;
682     auto operator << ( std::ostream& os, StringRef const& sr ) -> std::ostream&;
683 
operator ""_sr(char const * rawChars,std::size_t size)684     constexpr auto operator "" _sr( char const* rawChars, std::size_t size ) noexcept -> StringRef {
685         return StringRef( rawChars, size );
686     }
687 } // namespace Catch
688 
operator ""_catch_sr(char const * rawChars,std::size_t size)689 constexpr auto operator "" _catch_sr( char const* rawChars, std::size_t size ) noexcept -> Catch::StringRef {
690     return Catch::StringRef( rawChars, size );
691 }
692 
693 // end catch_stringref.h
694 // start catch_preprocessor.hpp
695 
696 
697 #define CATCH_RECURSION_LEVEL0(...) __VA_ARGS__
698 #define CATCH_RECURSION_LEVEL1(...) CATCH_RECURSION_LEVEL0(CATCH_RECURSION_LEVEL0(CATCH_RECURSION_LEVEL0(__VA_ARGS__)))
699 #define CATCH_RECURSION_LEVEL2(...) CATCH_RECURSION_LEVEL1(CATCH_RECURSION_LEVEL1(CATCH_RECURSION_LEVEL1(__VA_ARGS__)))
700 #define CATCH_RECURSION_LEVEL3(...) CATCH_RECURSION_LEVEL2(CATCH_RECURSION_LEVEL2(CATCH_RECURSION_LEVEL2(__VA_ARGS__)))
701 #define CATCH_RECURSION_LEVEL4(...) CATCH_RECURSION_LEVEL3(CATCH_RECURSION_LEVEL3(CATCH_RECURSION_LEVEL3(__VA_ARGS__)))
702 #define CATCH_RECURSION_LEVEL5(...) CATCH_RECURSION_LEVEL4(CATCH_RECURSION_LEVEL4(CATCH_RECURSION_LEVEL4(__VA_ARGS__)))
703 
704 #ifdef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
705 #define INTERNAL_CATCH_EXPAND_VARGS(...) __VA_ARGS__
706 // MSVC needs more evaluations
707 #define CATCH_RECURSION_LEVEL6(...) CATCH_RECURSION_LEVEL5(CATCH_RECURSION_LEVEL5(CATCH_RECURSION_LEVEL5(__VA_ARGS__)))
708 #define CATCH_RECURSE(...)  CATCH_RECURSION_LEVEL6(CATCH_RECURSION_LEVEL6(__VA_ARGS__))
709 #else
710 #define CATCH_RECURSE(...)  CATCH_RECURSION_LEVEL5(__VA_ARGS__)
711 #endif
712 
713 #define CATCH_REC_END(...)
714 #define CATCH_REC_OUT
715 
716 #define CATCH_EMPTY()
717 #define CATCH_DEFER(id) id CATCH_EMPTY()
718 
719 #define CATCH_REC_GET_END2() 0, CATCH_REC_END
720 #define CATCH_REC_GET_END1(...) CATCH_REC_GET_END2
721 #define CATCH_REC_GET_END(...) CATCH_REC_GET_END1
722 #define CATCH_REC_NEXT0(test, next, ...) next CATCH_REC_OUT
723 #define CATCH_REC_NEXT1(test, next) CATCH_DEFER ( CATCH_REC_NEXT0 ) ( test, next, 0)
724 #define CATCH_REC_NEXT(test, next)  CATCH_REC_NEXT1(CATCH_REC_GET_END test, next)
725 
726 #define CATCH_REC_LIST0(f, x, peek, ...) , f(x) CATCH_DEFER ( CATCH_REC_NEXT(peek, CATCH_REC_LIST1) ) ( f, peek, __VA_ARGS__ )
727 #define CATCH_REC_LIST1(f, x, peek, ...) , f(x) CATCH_DEFER ( CATCH_REC_NEXT(peek, CATCH_REC_LIST0) ) ( f, peek, __VA_ARGS__ )
728 #define CATCH_REC_LIST2(f, x, peek, ...)   f(x) CATCH_DEFER ( CATCH_REC_NEXT(peek, CATCH_REC_LIST1) ) ( f, peek, __VA_ARGS__ )
729 
730 #define CATCH_REC_LIST0_UD(f, userdata, x, peek, ...) , f(userdata, x) CATCH_DEFER ( CATCH_REC_NEXT(peek, CATCH_REC_LIST1_UD) ) ( f, userdata, peek, __VA_ARGS__ )
731 #define CATCH_REC_LIST1_UD(f, userdata, x, peek, ...) , f(userdata, x) CATCH_DEFER ( CATCH_REC_NEXT(peek, CATCH_REC_LIST0_UD) ) ( f, userdata, peek, __VA_ARGS__ )
732 #define CATCH_REC_LIST2_UD(f, userdata, x, peek, ...)   f(userdata, x) CATCH_DEFER ( CATCH_REC_NEXT(peek, CATCH_REC_LIST1_UD) ) ( f, userdata, peek, __VA_ARGS__ )
733 
734 // Applies the function macro `f` to each of the remaining parameters, inserts commas between the results,
735 // and passes userdata as the first parameter to each invocation,
736 // e.g. CATCH_REC_LIST_UD(f, x, a, b, c) evaluates to f(x, a), f(x, b), f(x, c)
737 #define CATCH_REC_LIST_UD(f, userdata, ...) CATCH_RECURSE(CATCH_REC_LIST2_UD(f, userdata, __VA_ARGS__, ()()(), ()()(), ()()(), 0))
738 
739 #define CATCH_REC_LIST(f, ...) CATCH_RECURSE(CATCH_REC_LIST2(f, __VA_ARGS__, ()()(), ()()(), ()()(), 0))
740 
741 #define INTERNAL_CATCH_EXPAND1(param) INTERNAL_CATCH_EXPAND2(param)
742 #define INTERNAL_CATCH_EXPAND2(...) INTERNAL_CATCH_NO## __VA_ARGS__
743 #define INTERNAL_CATCH_DEF(...) INTERNAL_CATCH_DEF __VA_ARGS__
744 #define INTERNAL_CATCH_NOINTERNAL_CATCH_DEF
745 #define INTERNAL_CATCH_STRINGIZE(...) INTERNAL_CATCH_STRINGIZE2(__VA_ARGS__)
746 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
747 #define INTERNAL_CATCH_STRINGIZE2(...) #__VA_ARGS__
748 #define INTERNAL_CATCH_STRINGIZE_WITHOUT_PARENS(param) INTERNAL_CATCH_STRINGIZE(INTERNAL_CATCH_REMOVE_PARENS(param))
749 #else
750 // MSVC is adding extra space and needs another indirection to expand INTERNAL_CATCH_NOINTERNAL_CATCH_DEF
751 #define INTERNAL_CATCH_STRINGIZE2(...) INTERNAL_CATCH_STRINGIZE3(__VA_ARGS__)
752 #define INTERNAL_CATCH_STRINGIZE3(...) #__VA_ARGS__
753 #define INTERNAL_CATCH_STRINGIZE_WITHOUT_PARENS(param) (INTERNAL_CATCH_STRINGIZE(INTERNAL_CATCH_REMOVE_PARENS(param)) + 1)
754 #endif
755 
756 #define INTERNAL_CATCH_MAKE_NAMESPACE2(...) ns_##__VA_ARGS__
757 #define INTERNAL_CATCH_MAKE_NAMESPACE(name) INTERNAL_CATCH_MAKE_NAMESPACE2(name)
758 
759 #define INTERNAL_CATCH_REMOVE_PARENS(...) INTERNAL_CATCH_EXPAND1(INTERNAL_CATCH_DEF __VA_ARGS__)
760 
761 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
762 #define INTERNAL_CATCH_MAKE_TYPE_LIST2(...) decltype(get_wrapper<INTERNAL_CATCH_REMOVE_PARENS_GEN(__VA_ARGS__)>())
763 #define INTERNAL_CATCH_MAKE_TYPE_LIST(...) INTERNAL_CATCH_MAKE_TYPE_LIST2(INTERNAL_CATCH_REMOVE_PARENS(__VA_ARGS__))
764 #else
765 #define INTERNAL_CATCH_MAKE_TYPE_LIST2(...) INTERNAL_CATCH_EXPAND_VARGS(decltype(get_wrapper<INTERNAL_CATCH_REMOVE_PARENS_GEN(__VA_ARGS__)>()))
766 #define INTERNAL_CATCH_MAKE_TYPE_LIST(...) INTERNAL_CATCH_EXPAND_VARGS(INTERNAL_CATCH_MAKE_TYPE_LIST2(INTERNAL_CATCH_REMOVE_PARENS(__VA_ARGS__)))
767 #endif
768 
769 #define INTERNAL_CATCH_MAKE_TYPE_LISTS_FROM_TYPES(...)\
770     CATCH_REC_LIST(INTERNAL_CATCH_MAKE_TYPE_LIST,__VA_ARGS__)
771 
772 #define INTERNAL_CATCH_REMOVE_PARENS_1_ARG(_0) INTERNAL_CATCH_REMOVE_PARENS(_0)
773 #define INTERNAL_CATCH_REMOVE_PARENS_2_ARG(_0, _1) INTERNAL_CATCH_REMOVE_PARENS(_0), INTERNAL_CATCH_REMOVE_PARENS_1_ARG(_1)
774 #define INTERNAL_CATCH_REMOVE_PARENS_3_ARG(_0, _1, _2) INTERNAL_CATCH_REMOVE_PARENS(_0), INTERNAL_CATCH_REMOVE_PARENS_2_ARG(_1, _2)
775 #define INTERNAL_CATCH_REMOVE_PARENS_4_ARG(_0, _1, _2, _3) INTERNAL_CATCH_REMOVE_PARENS(_0), INTERNAL_CATCH_REMOVE_PARENS_3_ARG(_1, _2, _3)
776 #define INTERNAL_CATCH_REMOVE_PARENS_5_ARG(_0, _1, _2, _3, _4) INTERNAL_CATCH_REMOVE_PARENS(_0), INTERNAL_CATCH_REMOVE_PARENS_4_ARG(_1, _2, _3, _4)
777 #define INTERNAL_CATCH_REMOVE_PARENS_6_ARG(_0, _1, _2, _3, _4, _5) INTERNAL_CATCH_REMOVE_PARENS(_0), INTERNAL_CATCH_REMOVE_PARENS_5_ARG(_1, _2, _3, _4, _5)
778 #define INTERNAL_CATCH_REMOVE_PARENS_7_ARG(_0, _1, _2, _3, _4, _5, _6) INTERNAL_CATCH_REMOVE_PARENS(_0), INTERNAL_CATCH_REMOVE_PARENS_6_ARG(_1, _2, _3, _4, _5, _6)
779 #define INTERNAL_CATCH_REMOVE_PARENS_8_ARG(_0, _1, _2, _3, _4, _5, _6, _7) INTERNAL_CATCH_REMOVE_PARENS(_0), INTERNAL_CATCH_REMOVE_PARENS_7_ARG(_1, _2, _3, _4, _5, _6, _7)
780 #define INTERNAL_CATCH_REMOVE_PARENS_9_ARG(_0, _1, _2, _3, _4, _5, _6, _7, _8) INTERNAL_CATCH_REMOVE_PARENS(_0), INTERNAL_CATCH_REMOVE_PARENS_8_ARG(_1, _2, _3, _4, _5, _6, _7, _8)
781 #define INTERNAL_CATCH_REMOVE_PARENS_10_ARG(_0, _1, _2, _3, _4, _5, _6, _7, _8, _9) INTERNAL_CATCH_REMOVE_PARENS(_0), INTERNAL_CATCH_REMOVE_PARENS_9_ARG(_1, _2, _3, _4, _5, _6, _7, _8, _9)
782 #define INTERNAL_CATCH_REMOVE_PARENS_11_ARG(_0, _1, _2, _3, _4, _5, _6, _7, _8, _9, _10) INTERNAL_CATCH_REMOVE_PARENS(_0), INTERNAL_CATCH_REMOVE_PARENS_10_ARG(_1, _2, _3, _4, _5, _6, _7, _8, _9, _10)
783 
784 #define INTERNAL_CATCH_VA_NARGS_IMPL(_0, _1, _2, _3, _4, _5, _6, _7, _8, _9, _10, N, ...) N
785 
786 #define INTERNAL_CATCH_TYPE_GEN\
787     template<typename...> struct TypeList {};\
788     template<typename...Ts>\
789     constexpr auto get_wrapper() noexcept -> TypeList<Ts...> { return {}; }\
790     template<template<typename...> class...> struct TemplateTypeList{};\
791     template<template<typename...> class...Cs>\
792     constexpr auto get_wrapper() noexcept -> TemplateTypeList<Cs...> { return {}; }\
793     template<typename...>\
794     struct append;\
795     template<typename...>\
796     struct rewrap;\
797     template<template<typename...> class, typename...>\
798     struct create;\
799     template<template<typename...> class, typename>\
800     struct convert;\
801     \
802     template<typename T> \
803     struct append<T> { using type = T; };\
804     template< template<typename...> class L1, typename...E1, template<typename...> class L2, typename...E2, typename...Rest>\
805     struct append<L1<E1...>, L2<E2...>, Rest...> { using type = typename append<L1<E1...,E2...>, Rest...>::type; };\
806     template< template<typename...> class L1, typename...E1, typename...Rest>\
807     struct append<L1<E1...>, TypeList<mpl_::na>, Rest...> { using type = L1<E1...>; };\
808     \
809     template< template<typename...> class Container, template<typename...> class List, typename...elems>\
810     struct rewrap<TemplateTypeList<Container>, List<elems...>> { using type = TypeList<Container<elems...>>; };\
811     template< template<typename...> class Container, template<typename...> class List, class...Elems, typename...Elements>\
812     struct rewrap<TemplateTypeList<Container>, List<Elems...>, Elements...> { using type = typename append<TypeList<Container<Elems...>>, typename rewrap<TemplateTypeList<Container>, Elements...>::type>::type; };\
813     \
814     template<template <typename...> class Final, template< typename...> class...Containers, typename...Types>\
815     struct create<Final, TemplateTypeList<Containers...>, TypeList<Types...>> { using type = typename append<Final<>, typename rewrap<TemplateTypeList<Containers>, Types...>::type...>::type; };\
816     template<template <typename...> class Final, template <typename...> class List, typename...Ts>\
817     struct convert<Final, List<Ts...>> { using type = typename append<Final<>,TypeList<Ts>...>::type; };
818 
819 #define INTERNAL_CATCH_NTTP_1(signature, ...)\
820     template<INTERNAL_CATCH_REMOVE_PARENS(signature)> struct Nttp{};\
821     template<INTERNAL_CATCH_REMOVE_PARENS(signature)>\
822     constexpr auto get_wrapper() noexcept -> Nttp<__VA_ARGS__> { return {}; } \
823     template<template<INTERNAL_CATCH_REMOVE_PARENS(signature)> class...> struct NttpTemplateTypeList{};\
824     template<template<INTERNAL_CATCH_REMOVE_PARENS(signature)> class...Cs>\
825     constexpr auto get_wrapper() noexcept -> NttpTemplateTypeList<Cs...> { return {}; } \
826     \
827     template< template<INTERNAL_CATCH_REMOVE_PARENS(signature)> class Container, template<INTERNAL_CATCH_REMOVE_PARENS(signature)> class List, INTERNAL_CATCH_REMOVE_PARENS(signature)>\
828     struct rewrap<NttpTemplateTypeList<Container>, List<__VA_ARGS__>> { using type = TypeList<Container<__VA_ARGS__>>; };\
829     template< template<INTERNAL_CATCH_REMOVE_PARENS(signature)> class Container, template<INTERNAL_CATCH_REMOVE_PARENS(signature)> class List, INTERNAL_CATCH_REMOVE_PARENS(signature), typename...Elements>\
830     struct rewrap<NttpTemplateTypeList<Container>, List<__VA_ARGS__>, Elements...> { using type = typename append<TypeList<Container<__VA_ARGS__>>, typename rewrap<NttpTemplateTypeList<Container>, Elements...>::type>::type; };\
831     template<template <typename...> class Final, template<INTERNAL_CATCH_REMOVE_PARENS(signature)> class...Containers, typename...Types>\
832     struct create<Final, NttpTemplateTypeList<Containers...>, TypeList<Types...>> { using type = typename append<Final<>, typename rewrap<NttpTemplateTypeList<Containers>, Types...>::type...>::type; };
833 
834 #define INTERNAL_CATCH_DECLARE_SIG_TEST0(TestName)
835 #define INTERNAL_CATCH_DECLARE_SIG_TEST1(TestName, signature)\
836     template<INTERNAL_CATCH_REMOVE_PARENS(signature)>\
837     static void TestName()
838 #define INTERNAL_CATCH_DECLARE_SIG_TEST_X(TestName, signature, ...)\
839     template<INTERNAL_CATCH_REMOVE_PARENS(signature)>\
840     static void TestName()
841 
842 #define INTERNAL_CATCH_DEFINE_SIG_TEST0(TestName)
843 #define INTERNAL_CATCH_DEFINE_SIG_TEST1(TestName, signature)\
844     template<INTERNAL_CATCH_REMOVE_PARENS(signature)>\
845     static void TestName()
846 #define INTERNAL_CATCH_DEFINE_SIG_TEST_X(TestName, signature,...)\
847     template<INTERNAL_CATCH_REMOVE_PARENS(signature)>\
848     static void TestName()
849 
850 #define INTERNAL_CATCH_NTTP_REGISTER0(TestFunc, signature)\
851     template<typename Type>\
852     void reg_test(TypeList<Type>, Catch::NameAndTags nameAndTags)\
853     {\
854         Catch::AutoReg( Catch::makeTestInvoker(&TestFunc<Type>), CATCH_INTERNAL_LINEINFO, Catch::StringRef(), nameAndTags);\
855     }
856 
857 #define INTERNAL_CATCH_NTTP_REGISTER(TestFunc, signature, ...)\
858     template<INTERNAL_CATCH_REMOVE_PARENS(signature)>\
859     void reg_test(Nttp<__VA_ARGS__>, Catch::NameAndTags nameAndTags)\
860     {\
861         Catch::AutoReg( Catch::makeTestInvoker(&TestFunc<__VA_ARGS__>), CATCH_INTERNAL_LINEINFO, Catch::StringRef(), nameAndTags);\
862     }
863 
864 #define INTERNAL_CATCH_NTTP_REGISTER_METHOD0(TestName, signature, ...)\
865     template<typename Type>\
866     void reg_test(TypeList<Type>, Catch::StringRef className, Catch::NameAndTags nameAndTags)\
867     {\
868         Catch::AutoReg( Catch::makeTestInvoker(&TestName<Type>::test), CATCH_INTERNAL_LINEINFO, className, nameAndTags);\
869     }
870 
871 #define INTERNAL_CATCH_NTTP_REGISTER_METHOD(TestName, signature, ...)\
872     template<INTERNAL_CATCH_REMOVE_PARENS(signature)>\
873     void reg_test(Nttp<__VA_ARGS__>, Catch::StringRef className, Catch::NameAndTags nameAndTags)\
874     {\
875         Catch::AutoReg( Catch::makeTestInvoker(&TestName<__VA_ARGS__>::test), CATCH_INTERNAL_LINEINFO, className, nameAndTags);\
876     }
877 
878 #define INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD0(TestName, ClassName)
879 #define INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD1(TestName, ClassName, signature)\
880     template<typename TestType> \
881     struct TestName : INTERNAL_CATCH_REMOVE_PARENS(ClassName)<TestType> { \
882         void test();\
883     }
884 
885 #define INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X(TestName, ClassName, signature, ...)\
886     template<INTERNAL_CATCH_REMOVE_PARENS(signature)> \
887     struct TestName : INTERNAL_CATCH_REMOVE_PARENS(ClassName)<__VA_ARGS__> { \
888         void test();\
889     }
890 
891 #define INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD0(TestName)
892 #define INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD1(TestName, signature)\
893     template<typename TestType> \
894     void INTERNAL_CATCH_MAKE_NAMESPACE(TestName)::TestName<TestType>::test()
895 #define INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X(TestName, signature, ...)\
896     template<INTERNAL_CATCH_REMOVE_PARENS(signature)> \
897     void INTERNAL_CATCH_MAKE_NAMESPACE(TestName)::TestName<__VA_ARGS__>::test()
898 
899 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
900 #define INTERNAL_CATCH_NTTP_0
901 #define INTERNAL_CATCH_NTTP_GEN(...) INTERNAL_CATCH_VA_NARGS_IMPL(__VA_ARGS__, INTERNAL_CATCH_NTTP_1(__VA_ARGS__), INTERNAL_CATCH_NTTP_1(__VA_ARGS__), INTERNAL_CATCH_NTTP_1(__VA_ARGS__), INTERNAL_CATCH_NTTP_1(__VA_ARGS__), INTERNAL_CATCH_NTTP_1(__VA_ARGS__), INTERNAL_CATCH_NTTP_1( __VA_ARGS__), INTERNAL_CATCH_NTTP_1( __VA_ARGS__), INTERNAL_CATCH_NTTP_1( __VA_ARGS__), INTERNAL_CATCH_NTTP_1( __VA_ARGS__),INTERNAL_CATCH_NTTP_1( __VA_ARGS__), INTERNAL_CATCH_NTTP_0)
902 #define INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD(TestName, ...) INTERNAL_CATCH_VA_NARGS_IMPL( "dummy", __VA_ARGS__, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X,INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X,INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X,INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD1, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD0)(TestName, __VA_ARGS__)
903 #define INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD(TestName, ClassName, ...) INTERNAL_CATCH_VA_NARGS_IMPL( "dummy", __VA_ARGS__, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X,INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X,INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X,INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD1, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD0)(TestName, ClassName, __VA_ARGS__)
904 #define INTERNAL_CATCH_NTTP_REG_METHOD_GEN(TestName, ...) INTERNAL_CATCH_VA_NARGS_IMPL( "dummy", __VA_ARGS__, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD0, INTERNAL_CATCH_NTTP_REGISTER_METHOD0)(TestName, __VA_ARGS__)
905 #define INTERNAL_CATCH_NTTP_REG_GEN(TestFunc, ...) INTERNAL_CATCH_VA_NARGS_IMPL( "dummy", __VA_ARGS__, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER0, INTERNAL_CATCH_NTTP_REGISTER0)(TestFunc, __VA_ARGS__)
906 #define INTERNAL_CATCH_DEFINE_SIG_TEST(TestName, ...) INTERNAL_CATCH_VA_NARGS_IMPL( "dummy", __VA_ARGS__, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X,INTERNAL_CATCH_DEFINE_SIG_TEST_X,INTERNAL_CATCH_DEFINE_SIG_TEST1, INTERNAL_CATCH_DEFINE_SIG_TEST0)(TestName, __VA_ARGS__)
907 #define INTERNAL_CATCH_DECLARE_SIG_TEST(TestName, ...) INTERNAL_CATCH_VA_NARGS_IMPL( "dummy", __VA_ARGS__, INTERNAL_CATCH_DECLARE_SIG_TEST_X,INTERNAL_CATCH_DECLARE_SIG_TEST_X, INTERNAL_CATCH_DECLARE_SIG_TEST_X, INTERNAL_CATCH_DECLARE_SIG_TEST_X, INTERNAL_CATCH_DECLARE_SIG_TEST_X, INTERNAL_CATCH_DECLARE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X,INTERNAL_CATCH_DECLARE_SIG_TEST_X,INTERNAL_CATCH_DECLARE_SIG_TEST_X, INTERNAL_CATCH_DECLARE_SIG_TEST1, INTERNAL_CATCH_DECLARE_SIG_TEST0)(TestName, __VA_ARGS__)
908 #define INTERNAL_CATCH_REMOVE_PARENS_GEN(...) INTERNAL_CATCH_VA_NARGS_IMPL(__VA_ARGS__, INTERNAL_CATCH_REMOVE_PARENS_11_ARG,INTERNAL_CATCH_REMOVE_PARENS_10_ARG,INTERNAL_CATCH_REMOVE_PARENS_9_ARG,INTERNAL_CATCH_REMOVE_PARENS_8_ARG,INTERNAL_CATCH_REMOVE_PARENS_7_ARG,INTERNAL_CATCH_REMOVE_PARENS_6_ARG,INTERNAL_CATCH_REMOVE_PARENS_5_ARG,INTERNAL_CATCH_REMOVE_PARENS_4_ARG,INTERNAL_CATCH_REMOVE_PARENS_3_ARG,INTERNAL_CATCH_REMOVE_PARENS_2_ARG,INTERNAL_CATCH_REMOVE_PARENS_1_ARG)(__VA_ARGS__)
909 #else
910 #define INTERNAL_CATCH_NTTP_0(signature)
911 #define INTERNAL_CATCH_NTTP_GEN(...) INTERNAL_CATCH_EXPAND_VARGS(INTERNAL_CATCH_VA_NARGS_IMPL(__VA_ARGS__, INTERNAL_CATCH_NTTP_1, INTERNAL_CATCH_NTTP_1, INTERNAL_CATCH_NTTP_1, INTERNAL_CATCH_NTTP_1, INTERNAL_CATCH_NTTP_1, INTERNAL_CATCH_NTTP_1, INTERNAL_CATCH_NTTP_1, INTERNAL_CATCH_NTTP_1, INTERNAL_CATCH_NTTP_1,INTERNAL_CATCH_NTTP_1, INTERNAL_CATCH_NTTP_0)( __VA_ARGS__))
912 #define INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD(TestName, ...) INTERNAL_CATCH_EXPAND_VARGS(INTERNAL_CATCH_VA_NARGS_IMPL( "dummy", __VA_ARGS__, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X,INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X,INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X,INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD1, INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD0)(TestName, __VA_ARGS__))
913 #define INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD(TestName, ClassName, ...) INTERNAL_CATCH_EXPAND_VARGS(INTERNAL_CATCH_VA_NARGS_IMPL( "dummy", __VA_ARGS__, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X,INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X,INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X,INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD_X, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD1, INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD0)(TestName, ClassName, __VA_ARGS__))
914 #define INTERNAL_CATCH_NTTP_REG_METHOD_GEN(TestName, ...) INTERNAL_CATCH_EXPAND_VARGS(INTERNAL_CATCH_VA_NARGS_IMPL( "dummy", __VA_ARGS__, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD, INTERNAL_CATCH_NTTP_REGISTER_METHOD0, INTERNAL_CATCH_NTTP_REGISTER_METHOD0)(TestName, __VA_ARGS__))
915 #define INTERNAL_CATCH_NTTP_REG_GEN(TestFunc, ...) INTERNAL_CATCH_EXPAND_VARGS(INTERNAL_CATCH_VA_NARGS_IMPL( "dummy", __VA_ARGS__, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER, INTERNAL_CATCH_NTTP_REGISTER0, INTERNAL_CATCH_NTTP_REGISTER0)(TestFunc, __VA_ARGS__))
916 #define INTERNAL_CATCH_DEFINE_SIG_TEST(TestName, ...) INTERNAL_CATCH_EXPAND_VARGS(INTERNAL_CATCH_VA_NARGS_IMPL( "dummy", __VA_ARGS__, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X,INTERNAL_CATCH_DEFINE_SIG_TEST_X,INTERNAL_CATCH_DEFINE_SIG_TEST1, INTERNAL_CATCH_DEFINE_SIG_TEST0)(TestName, __VA_ARGS__))
917 #define INTERNAL_CATCH_DECLARE_SIG_TEST(TestName, ...) INTERNAL_CATCH_EXPAND_VARGS(INTERNAL_CATCH_VA_NARGS_IMPL( "dummy", __VA_ARGS__, INTERNAL_CATCH_DECLARE_SIG_TEST_X,INTERNAL_CATCH_DECLARE_SIG_TEST_X, INTERNAL_CATCH_DECLARE_SIG_TEST_X, INTERNAL_CATCH_DECLARE_SIG_TEST_X, INTERNAL_CATCH_DECLARE_SIG_TEST_X, INTERNAL_CATCH_DECLARE_SIG_TEST_X, INTERNAL_CATCH_DEFINE_SIG_TEST_X,INTERNAL_CATCH_DECLARE_SIG_TEST_X,INTERNAL_CATCH_DECLARE_SIG_TEST_X, INTERNAL_CATCH_DECLARE_SIG_TEST1, INTERNAL_CATCH_DECLARE_SIG_TEST0)(TestName, __VA_ARGS__))
918 #define INTERNAL_CATCH_REMOVE_PARENS_GEN(...) INTERNAL_CATCH_EXPAND_VARGS(INTERNAL_CATCH_VA_NARGS_IMPL(__VA_ARGS__, INTERNAL_CATCH_REMOVE_PARENS_11_ARG,INTERNAL_CATCH_REMOVE_PARENS_10_ARG,INTERNAL_CATCH_REMOVE_PARENS_9_ARG,INTERNAL_CATCH_REMOVE_PARENS_8_ARG,INTERNAL_CATCH_REMOVE_PARENS_7_ARG,INTERNAL_CATCH_REMOVE_PARENS_6_ARG,INTERNAL_CATCH_REMOVE_PARENS_5_ARG,INTERNAL_CATCH_REMOVE_PARENS_4_ARG,INTERNAL_CATCH_REMOVE_PARENS_3_ARG,INTERNAL_CATCH_REMOVE_PARENS_2_ARG,INTERNAL_CATCH_REMOVE_PARENS_1_ARG)(__VA_ARGS__))
919 #endif
920 
921 // end catch_preprocessor.hpp
922 // start catch_meta.hpp
923 
924 
925 #include <type_traits>
926 
927 namespace Catch {
928     template<typename T>
929     struct always_false : std::false_type {};
930 
931     template <typename> struct true_given : std::true_type {};
932     struct is_callable_tester {
933         template <typename Fun, typename... Args>
934         true_given<decltype(std::declval<Fun>()(std::declval<Args>()...))> static test(int);
935         template <typename...>
936         std::false_type static test(...);
937     };
938 
939     template <typename T>
940     struct is_callable;
941 
942     template <typename Fun, typename... Args>
943     struct is_callable<Fun(Args...)> : decltype(is_callable_tester::test<Fun, Args...>(0)) {};
944 
945 #if defined(__cpp_lib_is_invocable) && __cpp_lib_is_invocable >= 201703
946     // std::result_of is deprecated in C++17 and removed in C++20. Hence, it is
947     // replaced with std::invoke_result here.
948     template <typename Func, typename... U>
949     using FunctionReturnType = std::remove_reference_t<std::remove_cv_t<std::invoke_result_t<Func, U...>>>;
950 #else
951     // Keep ::type here because we still support C++11
952     template <typename Func, typename... U>
953     using FunctionReturnType = typename std::remove_reference<typename std::remove_cv<typename std::result_of<Func(U...)>::type>::type>::type;
954 #endif
955 
956 } // namespace Catch
957 
958 namespace mpl_{
959     struct na;
960 }
961 
962 // end catch_meta.hpp
963 namespace Catch {
964 
965 template<typename C>
966 class TestInvokerAsMethod : public ITestInvoker {
967     void (C::*m_testAsMethod)();
968 public:
TestInvokerAsMethod(void (C::* testAsMethod)())969     TestInvokerAsMethod( void (C::*testAsMethod)() ) noexcept : m_testAsMethod( testAsMethod ) {}
970 
invoke() const971     void invoke() const override {
972         C obj;
973         (obj.*m_testAsMethod)();
974     }
975 };
976 
977 auto makeTestInvoker( void(*testAsFunction)() ) noexcept -> ITestInvoker*;
978 
979 template<typename C>
makeTestInvoker(void (C::* testAsMethod)())980 auto makeTestInvoker( void (C::*testAsMethod)() ) noexcept -> ITestInvoker* {
981     return new(std::nothrow) TestInvokerAsMethod<C>( testAsMethod );
982 }
983 
984 struct NameAndTags {
985     NameAndTags( StringRef const& name_ = StringRef(), StringRef const& tags_ = StringRef() ) noexcept;
986     StringRef name;
987     StringRef tags;
988 };
989 
990 struct AutoReg : NonCopyable {
991     AutoReg( ITestInvoker* invoker, SourceLineInfo const& lineInfo, StringRef const& classOrMethod, NameAndTags const& nameAndTags ) noexcept;
992     ~AutoReg();
993 };
994 
995 } // end namespace Catch
996 
997 #if defined(CATCH_CONFIG_DISABLE)
998     #define INTERNAL_CATCH_TESTCASE_NO_REGISTRATION( TestName, ... ) \
999         static void TestName()
1000     #define INTERNAL_CATCH_TESTCASE_METHOD_NO_REGISTRATION( TestName, ClassName, ... ) \
1001         namespace{                        \
1002             struct TestName : INTERNAL_CATCH_REMOVE_PARENS(ClassName) { \
1003                 void test();              \
1004             };                            \
1005         }                                 \
1006         void TestName::test()
1007     #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_NO_REGISTRATION_2( TestName, TestFunc, Name, Tags, Signature, ... )  \
1008         INTERNAL_CATCH_DEFINE_SIG_TEST(TestFunc, INTERNAL_CATCH_REMOVE_PARENS(Signature))
1009     #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_NO_REGISTRATION_2( TestNameClass, TestName, ClassName, Name, Tags, Signature, ... )    \
1010         namespace{                                                                                  \
1011             namespace INTERNAL_CATCH_MAKE_NAMESPACE(TestName) {                                      \
1012             INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD(TestName, ClassName, INTERNAL_CATCH_REMOVE_PARENS(Signature));\
1013         }                                                                                           \
1014         }                                                                                           \
1015         INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD(TestName, INTERNAL_CATCH_REMOVE_PARENS(Signature))
1016 
1017     #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
1018         #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_NO_REGISTRATION(Name, Tags, ...) \
1019             INTERNAL_CATCH_TEMPLATE_TEST_CASE_NO_REGISTRATION_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, typename TestType, __VA_ARGS__ )
1020     #else
1021         #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_NO_REGISTRATION(Name, Tags, ...) \
1022             INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_NO_REGISTRATION_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, typename TestType, __VA_ARGS__ ) )
1023     #endif
1024 
1025     #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
1026         #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_SIG_NO_REGISTRATION(Name, Tags, Signature, ...) \
1027             INTERNAL_CATCH_TEMPLATE_TEST_CASE_NO_REGISTRATION_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, Signature, __VA_ARGS__ )
1028     #else
1029         #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_SIG_NO_REGISTRATION(Name, Tags, Signature, ...) \
1030             INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_NO_REGISTRATION_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, Signature, __VA_ARGS__ ) )
1031     #endif
1032 
1033     #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
1034         #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_NO_REGISTRATION( ClassName, Name, Tags,... ) \
1035             INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_NO_REGISTRATION_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____C_L_A_S_S____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ) , ClassName, Name, Tags, typename T, __VA_ARGS__ )
1036     #else
1037         #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_NO_REGISTRATION( ClassName, Name, Tags,... ) \
1038             INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_NO_REGISTRATION_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____C_L_A_S_S____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ) , ClassName, Name, Tags, typename T, __VA_ARGS__ ) )
1039     #endif
1040 
1041     #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
1042         #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_SIG_NO_REGISTRATION( ClassName, Name, Tags, Signature, ... ) \
1043             INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_NO_REGISTRATION_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____C_L_A_S_S____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ) , ClassName, Name, Tags, Signature, __VA_ARGS__ )
1044     #else
1045         #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_SIG_NO_REGISTRATION( ClassName, Name, Tags, Signature, ... ) \
1046             INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_NO_REGISTRATION_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____C_L_A_S_S____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ) , ClassName, Name, Tags, Signature, __VA_ARGS__ ) )
1047     #endif
1048 #endif
1049 
1050     ///////////////////////////////////////////////////////////////////////////////
1051     #define INTERNAL_CATCH_TESTCASE2( TestName, ... ) \
1052         static void TestName(); \
1053         CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
1054         CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS \
1055         namespace{ Catch::AutoReg INTERNAL_CATCH_UNIQUE_NAME( autoRegistrar )( Catch::makeTestInvoker( &TestName ), CATCH_INTERNAL_LINEINFO, Catch::StringRef(), Catch::NameAndTags{ __VA_ARGS__ } ); } /* NOLINT */ \
1056         CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION \
1057         static void TestName()
1058     #define INTERNAL_CATCH_TESTCASE( ... ) \
1059         INTERNAL_CATCH_TESTCASE2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_S_T____ ), __VA_ARGS__ )
1060 
1061     ///////////////////////////////////////////////////////////////////////////////
1062     #define INTERNAL_CATCH_METHOD_AS_TEST_CASE( QualifiedMethod, ... ) \
1063         CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
1064         CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS \
1065         namespace{ Catch::AutoReg INTERNAL_CATCH_UNIQUE_NAME( autoRegistrar )( Catch::makeTestInvoker( &QualifiedMethod ), CATCH_INTERNAL_LINEINFO, "&" #QualifiedMethod, Catch::NameAndTags{ __VA_ARGS__ } ); } /* NOLINT */ \
1066         CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION
1067 
1068     ///////////////////////////////////////////////////////////////////////////////
1069     #define INTERNAL_CATCH_TEST_CASE_METHOD2( TestName, ClassName, ... )\
1070         CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
1071         CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS \
1072         namespace{ \
1073             struct TestName : INTERNAL_CATCH_REMOVE_PARENS(ClassName) { \
1074                 void test(); \
1075             }; \
1076             Catch::AutoReg INTERNAL_CATCH_UNIQUE_NAME( autoRegistrar ) ( Catch::makeTestInvoker( &TestName::test ), CATCH_INTERNAL_LINEINFO, #ClassName, Catch::NameAndTags{ __VA_ARGS__ } ); /* NOLINT */ \
1077         } \
1078         CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION \
1079         void TestName::test()
1080     #define INTERNAL_CATCH_TEST_CASE_METHOD( ClassName, ... ) \
1081         INTERNAL_CATCH_TEST_CASE_METHOD2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_S_T____ ), ClassName, __VA_ARGS__ )
1082 
1083     ///////////////////////////////////////////////////////////////////////////////
1084     #define INTERNAL_CATCH_REGISTER_TESTCASE( Function, ... ) \
1085         CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
1086         CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS \
1087         Catch::AutoReg INTERNAL_CATCH_UNIQUE_NAME( autoRegistrar )( Catch::makeTestInvoker( Function ), CATCH_INTERNAL_LINEINFO, Catch::StringRef(), Catch::NameAndTags{ __VA_ARGS__ } ); /* NOLINT */ \
1088         CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION
1089 
1090     ///////////////////////////////////////////////////////////////////////////////
1091     #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_2(TestName, TestFunc, Name, Tags, Signature, ... )\
1092         CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
1093         CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS \
1094         CATCH_INTERNAL_SUPPRESS_ZERO_VARIADIC_WARNINGS \
1095         CATCH_INTERNAL_SUPPRESS_UNUSED_TEMPLATE_WARNINGS \
1096         INTERNAL_CATCH_DECLARE_SIG_TEST(TestFunc, INTERNAL_CATCH_REMOVE_PARENS(Signature));\
1097         namespace {\
1098         namespace INTERNAL_CATCH_MAKE_NAMESPACE(TestName){\
1099             INTERNAL_CATCH_TYPE_GEN\
1100             INTERNAL_CATCH_NTTP_GEN(INTERNAL_CATCH_REMOVE_PARENS(Signature))\
1101             INTERNAL_CATCH_NTTP_REG_GEN(TestFunc,INTERNAL_CATCH_REMOVE_PARENS(Signature))\
1102             template<typename...Types> \
1103             struct TestName{\
1104                 TestName(){\
1105                     int index = 0;                                    \
1106                     constexpr char const* tmpl_types[] = {CATCH_REC_LIST(INTERNAL_CATCH_STRINGIZE_WITHOUT_PARENS, __VA_ARGS__)};\
1107                     using expander = int[];\
1108                     (void)expander{(reg_test(Types{}, Catch::NameAndTags{ Name " - " + std::string(tmpl_types[index]), Tags } ), index++, 0)... };/* NOLINT */ \
1109                 }\
1110             };\
1111             static int INTERNAL_CATCH_UNIQUE_NAME( globalRegistrar ) = [](){\
1112             TestName<INTERNAL_CATCH_MAKE_TYPE_LISTS_FROM_TYPES(__VA_ARGS__)>();\
1113             return 0;\
1114         }();\
1115         }\
1116         }\
1117         CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION \
1118         INTERNAL_CATCH_DEFINE_SIG_TEST(TestFunc,INTERNAL_CATCH_REMOVE_PARENS(Signature))
1119 
1120 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
1121     #define INTERNAL_CATCH_TEMPLATE_TEST_CASE(Name, Tags, ...) \
1122         INTERNAL_CATCH_TEMPLATE_TEST_CASE_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, typename TestType, __VA_ARGS__ )
1123 #else
1124     #define INTERNAL_CATCH_TEMPLATE_TEST_CASE(Name, Tags, ...) \
1125         INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, typename TestType, __VA_ARGS__ ) )
1126 #endif
1127 
1128 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
1129     #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_SIG(Name, Tags, Signature, ...) \
1130         INTERNAL_CATCH_TEMPLATE_TEST_CASE_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, Signature, __VA_ARGS__ )
1131 #else
1132     #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_SIG(Name, Tags, Signature, ...) \
1133         INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, Signature, __VA_ARGS__ ) )
1134 #endif
1135 
1136     #define INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE2(TestName, TestFuncName, Name, Tags, Signature, TmplTypes, TypesList) \
1137         CATCH_INTERNAL_START_WARNINGS_SUPPRESSION                      \
1138         CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS                      \
1139         CATCH_INTERNAL_SUPPRESS_ZERO_VARIADIC_WARNINGS                \
1140         CATCH_INTERNAL_SUPPRESS_UNUSED_TEMPLATE_WARNINGS              \
1141         template<typename TestType> static void TestFuncName();       \
1142         namespace {\
1143         namespace INTERNAL_CATCH_MAKE_NAMESPACE(TestName) {                                     \
1144             INTERNAL_CATCH_TYPE_GEN                                                  \
1145             INTERNAL_CATCH_NTTP_GEN(INTERNAL_CATCH_REMOVE_PARENS(Signature))         \
1146             template<typename... Types>                               \
1147             struct TestName {                                         \
1148                 void reg_tests() {                                          \
1149                     int index = 0;                                    \
1150                     using expander = int[];                           \
1151                     constexpr char const* tmpl_types[] = {CATCH_REC_LIST(INTERNAL_CATCH_STRINGIZE_WITHOUT_PARENS, INTERNAL_CATCH_REMOVE_PARENS(TmplTypes))};\
1152                     constexpr char const* types_list[] = {CATCH_REC_LIST(INTERNAL_CATCH_STRINGIZE_WITHOUT_PARENS, INTERNAL_CATCH_REMOVE_PARENS(TypesList))};\
1153                     constexpr auto num_types = sizeof(types_list) / sizeof(types_list[0]);\
1154                     (void)expander{(Catch::AutoReg( Catch::makeTestInvoker( &TestFuncName<Types> ), CATCH_INTERNAL_LINEINFO, Catch::StringRef(), Catch::NameAndTags{ Name " - " + std::string(tmpl_types[index / num_types]) + "<" + std::string(types_list[index % num_types]) + ">", Tags } ), index++, 0)... };/* NOLINT */\
1155                 }                                                     \
1156             };                                                        \
1157             static int INTERNAL_CATCH_UNIQUE_NAME( globalRegistrar ) = [](){ \
1158                 using TestInit = typename create<TestName, decltype(get_wrapper<INTERNAL_CATCH_REMOVE_PARENS(TmplTypes)>()), TypeList<INTERNAL_CATCH_MAKE_TYPE_LISTS_FROM_TYPES(INTERNAL_CATCH_REMOVE_PARENS(TypesList))>>::type; \
1159                 TestInit t;                                           \
1160                 t.reg_tests();                                        \
1161                 return 0;                                             \
1162             }();                                                      \
1163         }                                                             \
1164         }                                                             \
1165         CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION                       \
1166         template<typename TestType>                                   \
1167         static void TestFuncName()
1168 
1169 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
1170     #define INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE(Name, Tags, ...)\
1171         INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE2(INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, typename T,__VA_ARGS__)
1172 #else
1173     #define INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE(Name, Tags, ...)\
1174         INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, typename T, __VA_ARGS__ ) )
1175 #endif
1176 
1177 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
1178     #define INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_SIG(Name, Tags, Signature, ...)\
1179         INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE2(INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, Signature, __VA_ARGS__)
1180 #else
1181     #define INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_SIG(Name, Tags, Signature, ...)\
1182         INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, Signature, __VA_ARGS__ ) )
1183 #endif
1184 
1185     #define INTERNAL_CATCH_TEMPLATE_LIST_TEST_CASE_2(TestName, TestFunc, Name, Tags, TmplList)\
1186         CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
1187         CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS \
1188         CATCH_INTERNAL_SUPPRESS_UNUSED_TEMPLATE_WARNINGS \
1189         template<typename TestType> static void TestFunc();       \
1190         namespace {\
1191         namespace INTERNAL_CATCH_MAKE_NAMESPACE(TestName){\
1192         INTERNAL_CATCH_TYPE_GEN\
1193         template<typename... Types>                               \
1194         struct TestName {                                         \
1195             void reg_tests() {                                          \
1196                 int index = 0;                                    \
1197                 using expander = int[];                           \
1198                 (void)expander{(Catch::AutoReg( Catch::makeTestInvoker( &TestFunc<Types> ), CATCH_INTERNAL_LINEINFO, Catch::StringRef(), Catch::NameAndTags{ Name " - " + std::string(INTERNAL_CATCH_STRINGIZE(TmplList)) + " - " + std::to_string(index), Tags } ), index++, 0)... };/* NOLINT */\
1199             }                                                     \
1200         };\
1201         static int INTERNAL_CATCH_UNIQUE_NAME( globalRegistrar ) = [](){ \
1202                 using TestInit = typename convert<TestName, TmplList>::type; \
1203                 TestInit t;                                           \
1204                 t.reg_tests();                                        \
1205                 return 0;                                             \
1206             }();                                                      \
1207         }}\
1208         CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION                       \
1209         template<typename TestType>                                   \
1210         static void TestFunc()
1211 
1212     #define INTERNAL_CATCH_TEMPLATE_LIST_TEST_CASE(Name, Tags, TmplList) \
1213         INTERNAL_CATCH_TEMPLATE_LIST_TEST_CASE_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), Name, Tags, TmplList )
1214 
1215     #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_2( TestNameClass, TestName, ClassName, Name, Tags, Signature, ... ) \
1216         CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
1217         CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS \
1218         CATCH_INTERNAL_SUPPRESS_ZERO_VARIADIC_WARNINGS \
1219         CATCH_INTERNAL_SUPPRESS_UNUSED_TEMPLATE_WARNINGS \
1220         namespace {\
1221         namespace INTERNAL_CATCH_MAKE_NAMESPACE(TestName){ \
1222             INTERNAL_CATCH_TYPE_GEN\
1223             INTERNAL_CATCH_NTTP_GEN(INTERNAL_CATCH_REMOVE_PARENS(Signature))\
1224             INTERNAL_CATCH_DECLARE_SIG_TEST_METHOD(TestName, ClassName, INTERNAL_CATCH_REMOVE_PARENS(Signature));\
1225             INTERNAL_CATCH_NTTP_REG_METHOD_GEN(TestName, INTERNAL_CATCH_REMOVE_PARENS(Signature))\
1226             template<typename...Types> \
1227             struct TestNameClass{\
1228                 TestNameClass(){\
1229                     int index = 0;                                    \
1230                     constexpr char const* tmpl_types[] = {CATCH_REC_LIST(INTERNAL_CATCH_STRINGIZE_WITHOUT_PARENS, __VA_ARGS__)};\
1231                     using expander = int[];\
1232                     (void)expander{(reg_test(Types{}, #ClassName, Catch::NameAndTags{ Name " - " + std::string(tmpl_types[index]), Tags } ), index++, 0)... };/* NOLINT */ \
1233                 }\
1234             };\
1235             static int INTERNAL_CATCH_UNIQUE_NAME( globalRegistrar ) = [](){\
1236                 TestNameClass<INTERNAL_CATCH_MAKE_TYPE_LISTS_FROM_TYPES(__VA_ARGS__)>();\
1237                 return 0;\
1238         }();\
1239         }\
1240         }\
1241         CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION \
1242         INTERNAL_CATCH_DEFINE_SIG_TEST_METHOD(TestName, INTERNAL_CATCH_REMOVE_PARENS(Signature))
1243 
1244 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
1245     #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD( ClassName, Name, Tags,... ) \
1246         INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____C_L_A_S_S____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ) , ClassName, Name, Tags, typename T, __VA_ARGS__ )
1247 #else
1248     #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD( ClassName, Name, Tags,... ) \
1249         INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____C_L_A_S_S____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ) , ClassName, Name, Tags, typename T, __VA_ARGS__ ) )
1250 #endif
1251 
1252 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
1253     #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_SIG( ClassName, Name, Tags, Signature, ... ) \
1254         INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____C_L_A_S_S____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ) , ClassName, Name, Tags, Signature, __VA_ARGS__ )
1255 #else
1256     #define INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_SIG( ClassName, Name, Tags, Signature, ... ) \
1257         INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____C_L_A_S_S____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ) , ClassName, Name, Tags, Signature, __VA_ARGS__ ) )
1258 #endif
1259 
1260     #define INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_2(TestNameClass, TestName, ClassName, Name, Tags, Signature, TmplTypes, TypesList)\
1261         CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
1262         CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS \
1263         CATCH_INTERNAL_SUPPRESS_ZERO_VARIADIC_WARNINGS \
1264         CATCH_INTERNAL_SUPPRESS_UNUSED_TEMPLATE_WARNINGS \
1265         template<typename TestType> \
1266             struct TestName : INTERNAL_CATCH_REMOVE_PARENS(ClassName <TestType>) { \
1267                 void test();\
1268             };\
1269         namespace {\
1270         namespace INTERNAL_CATCH_MAKE_NAMESPACE(TestNameClass) {\
1271             INTERNAL_CATCH_TYPE_GEN                  \
1272             INTERNAL_CATCH_NTTP_GEN(INTERNAL_CATCH_REMOVE_PARENS(Signature))\
1273             template<typename...Types>\
1274             struct TestNameClass{\
1275                 void reg_tests(){\
1276                     int index = 0;\
1277                     using expander = int[];\
1278                     constexpr char const* tmpl_types[] = {CATCH_REC_LIST(INTERNAL_CATCH_STRINGIZE_WITHOUT_PARENS, INTERNAL_CATCH_REMOVE_PARENS(TmplTypes))};\
1279                     constexpr char const* types_list[] = {CATCH_REC_LIST(INTERNAL_CATCH_STRINGIZE_WITHOUT_PARENS, INTERNAL_CATCH_REMOVE_PARENS(TypesList))};\
1280                     constexpr auto num_types = sizeof(types_list) / sizeof(types_list[0]);\
1281                     (void)expander{(Catch::AutoReg( Catch::makeTestInvoker( &TestName<Types>::test ), CATCH_INTERNAL_LINEINFO, #ClassName, Catch::NameAndTags{ Name " - " + std::string(tmpl_types[index / num_types]) + "<" + std::string(types_list[index % num_types]) + ">", Tags } ), index++, 0)... };/* NOLINT */ \
1282                 }\
1283             };\
1284             static int INTERNAL_CATCH_UNIQUE_NAME( globalRegistrar ) = [](){\
1285                 using TestInit = typename create<TestNameClass, decltype(get_wrapper<INTERNAL_CATCH_REMOVE_PARENS(TmplTypes)>()), TypeList<INTERNAL_CATCH_MAKE_TYPE_LISTS_FROM_TYPES(INTERNAL_CATCH_REMOVE_PARENS(TypesList))>>::type;\
1286                 TestInit t;\
1287                 t.reg_tests();\
1288                 return 0;\
1289             }(); \
1290         }\
1291         }\
1292         CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION \
1293         template<typename TestType> \
1294         void TestName<TestType>::test()
1295 
1296 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
1297     #define INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD( ClassName, Name, Tags, ... )\
1298         INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), ClassName, Name, Tags, typename T, __VA_ARGS__ )
1299 #else
1300     #define INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD( ClassName, Name, Tags, ... )\
1301         INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), ClassName, Name, Tags, typename T,__VA_ARGS__ ) )
1302 #endif
1303 
1304 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
1305     #define INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( ClassName, Name, Tags, Signature, ... )\
1306         INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), ClassName, Name, Tags, Signature, __VA_ARGS__ )
1307 #else
1308     #define INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( ClassName, Name, Tags, Signature, ... )\
1309         INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), ClassName, Name, Tags, Signature,__VA_ARGS__ ) )
1310 #endif
1311 
1312     #define INTERNAL_CATCH_TEMPLATE_LIST_TEST_CASE_METHOD_2( TestNameClass, TestName, ClassName, Name, Tags, TmplList) \
1313         CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
1314         CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS \
1315         CATCH_INTERNAL_SUPPRESS_UNUSED_TEMPLATE_WARNINGS \
1316         template<typename TestType> \
1317         struct TestName : INTERNAL_CATCH_REMOVE_PARENS(ClassName <TestType>) { \
1318             void test();\
1319         };\
1320         namespace {\
1321         namespace INTERNAL_CATCH_MAKE_NAMESPACE(TestName){ \
1322             INTERNAL_CATCH_TYPE_GEN\
1323             template<typename...Types>\
1324             struct TestNameClass{\
1325                 void reg_tests(){\
1326                     int index = 0;\
1327                     using expander = int[];\
1328                     (void)expander{(Catch::AutoReg( Catch::makeTestInvoker( &TestName<Types>::test ), CATCH_INTERNAL_LINEINFO, #ClassName, Catch::NameAndTags{ Name " - " + std::string(INTERNAL_CATCH_STRINGIZE(TmplList)) + " - " + std::to_string(index), Tags } ), index++, 0)... };/* NOLINT */ \
1329                 }\
1330             };\
1331             static int INTERNAL_CATCH_UNIQUE_NAME( globalRegistrar ) = [](){\
1332                 using TestInit = typename convert<TestNameClass, TmplList>::type;\
1333                 TestInit t;\
1334                 t.reg_tests();\
1335                 return 0;\
1336             }(); \
1337         }}\
1338         CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION \
1339         template<typename TestType> \
1340         void TestName<TestType>::test()
1341 
1342 #define INTERNAL_CATCH_TEMPLATE_LIST_TEST_CASE_METHOD(ClassName, Name, Tags, TmplList) \
1343         INTERNAL_CATCH_TEMPLATE_LIST_TEST_CASE_METHOD_2( INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____ ), INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_M_P_L_A_T_E____T_E_S_T____F_U_N_C____ ), ClassName, Name, Tags, TmplList )
1344 
1345 // end catch_test_registry.h
1346 // start catch_capture.hpp
1347 
1348 // start catch_assertionhandler.h
1349 
1350 // start catch_assertioninfo.h
1351 
1352 // start catch_result_type.h
1353 
1354 namespace Catch {
1355 
1356     // ResultWas::OfType enum
1357     struct ResultWas { enum OfType {
1358         Unknown = -1,
1359         Ok = 0,
1360         Info = 1,
1361         Warning = 2,
1362 
1363         FailureBit = 0x10,
1364 
1365         ExpressionFailed = FailureBit | 1,
1366         ExplicitFailure = FailureBit | 2,
1367 
1368         Exception = 0x100 | FailureBit,
1369 
1370         ThrewException = Exception | 1,
1371         DidntThrowException = Exception | 2,
1372 
1373         FatalErrorCondition = 0x200 | FailureBit
1374 
1375     }; };
1376 
1377     bool isOk( ResultWas::OfType resultType );
1378     bool isJustInfo( int flags );
1379 
1380     // ResultDisposition::Flags enum
1381     struct ResultDisposition { enum Flags {
1382         Normal = 0x01,
1383 
1384         ContinueOnFailure = 0x02,   // Failures fail test, but execution continues
1385         FalseTest = 0x04,           // Prefix expression with !
1386         SuppressFail = 0x08         // Failures are reported but do not fail the test
1387     }; };
1388 
1389     ResultDisposition::Flags operator | ( ResultDisposition::Flags lhs, ResultDisposition::Flags rhs );
1390 
1391     bool shouldContinueOnFailure( int flags );
isFalseTest(int flags)1392     inline bool isFalseTest( int flags ) { return ( flags & ResultDisposition::FalseTest ) != 0; }
1393     bool shouldSuppressFailure( int flags );
1394 
1395 } // end namespace Catch
1396 
1397 // end catch_result_type.h
1398 namespace Catch {
1399 
1400     struct AssertionInfo
1401     {
1402         StringRef macroName;
1403         SourceLineInfo lineInfo;
1404         StringRef capturedExpression;
1405         ResultDisposition::Flags resultDisposition;
1406 
1407         // We want to delete this constructor but a compiler bug in 4.8 means
1408         // the struct is then treated as non-aggregate
1409         //AssertionInfo() = delete;
1410     };
1411 
1412 } // end namespace Catch
1413 
1414 // end catch_assertioninfo.h
1415 // start catch_decomposer.h
1416 
1417 // start catch_tostring.h
1418 
1419 #include <vector>
1420 #include <cstddef>
1421 #include <type_traits>
1422 #include <string>
1423 // start catch_stream.h
1424 
1425 #include <iosfwd>
1426 #include <cstddef>
1427 #include <ostream>
1428 
1429 namespace Catch {
1430 
1431     std::ostream& cout();
1432     std::ostream& cerr();
1433     std::ostream& clog();
1434 
1435     class StringRef;
1436 
1437     struct IStream {
1438         virtual ~IStream();
1439         virtual std::ostream& stream() const = 0;
1440     };
1441 
1442     auto makeStream( StringRef const &filename ) -> IStream const*;
1443 
1444     class ReusableStringStream : NonCopyable {
1445         std::size_t m_index;
1446         std::ostream* m_oss;
1447     public:
1448         ReusableStringStream();
1449         ~ReusableStringStream();
1450 
1451         auto str() const -> std::string;
1452 
1453         template<typename T>
operator <<(T const & value)1454         auto operator << ( T const& value ) -> ReusableStringStream& {
1455             *m_oss << value;
1456             return *this;
1457         }
get()1458         auto get() -> std::ostream& { return *m_oss; }
1459     };
1460 }
1461 
1462 // end catch_stream.h
1463 // start catch_interfaces_enum_values_registry.h
1464 
1465 #include <vector>
1466 
1467 namespace Catch {
1468 
1469     namespace Detail {
1470         struct EnumInfo {
1471             StringRef m_name;
1472             std::vector<std::pair<int, StringRef>> m_values;
1473 
1474             ~EnumInfo();
1475 
1476             StringRef lookup( int value ) const;
1477         };
1478     } // namespace Detail
1479 
1480     struct IMutableEnumValuesRegistry {
1481         virtual ~IMutableEnumValuesRegistry();
1482 
1483         virtual Detail::EnumInfo const& registerEnum( StringRef enumName, StringRef allEnums, std::vector<int> const& values ) = 0;
1484 
1485         template<typename E>
registerEnumCatch::IMutableEnumValuesRegistry1486         Detail::EnumInfo const& registerEnum( StringRef enumName, StringRef allEnums, std::initializer_list<E> values ) {
1487             static_assert(sizeof(int) >= sizeof(E), "Cannot serialize enum to int");
1488             std::vector<int> intValues;
1489             intValues.reserve( values.size() );
1490             for( auto enumValue : values )
1491                 intValues.push_back( static_cast<int>( enumValue ) );
1492             return registerEnum( enumName, allEnums, intValues );
1493         }
1494     };
1495 
1496 } // Catch
1497 
1498 // end catch_interfaces_enum_values_registry.h
1499 
1500 #ifdef CATCH_CONFIG_CPP17_STRING_VIEW
1501 #include <string_view>
1502 #endif
1503 
1504 #ifdef __OBJC__
1505 // start catch_objc_arc.hpp
1506 
1507 #import <Foundation/Foundation.h>
1508 
1509 #ifdef __has_feature
1510 #define CATCH_ARC_ENABLED __has_feature(objc_arc)
1511 #else
1512 #define CATCH_ARC_ENABLED 0
1513 #endif
1514 
1515 void arcSafeRelease( NSObject* obj );
1516 id performOptionalSelector( id obj, SEL sel );
1517 
1518 #if !CATCH_ARC_ENABLED
arcSafeRelease(NSObject * obj)1519 inline void arcSafeRelease( NSObject* obj ) {
1520     [obj release];
1521 }
performOptionalSelector(id obj,SEL sel)1522 inline id performOptionalSelector( id obj, SEL sel ) {
1523     if( [obj respondsToSelector: sel] )
1524         return [obj performSelector: sel];
1525     return nil;
1526 }
1527 #define CATCH_UNSAFE_UNRETAINED
1528 #define CATCH_ARC_STRONG
1529 #else
arcSafeRelease(NSObject *)1530 inline void arcSafeRelease( NSObject* ){}
performOptionalSelector(id obj,SEL sel)1531 inline id performOptionalSelector( id obj, SEL sel ) {
1532 #ifdef __clang__
1533 #pragma clang diagnostic push
1534 #pragma clang diagnostic ignored "-Warc-performSelector-leaks"
1535 #endif
1536     if( [obj respondsToSelector: sel] )
1537         return [obj performSelector: sel];
1538 #ifdef __clang__
1539 #pragma clang diagnostic pop
1540 #endif
1541     return nil;
1542 }
1543 #define CATCH_UNSAFE_UNRETAINED __unsafe_unretained
1544 #define CATCH_ARC_STRONG __strong
1545 #endif
1546 
1547 // end catch_objc_arc.hpp
1548 #endif
1549 
1550 #ifdef _MSC_VER
1551 #pragma warning(push)
1552 #pragma warning(disable:4180) // We attempt to stream a function (address) by const&, which MSVC complains about but is harmless
1553 #endif
1554 
1555 namespace Catch {
1556     namespace Detail {
1557 
1558         extern const std::string unprintableString;
1559 
1560         std::string rawMemoryToString( const void *object, std::size_t size );
1561 
1562         template<typename T>
rawMemoryToString(const T & object)1563         std::string rawMemoryToString( const T& object ) {
1564           return rawMemoryToString( &object, sizeof(object) );
1565         }
1566 
1567         template<typename T>
1568         class IsStreamInsertable {
1569             template<typename Stream, typename U>
1570             static auto test(int)
1571                 -> decltype(std::declval<Stream&>() << std::declval<U>(), std::true_type());
1572 
1573             template<typename, typename>
1574             static auto test(...)->std::false_type;
1575 
1576         public:
1577             static const bool value = decltype(test<std::ostream, const T&>(0))::value;
1578         };
1579 
1580         template<typename E>
1581         std::string convertUnknownEnumToString( E e );
1582 
1583         template<typename T>
1584         typename std::enable_if<
1585             !std::is_enum<T>::value && !std::is_base_of<std::exception, T>::value,
convertUnstreamable(T const &)1586         std::string>::type convertUnstreamable( T const& ) {
1587             return Detail::unprintableString;
1588         }
1589         template<typename T>
1590         typename std::enable_if<
1591             !std::is_enum<T>::value && std::is_base_of<std::exception, T>::value,
convertUnstreamable(T const & ex)1592          std::string>::type convertUnstreamable(T const& ex) {
1593             return ex.what();
1594         }
1595 
1596         template<typename T>
1597         typename std::enable_if<
1598             std::is_enum<T>::value
convertUnstreamable(T const & value)1599         , std::string>::type convertUnstreamable( T const& value ) {
1600             return convertUnknownEnumToString( value );
1601         }
1602 
1603 #if defined(_MANAGED)
1604         //! Convert a CLR string to a utf8 std::string
1605         template<typename T>
1606         std::string clrReferenceToString( T^ ref ) {
1607             if (ref == nullptr)
1608                 return std::string("null");
1609             auto bytes = System::Text::Encoding::UTF8->GetBytes(ref->ToString());
1610             cli::pin_ptr<System::Byte> p = &bytes[0];
1611             return std::string(reinterpret_cast<char const *>(p), bytes->Length);
1612         }
1613 #endif
1614 
1615     } // namespace Detail
1616 
1617     // If we decide for C++14, change these to enable_if_ts
1618     template <typename T, typename = void>
1619     struct StringMaker {
1620         template <typename Fake = T>
1621         static
1622         typename std::enable_if<::Catch::Detail::IsStreamInsertable<Fake>::value, std::string>::type
convertCatch::StringMaker1623             convert(const Fake& value) {
1624                 ReusableStringStream rss;
1625                 // NB: call using the function-like syntax to avoid ambiguity with
1626                 // user-defined templated operator<< under clang.
1627                 rss.operator<<(value);
1628                 return rss.str();
1629         }
1630 
1631         template <typename Fake = T>
1632         static
1633         typename std::enable_if<!::Catch::Detail::IsStreamInsertable<Fake>::value, std::string>::type
convertCatch::StringMaker1634             convert( const Fake& value ) {
1635 #if !defined(CATCH_CONFIG_FALLBACK_STRINGIFIER)
1636             return Detail::convertUnstreamable(value);
1637 #else
1638             return CATCH_CONFIG_FALLBACK_STRINGIFIER(value);
1639 #endif
1640         }
1641     };
1642 
1643     namespace Detail {
1644 
1645         // This function dispatches all stringification requests inside of Catch.
1646         // Should be preferably called fully qualified, like ::Catch::Detail::stringify
1647         template <typename T>
stringify(const T & e)1648         std::string stringify(const T& e) {
1649             return ::Catch::StringMaker<typename std::remove_cv<typename std::remove_reference<T>::type>::type>::convert(e);
1650         }
1651 
1652         template<typename E>
convertUnknownEnumToString(E e)1653         std::string convertUnknownEnumToString( E e ) {
1654             return ::Catch::Detail::stringify(static_cast<typename std::underlying_type<E>::type>(e));
1655         }
1656 
1657 #if defined(_MANAGED)
1658         template <typename T>
1659         std::string stringify( T^ e ) {
1660             return ::Catch::StringMaker<T^>::convert(e);
1661         }
1662 #endif
1663 
1664     } // namespace Detail
1665 
1666     // Some predefined specializations
1667 
1668     template<>
1669     struct StringMaker<std::string> {
1670         static std::string convert(const std::string& str);
1671     };
1672 
1673 #ifdef CATCH_CONFIG_CPP17_STRING_VIEW
1674     template<>
1675     struct StringMaker<std::string_view> {
1676         static std::string convert(std::string_view str);
1677     };
1678 #endif
1679 
1680     template<>
1681     struct StringMaker<char const *> {
1682         static std::string convert(char const * str);
1683     };
1684     template<>
1685     struct StringMaker<char *> {
1686         static std::string convert(char * str);
1687     };
1688 
1689 #ifdef CATCH_CONFIG_WCHAR
1690     template<>
1691     struct StringMaker<std::wstring> {
1692         static std::string convert(const std::wstring& wstr);
1693     };
1694 
1695 # ifdef CATCH_CONFIG_CPP17_STRING_VIEW
1696     template<>
1697     struct StringMaker<std::wstring_view> {
1698         static std::string convert(std::wstring_view str);
1699     };
1700 # endif
1701 
1702     template<>
1703     struct StringMaker<wchar_t const *> {
1704         static std::string convert(wchar_t const * str);
1705     };
1706     template<>
1707     struct StringMaker<wchar_t *> {
1708         static std::string convert(wchar_t * str);
1709     };
1710 #endif
1711 
1712     // TBD: Should we use `strnlen` to ensure that we don't go out of the buffer,
1713     //      while keeping string semantics?
1714     template<int SZ>
1715     struct StringMaker<char[SZ]> {
convertCatch::StringMaker1716         static std::string convert(char const* str) {
1717             return ::Catch::Detail::stringify(std::string{ str });
1718         }
1719     };
1720     template<int SZ>
1721     struct StringMaker<signed char[SZ]> {
convertCatch::StringMaker1722         static std::string convert(signed char const* str) {
1723             return ::Catch::Detail::stringify(std::string{ reinterpret_cast<char const *>(str) });
1724         }
1725     };
1726     template<int SZ>
1727     struct StringMaker<unsigned char[SZ]> {
convertCatch::StringMaker1728         static std::string convert(unsigned char const* str) {
1729             return ::Catch::Detail::stringify(std::string{ reinterpret_cast<char const *>(str) });
1730         }
1731     };
1732 
1733 #if defined(CATCH_CONFIG_CPP17_BYTE)
1734     template<>
1735     struct StringMaker<std::byte> {
1736         static std::string convert(std::byte value);
1737     };
1738 #endif // defined(CATCH_CONFIG_CPP17_BYTE)
1739     template<>
1740     struct StringMaker<int> {
1741         static std::string convert(int value);
1742     };
1743     template<>
1744     struct StringMaker<long> {
1745         static std::string convert(long value);
1746     };
1747     template<>
1748     struct StringMaker<long long> {
1749         static std::string convert(long long value);
1750     };
1751     template<>
1752     struct StringMaker<unsigned int> {
1753         static std::string convert(unsigned int value);
1754     };
1755     template<>
1756     struct StringMaker<unsigned long> {
1757         static std::string convert(unsigned long value);
1758     };
1759     template<>
1760     struct StringMaker<unsigned long long> {
1761         static std::string convert(unsigned long long value);
1762     };
1763 
1764     template<>
1765     struct StringMaker<bool> {
1766         static std::string convert(bool b);
1767     };
1768 
1769     template<>
1770     struct StringMaker<char> {
1771         static std::string convert(char c);
1772     };
1773     template<>
1774     struct StringMaker<signed char> {
1775         static std::string convert(signed char c);
1776     };
1777     template<>
1778     struct StringMaker<unsigned char> {
1779         static std::string convert(unsigned char c);
1780     };
1781 
1782     template<>
1783     struct StringMaker<std::nullptr_t> {
1784         static std::string convert(std::nullptr_t);
1785     };
1786 
1787     template<>
1788     struct StringMaker<float> {
1789         static std::string convert(float value);
1790         static int precision;
1791     };
1792 
1793     template<>
1794     struct StringMaker<double> {
1795         static std::string convert(double value);
1796         static int precision;
1797     };
1798 
1799     template <typename T>
1800     struct StringMaker<T*> {
1801         template <typename U>
convertCatch::StringMaker1802         static std::string convert(U* p) {
1803             if (p) {
1804                 return ::Catch::Detail::rawMemoryToString(p);
1805             } else {
1806                 return "nullptr";
1807             }
1808         }
1809     };
1810 
1811     template <typename R, typename C>
1812     struct StringMaker<R C::*> {
convertCatch::StringMaker1813         static std::string convert(R C::* p) {
1814             if (p) {
1815                 return ::Catch::Detail::rawMemoryToString(p);
1816             } else {
1817                 return "nullptr";
1818             }
1819         }
1820     };
1821 
1822 #if defined(_MANAGED)
1823     template <typename T>
1824     struct StringMaker<T^> {
1825         static std::string convert( T^ ref ) {
1826             return ::Catch::Detail::clrReferenceToString(ref);
1827         }
1828     };
1829 #endif
1830 
1831     namespace Detail {
1832         template<typename InputIterator>
rangeToString(InputIterator first,InputIterator last)1833         std::string rangeToString(InputIterator first, InputIterator last) {
1834             ReusableStringStream rss;
1835             rss << "{ ";
1836             if (first != last) {
1837                 rss << ::Catch::Detail::stringify(*first);
1838                 for (++first; first != last; ++first)
1839                     rss << ", " << ::Catch::Detail::stringify(*first);
1840             }
1841             rss << " }";
1842             return rss.str();
1843         }
1844     }
1845 
1846 #ifdef __OBJC__
1847     template<>
1848     struct StringMaker<NSString*> {
convertCatch::StringMaker1849         static std::string convert(NSString * nsstring) {
1850             if (!nsstring)
1851                 return "nil";
1852             return std::string("@") + [nsstring UTF8String];
1853         }
1854     };
1855     template<>
1856     struct StringMaker<NSObject*> {
convertCatch::StringMaker1857         static std::string convert(NSObject* nsObject) {
1858             return ::Catch::Detail::stringify([nsObject description]);
1859         }
1860 
1861     };
1862     namespace Detail {
stringify(NSString * nsstring)1863         inline std::string stringify( NSString* nsstring ) {
1864             return StringMaker<NSString*>::convert( nsstring );
1865         }
1866 
1867     } // namespace Detail
1868 #endif // __OBJC__
1869 
1870 } // namespace Catch
1871 
1872 //////////////////////////////////////////////////////
1873 // Separate std-lib types stringification, so it can be selectively enabled
1874 // This means that we do not bring in
1875 
1876 #if defined(CATCH_CONFIG_ENABLE_ALL_STRINGMAKERS)
1877 #  define CATCH_CONFIG_ENABLE_PAIR_STRINGMAKER
1878 #  define CATCH_CONFIG_ENABLE_TUPLE_STRINGMAKER
1879 #  define CATCH_CONFIG_ENABLE_VARIANT_STRINGMAKER
1880 #  define CATCH_CONFIG_ENABLE_CHRONO_STRINGMAKER
1881 #  define CATCH_CONFIG_ENABLE_OPTIONAL_STRINGMAKER
1882 #endif
1883 
1884 // Separate std::pair specialization
1885 #if defined(CATCH_CONFIG_ENABLE_PAIR_STRINGMAKER)
1886 #include <utility>
1887 namespace Catch {
1888     template<typename T1, typename T2>
1889     struct StringMaker<std::pair<T1, T2> > {
convertCatch::StringMaker1890         static std::string convert(const std::pair<T1, T2>& pair) {
1891             ReusableStringStream rss;
1892             rss << "{ "
1893                 << ::Catch::Detail::stringify(pair.first)
1894                 << ", "
1895                 << ::Catch::Detail::stringify(pair.second)
1896                 << " }";
1897             return rss.str();
1898         }
1899     };
1900 }
1901 #endif // CATCH_CONFIG_ENABLE_PAIR_STRINGMAKER
1902 
1903 #if defined(CATCH_CONFIG_ENABLE_OPTIONAL_STRINGMAKER) && defined(CATCH_CONFIG_CPP17_OPTIONAL)
1904 #include <optional>
1905 namespace Catch {
1906     template<typename T>
1907     struct StringMaker<std::optional<T> > {
convertCatch::StringMaker1908         static std::string convert(const std::optional<T>& optional) {
1909             ReusableStringStream rss;
1910             if (optional.has_value()) {
1911                 rss << ::Catch::Detail::stringify(*optional);
1912             } else {
1913                 rss << "{ }";
1914             }
1915             return rss.str();
1916         }
1917     };
1918 }
1919 #endif // CATCH_CONFIG_ENABLE_OPTIONAL_STRINGMAKER
1920 
1921 // Separate std::tuple specialization
1922 #if defined(CATCH_CONFIG_ENABLE_TUPLE_STRINGMAKER)
1923 #include <tuple>
1924 namespace Catch {
1925     namespace Detail {
1926         template<
1927             typename Tuple,
1928             std::size_t N = 0,
1929             bool = (N < std::tuple_size<Tuple>::value)
1930             >
1931             struct TupleElementPrinter {
printCatch::Detail::TupleElementPrinter1932             static void print(const Tuple& tuple, std::ostream& os) {
1933                 os << (N ? ", " : " ")
1934                     << ::Catch::Detail::stringify(std::get<N>(tuple));
1935                 TupleElementPrinter<Tuple, N + 1>::print(tuple, os);
1936             }
1937         };
1938 
1939         template<
1940             typename Tuple,
1941             std::size_t N
1942         >
1943             struct TupleElementPrinter<Tuple, N, false> {
printCatch::Detail::TupleElementPrinter1944             static void print(const Tuple&, std::ostream&) {}
1945         };
1946 
1947     }
1948 
1949     template<typename ...Types>
1950     struct StringMaker<std::tuple<Types...>> {
convertCatch::StringMaker1951         static std::string convert(const std::tuple<Types...>& tuple) {
1952             ReusableStringStream rss;
1953             rss << '{';
1954             Detail::TupleElementPrinter<std::tuple<Types...>>::print(tuple, rss.get());
1955             rss << " }";
1956             return rss.str();
1957         }
1958     };
1959 }
1960 #endif // CATCH_CONFIG_ENABLE_TUPLE_STRINGMAKER
1961 
1962 #if defined(CATCH_CONFIG_ENABLE_VARIANT_STRINGMAKER) && defined(CATCH_CONFIG_CPP17_VARIANT)
1963 #include <variant>
1964 namespace Catch {
1965     template<>
1966     struct StringMaker<std::monostate> {
convertCatch::StringMaker1967         static std::string convert(const std::monostate&) {
1968             return "{ }";
1969         }
1970     };
1971 
1972     template<typename... Elements>
1973     struct StringMaker<std::variant<Elements...>> {
convertCatch::StringMaker1974         static std::string convert(const std::variant<Elements...>& variant) {
1975             if (variant.valueless_by_exception()) {
1976                 return "{valueless variant}";
1977             } else {
1978                 return std::visit(
1979                     [](const auto& value) {
1980                         return ::Catch::Detail::stringify(value);
1981                     },
1982                     variant
1983                 );
1984             }
1985         }
1986     };
1987 }
1988 #endif // CATCH_CONFIG_ENABLE_VARIANT_STRINGMAKER
1989 
1990 namespace Catch {
1991     // Import begin/ end from std here
1992     using std::begin;
1993     using std::end;
1994 
1995     namespace detail {
1996         template <typename...>
1997         struct void_type {
1998             using type = void;
1999         };
2000 
2001         template <typename T, typename = void>
2002         struct is_range_impl : std::false_type {
2003         };
2004 
2005         template <typename T>
2006         struct is_range_impl<T, typename void_type<decltype(begin(std::declval<T>()))>::type> : std::true_type {
2007         };
2008     } // namespace detail
2009 
2010     template <typename T>
2011     struct is_range : detail::is_range_impl<T> {
2012     };
2013 
2014 #if defined(_MANAGED) // Managed types are never ranges
2015     template <typename T>
2016     struct is_range<T^> {
2017         static const bool value = false;
2018     };
2019 #endif
2020 
2021     template<typename Range>
rangeToString(Range const & range)2022     std::string rangeToString( Range const& range ) {
2023         return ::Catch::Detail::rangeToString( begin( range ), end( range ) );
2024     }
2025 
2026     // Handle vector<bool> specially
2027     template<typename Allocator>
rangeToString(std::vector<bool,Allocator> const & v)2028     std::string rangeToString( std::vector<bool, Allocator> const& v ) {
2029         ReusableStringStream rss;
2030         rss << "{ ";
2031         bool first = true;
2032         for( bool b : v ) {
2033             if( first )
2034                 first = false;
2035             else
2036                 rss << ", ";
2037             rss << ::Catch::Detail::stringify( b );
2038         }
2039         rss << " }";
2040         return rss.str();
2041     }
2042 
2043     template<typename R>
2044     struct StringMaker<R, typename std::enable_if<is_range<R>::value && !::Catch::Detail::IsStreamInsertable<R>::value>::type> {
convertCatch::StringMaker2045         static std::string convert( R const& range ) {
2046             return rangeToString( range );
2047         }
2048     };
2049 
2050     template <typename T, int SZ>
2051     struct StringMaker<T[SZ]> {
convertCatch::StringMaker2052         static std::string convert(T const(&arr)[SZ]) {
2053             return rangeToString(arr);
2054         }
2055     };
2056 
2057 } // namespace Catch
2058 
2059 // Separate std::chrono::duration specialization
2060 #if defined(CATCH_CONFIG_ENABLE_CHRONO_STRINGMAKER)
2061 #include <ctime>
2062 #include <ratio>
2063 #include <chrono>
2064 
2065 namespace Catch {
2066 
2067 template <class Ratio>
2068 struct ratio_string {
2069     static std::string symbol();
2070 };
2071 
2072 template <class Ratio>
symbol()2073 std::string ratio_string<Ratio>::symbol() {
2074     Catch::ReusableStringStream rss;
2075     rss << '[' << Ratio::num << '/'
2076         << Ratio::den << ']';
2077     return rss.str();
2078 }
2079 template <>
2080 struct ratio_string<std::atto> {
2081     static std::string symbol();
2082 };
2083 template <>
2084 struct ratio_string<std::femto> {
2085     static std::string symbol();
2086 };
2087 template <>
2088 struct ratio_string<std::pico> {
2089     static std::string symbol();
2090 };
2091 template <>
2092 struct ratio_string<std::nano> {
2093     static std::string symbol();
2094 };
2095 template <>
2096 struct ratio_string<std::micro> {
2097     static std::string symbol();
2098 };
2099 template <>
2100 struct ratio_string<std::milli> {
2101     static std::string symbol();
2102 };
2103 
2104     ////////////
2105     // std::chrono::duration specializations
2106     template<typename Value, typename Ratio>
2107     struct StringMaker<std::chrono::duration<Value, Ratio>> {
convertCatch::StringMaker2108         static std::string convert(std::chrono::duration<Value, Ratio> const& duration) {
2109             ReusableStringStream rss;
2110             rss << duration.count() << ' ' << ratio_string<Ratio>::symbol() << 's';
2111             return rss.str();
2112         }
2113     };
2114     template<typename Value>
2115     struct StringMaker<std::chrono::duration<Value, std::ratio<1>>> {
convertCatch::StringMaker2116         static std::string convert(std::chrono::duration<Value, std::ratio<1>> const& duration) {
2117             ReusableStringStream rss;
2118             rss << duration.count() << " s";
2119             return rss.str();
2120         }
2121     };
2122     template<typename Value>
2123     struct StringMaker<std::chrono::duration<Value, std::ratio<60>>> {
convertCatch::StringMaker2124         static std::string convert(std::chrono::duration<Value, std::ratio<60>> const& duration) {
2125             ReusableStringStream rss;
2126             rss << duration.count() << " m";
2127             return rss.str();
2128         }
2129     };
2130     template<typename Value>
2131     struct StringMaker<std::chrono::duration<Value, std::ratio<3600>>> {
convertCatch::StringMaker2132         static std::string convert(std::chrono::duration<Value, std::ratio<3600>> const& duration) {
2133             ReusableStringStream rss;
2134             rss << duration.count() << " h";
2135             return rss.str();
2136         }
2137     };
2138 
2139     ////////////
2140     // std::chrono::time_point specialization
2141     // Generic time_point cannot be specialized, only std::chrono::time_point<system_clock>
2142     template<typename Clock, typename Duration>
2143     struct StringMaker<std::chrono::time_point<Clock, Duration>> {
convertCatch::StringMaker2144         static std::string convert(std::chrono::time_point<Clock, Duration> const& time_point) {
2145             return ::Catch::Detail::stringify(time_point.time_since_epoch()) + " since epoch";
2146         }
2147     };
2148     // std::chrono::time_point<system_clock> specialization
2149     template<typename Duration>
2150     struct StringMaker<std::chrono::time_point<std::chrono::system_clock, Duration>> {
convertCatch::StringMaker2151         static std::string convert(std::chrono::time_point<std::chrono::system_clock, Duration> const& time_point) {
2152             auto converted = std::chrono::system_clock::to_time_t(time_point);
2153 
2154 #ifdef _MSC_VER
2155             std::tm timeInfo = {};
2156             gmtime_s(&timeInfo, &converted);
2157 #else
2158             std::tm* timeInfo = std::gmtime(&converted);
2159 #endif
2160 
2161             auto const timeStampSize = sizeof("2017-01-16T17:06:45Z");
2162             char timeStamp[timeStampSize];
2163             const char * const fmt = "%Y-%m-%dT%H:%M:%SZ";
2164 
2165 #ifdef _MSC_VER
2166             std::strftime(timeStamp, timeStampSize, fmt, &timeInfo);
2167 #else
2168             std::strftime(timeStamp, timeStampSize, fmt, timeInfo);
2169 #endif
2170             return std::string(timeStamp);
2171         }
2172     };
2173 }
2174 #endif // CATCH_CONFIG_ENABLE_CHRONO_STRINGMAKER
2175 
2176 #define INTERNAL_CATCH_REGISTER_ENUM( enumName, ... ) \
2177 namespace Catch { \
2178     template<> struct StringMaker<enumName> { \
2179         static std::string convert( enumName value ) { \
2180             static const auto& enumInfo = ::Catch::getMutableRegistryHub().getMutableEnumValuesRegistry().registerEnum( #enumName, #__VA_ARGS__, { __VA_ARGS__ } ); \
2181             return static_cast<std::string>(enumInfo.lookup( static_cast<int>( value ) )); \
2182         } \
2183     }; \
2184 }
2185 
2186 #define CATCH_REGISTER_ENUM( enumName, ... ) INTERNAL_CATCH_REGISTER_ENUM( enumName, __VA_ARGS__ )
2187 
2188 #ifdef _MSC_VER
2189 #pragma warning(pop)
2190 #endif
2191 
2192 // end catch_tostring.h
2193 #include <iosfwd>
2194 
2195 #ifdef _MSC_VER
2196 #pragma warning(push)
2197 #pragma warning(disable:4389) // '==' : signed/unsigned mismatch
2198 #pragma warning(disable:4018) // more "signed/unsigned mismatch"
2199 #pragma warning(disable:4312) // Converting int to T* using reinterpret_cast (issue on x64 platform)
2200 #pragma warning(disable:4180) // qualifier applied to function type has no meaning
2201 #pragma warning(disable:4800) // Forcing result to true or false
2202 #endif
2203 
2204 namespace Catch {
2205 
2206     struct ITransientExpression {
isBinaryExpressionCatch::ITransientExpression2207         auto isBinaryExpression() const -> bool { return m_isBinaryExpression; }
getResultCatch::ITransientExpression2208         auto getResult() const -> bool { return m_result; }
2209         virtual void streamReconstructedExpression( std::ostream &os ) const = 0;
2210 
ITransientExpressionCatch::ITransientExpression2211         ITransientExpression( bool isBinaryExpression, bool result )
2212         :   m_isBinaryExpression( isBinaryExpression ),
2213             m_result( result )
2214         {}
2215 
2216         // We don't actually need a virtual destructor, but many static analysers
2217         // complain if it's not here :-(
2218         virtual ~ITransientExpression();
2219 
2220         bool m_isBinaryExpression;
2221         bool m_result;
2222 
2223     };
2224 
2225     void formatReconstructedExpression( std::ostream &os, std::string const& lhs, StringRef op, std::string const& rhs );
2226 
2227     template<typename LhsT, typename RhsT>
2228     class BinaryExpr  : public ITransientExpression {
2229         LhsT m_lhs;
2230         StringRef m_op;
2231         RhsT m_rhs;
2232 
streamReconstructedExpression(std::ostream & os) const2233         void streamReconstructedExpression( std::ostream &os ) const override {
2234             formatReconstructedExpression
2235                     ( os, Catch::Detail::stringify( m_lhs ), m_op, Catch::Detail::stringify( m_rhs ) );
2236         }
2237 
2238     public:
BinaryExpr(bool comparisonResult,LhsT lhs,StringRef op,RhsT rhs)2239         BinaryExpr( bool comparisonResult, LhsT lhs, StringRef op, RhsT rhs )
2240         :   ITransientExpression{ true, comparisonResult },
2241             m_lhs( lhs ),
2242             m_op( op ),
2243             m_rhs( rhs )
2244         {}
2245 
2246         template<typename T>
operator &&(T) const2247         auto operator && ( T ) const -> BinaryExpr<LhsT, RhsT const&> const {
2248             static_assert(always_false<T>::value,
2249             "chained comparisons are not supported inside assertions, "
2250             "wrap the expression inside parentheses, or decompose it");
2251         }
2252 
2253         template<typename T>
operator ||(T) const2254         auto operator || ( T ) const -> BinaryExpr<LhsT, RhsT const&> const {
2255             static_assert(always_false<T>::value,
2256             "chained comparisons are not supported inside assertions, "
2257             "wrap the expression inside parentheses, or decompose it");
2258         }
2259 
2260         template<typename T>
operator ==(T) const2261         auto operator == ( T ) const -> BinaryExpr<LhsT, RhsT const&> const {
2262             static_assert(always_false<T>::value,
2263             "chained comparisons are not supported inside assertions, "
2264             "wrap the expression inside parentheses, or decompose it");
2265         }
2266 
2267         template<typename T>
operator !=(T) const2268         auto operator != ( T ) const -> BinaryExpr<LhsT, RhsT const&> const {
2269             static_assert(always_false<T>::value,
2270             "chained comparisons are not supported inside assertions, "
2271             "wrap the expression inside parentheses, or decompose it");
2272         }
2273 
2274         template<typename T>
operator >(T) const2275         auto operator > ( T ) const -> BinaryExpr<LhsT, RhsT const&> const {
2276             static_assert(always_false<T>::value,
2277             "chained comparisons are not supported inside assertions, "
2278             "wrap the expression inside parentheses, or decompose it");
2279         }
2280 
2281         template<typename T>
operator <(T) const2282         auto operator < ( T ) const -> BinaryExpr<LhsT, RhsT const&> const {
2283             static_assert(always_false<T>::value,
2284             "chained comparisons are not supported inside assertions, "
2285             "wrap the expression inside parentheses, or decompose it");
2286         }
2287 
2288         template<typename T>
operator >=(T) const2289         auto operator >= ( T ) const -> BinaryExpr<LhsT, RhsT const&> const {
2290             static_assert(always_false<T>::value,
2291             "chained comparisons are not supported inside assertions, "
2292             "wrap the expression inside parentheses, or decompose it");
2293         }
2294 
2295         template<typename T>
operator <=(T) const2296         auto operator <= ( T ) const -> BinaryExpr<LhsT, RhsT const&> const {
2297             static_assert(always_false<T>::value,
2298             "chained comparisons are not supported inside assertions, "
2299             "wrap the expression inside parentheses, or decompose it");
2300         }
2301     };
2302 
2303     template<typename LhsT>
2304     class UnaryExpr : public ITransientExpression {
2305         LhsT m_lhs;
2306 
streamReconstructedExpression(std::ostream & os) const2307         void streamReconstructedExpression( std::ostream &os ) const override {
2308             os << Catch::Detail::stringify( m_lhs );
2309         }
2310 
2311     public:
UnaryExpr(LhsT lhs)2312         explicit UnaryExpr( LhsT lhs )
2313         :   ITransientExpression{ false, static_cast<bool>(lhs) },
2314             m_lhs( lhs )
2315         {}
2316     };
2317 
2318     // Specialised comparison functions to handle equality comparisons between ints and pointers (NULL deduces as an int)
2319     template<typename LhsT, typename RhsT>
compareEqual(LhsT const & lhs,RhsT const & rhs)2320     auto compareEqual( LhsT const& lhs, RhsT const& rhs ) -> bool { return static_cast<bool>(lhs == rhs); }
2321     template<typename T>
compareEqual(T * const & lhs,int rhs)2322     auto compareEqual( T* const& lhs, int rhs ) -> bool { return lhs == reinterpret_cast<void const*>( rhs ); }
2323     template<typename T>
compareEqual(T * const & lhs,long rhs)2324     auto compareEqual( T* const& lhs, long rhs ) -> bool { return lhs == reinterpret_cast<void const*>( rhs ); }
2325     template<typename T>
compareEqual(int lhs,T * const & rhs)2326     auto compareEqual( int lhs, T* const& rhs ) -> bool { return reinterpret_cast<void const*>( lhs ) == rhs; }
2327     template<typename T>
compareEqual(long lhs,T * const & rhs)2328     auto compareEqual( long lhs, T* const& rhs ) -> bool { return reinterpret_cast<void const*>( lhs ) == rhs; }
2329 
2330     template<typename LhsT, typename RhsT>
compareNotEqual(LhsT const & lhs,RhsT && rhs)2331     auto compareNotEqual( LhsT const& lhs, RhsT&& rhs ) -> bool { return static_cast<bool>(lhs != rhs); }
2332     template<typename T>
compareNotEqual(T * const & lhs,int rhs)2333     auto compareNotEqual( T* const& lhs, int rhs ) -> bool { return lhs != reinterpret_cast<void const*>( rhs ); }
2334     template<typename T>
compareNotEqual(T * const & lhs,long rhs)2335     auto compareNotEqual( T* const& lhs, long rhs ) -> bool { return lhs != reinterpret_cast<void const*>( rhs ); }
2336     template<typename T>
compareNotEqual(int lhs,T * const & rhs)2337     auto compareNotEqual( int lhs, T* const& rhs ) -> bool { return reinterpret_cast<void const*>( lhs ) != rhs; }
2338     template<typename T>
compareNotEqual(long lhs,T * const & rhs)2339     auto compareNotEqual( long lhs, T* const& rhs ) -> bool { return reinterpret_cast<void const*>( lhs ) != rhs; }
2340 
2341     template<typename LhsT>
2342     class ExprLhs {
2343         LhsT m_lhs;
2344     public:
ExprLhs(LhsT lhs)2345         explicit ExprLhs( LhsT lhs ) : m_lhs( lhs ) {}
2346 
2347         template<typename RhsT>
operator ==(RhsT const & rhs)2348         auto operator == ( RhsT const& rhs ) -> BinaryExpr<LhsT, RhsT const&> const {
2349             return { compareEqual( m_lhs, rhs ), m_lhs, "==", rhs };
2350         }
operator ==(bool rhs)2351         auto operator == ( bool rhs ) -> BinaryExpr<LhsT, bool> const {
2352             return { m_lhs == rhs, m_lhs, "==", rhs };
2353         }
2354 
2355         template<typename RhsT>
operator !=(RhsT const & rhs)2356         auto operator != ( RhsT const& rhs ) -> BinaryExpr<LhsT, RhsT const&> const {
2357             return { compareNotEqual( m_lhs, rhs ), m_lhs, "!=", rhs };
2358         }
operator !=(bool rhs)2359         auto operator != ( bool rhs ) -> BinaryExpr<LhsT, bool> const {
2360             return { m_lhs != rhs, m_lhs, "!=", rhs };
2361         }
2362 
2363         template<typename RhsT>
operator >(RhsT const & rhs)2364         auto operator > ( RhsT const& rhs ) -> BinaryExpr<LhsT, RhsT const&> const {
2365             return { static_cast<bool>(m_lhs > rhs), m_lhs, ">", rhs };
2366         }
2367         template<typename RhsT>
operator <(RhsT const & rhs)2368         auto operator < ( RhsT const& rhs ) -> BinaryExpr<LhsT, RhsT const&> const {
2369             return { static_cast<bool>(m_lhs < rhs), m_lhs, "<", rhs };
2370         }
2371         template<typename RhsT>
operator >=(RhsT const & rhs)2372         auto operator >= ( RhsT const& rhs ) -> BinaryExpr<LhsT, RhsT const&> const {
2373             return { static_cast<bool>(m_lhs >= rhs), m_lhs, ">=", rhs };
2374         }
2375         template<typename RhsT>
operator <=(RhsT const & rhs)2376         auto operator <= ( RhsT const& rhs ) -> BinaryExpr<LhsT, RhsT const&> const {
2377             return { static_cast<bool>(m_lhs <= rhs), m_lhs, "<=", rhs };
2378         }
2379         template <typename RhsT>
operator |(RhsT const & rhs)2380         auto operator | (RhsT const& rhs) -> BinaryExpr<LhsT, RhsT const&> const {
2381             return { static_cast<bool>(m_lhs | rhs), m_lhs, "|", rhs };
2382         }
2383         template <typename RhsT>
operator &(RhsT const & rhs)2384         auto operator & (RhsT const& rhs) -> BinaryExpr<LhsT, RhsT const&> const {
2385             return { static_cast<bool>(m_lhs & rhs), m_lhs, "&", rhs };
2386         }
2387         template <typename RhsT>
operator ^(RhsT const & rhs)2388         auto operator ^ (RhsT const& rhs) -> BinaryExpr<LhsT, RhsT const&> const {
2389             return { static_cast<bool>(m_lhs ^ rhs), m_lhs, "^", rhs };
2390         }
2391 
2392         template<typename RhsT>
operator &&(RhsT const &)2393         auto operator && ( RhsT const& ) -> BinaryExpr<LhsT, RhsT const&> const {
2394             static_assert(always_false<RhsT>::value,
2395             "operator&& is not supported inside assertions, "
2396             "wrap the expression inside parentheses, or decompose it");
2397         }
2398 
2399         template<typename RhsT>
operator ||(RhsT const &)2400         auto operator || ( RhsT const& ) -> BinaryExpr<LhsT, RhsT const&> const {
2401             static_assert(always_false<RhsT>::value,
2402             "operator|| is not supported inside assertions, "
2403             "wrap the expression inside parentheses, or decompose it");
2404         }
2405 
makeUnaryExpr() const2406         auto makeUnaryExpr() const -> UnaryExpr<LhsT> {
2407             return UnaryExpr<LhsT>{ m_lhs };
2408         }
2409     };
2410 
2411     void handleExpression( ITransientExpression const& expr );
2412 
2413     template<typename T>
handleExpression(ExprLhs<T> const & expr)2414     void handleExpression( ExprLhs<T> const& expr ) {
2415         handleExpression( expr.makeUnaryExpr() );
2416     }
2417 
2418     struct Decomposer {
2419         template<typename T>
operator <=Catch::Decomposer2420         auto operator <= ( T const& lhs ) -> ExprLhs<T const&> {
2421             return ExprLhs<T const&>{ lhs };
2422         }
2423 
operator <=Catch::Decomposer2424         auto operator <=( bool value ) -> ExprLhs<bool> {
2425             return ExprLhs<bool>{ value };
2426         }
2427     };
2428 
2429 } // end namespace Catch
2430 
2431 #ifdef _MSC_VER
2432 #pragma warning(pop)
2433 #endif
2434 
2435 // end catch_decomposer.h
2436 // start catch_interfaces_capture.h
2437 
2438 #include <string>
2439 #include <chrono>
2440 
2441 namespace Catch {
2442 
2443     class AssertionResult;
2444     struct AssertionInfo;
2445     struct SectionInfo;
2446     struct SectionEndInfo;
2447     struct MessageInfo;
2448     struct MessageBuilder;
2449     struct Counts;
2450     struct AssertionReaction;
2451     struct SourceLineInfo;
2452 
2453     struct ITransientExpression;
2454     struct IGeneratorTracker;
2455 
2456 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
2457     struct BenchmarkInfo;
2458     template <typename Duration = std::chrono::duration<double, std::nano>>
2459     struct BenchmarkStats;
2460 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
2461 
2462     struct IResultCapture {
2463 
2464         virtual ~IResultCapture();
2465 
2466         virtual bool sectionStarted(    SectionInfo const& sectionInfo,
2467                                         Counts& assertions ) = 0;
2468         virtual void sectionEnded( SectionEndInfo const& endInfo ) = 0;
2469         virtual void sectionEndedEarly( SectionEndInfo const& endInfo ) = 0;
2470 
2471         virtual auto acquireGeneratorTracker( StringRef generatorName, SourceLineInfo const& lineInfo ) -> IGeneratorTracker& = 0;
2472 
2473 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
2474         virtual void benchmarkPreparing( std::string const& name ) = 0;
2475         virtual void benchmarkStarting( BenchmarkInfo const& info ) = 0;
2476         virtual void benchmarkEnded( BenchmarkStats<> const& stats ) = 0;
2477         virtual void benchmarkFailed( std::string const& error ) = 0;
2478 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
2479 
2480         virtual void pushScopedMessage( MessageInfo const& message ) = 0;
2481         virtual void popScopedMessage( MessageInfo const& message ) = 0;
2482 
2483         virtual void emplaceUnscopedMessage( MessageBuilder const& builder ) = 0;
2484 
2485         virtual void handleFatalErrorCondition( StringRef message ) = 0;
2486 
2487         virtual void handleExpr
2488                 (   AssertionInfo const& info,
2489                     ITransientExpression const& expr,
2490                     AssertionReaction& reaction ) = 0;
2491         virtual void handleMessage
2492                 (   AssertionInfo const& info,
2493                     ResultWas::OfType resultType,
2494                     StringRef const& message,
2495                     AssertionReaction& reaction ) = 0;
2496         virtual void handleUnexpectedExceptionNotThrown
2497                 (   AssertionInfo const& info,
2498                     AssertionReaction& reaction ) = 0;
2499         virtual void handleUnexpectedInflightException
2500                 (   AssertionInfo const& info,
2501                     std::string const& message,
2502                     AssertionReaction& reaction ) = 0;
2503         virtual void handleIncomplete
2504                 (   AssertionInfo const& info ) = 0;
2505         virtual void handleNonExpr
2506                 (   AssertionInfo const &info,
2507                     ResultWas::OfType resultType,
2508                     AssertionReaction &reaction ) = 0;
2509 
2510         virtual bool lastAssertionPassed() = 0;
2511         virtual void assertionPassed() = 0;
2512 
2513         // Deprecated, do not use:
2514         virtual std::string getCurrentTestName() const = 0;
2515         virtual const AssertionResult* getLastResult() const = 0;
2516         virtual void exceptionEarlyReported() = 0;
2517     };
2518 
2519     IResultCapture& getResultCapture();
2520 }
2521 
2522 // end catch_interfaces_capture.h
2523 namespace Catch {
2524 
2525     struct TestFailureException{};
2526     struct AssertionResultData;
2527     struct IResultCapture;
2528     class RunContext;
2529 
2530     class LazyExpression {
2531         friend class AssertionHandler;
2532         friend struct AssertionStats;
2533         friend class RunContext;
2534 
2535         ITransientExpression const* m_transientExpression = nullptr;
2536         bool m_isNegated;
2537     public:
2538         LazyExpression( bool isNegated );
2539         LazyExpression( LazyExpression const& other );
2540         LazyExpression& operator = ( LazyExpression const& ) = delete;
2541 
2542         explicit operator bool() const;
2543 
2544         friend auto operator << ( std::ostream& os, LazyExpression const& lazyExpr ) -> std::ostream&;
2545     };
2546 
2547     struct AssertionReaction {
2548         bool shouldDebugBreak = false;
2549         bool shouldThrow = false;
2550     };
2551 
2552     class AssertionHandler {
2553         AssertionInfo m_assertionInfo;
2554         AssertionReaction m_reaction;
2555         bool m_completed = false;
2556         IResultCapture& m_resultCapture;
2557 
2558     public:
2559         AssertionHandler
2560             (   StringRef const& macroName,
2561                 SourceLineInfo const& lineInfo,
2562                 StringRef capturedExpression,
2563                 ResultDisposition::Flags resultDisposition );
~AssertionHandler()2564         ~AssertionHandler() {
2565             if ( !m_completed ) {
2566                 m_resultCapture.handleIncomplete( m_assertionInfo );
2567             }
2568         }
2569 
2570         template<typename T>
handleExpr(ExprLhs<T> const & expr)2571         void handleExpr( ExprLhs<T> const& expr ) {
2572             handleExpr( expr.makeUnaryExpr() );
2573         }
2574         void handleExpr( ITransientExpression const& expr );
2575 
2576         void handleMessage(ResultWas::OfType resultType, StringRef const& message);
2577 
2578         void handleExceptionThrownAsExpected();
2579         void handleUnexpectedExceptionNotThrown();
2580         void handleExceptionNotThrownAsExpected();
2581         void handleThrowingCallSkipped();
2582         void handleUnexpectedInflightException();
2583 
2584         void complete();
2585         void setCompleted();
2586 
2587         // query
2588         auto allowThrows() const -> bool;
2589     };
2590 
2591     void handleExceptionMatchExpr( AssertionHandler& handler, std::string const& str, StringRef const& matcherString );
2592 
2593 } // namespace Catch
2594 
2595 // end catch_assertionhandler.h
2596 // start catch_message.h
2597 
2598 #include <string>
2599 #include <vector>
2600 
2601 namespace Catch {
2602 
2603     struct MessageInfo {
2604         MessageInfo(    StringRef const& _macroName,
2605                         SourceLineInfo const& _lineInfo,
2606                         ResultWas::OfType _type );
2607 
2608         StringRef macroName;
2609         std::string message;
2610         SourceLineInfo lineInfo;
2611         ResultWas::OfType type;
2612         unsigned int sequence;
2613 
2614         bool operator == ( MessageInfo const& other ) const;
2615         bool operator < ( MessageInfo const& other ) const;
2616     private:
2617         static unsigned int globalCount;
2618     };
2619 
2620     struct MessageStream {
2621 
2622         template<typename T>
operator <<Catch::MessageStream2623         MessageStream& operator << ( T const& value ) {
2624             m_stream << value;
2625             return *this;
2626         }
2627 
2628         ReusableStringStream m_stream;
2629     };
2630 
2631     struct MessageBuilder : MessageStream {
2632         MessageBuilder( StringRef const& macroName,
2633                         SourceLineInfo const& lineInfo,
2634                         ResultWas::OfType type );
2635 
2636         template<typename T>
operator <<Catch::MessageBuilder2637         MessageBuilder& operator << ( T const& value ) {
2638             m_stream << value;
2639             return *this;
2640         }
2641 
2642         MessageInfo m_info;
2643     };
2644 
2645     class ScopedMessage {
2646     public:
2647         explicit ScopedMessage( MessageBuilder const& builder );
2648         ScopedMessage( ScopedMessage& duplicate ) = delete;
2649         ScopedMessage( ScopedMessage&& old );
2650         ~ScopedMessage();
2651 
2652         MessageInfo m_info;
2653         bool m_moved;
2654     };
2655 
2656     class Capturer {
2657         std::vector<MessageInfo> m_messages;
2658         IResultCapture& m_resultCapture = getResultCapture();
2659         size_t m_captured = 0;
2660     public:
2661         Capturer( StringRef macroName, SourceLineInfo const& lineInfo, ResultWas::OfType resultType, StringRef names );
2662         ~Capturer();
2663 
2664         void captureValue( size_t index, std::string const& value );
2665 
2666         template<typename T>
captureValues(size_t index,T const & value)2667         void captureValues( size_t index, T const& value ) {
2668             captureValue( index, Catch::Detail::stringify( value ) );
2669         }
2670 
2671         template<typename T, typename... Ts>
captureValues(size_t index,T const & value,Ts const &...values)2672         void captureValues( size_t index, T const& value, Ts const&... values ) {
2673             captureValue( index, Catch::Detail::stringify(value) );
2674             captureValues( index+1, values... );
2675         }
2676     };
2677 
2678 } // end namespace Catch
2679 
2680 // end catch_message.h
2681 #if !defined(CATCH_CONFIG_DISABLE)
2682 
2683 #if !defined(CATCH_CONFIG_DISABLE_STRINGIFICATION)
2684   #define CATCH_INTERNAL_STRINGIFY(...) #__VA_ARGS__
2685 #else
2686   #define CATCH_INTERNAL_STRINGIFY(...) "Disabled by CATCH_CONFIG_DISABLE_STRINGIFICATION"
2687 #endif
2688 
2689 #if defined(CATCH_CONFIG_FAST_COMPILE) || defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
2690 
2691 ///////////////////////////////////////////////////////////////////////////////
2692 // Another way to speed-up compilation is to omit local try-catch for REQUIRE*
2693 // macros.
2694 #define INTERNAL_CATCH_TRY
2695 #define INTERNAL_CATCH_CATCH( capturer )
2696 
2697 #else // CATCH_CONFIG_FAST_COMPILE
2698 
2699 #define INTERNAL_CATCH_TRY try
2700 #define INTERNAL_CATCH_CATCH( handler ) catch(...) { handler.handleUnexpectedInflightException(); }
2701 
2702 #endif
2703 
2704 #define INTERNAL_CATCH_REACT( handler ) handler.complete();
2705 
2706 ///////////////////////////////////////////////////////////////////////////////
2707 #define INTERNAL_CATCH_TEST( macroName, resultDisposition, ... ) \
2708     do { \
2709         CATCH_INTERNAL_IGNORE_BUT_WARN(__VA_ARGS__); \
2710         Catch::AssertionHandler catchAssertionHandler( macroName##_catch_sr, CATCH_INTERNAL_LINEINFO, CATCH_INTERNAL_STRINGIFY(__VA_ARGS__), resultDisposition ); \
2711         INTERNAL_CATCH_TRY { \
2712             CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
2713             CATCH_INTERNAL_SUPPRESS_PARENTHESES_WARNINGS \
2714             catchAssertionHandler.handleExpr( Catch::Decomposer() <= __VA_ARGS__ ); \
2715             CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION \
2716         } INTERNAL_CATCH_CATCH( catchAssertionHandler ) \
2717         INTERNAL_CATCH_REACT( catchAssertionHandler ) \
2718     } while( (void)0, (false) && static_cast<bool>( !!(__VA_ARGS__) ) )
2719 
2720 ///////////////////////////////////////////////////////////////////////////////
2721 #define INTERNAL_CATCH_IF( macroName, resultDisposition, ... ) \
2722     INTERNAL_CATCH_TEST( macroName, resultDisposition, __VA_ARGS__ ); \
2723     if( Catch::getResultCapture().lastAssertionPassed() )
2724 
2725 ///////////////////////////////////////////////////////////////////////////////
2726 #define INTERNAL_CATCH_ELSE( macroName, resultDisposition, ... ) \
2727     INTERNAL_CATCH_TEST( macroName, resultDisposition, __VA_ARGS__ ); \
2728     if( !Catch::getResultCapture().lastAssertionPassed() )
2729 
2730 ///////////////////////////////////////////////////////////////////////////////
2731 #define INTERNAL_CATCH_NO_THROW( macroName, resultDisposition, ... ) \
2732     do { \
2733         Catch::AssertionHandler catchAssertionHandler( macroName##_catch_sr, CATCH_INTERNAL_LINEINFO, CATCH_INTERNAL_STRINGIFY(__VA_ARGS__), resultDisposition ); \
2734         try { \
2735             static_cast<void>(__VA_ARGS__); \
2736             catchAssertionHandler.handleExceptionNotThrownAsExpected(); \
2737         } \
2738         catch( ... ) { \
2739             catchAssertionHandler.handleUnexpectedInflightException(); \
2740         } \
2741         INTERNAL_CATCH_REACT( catchAssertionHandler ) \
2742     } while( false )
2743 
2744 ///////////////////////////////////////////////////////////////////////////////
2745 #define INTERNAL_CATCH_THROWS( macroName, resultDisposition, ... ) \
2746     do { \
2747         Catch::AssertionHandler catchAssertionHandler( macroName##_catch_sr, CATCH_INTERNAL_LINEINFO, CATCH_INTERNAL_STRINGIFY(__VA_ARGS__), resultDisposition); \
2748         if( catchAssertionHandler.allowThrows() ) \
2749             try { \
2750                 static_cast<void>(__VA_ARGS__); \
2751                 catchAssertionHandler.handleUnexpectedExceptionNotThrown(); \
2752             } \
2753             catch( ... ) { \
2754                 catchAssertionHandler.handleExceptionThrownAsExpected(); \
2755             } \
2756         else \
2757             catchAssertionHandler.handleThrowingCallSkipped(); \
2758         INTERNAL_CATCH_REACT( catchAssertionHandler ) \
2759     } while( false )
2760 
2761 ///////////////////////////////////////////////////////////////////////////////
2762 #define INTERNAL_CATCH_THROWS_AS( macroName, exceptionType, resultDisposition, expr ) \
2763     do { \
2764         Catch::AssertionHandler catchAssertionHandler( macroName##_catch_sr, CATCH_INTERNAL_LINEINFO, CATCH_INTERNAL_STRINGIFY(expr) ", " CATCH_INTERNAL_STRINGIFY(exceptionType), resultDisposition ); \
2765         if( catchAssertionHandler.allowThrows() ) \
2766             try { \
2767                 static_cast<void>(expr); \
2768                 catchAssertionHandler.handleUnexpectedExceptionNotThrown(); \
2769             } \
2770             catch( exceptionType const& ) { \
2771                 catchAssertionHandler.handleExceptionThrownAsExpected(); \
2772             } \
2773             catch( ... ) { \
2774                 catchAssertionHandler.handleUnexpectedInflightException(); \
2775             } \
2776         else \
2777             catchAssertionHandler.handleThrowingCallSkipped(); \
2778         INTERNAL_CATCH_REACT( catchAssertionHandler ) \
2779     } while( false )
2780 
2781 ///////////////////////////////////////////////////////////////////////////////
2782 #define INTERNAL_CATCH_MSG( macroName, messageType, resultDisposition, ... ) \
2783     do { \
2784         Catch::AssertionHandler catchAssertionHandler( macroName##_catch_sr, CATCH_INTERNAL_LINEINFO, Catch::StringRef(), resultDisposition ); \
2785         catchAssertionHandler.handleMessage( messageType, ( Catch::MessageStream() << __VA_ARGS__ + ::Catch::StreamEndStop() ).m_stream.str() ); \
2786         INTERNAL_CATCH_REACT( catchAssertionHandler ) \
2787     } while( false )
2788 
2789 ///////////////////////////////////////////////////////////////////////////////
2790 #define INTERNAL_CATCH_CAPTURE( varName, macroName, ... ) \
2791     auto varName = Catch::Capturer( macroName, CATCH_INTERNAL_LINEINFO, Catch::ResultWas::Info, #__VA_ARGS__ ); \
2792     varName.captureValues( 0, __VA_ARGS__ )
2793 
2794 ///////////////////////////////////////////////////////////////////////////////
2795 #define INTERNAL_CATCH_INFO( macroName, log ) \
2796     Catch::ScopedMessage INTERNAL_CATCH_UNIQUE_NAME( scopedMessage )( Catch::MessageBuilder( macroName##_catch_sr, CATCH_INTERNAL_LINEINFO, Catch::ResultWas::Info ) << log );
2797 
2798 ///////////////////////////////////////////////////////////////////////////////
2799 #define INTERNAL_CATCH_UNSCOPED_INFO( macroName, log ) \
2800     Catch::getResultCapture().emplaceUnscopedMessage( Catch::MessageBuilder( macroName##_catch_sr, CATCH_INTERNAL_LINEINFO, Catch::ResultWas::Info ) << log )
2801 
2802 ///////////////////////////////////////////////////////////////////////////////
2803 // Although this is matcher-based, it can be used with just a string
2804 #define INTERNAL_CATCH_THROWS_STR_MATCHES( macroName, resultDisposition, matcher, ... ) \
2805     do { \
2806         Catch::AssertionHandler catchAssertionHandler( macroName##_catch_sr, CATCH_INTERNAL_LINEINFO, CATCH_INTERNAL_STRINGIFY(__VA_ARGS__) ", " CATCH_INTERNAL_STRINGIFY(matcher), resultDisposition ); \
2807         if( catchAssertionHandler.allowThrows() ) \
2808             try { \
2809                 static_cast<void>(__VA_ARGS__); \
2810                 catchAssertionHandler.handleUnexpectedExceptionNotThrown(); \
2811             } \
2812             catch( ... ) { \
2813                 Catch::handleExceptionMatchExpr( catchAssertionHandler, matcher, #matcher##_catch_sr ); \
2814             } \
2815         else \
2816             catchAssertionHandler.handleThrowingCallSkipped(); \
2817         INTERNAL_CATCH_REACT( catchAssertionHandler ) \
2818     } while( false )
2819 
2820 #endif // CATCH_CONFIG_DISABLE
2821 
2822 // end catch_capture.hpp
2823 // start catch_section.h
2824 
2825 // start catch_section_info.h
2826 
2827 // start catch_totals.h
2828 
2829 #include <cstddef>
2830 
2831 namespace Catch {
2832 
2833     struct Counts {
2834         Counts operator - ( Counts const& other ) const;
2835         Counts& operator += ( Counts const& other );
2836 
2837         std::size_t total() const;
2838         bool allPassed() const;
2839         bool allOk() const;
2840 
2841         std::size_t passed = 0;
2842         std::size_t failed = 0;
2843         std::size_t failedButOk = 0;
2844     };
2845 
2846     struct Totals {
2847 
2848         Totals operator - ( Totals const& other ) const;
2849         Totals& operator += ( Totals const& other );
2850 
2851         Totals delta( Totals const& prevTotals ) const;
2852 
2853         int error = 0;
2854         Counts assertions;
2855         Counts testCases;
2856     };
2857 }
2858 
2859 // end catch_totals.h
2860 #include <string>
2861 
2862 namespace Catch {
2863 
2864     struct SectionInfo {
2865         SectionInfo
2866             (   SourceLineInfo const& _lineInfo,
2867                 std::string const& _name );
2868 
2869         // Deprecated
SectionInfoCatch::SectionInfo2870         SectionInfo
2871             (   SourceLineInfo const& _lineInfo,
2872                 std::string const& _name,
2873                 std::string const& ) : SectionInfo( _lineInfo, _name ) {}
2874 
2875         std::string name;
2876         std::string description; // !Deprecated: this will always be empty
2877         SourceLineInfo lineInfo;
2878     };
2879 
2880     struct SectionEndInfo {
2881         SectionInfo sectionInfo;
2882         Counts prevAssertions;
2883         double durationInSeconds;
2884     };
2885 
2886 } // end namespace Catch
2887 
2888 // end catch_section_info.h
2889 // start catch_timer.h
2890 
2891 #include <cstdint>
2892 
2893 namespace Catch {
2894 
2895     auto getCurrentNanosecondsSinceEpoch() -> uint64_t;
2896     auto getEstimatedClockResolution() -> uint64_t;
2897 
2898     class Timer {
2899         uint64_t m_nanoseconds = 0;
2900     public:
2901         void start();
2902         auto getElapsedNanoseconds() const -> uint64_t;
2903         auto getElapsedMicroseconds() const -> uint64_t;
2904         auto getElapsedMilliseconds() const -> unsigned int;
2905         auto getElapsedSeconds() const -> double;
2906     };
2907 
2908 } // namespace Catch
2909 
2910 // end catch_timer.h
2911 #include <string>
2912 
2913 namespace Catch {
2914 
2915     class Section : NonCopyable {
2916     public:
2917         Section( SectionInfo const& info );
2918         ~Section();
2919 
2920         // This indicates whether the section should be executed or not
2921         explicit operator bool() const;
2922 
2923     private:
2924         SectionInfo m_info;
2925 
2926         std::string m_name;
2927         Counts m_assertions;
2928         bool m_sectionIncluded;
2929         Timer m_timer;
2930     };
2931 
2932 } // end namespace Catch
2933 
2934 #define INTERNAL_CATCH_SECTION( ... ) \
2935     CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
2936     CATCH_INTERNAL_SUPPRESS_UNUSED_WARNINGS \
2937     if( Catch::Section const& INTERNAL_CATCH_UNIQUE_NAME( catch_internal_Section ) = Catch::SectionInfo( CATCH_INTERNAL_LINEINFO, __VA_ARGS__ ) ) \
2938     CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION
2939 
2940 #define INTERNAL_CATCH_DYNAMIC_SECTION( ... ) \
2941     CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
2942     CATCH_INTERNAL_SUPPRESS_UNUSED_WARNINGS \
2943     if( Catch::Section const& INTERNAL_CATCH_UNIQUE_NAME( catch_internal_Section ) = Catch::SectionInfo( CATCH_INTERNAL_LINEINFO, (Catch::ReusableStringStream() << __VA_ARGS__).str() ) ) \
2944     CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION
2945 
2946 // end catch_section.h
2947 // start catch_interfaces_exception.h
2948 
2949 // start catch_interfaces_registry_hub.h
2950 
2951 #include <string>
2952 #include <memory>
2953 
2954 namespace Catch {
2955 
2956     class TestCase;
2957     struct ITestCaseRegistry;
2958     struct IExceptionTranslatorRegistry;
2959     struct IExceptionTranslator;
2960     struct IReporterRegistry;
2961     struct IReporterFactory;
2962     struct ITagAliasRegistry;
2963     struct IMutableEnumValuesRegistry;
2964 
2965     class StartupExceptionRegistry;
2966 
2967     using IReporterFactoryPtr = std::shared_ptr<IReporterFactory>;
2968 
2969     struct IRegistryHub {
2970         virtual ~IRegistryHub();
2971 
2972         virtual IReporterRegistry const& getReporterRegistry() const = 0;
2973         virtual ITestCaseRegistry const& getTestCaseRegistry() const = 0;
2974         virtual ITagAliasRegistry const& getTagAliasRegistry() const = 0;
2975         virtual IExceptionTranslatorRegistry const& getExceptionTranslatorRegistry() const = 0;
2976 
2977         virtual StartupExceptionRegistry const& getStartupExceptionRegistry() const = 0;
2978     };
2979 
2980     struct IMutableRegistryHub {
2981         virtual ~IMutableRegistryHub();
2982         virtual void registerReporter( std::string const& name, IReporterFactoryPtr const& factory ) = 0;
2983         virtual void registerListener( IReporterFactoryPtr const& factory ) = 0;
2984         virtual void registerTest( TestCase const& testInfo ) = 0;
2985         virtual void registerTranslator( const IExceptionTranslator* translator ) = 0;
2986         virtual void registerTagAlias( std::string const& alias, std::string const& tag, SourceLineInfo const& lineInfo ) = 0;
2987         virtual void registerStartupException() noexcept = 0;
2988         virtual IMutableEnumValuesRegistry& getMutableEnumValuesRegistry() = 0;
2989     };
2990 
2991     IRegistryHub const& getRegistryHub();
2992     IMutableRegistryHub& getMutableRegistryHub();
2993     void cleanUp();
2994     std::string translateActiveException();
2995 
2996 }
2997 
2998 // end catch_interfaces_registry_hub.h
2999 #if defined(CATCH_CONFIG_DISABLE)
3000     #define INTERNAL_CATCH_TRANSLATE_EXCEPTION_NO_REG( translatorName, signature) \
3001         static std::string translatorName( signature )
3002 #endif
3003 
3004 #include <exception>
3005 #include <string>
3006 #include <vector>
3007 
3008 namespace Catch {
3009     using exceptionTranslateFunction = std::string(*)();
3010 
3011     struct IExceptionTranslator;
3012     using ExceptionTranslators = std::vector<std::unique_ptr<IExceptionTranslator const>>;
3013 
3014     struct IExceptionTranslator {
3015         virtual ~IExceptionTranslator();
3016         virtual std::string translate( ExceptionTranslators::const_iterator it, ExceptionTranslators::const_iterator itEnd ) const = 0;
3017     };
3018 
3019     struct IExceptionTranslatorRegistry {
3020         virtual ~IExceptionTranslatorRegistry();
3021 
3022         virtual std::string translateActiveException() const = 0;
3023     };
3024 
3025     class ExceptionTranslatorRegistrar {
3026         template<typename T>
3027         class ExceptionTranslator : public IExceptionTranslator {
3028         public:
3029 
ExceptionTranslator(std::string (* translateFunction)(T &))3030             ExceptionTranslator( std::string(*translateFunction)( T& ) )
3031             : m_translateFunction( translateFunction )
3032             {}
3033 
translate(ExceptionTranslators::const_iterator it,ExceptionTranslators::const_iterator itEnd) const3034             std::string translate( ExceptionTranslators::const_iterator it, ExceptionTranslators::const_iterator itEnd ) const override {
3035 #if defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
3036                 return "";
3037 #else
3038                 try {
3039                     if( it == itEnd )
3040                         std::rethrow_exception(std::current_exception());
3041                     else
3042                         return (*it)->translate( it+1, itEnd );
3043                 }
3044                 catch( T& ex ) {
3045                     return m_translateFunction( ex );
3046                 }
3047 #endif
3048             }
3049 
3050         protected:
3051             std::string(*m_translateFunction)( T& );
3052         };
3053 
3054     public:
3055         template<typename T>
ExceptionTranslatorRegistrar(std::string (* translateFunction)(T &))3056         ExceptionTranslatorRegistrar( std::string(*translateFunction)( T& ) ) {
3057             getMutableRegistryHub().registerTranslator
3058                 ( new ExceptionTranslator<T>( translateFunction ) );
3059         }
3060     };
3061 }
3062 
3063 ///////////////////////////////////////////////////////////////////////////////
3064 #define INTERNAL_CATCH_TRANSLATE_EXCEPTION2( translatorName, signature ) \
3065     static std::string translatorName( signature ); \
3066     CATCH_INTERNAL_START_WARNINGS_SUPPRESSION \
3067     CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS \
3068     namespace{ Catch::ExceptionTranslatorRegistrar INTERNAL_CATCH_UNIQUE_NAME( catch_internal_ExceptionRegistrar )( &translatorName ); } \
3069     CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION \
3070     static std::string translatorName( signature )
3071 
3072 #define INTERNAL_CATCH_TRANSLATE_EXCEPTION( signature ) INTERNAL_CATCH_TRANSLATE_EXCEPTION2( INTERNAL_CATCH_UNIQUE_NAME( catch_internal_ExceptionTranslator ), signature )
3073 
3074 // end catch_interfaces_exception.h
3075 // start catch_approx.h
3076 
3077 #include <type_traits>
3078 
3079 namespace Catch {
3080 namespace Detail {
3081 
3082     class Approx {
3083     private:
3084         bool equalityComparisonImpl(double other) const;
3085         // Validates the new margin (margin >= 0)
3086         // out-of-line to avoid including stdexcept in the header
3087         void setMargin(double margin);
3088         // Validates the new epsilon (0 < epsilon < 1)
3089         // out-of-line to avoid including stdexcept in the header
3090         void setEpsilon(double epsilon);
3091 
3092     public:
3093         explicit Approx ( double value );
3094 
3095         static Approx custom();
3096 
3097         Approx operator-() const;
3098 
3099         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
operator ()(T const & value)3100         Approx operator()( T const& value ) {
3101             Approx approx( static_cast<double>(value) );
3102             approx.m_epsilon = m_epsilon;
3103             approx.m_margin = m_margin;
3104             approx.m_scale = m_scale;
3105             return approx;
3106         }
3107 
3108         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
Approx(T const & value)3109         explicit Approx( T const& value ): Approx(static_cast<double>(value))
3110         {}
3111 
3112         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
operator ==(const T & lhs,Approx const & rhs)3113         friend bool operator == ( const T& lhs, Approx const& rhs ) {
3114             auto lhs_v = static_cast<double>(lhs);
3115             return rhs.equalityComparisonImpl(lhs_v);
3116         }
3117 
3118         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
operator ==(Approx const & lhs,const T & rhs)3119         friend bool operator == ( Approx const& lhs, const T& rhs ) {
3120             return operator==( rhs, lhs );
3121         }
3122 
3123         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
operator !=(T const & lhs,Approx const & rhs)3124         friend bool operator != ( T const& lhs, Approx const& rhs ) {
3125             return !operator==( lhs, rhs );
3126         }
3127 
3128         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
operator !=(Approx const & lhs,T const & rhs)3129         friend bool operator != ( Approx const& lhs, T const& rhs ) {
3130             return !operator==( rhs, lhs );
3131         }
3132 
3133         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
operator <=(T const & lhs,Approx const & rhs)3134         friend bool operator <= ( T const& lhs, Approx const& rhs ) {
3135             return static_cast<double>(lhs) < rhs.m_value || lhs == rhs;
3136         }
3137 
3138         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
operator <=(Approx const & lhs,T const & rhs)3139         friend bool operator <= ( Approx const& lhs, T const& rhs ) {
3140             return lhs.m_value < static_cast<double>(rhs) || lhs == rhs;
3141         }
3142 
3143         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
operator >=(T const & lhs,Approx const & rhs)3144         friend bool operator >= ( T const& lhs, Approx const& rhs ) {
3145             return static_cast<double>(lhs) > rhs.m_value || lhs == rhs;
3146         }
3147 
3148         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
operator >=(Approx const & lhs,T const & rhs)3149         friend bool operator >= ( Approx const& lhs, T const& rhs ) {
3150             return lhs.m_value > static_cast<double>(rhs) || lhs == rhs;
3151         }
3152 
3153         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
epsilon(T const & newEpsilon)3154         Approx& epsilon( T const& newEpsilon ) {
3155             double epsilonAsDouble = static_cast<double>(newEpsilon);
3156             setEpsilon(epsilonAsDouble);
3157             return *this;
3158         }
3159 
3160         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
margin(T const & newMargin)3161         Approx& margin( T const& newMargin ) {
3162             double marginAsDouble = static_cast<double>(newMargin);
3163             setMargin(marginAsDouble);
3164             return *this;
3165         }
3166 
3167         template <typename T, typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
scale(T const & newScale)3168         Approx& scale( T const& newScale ) {
3169             m_scale = static_cast<double>(newScale);
3170             return *this;
3171         }
3172 
3173         std::string toString() const;
3174 
3175     private:
3176         double m_epsilon;
3177         double m_margin;
3178         double m_scale;
3179         double m_value;
3180     };
3181 } // end namespace Detail
3182 
3183 namespace literals {
3184     Detail::Approx operator "" _a(long double val);
3185     Detail::Approx operator "" _a(unsigned long long val);
3186 } // end namespace literals
3187 
3188 template<>
3189 struct StringMaker<Catch::Detail::Approx> {
3190     static std::string convert(Catch::Detail::Approx const& value);
3191 };
3192 
3193 } // end namespace Catch
3194 
3195 // end catch_approx.h
3196 // start catch_string_manip.h
3197 
3198 #include <string>
3199 #include <iosfwd>
3200 #include <vector>
3201 
3202 namespace Catch {
3203 
3204     bool startsWith( std::string const& s, std::string const& prefix );
3205     bool startsWith( std::string const& s, char prefix );
3206     bool endsWith( std::string const& s, std::string const& suffix );
3207     bool endsWith( std::string const& s, char suffix );
3208     bool contains( std::string const& s, std::string const& infix );
3209     void toLowerInPlace( std::string& s );
3210     std::string toLower( std::string const& s );
3211     //! Returns a new string without whitespace at the start/end
3212     std::string trim( std::string const& str );
3213     //! Returns a substring of the original ref without whitespace. Beware lifetimes!
3214     StringRef trim(StringRef ref);
3215 
3216     // !!! Be aware, returns refs into original string - make sure original string outlives them
3217     std::vector<StringRef> splitStringRef( StringRef str, char delimiter );
3218     bool replaceInPlace( std::string& str, std::string const& replaceThis, std::string const& withThis );
3219 
3220     struct pluralise {
3221         pluralise( std::size_t count, std::string const& label );
3222 
3223         friend std::ostream& operator << ( std::ostream& os, pluralise const& pluraliser );
3224 
3225         std::size_t m_count;
3226         std::string m_label;
3227     };
3228 }
3229 
3230 // end catch_string_manip.h
3231 #ifndef CATCH_CONFIG_DISABLE_MATCHERS
3232 // start catch_capture_matchers.h
3233 
3234 // start catch_matchers.h
3235 
3236 #include <string>
3237 #include <vector>
3238 
3239 namespace Catch {
3240 namespace Matchers {
3241     namespace Impl {
3242 
3243         template<typename ArgT> struct MatchAllOf;
3244         template<typename ArgT> struct MatchAnyOf;
3245         template<typename ArgT> struct MatchNotOf;
3246 
3247         class MatcherUntypedBase {
3248         public:
3249             MatcherUntypedBase() = default;
3250             MatcherUntypedBase ( MatcherUntypedBase const& ) = default;
3251             MatcherUntypedBase& operator = ( MatcherUntypedBase const& ) = delete;
3252             std::string toString() const;
3253 
3254         protected:
3255             virtual ~MatcherUntypedBase();
3256             virtual std::string describe() const = 0;
3257             mutable std::string m_cachedToString;
3258         };
3259 
3260 #ifdef __clang__
3261 #    pragma clang diagnostic push
3262 #    pragma clang diagnostic ignored "-Wnon-virtual-dtor"
3263 #endif
3264 
3265         template<typename ObjectT>
3266         struct MatcherMethod {
3267             virtual bool match( ObjectT const& arg ) const = 0;
3268         };
3269 
3270 #if defined(__OBJC__)
3271         // Hack to fix Catch GH issue #1661. Could use id for generic Object support.
3272         // use of const for Object pointers is very uncommon and under ARC it causes some kind of signature mismatch that breaks compilation
3273         template<>
3274         struct MatcherMethod<NSString*> {
3275             virtual bool match( NSString* arg ) const = 0;
3276         };
3277 #endif
3278 
3279 #ifdef __clang__
3280 #    pragma clang diagnostic pop
3281 #endif
3282 
3283         template<typename T>
3284         struct MatcherBase : MatcherUntypedBase, MatcherMethod<T> {
3285 
3286             MatchAllOf<T> operator && ( MatcherBase const& other ) const;
3287             MatchAnyOf<T> operator || ( MatcherBase const& other ) const;
3288             MatchNotOf<T> operator ! () const;
3289         };
3290 
3291         template<typename ArgT>
3292         struct MatchAllOf : MatcherBase<ArgT> {
matchCatch::Matchers::Impl::MatchAllOf3293             bool match( ArgT const& arg ) const override {
3294                 for( auto matcher : m_matchers ) {
3295                     if (!matcher->match(arg))
3296                         return false;
3297                 }
3298                 return true;
3299             }
describeCatch::Matchers::Impl::MatchAllOf3300             std::string describe() const override {
3301                 std::string description;
3302                 description.reserve( 4 + m_matchers.size()*32 );
3303                 description += "( ";
3304                 bool first = true;
3305                 for( auto matcher : m_matchers ) {
3306                     if( first )
3307                         first = false;
3308                     else
3309                         description += " and ";
3310                     description += matcher->toString();
3311                 }
3312                 description += " )";
3313                 return description;
3314             }
3315 
operator &&Catch::Matchers::Impl::MatchAllOf3316             MatchAllOf<ArgT> operator && ( MatcherBase<ArgT> const& other ) {
3317                 auto copy(*this);
3318                 copy.m_matchers.push_back( &other );
3319                 return copy;
3320             }
3321 
3322             std::vector<MatcherBase<ArgT> const*> m_matchers;
3323         };
3324         template<typename ArgT>
3325         struct MatchAnyOf : MatcherBase<ArgT> {
3326 
matchCatch::Matchers::Impl::MatchAnyOf3327             bool match( ArgT const& arg ) const override {
3328                 for( auto matcher : m_matchers ) {
3329                     if (matcher->match(arg))
3330                         return true;
3331                 }
3332                 return false;
3333             }
describeCatch::Matchers::Impl::MatchAnyOf3334             std::string describe() const override {
3335                 std::string description;
3336                 description.reserve( 4 + m_matchers.size()*32 );
3337                 description += "( ";
3338                 bool first = true;
3339                 for( auto matcher : m_matchers ) {
3340                     if( first )
3341                         first = false;
3342                     else
3343                         description += " or ";
3344                     description += matcher->toString();
3345                 }
3346                 description += " )";
3347                 return description;
3348             }
3349 
operator ||Catch::Matchers::Impl::MatchAnyOf3350             MatchAnyOf<ArgT> operator || ( MatcherBase<ArgT> const& other ) {
3351                 auto copy(*this);
3352                 copy.m_matchers.push_back( &other );
3353                 return copy;
3354             }
3355 
3356             std::vector<MatcherBase<ArgT> const*> m_matchers;
3357         };
3358 
3359         template<typename ArgT>
3360         struct MatchNotOf : MatcherBase<ArgT> {
3361 
MatchNotOfCatch::Matchers::Impl::MatchNotOf3362             MatchNotOf( MatcherBase<ArgT> const& underlyingMatcher ) : m_underlyingMatcher( underlyingMatcher ) {}
3363 
matchCatch::Matchers::Impl::MatchNotOf3364             bool match( ArgT const& arg ) const override {
3365                 return !m_underlyingMatcher.match( arg );
3366             }
3367 
describeCatch::Matchers::Impl::MatchNotOf3368             std::string describe() const override {
3369                 return "not " + m_underlyingMatcher.toString();
3370             }
3371             MatcherBase<ArgT> const& m_underlyingMatcher;
3372         };
3373 
3374         template<typename T>
operator &&(MatcherBase const & other) const3375         MatchAllOf<T> MatcherBase<T>::operator && ( MatcherBase const& other ) const {
3376             return MatchAllOf<T>() && *this && other;
3377         }
3378         template<typename T>
operator ||(MatcherBase const & other) const3379         MatchAnyOf<T> MatcherBase<T>::operator || ( MatcherBase const& other ) const {
3380             return MatchAnyOf<T>() || *this || other;
3381         }
3382         template<typename T>
operator !() const3383         MatchNotOf<T> MatcherBase<T>::operator ! () const {
3384             return MatchNotOf<T>( *this );
3385         }
3386 
3387     } // namespace Impl
3388 
3389 } // namespace Matchers
3390 
3391 using namespace Matchers;
3392 using Matchers::Impl::MatcherBase;
3393 
3394 } // namespace Catch
3395 
3396 // end catch_matchers.h
3397 // start catch_matchers_exception.hpp
3398 
3399 namespace Catch {
3400 namespace Matchers {
3401 namespace Exception {
3402 
3403 class ExceptionMessageMatcher : public MatcherBase<std::exception> {
3404     std::string m_message;
3405 public:
3406 
ExceptionMessageMatcher(std::string const & message)3407     ExceptionMessageMatcher(std::string const& message):
3408         m_message(message)
3409     {}
3410 
3411     bool match(std::exception const& ex) const override;
3412 
3413     std::string describe() const override;
3414 };
3415 
3416 } // namespace Exception
3417 
3418 Exception::ExceptionMessageMatcher Message(std::string const& message);
3419 
3420 } // namespace Matchers
3421 } // namespace Catch
3422 
3423 // end catch_matchers_exception.hpp
3424 // start catch_matchers_floating.h
3425 
3426 namespace Catch {
3427 namespace Matchers {
3428 
3429     namespace Floating {
3430 
3431         enum class FloatingPointKind : uint8_t;
3432 
3433         struct WithinAbsMatcher : MatcherBase<double> {
3434             WithinAbsMatcher(double target, double margin);
3435             bool match(double const& matchee) const override;
3436             std::string describe() const override;
3437         private:
3438             double m_target;
3439             double m_margin;
3440         };
3441 
3442         struct WithinUlpsMatcher : MatcherBase<double> {
3443             WithinUlpsMatcher(double target, uint64_t ulps, FloatingPointKind baseType);
3444             bool match(double const& matchee) const override;
3445             std::string describe() const override;
3446         private:
3447             double m_target;
3448             uint64_t m_ulps;
3449             FloatingPointKind m_type;
3450         };
3451 
3452         // Given IEEE-754 format for floats and doubles, we can assume
3453         // that float -> double promotion is lossless. Given this, we can
3454         // assume that if we do the standard relative comparison of
3455         // |lhs - rhs| <= epsilon * max(fabs(lhs), fabs(rhs)), then we get
3456         // the same result if we do this for floats, as if we do this for
3457         // doubles that were promoted from floats.
3458         struct WithinRelMatcher : MatcherBase<double> {
3459             WithinRelMatcher(double target, double epsilon);
3460             bool match(double const& matchee) const override;
3461             std::string describe() const override;
3462         private:
3463             double m_target;
3464             double m_epsilon;
3465         };
3466 
3467     } // namespace Floating
3468 
3469     // The following functions create the actual matcher objects.
3470     // This allows the types to be inferred
3471     Floating::WithinUlpsMatcher WithinULP(double target, uint64_t maxUlpDiff);
3472     Floating::WithinUlpsMatcher WithinULP(float target, uint64_t maxUlpDiff);
3473     Floating::WithinAbsMatcher WithinAbs(double target, double margin);
3474     Floating::WithinRelMatcher WithinRel(double target, double eps);
3475     // defaults epsilon to 100*numeric_limits<double>::epsilon()
3476     Floating::WithinRelMatcher WithinRel(double target);
3477     Floating::WithinRelMatcher WithinRel(float target, float eps);
3478     // defaults epsilon to 100*numeric_limits<float>::epsilon()
3479     Floating::WithinRelMatcher WithinRel(float target);
3480 
3481 } // namespace Matchers
3482 } // namespace Catch
3483 
3484 // end catch_matchers_floating.h
3485 // start catch_matchers_generic.hpp
3486 
3487 #include <functional>
3488 #include <string>
3489 
3490 namespace Catch {
3491 namespace Matchers {
3492 namespace Generic {
3493 
3494 namespace Detail {
3495     std::string finalizeDescription(const std::string& desc);
3496 }
3497 
3498 template <typename T>
3499 class PredicateMatcher : public MatcherBase<T> {
3500     std::function<bool(T const&)> m_predicate;
3501     std::string m_description;
3502 public:
3503 
PredicateMatcher(std::function<bool (T const &)> const & elem,std::string const & descr)3504     PredicateMatcher(std::function<bool(T const&)> const& elem, std::string const& descr)
3505         :m_predicate(std::move(elem)),
3506         m_description(Detail::finalizeDescription(descr))
3507     {}
3508 
match(T const & item) const3509     bool match( T const& item ) const override {
3510         return m_predicate(item);
3511     }
3512 
describe() const3513     std::string describe() const override {
3514         return m_description;
3515     }
3516 };
3517 
3518 } // namespace Generic
3519 
3520     // The following functions create the actual matcher objects.
3521     // The user has to explicitly specify type to the function, because
3522     // inferring std::function<bool(T const&)> is hard (but possible) and
3523     // requires a lot of TMP.
3524     template<typename T>
Predicate(std::function<bool (T const &)> const & predicate,std::string const & description="")3525     Generic::PredicateMatcher<T> Predicate(std::function<bool(T const&)> const& predicate, std::string const& description = "") {
3526         return Generic::PredicateMatcher<T>(predicate, description);
3527     }
3528 
3529 } // namespace Matchers
3530 } // namespace Catch
3531 
3532 // end catch_matchers_generic.hpp
3533 // start catch_matchers_string.h
3534 
3535 #include <string>
3536 
3537 namespace Catch {
3538 namespace Matchers {
3539 
3540     namespace StdString {
3541 
3542         struct CasedString
3543         {
3544             CasedString( std::string const& str, CaseSensitive::Choice caseSensitivity );
3545             std::string adjustString( std::string const& str ) const;
3546             std::string caseSensitivitySuffix() const;
3547 
3548             CaseSensitive::Choice m_caseSensitivity;
3549             std::string m_str;
3550         };
3551 
3552         struct StringMatcherBase : MatcherBase<std::string> {
3553             StringMatcherBase( std::string const& operation, CasedString const& comparator );
3554             std::string describe() const override;
3555 
3556             CasedString m_comparator;
3557             std::string m_operation;
3558         };
3559 
3560         struct EqualsMatcher : StringMatcherBase {
3561             EqualsMatcher( CasedString const& comparator );
3562             bool match( std::string const& source ) const override;
3563         };
3564         struct ContainsMatcher : StringMatcherBase {
3565             ContainsMatcher( CasedString const& comparator );
3566             bool match( std::string const& source ) const override;
3567         };
3568         struct StartsWithMatcher : StringMatcherBase {
3569             StartsWithMatcher( CasedString const& comparator );
3570             bool match( std::string const& source ) const override;
3571         };
3572         struct EndsWithMatcher : StringMatcherBase {
3573             EndsWithMatcher( CasedString const& comparator );
3574             bool match( std::string const& source ) const override;
3575         };
3576 
3577         struct RegexMatcher : MatcherBase<std::string> {
3578             RegexMatcher( std::string regex, CaseSensitive::Choice caseSensitivity );
3579             bool match( std::string const& matchee ) const override;
3580             std::string describe() const override;
3581 
3582         private:
3583             std::string m_regex;
3584             CaseSensitive::Choice m_caseSensitivity;
3585         };
3586 
3587     } // namespace StdString
3588 
3589     // The following functions create the actual matcher objects.
3590     // This allows the types to be inferred
3591 
3592     StdString::EqualsMatcher Equals( std::string const& str, CaseSensitive::Choice caseSensitivity = CaseSensitive::Yes );
3593     StdString::ContainsMatcher Contains( std::string const& str, CaseSensitive::Choice caseSensitivity = CaseSensitive::Yes );
3594     StdString::EndsWithMatcher EndsWith( std::string const& str, CaseSensitive::Choice caseSensitivity = CaseSensitive::Yes );
3595     StdString::StartsWithMatcher StartsWith( std::string const& str, CaseSensitive::Choice caseSensitivity = CaseSensitive::Yes );
3596     StdString::RegexMatcher Matches( std::string const& regex, CaseSensitive::Choice caseSensitivity = CaseSensitive::Yes );
3597 
3598 } // namespace Matchers
3599 } // namespace Catch
3600 
3601 // end catch_matchers_string.h
3602 // start catch_matchers_vector.h
3603 
3604 #include <algorithm>
3605 
3606 namespace Catch {
3607 namespace Matchers {
3608 
3609     namespace Vector {
3610         template<typename T, typename Alloc>
3611         struct ContainsElementMatcher : MatcherBase<std::vector<T, Alloc>> {
3612 
ContainsElementMatcherCatch::Matchers::Vector::ContainsElementMatcher3613             ContainsElementMatcher(T const &comparator) : m_comparator( comparator) {}
3614 
matchCatch::Matchers::Vector::ContainsElementMatcher3615             bool match(std::vector<T, Alloc> const &v) const override {
3616                 for (auto const& el : v) {
3617                     if (el == m_comparator) {
3618                         return true;
3619                     }
3620                 }
3621                 return false;
3622             }
3623 
describeCatch::Matchers::Vector::ContainsElementMatcher3624             std::string describe() const override {
3625                 return "Contains: " + ::Catch::Detail::stringify( m_comparator );
3626             }
3627 
3628             T const& m_comparator;
3629         };
3630 
3631         template<typename T, typename AllocComp, typename AllocMatch>
3632         struct ContainsMatcher : MatcherBase<std::vector<T, AllocMatch>> {
3633 
ContainsMatcherCatch::Matchers::Vector::ContainsMatcher3634             ContainsMatcher(std::vector<T, AllocComp> const &comparator) : m_comparator( comparator ) {}
3635 
matchCatch::Matchers::Vector::ContainsMatcher3636             bool match(std::vector<T, AllocMatch> const &v) const override {
3637                 // !TBD: see note in EqualsMatcher
3638                 if (m_comparator.size() > v.size())
3639                     return false;
3640                 for (auto const& comparator : m_comparator) {
3641                     auto present = false;
3642                     for (const auto& el : v) {
3643                         if (el == comparator) {
3644                             present = true;
3645                             break;
3646                         }
3647                     }
3648                     if (!present) {
3649                         return false;
3650                     }
3651                 }
3652                 return true;
3653             }
describeCatch::Matchers::Vector::ContainsMatcher3654             std::string describe() const override {
3655                 return "Contains: " + ::Catch::Detail::stringify( m_comparator );
3656             }
3657 
3658             std::vector<T, AllocComp> const& m_comparator;
3659         };
3660 
3661         template<typename T, typename AllocComp, typename AllocMatch>
3662         struct EqualsMatcher : MatcherBase<std::vector<T, AllocMatch>> {
3663 
EqualsMatcherCatch::Matchers::Vector::EqualsMatcher3664             EqualsMatcher(std::vector<T, AllocComp> const &comparator) : m_comparator( comparator ) {}
3665 
matchCatch::Matchers::Vector::EqualsMatcher3666             bool match(std::vector<T, AllocMatch> const &v) const override {
3667                 // !TBD: This currently works if all elements can be compared using !=
3668                 // - a more general approach would be via a compare template that defaults
3669                 // to using !=. but could be specialised for, e.g. std::vector<T, Alloc> etc
3670                 // - then just call that directly
3671                 if (m_comparator.size() != v.size())
3672                     return false;
3673                 for (std::size_t i = 0; i < v.size(); ++i)
3674                     if (m_comparator[i] != v[i])
3675                         return false;
3676                 return true;
3677             }
describeCatch::Matchers::Vector::EqualsMatcher3678             std::string describe() const override {
3679                 return "Equals: " + ::Catch::Detail::stringify( m_comparator );
3680             }
3681             std::vector<T, AllocComp> const& m_comparator;
3682         };
3683 
3684         template<typename T, typename AllocComp, typename AllocMatch>
3685         struct ApproxMatcher : MatcherBase<std::vector<T, AllocMatch>> {
3686 
ApproxMatcherCatch::Matchers::Vector::ApproxMatcher3687             ApproxMatcher(std::vector<T, AllocComp> const& comparator) : m_comparator( comparator ) {}
3688 
matchCatch::Matchers::Vector::ApproxMatcher3689             bool match(std::vector<T, AllocMatch> const &v) const override {
3690                 if (m_comparator.size() != v.size())
3691                     return false;
3692                 for (std::size_t i = 0; i < v.size(); ++i)
3693                     if (m_comparator[i] != approx(v[i]))
3694                         return false;
3695                 return true;
3696             }
describeCatch::Matchers::Vector::ApproxMatcher3697             std::string describe() const override {
3698                 return "is approx: " + ::Catch::Detail::stringify( m_comparator );
3699             }
3700             template <typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
epsilonCatch::Matchers::Vector::ApproxMatcher3701             ApproxMatcher& epsilon( T const& newEpsilon ) {
3702                 approx.epsilon(newEpsilon);
3703                 return *this;
3704             }
3705             template <typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
marginCatch::Matchers::Vector::ApproxMatcher3706             ApproxMatcher& margin( T const& newMargin ) {
3707                 approx.margin(newMargin);
3708                 return *this;
3709             }
3710             template <typename = typename std::enable_if<std::is_constructible<double, T>::value>::type>
scaleCatch::Matchers::Vector::ApproxMatcher3711             ApproxMatcher& scale( T const& newScale ) {
3712                 approx.scale(newScale);
3713                 return *this;
3714             }
3715 
3716             std::vector<T, AllocComp> const& m_comparator;
3717             mutable Catch::Detail::Approx approx = Catch::Detail::Approx::custom();
3718         };
3719 
3720         template<typename T, typename AllocComp, typename AllocMatch>
3721         struct UnorderedEqualsMatcher : MatcherBase<std::vector<T, AllocMatch>> {
UnorderedEqualsMatcherCatch::Matchers::Vector::UnorderedEqualsMatcher3722             UnorderedEqualsMatcher(std::vector<T, AllocComp> const& target) : m_target(target) {}
matchCatch::Matchers::Vector::UnorderedEqualsMatcher3723             bool match(std::vector<T, AllocMatch> const& vec) const override {
3724                 if (m_target.size() != vec.size()) {
3725                     return false;
3726                 }
3727                 return std::is_permutation(m_target.begin(), m_target.end(), vec.begin());
3728             }
3729 
describeCatch::Matchers::Vector::UnorderedEqualsMatcher3730             std::string describe() const override {
3731                 return "UnorderedEquals: " + ::Catch::Detail::stringify(m_target);
3732             }
3733         private:
3734             std::vector<T, AllocComp> const& m_target;
3735         };
3736 
3737     } // namespace Vector
3738 
3739     // The following functions create the actual matcher objects.
3740     // This allows the types to be inferred
3741 
3742     template<typename T, typename AllocComp = std::allocator<T>, typename AllocMatch = AllocComp>
Contains(std::vector<T,AllocComp> const & comparator)3743     Vector::ContainsMatcher<T, AllocComp, AllocMatch> Contains( std::vector<T, AllocComp> const& comparator ) {
3744         return Vector::ContainsMatcher<T, AllocComp, AllocMatch>( comparator );
3745     }
3746 
3747     template<typename T, typename Alloc = std::allocator<T>>
VectorContains(T const & comparator)3748     Vector::ContainsElementMatcher<T, Alloc> VectorContains( T const& comparator ) {
3749         return Vector::ContainsElementMatcher<T, Alloc>( comparator );
3750     }
3751 
3752     template<typename T, typename AllocComp = std::allocator<T>, typename AllocMatch = AllocComp>
Equals(std::vector<T,AllocComp> const & comparator)3753     Vector::EqualsMatcher<T, AllocComp, AllocMatch> Equals( std::vector<T, AllocComp> const& comparator ) {
3754         return Vector::EqualsMatcher<T, AllocComp, AllocMatch>( comparator );
3755     }
3756 
3757     template<typename T, typename AllocComp = std::allocator<T>, typename AllocMatch = AllocComp>
Approx(std::vector<T,AllocComp> const & comparator)3758     Vector::ApproxMatcher<T, AllocComp, AllocMatch> Approx( std::vector<T, AllocComp> const& comparator ) {
3759         return Vector::ApproxMatcher<T, AllocComp, AllocMatch>( comparator );
3760     }
3761 
3762     template<typename T, typename AllocComp = std::allocator<T>, typename AllocMatch = AllocComp>
UnorderedEquals(std::vector<T,AllocComp> const & target)3763     Vector::UnorderedEqualsMatcher<T, AllocComp, AllocMatch> UnorderedEquals(std::vector<T, AllocComp> const& target) {
3764         return Vector::UnorderedEqualsMatcher<T, AllocComp, AllocMatch>( target );
3765     }
3766 
3767 } // namespace Matchers
3768 } // namespace Catch
3769 
3770 // end catch_matchers_vector.h
3771 namespace Catch {
3772 
3773     template<typename ArgT, typename MatcherT>
3774     class MatchExpr : public ITransientExpression {
3775         ArgT const& m_arg;
3776         MatcherT m_matcher;
3777         StringRef m_matcherString;
3778     public:
MatchExpr(ArgT const & arg,MatcherT const & matcher,StringRef const & matcherString)3779         MatchExpr( ArgT const& arg, MatcherT const& matcher, StringRef const& matcherString )
3780         :   ITransientExpression{ true, matcher.match( arg ) },
3781             m_arg( arg ),
3782             m_matcher( matcher ),
3783             m_matcherString( matcherString )
3784         {}
3785 
streamReconstructedExpression(std::ostream & os) const3786         void streamReconstructedExpression( std::ostream &os ) const override {
3787             auto matcherAsString = m_matcher.toString();
3788             os << Catch::Detail::stringify( m_arg ) << ' ';
3789             if( matcherAsString == Detail::unprintableString )
3790                 os << m_matcherString;
3791             else
3792                 os << matcherAsString;
3793         }
3794     };
3795 
3796     using StringMatcher = Matchers::Impl::MatcherBase<std::string>;
3797 
3798     void handleExceptionMatchExpr( AssertionHandler& handler, StringMatcher const& matcher, StringRef const& matcherString  );
3799 
3800     template<typename ArgT, typename MatcherT>
makeMatchExpr(ArgT const & arg,MatcherT const & matcher,StringRef const & matcherString)3801     auto makeMatchExpr( ArgT const& arg, MatcherT const& matcher, StringRef const& matcherString  ) -> MatchExpr<ArgT, MatcherT> {
3802         return MatchExpr<ArgT, MatcherT>( arg, matcher, matcherString );
3803     }
3804 
3805 } // namespace Catch
3806 
3807 ///////////////////////////////////////////////////////////////////////////////
3808 #define INTERNAL_CHECK_THAT( macroName, matcher, resultDisposition, arg ) \
3809     do { \
3810         Catch::AssertionHandler catchAssertionHandler( macroName##_catch_sr, CATCH_INTERNAL_LINEINFO, CATCH_INTERNAL_STRINGIFY(arg) ", " CATCH_INTERNAL_STRINGIFY(matcher), resultDisposition ); \
3811         INTERNAL_CATCH_TRY { \
3812             catchAssertionHandler.handleExpr( Catch::makeMatchExpr( arg, matcher, #matcher##_catch_sr ) ); \
3813         } INTERNAL_CATCH_CATCH( catchAssertionHandler ) \
3814         INTERNAL_CATCH_REACT( catchAssertionHandler ) \
3815     } while( false )
3816 
3817 ///////////////////////////////////////////////////////////////////////////////
3818 #define INTERNAL_CATCH_THROWS_MATCHES( macroName, exceptionType, resultDisposition, matcher, ... ) \
3819     do { \
3820         Catch::AssertionHandler catchAssertionHandler( macroName##_catch_sr, CATCH_INTERNAL_LINEINFO, CATCH_INTERNAL_STRINGIFY(__VA_ARGS__) ", " CATCH_INTERNAL_STRINGIFY(exceptionType) ", " CATCH_INTERNAL_STRINGIFY(matcher), resultDisposition ); \
3821         if( catchAssertionHandler.allowThrows() ) \
3822             try { \
3823                 static_cast<void>(__VA_ARGS__ ); \
3824                 catchAssertionHandler.handleUnexpectedExceptionNotThrown(); \
3825             } \
3826             catch( exceptionType const& ex ) { \
3827                 catchAssertionHandler.handleExpr( Catch::makeMatchExpr( ex, matcher, #matcher##_catch_sr ) ); \
3828             } \
3829             catch( ... ) { \
3830                 catchAssertionHandler.handleUnexpectedInflightException(); \
3831             } \
3832         else \
3833             catchAssertionHandler.handleThrowingCallSkipped(); \
3834         INTERNAL_CATCH_REACT( catchAssertionHandler ) \
3835     } while( false )
3836 
3837 // end catch_capture_matchers.h
3838 #endif
3839 // start catch_generators.hpp
3840 
3841 // start catch_interfaces_generatortracker.h
3842 
3843 
3844 #include <memory>
3845 
3846 namespace Catch {
3847 
3848     namespace Generators {
3849         class GeneratorUntypedBase {
3850         public:
3851             GeneratorUntypedBase() = default;
3852             virtual ~GeneratorUntypedBase();
3853             // Attempts to move the generator to the next element
3854              //
3855              // Returns true iff the move succeeded (and a valid element
3856              // can be retrieved).
3857             virtual bool next() = 0;
3858         };
3859         using GeneratorBasePtr = std::unique_ptr<GeneratorUntypedBase>;
3860 
3861     } // namespace Generators
3862 
3863     struct IGeneratorTracker {
3864         virtual ~IGeneratorTracker();
3865         virtual auto hasGenerator() const -> bool = 0;
3866         virtual auto getGenerator() const -> Generators::GeneratorBasePtr const& = 0;
3867         virtual void setGenerator( Generators::GeneratorBasePtr&& generator ) = 0;
3868     };
3869 
3870 } // namespace Catch
3871 
3872 // end catch_interfaces_generatortracker.h
3873 // start catch_enforce.h
3874 
3875 #include <exception>
3876 
3877 namespace Catch {
3878 #if !defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
3879     template <typename Ex>
3880     [[noreturn]]
throw_exception(Ex const & e)3881     void throw_exception(Ex const& e) {
3882         throw e;
3883     }
3884 #else // ^^ Exceptions are enabled //  Exceptions are disabled vv
3885     [[noreturn]]
3886     void throw_exception(std::exception const& e);
3887 #endif
3888 
3889     [[noreturn]]
3890     void throw_logic_error(std::string const& msg);
3891     [[noreturn]]
3892     void throw_domain_error(std::string const& msg);
3893     [[noreturn]]
3894     void throw_runtime_error(std::string const& msg);
3895 
3896 } // namespace Catch;
3897 
3898 #define CATCH_MAKE_MSG(...) \
3899     (Catch::ReusableStringStream() << __VA_ARGS__).str()
3900 
3901 #define CATCH_INTERNAL_ERROR(...) \
3902     Catch::throw_logic_error(CATCH_MAKE_MSG( CATCH_INTERNAL_LINEINFO << ": Internal Catch2 error: " << __VA_ARGS__))
3903 
3904 #define CATCH_ERROR(...) \
3905     Catch::throw_domain_error(CATCH_MAKE_MSG( __VA_ARGS__ ))
3906 
3907 #define CATCH_RUNTIME_ERROR(...) \
3908     Catch::throw_runtime_error(CATCH_MAKE_MSG( __VA_ARGS__ ))
3909 
3910 #define CATCH_ENFORCE( condition, ... ) \
3911     do{ if( !(condition) ) CATCH_ERROR( __VA_ARGS__ ); } while(false)
3912 
3913 // end catch_enforce.h
3914 #include <memory>
3915 #include <vector>
3916 #include <cassert>
3917 
3918 #include <utility>
3919 #include <exception>
3920 
3921 namespace Catch {
3922 
3923 class GeneratorException : public std::exception {
3924     const char* const m_msg = "";
3925 
3926 public:
GeneratorException(const char * msg)3927     GeneratorException(const char* msg):
3928         m_msg(msg)
3929     {}
3930 
3931     const char* what() const noexcept override final;
3932 };
3933 
3934 namespace Generators {
3935 
3936     // !TBD move this into its own location?
3937     namespace pf{
3938         template<typename T, typename... Args>
make_unique(Args &&...args)3939         std::unique_ptr<T> make_unique( Args&&... args ) {
3940             return std::unique_ptr<T>(new T(std::forward<Args>(args)...));
3941         }
3942     }
3943 
3944     template<typename T>
3945     struct IGenerator : GeneratorUntypedBase {
3946         virtual ~IGenerator() = default;
3947 
3948         // Returns the current element of the generator
3949         //
3950         // \Precondition The generator is either freshly constructed,
3951         // or the last call to `next()` returned true
3952         virtual T const& get() const = 0;
3953         using type = T;
3954     };
3955 
3956     template<typename T>
3957     class SingleValueGenerator final : public IGenerator<T> {
3958         T m_value;
3959     public:
SingleValueGenerator(T && value)3960         SingleValueGenerator(T&& value) : m_value(std::move(value)) {}
3961 
get() const3962         T const& get() const override {
3963             return m_value;
3964         }
next()3965         bool next() override {
3966             return false;
3967         }
3968     };
3969 
3970     template<typename T>
3971     class FixedValuesGenerator final : public IGenerator<T> {
3972         static_assert(!std::is_same<T, bool>::value,
3973             "FixedValuesGenerator does not support bools because of std::vector<bool>"
3974             "specialization, use SingleValue Generator instead.");
3975         std::vector<T> m_values;
3976         size_t m_idx = 0;
3977     public:
FixedValuesGenerator(std::initializer_list<T> values)3978         FixedValuesGenerator( std::initializer_list<T> values ) : m_values( values ) {}
3979 
get() const3980         T const& get() const override {
3981             return m_values[m_idx];
3982         }
next()3983         bool next() override {
3984             ++m_idx;
3985             return m_idx < m_values.size();
3986         }
3987     };
3988 
3989     template <typename T>
3990     class GeneratorWrapper final {
3991         std::unique_ptr<IGenerator<T>> m_generator;
3992     public:
GeneratorWrapper(std::unique_ptr<IGenerator<T>> generator)3993         GeneratorWrapper(std::unique_ptr<IGenerator<T>> generator):
3994             m_generator(std::move(generator))
3995         {}
get() const3996         T const& get() const {
3997             return m_generator->get();
3998         }
next()3999         bool next() {
4000             return m_generator->next();
4001         }
4002     };
4003 
4004     template <typename T>
value(T && value)4005     GeneratorWrapper<T> value(T&& value) {
4006         return GeneratorWrapper<T>(pf::make_unique<SingleValueGenerator<T>>(std::forward<T>(value)));
4007     }
4008     template <typename T>
values(std::initializer_list<T> values)4009     GeneratorWrapper<T> values(std::initializer_list<T> values) {
4010         return GeneratorWrapper<T>(pf::make_unique<FixedValuesGenerator<T>>(values));
4011     }
4012 
4013     template<typename T>
4014     class Generators : public IGenerator<T> {
4015         std::vector<GeneratorWrapper<T>> m_generators;
4016         size_t m_current = 0;
4017 
populate(GeneratorWrapper<T> && generator)4018         void populate(GeneratorWrapper<T>&& generator) {
4019             m_generators.emplace_back(std::move(generator));
4020         }
populate(T && val)4021         void populate(T&& val) {
4022             m_generators.emplace_back(value(std::forward<T>(val)));
4023         }
4024         template<typename U>
populate(U && val)4025         void populate(U&& val) {
4026             populate(T(std::forward<U>(val)));
4027         }
4028         template<typename U, typename... Gs>
populate(U && valueOrGenerator,Gs &&...moreGenerators)4029         void populate(U&& valueOrGenerator, Gs &&... moreGenerators) {
4030             populate(std::forward<U>(valueOrGenerator));
4031             populate(std::forward<Gs>(moreGenerators)...);
4032         }
4033 
4034     public:
4035         template <typename... Gs>
Generators(Gs &&...moreGenerators)4036         Generators(Gs &&... moreGenerators) {
4037             m_generators.reserve(sizeof...(Gs));
4038             populate(std::forward<Gs>(moreGenerators)...);
4039         }
4040 
get() const4041         T const& get() const override {
4042             return m_generators[m_current].get();
4043         }
4044 
next()4045         bool next() override {
4046             if (m_current >= m_generators.size()) {
4047                 return false;
4048             }
4049             const bool current_status = m_generators[m_current].next();
4050             if (!current_status) {
4051                 ++m_current;
4052             }
4053             return m_current < m_generators.size();
4054         }
4055     };
4056 
4057     template<typename... Ts>
table(std::initializer_list<std::tuple<typename std::decay<Ts>::type...>> tuples)4058     GeneratorWrapper<std::tuple<Ts...>> table( std::initializer_list<std::tuple<typename std::decay<Ts>::type...>> tuples ) {
4059         return values<std::tuple<Ts...>>( tuples );
4060     }
4061 
4062     // Tag type to signal that a generator sequence should convert arguments to a specific type
4063     template <typename T>
4064     struct as {};
4065 
4066     template<typename T, typename... Gs>
makeGenerators(GeneratorWrapper<T> && generator,Gs &&...moreGenerators)4067     auto makeGenerators( GeneratorWrapper<T>&& generator, Gs &&... moreGenerators ) -> Generators<T> {
4068         return Generators<T>(std::move(generator), std::forward<Gs>(moreGenerators)...);
4069     }
4070     template<typename T>
makeGenerators(GeneratorWrapper<T> && generator)4071     auto makeGenerators( GeneratorWrapper<T>&& generator ) -> Generators<T> {
4072         return Generators<T>(std::move(generator));
4073     }
4074     template<typename T, typename... Gs>
makeGenerators(T && val,Gs &&...moreGenerators)4075     auto makeGenerators( T&& val, Gs &&... moreGenerators ) -> Generators<T> {
4076         return makeGenerators( value( std::forward<T>( val ) ), std::forward<Gs>( moreGenerators )... );
4077     }
4078     template<typename T, typename U, typename... Gs>
makeGenerators(as<T>,U && val,Gs &&...moreGenerators)4079     auto makeGenerators( as<T>, U&& val, Gs &&... moreGenerators ) -> Generators<T> {
4080         return makeGenerators( value( T( std::forward<U>( val ) ) ), std::forward<Gs>( moreGenerators )... );
4081     }
4082 
4083     auto acquireGeneratorTracker( StringRef generatorName, SourceLineInfo const& lineInfo ) -> IGeneratorTracker&;
4084 
4085     template<typename L>
4086     // Note: The type after -> is weird, because VS2015 cannot parse
4087     //       the expression used in the typedef inside, when it is in
4088     //       return type. Yeah.
generate(StringRef generatorName,SourceLineInfo const & lineInfo,L const & generatorExpression)4089     auto generate( StringRef generatorName, SourceLineInfo const& lineInfo, L const& generatorExpression ) -> decltype(std::declval<decltype(generatorExpression())>().get()) {
4090         using UnderlyingType = typename decltype(generatorExpression())::type;
4091 
4092         IGeneratorTracker& tracker = acquireGeneratorTracker( generatorName, lineInfo );
4093         if (!tracker.hasGenerator()) {
4094             tracker.setGenerator(pf::make_unique<Generators<UnderlyingType>>(generatorExpression()));
4095         }
4096 
4097         auto const& generator = static_cast<IGenerator<UnderlyingType> const&>( *tracker.getGenerator() );
4098         return generator.get();
4099     }
4100 
4101 } // namespace Generators
4102 } // namespace Catch
4103 
4104 #define GENERATE( ... ) \
4105     Catch::Generators::generate( INTERNAL_CATCH_STRINGIZE(INTERNAL_CATCH_UNIQUE_NAME(generator)), \
4106                                  CATCH_INTERNAL_LINEINFO, \
4107                                  [ ]{ using namespace Catch::Generators; return makeGenerators( __VA_ARGS__ ); } ) //NOLINT(google-build-using-namespace)
4108 #define GENERATE_COPY( ... ) \
4109     Catch::Generators::generate( INTERNAL_CATCH_STRINGIZE(INTERNAL_CATCH_UNIQUE_NAME(generator)), \
4110                                  CATCH_INTERNAL_LINEINFO, \
4111                                  [=]{ using namespace Catch::Generators; return makeGenerators( __VA_ARGS__ ); } ) //NOLINT(google-build-using-namespace)
4112 #define GENERATE_REF( ... ) \
4113     Catch::Generators::generate( INTERNAL_CATCH_STRINGIZE(INTERNAL_CATCH_UNIQUE_NAME(generator)), \
4114                                  CATCH_INTERNAL_LINEINFO, \
4115                                  [&]{ using namespace Catch::Generators; return makeGenerators( __VA_ARGS__ ); } ) //NOLINT(google-build-using-namespace)
4116 
4117 // end catch_generators.hpp
4118 // start catch_generators_generic.hpp
4119 
4120 namespace Catch {
4121 namespace Generators {
4122 
4123     template <typename T>
4124     class TakeGenerator : public IGenerator<T> {
4125         GeneratorWrapper<T> m_generator;
4126         size_t m_returned = 0;
4127         size_t m_target;
4128     public:
TakeGenerator(size_t target,GeneratorWrapper<T> && generator)4129         TakeGenerator(size_t target, GeneratorWrapper<T>&& generator):
4130             m_generator(std::move(generator)),
4131             m_target(target)
4132         {
4133             assert(target != 0 && "Empty generators are not allowed");
4134         }
get() const4135         T const& get() const override {
4136             return m_generator.get();
4137         }
next()4138         bool next() override {
4139             ++m_returned;
4140             if (m_returned >= m_target) {
4141                 return false;
4142             }
4143 
4144             const auto success = m_generator.next();
4145             // If the underlying generator does not contain enough values
4146             // then we cut short as well
4147             if (!success) {
4148                 m_returned = m_target;
4149             }
4150             return success;
4151         }
4152     };
4153 
4154     template <typename T>
take(size_t target,GeneratorWrapper<T> && generator)4155     GeneratorWrapper<T> take(size_t target, GeneratorWrapper<T>&& generator) {
4156         return GeneratorWrapper<T>(pf::make_unique<TakeGenerator<T>>(target, std::move(generator)));
4157     }
4158 
4159     template <typename T, typename Predicate>
4160     class FilterGenerator : public IGenerator<T> {
4161         GeneratorWrapper<T> m_generator;
4162         Predicate m_predicate;
4163     public:
4164         template <typename P = Predicate>
FilterGenerator(P && pred,GeneratorWrapper<T> && generator)4165         FilterGenerator(P&& pred, GeneratorWrapper<T>&& generator):
4166             m_generator(std::move(generator)),
4167             m_predicate(std::forward<P>(pred))
4168         {
4169             if (!m_predicate(m_generator.get())) {
4170                 // It might happen that there are no values that pass the
4171                 // filter. In that case we throw an exception.
4172                 auto has_initial_value = next();
4173                 if (!has_initial_value) {
4174                     Catch::throw_exception(GeneratorException("No valid value found in filtered generator"));
4175                 }
4176             }
4177         }
4178 
get() const4179         T const& get() const override {
4180             return m_generator.get();
4181         }
4182 
next()4183         bool next() override {
4184             bool success = m_generator.next();
4185             if (!success) {
4186                 return false;
4187             }
4188             while (!m_predicate(m_generator.get()) && (success = m_generator.next()) == true);
4189             return success;
4190         }
4191     };
4192 
4193     template <typename T, typename Predicate>
filter(Predicate && pred,GeneratorWrapper<T> && generator)4194     GeneratorWrapper<T> filter(Predicate&& pred, GeneratorWrapper<T>&& generator) {
4195         return GeneratorWrapper<T>(std::unique_ptr<IGenerator<T>>(pf::make_unique<FilterGenerator<T, Predicate>>(std::forward<Predicate>(pred), std::move(generator))));
4196     }
4197 
4198     template <typename T>
4199     class RepeatGenerator : public IGenerator<T> {
4200         static_assert(!std::is_same<T, bool>::value,
4201             "RepeatGenerator currently does not support bools"
4202             "because of std::vector<bool> specialization");
4203         GeneratorWrapper<T> m_generator;
4204         mutable std::vector<T> m_returned;
4205         size_t m_target_repeats;
4206         size_t m_current_repeat = 0;
4207         size_t m_repeat_index = 0;
4208     public:
RepeatGenerator(size_t repeats,GeneratorWrapper<T> && generator)4209         RepeatGenerator(size_t repeats, GeneratorWrapper<T>&& generator):
4210             m_generator(std::move(generator)),
4211             m_target_repeats(repeats)
4212         {
4213             assert(m_target_repeats > 0 && "Repeat generator must repeat at least once");
4214         }
4215 
get() const4216         T const& get() const override {
4217             if (m_current_repeat == 0) {
4218                 m_returned.push_back(m_generator.get());
4219                 return m_returned.back();
4220             }
4221             return m_returned[m_repeat_index];
4222         }
4223 
next()4224         bool next() override {
4225             // There are 2 basic cases:
4226             // 1) We are still reading the generator
4227             // 2) We are reading our own cache
4228 
4229             // In the first case, we need to poke the underlying generator.
4230             // If it happily moves, we are left in that state, otherwise it is time to start reading from our cache
4231             if (m_current_repeat == 0) {
4232                 const auto success = m_generator.next();
4233                 if (!success) {
4234                     ++m_current_repeat;
4235                 }
4236                 return m_current_repeat < m_target_repeats;
4237             }
4238 
4239             // In the second case, we need to move indices forward and check that we haven't run up against the end
4240             ++m_repeat_index;
4241             if (m_repeat_index == m_returned.size()) {
4242                 m_repeat_index = 0;
4243                 ++m_current_repeat;
4244             }
4245             return m_current_repeat < m_target_repeats;
4246         }
4247     };
4248 
4249     template <typename T>
repeat(size_t repeats,GeneratorWrapper<T> && generator)4250     GeneratorWrapper<T> repeat(size_t repeats, GeneratorWrapper<T>&& generator) {
4251         return GeneratorWrapper<T>(pf::make_unique<RepeatGenerator<T>>(repeats, std::move(generator)));
4252     }
4253 
4254     template <typename T, typename U, typename Func>
4255     class MapGenerator : public IGenerator<T> {
4256         // TBD: provide static assert for mapping function, for friendly error message
4257         GeneratorWrapper<U> m_generator;
4258         Func m_function;
4259         // To avoid returning dangling reference, we have to save the values
4260         T m_cache;
4261     public:
4262         template <typename F2 = Func>
MapGenerator(F2 && function,GeneratorWrapper<U> && generator)4263         MapGenerator(F2&& function, GeneratorWrapper<U>&& generator) :
4264             m_generator(std::move(generator)),
4265             m_function(std::forward<F2>(function)),
4266             m_cache(m_function(m_generator.get()))
4267         {}
4268 
get() const4269         T const& get() const override {
4270             return m_cache;
4271         }
next()4272         bool next() override {
4273             const auto success = m_generator.next();
4274             if (success) {
4275                 m_cache = m_function(m_generator.get());
4276             }
4277             return success;
4278         }
4279     };
4280 
4281     template <typename Func, typename U, typename T = FunctionReturnType<Func, U>>
map(Func && function,GeneratorWrapper<U> && generator)4282     GeneratorWrapper<T> map(Func&& function, GeneratorWrapper<U>&& generator) {
4283         return GeneratorWrapper<T>(
4284             pf::make_unique<MapGenerator<T, U, Func>>(std::forward<Func>(function), std::move(generator))
4285         );
4286     }
4287 
4288     template <typename T, typename U, typename Func>
map(Func && function,GeneratorWrapper<U> && generator)4289     GeneratorWrapper<T> map(Func&& function, GeneratorWrapper<U>&& generator) {
4290         return GeneratorWrapper<T>(
4291             pf::make_unique<MapGenerator<T, U, Func>>(std::forward<Func>(function), std::move(generator))
4292         );
4293     }
4294 
4295     template <typename T>
4296     class ChunkGenerator final : public IGenerator<std::vector<T>> {
4297         std::vector<T> m_chunk;
4298         size_t m_chunk_size;
4299         GeneratorWrapper<T> m_generator;
4300         bool m_used_up = false;
4301     public:
ChunkGenerator(size_t size,GeneratorWrapper<T> generator)4302         ChunkGenerator(size_t size, GeneratorWrapper<T> generator) :
4303             m_chunk_size(size), m_generator(std::move(generator))
4304         {
4305             m_chunk.reserve(m_chunk_size);
4306             if (m_chunk_size != 0) {
4307                 m_chunk.push_back(m_generator.get());
4308                 for (size_t i = 1; i < m_chunk_size; ++i) {
4309                     if (!m_generator.next()) {
4310                         Catch::throw_exception(GeneratorException("Not enough values to initialize the first chunk"));
4311                     }
4312                     m_chunk.push_back(m_generator.get());
4313                 }
4314             }
4315         }
get() const4316         std::vector<T> const& get() const override {
4317             return m_chunk;
4318         }
next()4319         bool next() override {
4320             m_chunk.clear();
4321             for (size_t idx = 0; idx < m_chunk_size; ++idx) {
4322                 if (!m_generator.next()) {
4323                     return false;
4324                 }
4325                 m_chunk.push_back(m_generator.get());
4326             }
4327             return true;
4328         }
4329     };
4330 
4331     template <typename T>
chunk(size_t size,GeneratorWrapper<T> && generator)4332     GeneratorWrapper<std::vector<T>> chunk(size_t size, GeneratorWrapper<T>&& generator) {
4333         return GeneratorWrapper<std::vector<T>>(
4334             pf::make_unique<ChunkGenerator<T>>(size, std::move(generator))
4335         );
4336     }
4337 
4338 } // namespace Generators
4339 } // namespace Catch
4340 
4341 // end catch_generators_generic.hpp
4342 // start catch_generators_specific.hpp
4343 
4344 // start catch_context.h
4345 
4346 #include <memory>
4347 
4348 namespace Catch {
4349 
4350     struct IResultCapture;
4351     struct IRunner;
4352     struct IConfig;
4353     struct IMutableContext;
4354 
4355     using IConfigPtr = std::shared_ptr<IConfig const>;
4356 
4357     struct IContext
4358     {
4359         virtual ~IContext();
4360 
4361         virtual IResultCapture* getResultCapture() = 0;
4362         virtual IRunner* getRunner() = 0;
4363         virtual IConfigPtr const& getConfig() const = 0;
4364     };
4365 
4366     struct IMutableContext : IContext
4367     {
4368         virtual ~IMutableContext();
4369         virtual void setResultCapture( IResultCapture* resultCapture ) = 0;
4370         virtual void setRunner( IRunner* runner ) = 0;
4371         virtual void setConfig( IConfigPtr const& config ) = 0;
4372 
4373     private:
4374         static IMutableContext *currentContext;
4375         friend IMutableContext& getCurrentMutableContext();
4376         friend void cleanUpContext();
4377         static void createContext();
4378     };
4379 
getCurrentMutableContext()4380     inline IMutableContext& getCurrentMutableContext()
4381     {
4382         if( !IMutableContext::currentContext )
4383             IMutableContext::createContext();
4384         // NOLINTNEXTLINE(clang-analyzer-core.uninitialized.UndefReturn)
4385         return *IMutableContext::currentContext;
4386     }
4387 
getCurrentContext()4388     inline IContext& getCurrentContext()
4389     {
4390         return getCurrentMutableContext();
4391     }
4392 
4393     void cleanUpContext();
4394 
4395     class SimplePcg32;
4396     SimplePcg32& rng();
4397 }
4398 
4399 // end catch_context.h
4400 // start catch_interfaces_config.h
4401 
4402 // start catch_option.hpp
4403 
4404 namespace Catch {
4405 
4406     // An optional type
4407     template<typename T>
4408     class Option {
4409     public:
Option()4410         Option() : nullableValue( nullptr ) {}
Option(T const & _value)4411         Option( T const& _value )
4412         : nullableValue( new( storage ) T( _value ) )
4413         {}
Option(Option const & _other)4414         Option( Option const& _other )
4415         : nullableValue( _other ? new( storage ) T( *_other ) : nullptr )
4416         {}
4417 
~Option()4418         ~Option() {
4419             reset();
4420         }
4421 
operator =(Option const & _other)4422         Option& operator= ( Option const& _other ) {
4423             if( &_other != this ) {
4424                 reset();
4425                 if( _other )
4426                     nullableValue = new( storage ) T( *_other );
4427             }
4428             return *this;
4429         }
operator =(T const & _value)4430         Option& operator = ( T const& _value ) {
4431             reset();
4432             nullableValue = new( storage ) T( _value );
4433             return *this;
4434         }
4435 
reset()4436         void reset() {
4437             if( nullableValue )
4438                 nullableValue->~T();
4439             nullableValue = nullptr;
4440         }
4441 
operator *()4442         T& operator*() { return *nullableValue; }
operator *() const4443         T const& operator*() const { return *nullableValue; }
operator ->()4444         T* operator->() { return nullableValue; }
operator ->() const4445         const T* operator->() const { return nullableValue; }
4446 
valueOr(T const & defaultValue) const4447         T valueOr( T const& defaultValue ) const {
4448             return nullableValue ? *nullableValue : defaultValue;
4449         }
4450 
some() const4451         bool some() const { return nullableValue != nullptr; }
none() const4452         bool none() const { return nullableValue == nullptr; }
4453 
operator !() const4454         bool operator !() const { return nullableValue == nullptr; }
operator bool() const4455         explicit operator bool() const {
4456             return some();
4457         }
4458 
4459     private:
4460         T *nullableValue;
4461         alignas(alignof(T)) char storage[sizeof(T)];
4462     };
4463 
4464 } // end namespace Catch
4465 
4466 // end catch_option.hpp
4467 #include <chrono>
4468 #include <iosfwd>
4469 #include <string>
4470 #include <vector>
4471 #include <memory>
4472 
4473 namespace Catch {
4474 
4475     enum class Verbosity {
4476         Quiet = 0,
4477         Normal,
4478         High
4479     };
4480 
4481     struct WarnAbout { enum What {
4482         Nothing = 0x00,
4483         NoAssertions = 0x01,
4484         NoTests = 0x02
4485     }; };
4486 
4487     struct ShowDurations { enum OrNot {
4488         DefaultForReporter,
4489         Always,
4490         Never
4491     }; };
4492     struct RunTests { enum InWhatOrder {
4493         InDeclarationOrder,
4494         InLexicographicalOrder,
4495         InRandomOrder
4496     }; };
4497     struct UseColour { enum YesOrNo {
4498         Auto,
4499         Yes,
4500         No
4501     }; };
4502     struct WaitForKeypress { enum When {
4503         Never,
4504         BeforeStart = 1,
4505         BeforeExit = 2,
4506         BeforeStartAndExit = BeforeStart | BeforeExit
4507     }; };
4508 
4509     class TestSpec;
4510 
4511     struct IConfig : NonCopyable {
4512 
4513         virtual ~IConfig();
4514 
4515         virtual bool allowThrows() const = 0;
4516         virtual std::ostream& stream() const = 0;
4517         virtual std::string name() const = 0;
4518         virtual bool includeSuccessfulResults() const = 0;
4519         virtual bool shouldDebugBreak() const = 0;
4520         virtual bool warnAboutMissingAssertions() const = 0;
4521         virtual bool warnAboutNoTests() const = 0;
4522         virtual int abortAfter() const = 0;
4523         virtual bool showInvisibles() const = 0;
4524         virtual ShowDurations::OrNot showDurations() const = 0;
4525         virtual double minDuration() const = 0;
4526         virtual TestSpec const& testSpec() const = 0;
4527         virtual bool hasTestFilters() const = 0;
4528         virtual std::vector<std::string> const& getTestsOrTags() const = 0;
4529         virtual RunTests::InWhatOrder runOrder() const = 0;
4530         virtual unsigned int rngSeed() const = 0;
4531         virtual UseColour::YesOrNo useColour() const = 0;
4532         virtual std::vector<std::string> const& getSectionsToRun() const = 0;
4533         virtual Verbosity verbosity() const = 0;
4534 
4535         virtual bool benchmarkNoAnalysis() const = 0;
4536         virtual int benchmarkSamples() const = 0;
4537         virtual double benchmarkConfidenceInterval() const = 0;
4538         virtual unsigned int benchmarkResamples() const = 0;
4539         virtual std::chrono::milliseconds benchmarkWarmupTime() const = 0;
4540     };
4541 
4542     using IConfigPtr = std::shared_ptr<IConfig const>;
4543 }
4544 
4545 // end catch_interfaces_config.h
4546 // start catch_random_number_generator.h
4547 
4548 #include <cstdint>
4549 
4550 namespace Catch {
4551 
4552     // This is a simple implementation of C++11 Uniform Random Number
4553     // Generator. It does not provide all operators, because Catch2
4554     // does not use it, but it should behave as expected inside stdlib's
4555     // distributions.
4556     // The implementation is based on the PCG family (http://pcg-random.org)
4557     class SimplePcg32 {
4558         using state_type = std::uint64_t;
4559     public:
4560         using result_type = std::uint32_t;
result_type(min)4561         static constexpr result_type (min)() {
4562             return 0;
4563         }
result_type(max)4564         static constexpr result_type (max)() {
4565             return static_cast<result_type>(-1);
4566         }
4567 
4568         // Provide some default initial state for the default constructor
SimplePcg32()4569         SimplePcg32():SimplePcg32(0xed743cc4U) {}
4570 
4571         explicit SimplePcg32(result_type seed_);
4572 
4573         void seed(result_type seed_);
4574         void discard(uint64_t skip);
4575 
4576         result_type operator()();
4577 
4578     private:
4579         friend bool operator==(SimplePcg32 const& lhs, SimplePcg32 const& rhs);
4580         friend bool operator!=(SimplePcg32 const& lhs, SimplePcg32 const& rhs);
4581 
4582         // In theory we also need operator<< and operator>>
4583         // In practice we do not use them, so we will skip them for now
4584 
4585         std::uint64_t m_state;
4586         // This part of the state determines which "stream" of the numbers
4587         // is chosen -- we take it as a constant for Catch2, so we only
4588         // need to deal with seeding the main state.
4589         // Picked by reading 8 bytes from `/dev/random` :-)
4590         static const std::uint64_t s_inc = (0x13ed0cc53f939476ULL << 1ULL) | 1ULL;
4591     };
4592 
4593 } // end namespace Catch
4594 
4595 // end catch_random_number_generator.h
4596 #include <random>
4597 
4598 namespace Catch {
4599 namespace Generators {
4600 
4601 template <typename Float>
4602 class RandomFloatingGenerator final : public IGenerator<Float> {
4603     Catch::SimplePcg32& m_rng;
4604     std::uniform_real_distribution<Float> m_dist;
4605     Float m_current_number;
4606 public:
4607 
RandomFloatingGenerator(Float a,Float b)4608     RandomFloatingGenerator(Float a, Float b):
4609         m_rng(rng()),
4610         m_dist(a, b) {
4611         static_cast<void>(next());
4612     }
4613 
get() const4614     Float const& get() const override {
4615         return m_current_number;
4616     }
next()4617     bool next() override {
4618         m_current_number = m_dist(m_rng);
4619         return true;
4620     }
4621 };
4622 
4623 template <typename Integer>
4624 class RandomIntegerGenerator final : public IGenerator<Integer> {
4625     Catch::SimplePcg32& m_rng;
4626     std::uniform_int_distribution<Integer> m_dist;
4627     Integer m_current_number;
4628 public:
4629 
RandomIntegerGenerator(Integer a,Integer b)4630     RandomIntegerGenerator(Integer a, Integer b):
4631         m_rng(rng()),
4632         m_dist(a, b) {
4633         static_cast<void>(next());
4634     }
4635 
get() const4636     Integer const& get() const override {
4637         return m_current_number;
4638     }
next()4639     bool next() override {
4640         m_current_number = m_dist(m_rng);
4641         return true;
4642     }
4643 };
4644 
4645 // TODO: Ideally this would be also constrained against the various char types,
4646 //       but I don't expect users to run into that in practice.
4647 template <typename T>
4648 typename std::enable_if<std::is_integral<T>::value && !std::is_same<T, bool>::value,
4649 GeneratorWrapper<T>>::type
random(T a,T b)4650 random(T a, T b) {
4651     return GeneratorWrapper<T>(
4652         pf::make_unique<RandomIntegerGenerator<T>>(a, b)
4653     );
4654 }
4655 
4656 template <typename T>
4657 typename std::enable_if<std::is_floating_point<T>::value,
4658 GeneratorWrapper<T>>::type
random(T a,T b)4659 random(T a, T b) {
4660     return GeneratorWrapper<T>(
4661         pf::make_unique<RandomFloatingGenerator<T>>(a, b)
4662     );
4663 }
4664 
4665 template <typename T>
4666 class RangeGenerator final : public IGenerator<T> {
4667     T m_current;
4668     T m_end;
4669     T m_step;
4670     bool m_positive;
4671 
4672 public:
RangeGenerator(T const & start,T const & end,T const & step)4673     RangeGenerator(T const& start, T const& end, T const& step):
4674         m_current(start),
4675         m_end(end),
4676         m_step(step),
4677         m_positive(m_step > T(0))
4678     {
4679         assert(m_current != m_end && "Range start and end cannot be equal");
4680         assert(m_step != T(0) && "Step size cannot be zero");
4681         assert(((m_positive && m_current <= m_end) || (!m_positive && m_current >= m_end)) && "Step moves away from end");
4682     }
4683 
RangeGenerator(T const & start,T const & end)4684     RangeGenerator(T const& start, T const& end):
4685         RangeGenerator(start, end, (start < end) ? T(1) : T(-1))
4686     {}
4687 
get() const4688     T const& get() const override {
4689         return m_current;
4690     }
4691 
next()4692     bool next() override {
4693         m_current += m_step;
4694         return (m_positive) ? (m_current < m_end) : (m_current > m_end);
4695     }
4696 };
4697 
4698 template <typename T>
range(T const & start,T const & end,T const & step)4699 GeneratorWrapper<T> range(T const& start, T const& end, T const& step) {
4700     static_assert(std::is_arithmetic<T>::value && !std::is_same<T, bool>::value, "Type must be numeric");
4701     return GeneratorWrapper<T>(pf::make_unique<RangeGenerator<T>>(start, end, step));
4702 }
4703 
4704 template <typename T>
range(T const & start,T const & end)4705 GeneratorWrapper<T> range(T const& start, T const& end) {
4706     static_assert(std::is_integral<T>::value && !std::is_same<T, bool>::value, "Type must be an integer");
4707     return GeneratorWrapper<T>(pf::make_unique<RangeGenerator<T>>(start, end));
4708 }
4709 
4710 template <typename T>
4711 class IteratorGenerator final : public IGenerator<T> {
4712     static_assert(!std::is_same<T, bool>::value,
4713         "IteratorGenerator currently does not support bools"
4714         "because of std::vector<bool> specialization");
4715 
4716     std::vector<T> m_elems;
4717     size_t m_current = 0;
4718 public:
4719     template <typename InputIterator, typename InputSentinel>
IteratorGenerator(InputIterator first,InputSentinel last)4720     IteratorGenerator(InputIterator first, InputSentinel last):m_elems(first, last) {
4721         if (m_elems.empty()) {
4722             Catch::throw_exception(GeneratorException("IteratorGenerator received no valid values"));
4723         }
4724     }
4725 
get() const4726     T const& get() const override {
4727         return m_elems[m_current];
4728     }
4729 
next()4730     bool next() override {
4731         ++m_current;
4732         return m_current != m_elems.size();
4733     }
4734 };
4735 
4736 template <typename InputIterator,
4737           typename InputSentinel,
4738           typename ResultType = typename std::iterator_traits<InputIterator>::value_type>
from_range(InputIterator from,InputSentinel to)4739 GeneratorWrapper<ResultType> from_range(InputIterator from, InputSentinel to) {
4740     return GeneratorWrapper<ResultType>(pf::make_unique<IteratorGenerator<ResultType>>(from, to));
4741 }
4742 
4743 template <typename Container,
4744           typename ResultType = typename Container::value_type>
from_range(Container const & cnt)4745 GeneratorWrapper<ResultType> from_range(Container const& cnt) {
4746     return GeneratorWrapper<ResultType>(pf::make_unique<IteratorGenerator<ResultType>>(cnt.begin(), cnt.end()));
4747 }
4748 
4749 } // namespace Generators
4750 } // namespace Catch
4751 
4752 // end catch_generators_specific.hpp
4753 
4754 // These files are included here so the single_include script doesn't put them
4755 // in the conditionally compiled sections
4756 // start catch_test_case_info.h
4757 
4758 #include <string>
4759 #include <vector>
4760 #include <memory>
4761 
4762 #ifdef __clang__
4763 #pragma clang diagnostic push
4764 #pragma clang diagnostic ignored "-Wpadded"
4765 #endif
4766 
4767 namespace Catch {
4768 
4769     struct ITestInvoker;
4770 
4771     struct TestCaseInfo {
4772         enum SpecialProperties{
4773             None = 0,
4774             IsHidden = 1 << 1,
4775             ShouldFail = 1 << 2,
4776             MayFail = 1 << 3,
4777             Throws = 1 << 4,
4778             NonPortable = 1 << 5,
4779             Benchmark = 1 << 6
4780         };
4781 
4782         TestCaseInfo(   std::string const& _name,
4783                         std::string const& _className,
4784                         std::string const& _description,
4785                         std::vector<std::string> const& _tags,
4786                         SourceLineInfo const& _lineInfo );
4787 
4788         friend void setTags( TestCaseInfo& testCaseInfo, std::vector<std::string> tags );
4789 
4790         bool isHidden() const;
4791         bool throws() const;
4792         bool okToFail() const;
4793         bool expectedToFail() const;
4794 
4795         std::string tagsAsString() const;
4796 
4797         std::string name;
4798         std::string className;
4799         std::string description;
4800         std::vector<std::string> tags;
4801         std::vector<std::string> lcaseTags;
4802         SourceLineInfo lineInfo;
4803         SpecialProperties properties;
4804     };
4805 
4806     class TestCase : public TestCaseInfo {
4807     public:
4808 
4809         TestCase( ITestInvoker* testCase, TestCaseInfo&& info );
4810 
4811         TestCase withName( std::string const& _newName ) const;
4812 
4813         void invoke() const;
4814 
4815         TestCaseInfo const& getTestCaseInfo() const;
4816 
4817         bool operator == ( TestCase const& other ) const;
4818         bool operator < ( TestCase const& other ) const;
4819 
4820     private:
4821         std::shared_ptr<ITestInvoker> test;
4822     };
4823 
4824     TestCase makeTestCase(  ITestInvoker* testCase,
4825                             std::string const& className,
4826                             NameAndTags const& nameAndTags,
4827                             SourceLineInfo const& lineInfo );
4828 }
4829 
4830 #ifdef __clang__
4831 #pragma clang diagnostic pop
4832 #endif
4833 
4834 // end catch_test_case_info.h
4835 // start catch_interfaces_runner.h
4836 
4837 namespace Catch {
4838 
4839     struct IRunner {
4840         virtual ~IRunner();
4841         virtual bool aborting() const = 0;
4842     };
4843 }
4844 
4845 // end catch_interfaces_runner.h
4846 
4847 #ifdef __OBJC__
4848 // start catch_objc.hpp
4849 
4850 #import <objc/runtime.h>
4851 
4852 #include <string>
4853 
4854 // NB. Any general catch headers included here must be included
4855 // in catch.hpp first to make sure they are included by the single
4856 // header for non obj-usage
4857 
4858 ///////////////////////////////////////////////////////////////////////////////
4859 // This protocol is really only here for (self) documenting purposes, since
4860 // all its methods are optional.
4861 @protocol OcFixture
4862 
4863 @optional
4864 
4865 -(void) setUp;
4866 -(void) tearDown;
4867 
4868 @end
4869 
4870 namespace Catch {
4871 
4872     class OcMethod : public ITestInvoker {
4873 
4874     public:
OcMethod(Class cls,SEL sel)4875         OcMethod( Class cls, SEL sel ) : m_cls( cls ), m_sel( sel ) {}
4876 
invoke() const4877         virtual void invoke() const {
4878             id obj = [[m_cls alloc] init];
4879 
4880             performOptionalSelector( obj, @selector(setUp)  );
4881             performOptionalSelector( obj, m_sel );
4882             performOptionalSelector( obj, @selector(tearDown)  );
4883 
4884             arcSafeRelease( obj );
4885         }
4886     private:
~OcMethod()4887         virtual ~OcMethod() {}
4888 
4889         Class m_cls;
4890         SEL m_sel;
4891     };
4892 
4893     namespace Detail{
4894 
getAnnotation(Class cls,std::string const & annotationName,std::string const & testCaseName)4895         inline std::string getAnnotation(   Class cls,
4896                                             std::string const& annotationName,
4897                                             std::string const& testCaseName ) {
4898             NSString* selStr = [[NSString alloc] initWithFormat:@"Catch_%s_%s", annotationName.c_str(), testCaseName.c_str()];
4899             SEL sel = NSSelectorFromString( selStr );
4900             arcSafeRelease( selStr );
4901             id value = performOptionalSelector( cls, sel );
4902             if( value )
4903                 return [(NSString*)value UTF8String];
4904             return "";
4905         }
4906     }
4907 
registerTestMethods()4908     inline std::size_t registerTestMethods() {
4909         std::size_t noTestMethods = 0;
4910         int noClasses = objc_getClassList( nullptr, 0 );
4911 
4912         Class* classes = (CATCH_UNSAFE_UNRETAINED Class *)malloc( sizeof(Class) * noClasses);
4913         objc_getClassList( classes, noClasses );
4914 
4915         for( int c = 0; c < noClasses; c++ ) {
4916             Class cls = classes[c];
4917             {
4918                 u_int count;
4919                 Method* methods = class_copyMethodList( cls, &count );
4920                 for( u_int m = 0; m < count ; m++ ) {
4921                     SEL selector = method_getName(methods[m]);
4922                     std::string methodName = sel_getName(selector);
4923                     if( startsWith( methodName, "Catch_TestCase_" ) ) {
4924                         std::string testCaseName = methodName.substr( 15 );
4925                         std::string name = Detail::getAnnotation( cls, "Name", testCaseName );
4926                         std::string desc = Detail::getAnnotation( cls, "Description", testCaseName );
4927                         const char* className = class_getName( cls );
4928 
4929                         getMutableRegistryHub().registerTest( makeTestCase( new OcMethod( cls, selector ), className, NameAndTags( name.c_str(), desc.c_str() ), SourceLineInfo("",0) ) );
4930                         noTestMethods++;
4931                     }
4932                 }
4933                 free(methods);
4934             }
4935         }
4936         return noTestMethods;
4937     }
4938 
4939 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
4940 
4941     namespace Matchers {
4942         namespace Impl {
4943         namespace NSStringMatchers {
4944 
4945             struct StringHolder : MatcherBase<NSString*>{
StringHolderCatch::Matchers::Impl::NSStringMatchers::StringHolder4946                 StringHolder( NSString* substr ) : m_substr( [substr copy] ){}
StringHolderCatch::Matchers::Impl::NSStringMatchers::StringHolder4947                 StringHolder( StringHolder const& other ) : m_substr( [other.m_substr copy] ){}
StringHolderCatch::Matchers::Impl::NSStringMatchers::StringHolder4948                 StringHolder() {
4949                     arcSafeRelease( m_substr );
4950                 }
4951 
matchCatch::Matchers::Impl::NSStringMatchers::StringHolder4952                 bool match( NSString* str ) const override {
4953                     return false;
4954                 }
4955 
4956                 NSString* CATCH_ARC_STRONG m_substr;
4957             };
4958 
4959             struct Equals : StringHolder {
EqualsCatch::Matchers::Impl::NSStringMatchers::Equals4960                 Equals( NSString* substr ) : StringHolder( substr ){}
4961 
matchCatch::Matchers::Impl::NSStringMatchers::Equals4962                 bool match( NSString* str ) const override {
4963                     return  (str != nil || m_substr == nil ) &&
4964                             [str isEqualToString:m_substr];
4965                 }
4966 
describeCatch::Matchers::Impl::NSStringMatchers::Equals4967                 std::string describe() const override {
4968                     return "equals string: " + Catch::Detail::stringify( m_substr );
4969                 }
4970             };
4971 
4972             struct Contains : StringHolder {
ContainsCatch::Matchers::Impl::NSStringMatchers::Contains4973                 Contains( NSString* substr ) : StringHolder( substr ){}
4974 
matchCatch::Matchers::Impl::NSStringMatchers::Contains4975                 bool match( NSString* str ) const override {
4976                     return  (str != nil || m_substr == nil ) &&
4977                             [str rangeOfString:m_substr].location != NSNotFound;
4978                 }
4979 
describeCatch::Matchers::Impl::NSStringMatchers::Contains4980                 std::string describe() const override {
4981                     return "contains string: " + Catch::Detail::stringify( m_substr );
4982                 }
4983             };
4984 
4985             struct StartsWith : StringHolder {
StartsWithCatch::Matchers::Impl::NSStringMatchers::StartsWith4986                 StartsWith( NSString* substr ) : StringHolder( substr ){}
4987 
matchCatch::Matchers::Impl::NSStringMatchers::StartsWith4988                 bool match( NSString* str ) const override {
4989                     return  (str != nil || m_substr == nil ) &&
4990                             [str rangeOfString:m_substr].location == 0;
4991                 }
4992 
describeCatch::Matchers::Impl::NSStringMatchers::StartsWith4993                 std::string describe() const override {
4994                     return "starts with: " + Catch::Detail::stringify( m_substr );
4995                 }
4996             };
4997             struct EndsWith : StringHolder {
EndsWithCatch::Matchers::Impl::NSStringMatchers::EndsWith4998                 EndsWith( NSString* substr ) : StringHolder( substr ){}
4999 
matchCatch::Matchers::Impl::NSStringMatchers::EndsWith5000                 bool match( NSString* str ) const override {
5001                     return  (str != nil || m_substr == nil ) &&
5002                             [str rangeOfString:m_substr].location == [str length] - [m_substr length];
5003                 }
5004 
describeCatch::Matchers::Impl::NSStringMatchers::EndsWith5005                 std::string describe() const override {
5006                     return "ends with: " + Catch::Detail::stringify( m_substr );
5007                 }
5008             };
5009 
5010         } // namespace NSStringMatchers
5011         } // namespace Impl
5012 
5013         inline Impl::NSStringMatchers::Equals
Equals(NSString * substr)5014             Equals( NSString* substr ){ return Impl::NSStringMatchers::Equals( substr ); }
5015 
5016         inline Impl::NSStringMatchers::Contains
Contains(NSString * substr)5017             Contains( NSString* substr ){ return Impl::NSStringMatchers::Contains( substr ); }
5018 
5019         inline Impl::NSStringMatchers::StartsWith
StartsWith(NSString * substr)5020             StartsWith( NSString* substr ){ return Impl::NSStringMatchers::StartsWith( substr ); }
5021 
5022         inline Impl::NSStringMatchers::EndsWith
EndsWith(NSString * substr)5023             EndsWith( NSString* substr ){ return Impl::NSStringMatchers::EndsWith( substr ); }
5024 
5025     } // namespace Matchers
5026 
5027     using namespace Matchers;
5028 
5029 #endif // CATCH_CONFIG_DISABLE_MATCHERS
5030 
5031 } // namespace Catch
5032 
5033 ///////////////////////////////////////////////////////////////////////////////
5034 #define OC_MAKE_UNIQUE_NAME( root, uniqueSuffix ) root##uniqueSuffix
5035 #define OC_TEST_CASE2( name, desc, uniqueSuffix ) \
5036 +(NSString*) OC_MAKE_UNIQUE_NAME( Catch_Name_test_, uniqueSuffix ) \
5037 { \
5038 return @ name; \
5039 } \
5040 +(NSString*) OC_MAKE_UNIQUE_NAME( Catch_Description_test_, uniqueSuffix ) \
5041 { \
5042 return @ desc; \
5043 } \
5044 -(void) OC_MAKE_UNIQUE_NAME( Catch_TestCase_test_, uniqueSuffix )
5045 
5046 #define OC_TEST_CASE( name, desc ) OC_TEST_CASE2( name, desc, __LINE__ )
5047 
5048 // end catch_objc.hpp
5049 #endif
5050 
5051 // Benchmarking needs the externally-facing parts of reporters to work
5052 #if defined(CATCH_CONFIG_EXTERNAL_INTERFACES) || defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
5053 // start catch_external_interfaces.h
5054 
5055 // start catch_reporter_bases.hpp
5056 
5057 // start catch_interfaces_reporter.h
5058 
5059 // start catch_config.hpp
5060 
5061 // start catch_test_spec_parser.h
5062 
5063 #ifdef __clang__
5064 #pragma clang diagnostic push
5065 #pragma clang diagnostic ignored "-Wpadded"
5066 #endif
5067 
5068 // start catch_test_spec.h
5069 
5070 #ifdef __clang__
5071 #pragma clang diagnostic push
5072 #pragma clang diagnostic ignored "-Wpadded"
5073 #endif
5074 
5075 // start catch_wildcard_pattern.h
5076 
5077 namespace Catch
5078 {
5079     class WildcardPattern {
5080         enum WildcardPosition {
5081             NoWildcard = 0,
5082             WildcardAtStart = 1,
5083             WildcardAtEnd = 2,
5084             WildcardAtBothEnds = WildcardAtStart | WildcardAtEnd
5085         };
5086 
5087     public:
5088 
5089         WildcardPattern( std::string const& pattern, CaseSensitive::Choice caseSensitivity );
5090         virtual ~WildcardPattern() = default;
5091         virtual bool matches( std::string const& str ) const;
5092 
5093     private:
5094         std::string normaliseString( std::string const& str ) const;
5095         CaseSensitive::Choice m_caseSensitivity;
5096         WildcardPosition m_wildcard = NoWildcard;
5097         std::string m_pattern;
5098     };
5099 }
5100 
5101 // end catch_wildcard_pattern.h
5102 #include <string>
5103 #include <vector>
5104 #include <memory>
5105 
5106 namespace Catch {
5107 
5108     struct IConfig;
5109 
5110     class TestSpec {
5111         class Pattern {
5112         public:
5113             explicit Pattern( std::string const& name );
5114             virtual ~Pattern();
5115             virtual bool matches( TestCaseInfo const& testCase ) const = 0;
5116             std::string const& name() const;
5117         private:
5118             std::string const m_name;
5119         };
5120         using PatternPtr = std::shared_ptr<Pattern>;
5121 
5122         class NamePattern : public Pattern {
5123         public:
5124             explicit NamePattern( std::string const& name, std::string const& filterString );
5125             bool matches( TestCaseInfo const& testCase ) const override;
5126         private:
5127             WildcardPattern m_wildcardPattern;
5128         };
5129 
5130         class TagPattern : public Pattern {
5131         public:
5132             explicit TagPattern( std::string const& tag, std::string const& filterString );
5133             bool matches( TestCaseInfo const& testCase ) const override;
5134         private:
5135             std::string m_tag;
5136         };
5137 
5138         class ExcludedPattern : public Pattern {
5139         public:
5140             explicit ExcludedPattern( PatternPtr const& underlyingPattern );
5141             bool matches( TestCaseInfo const& testCase ) const override;
5142         private:
5143             PatternPtr m_underlyingPattern;
5144         };
5145 
5146         struct Filter {
5147             std::vector<PatternPtr> m_patterns;
5148 
5149             bool matches( TestCaseInfo const& testCase ) const;
5150             std::string name() const;
5151         };
5152 
5153     public:
5154         struct FilterMatch {
5155             std::string name;
5156             std::vector<TestCase const*> tests;
5157         };
5158         using Matches = std::vector<FilterMatch>;
5159         using vectorStrings = std::vector<std::string>;
5160 
5161         bool hasFilters() const;
5162         bool matches( TestCaseInfo const& testCase ) const;
5163         Matches matchesByFilter( std::vector<TestCase> const& testCases, IConfig const& config ) const;
5164         const vectorStrings & getInvalidArgs() const;
5165 
5166     private:
5167         std::vector<Filter> m_filters;
5168         std::vector<std::string> m_invalidArgs;
5169         friend class TestSpecParser;
5170     };
5171 }
5172 
5173 #ifdef __clang__
5174 #pragma clang diagnostic pop
5175 #endif
5176 
5177 // end catch_test_spec.h
5178 // start catch_interfaces_tag_alias_registry.h
5179 
5180 #include <string>
5181 
5182 namespace Catch {
5183 
5184     struct TagAlias;
5185 
5186     struct ITagAliasRegistry {
5187         virtual ~ITagAliasRegistry();
5188         // Nullptr if not present
5189         virtual TagAlias const* find( std::string const& alias ) const = 0;
5190         virtual std::string expandAliases( std::string const& unexpandedTestSpec ) const = 0;
5191 
5192         static ITagAliasRegistry const& get();
5193     };
5194 
5195 } // end namespace Catch
5196 
5197 // end catch_interfaces_tag_alias_registry.h
5198 namespace Catch {
5199 
5200     class TestSpecParser {
5201         enum Mode{ None, Name, QuotedName, Tag, EscapedName };
5202         Mode m_mode = None;
5203         Mode lastMode = None;
5204         bool m_exclusion = false;
5205         std::size_t m_pos = 0;
5206         std::size_t m_realPatternPos = 0;
5207         std::string m_arg;
5208         std::string m_substring;
5209         std::string m_patternName;
5210         std::vector<std::size_t> m_escapeChars;
5211         TestSpec::Filter m_currentFilter;
5212         TestSpec m_testSpec;
5213         ITagAliasRegistry const* m_tagAliases = nullptr;
5214 
5215     public:
5216         TestSpecParser( ITagAliasRegistry const& tagAliases );
5217 
5218         TestSpecParser& parse( std::string const& arg );
5219         TestSpec testSpec();
5220 
5221     private:
5222         bool visitChar( char c );
5223         void startNewMode( Mode mode );
5224         bool processNoneChar( char c );
5225         void processNameChar( char c );
5226         bool processOtherChar( char c );
5227         void endMode();
5228         void escape();
5229         bool isControlChar( char c ) const;
5230         void saveLastMode();
5231         void revertBackToLastMode();
5232         void addFilter();
5233         bool separate();
5234 
5235         // Handles common preprocessing of the pattern for name/tag patterns
5236         std::string preprocessPattern();
5237         // Adds the current pattern as a test name
5238         void addNamePattern();
5239         // Adds the current pattern as a tag
5240         void addTagPattern();
5241 
addCharToPattern(char c)5242         inline void addCharToPattern(char c) {
5243             m_substring += c;
5244             m_patternName += c;
5245             m_realPatternPos++;
5246         }
5247 
5248     };
5249     TestSpec parseTestSpec( std::string const& arg );
5250 
5251 } // namespace Catch
5252 
5253 #ifdef __clang__
5254 #pragma clang diagnostic pop
5255 #endif
5256 
5257 // end catch_test_spec_parser.h
5258 // Libstdc++ doesn't like incomplete classes for unique_ptr
5259 
5260 #include <memory>
5261 #include <vector>
5262 #include <string>
5263 
5264 #ifndef CATCH_CONFIG_CONSOLE_WIDTH
5265 #define CATCH_CONFIG_CONSOLE_WIDTH 80
5266 #endif
5267 
5268 namespace Catch {
5269 
5270     struct IStream;
5271 
5272     struct ConfigData {
5273         bool listTests = false;
5274         bool listTags = false;
5275         bool listReporters = false;
5276         bool listTestNamesOnly = false;
5277 
5278         bool showSuccessfulTests = false;
5279         bool shouldDebugBreak = false;
5280         bool noThrow = false;
5281         bool showHelp = false;
5282         bool showInvisibles = false;
5283         bool filenamesAsTags = false;
5284         bool libIdentify = false;
5285 
5286         int abortAfter = -1;
5287         unsigned int rngSeed = 0;
5288 
5289         bool benchmarkNoAnalysis = false;
5290         unsigned int benchmarkSamples = 100;
5291         double benchmarkConfidenceInterval = 0.95;
5292         unsigned int benchmarkResamples = 100000;
5293         std::chrono::milliseconds::rep benchmarkWarmupTime = 100;
5294 
5295         Verbosity verbosity = Verbosity::Normal;
5296         WarnAbout::What warnings = WarnAbout::Nothing;
5297         ShowDurations::OrNot showDurations = ShowDurations::DefaultForReporter;
5298         double minDuration = -1;
5299         RunTests::InWhatOrder runOrder = RunTests::InDeclarationOrder;
5300         UseColour::YesOrNo useColour = UseColour::Auto;
5301         WaitForKeypress::When waitForKeypress = WaitForKeypress::Never;
5302 
5303         std::string outputFilename;
5304         std::string name;
5305         std::string processName;
5306 #ifndef CATCH_CONFIG_DEFAULT_REPORTER
5307 #define CATCH_CONFIG_DEFAULT_REPORTER "console"
5308 #endif
5309         std::string reporterName = CATCH_CONFIG_DEFAULT_REPORTER;
5310 #undef CATCH_CONFIG_DEFAULT_REPORTER
5311 
5312         std::vector<std::string> testsOrTags;
5313         std::vector<std::string> sectionsToRun;
5314     };
5315 
5316     class Config : public IConfig {
5317     public:
5318 
5319         Config() = default;
5320         Config( ConfigData const& data );
5321         virtual ~Config() = default;
5322 
5323         std::string const& getFilename() const;
5324 
5325         bool listTests() const;
5326         bool listTestNamesOnly() const;
5327         bool listTags() const;
5328         bool listReporters() const;
5329 
5330         std::string getProcessName() const;
5331         std::string const& getReporterName() const;
5332 
5333         std::vector<std::string> const& getTestsOrTags() const override;
5334         std::vector<std::string> const& getSectionsToRun() const override;
5335 
5336         TestSpec const& testSpec() const override;
5337         bool hasTestFilters() const override;
5338 
5339         bool showHelp() const;
5340 
5341         // IConfig interface
5342         bool allowThrows() const override;
5343         std::ostream& stream() const override;
5344         std::string name() const override;
5345         bool includeSuccessfulResults() const override;
5346         bool warnAboutMissingAssertions() const override;
5347         bool warnAboutNoTests() const override;
5348         ShowDurations::OrNot showDurations() const override;
5349         double minDuration() const override;
5350         RunTests::InWhatOrder runOrder() const override;
5351         unsigned int rngSeed() const override;
5352         UseColour::YesOrNo useColour() const override;
5353         bool shouldDebugBreak() const override;
5354         int abortAfter() const override;
5355         bool showInvisibles() const override;
5356         Verbosity verbosity() const override;
5357         bool benchmarkNoAnalysis() const override;
5358         int benchmarkSamples() const override;
5359         double benchmarkConfidenceInterval() const override;
5360         unsigned int benchmarkResamples() const override;
5361         std::chrono::milliseconds benchmarkWarmupTime() const override;
5362 
5363     private:
5364 
5365         IStream const* openStream();
5366         ConfigData m_data;
5367 
5368         std::unique_ptr<IStream const> m_stream;
5369         TestSpec m_testSpec;
5370         bool m_hasTestFilters = false;
5371     };
5372 
5373 } // end namespace Catch
5374 
5375 // end catch_config.hpp
5376 // start catch_assertionresult.h
5377 
5378 #include <string>
5379 
5380 namespace Catch {
5381 
5382     struct AssertionResultData
5383     {
5384         AssertionResultData() = delete;
5385 
5386         AssertionResultData( ResultWas::OfType _resultType, LazyExpression const& _lazyExpression );
5387 
5388         std::string message;
5389         mutable std::string reconstructedExpression;
5390         LazyExpression lazyExpression;
5391         ResultWas::OfType resultType;
5392 
5393         std::string reconstructExpression() const;
5394     };
5395 
5396     class AssertionResult {
5397     public:
5398         AssertionResult() = delete;
5399         AssertionResult( AssertionInfo const& info, AssertionResultData const& data );
5400 
5401         bool isOk() const;
5402         bool succeeded() const;
5403         ResultWas::OfType getResultType() const;
5404         bool hasExpression() const;
5405         bool hasMessage() const;
5406         std::string getExpression() const;
5407         std::string getExpressionInMacro() const;
5408         bool hasExpandedExpression() const;
5409         std::string getExpandedExpression() const;
5410         std::string getMessage() const;
5411         SourceLineInfo getSourceInfo() const;
5412         StringRef getTestMacroName() const;
5413 
5414     //protected:
5415         AssertionInfo m_info;
5416         AssertionResultData m_resultData;
5417     };
5418 
5419 } // end namespace Catch
5420 
5421 // end catch_assertionresult.h
5422 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
5423 // start catch_estimate.hpp
5424 
5425  // Statistics estimates
5426 
5427 
5428 namespace Catch {
5429     namespace Benchmark {
5430         template <typename Duration>
5431         struct Estimate {
5432             Duration point;
5433             Duration lower_bound;
5434             Duration upper_bound;
5435             double confidence_interval;
5436 
5437             template <typename Duration2>
operator Estimate<Duration2>Catch::Benchmark::Estimate5438             operator Estimate<Duration2>() const {
5439                 return { point, lower_bound, upper_bound, confidence_interval };
5440             }
5441         };
5442     } // namespace Benchmark
5443 } // namespace Catch
5444 
5445 // end catch_estimate.hpp
5446 // start catch_outlier_classification.hpp
5447 
5448 // Outlier information
5449 
5450 namespace Catch {
5451     namespace Benchmark {
5452         struct OutlierClassification {
5453             int samples_seen = 0;
5454             int low_severe = 0;     // more than 3 times IQR below Q1
5455             int low_mild = 0;       // 1.5 to 3 times IQR below Q1
5456             int high_mild = 0;      // 1.5 to 3 times IQR above Q3
5457             int high_severe = 0;    // more than 3 times IQR above Q3
5458 
totalCatch::Benchmark::OutlierClassification5459             int total() const {
5460                 return low_severe + low_mild + high_mild + high_severe;
5461             }
5462         };
5463     } // namespace Benchmark
5464 } // namespace Catch
5465 
5466 // end catch_outlier_classification.hpp
5467 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
5468 
5469 #include <string>
5470 #include <iosfwd>
5471 #include <map>
5472 #include <set>
5473 #include <memory>
5474 #include <algorithm>
5475 
5476 namespace Catch {
5477 
5478     struct ReporterConfig {
5479         explicit ReporterConfig( IConfigPtr const& _fullConfig );
5480 
5481         ReporterConfig( IConfigPtr const& _fullConfig, std::ostream& _stream );
5482 
5483         std::ostream& stream() const;
5484         IConfigPtr fullConfig() const;
5485 
5486     private:
5487         std::ostream* m_stream;
5488         IConfigPtr m_fullConfig;
5489     };
5490 
5491     struct ReporterPreferences {
5492         bool shouldRedirectStdOut = false;
5493         bool shouldReportAllAssertions = false;
5494     };
5495 
5496     template<typename T>
5497     struct LazyStat : Option<T> {
operator =Catch::LazyStat5498         LazyStat& operator=( T const& _value ) {
5499             Option<T>::operator=( _value );
5500             used = false;
5501             return *this;
5502         }
resetCatch::LazyStat5503         void reset() {
5504             Option<T>::reset();
5505             used = false;
5506         }
5507         bool used = false;
5508     };
5509 
5510     struct TestRunInfo {
5511         TestRunInfo( std::string const& _name );
5512         std::string name;
5513     };
5514     struct GroupInfo {
5515         GroupInfo(  std::string const& _name,
5516                     std::size_t _groupIndex,
5517                     std::size_t _groupsCount );
5518 
5519         std::string name;
5520         std::size_t groupIndex;
5521         std::size_t groupsCounts;
5522     };
5523 
5524     struct AssertionStats {
5525         AssertionStats( AssertionResult const& _assertionResult,
5526                         std::vector<MessageInfo> const& _infoMessages,
5527                         Totals const& _totals );
5528 
5529         AssertionStats( AssertionStats const& )              = default;
5530         AssertionStats( AssertionStats && )                  = default;
5531         AssertionStats& operator = ( AssertionStats const& ) = delete;
5532         AssertionStats& operator = ( AssertionStats && )     = delete;
5533         virtual ~AssertionStats();
5534 
5535         AssertionResult assertionResult;
5536         std::vector<MessageInfo> infoMessages;
5537         Totals totals;
5538     };
5539 
5540     struct SectionStats {
5541         SectionStats(   SectionInfo const& _sectionInfo,
5542                         Counts const& _assertions,
5543                         double _durationInSeconds,
5544                         bool _missingAssertions );
5545         SectionStats( SectionStats const& )              = default;
5546         SectionStats( SectionStats && )                  = default;
5547         SectionStats& operator = ( SectionStats const& ) = default;
5548         SectionStats& operator = ( SectionStats && )     = default;
5549         virtual ~SectionStats();
5550 
5551         SectionInfo sectionInfo;
5552         Counts assertions;
5553         double durationInSeconds;
5554         bool missingAssertions;
5555     };
5556 
5557     struct TestCaseStats {
5558         TestCaseStats(  TestCaseInfo const& _testInfo,
5559                         Totals const& _totals,
5560                         std::string const& _stdOut,
5561                         std::string const& _stdErr,
5562                         bool _aborting );
5563 
5564         TestCaseStats( TestCaseStats const& )              = default;
5565         TestCaseStats( TestCaseStats && )                  = default;
5566         TestCaseStats& operator = ( TestCaseStats const& ) = default;
5567         TestCaseStats& operator = ( TestCaseStats && )     = default;
5568         virtual ~TestCaseStats();
5569 
5570         TestCaseInfo testInfo;
5571         Totals totals;
5572         std::string stdOut;
5573         std::string stdErr;
5574         bool aborting;
5575     };
5576 
5577     struct TestGroupStats {
5578         TestGroupStats( GroupInfo const& _groupInfo,
5579                         Totals const& _totals,
5580                         bool _aborting );
5581         TestGroupStats( GroupInfo const& _groupInfo );
5582 
5583         TestGroupStats( TestGroupStats const& )              = default;
5584         TestGroupStats( TestGroupStats && )                  = default;
5585         TestGroupStats& operator = ( TestGroupStats const& ) = default;
5586         TestGroupStats& operator = ( TestGroupStats && )     = default;
5587         virtual ~TestGroupStats();
5588 
5589         GroupInfo groupInfo;
5590         Totals totals;
5591         bool aborting;
5592     };
5593 
5594     struct TestRunStats {
5595         TestRunStats(   TestRunInfo const& _runInfo,
5596                         Totals const& _totals,
5597                         bool _aborting );
5598 
5599         TestRunStats( TestRunStats const& )              = default;
5600         TestRunStats( TestRunStats && )                  = default;
5601         TestRunStats& operator = ( TestRunStats const& ) = default;
5602         TestRunStats& operator = ( TestRunStats && )     = default;
5603         virtual ~TestRunStats();
5604 
5605         TestRunInfo runInfo;
5606         Totals totals;
5607         bool aborting;
5608     };
5609 
5610 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
5611     struct BenchmarkInfo {
5612         std::string name;
5613         double estimatedDuration;
5614         int iterations;
5615         int samples;
5616         unsigned int resamples;
5617         double clockResolution;
5618         double clockCost;
5619     };
5620 
5621     template <class Duration>
5622     struct BenchmarkStats {
5623         BenchmarkInfo info;
5624 
5625         std::vector<Duration> samples;
5626         Benchmark::Estimate<Duration> mean;
5627         Benchmark::Estimate<Duration> standardDeviation;
5628         Benchmark::OutlierClassification outliers;
5629         double outlierVariance;
5630 
5631         template <typename Duration2>
operator BenchmarkStats<Duration2>Catch::BenchmarkStats5632         operator BenchmarkStats<Duration2>() const {
5633             std::vector<Duration2> samples2;
5634             samples2.reserve(samples.size());
5635             std::transform(samples.begin(), samples.end(), std::back_inserter(samples2), [](Duration d) { return Duration2(d); });
5636             return {
5637                 info,
5638                 std::move(samples2),
5639                 mean,
5640                 standardDeviation,
5641                 outliers,
5642                 outlierVariance,
5643             };
5644         }
5645     };
5646 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
5647 
5648     struct IStreamingReporter {
5649         virtual ~IStreamingReporter() = default;
5650 
5651         // Implementing class must also provide the following static methods:
5652         // static std::string getDescription();
5653         // static std::set<Verbosity> getSupportedVerbosities()
5654 
5655         virtual ReporterPreferences getPreferences() const = 0;
5656 
5657         virtual void noMatchingTestCases( std::string const& spec ) = 0;
5658 
reportInvalidArgumentsCatch::IStreamingReporter5659         virtual void reportInvalidArguments(std::string const&) {}
5660 
5661         virtual void testRunStarting( TestRunInfo const& testRunInfo ) = 0;
5662         virtual void testGroupStarting( GroupInfo const& groupInfo ) = 0;
5663 
5664         virtual void testCaseStarting( TestCaseInfo const& testInfo ) = 0;
5665         virtual void sectionStarting( SectionInfo const& sectionInfo ) = 0;
5666 
5667 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
benchmarkPreparingCatch::IStreamingReporter5668         virtual void benchmarkPreparing( std::string const& ) {}
benchmarkStartingCatch::IStreamingReporter5669         virtual void benchmarkStarting( BenchmarkInfo const& ) {}
benchmarkEndedCatch::IStreamingReporter5670         virtual void benchmarkEnded( BenchmarkStats<> const& ) {}
benchmarkFailedCatch::IStreamingReporter5671         virtual void benchmarkFailed( std::string const& ) {}
5672 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
5673 
5674         virtual void assertionStarting( AssertionInfo const& assertionInfo ) = 0;
5675 
5676         // The return value indicates if the messages buffer should be cleared:
5677         virtual bool assertionEnded( AssertionStats const& assertionStats ) = 0;
5678 
5679         virtual void sectionEnded( SectionStats const& sectionStats ) = 0;
5680         virtual void testCaseEnded( TestCaseStats const& testCaseStats ) = 0;
5681         virtual void testGroupEnded( TestGroupStats const& testGroupStats ) = 0;
5682         virtual void testRunEnded( TestRunStats const& testRunStats ) = 0;
5683 
5684         virtual void skipTest( TestCaseInfo const& testInfo ) = 0;
5685 
5686         // Default empty implementation provided
5687         virtual void fatalErrorEncountered( StringRef name );
5688 
5689         virtual bool isMulti() const;
5690     };
5691     using IStreamingReporterPtr = std::unique_ptr<IStreamingReporter>;
5692 
5693     struct IReporterFactory {
5694         virtual ~IReporterFactory();
5695         virtual IStreamingReporterPtr create( ReporterConfig const& config ) const = 0;
5696         virtual std::string getDescription() const = 0;
5697     };
5698     using IReporterFactoryPtr = std::shared_ptr<IReporterFactory>;
5699 
5700     struct IReporterRegistry {
5701         using FactoryMap = std::map<std::string, IReporterFactoryPtr>;
5702         using Listeners = std::vector<IReporterFactoryPtr>;
5703 
5704         virtual ~IReporterRegistry();
5705         virtual IStreamingReporterPtr create( std::string const& name, IConfigPtr const& config ) const = 0;
5706         virtual FactoryMap const& getFactories() const = 0;
5707         virtual Listeners const& getListeners() const = 0;
5708     };
5709 
5710 } // end namespace Catch
5711 
5712 // end catch_interfaces_reporter.h
5713 #include <algorithm>
5714 #include <cstring>
5715 #include <cfloat>
5716 #include <cstdio>
5717 #include <cassert>
5718 #include <memory>
5719 #include <ostream>
5720 
5721 namespace Catch {
5722     void prepareExpandedExpression(AssertionResult& result);
5723 
5724     // Returns double formatted as %.3f (format expected on output)
5725     std::string getFormattedDuration( double duration );
5726 
5727     //! Should the reporter show
5728     bool shouldShowDuration( IConfig const& config, double duration );
5729 
5730     std::string serializeFilters( std::vector<std::string> const& container );
5731 
5732     template<typename DerivedT>
5733     struct StreamingReporterBase : IStreamingReporter {
5734 
StreamingReporterBaseCatch::StreamingReporterBase5735         StreamingReporterBase( ReporterConfig const& _config )
5736         :   m_config( _config.fullConfig() ),
5737             stream( _config.stream() )
5738         {
5739             m_reporterPrefs.shouldRedirectStdOut = false;
5740             if( !DerivedT::getSupportedVerbosities().count( m_config->verbosity() ) )
5741                 CATCH_ERROR( "Verbosity level not supported by this reporter" );
5742         }
5743 
getPreferencesCatch::StreamingReporterBase5744         ReporterPreferences getPreferences() const override {
5745             return m_reporterPrefs;
5746         }
5747 
getSupportedVerbositiesCatch::StreamingReporterBase5748         static std::set<Verbosity> getSupportedVerbosities() {
5749             return { Verbosity::Normal };
5750         }
5751 
5752         ~StreamingReporterBase() override = default;
5753 
noMatchingTestCasesCatch::StreamingReporterBase5754         void noMatchingTestCases(std::string const&) override {}
5755 
reportInvalidArgumentsCatch::StreamingReporterBase5756         void reportInvalidArguments(std::string const&) override {}
5757 
testRunStartingCatch::StreamingReporterBase5758         void testRunStarting(TestRunInfo const& _testRunInfo) override {
5759             currentTestRunInfo = _testRunInfo;
5760         }
5761 
testGroupStartingCatch::StreamingReporterBase5762         void testGroupStarting(GroupInfo const& _groupInfo) override {
5763             currentGroupInfo = _groupInfo;
5764         }
5765 
testCaseStartingCatch::StreamingReporterBase5766         void testCaseStarting(TestCaseInfo const& _testInfo) override  {
5767             currentTestCaseInfo = _testInfo;
5768         }
sectionStartingCatch::StreamingReporterBase5769         void sectionStarting(SectionInfo const& _sectionInfo) override {
5770             m_sectionStack.push_back(_sectionInfo);
5771         }
5772 
sectionEndedCatch::StreamingReporterBase5773         void sectionEnded(SectionStats const& /* _sectionStats */) override {
5774             m_sectionStack.pop_back();
5775         }
testCaseEndedCatch::StreamingReporterBase5776         void testCaseEnded(TestCaseStats const& /* _testCaseStats */) override {
5777             currentTestCaseInfo.reset();
5778         }
testGroupEndedCatch::StreamingReporterBase5779         void testGroupEnded(TestGroupStats const& /* _testGroupStats */) override {
5780             currentGroupInfo.reset();
5781         }
testRunEndedCatch::StreamingReporterBase5782         void testRunEnded(TestRunStats const& /* _testRunStats */) override {
5783             currentTestCaseInfo.reset();
5784             currentGroupInfo.reset();
5785             currentTestRunInfo.reset();
5786         }
5787 
skipTestCatch::StreamingReporterBase5788         void skipTest(TestCaseInfo const&) override {
5789             // Don't do anything with this by default.
5790             // It can optionally be overridden in the derived class.
5791         }
5792 
5793         IConfigPtr m_config;
5794         std::ostream& stream;
5795 
5796         LazyStat<TestRunInfo> currentTestRunInfo;
5797         LazyStat<GroupInfo> currentGroupInfo;
5798         LazyStat<TestCaseInfo> currentTestCaseInfo;
5799 
5800         std::vector<SectionInfo> m_sectionStack;
5801         ReporterPreferences m_reporterPrefs;
5802     };
5803 
5804     template<typename DerivedT>
5805     struct CumulativeReporterBase : IStreamingReporter {
5806         template<typename T, typename ChildNodeT>
5807         struct Node {
NodeCatch::CumulativeReporterBase::Node5808             explicit Node( T const& _value ) : value( _value ) {}
~NodeCatch::CumulativeReporterBase::Node5809             virtual ~Node() {}
5810 
5811             using ChildNodes = std::vector<std::shared_ptr<ChildNodeT>>;
5812             T value;
5813             ChildNodes children;
5814         };
5815         struct SectionNode {
SectionNodeCatch::CumulativeReporterBase::SectionNode5816             explicit SectionNode(SectionStats const& _stats) : stats(_stats) {}
5817             virtual ~SectionNode() = default;
5818 
operator ==Catch::CumulativeReporterBase::SectionNode5819             bool operator == (SectionNode const& other) const {
5820                 return stats.sectionInfo.lineInfo == other.stats.sectionInfo.lineInfo;
5821             }
operator ==Catch::CumulativeReporterBase::SectionNode5822             bool operator == (std::shared_ptr<SectionNode> const& other) const {
5823                 return operator==(*other);
5824             }
5825 
5826             SectionStats stats;
5827             using ChildSections = std::vector<std::shared_ptr<SectionNode>>;
5828             using Assertions = std::vector<AssertionStats>;
5829             ChildSections childSections;
5830             Assertions assertions;
5831             std::string stdOut;
5832             std::string stdErr;
5833         };
5834 
5835         struct BySectionInfo {
BySectionInfoCatch::CumulativeReporterBase::BySectionInfo5836             BySectionInfo( SectionInfo const& other ) : m_other( other ) {}
BySectionInfoCatch::CumulativeReporterBase::BySectionInfo5837             BySectionInfo( BySectionInfo const& other ) : m_other( other.m_other ) {}
operator ()Catch::CumulativeReporterBase::BySectionInfo5838             bool operator() (std::shared_ptr<SectionNode> const& node) const {
5839                 return ((node->stats.sectionInfo.name == m_other.name) &&
5840                         (node->stats.sectionInfo.lineInfo == m_other.lineInfo));
5841             }
5842             void operator=(BySectionInfo const&) = delete;
5843 
5844         private:
5845             SectionInfo const& m_other;
5846         };
5847 
5848         using TestCaseNode = Node<TestCaseStats, SectionNode>;
5849         using TestGroupNode = Node<TestGroupStats, TestCaseNode>;
5850         using TestRunNode = Node<TestRunStats, TestGroupNode>;
5851 
CumulativeReporterBaseCatch::CumulativeReporterBase5852         CumulativeReporterBase( ReporterConfig const& _config )
5853         :   m_config( _config.fullConfig() ),
5854             stream( _config.stream() )
5855         {
5856             m_reporterPrefs.shouldRedirectStdOut = false;
5857             if( !DerivedT::getSupportedVerbosities().count( m_config->verbosity() ) )
5858                 CATCH_ERROR( "Verbosity level not supported by this reporter" );
5859         }
5860         ~CumulativeReporterBase() override = default;
5861 
getPreferencesCatch::CumulativeReporterBase5862         ReporterPreferences getPreferences() const override {
5863             return m_reporterPrefs;
5864         }
5865 
getSupportedVerbositiesCatch::CumulativeReporterBase5866         static std::set<Verbosity> getSupportedVerbosities() {
5867             return { Verbosity::Normal };
5868         }
5869 
testRunStartingCatch::CumulativeReporterBase5870         void testRunStarting( TestRunInfo const& ) override {}
testGroupStartingCatch::CumulativeReporterBase5871         void testGroupStarting( GroupInfo const& ) override {}
5872 
testCaseStartingCatch::CumulativeReporterBase5873         void testCaseStarting( TestCaseInfo const& ) override {}
5874 
sectionStartingCatch::CumulativeReporterBase5875         void sectionStarting( SectionInfo const& sectionInfo ) override {
5876             SectionStats incompleteStats( sectionInfo, Counts(), 0, false );
5877             std::shared_ptr<SectionNode> node;
5878             if( m_sectionStack.empty() ) {
5879                 if( !m_rootSection )
5880                     m_rootSection = std::make_shared<SectionNode>( incompleteStats );
5881                 node = m_rootSection;
5882             }
5883             else {
5884                 SectionNode& parentNode = *m_sectionStack.back();
5885                 auto it =
5886                     std::find_if(   parentNode.childSections.begin(),
5887                                     parentNode.childSections.end(),
5888                                     BySectionInfo( sectionInfo ) );
5889                 if( it == parentNode.childSections.end() ) {
5890                     node = std::make_shared<SectionNode>( incompleteStats );
5891                     parentNode.childSections.push_back( node );
5892                 }
5893                 else
5894                     node = *it;
5895             }
5896             m_sectionStack.push_back( node );
5897             m_deepestSection = std::move(node);
5898         }
5899 
assertionStartingCatch::CumulativeReporterBase5900         void assertionStarting(AssertionInfo const&) override {}
5901 
assertionEndedCatch::CumulativeReporterBase5902         bool assertionEnded(AssertionStats const& assertionStats) override {
5903             assert(!m_sectionStack.empty());
5904             // AssertionResult holds a pointer to a temporary DecomposedExpression,
5905             // which getExpandedExpression() calls to build the expression string.
5906             // Our section stack copy of the assertionResult will likely outlive the
5907             // temporary, so it must be expanded or discarded now to avoid calling
5908             // a destroyed object later.
5909             prepareExpandedExpression(const_cast<AssertionResult&>( assertionStats.assertionResult ) );
5910             SectionNode& sectionNode = *m_sectionStack.back();
5911             sectionNode.assertions.push_back(assertionStats);
5912             return true;
5913         }
sectionEndedCatch::CumulativeReporterBase5914         void sectionEnded(SectionStats const& sectionStats) override {
5915             assert(!m_sectionStack.empty());
5916             SectionNode& node = *m_sectionStack.back();
5917             node.stats = sectionStats;
5918             m_sectionStack.pop_back();
5919         }
testCaseEndedCatch::CumulativeReporterBase5920         void testCaseEnded(TestCaseStats const& testCaseStats) override {
5921             auto node = std::make_shared<TestCaseNode>(testCaseStats);
5922             assert(m_sectionStack.size() == 0);
5923             node->children.push_back(m_rootSection);
5924             m_testCases.push_back(node);
5925             m_rootSection.reset();
5926 
5927             assert(m_deepestSection);
5928             m_deepestSection->stdOut = testCaseStats.stdOut;
5929             m_deepestSection->stdErr = testCaseStats.stdErr;
5930         }
testGroupEndedCatch::CumulativeReporterBase5931         void testGroupEnded(TestGroupStats const& testGroupStats) override {
5932             auto node = std::make_shared<TestGroupNode>(testGroupStats);
5933             node->children.swap(m_testCases);
5934             m_testGroups.push_back(node);
5935         }
testRunEndedCatch::CumulativeReporterBase5936         void testRunEnded(TestRunStats const& testRunStats) override {
5937             auto node = std::make_shared<TestRunNode>(testRunStats);
5938             node->children.swap(m_testGroups);
5939             m_testRuns.push_back(node);
5940             testRunEndedCumulative();
5941         }
5942         virtual void testRunEndedCumulative() = 0;
5943 
skipTestCatch::CumulativeReporterBase5944         void skipTest(TestCaseInfo const&) override {}
5945 
5946         IConfigPtr m_config;
5947         std::ostream& stream;
5948         std::vector<AssertionStats> m_assertions;
5949         std::vector<std::vector<std::shared_ptr<SectionNode>>> m_sections;
5950         std::vector<std::shared_ptr<TestCaseNode>> m_testCases;
5951         std::vector<std::shared_ptr<TestGroupNode>> m_testGroups;
5952 
5953         std::vector<std::shared_ptr<TestRunNode>> m_testRuns;
5954 
5955         std::shared_ptr<SectionNode> m_rootSection;
5956         std::shared_ptr<SectionNode> m_deepestSection;
5957         std::vector<std::shared_ptr<SectionNode>> m_sectionStack;
5958         ReporterPreferences m_reporterPrefs;
5959     };
5960 
5961     template<char C>
getLineOfChars()5962     char const* getLineOfChars() {
5963         static char line[CATCH_CONFIG_CONSOLE_WIDTH] = {0};
5964         if( !*line ) {
5965             std::memset( line, C, CATCH_CONFIG_CONSOLE_WIDTH-1 );
5966             line[CATCH_CONFIG_CONSOLE_WIDTH-1] = 0;
5967         }
5968         return line;
5969     }
5970 
5971     struct TestEventListenerBase : StreamingReporterBase<TestEventListenerBase> {
5972         TestEventListenerBase( ReporterConfig const& _config );
5973 
5974         static std::set<Verbosity> getSupportedVerbosities();
5975 
5976         void assertionStarting(AssertionInfo const&) override;
5977         bool assertionEnded(AssertionStats const&) override;
5978     };
5979 
5980 } // end namespace Catch
5981 
5982 // end catch_reporter_bases.hpp
5983 // start catch_console_colour.h
5984 
5985 namespace Catch {
5986 
5987     struct Colour {
5988         enum Code {
5989             None = 0,
5990 
5991             White,
5992             Red,
5993             Green,
5994             Blue,
5995             Cyan,
5996             Yellow,
5997             Grey,
5998 
5999             Bright = 0x10,
6000 
6001             BrightRed = Bright | Red,
6002             BrightGreen = Bright | Green,
6003             LightGrey = Bright | Grey,
6004             BrightWhite = Bright | White,
6005             BrightYellow = Bright | Yellow,
6006 
6007             // By intention
6008             FileName = LightGrey,
6009             Warning = BrightYellow,
6010             ResultError = BrightRed,
6011             ResultSuccess = BrightGreen,
6012             ResultExpectedFailure = Warning,
6013 
6014             Error = BrightRed,
6015             Success = Green,
6016 
6017             OriginalExpression = Cyan,
6018             ReconstructedExpression = BrightYellow,
6019 
6020             SecondaryText = LightGrey,
6021             Headers = White
6022         };
6023 
6024         // Use constructed object for RAII guard
6025         Colour( Code _colourCode );
6026         Colour( Colour&& other ) noexcept;
6027         Colour& operator=( Colour&& other ) noexcept;
6028         ~Colour();
6029 
6030         // Use static method for one-shot changes
6031         static void use( Code _colourCode );
6032 
6033     private:
6034         bool m_moved = false;
6035     };
6036 
6037     std::ostream& operator << ( std::ostream& os, Colour const& );
6038 
6039 } // end namespace Catch
6040 
6041 // end catch_console_colour.h
6042 // start catch_reporter_registrars.hpp
6043 
6044 
6045 namespace Catch {
6046 
6047     template<typename T>
6048     class ReporterRegistrar {
6049 
6050         class ReporterFactory : public IReporterFactory {
6051 
create(ReporterConfig const & config) const6052             IStreamingReporterPtr create( ReporterConfig const& config ) const override {
6053                 return std::unique_ptr<T>( new T( config ) );
6054             }
6055 
getDescription() const6056             std::string getDescription() const override {
6057                 return T::getDescription();
6058             }
6059         };
6060 
6061     public:
6062 
ReporterRegistrar(std::string const & name)6063         explicit ReporterRegistrar( std::string const& name ) {
6064             getMutableRegistryHub().registerReporter( name, std::make_shared<ReporterFactory>() );
6065         }
6066     };
6067 
6068     template<typename T>
6069     class ListenerRegistrar {
6070 
6071         class ListenerFactory : public IReporterFactory {
6072 
create(ReporterConfig const & config) const6073             IStreamingReporterPtr create( ReporterConfig const& config ) const override {
6074                 return std::unique_ptr<T>( new T( config ) );
6075             }
getDescription() const6076             std::string getDescription() const override {
6077                 return std::string();
6078             }
6079         };
6080 
6081     public:
6082 
ListenerRegistrar()6083         ListenerRegistrar() {
6084             getMutableRegistryHub().registerListener( std::make_shared<ListenerFactory>() );
6085         }
6086     };
6087 }
6088 
6089 #if !defined(CATCH_CONFIG_DISABLE)
6090 
6091 #define CATCH_REGISTER_REPORTER( name, reporterType ) \
6092     CATCH_INTERNAL_START_WARNINGS_SUPPRESSION         \
6093     CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS          \
6094     namespace{ Catch::ReporterRegistrar<reporterType> catch_internal_RegistrarFor##reporterType( name ); } \
6095     CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION
6096 
6097 #define CATCH_REGISTER_LISTENER( listenerType ) \
6098     CATCH_INTERNAL_START_WARNINGS_SUPPRESSION   \
6099     CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS    \
6100     namespace{ Catch::ListenerRegistrar<listenerType> catch_internal_RegistrarFor##listenerType; } \
6101     CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION
6102 #else // CATCH_CONFIG_DISABLE
6103 
6104 #define CATCH_REGISTER_REPORTER(name, reporterType)
6105 #define CATCH_REGISTER_LISTENER(listenerType)
6106 
6107 #endif // CATCH_CONFIG_DISABLE
6108 
6109 // end catch_reporter_registrars.hpp
6110 // Allow users to base their work off existing reporters
6111 // start catch_reporter_compact.h
6112 
6113 namespace Catch {
6114 
6115     struct CompactReporter : StreamingReporterBase<CompactReporter> {
6116 
6117         using StreamingReporterBase::StreamingReporterBase;
6118 
6119         ~CompactReporter() override;
6120 
6121         static std::string getDescription();
6122 
6123         void noMatchingTestCases(std::string const& spec) override;
6124 
6125         void assertionStarting(AssertionInfo const&) override;
6126 
6127         bool assertionEnded(AssertionStats const& _assertionStats) override;
6128 
6129         void sectionEnded(SectionStats const& _sectionStats) override;
6130 
6131         void testRunEnded(TestRunStats const& _testRunStats) override;
6132 
6133     };
6134 
6135 } // end namespace Catch
6136 
6137 // end catch_reporter_compact.h
6138 // start catch_reporter_console.h
6139 
6140 #if defined(_MSC_VER)
6141 #pragma warning(push)
6142 #pragma warning(disable:4061) // Not all labels are EXPLICITLY handled in switch
6143                               // Note that 4062 (not all labels are handled
6144                               // and default is missing) is enabled
6145 #endif
6146 
6147 namespace Catch {
6148     // Fwd decls
6149     struct SummaryColumn;
6150     class TablePrinter;
6151 
6152     struct ConsoleReporter : StreamingReporterBase<ConsoleReporter> {
6153         std::unique_ptr<TablePrinter> m_tablePrinter;
6154 
6155         ConsoleReporter(ReporterConfig const& config);
6156         ~ConsoleReporter() override;
6157         static std::string getDescription();
6158 
6159         void noMatchingTestCases(std::string const& spec) override;
6160 
6161         void reportInvalidArguments(std::string const&arg) override;
6162 
6163         void assertionStarting(AssertionInfo const&) override;
6164 
6165         bool assertionEnded(AssertionStats const& _assertionStats) override;
6166 
6167         void sectionStarting(SectionInfo const& _sectionInfo) override;
6168         void sectionEnded(SectionStats const& _sectionStats) override;
6169 
6170 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
6171         void benchmarkPreparing(std::string const& name) override;
6172         void benchmarkStarting(BenchmarkInfo const& info) override;
6173         void benchmarkEnded(BenchmarkStats<> const& stats) override;
6174         void benchmarkFailed(std::string const& error) override;
6175 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
6176 
6177         void testCaseEnded(TestCaseStats const& _testCaseStats) override;
6178         void testGroupEnded(TestGroupStats const& _testGroupStats) override;
6179         void testRunEnded(TestRunStats const& _testRunStats) override;
6180         void testRunStarting(TestRunInfo const& _testRunInfo) override;
6181     private:
6182 
6183         void lazyPrint();
6184 
6185         void lazyPrintWithoutClosingBenchmarkTable();
6186         void lazyPrintRunInfo();
6187         void lazyPrintGroupInfo();
6188         void printTestCaseAndSectionHeader();
6189 
6190         void printClosedHeader(std::string const& _name);
6191         void printOpenHeader(std::string const& _name);
6192 
6193         // if string has a : in first line will set indent to follow it on
6194         // subsequent lines
6195         void printHeaderString(std::string const& _string, std::size_t indent = 0);
6196 
6197         void printTotals(Totals const& totals);
6198         void printSummaryRow(std::string const& label, std::vector<SummaryColumn> const& cols, std::size_t row);
6199 
6200         void printTotalsDivider(Totals const& totals);
6201         void printSummaryDivider();
6202         void printTestFilters();
6203 
6204     private:
6205         bool m_headerPrinted = false;
6206     };
6207 
6208 } // end namespace Catch
6209 
6210 #if defined(_MSC_VER)
6211 #pragma warning(pop)
6212 #endif
6213 
6214 // end catch_reporter_console.h
6215 // start catch_reporter_junit.h
6216 
6217 // start catch_xmlwriter.h
6218 
6219 #include <vector>
6220 
6221 namespace Catch {
6222     enum class XmlFormatting {
6223         None = 0x00,
6224         Indent = 0x01,
6225         Newline = 0x02,
6226     };
6227 
6228     XmlFormatting operator | (XmlFormatting lhs, XmlFormatting rhs);
6229     XmlFormatting operator & (XmlFormatting lhs, XmlFormatting rhs);
6230 
6231     class XmlEncode {
6232     public:
6233         enum ForWhat { ForTextNodes, ForAttributes };
6234 
6235         XmlEncode( std::string const& str, ForWhat forWhat = ForTextNodes );
6236 
6237         void encodeTo( std::ostream& os ) const;
6238 
6239         friend std::ostream& operator << ( std::ostream& os, XmlEncode const& xmlEncode );
6240 
6241     private:
6242         std::string m_str;
6243         ForWhat m_forWhat;
6244     };
6245 
6246     class XmlWriter {
6247     public:
6248 
6249         class ScopedElement {
6250         public:
6251             ScopedElement( XmlWriter* writer, XmlFormatting fmt );
6252 
6253             ScopedElement( ScopedElement&& other ) noexcept;
6254             ScopedElement& operator=( ScopedElement&& other ) noexcept;
6255 
6256             ~ScopedElement();
6257 
6258             ScopedElement& writeText( std::string const& text, XmlFormatting fmt = XmlFormatting::Newline | XmlFormatting::Indent );
6259 
6260             template<typename T>
writeAttribute(std::string const & name,T const & attribute)6261             ScopedElement& writeAttribute( std::string const& name, T const& attribute ) {
6262                 m_writer->writeAttribute( name, attribute );
6263                 return *this;
6264             }
6265 
6266         private:
6267             mutable XmlWriter* m_writer = nullptr;
6268             XmlFormatting m_fmt;
6269         };
6270 
6271         XmlWriter( std::ostream& os = Catch::cout() );
6272         ~XmlWriter();
6273 
6274         XmlWriter( XmlWriter const& ) = delete;
6275         XmlWriter& operator=( XmlWriter const& ) = delete;
6276 
6277         XmlWriter& startElement( std::string const& name, XmlFormatting fmt = XmlFormatting::Newline | XmlFormatting::Indent);
6278 
6279         ScopedElement scopedElement( std::string const& name, XmlFormatting fmt = XmlFormatting::Newline | XmlFormatting::Indent);
6280 
6281         XmlWriter& endElement(XmlFormatting fmt = XmlFormatting::Newline | XmlFormatting::Indent);
6282 
6283         XmlWriter& writeAttribute( std::string const& name, std::string const& attribute );
6284 
6285         XmlWriter& writeAttribute( std::string const& name, bool attribute );
6286 
6287         template<typename T>
writeAttribute(std::string const & name,T const & attribute)6288         XmlWriter& writeAttribute( std::string const& name, T const& attribute ) {
6289             ReusableStringStream rss;
6290             rss << attribute;
6291             return writeAttribute( name, rss.str() );
6292         }
6293 
6294         XmlWriter& writeText( std::string const& text, XmlFormatting fmt = XmlFormatting::Newline | XmlFormatting::Indent);
6295 
6296         XmlWriter& writeComment(std::string const& text, XmlFormatting fmt = XmlFormatting::Newline | XmlFormatting::Indent);
6297 
6298         void writeStylesheetRef( std::string const& url );
6299 
6300         XmlWriter& writeBlankLine();
6301 
6302         void ensureTagClosed();
6303 
6304     private:
6305 
6306         void applyFormatting(XmlFormatting fmt);
6307 
6308         void writeDeclaration();
6309 
6310         void newlineIfNecessary();
6311 
6312         bool m_tagIsOpen = false;
6313         bool m_needsNewline = false;
6314         std::vector<std::string> m_tags;
6315         std::string m_indent;
6316         std::ostream& m_os;
6317     };
6318 
6319 }
6320 
6321 // end catch_xmlwriter.h
6322 namespace Catch {
6323 
6324     class JunitReporter : public CumulativeReporterBase<JunitReporter> {
6325     public:
6326         JunitReporter(ReporterConfig const& _config);
6327 
6328         ~JunitReporter() override;
6329 
6330         static std::string getDescription();
6331 
6332         void noMatchingTestCases(std::string const& /*spec*/) override;
6333 
6334         void testRunStarting(TestRunInfo const& runInfo) override;
6335 
6336         void testGroupStarting(GroupInfo const& groupInfo) override;
6337 
6338         void testCaseStarting(TestCaseInfo const& testCaseInfo) override;
6339         bool assertionEnded(AssertionStats const& assertionStats) override;
6340 
6341         void testCaseEnded(TestCaseStats const& testCaseStats) override;
6342 
6343         void testGroupEnded(TestGroupStats const& testGroupStats) override;
6344 
6345         void testRunEndedCumulative() override;
6346 
6347         void writeGroup(TestGroupNode const& groupNode, double suiteTime);
6348 
6349         void writeTestCase(TestCaseNode const& testCaseNode);
6350 
6351         void writeSection(std::string const& className,
6352                           std::string const& rootName,
6353                           SectionNode const& sectionNode);
6354 
6355         void writeAssertions(SectionNode const& sectionNode);
6356         void writeAssertion(AssertionStats const& stats);
6357 
6358         XmlWriter xml;
6359         Timer suiteTimer;
6360         std::string stdOutForSuite;
6361         std::string stdErrForSuite;
6362         unsigned int unexpectedExceptions = 0;
6363         bool m_okToFail = false;
6364     };
6365 
6366 } // end namespace Catch
6367 
6368 // end catch_reporter_junit.h
6369 // start catch_reporter_xml.h
6370 
6371 namespace Catch {
6372     class XmlReporter : public StreamingReporterBase<XmlReporter> {
6373     public:
6374         XmlReporter(ReporterConfig const& _config);
6375 
6376         ~XmlReporter() override;
6377 
6378         static std::string getDescription();
6379 
6380         virtual std::string getStylesheetRef() const;
6381 
6382         void writeSourceInfo(SourceLineInfo const& sourceInfo);
6383 
6384     public: // StreamingReporterBase
6385 
6386         void noMatchingTestCases(std::string const& s) override;
6387 
6388         void testRunStarting(TestRunInfo const& testInfo) override;
6389 
6390         void testGroupStarting(GroupInfo const& groupInfo) override;
6391 
6392         void testCaseStarting(TestCaseInfo const& testInfo) override;
6393 
6394         void sectionStarting(SectionInfo const& sectionInfo) override;
6395 
6396         void assertionStarting(AssertionInfo const&) override;
6397 
6398         bool assertionEnded(AssertionStats const& assertionStats) override;
6399 
6400         void sectionEnded(SectionStats const& sectionStats) override;
6401 
6402         void testCaseEnded(TestCaseStats const& testCaseStats) override;
6403 
6404         void testGroupEnded(TestGroupStats const& testGroupStats) override;
6405 
6406         void testRunEnded(TestRunStats const& testRunStats) override;
6407 
6408 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
6409         void benchmarkPreparing(std::string const& name) override;
6410         void benchmarkStarting(BenchmarkInfo const&) override;
6411         void benchmarkEnded(BenchmarkStats<> const&) override;
6412         void benchmarkFailed(std::string const&) override;
6413 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
6414 
6415     private:
6416         Timer m_testCaseTimer;
6417         XmlWriter m_xml;
6418         int m_sectionDepth = 0;
6419     };
6420 
6421 } // end namespace Catch
6422 
6423 // end catch_reporter_xml.h
6424 
6425 // end catch_external_interfaces.h
6426 #endif
6427 
6428 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
6429 // start catch_benchmarking_all.hpp
6430 
6431 // A proxy header that includes all of the benchmarking headers to allow
6432 // concise include of the benchmarking features. You should prefer the
6433 // individual includes in standard use.
6434 
6435 // start catch_benchmark.hpp
6436 
6437  // Benchmark
6438 
6439 // start catch_chronometer.hpp
6440 
6441 // User-facing chronometer
6442 
6443 
6444 // start catch_clock.hpp
6445 
6446 // Clocks
6447 
6448 
6449 #include <chrono>
6450 #include <ratio>
6451 
6452 namespace Catch {
6453     namespace Benchmark {
6454         template <typename Clock>
6455         using ClockDuration = typename Clock::duration;
6456         template <typename Clock>
6457         using FloatDuration = std::chrono::duration<double, typename Clock::period>;
6458 
6459         template <typename Clock>
6460         using TimePoint = typename Clock::time_point;
6461 
6462         using default_clock = std::chrono::steady_clock;
6463 
6464         template <typename Clock>
6465         struct now {
operator ()Catch::Benchmark::now6466             TimePoint<Clock> operator()() const {
6467                 return Clock::now();
6468             }
6469         };
6470 
6471         using fp_seconds = std::chrono::duration<double, std::ratio<1>>;
6472     } // namespace Benchmark
6473 } // namespace Catch
6474 
6475 // end catch_clock.hpp
6476 // start catch_optimizer.hpp
6477 
6478  // Hinting the optimizer
6479 
6480 
6481 #if defined(_MSC_VER)
6482 #   include <atomic> // atomic_thread_fence
6483 #endif
6484 
6485 namespace Catch {
6486     namespace Benchmark {
6487 #if defined(__GNUC__) || defined(__clang__)
6488         template <typename T>
keep_memory(T * p)6489         inline void keep_memory(T* p) {
6490             asm volatile("" : : "g"(p) : "memory");
6491         }
keep_memory()6492         inline void keep_memory() {
6493             asm volatile("" : : : "memory");
6494         }
6495 
6496         namespace Detail {
optimizer_barrier()6497             inline void optimizer_barrier() { keep_memory(); }
6498         } // namespace Detail
6499 #elif defined(_MSC_VER)
6500 
6501 #pragma optimize("", off)
6502         template <typename T>
6503         inline void keep_memory(T* p) {
6504             // thanks @milleniumbug
6505             *reinterpret_cast<char volatile*>(p) = *reinterpret_cast<char const volatile*>(p);
6506         }
6507         // TODO equivalent keep_memory()
6508 #pragma optimize("", on)
6509 
6510         namespace Detail {
6511             inline void optimizer_barrier() {
6512                 std::atomic_thread_fence(std::memory_order_seq_cst);
6513             }
6514         } // namespace Detail
6515 
6516 #endif
6517 
6518         template <typename T>
deoptimize_value(T && x)6519         inline void deoptimize_value(T&& x) {
6520             keep_memory(&x);
6521         }
6522 
6523         template <typename Fn, typename... Args>
invoke_deoptimized(Fn && fn,Args &&...args)6524         inline auto invoke_deoptimized(Fn&& fn, Args&&... args) -> typename std::enable_if<!std::is_same<void, decltype(fn(args...))>::value>::type {
6525             deoptimize_value(std::forward<Fn>(fn) (std::forward<Args...>(args...)));
6526         }
6527 
6528         template <typename Fn, typename... Args>
invoke_deoptimized(Fn && fn,Args &&...args)6529         inline auto invoke_deoptimized(Fn&& fn, Args&&... args) -> typename std::enable_if<std::is_same<void, decltype(fn(args...))>::value>::type {
6530             std::forward<Fn>(fn) (std::forward<Args...>(args...));
6531         }
6532     } // namespace Benchmark
6533 } // namespace Catch
6534 
6535 // end catch_optimizer.hpp
6536 // start catch_complete_invoke.hpp
6537 
6538 // Invoke with a special case for void
6539 
6540 
6541 #include <type_traits>
6542 #include <utility>
6543 
6544 namespace Catch {
6545     namespace Benchmark {
6546         namespace Detail {
6547             template <typename T>
6548             struct CompleteType { using type = T; };
6549             template <>
6550             struct CompleteType<void> { struct type {}; };
6551 
6552             template <typename T>
6553             using CompleteType_t = typename CompleteType<T>::type;
6554 
6555             template <typename Result>
6556             struct CompleteInvoker {
6557                 template <typename Fun, typename... Args>
invokeCatch::Benchmark::Detail::CompleteInvoker6558                 static Result invoke(Fun&& fun, Args&&... args) {
6559                     return std::forward<Fun>(fun)(std::forward<Args>(args)...);
6560                 }
6561             };
6562             template <>
6563             struct CompleteInvoker<void> {
6564                 template <typename Fun, typename... Args>
invokeCatch::Benchmark::Detail::CompleteInvoker6565                 static CompleteType_t<void> invoke(Fun&& fun, Args&&... args) {
6566                     std::forward<Fun>(fun)(std::forward<Args>(args)...);
6567                     return {};
6568                 }
6569             };
6570 
6571             // invoke and not return void :(
6572             template <typename Fun, typename... Args>
complete_invoke(Fun && fun,Args &&...args)6573             CompleteType_t<FunctionReturnType<Fun, Args...>> complete_invoke(Fun&& fun, Args&&... args) {
6574                 return CompleteInvoker<FunctionReturnType<Fun, Args...>>::invoke(std::forward<Fun>(fun), std::forward<Args>(args)...);
6575             }
6576 
6577             const std::string benchmarkErrorMsg = "a benchmark failed to run successfully";
6578         } // namespace Detail
6579 
6580         template <typename Fun>
user_code(Fun && fun)6581         Detail::CompleteType_t<FunctionReturnType<Fun>> user_code(Fun&& fun) {
6582             CATCH_TRY{
6583                 return Detail::complete_invoke(std::forward<Fun>(fun));
6584             } CATCH_CATCH_ALL{
6585                 getResultCapture().benchmarkFailed(translateActiveException());
6586                 CATCH_RUNTIME_ERROR(Detail::benchmarkErrorMsg);
6587             }
6588         }
6589     } // namespace Benchmark
6590 } // namespace Catch
6591 
6592 // end catch_complete_invoke.hpp
6593 namespace Catch {
6594     namespace Benchmark {
6595         namespace Detail {
6596             struct ChronometerConcept {
6597                 virtual void start() = 0;
6598                 virtual void finish() = 0;
6599                 virtual ~ChronometerConcept() = default;
6600             };
6601             template <typename Clock>
6602             struct ChronometerModel final : public ChronometerConcept {
startCatch::Benchmark::Detail::ChronometerModel6603                 void start() override { started = Clock::now(); }
finishCatch::Benchmark::Detail::ChronometerModel6604                 void finish() override { finished = Clock::now(); }
6605 
elapsedCatch::Benchmark::Detail::ChronometerModel6606                 ClockDuration<Clock> elapsed() const { return finished - started; }
6607 
6608                 TimePoint<Clock> started;
6609                 TimePoint<Clock> finished;
6610             };
6611         } // namespace Detail
6612 
6613         struct Chronometer {
6614         public:
6615             template <typename Fun>
measureCatch::Benchmark::Chronometer6616             void measure(Fun&& fun) { measure(std::forward<Fun>(fun), is_callable<Fun(int)>()); }
6617 
runsCatch::Benchmark::Chronometer6618             int runs() const { return k; }
6619 
ChronometerCatch::Benchmark::Chronometer6620             Chronometer(Detail::ChronometerConcept& meter, int k)
6621                 : impl(&meter)
6622                 , k(k) {}
6623 
6624         private:
6625             template <typename Fun>
measureCatch::Benchmark::Chronometer6626             void measure(Fun&& fun, std::false_type) {
6627                 measure([&fun](int) { return fun(); }, std::true_type());
6628             }
6629 
6630             template <typename Fun>
measureCatch::Benchmark::Chronometer6631             void measure(Fun&& fun, std::true_type) {
6632                 Detail::optimizer_barrier();
6633                 impl->start();
6634                 for (int i = 0; i < k; ++i) invoke_deoptimized(fun, i);
6635                 impl->finish();
6636                 Detail::optimizer_barrier();
6637             }
6638 
6639             Detail::ChronometerConcept* impl;
6640             int k;
6641         };
6642     } // namespace Benchmark
6643 } // namespace Catch
6644 
6645 // end catch_chronometer.hpp
6646 // start catch_environment.hpp
6647 
6648 // Environment information
6649 
6650 
6651 namespace Catch {
6652     namespace Benchmark {
6653         template <typename Duration>
6654         struct EnvironmentEstimate {
6655             Duration mean;
6656             OutlierClassification outliers;
6657 
6658             template <typename Duration2>
operator EnvironmentEstimate<Duration2>Catch::Benchmark::EnvironmentEstimate6659             operator EnvironmentEstimate<Duration2>() const {
6660                 return { mean, outliers };
6661             }
6662         };
6663         template <typename Clock>
6664         struct Environment {
6665             using clock_type = Clock;
6666             EnvironmentEstimate<FloatDuration<Clock>> clock_resolution;
6667             EnvironmentEstimate<FloatDuration<Clock>> clock_cost;
6668         };
6669     } // namespace Benchmark
6670 } // namespace Catch
6671 
6672 // end catch_environment.hpp
6673 // start catch_execution_plan.hpp
6674 
6675  // Execution plan
6676 
6677 
6678 // start catch_benchmark_function.hpp
6679 
6680  // Dumb std::function implementation for consistent call overhead
6681 
6682 
6683 #include <cassert>
6684 #include <type_traits>
6685 #include <utility>
6686 #include <memory>
6687 
6688 namespace Catch {
6689     namespace Benchmark {
6690         namespace Detail {
6691             template <typename T>
6692             using Decay = typename std::decay<T>::type;
6693             template <typename T, typename U>
6694             struct is_related
6695                 : std::is_same<Decay<T>, Decay<U>> {};
6696 
6697             /// We need to reinvent std::function because every piece of code that might add overhead
6698             /// in a measurement context needs to have consistent performance characteristics so that we
6699             /// can account for it in the measurement.
6700             /// Implementations of std::function with optimizations that aren't always applicable, like
6701             /// small buffer optimizations, are not uncommon.
6702             /// This is effectively an implementation of std::function without any such optimizations;
6703             /// it may be slow, but it is consistently slow.
6704             struct BenchmarkFunction {
6705             private:
6706                 struct callable {
6707                     virtual void call(Chronometer meter) const = 0;
6708                     virtual callable* clone() const = 0;
6709                     virtual ~callable() = default;
6710                 };
6711                 template <typename Fun>
6712                 struct model : public callable {
modelCatch::Benchmark::Detail::BenchmarkFunction::model6713                     model(Fun&& fun) : fun(std::move(fun)) {}
modelCatch::Benchmark::Detail::BenchmarkFunction::model6714                     model(Fun const& fun) : fun(fun) {}
6715 
cloneCatch::Benchmark::Detail::BenchmarkFunction::model6716                     model<Fun>* clone() const override { return new model<Fun>(*this); }
6717 
callCatch::Benchmark::Detail::BenchmarkFunction::model6718                     void call(Chronometer meter) const override {
6719                         call(meter, is_callable<Fun(Chronometer)>());
6720                     }
callCatch::Benchmark::Detail::BenchmarkFunction::model6721                     void call(Chronometer meter, std::true_type) const {
6722                         fun(meter);
6723                     }
callCatch::Benchmark::Detail::BenchmarkFunction::model6724                     void call(Chronometer meter, std::false_type) const {
6725                         meter.measure(fun);
6726                     }
6727 
6728                     Fun fun;
6729                 };
6730 
operator ()Catch::Benchmark::Detail::BenchmarkFunction::do_nothing6731                 struct do_nothing { void operator()() const {} };
6732 
6733                 template <typename T>
BenchmarkFunctionCatch::Benchmark::Detail::BenchmarkFunction6734                 BenchmarkFunction(model<T>* c) : f(c) {}
6735 
6736             public:
BenchmarkFunctionCatch::Benchmark::Detail::BenchmarkFunction6737                 BenchmarkFunction()
6738                     : f(new model<do_nothing>{ {} }) {}
6739 
6740                 template <typename Fun,
6741                     typename std::enable_if<!is_related<Fun, BenchmarkFunction>::value, int>::type = 0>
BenchmarkFunctionCatch::Benchmark::Detail::BenchmarkFunction6742                     BenchmarkFunction(Fun&& fun)
6743                     : f(new model<typename std::decay<Fun>::type>(std::forward<Fun>(fun))) {}
6744 
BenchmarkFunctionCatch::Benchmark::Detail::BenchmarkFunction6745                 BenchmarkFunction(BenchmarkFunction&& that)
6746                     : f(std::move(that.f)) {}
6747 
BenchmarkFunctionCatch::Benchmark::Detail::BenchmarkFunction6748                 BenchmarkFunction(BenchmarkFunction const& that)
6749                     : f(that.f->clone()) {}
6750 
operator =Catch::Benchmark::Detail::BenchmarkFunction6751                 BenchmarkFunction& operator=(BenchmarkFunction&& that) {
6752                     f = std::move(that.f);
6753                     return *this;
6754                 }
6755 
operator =Catch::Benchmark::Detail::BenchmarkFunction6756                 BenchmarkFunction& operator=(BenchmarkFunction const& that) {
6757                     f.reset(that.f->clone());
6758                     return *this;
6759                 }
6760 
operator ()Catch::Benchmark::Detail::BenchmarkFunction6761                 void operator()(Chronometer meter) const { f->call(meter); }
6762 
6763             private:
6764                 std::unique_ptr<callable> f;
6765             };
6766         } // namespace Detail
6767     } // namespace Benchmark
6768 } // namespace Catch
6769 
6770 // end catch_benchmark_function.hpp
6771 // start catch_repeat.hpp
6772 
6773 // repeat algorithm
6774 
6775 
6776 #include <type_traits>
6777 #include <utility>
6778 
6779 namespace Catch {
6780     namespace Benchmark {
6781         namespace Detail {
6782             template <typename Fun>
6783             struct repeater {
operator ()Catch::Benchmark::Detail::repeater6784                 void operator()(int k) const {
6785                     for (int i = 0; i < k; ++i) {
6786                         fun();
6787                     }
6788                 }
6789                 Fun fun;
6790             };
6791             template <typename Fun>
repeat(Fun && fun)6792             repeater<typename std::decay<Fun>::type> repeat(Fun&& fun) {
6793                 return { std::forward<Fun>(fun) };
6794             }
6795         } // namespace Detail
6796     } // namespace Benchmark
6797 } // namespace Catch
6798 
6799 // end catch_repeat.hpp
6800 // start catch_run_for_at_least.hpp
6801 
6802 // Run a function for a minimum amount of time
6803 
6804 
6805 // start catch_measure.hpp
6806 
6807 // Measure
6808 
6809 
6810 // start catch_timing.hpp
6811 
6812 // Timing
6813 
6814 
6815 #include <tuple>
6816 #include <type_traits>
6817 
6818 namespace Catch {
6819     namespace Benchmark {
6820         template <typename Duration, typename Result>
6821         struct Timing {
6822             Duration elapsed;
6823             Result result;
6824             int iterations;
6825         };
6826         template <typename Clock, typename Func, typename... Args>
6827         using TimingOf = Timing<ClockDuration<Clock>, Detail::CompleteType_t<FunctionReturnType<Func, Args...>>>;
6828     } // namespace Benchmark
6829 } // namespace Catch
6830 
6831 // end catch_timing.hpp
6832 #include <utility>
6833 
6834 namespace Catch {
6835     namespace Benchmark {
6836         namespace Detail {
6837             template <typename Clock, typename Fun, typename... Args>
measure(Fun && fun,Args &&...args)6838             TimingOf<Clock, Fun, Args...> measure(Fun&& fun, Args&&... args) {
6839                 auto start = Clock::now();
6840                 auto&& r = Detail::complete_invoke(fun, std::forward<Args>(args)...);
6841                 auto end = Clock::now();
6842                 auto delta = end - start;
6843                 return { delta, std::forward<decltype(r)>(r), 1 };
6844             }
6845         } // namespace Detail
6846     } // namespace Benchmark
6847 } // namespace Catch
6848 
6849 // end catch_measure.hpp
6850 #include <utility>
6851 #include <type_traits>
6852 
6853 namespace Catch {
6854     namespace Benchmark {
6855         namespace Detail {
6856             template <typename Clock, typename Fun>
measure_one(Fun && fun,int iters,std::false_type)6857             TimingOf<Clock, Fun, int> measure_one(Fun&& fun, int iters, std::false_type) {
6858                 return Detail::measure<Clock>(fun, iters);
6859             }
6860             template <typename Clock, typename Fun>
measure_one(Fun && fun,int iters,std::true_type)6861             TimingOf<Clock, Fun, Chronometer> measure_one(Fun&& fun, int iters, std::true_type) {
6862                 Detail::ChronometerModel<Clock> meter;
6863                 auto&& result = Detail::complete_invoke(fun, Chronometer(meter, iters));
6864 
6865                 return { meter.elapsed(), std::move(result), iters };
6866             }
6867 
6868             template <typename Clock, typename Fun>
6869             using run_for_at_least_argument_t = typename std::conditional<is_callable<Fun(Chronometer)>::value, Chronometer, int>::type;
6870 
6871             struct optimized_away_error : std::exception {
whatCatch::Benchmark::Detail::optimized_away_error6872                 const char* what() const noexcept override {
6873                     return "could not measure benchmark, maybe it was optimized away";
6874                 }
6875             };
6876 
6877             template <typename Clock, typename Fun>
run_for_at_least(ClockDuration<Clock> how_long,int seed,Fun && fun)6878             TimingOf<Clock, Fun, run_for_at_least_argument_t<Clock, Fun>> run_for_at_least(ClockDuration<Clock> how_long, int seed, Fun&& fun) {
6879                 auto iters = seed;
6880                 while (iters < (1 << 30)) {
6881                     auto&& Timing = measure_one<Clock>(fun, iters, is_callable<Fun(Chronometer)>());
6882 
6883                     if (Timing.elapsed >= how_long) {
6884                         return { Timing.elapsed, std::move(Timing.result), iters };
6885                     }
6886                     iters *= 2;
6887                 }
6888                 throw optimized_away_error{};
6889             }
6890         } // namespace Detail
6891     } // namespace Benchmark
6892 } // namespace Catch
6893 
6894 // end catch_run_for_at_least.hpp
6895 #include <algorithm>
6896 
6897 namespace Catch {
6898     namespace Benchmark {
6899         template <typename Duration>
6900         struct ExecutionPlan {
6901             int iterations_per_sample;
6902             Duration estimated_duration;
6903             Detail::BenchmarkFunction benchmark;
6904             Duration warmup_time;
6905             int warmup_iterations;
6906 
6907             template <typename Duration2>
operator ExecutionPlan<Duration2>Catch::Benchmark::ExecutionPlan6908             operator ExecutionPlan<Duration2>() const {
6909                 return { iterations_per_sample, estimated_duration, benchmark, warmup_time, warmup_iterations };
6910             }
6911 
6912             template <typename Clock>
runCatch::Benchmark::ExecutionPlan6913             std::vector<FloatDuration<Clock>> run(const IConfig &cfg, Environment<FloatDuration<Clock>> env) const {
6914                 // warmup a bit
6915                 Detail::run_for_at_least<Clock>(std::chrono::duration_cast<ClockDuration<Clock>>(warmup_time), warmup_iterations, Detail::repeat(now<Clock>{}));
6916 
6917                 std::vector<FloatDuration<Clock>> times;
6918                 times.reserve(cfg.benchmarkSamples());
6919                 std::generate_n(std::back_inserter(times), cfg.benchmarkSamples(), [this, env] {
6920                     Detail::ChronometerModel<Clock> model;
6921                     this->benchmark(Chronometer(model, iterations_per_sample));
6922                     auto sample_time = model.elapsed() - env.clock_cost.mean;
6923                     if (sample_time < FloatDuration<Clock>::zero()) sample_time = FloatDuration<Clock>::zero();
6924                     return sample_time / iterations_per_sample;
6925                 });
6926                 return times;
6927             }
6928         };
6929     } // namespace Benchmark
6930 } // namespace Catch
6931 
6932 // end catch_execution_plan.hpp
6933 // start catch_estimate_clock.hpp
6934 
6935  // Environment measurement
6936 
6937 
6938 // start catch_stats.hpp
6939 
6940 // Statistical analysis tools
6941 
6942 
6943 #include <algorithm>
6944 #include <functional>
6945 #include <vector>
6946 #include <iterator>
6947 #include <numeric>
6948 #include <tuple>
6949 #include <cmath>
6950 #include <utility>
6951 #include <cstddef>
6952 #include <random>
6953 
6954 namespace Catch {
6955     namespace Benchmark {
6956         namespace Detail {
6957             using sample = std::vector<double>;
6958 
6959             double weighted_average_quantile(int k, int q, std::vector<double>::iterator first, std::vector<double>::iterator last);
6960 
6961             template <typename Iterator>
classify_outliers(Iterator first,Iterator last)6962             OutlierClassification classify_outliers(Iterator first, Iterator last) {
6963                 std::vector<double> copy(first, last);
6964 
6965                 auto q1 = weighted_average_quantile(1, 4, copy.begin(), copy.end());
6966                 auto q3 = weighted_average_quantile(3, 4, copy.begin(), copy.end());
6967                 auto iqr = q3 - q1;
6968                 auto los = q1 - (iqr * 3.);
6969                 auto lom = q1 - (iqr * 1.5);
6970                 auto him = q3 + (iqr * 1.5);
6971                 auto his = q3 + (iqr * 3.);
6972 
6973                 OutlierClassification o;
6974                 for (; first != last; ++first) {
6975                     auto&& t = *first;
6976                     if (t < los) ++o.low_severe;
6977                     else if (t < lom) ++o.low_mild;
6978                     else if (t > his) ++o.high_severe;
6979                     else if (t > him) ++o.high_mild;
6980                     ++o.samples_seen;
6981                 }
6982                 return o;
6983             }
6984 
6985             template <typename Iterator>
mean(Iterator first,Iterator last)6986             double mean(Iterator first, Iterator last) {
6987                 auto count = last - first;
6988                 double sum = std::accumulate(first, last, 0.);
6989                 return sum / count;
6990             }
6991 
6992             template <typename URng, typename Iterator, typename Estimator>
resample(URng & rng,int resamples,Iterator first,Iterator last,Estimator & estimator)6993             sample resample(URng& rng, int resamples, Iterator first, Iterator last, Estimator& estimator) {
6994                 auto n = last - first;
6995                 std::uniform_int_distribution<decltype(n)> dist(0, n - 1);
6996 
6997                 sample out;
6998                 out.reserve(resamples);
6999                 std::generate_n(std::back_inserter(out), resamples, [n, first, &estimator, &dist, &rng] {
7000                     std::vector<double> resampled;
7001                     resampled.reserve(n);
7002                     std::generate_n(std::back_inserter(resampled), n, [first, &dist, &rng] { return first[dist(rng)]; });
7003                     return estimator(resampled.begin(), resampled.end());
7004                 });
7005                 std::sort(out.begin(), out.end());
7006                 return out;
7007             }
7008 
7009             template <typename Estimator, typename Iterator>
jackknife(Estimator && estimator,Iterator first,Iterator last)7010             sample jackknife(Estimator&& estimator, Iterator first, Iterator last) {
7011                 auto n = last - first;
7012                 auto second = std::next(first);
7013                 sample results;
7014                 results.reserve(n);
7015 
7016                 for (auto it = first; it != last; ++it) {
7017                     std::iter_swap(it, first);
7018                     results.push_back(estimator(second, last));
7019                 }
7020 
7021                 return results;
7022             }
7023 
normal_cdf(double x)7024             inline double normal_cdf(double x) {
7025                 return std::erfc(-x / std::sqrt(2.0)) / 2.0;
7026             }
7027 
7028             double erfc_inv(double x);
7029 
7030             double normal_quantile(double p);
7031 
7032             template <typename Iterator, typename Estimator>
bootstrap(double confidence_level,Iterator first,Iterator last,sample const & resample,Estimator && estimator)7033             Estimate<double> bootstrap(double confidence_level, Iterator first, Iterator last, sample const& resample, Estimator&& estimator) {
7034                 auto n_samples = last - first;
7035 
7036                 double point = estimator(first, last);
7037                 // Degenerate case with a single sample
7038                 if (n_samples == 1) return { point, point, point, confidence_level };
7039 
7040                 sample jack = jackknife(estimator, first, last);
7041                 double jack_mean = mean(jack.begin(), jack.end());
7042                 double sum_squares, sum_cubes;
7043                 std::tie(sum_squares, sum_cubes) = std::accumulate(jack.begin(), jack.end(), std::make_pair(0., 0.), [jack_mean](std::pair<double, double> sqcb, double x) -> std::pair<double, double> {
7044                     auto d = jack_mean - x;
7045                     auto d2 = d * d;
7046                     auto d3 = d2 * d;
7047                     return { sqcb.first + d2, sqcb.second + d3 };
7048                 });
7049 
7050                 double accel = sum_cubes / (6 * std::pow(sum_squares, 1.5));
7051                 int n = static_cast<int>(resample.size());
7052                 double prob_n = std::count_if(resample.begin(), resample.end(), [point](double x) { return x < point; }) / (double)n;
7053                 // degenerate case with uniform samples
7054                 if (prob_n == 0) return { point, point, point, confidence_level };
7055 
7056                 double bias = normal_quantile(prob_n);
7057                 double z1 = normal_quantile((1. - confidence_level) / 2.);
7058 
7059                 auto cumn = [n](double x) -> int {
7060                     return std::lround(normal_cdf(x) * n); };
7061                 auto a = [bias, accel](double b) { return bias + b / (1. - accel * b); };
7062                 double b1 = bias + z1;
7063                 double b2 = bias - z1;
7064                 double a1 = a(b1);
7065                 double a2 = a(b2);
7066                 auto lo = std::max(cumn(a1), 0);
7067                 auto hi = std::min(cumn(a2), n - 1);
7068 
7069                 return { point, resample[lo], resample[hi], confidence_level };
7070             }
7071 
7072             double outlier_variance(Estimate<double> mean, Estimate<double> stddev, int n);
7073 
7074             struct bootstrap_analysis {
7075                 Estimate<double> mean;
7076                 Estimate<double> standard_deviation;
7077                 double outlier_variance;
7078             };
7079 
7080             bootstrap_analysis analyse_samples(double confidence_level, int n_resamples, std::vector<double>::iterator first, std::vector<double>::iterator last);
7081         } // namespace Detail
7082     } // namespace Benchmark
7083 } // namespace Catch
7084 
7085 // end catch_stats.hpp
7086 #include <algorithm>
7087 #include <iterator>
7088 #include <tuple>
7089 #include <vector>
7090 #include <cmath>
7091 
7092 namespace Catch {
7093     namespace Benchmark {
7094         namespace Detail {
7095             template <typename Clock>
resolution(int k)7096             std::vector<double> resolution(int k) {
7097                 std::vector<TimePoint<Clock>> times;
7098                 times.reserve(k + 1);
7099                 std::generate_n(std::back_inserter(times), k + 1, now<Clock>{});
7100 
7101                 std::vector<double> deltas;
7102                 deltas.reserve(k);
7103                 std::transform(std::next(times.begin()), times.end(), times.begin(),
7104                     std::back_inserter(deltas),
7105                     [](TimePoint<Clock> a, TimePoint<Clock> b) { return static_cast<double>((a - b).count()); });
7106 
7107                 return deltas;
7108             }
7109 
7110             const auto warmup_iterations = 10000;
7111             const auto warmup_time = std::chrono::milliseconds(100);
7112             const auto minimum_ticks = 1000;
7113             const auto warmup_seed = 10000;
7114             const auto clock_resolution_estimation_time = std::chrono::milliseconds(500);
7115             const auto clock_cost_estimation_time_limit = std::chrono::seconds(1);
7116             const auto clock_cost_estimation_tick_limit = 100000;
7117             const auto clock_cost_estimation_time = std::chrono::milliseconds(10);
7118             const auto clock_cost_estimation_iterations = 10000;
7119 
7120             template <typename Clock>
warmup()7121             int warmup() {
7122                 return run_for_at_least<Clock>(std::chrono::duration_cast<ClockDuration<Clock>>(warmup_time), warmup_seed, &resolution<Clock>)
7123                     .iterations;
7124             }
7125             template <typename Clock>
estimate_clock_resolution(int iterations)7126             EnvironmentEstimate<FloatDuration<Clock>> estimate_clock_resolution(int iterations) {
7127                 auto r = run_for_at_least<Clock>(std::chrono::duration_cast<ClockDuration<Clock>>(clock_resolution_estimation_time), iterations, &resolution<Clock>)
7128                     .result;
7129                 return {
7130                     FloatDuration<Clock>(mean(r.begin(), r.end())),
7131                     classify_outliers(r.begin(), r.end()),
7132                 };
7133             }
7134             template <typename Clock>
estimate_clock_cost(FloatDuration<Clock> resolution)7135             EnvironmentEstimate<FloatDuration<Clock>> estimate_clock_cost(FloatDuration<Clock> resolution) {
7136                 auto time_limit = std::min(resolution * clock_cost_estimation_tick_limit, FloatDuration<Clock>(clock_cost_estimation_time_limit));
7137                 auto time_clock = [](int k) {
7138                     return Detail::measure<Clock>([k] {
7139                         for (int i = 0; i < k; ++i) {
7140                             volatile auto ignored = Clock::now();
7141                             (void)ignored;
7142                         }
7143                     }).elapsed;
7144                 };
7145                 time_clock(1);
7146                 int iters = clock_cost_estimation_iterations;
7147                 auto&& r = run_for_at_least<Clock>(std::chrono::duration_cast<ClockDuration<Clock>>(clock_cost_estimation_time), iters, time_clock);
7148                 std::vector<double> times;
7149                 int nsamples = static_cast<int>(std::ceil(time_limit / r.elapsed));
7150                 times.reserve(nsamples);
7151                 std::generate_n(std::back_inserter(times), nsamples, [time_clock, &r] {
7152                     return static_cast<double>((time_clock(r.iterations) / r.iterations).count());
7153                 });
7154                 return {
7155                     FloatDuration<Clock>(mean(times.begin(), times.end())),
7156                     classify_outliers(times.begin(), times.end()),
7157                 };
7158             }
7159 
7160             template <typename Clock>
measure_environment()7161             Environment<FloatDuration<Clock>> measure_environment() {
7162                 static Environment<FloatDuration<Clock>>* env = nullptr;
7163                 if (env) {
7164                     return *env;
7165                 }
7166 
7167                 auto iters = Detail::warmup<Clock>();
7168                 auto resolution = Detail::estimate_clock_resolution<Clock>(iters);
7169                 auto cost = Detail::estimate_clock_cost<Clock>(resolution.mean);
7170 
7171                 env = new Environment<FloatDuration<Clock>>{ resolution, cost };
7172                 return *env;
7173             }
7174         } // namespace Detail
7175     } // namespace Benchmark
7176 } // namespace Catch
7177 
7178 // end catch_estimate_clock.hpp
7179 // start catch_analyse.hpp
7180 
7181  // Run and analyse one benchmark
7182 
7183 
7184 // start catch_sample_analysis.hpp
7185 
7186 // Benchmark results
7187 
7188 
7189 #include <algorithm>
7190 #include <vector>
7191 #include <string>
7192 #include <iterator>
7193 
7194 namespace Catch {
7195     namespace Benchmark {
7196         template <typename Duration>
7197         struct SampleAnalysis {
7198             std::vector<Duration> samples;
7199             Estimate<Duration> mean;
7200             Estimate<Duration> standard_deviation;
7201             OutlierClassification outliers;
7202             double outlier_variance;
7203 
7204             template <typename Duration2>
operator SampleAnalysis<Duration2>Catch::Benchmark::SampleAnalysis7205             operator SampleAnalysis<Duration2>() const {
7206                 std::vector<Duration2> samples2;
7207                 samples2.reserve(samples.size());
7208                 std::transform(samples.begin(), samples.end(), std::back_inserter(samples2), [](Duration d) { return Duration2(d); });
7209                 return {
7210                     std::move(samples2),
7211                     mean,
7212                     standard_deviation,
7213                     outliers,
7214                     outlier_variance,
7215                 };
7216             }
7217         };
7218     } // namespace Benchmark
7219 } // namespace Catch
7220 
7221 // end catch_sample_analysis.hpp
7222 #include <algorithm>
7223 #include <iterator>
7224 #include <vector>
7225 
7226 namespace Catch {
7227     namespace Benchmark {
7228         namespace Detail {
7229             template <typename Duration, typename Iterator>
analyse(const IConfig & cfg,Environment<Duration>,Iterator first,Iterator last)7230             SampleAnalysis<Duration> analyse(const IConfig &cfg, Environment<Duration>, Iterator first, Iterator last) {
7231                 if (!cfg.benchmarkNoAnalysis()) {
7232                     std::vector<double> samples;
7233                     samples.reserve(last - first);
7234                     std::transform(first, last, std::back_inserter(samples), [](Duration d) { return d.count(); });
7235 
7236                     auto analysis = Catch::Benchmark::Detail::analyse_samples(cfg.benchmarkConfidenceInterval(), cfg.benchmarkResamples(), samples.begin(), samples.end());
7237                     auto outliers = Catch::Benchmark::Detail::classify_outliers(samples.begin(), samples.end());
7238 
7239                     auto wrap_estimate = [](Estimate<double> e) {
7240                         return Estimate<Duration> {
7241                             Duration(e.point),
7242                                 Duration(e.lower_bound),
7243                                 Duration(e.upper_bound),
7244                                 e.confidence_interval,
7245                         };
7246                     };
7247                     std::vector<Duration> samples2;
7248                     samples2.reserve(samples.size());
7249                     std::transform(samples.begin(), samples.end(), std::back_inserter(samples2), [](double d) { return Duration(d); });
7250                     return {
7251                         std::move(samples2),
7252                         wrap_estimate(analysis.mean),
7253                         wrap_estimate(analysis.standard_deviation),
7254                         outliers,
7255                         analysis.outlier_variance,
7256                     };
7257                 } else {
7258                     std::vector<Duration> samples;
7259                     samples.reserve(last - first);
7260 
7261                     Duration mean = Duration(0);
7262                     int i = 0;
7263                     for (auto it = first; it < last; ++it, ++i) {
7264                         samples.push_back(Duration(*it));
7265                         mean += Duration(*it);
7266                     }
7267                     mean /= i;
7268 
7269                     return {
7270                         std::move(samples),
7271                         Estimate<Duration>{mean, mean, mean, 0.0},
7272                         Estimate<Duration>{Duration(0), Duration(0), Duration(0), 0.0},
7273                         OutlierClassification{},
7274                         0.0
7275                     };
7276                 }
7277             }
7278         } // namespace Detail
7279     } // namespace Benchmark
7280 } // namespace Catch
7281 
7282 // end catch_analyse.hpp
7283 #include <algorithm>
7284 #include <functional>
7285 #include <string>
7286 #include <vector>
7287 #include <cmath>
7288 
7289 namespace Catch {
7290     namespace Benchmark {
7291         struct Benchmark {
BenchmarkCatch::Benchmark::Benchmark7292             Benchmark(std::string &&name)
7293                 : name(std::move(name)) {}
7294 
7295             template <class FUN>
BenchmarkCatch::Benchmark::Benchmark7296             Benchmark(std::string &&name, FUN &&func)
7297                 : fun(std::move(func)), name(std::move(name)) {}
7298 
7299             template <typename Clock>
prepareCatch::Benchmark::Benchmark7300             ExecutionPlan<FloatDuration<Clock>> prepare(const IConfig &cfg, Environment<FloatDuration<Clock>> env) const {
7301                 auto min_time = env.clock_resolution.mean * Detail::minimum_ticks;
7302                 auto run_time = std::max(min_time, std::chrono::duration_cast<decltype(min_time)>(cfg.benchmarkWarmupTime()));
7303                 auto&& test = Detail::run_for_at_least<Clock>(std::chrono::duration_cast<ClockDuration<Clock>>(run_time), 1, fun);
7304                 int new_iters = static_cast<int>(std::ceil(min_time * test.iterations / test.elapsed));
7305                 return { new_iters, test.elapsed / test.iterations * new_iters * cfg.benchmarkSamples(), fun, std::chrono::duration_cast<FloatDuration<Clock>>(cfg.benchmarkWarmupTime()), Detail::warmup_iterations };
7306             }
7307 
7308             template <typename Clock = default_clock>
runCatch::Benchmark::Benchmark7309             void run() {
7310                 IConfigPtr cfg = getCurrentContext().getConfig();
7311 
7312                 auto env = Detail::measure_environment<Clock>();
7313 
7314                 getResultCapture().benchmarkPreparing(name);
7315                 CATCH_TRY{
7316                     auto plan = user_code([&] {
7317                         return prepare<Clock>(*cfg, env);
7318                     });
7319 
7320                     BenchmarkInfo info {
7321                         name,
7322                         plan.estimated_duration.count(),
7323                         plan.iterations_per_sample,
7324                         cfg->benchmarkSamples(),
7325                         cfg->benchmarkResamples(),
7326                         env.clock_resolution.mean.count(),
7327                         env.clock_cost.mean.count()
7328                     };
7329 
7330                     getResultCapture().benchmarkStarting(info);
7331 
7332                     auto samples = user_code([&] {
7333                         return plan.template run<Clock>(*cfg, env);
7334                     });
7335 
7336                     auto analysis = Detail::analyse(*cfg, env, samples.begin(), samples.end());
7337                     BenchmarkStats<FloatDuration<Clock>> stats{ info, analysis.samples, analysis.mean, analysis.standard_deviation, analysis.outliers, analysis.outlier_variance };
7338                     getResultCapture().benchmarkEnded(stats);
7339 
7340                 } CATCH_CATCH_ALL{
7341                     if (translateActiveException() != Detail::benchmarkErrorMsg) // benchmark errors have been reported, otherwise rethrow.
7342                         std::rethrow_exception(std::current_exception());
7343                 }
7344             }
7345 
7346             // sets lambda to be used in fun *and* executes benchmark!
7347             template <typename Fun,
7348                 typename std::enable_if<!Detail::is_related<Fun, Benchmark>::value, int>::type = 0>
operator =Catch::Benchmark::Benchmark7349                 Benchmark & operator=(Fun func) {
7350                 fun = Detail::BenchmarkFunction(func);
7351                 run();
7352                 return *this;
7353             }
7354 
operator boolCatch::Benchmark::Benchmark7355             explicit operator bool() {
7356                 return true;
7357             }
7358 
7359         private:
7360             Detail::BenchmarkFunction fun;
7361             std::string name;
7362         };
7363     }
7364 } // namespace Catch
7365 
7366 #define INTERNAL_CATCH_GET_1_ARG(arg1, arg2, ...) arg1
7367 #define INTERNAL_CATCH_GET_2_ARG(arg1, arg2, ...) arg2
7368 
7369 #define INTERNAL_CATCH_BENCHMARK(BenchmarkName, name, benchmarkIndex)\
7370     if( Catch::Benchmark::Benchmark BenchmarkName{name} ) \
7371         BenchmarkName = [&](int benchmarkIndex)
7372 
7373 #define INTERNAL_CATCH_BENCHMARK_ADVANCED(BenchmarkName, name)\
7374     if( Catch::Benchmark::Benchmark BenchmarkName{name} ) \
7375         BenchmarkName = [&]
7376 
7377 // end catch_benchmark.hpp
7378 // start catch_constructor.hpp
7379 
7380 // Constructor and destructor helpers
7381 
7382 
7383 #include <type_traits>
7384 
7385 namespace Catch {
7386     namespace Benchmark {
7387         namespace Detail {
7388             template <typename T, bool Destruct>
7389             struct ObjectStorage
7390             {
7391                 using TStorage = typename std::aligned_storage<sizeof(T), std::alignment_of<T>::value>::type;
7392 
ObjectStorageCatch::Benchmark::Detail::ObjectStorage7393                 ObjectStorage() : data() {}
7394 
ObjectStorageCatch::Benchmark::Detail::ObjectStorage7395                 ObjectStorage(const ObjectStorage& other)
7396                 {
7397                     new(&data) T(other.stored_object());
7398                 }
7399 
ObjectStorageCatch::Benchmark::Detail::ObjectStorage7400                 ObjectStorage(ObjectStorage&& other)
7401                 {
7402                     new(&data) T(std::move(other.stored_object()));
7403                 }
7404 
~ObjectStorageCatch::Benchmark::Detail::ObjectStorage7405                 ~ObjectStorage() { destruct_on_exit<T>(); }
7406 
7407                 template <typename... Args>
constructCatch::Benchmark::Detail::ObjectStorage7408                 void construct(Args&&... args)
7409                 {
7410                     new (&data) T(std::forward<Args>(args)...);
7411                 }
7412 
7413                 template <bool AllowManualDestruction = !Destruct>
destructCatch::Benchmark::Detail::ObjectStorage7414                 typename std::enable_if<AllowManualDestruction>::type destruct()
7415                 {
7416                     stored_object().~T();
7417                 }
7418 
7419             private:
7420                 // If this is a constructor benchmark, destruct the underlying object
7421                 template <typename U>
destruct_on_exitCatch::Benchmark::Detail::ObjectStorage7422                 void destruct_on_exit(typename std::enable_if<Destruct, U>::type* = 0) { destruct<true>(); }
7423                 // Otherwise, don't
7424                 template <typename U>
destruct_on_exitCatch::Benchmark::Detail::ObjectStorage7425                 void destruct_on_exit(typename std::enable_if<!Destruct, U>::type* = 0) { }
7426 
stored_objectCatch::Benchmark::Detail::ObjectStorage7427                 T& stored_object() {
7428                     return *static_cast<T*>(static_cast<void*>(&data));
7429                 }
7430 
stored_objectCatch::Benchmark::Detail::ObjectStorage7431                 T const& stored_object() const {
7432                     return *static_cast<T*>(static_cast<void*>(&data));
7433                 }
7434 
7435                 TStorage data;
7436             };
7437         }
7438 
7439         template <typename T>
7440         using storage_for = Detail::ObjectStorage<T, true>;
7441 
7442         template <typename T>
7443         using destructable_object = Detail::ObjectStorage<T, false>;
7444     }
7445 }
7446 
7447 // end catch_constructor.hpp
7448 // end catch_benchmarking_all.hpp
7449 #endif
7450 
7451 #endif // ! CATCH_CONFIG_IMPL_ONLY
7452 
7453 #ifdef CATCH_IMPL
7454 // start catch_impl.hpp
7455 
7456 #ifdef __clang__
7457 #pragma clang diagnostic push
7458 #pragma clang diagnostic ignored "-Wweak-vtables"
7459 #endif
7460 
7461 // Keep these here for external reporters
7462 // start catch_test_case_tracker.h
7463 
7464 #include <string>
7465 #include <vector>
7466 #include <memory>
7467 
7468 namespace Catch {
7469 namespace TestCaseTracking {
7470 
7471     struct NameAndLocation {
7472         std::string name;
7473         SourceLineInfo location;
7474 
7475         NameAndLocation( std::string const& _name, SourceLineInfo const& _location );
operator ==(NameAndLocation const & lhs,NameAndLocation const & rhs)7476         friend bool operator==(NameAndLocation const& lhs, NameAndLocation const& rhs) {
7477             return lhs.name == rhs.name
7478                 && lhs.location == rhs.location;
7479         }
7480     };
7481 
7482     class ITracker;
7483 
7484     using ITrackerPtr = std::shared_ptr<ITracker>;
7485 
7486     class  ITracker {
7487         NameAndLocation m_nameAndLocation;
7488 
7489     public:
ITracker(NameAndLocation const & nameAndLoc)7490         ITracker(NameAndLocation const& nameAndLoc) :
7491             m_nameAndLocation(nameAndLoc)
7492         {}
7493 
7494         // static queries
nameAndLocation() const7495         NameAndLocation const& nameAndLocation() const {
7496             return m_nameAndLocation;
7497         }
7498 
7499         virtual ~ITracker();
7500 
7501         // dynamic queries
7502         virtual bool isComplete() const = 0; // Successfully completed or failed
7503         virtual bool isSuccessfullyCompleted() const = 0;
7504         virtual bool isOpen() const = 0; // Started but not complete
7505         virtual bool hasChildren() const = 0;
7506         virtual bool hasStarted() const = 0;
7507 
7508         virtual ITracker& parent() = 0;
7509 
7510         // actions
7511         virtual void close() = 0; // Successfully complete
7512         virtual void fail() = 0;
7513         virtual void markAsNeedingAnotherRun() = 0;
7514 
7515         virtual void addChild( ITrackerPtr const& child ) = 0;
7516         virtual ITrackerPtr findChild( NameAndLocation const& nameAndLocation ) = 0;
7517         virtual void openChild() = 0;
7518 
7519         // Debug/ checking
7520         virtual bool isSectionTracker() const = 0;
7521         virtual bool isGeneratorTracker() const = 0;
7522     };
7523 
7524     class TrackerContext {
7525 
7526         enum RunState {
7527             NotStarted,
7528             Executing,
7529             CompletedCycle
7530         };
7531 
7532         ITrackerPtr m_rootTracker;
7533         ITracker* m_currentTracker = nullptr;
7534         RunState m_runState = NotStarted;
7535 
7536     public:
7537 
7538         ITracker& startRun();
7539         void endRun();
7540 
7541         void startCycle();
7542         void completeCycle();
7543 
7544         bool completedCycle() const;
7545         ITracker& currentTracker();
7546         void setCurrentTracker( ITracker* tracker );
7547     };
7548 
7549     class TrackerBase : public ITracker {
7550     protected:
7551         enum CycleState {
7552             NotStarted,
7553             Executing,
7554             ExecutingChildren,
7555             NeedsAnotherRun,
7556             CompletedSuccessfully,
7557             Failed
7558         };
7559 
7560         using Children = std::vector<ITrackerPtr>;
7561         TrackerContext& m_ctx;
7562         ITracker* m_parent;
7563         Children m_children;
7564         CycleState m_runState = NotStarted;
7565 
7566     public:
7567         TrackerBase( NameAndLocation const& nameAndLocation, TrackerContext& ctx, ITracker* parent );
7568 
7569         bool isComplete() const override;
7570         bool isSuccessfullyCompleted() const override;
7571         bool isOpen() const override;
7572         bool hasChildren() const override;
hasStarted() const7573         bool hasStarted() const override {
7574             return m_runState != NotStarted;
7575         }
7576 
7577         void addChild( ITrackerPtr const& child ) override;
7578 
7579         ITrackerPtr findChild( NameAndLocation const& nameAndLocation ) override;
7580         ITracker& parent() override;
7581 
7582         void openChild() override;
7583 
7584         bool isSectionTracker() const override;
7585         bool isGeneratorTracker() const override;
7586 
7587         void open();
7588 
7589         void close() override;
7590         void fail() override;
7591         void markAsNeedingAnotherRun() override;
7592 
7593     private:
7594         void moveToParent();
7595         void moveToThis();
7596     };
7597 
7598     class SectionTracker : public TrackerBase {
7599         std::vector<std::string> m_filters;
7600         std::string m_trimmed_name;
7601     public:
7602         SectionTracker( NameAndLocation const& nameAndLocation, TrackerContext& ctx, ITracker* parent );
7603 
7604         bool isSectionTracker() const override;
7605 
7606         bool isComplete() const override;
7607 
7608         static SectionTracker& acquire( TrackerContext& ctx, NameAndLocation const& nameAndLocation );
7609 
7610         void tryOpen();
7611 
7612         void addInitialFilters( std::vector<std::string> const& filters );
7613         void addNextFilters( std::vector<std::string> const& filters );
7614     };
7615 
7616 } // namespace TestCaseTracking
7617 
7618 using TestCaseTracking::ITracker;
7619 using TestCaseTracking::TrackerContext;
7620 using TestCaseTracking::SectionTracker;
7621 
7622 } // namespace Catch
7623 
7624 // end catch_test_case_tracker.h
7625 
7626 // start catch_leak_detector.h
7627 
7628 namespace Catch {
7629 
7630     struct LeakDetector {
7631         LeakDetector();
7632         ~LeakDetector();
7633     };
7634 
7635 }
7636 // end catch_leak_detector.h
7637 // Cpp files will be included in the single-header file here
7638 // start catch_stats.cpp
7639 
7640 // Statistical analysis tools
7641 
7642 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
7643 
7644 #include <cassert>
7645 #include <random>
7646 
7647 #if defined(CATCH_CONFIG_USE_ASYNC)
7648 #include <future>
7649 #endif
7650 
7651 namespace {
erf_inv(double x)7652     double erf_inv(double x) {
7653         // Code accompanying the article "Approximating the erfinv function" in GPU Computing Gems, Volume 2
7654         double w, p;
7655 
7656         w = -log((1.0 - x) * (1.0 + x));
7657 
7658         if (w < 6.250000) {
7659             w = w - 3.125000;
7660             p = -3.6444120640178196996e-21;
7661             p = -1.685059138182016589e-19 + p * w;
7662             p = 1.2858480715256400167e-18 + p * w;
7663             p = 1.115787767802518096e-17 + p * w;
7664             p = -1.333171662854620906e-16 + p * w;
7665             p = 2.0972767875968561637e-17 + p * w;
7666             p = 6.6376381343583238325e-15 + p * w;
7667             p = -4.0545662729752068639e-14 + p * w;
7668             p = -8.1519341976054721522e-14 + p * w;
7669             p = 2.6335093153082322977e-12 + p * w;
7670             p = -1.2975133253453532498e-11 + p * w;
7671             p = -5.4154120542946279317e-11 + p * w;
7672             p = 1.051212273321532285e-09 + p * w;
7673             p = -4.1126339803469836976e-09 + p * w;
7674             p = -2.9070369957882005086e-08 + p * w;
7675             p = 4.2347877827932403518e-07 + p * w;
7676             p = -1.3654692000834678645e-06 + p * w;
7677             p = -1.3882523362786468719e-05 + p * w;
7678             p = 0.0001867342080340571352 + p * w;
7679             p = -0.00074070253416626697512 + p * w;
7680             p = -0.0060336708714301490533 + p * w;
7681             p = 0.24015818242558961693 + p * w;
7682             p = 1.6536545626831027356 + p * w;
7683         } else if (w < 16.000000) {
7684             w = sqrt(w) - 3.250000;
7685             p = 2.2137376921775787049e-09;
7686             p = 9.0756561938885390979e-08 + p * w;
7687             p = -2.7517406297064545428e-07 + p * w;
7688             p = 1.8239629214389227755e-08 + p * w;
7689             p = 1.5027403968909827627e-06 + p * w;
7690             p = -4.013867526981545969e-06 + p * w;
7691             p = 2.9234449089955446044e-06 + p * w;
7692             p = 1.2475304481671778723e-05 + p * w;
7693             p = -4.7318229009055733981e-05 + p * w;
7694             p = 6.8284851459573175448e-05 + p * w;
7695             p = 2.4031110387097893999e-05 + p * w;
7696             p = -0.0003550375203628474796 + p * w;
7697             p = 0.00095328937973738049703 + p * w;
7698             p = -0.0016882755560235047313 + p * w;
7699             p = 0.0024914420961078508066 + p * w;
7700             p = -0.0037512085075692412107 + p * w;
7701             p = 0.005370914553590063617 + p * w;
7702             p = 1.0052589676941592334 + p * w;
7703             p = 3.0838856104922207635 + p * w;
7704         } else {
7705             w = sqrt(w) - 5.000000;
7706             p = -2.7109920616438573243e-11;
7707             p = -2.5556418169965252055e-10 + p * w;
7708             p = 1.5076572693500548083e-09 + p * w;
7709             p = -3.7894654401267369937e-09 + p * w;
7710             p = 7.6157012080783393804e-09 + p * w;
7711             p = -1.4960026627149240478e-08 + p * w;
7712             p = 2.9147953450901080826e-08 + p * w;
7713             p = -6.7711997758452339498e-08 + p * w;
7714             p = 2.2900482228026654717e-07 + p * w;
7715             p = -9.9298272942317002539e-07 + p * w;
7716             p = 4.5260625972231537039e-06 + p * w;
7717             p = -1.9681778105531670567e-05 + p * w;
7718             p = 7.5995277030017761139e-05 + p * w;
7719             p = -0.00021503011930044477347 + p * w;
7720             p = -0.00013871931833623122026 + p * w;
7721             p = 1.0103004648645343977 + p * w;
7722             p = 4.8499064014085844221 + p * w;
7723         }
7724         return p * x;
7725     }
7726 
standard_deviation(std::vector<double>::iterator first,std::vector<double>::iterator last)7727     double standard_deviation(std::vector<double>::iterator first, std::vector<double>::iterator last) {
7728         auto m = Catch::Benchmark::Detail::mean(first, last);
7729         double variance = std::accumulate(first, last, 0., [m](double a, double b) {
7730             double diff = b - m;
7731             return a + diff * diff;
7732             }) / (last - first);
7733             return std::sqrt(variance);
7734     }
7735 
7736 }
7737 
7738 namespace Catch {
7739     namespace Benchmark {
7740         namespace Detail {
7741 
weighted_average_quantile(int k,int q,std::vector<double>::iterator first,std::vector<double>::iterator last)7742             double weighted_average_quantile(int k, int q, std::vector<double>::iterator first, std::vector<double>::iterator last) {
7743                 auto count = last - first;
7744                 double idx = (count - 1) * k / static_cast<double>(q);
7745                 int j = static_cast<int>(idx);
7746                 double g = idx - j;
7747                 std::nth_element(first, first + j, last);
7748                 auto xj = first[j];
7749                 if (g == 0) return xj;
7750 
7751                 auto xj1 = *std::min_element(first + (j + 1), last);
7752                 return xj + g * (xj1 - xj);
7753             }
7754 
erfc_inv(double x)7755             double erfc_inv(double x) {
7756                 return erf_inv(1.0 - x);
7757             }
7758 
normal_quantile(double p)7759             double normal_quantile(double p) {
7760                 static const double ROOT_TWO = std::sqrt(2.0);
7761 
7762                 double result = 0.0;
7763                 assert(p >= 0 && p <= 1);
7764                 if (p < 0 || p > 1) {
7765                     return result;
7766                 }
7767 
7768                 result = -erfc_inv(2.0 * p);
7769                 // result *= normal distribution standard deviation (1.0) * sqrt(2)
7770                 result *= /*sd * */ ROOT_TWO;
7771                 // result += normal disttribution mean (0)
7772                 return result;
7773             }
7774 
outlier_variance(Estimate<double> mean,Estimate<double> stddev,int n)7775             double outlier_variance(Estimate<double> mean, Estimate<double> stddev, int n) {
7776                 double sb = stddev.point;
7777                 double mn = mean.point / n;
7778                 double mg_min = mn / 2.;
7779                 double sg = std::min(mg_min / 4., sb / std::sqrt(n));
7780                 double sg2 = sg * sg;
7781                 double sb2 = sb * sb;
7782 
7783                 auto c_max = [n, mn, sb2, sg2](double x) -> double {
7784                     double k = mn - x;
7785                     double d = k * k;
7786                     double nd = n * d;
7787                     double k0 = -n * nd;
7788                     double k1 = sb2 - n * sg2 + nd;
7789                     double det = k1 * k1 - 4 * sg2 * k0;
7790                     return (int)(-2. * k0 / (k1 + std::sqrt(det)));
7791                 };
7792 
7793                 auto var_out = [n, sb2, sg2](double c) {
7794                     double nc = n - c;
7795                     return (nc / n) * (sb2 - nc * sg2);
7796                 };
7797 
7798                 return std::min(var_out(1), var_out(std::min(c_max(0.), c_max(mg_min)))) / sb2;
7799             }
7800 
analyse_samples(double confidence_level,int n_resamples,std::vector<double>::iterator first,std::vector<double>::iterator last)7801             bootstrap_analysis analyse_samples(double confidence_level, int n_resamples, std::vector<double>::iterator first, std::vector<double>::iterator last) {
7802                 CATCH_INTERNAL_START_WARNINGS_SUPPRESSION
7803                 CATCH_INTERNAL_SUPPRESS_GLOBALS_WARNINGS
7804                 static std::random_device entropy;
7805                 CATCH_INTERNAL_STOP_WARNINGS_SUPPRESSION
7806 
7807                 auto n = static_cast<int>(last - first); // seriously, one can't use integral types without hell in C++
7808 
7809                 auto mean = &Detail::mean<std::vector<double>::iterator>;
7810                 auto stddev = &standard_deviation;
7811 
7812 #if defined(CATCH_CONFIG_USE_ASYNC)
7813                 auto Estimate = [=](double(*f)(std::vector<double>::iterator, std::vector<double>::iterator)) {
7814                     auto seed = entropy();
7815                     return std::async(std::launch::async, [=] {
7816                         std::mt19937 rng(seed);
7817                         auto resampled = resample(rng, n_resamples, first, last, f);
7818                         return bootstrap(confidence_level, first, last, resampled, f);
7819                     });
7820                 };
7821 
7822                 auto mean_future = Estimate(mean);
7823                 auto stddev_future = Estimate(stddev);
7824 
7825                 auto mean_estimate = mean_future.get();
7826                 auto stddev_estimate = stddev_future.get();
7827 #else
7828                 auto Estimate = [=](double(*f)(std::vector<double>::iterator, std::vector<double>::iterator)) {
7829                     auto seed = entropy();
7830                     std::mt19937 rng(seed);
7831                     auto resampled = resample(rng, n_resamples, first, last, f);
7832                     return bootstrap(confidence_level, first, last, resampled, f);
7833                 };
7834 
7835                 auto mean_estimate = Estimate(mean);
7836                 auto stddev_estimate = Estimate(stddev);
7837 #endif // CATCH_USE_ASYNC
7838 
7839                 double outlier_variance = Detail::outlier_variance(mean_estimate, stddev_estimate, n);
7840 
7841                 return { mean_estimate, stddev_estimate, outlier_variance };
7842             }
7843         } // namespace Detail
7844     } // namespace Benchmark
7845 } // namespace Catch
7846 
7847 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
7848 // end catch_stats.cpp
7849 // start catch_approx.cpp
7850 
7851 #include <cmath>
7852 #include <limits>
7853 
7854 namespace {
7855 
7856 // Performs equivalent check of std::fabs(lhs - rhs) <= margin
7857 // But without the subtraction to allow for INFINITY in comparison
marginComparison(double lhs,double rhs,double margin)7858 bool marginComparison(double lhs, double rhs, double margin) {
7859     return (lhs + margin >= rhs) && (rhs + margin >= lhs);
7860 }
7861 
7862 }
7863 
7864 namespace Catch {
7865 namespace Detail {
7866 
Approx(double value)7867     Approx::Approx ( double value )
7868     :   m_epsilon( std::numeric_limits<float>::epsilon()*100 ),
7869         m_margin( 0.0 ),
7870         m_scale( 0.0 ),
7871         m_value( value )
7872     {}
7873 
custom()7874     Approx Approx::custom() {
7875         return Approx( 0 );
7876     }
7877 
operator -() const7878     Approx Approx::operator-() const {
7879         auto temp(*this);
7880         temp.m_value = -temp.m_value;
7881         return temp;
7882     }
7883 
toString() const7884     std::string Approx::toString() const {
7885         ReusableStringStream rss;
7886         rss << "Approx( " << ::Catch::Detail::stringify( m_value ) << " )";
7887         return rss.str();
7888     }
7889 
equalityComparisonImpl(const double other) const7890     bool Approx::equalityComparisonImpl(const double other) const {
7891         // First try with fixed margin, then compute margin based on epsilon, scale and Approx's value
7892         // Thanks to Richard Harris for his help refining the scaled margin value
7893         return marginComparison(m_value, other, m_margin)
7894             || marginComparison(m_value, other, m_epsilon * (m_scale + std::fabs(std::isinf(m_value)? 0 : m_value)));
7895     }
7896 
setMargin(double newMargin)7897     void Approx::setMargin(double newMargin) {
7898         CATCH_ENFORCE(newMargin >= 0,
7899             "Invalid Approx::margin: " << newMargin << '.'
7900             << " Approx::Margin has to be non-negative.");
7901         m_margin = newMargin;
7902     }
7903 
setEpsilon(double newEpsilon)7904     void Approx::setEpsilon(double newEpsilon) {
7905         CATCH_ENFORCE(newEpsilon >= 0 && newEpsilon <= 1.0,
7906             "Invalid Approx::epsilon: " << newEpsilon << '.'
7907             << " Approx::epsilon has to be in [0, 1]");
7908         m_epsilon = newEpsilon;
7909     }
7910 
7911 } // end namespace Detail
7912 
7913 namespace literals {
operator ""_a(long double val)7914     Detail::Approx operator "" _a(long double val) {
7915         return Detail::Approx(val);
7916     }
operator ""_a(unsigned long long val)7917     Detail::Approx operator "" _a(unsigned long long val) {
7918         return Detail::Approx(val);
7919     }
7920 } // end namespace literals
7921 
convert(Catch::Detail::Approx const & value)7922 std::string StringMaker<Catch::Detail::Approx>::convert(Catch::Detail::Approx const& value) {
7923     return value.toString();
7924 }
7925 
7926 } // end namespace Catch
7927 // end catch_approx.cpp
7928 // start catch_assertionhandler.cpp
7929 
7930 // start catch_debugger.h
7931 
7932 namespace Catch {
7933     bool isDebuggerActive();
7934 }
7935 
7936 #ifdef CATCH_PLATFORM_MAC
7937 
7938     #if defined(__i386__) || defined(__x86_64__)
7939         #define CATCH_TRAP() __asm__("int $3\n" : : ) /* NOLINT */
7940     #elif defined(__aarch64__)
7941         #define CATCH_TRAP()  __asm__(".inst 0xd4200000")
7942     #endif
7943 
7944 #elif defined(CATCH_PLATFORM_IPHONE)
7945 
7946     // use inline assembler
7947     #if defined(__i386__) || defined(__x86_64__)
7948         #define CATCH_TRAP()  __asm__("int $3")
7949     #elif defined(__aarch64__)
7950         #define CATCH_TRAP()  __asm__(".inst 0xd4200000")
7951     #elif defined(__arm__) && !defined(__thumb__)
7952         #define CATCH_TRAP()  __asm__(".inst 0xe7f001f0")
7953     #elif defined(__arm__) &&  defined(__thumb__)
7954         #define CATCH_TRAP()  __asm__(".inst 0xde01")
7955     #endif
7956 
7957 #elif defined(CATCH_PLATFORM_LINUX)
7958     // If we can use inline assembler, do it because this allows us to break
7959     // directly at the location of the failing check instead of breaking inside
7960     // raise() called from it, i.e. one stack frame below.
7961     #if defined(__GNUC__) && (defined(__i386) || defined(__x86_64))
7962         #define CATCH_TRAP() asm volatile ("int $3") /* NOLINT */
7963     #else // Fall back to the generic way.
7964         #include <signal.h>
7965 
7966         #define CATCH_TRAP() raise(SIGTRAP)
7967     #endif
7968 #elif defined(_MSC_VER)
7969     #define CATCH_TRAP() __debugbreak()
7970 #elif defined(__MINGW32__)
7971     extern "C" __declspec(dllimport) void __stdcall DebugBreak();
7972     #define CATCH_TRAP() DebugBreak()
7973 #endif
7974 
7975 #ifndef CATCH_BREAK_INTO_DEBUGGER
7976     #ifdef CATCH_TRAP
7977         #define CATCH_BREAK_INTO_DEBUGGER() []{ if( Catch::isDebuggerActive() ) { CATCH_TRAP(); } }()
7978     #else
7979         #define CATCH_BREAK_INTO_DEBUGGER() []{}()
7980     #endif
7981 #endif
7982 
7983 // end catch_debugger.h
7984 // start catch_run_context.h
7985 
7986 // start catch_fatal_condition.h
7987 
7988 // start catch_windows_h_proxy.h
7989 
7990 
7991 #if defined(CATCH_PLATFORM_WINDOWS)
7992 
7993 #if !defined(NOMINMAX) && !defined(CATCH_CONFIG_NO_NOMINMAX)
7994 #  define CATCH_DEFINED_NOMINMAX
7995 #  define NOMINMAX
7996 #endif
7997 #if !defined(WIN32_LEAN_AND_MEAN) && !defined(CATCH_CONFIG_NO_WIN32_LEAN_AND_MEAN)
7998 #  define CATCH_DEFINED_WIN32_LEAN_AND_MEAN
7999 #  define WIN32_LEAN_AND_MEAN
8000 #endif
8001 
8002 #ifdef __AFXDLL
8003 #include <AfxWin.h>
8004 #else
8005 #include <windows.h>
8006 #endif
8007 
8008 #ifdef CATCH_DEFINED_NOMINMAX
8009 #  undef NOMINMAX
8010 #endif
8011 #ifdef CATCH_DEFINED_WIN32_LEAN_AND_MEAN
8012 #  undef WIN32_LEAN_AND_MEAN
8013 #endif
8014 
8015 #endif // defined(CATCH_PLATFORM_WINDOWS)
8016 
8017 // end catch_windows_h_proxy.h
8018 #if defined( CATCH_CONFIG_WINDOWS_SEH )
8019 
8020 namespace Catch {
8021 
8022     struct FatalConditionHandler {
8023 
8024         static LONG CALLBACK handleVectoredException(PEXCEPTION_POINTERS ExceptionInfo);
8025         FatalConditionHandler();
8026         static void reset();
8027         ~FatalConditionHandler();
8028 
8029     private:
8030         static bool isSet;
8031         static ULONG guaranteeSize;
8032         static PVOID exceptionHandlerHandle;
8033     };
8034 
8035 } // namespace Catch
8036 
8037 #elif defined ( CATCH_CONFIG_POSIX_SIGNALS )
8038 
8039 #include <signal.h>
8040 
8041 namespace Catch {
8042 
8043     struct FatalConditionHandler {
8044 
8045         static bool isSet;
8046         static struct sigaction oldSigActions[];
8047         static stack_t oldSigStack;
8048         static char altStackMem[];
8049 
8050         static void handleSignal( int sig );
8051 
8052         FatalConditionHandler();
8053         ~FatalConditionHandler();
8054         static void reset();
8055     };
8056 
8057 } // namespace Catch
8058 
8059 #else
8060 
8061 namespace Catch {
8062     struct FatalConditionHandler {
8063         void reset();
8064     };
8065 }
8066 
8067 #endif
8068 
8069 // end catch_fatal_condition.h
8070 #include <string>
8071 
8072 namespace Catch {
8073 
8074     struct IMutableContext;
8075 
8076     ///////////////////////////////////////////////////////////////////////////
8077 
8078     class RunContext : public IResultCapture, public IRunner {
8079 
8080     public:
8081         RunContext( RunContext const& ) = delete;
8082         RunContext& operator =( RunContext const& ) = delete;
8083 
8084         explicit RunContext( IConfigPtr const& _config, IStreamingReporterPtr&& reporter );
8085 
8086         ~RunContext() override;
8087 
8088         void testGroupStarting( std::string const& testSpec, std::size_t groupIndex, std::size_t groupsCount );
8089         void testGroupEnded( std::string const& testSpec, Totals const& totals, std::size_t groupIndex, std::size_t groupsCount );
8090 
8091         Totals runTest(TestCase const& testCase);
8092 
8093         IConfigPtr config() const;
8094         IStreamingReporter& reporter() const;
8095 
8096     public: // IResultCapture
8097 
8098         // Assertion handlers
8099         void handleExpr
8100                 (   AssertionInfo const& info,
8101                     ITransientExpression const& expr,
8102                     AssertionReaction& reaction ) override;
8103         void handleMessage
8104                 (   AssertionInfo const& info,
8105                     ResultWas::OfType resultType,
8106                     StringRef const& message,
8107                     AssertionReaction& reaction ) override;
8108         void handleUnexpectedExceptionNotThrown
8109                 (   AssertionInfo const& info,
8110                     AssertionReaction& reaction ) override;
8111         void handleUnexpectedInflightException
8112                 (   AssertionInfo const& info,
8113                     std::string const& message,
8114                     AssertionReaction& reaction ) override;
8115         void handleIncomplete
8116                 (   AssertionInfo const& info ) override;
8117         void handleNonExpr
8118                 (   AssertionInfo const &info,
8119                     ResultWas::OfType resultType,
8120                     AssertionReaction &reaction ) override;
8121 
8122         bool sectionStarted( SectionInfo const& sectionInfo, Counts& assertions ) override;
8123 
8124         void sectionEnded( SectionEndInfo const& endInfo ) override;
8125         void sectionEndedEarly( SectionEndInfo const& endInfo ) override;
8126 
8127         auto acquireGeneratorTracker( StringRef generatorName, SourceLineInfo const& lineInfo ) -> IGeneratorTracker& override;
8128 
8129 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
8130         void benchmarkPreparing( std::string const& name ) override;
8131         void benchmarkStarting( BenchmarkInfo const& info ) override;
8132         void benchmarkEnded( BenchmarkStats<> const& stats ) override;
8133         void benchmarkFailed( std::string const& error ) override;
8134 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
8135 
8136         void pushScopedMessage( MessageInfo const& message ) override;
8137         void popScopedMessage( MessageInfo const& message ) override;
8138 
8139         void emplaceUnscopedMessage( MessageBuilder const& builder ) override;
8140 
8141         std::string getCurrentTestName() const override;
8142 
8143         const AssertionResult* getLastResult() const override;
8144 
8145         void exceptionEarlyReported() override;
8146 
8147         void handleFatalErrorCondition( StringRef message ) override;
8148 
8149         bool lastAssertionPassed() override;
8150 
8151         void assertionPassed() override;
8152 
8153     public:
8154         // !TBD We need to do this another way!
8155         bool aborting() const final;
8156 
8157     private:
8158 
8159         void runCurrentTest( std::string& redirectedCout, std::string& redirectedCerr );
8160         void invokeActiveTestCase();
8161 
8162         void resetAssertionInfo();
8163         bool testForMissingAssertions( Counts& assertions );
8164 
8165         void assertionEnded( AssertionResult const& result );
8166         void reportExpr
8167                 (   AssertionInfo const &info,
8168                     ResultWas::OfType resultType,
8169                     ITransientExpression const *expr,
8170                     bool negated );
8171 
8172         void populateReaction( AssertionReaction& reaction );
8173 
8174     private:
8175 
8176         void handleUnfinishedSections();
8177 
8178         TestRunInfo m_runInfo;
8179         IMutableContext& m_context;
8180         TestCase const* m_activeTestCase = nullptr;
8181         ITracker* m_testCaseTracker = nullptr;
8182         Option<AssertionResult> m_lastResult;
8183 
8184         IConfigPtr m_config;
8185         Totals m_totals;
8186         IStreamingReporterPtr m_reporter;
8187         std::vector<MessageInfo> m_messages;
8188         std::vector<ScopedMessage> m_messageScopes; /* Keeps owners of so-called unscoped messages. */
8189         AssertionInfo m_lastAssertionInfo;
8190         std::vector<SectionEndInfo> m_unfinishedSections;
8191         std::vector<ITracker*> m_activeSections;
8192         TrackerContext m_trackerContext;
8193         bool m_lastAssertionPassed = false;
8194         bool m_shouldReportUnexpected = true;
8195         bool m_includeSuccessfulResults;
8196     };
8197 
8198     void seedRng(IConfig const& config);
8199     unsigned int rngSeed();
8200 } // end namespace Catch
8201 
8202 // end catch_run_context.h
8203 namespace Catch {
8204 
8205     namespace {
operator <<(std::ostream & os,ITransientExpression const & expr)8206         auto operator <<( std::ostream& os, ITransientExpression const& expr ) -> std::ostream& {
8207             expr.streamReconstructedExpression( os );
8208             return os;
8209         }
8210     }
8211 
LazyExpression(bool isNegated)8212     LazyExpression::LazyExpression( bool isNegated )
8213     :   m_isNegated( isNegated )
8214     {}
8215 
LazyExpression(LazyExpression const & other)8216     LazyExpression::LazyExpression( LazyExpression const& other ) : m_isNegated( other.m_isNegated ) {}
8217 
operator bool() const8218     LazyExpression::operator bool() const {
8219         return m_transientExpression != nullptr;
8220     }
8221 
operator <<(std::ostream & os,LazyExpression const & lazyExpr)8222     auto operator << ( std::ostream& os, LazyExpression const& lazyExpr ) -> std::ostream& {
8223         if( lazyExpr.m_isNegated )
8224             os << "!";
8225 
8226         if( lazyExpr ) {
8227             if( lazyExpr.m_isNegated && lazyExpr.m_transientExpression->isBinaryExpression() )
8228                 os << "(" << *lazyExpr.m_transientExpression << ")";
8229             else
8230                 os << *lazyExpr.m_transientExpression;
8231         }
8232         else {
8233             os << "{** error - unchecked empty expression requested **}";
8234         }
8235         return os;
8236     }
8237 
AssertionHandler(StringRef const & macroName,SourceLineInfo const & lineInfo,StringRef capturedExpression,ResultDisposition::Flags resultDisposition)8238     AssertionHandler::AssertionHandler
8239         (   StringRef const& macroName,
8240             SourceLineInfo const& lineInfo,
8241             StringRef capturedExpression,
8242             ResultDisposition::Flags resultDisposition )
8243     :   m_assertionInfo{ macroName, lineInfo, capturedExpression, resultDisposition },
8244         m_resultCapture( getResultCapture() )
8245     {}
8246 
handleExpr(ITransientExpression const & expr)8247     void AssertionHandler::handleExpr( ITransientExpression const& expr ) {
8248         m_resultCapture.handleExpr( m_assertionInfo, expr, m_reaction );
8249     }
handleMessage(ResultWas::OfType resultType,StringRef const & message)8250     void AssertionHandler::handleMessage(ResultWas::OfType resultType, StringRef const& message) {
8251         m_resultCapture.handleMessage( m_assertionInfo, resultType, message, m_reaction );
8252     }
8253 
allowThrows() const8254     auto AssertionHandler::allowThrows() const -> bool {
8255         return getCurrentContext().getConfig()->allowThrows();
8256     }
8257 
complete()8258     void AssertionHandler::complete() {
8259         setCompleted();
8260         if( m_reaction.shouldDebugBreak ) {
8261 
8262             // If you find your debugger stopping you here then go one level up on the
8263             // call-stack for the code that caused it (typically a failed assertion)
8264 
8265             // (To go back to the test and change execution, jump over the throw, next)
8266             CATCH_BREAK_INTO_DEBUGGER();
8267         }
8268         if (m_reaction.shouldThrow) {
8269 #if !defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
8270             throw Catch::TestFailureException();
8271 #else
8272             CATCH_ERROR( "Test failure requires aborting test!" );
8273 #endif
8274         }
8275     }
setCompleted()8276     void AssertionHandler::setCompleted() {
8277         m_completed = true;
8278     }
8279 
handleUnexpectedInflightException()8280     void AssertionHandler::handleUnexpectedInflightException() {
8281         m_resultCapture.handleUnexpectedInflightException( m_assertionInfo, Catch::translateActiveException(), m_reaction );
8282     }
8283 
handleExceptionThrownAsExpected()8284     void AssertionHandler::handleExceptionThrownAsExpected() {
8285         m_resultCapture.handleNonExpr(m_assertionInfo, ResultWas::Ok, m_reaction);
8286     }
handleExceptionNotThrownAsExpected()8287     void AssertionHandler::handleExceptionNotThrownAsExpected() {
8288         m_resultCapture.handleNonExpr(m_assertionInfo, ResultWas::Ok, m_reaction);
8289     }
8290 
handleUnexpectedExceptionNotThrown()8291     void AssertionHandler::handleUnexpectedExceptionNotThrown() {
8292         m_resultCapture.handleUnexpectedExceptionNotThrown( m_assertionInfo, m_reaction );
8293     }
8294 
handleThrowingCallSkipped()8295     void AssertionHandler::handleThrowingCallSkipped() {
8296         m_resultCapture.handleNonExpr(m_assertionInfo, ResultWas::Ok, m_reaction);
8297     }
8298 
8299     // This is the overload that takes a string and infers the Equals matcher from it
8300     // The more general overload, that takes any string matcher, is in catch_capture_matchers.cpp
handleExceptionMatchExpr(AssertionHandler & handler,std::string const & str,StringRef const & matcherString)8301     void handleExceptionMatchExpr( AssertionHandler& handler, std::string const& str, StringRef const& matcherString  ) {
8302         handleExceptionMatchExpr( handler, Matchers::Equals( str ), matcherString );
8303     }
8304 
8305 } // namespace Catch
8306 // end catch_assertionhandler.cpp
8307 // start catch_assertionresult.cpp
8308 
8309 namespace Catch {
AssertionResultData(ResultWas::OfType _resultType,LazyExpression const & _lazyExpression)8310     AssertionResultData::AssertionResultData(ResultWas::OfType _resultType, LazyExpression const & _lazyExpression):
8311         lazyExpression(_lazyExpression),
8312         resultType(_resultType) {}
8313 
reconstructExpression() const8314     std::string AssertionResultData::reconstructExpression() const {
8315 
8316         if( reconstructedExpression.empty() ) {
8317             if( lazyExpression ) {
8318                 ReusableStringStream rss;
8319                 rss << lazyExpression;
8320                 reconstructedExpression = rss.str();
8321             }
8322         }
8323         return reconstructedExpression;
8324     }
8325 
AssertionResult(AssertionInfo const & info,AssertionResultData const & data)8326     AssertionResult::AssertionResult( AssertionInfo const& info, AssertionResultData const& data )
8327     :   m_info( info ),
8328         m_resultData( data )
8329     {}
8330 
8331     // Result was a success
succeeded() const8332     bool AssertionResult::succeeded() const {
8333         return Catch::isOk( m_resultData.resultType );
8334     }
8335 
8336     // Result was a success, or failure is suppressed
isOk() const8337     bool AssertionResult::isOk() const {
8338         return Catch::isOk( m_resultData.resultType ) || shouldSuppressFailure( m_info.resultDisposition );
8339     }
8340 
getResultType() const8341     ResultWas::OfType AssertionResult::getResultType() const {
8342         return m_resultData.resultType;
8343     }
8344 
hasExpression() const8345     bool AssertionResult::hasExpression() const {
8346         return !m_info.capturedExpression.empty();
8347     }
8348 
hasMessage() const8349     bool AssertionResult::hasMessage() const {
8350         return !m_resultData.message.empty();
8351     }
8352 
getExpression() const8353     std::string AssertionResult::getExpression() const {
8354         // Possibly overallocating by 3 characters should be basically free
8355         std::string expr; expr.reserve(m_info.capturedExpression.size() + 3);
8356         if (isFalseTest(m_info.resultDisposition)) {
8357             expr += "!(";
8358         }
8359         expr += m_info.capturedExpression;
8360         if (isFalseTest(m_info.resultDisposition)) {
8361             expr += ')';
8362         }
8363         return expr;
8364     }
8365 
getExpressionInMacro() const8366     std::string AssertionResult::getExpressionInMacro() const {
8367         std::string expr;
8368         if( m_info.macroName.empty() )
8369             expr = static_cast<std::string>(m_info.capturedExpression);
8370         else {
8371             expr.reserve( m_info.macroName.size() + m_info.capturedExpression.size() + 4 );
8372             expr += m_info.macroName;
8373             expr += "( ";
8374             expr += m_info.capturedExpression;
8375             expr += " )";
8376         }
8377         return expr;
8378     }
8379 
hasExpandedExpression() const8380     bool AssertionResult::hasExpandedExpression() const {
8381         return hasExpression() && getExpandedExpression() != getExpression();
8382     }
8383 
getExpandedExpression() const8384     std::string AssertionResult::getExpandedExpression() const {
8385         std::string expr = m_resultData.reconstructExpression();
8386         return expr.empty()
8387                 ? getExpression()
8388                 : expr;
8389     }
8390 
getMessage() const8391     std::string AssertionResult::getMessage() const {
8392         return m_resultData.message;
8393     }
getSourceInfo() const8394     SourceLineInfo AssertionResult::getSourceInfo() const {
8395         return m_info.lineInfo;
8396     }
8397 
getTestMacroName() const8398     StringRef AssertionResult::getTestMacroName() const {
8399         return m_info.macroName;
8400     }
8401 
8402 } // end namespace Catch
8403 // end catch_assertionresult.cpp
8404 // start catch_capture_matchers.cpp
8405 
8406 namespace Catch {
8407 
8408     using StringMatcher = Matchers::Impl::MatcherBase<std::string>;
8409 
8410     // This is the general overload that takes a any string matcher
8411     // There is another overload, in catch_assertionhandler.h/.cpp, that only takes a string and infers
8412     // the Equals matcher (so the header does not mention matchers)
handleExceptionMatchExpr(AssertionHandler & handler,StringMatcher const & matcher,StringRef const & matcherString)8413     void handleExceptionMatchExpr( AssertionHandler& handler, StringMatcher const& matcher, StringRef const& matcherString  ) {
8414         std::string exceptionMessage = Catch::translateActiveException();
8415         MatchExpr<std::string, StringMatcher const&> expr( exceptionMessage, matcher, matcherString );
8416         handler.handleExpr( expr );
8417     }
8418 
8419 } // namespace Catch
8420 // end catch_capture_matchers.cpp
8421 // start catch_commandline.cpp
8422 
8423 // start catch_commandline.h
8424 
8425 // start catch_clara.h
8426 
8427 // Use Catch's value for console width (store Clara's off to the side, if present)
8428 #ifdef CLARA_CONFIG_CONSOLE_WIDTH
8429 #define CATCH_TEMP_CLARA_CONFIG_CONSOLE_WIDTH CATCH_CLARA_TEXTFLOW_CONFIG_CONSOLE_WIDTH
8430 #undef CATCH_CLARA_TEXTFLOW_CONFIG_CONSOLE_WIDTH
8431 #endif
8432 #define CATCH_CLARA_TEXTFLOW_CONFIG_CONSOLE_WIDTH CATCH_CONFIG_CONSOLE_WIDTH-1
8433 
8434 #ifdef __clang__
8435 #pragma clang diagnostic push
8436 #pragma clang diagnostic ignored "-Wweak-vtables"
8437 #pragma clang diagnostic ignored "-Wexit-time-destructors"
8438 #pragma clang diagnostic ignored "-Wshadow"
8439 #endif
8440 
8441 // start clara.hpp
8442 // Copyright 2017 Two Blue Cubes Ltd. All rights reserved.
8443 //
8444 // Distributed under the Boost Software License, Version 1.0. (See accompanying
8445 // file LICENSE_1_0.txt or copy at http://www.boost.org/LICENSE_1_0.txt)
8446 //
8447 // See https://github.com/philsquared/Clara for more details
8448 
8449 // Clara v1.1.5
8450 
8451 
8452 #ifndef CATCH_CLARA_CONFIG_CONSOLE_WIDTH
8453 #define CATCH_CLARA_CONFIG_CONSOLE_WIDTH 80
8454 #endif
8455 
8456 #ifndef CATCH_CLARA_TEXTFLOW_CONFIG_CONSOLE_WIDTH
8457 #define CATCH_CLARA_TEXTFLOW_CONFIG_CONSOLE_WIDTH CATCH_CLARA_CONFIG_CONSOLE_WIDTH
8458 #endif
8459 
8460 #ifndef CLARA_CONFIG_OPTIONAL_TYPE
8461 #ifdef __has_include
8462 #if __has_include(<optional>) && __cplusplus >= 201703L
8463 #include <optional>
8464 #define CLARA_CONFIG_OPTIONAL_TYPE std::optional
8465 #endif
8466 #endif
8467 #endif
8468 
8469 // ----------- #included from clara_textflow.hpp -----------
8470 
8471 // TextFlowCpp
8472 //
8473 // A single-header library for wrapping and laying out basic text, by Phil Nash
8474 //
8475 // Distributed under the Boost Software License, Version 1.0. (See accompanying
8476 // file LICENSE.txt or copy at http://www.boost.org/LICENSE_1_0.txt)
8477 //
8478 // This project is hosted at https://github.com/philsquared/textflowcpp
8479 
8480 
8481 #include <cassert>
8482 #include <ostream>
8483 #include <sstream>
8484 #include <vector>
8485 
8486 #ifndef CATCH_CLARA_TEXTFLOW_CONFIG_CONSOLE_WIDTH
8487 #define CATCH_CLARA_TEXTFLOW_CONFIG_CONSOLE_WIDTH 80
8488 #endif
8489 
8490 namespace Catch {
8491 namespace clara {
8492 namespace TextFlow {
8493 
isWhitespace(char c)8494 inline auto isWhitespace(char c) -> bool {
8495    static std::string chars = " \t\n\r";
8496    return chars.find(c) != std::string::npos;
8497 }
isBreakableBefore(char c)8498 inline auto isBreakableBefore(char c) -> bool {
8499    static std::string chars = "[({<|";
8500    return chars.find(c) != std::string::npos;
8501 }
isBreakableAfter(char c)8502 inline auto isBreakableAfter(char c) -> bool {
8503    static std::string chars = "])}>.,:;*+-=&/\\";
8504    return chars.find(c) != std::string::npos;
8505 }
8506 
8507 class Columns;
8508 
8509 class Column {
8510    std::vector<std::string> m_strings;
8511    size_t m_width = CATCH_CLARA_TEXTFLOW_CONFIG_CONSOLE_WIDTH;
8512    size_t m_indent = 0;
8513    size_t m_initialIndent = std::string::npos;
8514 
8515 public:
8516    class iterator {
8517       friend Column;
8518 
8519       Column const& m_column;
8520       size_t m_stringIndex = 0;
8521       size_t m_pos = 0;
8522 
8523       size_t m_len = 0;
8524       size_t m_end = 0;
8525       bool m_suffix = false;
8526 
iterator(Column const & column,size_t stringIndex)8527       iterator(Column const& column, size_t stringIndex)
8528          : m_column(column),
8529          m_stringIndex(stringIndex) {}
8530 
line() const8531       auto line() const -> std::string const& { return m_column.m_strings[m_stringIndex]; }
8532 
isBoundary(size_t at) const8533       auto isBoundary(size_t at) const -> bool {
8534          assert(at > 0);
8535          assert(at <= line().size());
8536 
8537          return at == line().size() ||
8538             (isWhitespace(line()[at]) && !isWhitespace(line()[at - 1])) ||
8539             isBreakableBefore(line()[at]) ||
8540             isBreakableAfter(line()[at - 1]);
8541       }
8542 
calcLength()8543       void calcLength() {
8544          assert(m_stringIndex < m_column.m_strings.size());
8545 
8546          m_suffix = false;
8547          auto width = m_column.m_width - indent();
8548          m_end = m_pos;
8549          if (line()[m_pos] == '\n') {
8550             ++m_end;
8551          }
8552          while (m_end < line().size() && line()[m_end] != '\n')
8553             ++m_end;
8554 
8555          if (m_end < m_pos + width) {
8556             m_len = m_end - m_pos;
8557          } else {
8558             size_t len = width;
8559             while (len > 0 && !isBoundary(m_pos + len))
8560                --len;
8561             while (len > 0 && isWhitespace(line()[m_pos + len - 1]))
8562                --len;
8563 
8564             if (len > 0) {
8565                m_len = len;
8566             } else {
8567                m_suffix = true;
8568                m_len = width - 1;
8569             }
8570          }
8571       }
8572 
indent() const8573       auto indent() const -> size_t {
8574          auto initial = m_pos == 0 && m_stringIndex == 0 ? m_column.m_initialIndent : std::string::npos;
8575          return initial == std::string::npos ? m_column.m_indent : initial;
8576       }
8577 
addIndentAndSuffix(std::string const & plain) const8578       auto addIndentAndSuffix(std::string const &plain) const -> std::string {
8579          return std::string(indent(), ' ') + (m_suffix ? plain + "-" : plain);
8580       }
8581 
8582    public:
8583       using difference_type = std::ptrdiff_t;
8584       using value_type = std::string;
8585       using pointer = value_type * ;
8586       using reference = value_type & ;
8587       using iterator_category = std::forward_iterator_tag;
8588 
iterator(Column const & column)8589       explicit iterator(Column const& column) : m_column(column) {
8590          assert(m_column.m_width > m_column.m_indent);
8591          assert(m_column.m_initialIndent == std::string::npos || m_column.m_width > m_column.m_initialIndent);
8592          calcLength();
8593          if (m_len == 0)
8594             m_stringIndex++; // Empty string
8595       }
8596 
operator *() const8597       auto operator *() const -> std::string {
8598          assert(m_stringIndex < m_column.m_strings.size());
8599          assert(m_pos <= m_end);
8600          return addIndentAndSuffix(line().substr(m_pos, m_len));
8601       }
8602 
operator ++()8603       auto operator ++() -> iterator& {
8604          m_pos += m_len;
8605          if (m_pos < line().size() && line()[m_pos] == '\n')
8606             m_pos += 1;
8607          else
8608             while (m_pos < line().size() && isWhitespace(line()[m_pos]))
8609                ++m_pos;
8610 
8611          if (m_pos == line().size()) {
8612             m_pos = 0;
8613             ++m_stringIndex;
8614          }
8615          if (m_stringIndex < m_column.m_strings.size())
8616             calcLength();
8617          return *this;
8618       }
operator ++(int)8619       auto operator ++(int) -> iterator {
8620          iterator prev(*this);
8621          operator++();
8622          return prev;
8623       }
8624 
operator ==(iterator const & other) const8625       auto operator ==(iterator const& other) const -> bool {
8626          return
8627             m_pos == other.m_pos &&
8628             m_stringIndex == other.m_stringIndex &&
8629             &m_column == &other.m_column;
8630       }
operator !=(iterator const & other) const8631       auto operator !=(iterator const& other) const -> bool {
8632          return !operator==(other);
8633       }
8634    };
8635    using const_iterator = iterator;
8636 
Column(std::string const & text)8637    explicit Column(std::string const& text) { m_strings.push_back(text); }
8638 
width(size_t newWidth)8639    auto width(size_t newWidth) -> Column& {
8640       assert(newWidth > 0);
8641       m_width = newWidth;
8642       return *this;
8643    }
indent(size_t newIndent)8644    auto indent(size_t newIndent) -> Column& {
8645       m_indent = newIndent;
8646       return *this;
8647    }
initialIndent(size_t newIndent)8648    auto initialIndent(size_t newIndent) -> Column& {
8649       m_initialIndent = newIndent;
8650       return *this;
8651    }
8652 
width() const8653    auto width() const -> size_t { return m_width; }
begin() const8654    auto begin() const -> iterator { return iterator(*this); }
end() const8655    auto end() const -> iterator { return { *this, m_strings.size() }; }
8656 
operator <<(std::ostream & os,Column const & col)8657    inline friend std::ostream& operator << (std::ostream& os, Column const& col) {
8658       bool first = true;
8659       for (auto line : col) {
8660          if (first)
8661             first = false;
8662          else
8663             os << "\n";
8664          os << line;
8665       }
8666       return os;
8667    }
8668 
8669    auto operator + (Column const& other)->Columns;
8670 
toString() const8671    auto toString() const -> std::string {
8672       std::ostringstream oss;
8673       oss << *this;
8674       return oss.str();
8675    }
8676 };
8677 
8678 class Spacer : public Column {
8679 
8680 public:
Spacer(size_t spaceWidth)8681    explicit Spacer(size_t spaceWidth) : Column("") {
8682       width(spaceWidth);
8683    }
8684 };
8685 
8686 class Columns {
8687    std::vector<Column> m_columns;
8688 
8689 public:
8690 
8691    class iterator {
8692       friend Columns;
8693       struct EndTag {};
8694 
8695       std::vector<Column> const& m_columns;
8696       std::vector<Column::iterator> m_iterators;
8697       size_t m_activeIterators;
8698 
iterator(Columns const & columns,EndTag)8699       iterator(Columns const& columns, EndTag)
8700          : m_columns(columns.m_columns),
8701          m_activeIterators(0) {
8702          m_iterators.reserve(m_columns.size());
8703 
8704          for (auto const& col : m_columns)
8705             m_iterators.push_back(col.end());
8706       }
8707 
8708    public:
8709       using difference_type = std::ptrdiff_t;
8710       using value_type = std::string;
8711       using pointer = value_type * ;
8712       using reference = value_type & ;
8713       using iterator_category = std::forward_iterator_tag;
8714 
iterator(Columns const & columns)8715       explicit iterator(Columns const& columns)
8716          : m_columns(columns.m_columns),
8717          m_activeIterators(m_columns.size()) {
8718          m_iterators.reserve(m_columns.size());
8719 
8720          for (auto const& col : m_columns)
8721             m_iterators.push_back(col.begin());
8722       }
8723 
operator ==(iterator const & other) const8724       auto operator ==(iterator const& other) const -> bool {
8725          return m_iterators == other.m_iterators;
8726       }
operator !=(iterator const & other) const8727       auto operator !=(iterator const& other) const -> bool {
8728          return m_iterators != other.m_iterators;
8729       }
operator *() const8730       auto operator *() const -> std::string {
8731          std::string row, padding;
8732 
8733          for (size_t i = 0; i < m_columns.size(); ++i) {
8734             auto width = m_columns[i].width();
8735             if (m_iterators[i] != m_columns[i].end()) {
8736                std::string col = *m_iterators[i];
8737                row += padding + col;
8738                if (col.size() < width)
8739                   padding = std::string(width - col.size(), ' ');
8740                else
8741                   padding = "";
8742             } else {
8743                padding += std::string(width, ' ');
8744             }
8745          }
8746          return row;
8747       }
operator ++()8748       auto operator ++() -> iterator& {
8749          for (size_t i = 0; i < m_columns.size(); ++i) {
8750             if (m_iterators[i] != m_columns[i].end())
8751                ++m_iterators[i];
8752          }
8753          return *this;
8754       }
operator ++(int)8755       auto operator ++(int) -> iterator {
8756          iterator prev(*this);
8757          operator++();
8758          return prev;
8759       }
8760    };
8761    using const_iterator = iterator;
8762 
begin() const8763    auto begin() const -> iterator { return iterator(*this); }
end() const8764    auto end() const -> iterator { return { *this, iterator::EndTag() }; }
8765 
operator +=(Column const & col)8766    auto operator += (Column const& col) -> Columns& {
8767       m_columns.push_back(col);
8768       return *this;
8769    }
operator +(Column const & col)8770    auto operator + (Column const& col) -> Columns {
8771       Columns combined = *this;
8772       combined += col;
8773       return combined;
8774    }
8775 
operator <<(std::ostream & os,Columns const & cols)8776    inline friend std::ostream& operator << (std::ostream& os, Columns const& cols) {
8777 
8778       bool first = true;
8779       for (auto line : cols) {
8780          if (first)
8781             first = false;
8782          else
8783             os << "\n";
8784          os << line;
8785       }
8786       return os;
8787    }
8788 
toString() const8789    auto toString() const -> std::string {
8790       std::ostringstream oss;
8791       oss << *this;
8792       return oss.str();
8793    }
8794 };
8795 
operator +(Column const & other)8796 inline auto Column::operator + (Column const& other) -> Columns {
8797    Columns cols;
8798    cols += *this;
8799    cols += other;
8800    return cols;
8801 }
8802 }
8803 
8804 }
8805 }
8806 
8807 // ----------- end of #include from clara_textflow.hpp -----------
8808 // ........... back in clara.hpp
8809 
8810 #include <cctype>
8811 #include <string>
8812 #include <memory>
8813 #include <set>
8814 #include <algorithm>
8815 
8816 #if !defined(CATCH_PLATFORM_WINDOWS) && ( defined(WIN32) || defined(__WIN32__) || defined(_WIN32) || defined(_MSC_VER) )
8817 #define CATCH_PLATFORM_WINDOWS
8818 #endif
8819 
8820 namespace Catch { namespace clara {
8821 namespace detail {
8822 
8823     // Traits for extracting arg and return type of lambdas (for single argument lambdas)
8824     template<typename L>
8825     struct UnaryLambdaTraits : UnaryLambdaTraits<decltype( &L::operator() )> {};
8826 
8827     template<typename ClassT, typename ReturnT, typename... Args>
8828     struct UnaryLambdaTraits<ReturnT( ClassT::* )( Args... ) const> {
8829         static const bool isValid = false;
8830     };
8831 
8832     template<typename ClassT, typename ReturnT, typename ArgT>
8833     struct UnaryLambdaTraits<ReturnT( ClassT::* )( ArgT ) const> {
8834         static const bool isValid = true;
8835         using ArgType = typename std::remove_const<typename std::remove_reference<ArgT>::type>::type;
8836         using ReturnType = ReturnT;
8837     };
8838 
8839     class TokenStream;
8840 
8841     // Transport for raw args (copied from main args, or supplied via init list for testing)
8842     class Args {
8843         friend TokenStream;
8844         std::string m_exeName;
8845         std::vector<std::string> m_args;
8846 
8847     public:
Args(int argc,char const * const * argv)8848         Args( int argc, char const* const* argv )
8849             : m_exeName(argv[0]),
8850               m_args(argv + 1, argv + argc) {}
8851 
Args(std::initializer_list<std::string> args)8852         Args( std::initializer_list<std::string> args )
8853         :   m_exeName( *args.begin() ),
8854             m_args( args.begin()+1, args.end() )
8855         {}
8856 
exeName() const8857         auto exeName() const -> std::string {
8858             return m_exeName;
8859         }
8860     };
8861 
8862     // Wraps a token coming from a token stream. These may not directly correspond to strings as a single string
8863     // may encode an option + its argument if the : or = form is used
8864     enum class TokenType {
8865         Option, Argument
8866     };
8867     struct Token {
8868         TokenType type;
8869         std::string token;
8870     };
8871 
isOptPrefix(char c)8872     inline auto isOptPrefix( char c ) -> bool {
8873         return c == '-'
8874 #ifdef CATCH_PLATFORM_WINDOWS
8875             || c == '/'
8876 #endif
8877         ;
8878     }
8879 
8880     // Abstracts iterators into args as a stream of tokens, with option arguments uniformly handled
8881     class TokenStream {
8882         using Iterator = std::vector<std::string>::const_iterator;
8883         Iterator it;
8884         Iterator itEnd;
8885         std::vector<Token> m_tokenBuffer;
8886 
loadBuffer()8887         void loadBuffer() {
8888             m_tokenBuffer.resize( 0 );
8889 
8890             // Skip any empty strings
8891             while( it != itEnd && it->empty() )
8892                 ++it;
8893 
8894             if( it != itEnd ) {
8895                 auto const &next = *it;
8896                 if( isOptPrefix( next[0] ) ) {
8897                     auto delimiterPos = next.find_first_of( " :=" );
8898                     if( delimiterPos != std::string::npos ) {
8899                         m_tokenBuffer.push_back( { TokenType::Option, next.substr( 0, delimiterPos ) } );
8900                         m_tokenBuffer.push_back( { TokenType::Argument, next.substr( delimiterPos + 1 ) } );
8901                     } else {
8902                         if( next[1] != '-' && next.size() > 2 ) {
8903                             std::string opt = "- ";
8904                             for( size_t i = 1; i < next.size(); ++i ) {
8905                                 opt[1] = next[i];
8906                                 m_tokenBuffer.push_back( { TokenType::Option, opt } );
8907                             }
8908                         } else {
8909                             m_tokenBuffer.push_back( { TokenType::Option, next } );
8910                         }
8911                     }
8912                 } else {
8913                     m_tokenBuffer.push_back( { TokenType::Argument, next } );
8914                 }
8915             }
8916         }
8917 
8918     public:
TokenStream(Args const & args)8919         explicit TokenStream( Args const &args ) : TokenStream( args.m_args.begin(), args.m_args.end() ) {}
8920 
TokenStream(Iterator it,Iterator itEnd)8921         TokenStream( Iterator it, Iterator itEnd ) : it( it ), itEnd( itEnd ) {
8922             loadBuffer();
8923         }
8924 
operator bool() const8925         explicit operator bool() const {
8926             return !m_tokenBuffer.empty() || it != itEnd;
8927         }
8928 
count() const8929         auto count() const -> size_t { return m_tokenBuffer.size() + (itEnd - it); }
8930 
operator *() const8931         auto operator*() const -> Token {
8932             assert( !m_tokenBuffer.empty() );
8933             return m_tokenBuffer.front();
8934         }
8935 
operator ->() const8936         auto operator->() const -> Token const * {
8937             assert( !m_tokenBuffer.empty() );
8938             return &m_tokenBuffer.front();
8939         }
8940 
operator ++()8941         auto operator++() -> TokenStream & {
8942             if( m_tokenBuffer.size() >= 2 ) {
8943                 m_tokenBuffer.erase( m_tokenBuffer.begin() );
8944             } else {
8945                 if( it != itEnd )
8946                     ++it;
8947                 loadBuffer();
8948             }
8949             return *this;
8950         }
8951     };
8952 
8953     class ResultBase {
8954     public:
8955         enum Type {
8956             Ok, LogicError, RuntimeError
8957         };
8958 
8959     protected:
ResultBase(Type type)8960         ResultBase( Type type ) : m_type( type ) {}
8961         virtual ~ResultBase() = default;
8962 
8963         virtual void enforceOk() const = 0;
8964 
8965         Type m_type;
8966     };
8967 
8968     template<typename T>
8969     class ResultValueBase : public ResultBase {
8970     public:
value() const8971         auto value() const -> T const & {
8972             enforceOk();
8973             return m_value;
8974         }
8975 
8976     protected:
ResultValueBase(Type type)8977         ResultValueBase( Type type ) : ResultBase( type ) {}
8978 
ResultValueBase(ResultValueBase const & other)8979         ResultValueBase( ResultValueBase const &other ) : ResultBase( other ) {
8980             if( m_type == ResultBase::Ok )
8981                 new( &m_value ) T( other.m_value );
8982         }
8983 
ResultValueBase(Type,T const & value)8984         ResultValueBase( Type, T const &value ) : ResultBase( Ok ) {
8985             new( &m_value ) T( value );
8986         }
8987 
operator =(ResultValueBase const & other)8988         auto operator=( ResultValueBase const &other ) -> ResultValueBase & {
8989             if( m_type == ResultBase::Ok )
8990                 m_value.~T();
8991             ResultBase::operator=(other);
8992             if( m_type == ResultBase::Ok )
8993                 new( &m_value ) T( other.m_value );
8994             return *this;
8995         }
8996 
~ResultValueBase()8997         ~ResultValueBase() override {
8998             if( m_type == Ok )
8999                 m_value.~T();
9000         }
9001 
9002         union {
9003             T m_value;
9004         };
9005     };
9006 
9007     template<>
9008     class ResultValueBase<void> : public ResultBase {
9009     protected:
9010         using ResultBase::ResultBase;
9011     };
9012 
9013     template<typename T = void>
9014     class BasicResult : public ResultValueBase<T> {
9015     public:
9016         template<typename U>
BasicResult(BasicResult<U> const & other)9017         explicit BasicResult( BasicResult<U> const &other )
9018         :   ResultValueBase<T>( other.type() ),
9019             m_errorMessage( other.errorMessage() )
9020         {
9021             assert( type() != ResultBase::Ok );
9022         }
9023 
9024         template<typename U>
ok(U const & value)9025         static auto ok( U const &value ) -> BasicResult { return { ResultBase::Ok, value }; }
ok()9026         static auto ok() -> BasicResult { return { ResultBase::Ok }; }
logicError(std::string const & message)9027         static auto logicError( std::string const &message ) -> BasicResult { return { ResultBase::LogicError, message }; }
runtimeError(std::string const & message)9028         static auto runtimeError( std::string const &message ) -> BasicResult { return { ResultBase::RuntimeError, message }; }
9029 
operator bool() const9030         explicit operator bool() const { return m_type == ResultBase::Ok; }
type() const9031         auto type() const -> ResultBase::Type { return m_type; }
errorMessage() const9032         auto errorMessage() const -> std::string { return m_errorMessage; }
9033 
9034     protected:
enforceOk() const9035         void enforceOk() const override {
9036 
9037             // Errors shouldn't reach this point, but if they do
9038             // the actual error message will be in m_errorMessage
9039             assert( m_type != ResultBase::LogicError );
9040             assert( m_type != ResultBase::RuntimeError );
9041             if( m_type != ResultBase::Ok )
9042                 std::abort();
9043         }
9044 
9045         std::string m_errorMessage; // Only populated if resultType is an error
9046 
BasicResult(ResultBase::Type type,std::string const & message)9047         BasicResult( ResultBase::Type type, std::string const &message )
9048         :   ResultValueBase<T>(type),
9049             m_errorMessage(message)
9050         {
9051             assert( m_type != ResultBase::Ok );
9052         }
9053 
9054         using ResultValueBase<T>::ResultValueBase;
9055         using ResultBase::m_type;
9056     };
9057 
9058     enum class ParseResultType {
9059         Matched, NoMatch, ShortCircuitAll, ShortCircuitSame
9060     };
9061 
9062     class ParseState {
9063     public:
9064 
ParseState(ParseResultType type,TokenStream const & remainingTokens)9065         ParseState( ParseResultType type, TokenStream const &remainingTokens )
9066         : m_type(type),
9067           m_remainingTokens( remainingTokens )
9068         {}
9069 
type() const9070         auto type() const -> ParseResultType { return m_type; }
remainingTokens() const9071         auto remainingTokens() const -> TokenStream { return m_remainingTokens; }
9072 
9073     private:
9074         ParseResultType m_type;
9075         TokenStream m_remainingTokens;
9076     };
9077 
9078     using Result = BasicResult<void>;
9079     using ParserResult = BasicResult<ParseResultType>;
9080     using InternalParseResult = BasicResult<ParseState>;
9081 
9082     struct HelpColumns {
9083         std::string left;
9084         std::string right;
9085     };
9086 
9087     template<typename T>
convertInto(std::string const & source,T & target)9088     inline auto convertInto( std::string const &source, T& target ) -> ParserResult {
9089         std::stringstream ss;
9090         ss << source;
9091         ss >> target;
9092         if( ss.fail() )
9093             return ParserResult::runtimeError( "Unable to convert '" + source + "' to destination type" );
9094         else
9095             return ParserResult::ok( ParseResultType::Matched );
9096     }
convertInto(std::string const & source,std::string & target)9097     inline auto convertInto( std::string const &source, std::string& target ) -> ParserResult {
9098         target = source;
9099         return ParserResult::ok( ParseResultType::Matched );
9100     }
convertInto(std::string const & source,bool & target)9101     inline auto convertInto( std::string const &source, bool &target ) -> ParserResult {
9102         std::string srcLC = source;
9103         std::transform( srcLC.begin(), srcLC.end(), srcLC.begin(), []( unsigned char c ) { return static_cast<char>( std::tolower(c) ); } );
9104         if (srcLC == "y" || srcLC == "1" || srcLC == "true" || srcLC == "yes" || srcLC == "on")
9105             target = true;
9106         else if (srcLC == "n" || srcLC == "0" || srcLC == "false" || srcLC == "no" || srcLC == "off")
9107             target = false;
9108         else
9109             return ParserResult::runtimeError( "Expected a boolean value but did not recognise: '" + source + "'" );
9110         return ParserResult::ok( ParseResultType::Matched );
9111     }
9112 #ifdef CLARA_CONFIG_OPTIONAL_TYPE
9113     template<typename T>
convertInto(std::string const & source,CLARA_CONFIG_OPTIONAL_TYPE<T> & target)9114     inline auto convertInto( std::string const &source, CLARA_CONFIG_OPTIONAL_TYPE<T>& target ) -> ParserResult {
9115         T temp;
9116         auto result = convertInto( source, temp );
9117         if( result )
9118             target = std::move(temp);
9119         return result;
9120     }
9121 #endif // CLARA_CONFIG_OPTIONAL_TYPE
9122 
9123     struct NonCopyable {
9124         NonCopyable() = default;
9125         NonCopyable( NonCopyable const & ) = delete;
9126         NonCopyable( NonCopyable && ) = delete;
9127         NonCopyable &operator=( NonCopyable const & ) = delete;
9128         NonCopyable &operator=( NonCopyable && ) = delete;
9129     };
9130 
9131     struct BoundRef : NonCopyable {
9132         virtual ~BoundRef() = default;
isContainerCatch::clara::detail::BoundRef9133         virtual auto isContainer() const -> bool { return false; }
isFlagCatch::clara::detail::BoundRef9134         virtual auto isFlag() const -> bool { return false; }
9135     };
9136     struct BoundValueRefBase : BoundRef {
9137         virtual auto setValue( std::string const &arg ) -> ParserResult = 0;
9138     };
9139     struct BoundFlagRefBase : BoundRef {
9140         virtual auto setFlag( bool flag ) -> ParserResult = 0;
isFlagCatch::clara::detail::BoundFlagRefBase9141         virtual auto isFlag() const -> bool { return true; }
9142     };
9143 
9144     template<typename T>
9145     struct BoundValueRef : BoundValueRefBase {
9146         T &m_ref;
9147 
BoundValueRefCatch::clara::detail::BoundValueRef9148         explicit BoundValueRef( T &ref ) : m_ref( ref ) {}
9149 
setValueCatch::clara::detail::BoundValueRef9150         auto setValue( std::string const &arg ) -> ParserResult override {
9151             return convertInto( arg, m_ref );
9152         }
9153     };
9154 
9155     template<typename T>
9156     struct BoundValueRef<std::vector<T>> : BoundValueRefBase {
9157         std::vector<T> &m_ref;
9158 
BoundValueRefCatch::clara::detail::BoundValueRef9159         explicit BoundValueRef( std::vector<T> &ref ) : m_ref( ref ) {}
9160 
isContainerCatch::clara::detail::BoundValueRef9161         auto isContainer() const -> bool override { return true; }
9162 
setValueCatch::clara::detail::BoundValueRef9163         auto setValue( std::string const &arg ) -> ParserResult override {
9164             T temp;
9165             auto result = convertInto( arg, temp );
9166             if( result )
9167                 m_ref.push_back( temp );
9168             return result;
9169         }
9170     };
9171 
9172     struct BoundFlagRef : BoundFlagRefBase {
9173         bool &m_ref;
9174 
BoundFlagRefCatch::clara::detail::BoundFlagRef9175         explicit BoundFlagRef( bool &ref ) : m_ref( ref ) {}
9176 
setFlagCatch::clara::detail::BoundFlagRef9177         auto setFlag( bool flag ) -> ParserResult override {
9178             m_ref = flag;
9179             return ParserResult::ok( ParseResultType::Matched );
9180         }
9181     };
9182 
9183     template<typename ReturnType>
9184     struct LambdaInvoker {
9185         static_assert( std::is_same<ReturnType, ParserResult>::value, "Lambda must return void or clara::ParserResult" );
9186 
9187         template<typename L, typename ArgType>
invokeCatch::clara::detail::LambdaInvoker9188         static auto invoke( L const &lambda, ArgType const &arg ) -> ParserResult {
9189             return lambda( arg );
9190         }
9191     };
9192 
9193     template<>
9194     struct LambdaInvoker<void> {
9195         template<typename L, typename ArgType>
invokeCatch::clara::detail::LambdaInvoker9196         static auto invoke( L const &lambda, ArgType const &arg ) -> ParserResult {
9197             lambda( arg );
9198             return ParserResult::ok( ParseResultType::Matched );
9199         }
9200     };
9201 
9202     template<typename ArgType, typename L>
invokeLambda(L const & lambda,std::string const & arg)9203     inline auto invokeLambda( L const &lambda, std::string const &arg ) -> ParserResult {
9204         ArgType temp{};
9205         auto result = convertInto( arg, temp );
9206         return !result
9207            ? result
9208            : LambdaInvoker<typename UnaryLambdaTraits<L>::ReturnType>::invoke( lambda, temp );
9209     }
9210 
9211     template<typename L>
9212     struct BoundLambda : BoundValueRefBase {
9213         L m_lambda;
9214 
9215         static_assert( UnaryLambdaTraits<L>::isValid, "Supplied lambda must take exactly one argument" );
BoundLambdaCatch::clara::detail::BoundLambda9216         explicit BoundLambda( L const &lambda ) : m_lambda( lambda ) {}
9217 
setValueCatch::clara::detail::BoundLambda9218         auto setValue( std::string const &arg ) -> ParserResult override {
9219             return invokeLambda<typename UnaryLambdaTraits<L>::ArgType>( m_lambda, arg );
9220         }
9221     };
9222 
9223     template<typename L>
9224     struct BoundFlagLambda : BoundFlagRefBase {
9225         L m_lambda;
9226 
9227         static_assert( UnaryLambdaTraits<L>::isValid, "Supplied lambda must take exactly one argument" );
9228         static_assert( std::is_same<typename UnaryLambdaTraits<L>::ArgType, bool>::value, "flags must be boolean" );
9229 
BoundFlagLambdaCatch::clara::detail::BoundFlagLambda9230         explicit BoundFlagLambda( L const &lambda ) : m_lambda( lambda ) {}
9231 
setFlagCatch::clara::detail::BoundFlagLambda9232         auto setFlag( bool flag ) -> ParserResult override {
9233             return LambdaInvoker<typename UnaryLambdaTraits<L>::ReturnType>::invoke( m_lambda, flag );
9234         }
9235     };
9236 
9237     enum class Optionality { Optional, Required };
9238 
9239     struct Parser;
9240 
9241     class ParserBase {
9242     public:
9243         virtual ~ParserBase() = default;
validate() const9244         virtual auto validate() const -> Result { return Result::ok(); }
9245         virtual auto parse( std::string const& exeName, TokenStream const &tokens) const -> InternalParseResult  = 0;
cardinality() const9246         virtual auto cardinality() const -> size_t { return 1; }
9247 
parse(Args const & args) const9248         auto parse( Args const &args ) const -> InternalParseResult {
9249             return parse( args.exeName(), TokenStream( args ) );
9250         }
9251     };
9252 
9253     template<typename DerivedT>
9254     class ComposableParserImpl : public ParserBase {
9255     public:
9256         template<typename T>
9257         auto operator|( T const &other ) const -> Parser;
9258 
9259       template<typename T>
9260         auto operator+( T const &other ) const -> Parser;
9261     };
9262 
9263     // Common code and state for Args and Opts
9264     template<typename DerivedT>
9265     class ParserRefImpl : public ComposableParserImpl<DerivedT> {
9266     protected:
9267         Optionality m_optionality = Optionality::Optional;
9268         std::shared_ptr<BoundRef> m_ref;
9269         std::string m_hint;
9270         std::string m_description;
9271 
ParserRefImpl(std::shared_ptr<BoundRef> const & ref)9272         explicit ParserRefImpl( std::shared_ptr<BoundRef> const &ref ) : m_ref( ref ) {}
9273 
9274     public:
9275         template<typename T>
ParserRefImpl(T & ref,std::string const & hint)9276         ParserRefImpl( T &ref, std::string const &hint )
9277         :   m_ref( std::make_shared<BoundValueRef<T>>( ref ) ),
9278             m_hint( hint )
9279         {}
9280 
9281         template<typename LambdaT>
ParserRefImpl(LambdaT const & ref,std::string const & hint)9282         ParserRefImpl( LambdaT const &ref, std::string const &hint )
9283         :   m_ref( std::make_shared<BoundLambda<LambdaT>>( ref ) ),
9284             m_hint(hint)
9285         {}
9286 
operator ()(std::string const & description)9287         auto operator()( std::string const &description ) -> DerivedT & {
9288             m_description = description;
9289             return static_cast<DerivedT &>( *this );
9290         }
9291 
optional()9292         auto optional() -> DerivedT & {
9293             m_optionality = Optionality::Optional;
9294             return static_cast<DerivedT &>( *this );
9295         };
9296 
required()9297         auto required() -> DerivedT & {
9298             m_optionality = Optionality::Required;
9299             return static_cast<DerivedT &>( *this );
9300         };
9301 
isOptional() const9302         auto isOptional() const -> bool {
9303             return m_optionality == Optionality::Optional;
9304         }
9305 
cardinality() const9306         auto cardinality() const -> size_t override {
9307             if( m_ref->isContainer() )
9308                 return 0;
9309             else
9310                 return 1;
9311         }
9312 
hint() const9313         auto hint() const -> std::string { return m_hint; }
9314     };
9315 
9316     class ExeName : public ComposableParserImpl<ExeName> {
9317         std::shared_ptr<std::string> m_name;
9318         std::shared_ptr<BoundValueRefBase> m_ref;
9319 
9320         template<typename LambdaT>
makeRef(LambdaT const & lambda)9321         static auto makeRef(LambdaT const &lambda) -> std::shared_ptr<BoundValueRefBase> {
9322             return std::make_shared<BoundLambda<LambdaT>>( lambda) ;
9323         }
9324 
9325     public:
ExeName()9326         ExeName() : m_name( std::make_shared<std::string>( "<executable>" ) ) {}
9327 
ExeName(std::string & ref)9328         explicit ExeName( std::string &ref ) : ExeName() {
9329             m_ref = std::make_shared<BoundValueRef<std::string>>( ref );
9330         }
9331 
9332         template<typename LambdaT>
ExeName(LambdaT const & lambda)9333         explicit ExeName( LambdaT const& lambda ) : ExeName() {
9334             m_ref = std::make_shared<BoundLambda<LambdaT>>( lambda );
9335         }
9336 
9337         // The exe name is not parsed out of the normal tokens, but is handled specially
parse(std::string const &,TokenStream const & tokens) const9338         auto parse( std::string const&, TokenStream const &tokens ) const -> InternalParseResult override {
9339             return InternalParseResult::ok( ParseState( ParseResultType::NoMatch, tokens ) );
9340         }
9341 
name() const9342         auto name() const -> std::string { return *m_name; }
set(std::string const & newName)9343         auto set( std::string const& newName ) -> ParserResult {
9344 
9345             auto lastSlash = newName.find_last_of( "\\/" );
9346             auto filename = ( lastSlash == std::string::npos )
9347                     ? newName
9348                     : newName.substr( lastSlash+1 );
9349 
9350             *m_name = filename;
9351             if( m_ref )
9352                 return m_ref->setValue( filename );
9353             else
9354                 return ParserResult::ok( ParseResultType::Matched );
9355         }
9356     };
9357 
9358     class Arg : public ParserRefImpl<Arg> {
9359     public:
9360         using ParserRefImpl::ParserRefImpl;
9361 
parse(std::string const &,TokenStream const & tokens) const9362         auto parse( std::string const &, TokenStream const &tokens ) const -> InternalParseResult override {
9363             auto validationResult = validate();
9364             if( !validationResult )
9365                 return InternalParseResult( validationResult );
9366 
9367             auto remainingTokens = tokens;
9368             auto const &token = *remainingTokens;
9369             if( token.type != TokenType::Argument )
9370                 return InternalParseResult::ok( ParseState( ParseResultType::NoMatch, remainingTokens ) );
9371 
9372             assert( !m_ref->isFlag() );
9373             auto valueRef = static_cast<detail::BoundValueRefBase*>( m_ref.get() );
9374 
9375             auto result = valueRef->setValue( remainingTokens->token );
9376             if( !result )
9377                 return InternalParseResult( result );
9378             else
9379                 return InternalParseResult::ok( ParseState( ParseResultType::Matched, ++remainingTokens ) );
9380         }
9381     };
9382 
normaliseOpt(std::string const & optName)9383     inline auto normaliseOpt( std::string const &optName ) -> std::string {
9384 #ifdef CATCH_PLATFORM_WINDOWS
9385         if( optName[0] == '/' )
9386             return "-" + optName.substr( 1 );
9387         else
9388 #endif
9389             return optName;
9390     }
9391 
9392     class Opt : public ParserRefImpl<Opt> {
9393     protected:
9394         std::vector<std::string> m_optNames;
9395 
9396     public:
9397         template<typename LambdaT>
Opt(LambdaT const & ref)9398         explicit Opt( LambdaT const &ref ) : ParserRefImpl( std::make_shared<BoundFlagLambda<LambdaT>>( ref ) ) {}
9399 
Opt(bool & ref)9400         explicit Opt( bool &ref ) : ParserRefImpl( std::make_shared<BoundFlagRef>( ref ) ) {}
9401 
9402         template<typename LambdaT>
Opt(LambdaT const & ref,std::string const & hint)9403         Opt( LambdaT const &ref, std::string const &hint ) : ParserRefImpl( ref, hint ) {}
9404 
9405         template<typename T>
Opt(T & ref,std::string const & hint)9406         Opt( T &ref, std::string const &hint ) : ParserRefImpl( ref, hint ) {}
9407 
operator [](std::string const & optName)9408         auto operator[]( std::string const &optName ) -> Opt & {
9409             m_optNames.push_back( optName );
9410             return *this;
9411         }
9412 
getHelpColumns() const9413         auto getHelpColumns() const -> std::vector<HelpColumns> {
9414             std::ostringstream oss;
9415             bool first = true;
9416             for( auto const &opt : m_optNames ) {
9417                 if (first)
9418                     first = false;
9419                 else
9420                     oss << ", ";
9421                 oss << opt;
9422             }
9423             if( !m_hint.empty() )
9424                 oss << " <" << m_hint << ">";
9425             return { { oss.str(), m_description } };
9426         }
9427 
isMatch(std::string const & optToken) const9428         auto isMatch( std::string const &optToken ) const -> bool {
9429             auto normalisedToken = normaliseOpt( optToken );
9430             for( auto const &name : m_optNames ) {
9431                 if( normaliseOpt( name ) == normalisedToken )
9432                     return true;
9433             }
9434             return false;
9435         }
9436 
9437         using ParserBase::parse;
9438 
parse(std::string const &,TokenStream const & tokens) const9439         auto parse( std::string const&, TokenStream const &tokens ) const -> InternalParseResult override {
9440             auto validationResult = validate();
9441             if( !validationResult )
9442                 return InternalParseResult( validationResult );
9443 
9444             auto remainingTokens = tokens;
9445             if( remainingTokens && remainingTokens->type == TokenType::Option ) {
9446                 auto const &token = *remainingTokens;
9447                 if( isMatch(token.token ) ) {
9448                     if( m_ref->isFlag() ) {
9449                         auto flagRef = static_cast<detail::BoundFlagRefBase*>( m_ref.get() );
9450                         auto result = flagRef->setFlag( true );
9451                         if( !result )
9452                             return InternalParseResult( result );
9453                         if( result.value() == ParseResultType::ShortCircuitAll )
9454                             return InternalParseResult::ok( ParseState( result.value(), remainingTokens ) );
9455                     } else {
9456                         auto valueRef = static_cast<detail::BoundValueRefBase*>( m_ref.get() );
9457                         ++remainingTokens;
9458                         if( !remainingTokens )
9459                             return InternalParseResult::runtimeError( "Expected argument following " + token.token );
9460                         auto const &argToken = *remainingTokens;
9461                         if( argToken.type != TokenType::Argument )
9462                             return InternalParseResult::runtimeError( "Expected argument following " + token.token );
9463                         auto result = valueRef->setValue( argToken.token );
9464                         if( !result )
9465                             return InternalParseResult( result );
9466                         if( result.value() == ParseResultType::ShortCircuitAll )
9467                             return InternalParseResult::ok( ParseState( result.value(), remainingTokens ) );
9468                     }
9469                     return InternalParseResult::ok( ParseState( ParseResultType::Matched, ++remainingTokens ) );
9470                 }
9471             }
9472             return InternalParseResult::ok( ParseState( ParseResultType::NoMatch, remainingTokens ) );
9473         }
9474 
validate() const9475         auto validate() const -> Result override {
9476             if( m_optNames.empty() )
9477                 return Result::logicError( "No options supplied to Opt" );
9478             for( auto const &name : m_optNames ) {
9479                 if( name.empty() )
9480                     return Result::logicError( "Option name cannot be empty" );
9481 #ifdef CATCH_PLATFORM_WINDOWS
9482                 if( name[0] != '-' && name[0] != '/' )
9483                     return Result::logicError( "Option name must begin with '-' or '/'" );
9484 #else
9485                 if( name[0] != '-' )
9486                     return Result::logicError( "Option name must begin with '-'" );
9487 #endif
9488             }
9489             return ParserRefImpl::validate();
9490         }
9491     };
9492 
9493     struct Help : Opt {
HelpCatch::clara::detail::Help9494         Help( bool &showHelpFlag )
9495         :   Opt([&]( bool flag ) {
9496                 showHelpFlag = flag;
9497                 return ParserResult::ok( ParseResultType::ShortCircuitAll );
9498             })
9499         {
9500             static_cast<Opt &>( *this )
9501                     ("display usage information")
9502                     ["-?"]["-h"]["--help"]
9503                     .optional();
9504         }
9505     };
9506 
9507     struct Parser : ParserBase {
9508 
9509         mutable ExeName m_exeName;
9510         std::vector<Opt> m_options;
9511         std::vector<Arg> m_args;
9512 
operator |=Catch::clara::detail::Parser9513         auto operator|=( ExeName const &exeName ) -> Parser & {
9514             m_exeName = exeName;
9515             return *this;
9516         }
9517 
operator |=Catch::clara::detail::Parser9518         auto operator|=( Arg const &arg ) -> Parser & {
9519             m_args.push_back(arg);
9520             return *this;
9521         }
9522 
operator |=Catch::clara::detail::Parser9523         auto operator|=( Opt const &opt ) -> Parser & {
9524             m_options.push_back(opt);
9525             return *this;
9526         }
9527 
operator |=Catch::clara::detail::Parser9528         auto operator|=( Parser const &other ) -> Parser & {
9529             m_options.insert(m_options.end(), other.m_options.begin(), other.m_options.end());
9530             m_args.insert(m_args.end(), other.m_args.begin(), other.m_args.end());
9531             return *this;
9532         }
9533 
9534         template<typename T>
operator |Catch::clara::detail::Parser9535         auto operator|( T const &other ) const -> Parser {
9536             return Parser( *this ) |= other;
9537         }
9538 
9539         // Forward deprecated interface with '+' instead of '|'
9540         template<typename T>
operator +=Catch::clara::detail::Parser9541         auto operator+=( T const &other ) -> Parser & { return operator|=( other ); }
9542         template<typename T>
operator +Catch::clara::detail::Parser9543         auto operator+( T const &other ) const -> Parser { return operator|( other ); }
9544 
getHelpColumnsCatch::clara::detail::Parser9545         auto getHelpColumns() const -> std::vector<HelpColumns> {
9546             std::vector<HelpColumns> cols;
9547             for (auto const &o : m_options) {
9548                 auto childCols = o.getHelpColumns();
9549                 cols.insert( cols.end(), childCols.begin(), childCols.end() );
9550             }
9551             return cols;
9552         }
9553 
writeToStreamCatch::clara::detail::Parser9554         void writeToStream( std::ostream &os ) const {
9555             if (!m_exeName.name().empty()) {
9556                 os << "usage:\n" << "  " << m_exeName.name() << " ";
9557                 bool required = true, first = true;
9558                 for( auto const &arg : m_args ) {
9559                     if (first)
9560                         first = false;
9561                     else
9562                         os << " ";
9563                     if( arg.isOptional() && required ) {
9564                         os << "[";
9565                         required = false;
9566                     }
9567                     os << "<" << arg.hint() << ">";
9568                     if( arg.cardinality() == 0 )
9569                         os << " ... ";
9570                 }
9571                 if( !required )
9572                     os << "]";
9573                 if( !m_options.empty() )
9574                     os << " options";
9575                 os << "\n\nwhere options are:" << std::endl;
9576             }
9577 
9578             auto rows = getHelpColumns();
9579             size_t consoleWidth = CATCH_CLARA_CONFIG_CONSOLE_WIDTH;
9580             size_t optWidth = 0;
9581             for( auto const &cols : rows )
9582                 optWidth = (std::max)(optWidth, cols.left.size() + 2);
9583 
9584             optWidth = (std::min)(optWidth, consoleWidth/2);
9585 
9586             for( auto const &cols : rows ) {
9587                 auto row =
9588                         TextFlow::Column( cols.left ).width( optWidth ).indent( 2 ) +
9589                         TextFlow::Spacer(4) +
9590                         TextFlow::Column( cols.right ).width( consoleWidth - 7 - optWidth );
9591                 os << row << std::endl;
9592             }
9593         }
9594 
operator <<(std::ostream & os,Parser const & parser)9595         friend auto operator<<( std::ostream &os, Parser const &parser ) -> std::ostream& {
9596             parser.writeToStream( os );
9597             return os;
9598         }
9599 
validateCatch::clara::detail::Parser9600         auto validate() const -> Result override {
9601             for( auto const &opt : m_options ) {
9602                 auto result = opt.validate();
9603                 if( !result )
9604                     return result;
9605             }
9606             for( auto const &arg : m_args ) {
9607                 auto result = arg.validate();
9608                 if( !result )
9609                     return result;
9610             }
9611             return Result::ok();
9612         }
9613 
9614         using ParserBase::parse;
9615 
parseCatch::clara::detail::Parser9616         auto parse( std::string const& exeName, TokenStream const &tokens ) const -> InternalParseResult override {
9617 
9618             struct ParserInfo {
9619                 ParserBase const* parser = nullptr;
9620                 size_t count = 0;
9621             };
9622             const size_t totalParsers = m_options.size() + m_args.size();
9623             assert( totalParsers < 512 );
9624             // ParserInfo parseInfos[totalParsers]; // <-- this is what we really want to do
9625             ParserInfo parseInfos[512];
9626 
9627             {
9628                 size_t i = 0;
9629                 for (auto const &opt : m_options) parseInfos[i++].parser = &opt;
9630                 for (auto const &arg : m_args) parseInfos[i++].parser = &arg;
9631             }
9632 
9633             m_exeName.set( exeName );
9634 
9635             auto result = InternalParseResult::ok( ParseState( ParseResultType::NoMatch, tokens ) );
9636             while( result.value().remainingTokens() ) {
9637                 bool tokenParsed = false;
9638 
9639                 for( size_t i = 0; i < totalParsers; ++i ) {
9640                     auto&  parseInfo = parseInfos[i];
9641                     if( parseInfo.parser->cardinality() == 0 || parseInfo.count < parseInfo.parser->cardinality() ) {
9642                         result = parseInfo.parser->parse(exeName, result.value().remainingTokens());
9643                         if (!result)
9644                             return result;
9645                         if (result.value().type() != ParseResultType::NoMatch) {
9646                             tokenParsed = true;
9647                             ++parseInfo.count;
9648                             break;
9649                         }
9650                     }
9651                 }
9652 
9653                 if( result.value().type() == ParseResultType::ShortCircuitAll )
9654                     return result;
9655                 if( !tokenParsed )
9656                     return InternalParseResult::runtimeError( "Unrecognised token: " + result.value().remainingTokens()->token );
9657             }
9658             // !TBD Check missing required options
9659             return result;
9660         }
9661     };
9662 
9663     template<typename DerivedT>
9664     template<typename T>
operator |(T const & other) const9665     auto ComposableParserImpl<DerivedT>::operator|( T const &other ) const -> Parser {
9666         return Parser() | static_cast<DerivedT const &>( *this ) | other;
9667     }
9668 } // namespace detail
9669 
9670 // A Combined parser
9671 using detail::Parser;
9672 
9673 // A parser for options
9674 using detail::Opt;
9675 
9676 // A parser for arguments
9677 using detail::Arg;
9678 
9679 // Wrapper for argc, argv from main()
9680 using detail::Args;
9681 
9682 // Specifies the name of the executable
9683 using detail::ExeName;
9684 
9685 // Convenience wrapper for option parser that specifies the help option
9686 using detail::Help;
9687 
9688 // enum of result types from a parse
9689 using detail::ParseResultType;
9690 
9691 // Result type for parser operation
9692 using detail::ParserResult;
9693 
9694 }} // namespace Catch::clara
9695 
9696 // end clara.hpp
9697 #ifdef __clang__
9698 #pragma clang diagnostic pop
9699 #endif
9700 
9701 // Restore Clara's value for console width, if present
9702 #ifdef CATCH_TEMP_CLARA_CONFIG_CONSOLE_WIDTH
9703 #define CATCH_CLARA_TEXTFLOW_CONFIG_CONSOLE_WIDTH CATCH_TEMP_CLARA_CONFIG_CONSOLE_WIDTH
9704 #undef CATCH_TEMP_CLARA_CONFIG_CONSOLE_WIDTH
9705 #endif
9706 
9707 // end catch_clara.h
9708 namespace Catch {
9709 
9710     clara::Parser makeCommandLineParser( ConfigData& config );
9711 
9712 } // end namespace Catch
9713 
9714 // end catch_commandline.h
9715 #include <fstream>
9716 #include <ctime>
9717 
9718 namespace Catch {
9719 
makeCommandLineParser(ConfigData & config)9720     clara::Parser makeCommandLineParser( ConfigData& config ) {
9721 
9722         using namespace clara;
9723 
9724         auto const setWarning = [&]( std::string const& warning ) {
9725                 auto warningSet = [&]() {
9726                     if( warning == "NoAssertions" )
9727                         return WarnAbout::NoAssertions;
9728 
9729                     if ( warning == "NoTests" )
9730                         return WarnAbout::NoTests;
9731 
9732                     return WarnAbout::Nothing;
9733                 }();
9734 
9735                 if (warningSet == WarnAbout::Nothing)
9736                     return ParserResult::runtimeError( "Unrecognised warning: '" + warning + "'" );
9737                 config.warnings = static_cast<WarnAbout::What>( config.warnings | warningSet );
9738                 return ParserResult::ok( ParseResultType::Matched );
9739             };
9740         auto const loadTestNamesFromFile = [&]( std::string const& filename ) {
9741                 std::ifstream f( filename.c_str() );
9742                 if( !f.is_open() )
9743                     return ParserResult::runtimeError( "Unable to load input file: '" + filename + "'" );
9744 
9745                 std::string line;
9746                 while( std::getline( f, line ) ) {
9747                     line = trim(line);
9748                     if( !line.empty() && !startsWith( line, '#' ) ) {
9749                         if( !startsWith( line, '"' ) )
9750                             line = '"' + line + '"';
9751                         config.testsOrTags.push_back( line );
9752                         config.testsOrTags.emplace_back( "," );
9753                     }
9754                 }
9755                 //Remove comma in the end
9756                 if(!config.testsOrTags.empty())
9757                     config.testsOrTags.erase( config.testsOrTags.end()-1 );
9758 
9759                 return ParserResult::ok( ParseResultType::Matched );
9760             };
9761         auto const setTestOrder = [&]( std::string const& order ) {
9762                 if( startsWith( "declared", order ) )
9763                     config.runOrder = RunTests::InDeclarationOrder;
9764                 else if( startsWith( "lexical", order ) )
9765                     config.runOrder = RunTests::InLexicographicalOrder;
9766                 else if( startsWith( "random", order ) )
9767                     config.runOrder = RunTests::InRandomOrder;
9768                 else
9769                     return clara::ParserResult::runtimeError( "Unrecognised ordering: '" + order + "'" );
9770                 return ParserResult::ok( ParseResultType::Matched );
9771             };
9772         auto const setRngSeed = [&]( std::string const& seed ) {
9773                 if( seed != "time" )
9774                     return clara::detail::convertInto( seed, config.rngSeed );
9775                 config.rngSeed = static_cast<unsigned int>( std::time(nullptr) );
9776                 return ParserResult::ok( ParseResultType::Matched );
9777             };
9778         auto const setColourUsage = [&]( std::string const& useColour ) {
9779                     auto mode = toLower( useColour );
9780 
9781                     if( mode == "yes" )
9782                         config.useColour = UseColour::Yes;
9783                     else if( mode == "no" )
9784                         config.useColour = UseColour::No;
9785                     else if( mode == "auto" )
9786                         config.useColour = UseColour::Auto;
9787                     else
9788                         return ParserResult::runtimeError( "colour mode must be one of: auto, yes or no. '" + useColour + "' not recognised" );
9789                 return ParserResult::ok( ParseResultType::Matched );
9790             };
9791         auto const setWaitForKeypress = [&]( std::string const& keypress ) {
9792                 auto keypressLc = toLower( keypress );
9793                 if (keypressLc == "never")
9794                     config.waitForKeypress = WaitForKeypress::Never;
9795                 else if( keypressLc == "start" )
9796                     config.waitForKeypress = WaitForKeypress::BeforeStart;
9797                 else if( keypressLc == "exit" )
9798                     config.waitForKeypress = WaitForKeypress::BeforeExit;
9799                 else if( keypressLc == "both" )
9800                     config.waitForKeypress = WaitForKeypress::BeforeStartAndExit;
9801                 else
9802                     return ParserResult::runtimeError( "keypress argument must be one of: never, start, exit or both. '" + keypress + "' not recognised" );
9803             return ParserResult::ok( ParseResultType::Matched );
9804             };
9805         auto const setVerbosity = [&]( std::string const& verbosity ) {
9806             auto lcVerbosity = toLower( verbosity );
9807             if( lcVerbosity == "quiet" )
9808                 config.verbosity = Verbosity::Quiet;
9809             else if( lcVerbosity == "normal" )
9810                 config.verbosity = Verbosity::Normal;
9811             else if( lcVerbosity == "high" )
9812                 config.verbosity = Verbosity::High;
9813             else
9814                 return ParserResult::runtimeError( "Unrecognised verbosity, '" + verbosity + "'" );
9815             return ParserResult::ok( ParseResultType::Matched );
9816         };
9817         auto const setReporter = [&]( std::string const& reporter ) {
9818             IReporterRegistry::FactoryMap const& factories = getRegistryHub().getReporterRegistry().getFactories();
9819 
9820             auto lcReporter = toLower( reporter );
9821             auto result = factories.find( lcReporter );
9822 
9823             if( factories.end() != result )
9824                 config.reporterName = lcReporter;
9825             else
9826                 return ParserResult::runtimeError( "Unrecognized reporter, '" + reporter + "'. Check available with --list-reporters" );
9827             return ParserResult::ok( ParseResultType::Matched );
9828         };
9829 
9830         auto cli
9831             = ExeName( config.processName )
9832             | Help( config.showHelp )
9833             | Opt( config.listTests )
9834                 ["-l"]["--list-tests"]
9835                 ( "list all/matching test cases" )
9836             | Opt( config.listTags )
9837                 ["-t"]["--list-tags"]
9838                 ( "list all/matching tags" )
9839             | Opt( config.showSuccessfulTests )
9840                 ["-s"]["--success"]
9841                 ( "include successful tests in output" )
9842             | Opt( config.shouldDebugBreak )
9843                 ["-b"]["--break"]
9844                 ( "break into debugger on failure" )
9845             | Opt( config.noThrow )
9846                 ["-e"]["--nothrow"]
9847                 ( "skip exception tests" )
9848             | Opt( config.showInvisibles )
9849                 ["-i"]["--invisibles"]
9850                 ( "show invisibles (tabs, newlines)" )
9851             | Opt( config.outputFilename, "filename" )
9852                 ["-o"]["--out"]
9853                 ( "output filename" )
9854             | Opt( setReporter, "name" )
9855                 ["-r"]["--reporter"]
9856                 ( "reporter to use (defaults to console)" )
9857             | Opt( config.name, "name" )
9858                 ["-n"]["--name"]
9859                 ( "suite name" )
9860             | Opt( [&]( bool ){ config.abortAfter = 1; } )
9861                 ["-a"]["--abort"]
9862                 ( "abort at first failure" )
9863             | Opt( [&]( int x ){ config.abortAfter = x; }, "no. failures" )
9864                 ["-x"]["--abortx"]
9865                 ( "abort after x failures" )
9866             | Opt( setWarning, "warning name" )
9867                 ["-w"]["--warn"]
9868                 ( "enable warnings" )
9869             | Opt( [&]( bool flag ) { config.showDurations = flag ? ShowDurations::Always : ShowDurations::Never; }, "yes|no" )
9870                 ["-d"]["--durations"]
9871                 ( "show test durations" )
9872             | Opt( config.minDuration, "seconds" )
9873                 ["-D"]["--min-duration"]
9874                 ( "show test durations for tests taking at least the given number of seconds" )
9875             | Opt( loadTestNamesFromFile, "filename" )
9876                 ["-f"]["--input-file"]
9877                 ( "load test names to run from a file" )
9878             | Opt( config.filenamesAsTags )
9879                 ["-#"]["--filenames-as-tags"]
9880                 ( "adds a tag for the filename" )
9881             | Opt( config.sectionsToRun, "section name" )
9882                 ["-c"]["--section"]
9883                 ( "specify section to run" )
9884             | Opt( setVerbosity, "quiet|normal|high" )
9885                 ["-v"]["--verbosity"]
9886                 ( "set output verbosity" )
9887             | Opt( config.listTestNamesOnly )
9888                 ["--list-test-names-only"]
9889                 ( "list all/matching test cases names only" )
9890             | Opt( config.listReporters )
9891                 ["--list-reporters"]
9892                 ( "list all reporters" )
9893             | Opt( setTestOrder, "decl|lex|rand" )
9894                 ["--order"]
9895                 ( "test case order (defaults to decl)" )
9896             | Opt( setRngSeed, "'time'|number" )
9897                 ["--rng-seed"]
9898                 ( "set a specific seed for random numbers" )
9899             | Opt( setColourUsage, "yes|no" )
9900                 ["--use-colour"]
9901                 ( "should output be colourised" )
9902             | Opt( config.libIdentify )
9903                 ["--libidentify"]
9904                 ( "report name and version according to libidentify standard" )
9905             | Opt( setWaitForKeypress, "never|start|exit|both" )
9906                 ["--wait-for-keypress"]
9907                 ( "waits for a keypress before exiting" )
9908             | Opt( config.benchmarkSamples, "samples" )
9909                 ["--benchmark-samples"]
9910                 ( "number of samples to collect (default: 100)" )
9911             | Opt( config.benchmarkResamples, "resamples" )
9912                 ["--benchmark-resamples"]
9913                 ( "number of resamples for the bootstrap (default: 100000)" )
9914             | Opt( config.benchmarkConfidenceInterval, "confidence interval" )
9915                 ["--benchmark-confidence-interval"]
9916                 ( "confidence interval for the bootstrap (between 0 and 1, default: 0.95)" )
9917             | Opt( config.benchmarkNoAnalysis )
9918                 ["--benchmark-no-analysis"]
9919                 ( "perform only measurements; do not perform any analysis" )
9920             | Opt( config.benchmarkWarmupTime, "benchmarkWarmupTime" )
9921                 ["--benchmark-warmup-time"]
9922                 ( "amount of time in milliseconds spent on warming up each test (default: 100)" )
9923             | Arg( config.testsOrTags, "test name|pattern|tags" )
9924                 ( "which test or tests to use" );
9925 
9926         return cli;
9927     }
9928 
9929 } // end namespace Catch
9930 // end catch_commandline.cpp
9931 // start catch_common.cpp
9932 
9933 #include <cstring>
9934 #include <ostream>
9935 
9936 namespace Catch {
9937 
operator ==(SourceLineInfo const & other) const9938     bool SourceLineInfo::operator == ( SourceLineInfo const& other ) const noexcept {
9939         return line == other.line && (file == other.file || std::strcmp(file, other.file) == 0);
9940     }
operator <(SourceLineInfo const & other) const9941     bool SourceLineInfo::operator < ( SourceLineInfo const& other ) const noexcept {
9942         // We can assume that the same file will usually have the same pointer.
9943         // Thus, if the pointers are the same, there is no point in calling the strcmp
9944         return line < other.line || ( line == other.line && file != other.file && (std::strcmp(file, other.file) < 0));
9945     }
9946 
operator <<(std::ostream & os,SourceLineInfo const & info)9947     std::ostream& operator << ( std::ostream& os, SourceLineInfo const& info ) {
9948 #ifndef __GNUG__
9949         os << info.file << '(' << info.line << ')';
9950 #else
9951         os << info.file << ':' << info.line;
9952 #endif
9953         return os;
9954     }
9955 
operator +() const9956     std::string StreamEndStop::operator+() const {
9957         return std::string();
9958     }
9959 
9960     NonCopyable::NonCopyable() = default;
9961     NonCopyable::~NonCopyable() = default;
9962 
9963 }
9964 // end catch_common.cpp
9965 // start catch_config.cpp
9966 
9967 namespace Catch {
9968 
Config(ConfigData const & data)9969     Config::Config( ConfigData const& data )
9970     :   m_data( data ),
9971         m_stream( openStream() )
9972     {
9973         // We need to trim filter specs to avoid trouble with superfluous
9974         // whitespace (esp. important for bdd macros, as those are manually
9975         // aligned with whitespace).
9976 
9977         for (auto& elem : m_data.testsOrTags) {
9978             elem = trim(elem);
9979         }
9980         for (auto& elem : m_data.sectionsToRun) {
9981             elem = trim(elem);
9982         }
9983 
9984         TestSpecParser parser(ITagAliasRegistry::get());
9985         if (!m_data.testsOrTags.empty()) {
9986             m_hasTestFilters = true;
9987             for (auto const& testOrTags : m_data.testsOrTags) {
9988                 parser.parse(testOrTags);
9989             }
9990         }
9991         m_testSpec = parser.testSpec();
9992     }
9993 
getFilename() const9994     std::string const& Config::getFilename() const {
9995         return m_data.outputFilename ;
9996     }
9997 
listTests() const9998     bool Config::listTests() const          { return m_data.listTests; }
listTestNamesOnly() const9999     bool Config::listTestNamesOnly() const  { return m_data.listTestNamesOnly; }
listTags() const10000     bool Config::listTags() const           { return m_data.listTags; }
listReporters() const10001     bool Config::listReporters() const      { return m_data.listReporters; }
10002 
getProcessName() const10003     std::string Config::getProcessName() const { return m_data.processName; }
getReporterName() const10004     std::string const& Config::getReporterName() const { return m_data.reporterName; }
10005 
getTestsOrTags() const10006     std::vector<std::string> const& Config::getTestsOrTags() const { return m_data.testsOrTags; }
getSectionsToRun() const10007     std::vector<std::string> const& Config::getSectionsToRun() const { return m_data.sectionsToRun; }
10008 
testSpec() const10009     TestSpec const& Config::testSpec() const { return m_testSpec; }
hasTestFilters() const10010     bool Config::hasTestFilters() const { return m_hasTestFilters; }
10011 
showHelp() const10012     bool Config::showHelp() const { return m_data.showHelp; }
10013 
10014     // IConfig interface
allowThrows() const10015     bool Config::allowThrows() const                   { return !m_data.noThrow; }
stream() const10016     std::ostream& Config::stream() const               { return m_stream->stream(); }
name() const10017     std::string Config::name() const                   { return m_data.name.empty() ? m_data.processName : m_data.name; }
includeSuccessfulResults() const10018     bool Config::includeSuccessfulResults() const      { return m_data.showSuccessfulTests; }
warnAboutMissingAssertions() const10019     bool Config::warnAboutMissingAssertions() const    { return !!(m_data.warnings & WarnAbout::NoAssertions); }
warnAboutNoTests() const10020     bool Config::warnAboutNoTests() const              { return !!(m_data.warnings & WarnAbout::NoTests); }
showDurations() const10021     ShowDurations::OrNot Config::showDurations() const { return m_data.showDurations; }
minDuration() const10022     double Config::minDuration() const                 { return m_data.minDuration; }
runOrder() const10023     RunTests::InWhatOrder Config::runOrder() const     { return m_data.runOrder; }
rngSeed() const10024     unsigned int Config::rngSeed() const               { return m_data.rngSeed; }
useColour() const10025     UseColour::YesOrNo Config::useColour() const       { return m_data.useColour; }
shouldDebugBreak() const10026     bool Config::shouldDebugBreak() const              { return m_data.shouldDebugBreak; }
abortAfter() const10027     int Config::abortAfter() const                     { return m_data.abortAfter; }
showInvisibles() const10028     bool Config::showInvisibles() const                { return m_data.showInvisibles; }
verbosity() const10029     Verbosity Config::verbosity() const                { return m_data.verbosity; }
10030 
benchmarkNoAnalysis() const10031     bool Config::benchmarkNoAnalysis() const                      { return m_data.benchmarkNoAnalysis; }
benchmarkSamples() const10032     int Config::benchmarkSamples() const                          { return m_data.benchmarkSamples; }
benchmarkConfidenceInterval() const10033     double Config::benchmarkConfidenceInterval() const            { return m_data.benchmarkConfidenceInterval; }
benchmarkResamples() const10034     unsigned int Config::benchmarkResamples() const               { return m_data.benchmarkResamples; }
benchmarkWarmupTime() const10035     std::chrono::milliseconds Config::benchmarkWarmupTime() const { return std::chrono::milliseconds(m_data.benchmarkWarmupTime); }
10036 
openStream()10037     IStream const* Config::openStream() {
10038         return Catch::makeStream(m_data.outputFilename);
10039     }
10040 
10041 } // end namespace Catch
10042 // end catch_config.cpp
10043 // start catch_console_colour.cpp
10044 
10045 #if defined(__clang__)
10046 #    pragma clang diagnostic push
10047 #    pragma clang diagnostic ignored "-Wexit-time-destructors"
10048 #endif
10049 
10050 // start catch_errno_guard.h
10051 
10052 namespace Catch {
10053 
10054     class ErrnoGuard {
10055     public:
10056         ErrnoGuard();
10057         ~ErrnoGuard();
10058     private:
10059         int m_oldErrno;
10060     };
10061 
10062 }
10063 
10064 // end catch_errno_guard.h
10065 #include <sstream>
10066 
10067 namespace Catch {
10068     namespace {
10069 
10070         struct IColourImpl {
10071             virtual ~IColourImpl() = default;
10072             virtual void use( Colour::Code _colourCode ) = 0;
10073         };
10074 
10075         struct NoColourImpl : IColourImpl {
useCatch::__anon3134d1e12d11::NoColourImpl10076             void use( Colour::Code ) override {}
10077 
instanceCatch::__anon3134d1e12d11::NoColourImpl10078             static IColourImpl* instance() {
10079                 static NoColourImpl s_instance;
10080                 return &s_instance;
10081             }
10082         };
10083 
10084     } // anon namespace
10085 } // namespace Catch
10086 
10087 #if !defined( CATCH_CONFIG_COLOUR_NONE ) && !defined( CATCH_CONFIG_COLOUR_WINDOWS ) && !defined( CATCH_CONFIG_COLOUR_ANSI )
10088 #   ifdef CATCH_PLATFORM_WINDOWS
10089 #       define CATCH_CONFIG_COLOUR_WINDOWS
10090 #   else
10091 #       define CATCH_CONFIG_COLOUR_ANSI
10092 #   endif
10093 #endif
10094 
10095 #if defined ( CATCH_CONFIG_COLOUR_WINDOWS ) /////////////////////////////////////////
10096 
10097 namespace Catch {
10098 namespace {
10099 
10100     class Win32ColourImpl : public IColourImpl {
10101     public:
Win32ColourImpl()10102         Win32ColourImpl() : stdoutHandle( GetStdHandle(STD_OUTPUT_HANDLE) )
10103         {
10104             CONSOLE_SCREEN_BUFFER_INFO csbiInfo;
10105             GetConsoleScreenBufferInfo( stdoutHandle, &csbiInfo );
10106             originalForegroundAttributes = csbiInfo.wAttributes & ~( BACKGROUND_GREEN | BACKGROUND_RED | BACKGROUND_BLUE | BACKGROUND_INTENSITY );
10107             originalBackgroundAttributes = csbiInfo.wAttributes & ~( FOREGROUND_GREEN | FOREGROUND_RED | FOREGROUND_BLUE | FOREGROUND_INTENSITY );
10108         }
10109 
use(Colour::Code _colourCode)10110         void use( Colour::Code _colourCode ) override {
10111             switch( _colourCode ) {
10112                 case Colour::None:      return setTextAttribute( originalForegroundAttributes );
10113                 case Colour::White:     return setTextAttribute( FOREGROUND_GREEN | FOREGROUND_RED | FOREGROUND_BLUE );
10114                 case Colour::Red:       return setTextAttribute( FOREGROUND_RED );
10115                 case Colour::Green:     return setTextAttribute( FOREGROUND_GREEN );
10116                 case Colour::Blue:      return setTextAttribute( FOREGROUND_BLUE );
10117                 case Colour::Cyan:      return setTextAttribute( FOREGROUND_BLUE | FOREGROUND_GREEN );
10118                 case Colour::Yellow:    return setTextAttribute( FOREGROUND_RED | FOREGROUND_GREEN );
10119                 case Colour::Grey:      return setTextAttribute( 0 );
10120 
10121                 case Colour::LightGrey:     return setTextAttribute( FOREGROUND_INTENSITY );
10122                 case Colour::BrightRed:     return setTextAttribute( FOREGROUND_INTENSITY | FOREGROUND_RED );
10123                 case Colour::BrightGreen:   return setTextAttribute( FOREGROUND_INTENSITY | FOREGROUND_GREEN );
10124                 case Colour::BrightWhite:   return setTextAttribute( FOREGROUND_INTENSITY | FOREGROUND_GREEN | FOREGROUND_RED | FOREGROUND_BLUE );
10125                 case Colour::BrightYellow:  return setTextAttribute( FOREGROUND_INTENSITY | FOREGROUND_RED | FOREGROUND_GREEN );
10126 
10127                 case Colour::Bright: CATCH_INTERNAL_ERROR( "not a colour" );
10128 
10129                 default:
10130                     CATCH_ERROR( "Unknown colour requested" );
10131             }
10132         }
10133 
10134     private:
setTextAttribute(WORD _textAttribute)10135         void setTextAttribute( WORD _textAttribute ) {
10136             SetConsoleTextAttribute( stdoutHandle, _textAttribute | originalBackgroundAttributes );
10137         }
10138         HANDLE stdoutHandle;
10139         WORD originalForegroundAttributes;
10140         WORD originalBackgroundAttributes;
10141     };
10142 
platformColourInstance()10143     IColourImpl* platformColourInstance() {
10144         static Win32ColourImpl s_instance;
10145 
10146         IConfigPtr config = getCurrentContext().getConfig();
10147         UseColour::YesOrNo colourMode = config
10148             ? config->useColour()
10149             : UseColour::Auto;
10150         if( colourMode == UseColour::Auto )
10151             colourMode = UseColour::Yes;
10152         return colourMode == UseColour::Yes
10153             ? &s_instance
10154             : NoColourImpl::instance();
10155     }
10156 
10157 } // end anon namespace
10158 } // end namespace Catch
10159 
10160 #elif defined( CATCH_CONFIG_COLOUR_ANSI ) //////////////////////////////////////
10161 
10162 #include <unistd.h>
10163 
10164 namespace Catch {
10165 namespace {
10166 
10167     // use POSIX/ ANSI console terminal codes
10168     // Thanks to Adam Strzelecki for original contribution
10169     // (http://github.com/nanoant)
10170     // https://github.com/philsquared/Catch/pull/131
10171     class PosixColourImpl : public IColourImpl {
10172     public:
use(Colour::Code _colourCode)10173         void use( Colour::Code _colourCode ) override {
10174             switch( _colourCode ) {
10175                 case Colour::None:
10176                 case Colour::White:     return setColour( "[0m" );
10177                 case Colour::Red:       return setColour( "[0;31m" );
10178                 case Colour::Green:     return setColour( "[0;32m" );
10179                 case Colour::Blue:      return setColour( "[0;34m" );
10180                 case Colour::Cyan:      return setColour( "[0;36m" );
10181                 case Colour::Yellow:    return setColour( "[0;33m" );
10182                 case Colour::Grey:      return setColour( "[1;30m" );
10183 
10184                 case Colour::LightGrey:     return setColour( "[0;37m" );
10185                 case Colour::BrightRed:     return setColour( "[1;31m" );
10186                 case Colour::BrightGreen:   return setColour( "[1;32m" );
10187                 case Colour::BrightWhite:   return setColour( "[1;37m" );
10188                 case Colour::BrightYellow:  return setColour( "[1;33m" );
10189 
10190                 case Colour::Bright: CATCH_INTERNAL_ERROR( "not a colour" );
10191                 default: CATCH_INTERNAL_ERROR( "Unknown colour requested" );
10192             }
10193         }
instance()10194         static IColourImpl* instance() {
10195             static PosixColourImpl s_instance;
10196             return &s_instance;
10197         }
10198 
10199     private:
setColour(const char * _escapeCode)10200         void setColour( const char* _escapeCode ) {
10201             getCurrentContext().getConfig()->stream()
10202                 << '\033' << _escapeCode;
10203         }
10204     };
10205 
useColourOnPlatform()10206     bool useColourOnPlatform() {
10207         return
10208 #if defined(CATCH_PLATFORM_MAC) || defined(CATCH_PLATFORM_IPHONE)
10209             !isDebuggerActive() &&
10210 #endif
10211 #if !(defined(__DJGPP__) && defined(__STRICT_ANSI__))
10212             isatty(STDOUT_FILENO)
10213 #else
10214             false
10215 #endif
10216             ;
10217     }
platformColourInstance()10218     IColourImpl* platformColourInstance() {
10219         ErrnoGuard guard;
10220         IConfigPtr config = getCurrentContext().getConfig();
10221         UseColour::YesOrNo colourMode = config
10222             ? config->useColour()
10223             : UseColour::Auto;
10224         if( colourMode == UseColour::Auto )
10225             colourMode = useColourOnPlatform()
10226                 ? UseColour::Yes
10227                 : UseColour::No;
10228         return colourMode == UseColour::Yes
10229             ? PosixColourImpl::instance()
10230             : NoColourImpl::instance();
10231     }
10232 
10233 } // end anon namespace
10234 } // end namespace Catch
10235 
10236 #else  // not Windows or ANSI ///////////////////////////////////////////////
10237 
10238 namespace Catch {
10239 
platformColourInstance()10240     static IColourImpl* platformColourInstance() { return NoColourImpl::instance(); }
10241 
10242 } // end namespace Catch
10243 
10244 #endif // Windows/ ANSI/ None
10245 
10246 namespace Catch {
10247 
Colour(Code _colourCode)10248     Colour::Colour( Code _colourCode ) { use( _colourCode ); }
Colour(Colour && other)10249     Colour::Colour( Colour&& other ) noexcept {
10250         m_moved = other.m_moved;
10251         other.m_moved = true;
10252     }
operator =(Colour && other)10253     Colour& Colour::operator=( Colour&& other ) noexcept {
10254         m_moved = other.m_moved;
10255         other.m_moved  = true;
10256         return *this;
10257     }
10258 
~Colour()10259     Colour::~Colour(){ if( !m_moved ) use( None ); }
10260 
use(Code _colourCode)10261     void Colour::use( Code _colourCode ) {
10262         static IColourImpl* impl = platformColourInstance();
10263         // Strictly speaking, this cannot possibly happen.
10264         // However, under some conditions it does happen (see #1626),
10265         // and this change is small enough that we can let practicality
10266         // triumph over purity in this case.
10267         if (impl != nullptr) {
10268             impl->use( _colourCode );
10269         }
10270     }
10271 
operator <<(std::ostream & os,Colour const &)10272     std::ostream& operator << ( std::ostream& os, Colour const& ) {
10273         return os;
10274     }
10275 
10276 } // end namespace Catch
10277 
10278 #if defined(__clang__)
10279 #    pragma clang diagnostic pop
10280 #endif
10281 
10282 // end catch_console_colour.cpp
10283 // start catch_context.cpp
10284 
10285 namespace Catch {
10286 
10287     class Context : public IMutableContext, NonCopyable {
10288 
10289     public: // IContext
getResultCapture()10290         IResultCapture* getResultCapture() override {
10291             return m_resultCapture;
10292         }
getRunner()10293         IRunner* getRunner() override {
10294             return m_runner;
10295         }
10296 
getConfig() const10297         IConfigPtr const& getConfig() const override {
10298             return m_config;
10299         }
10300 
10301         ~Context() override;
10302 
10303     public: // IMutableContext
setResultCapture(IResultCapture * resultCapture)10304         void setResultCapture( IResultCapture* resultCapture ) override {
10305             m_resultCapture = resultCapture;
10306         }
setRunner(IRunner * runner)10307         void setRunner( IRunner* runner ) override {
10308             m_runner = runner;
10309         }
setConfig(IConfigPtr const & config)10310         void setConfig( IConfigPtr const& config ) override {
10311             m_config = config;
10312         }
10313 
10314         friend IMutableContext& getCurrentMutableContext();
10315 
10316     private:
10317         IConfigPtr m_config;
10318         IRunner* m_runner = nullptr;
10319         IResultCapture* m_resultCapture = nullptr;
10320     };
10321 
10322     IMutableContext *IMutableContext::currentContext = nullptr;
10323 
createContext()10324     void IMutableContext::createContext()
10325     {
10326         currentContext = new Context();
10327     }
10328 
cleanUpContext()10329     void cleanUpContext() {
10330         delete IMutableContext::currentContext;
10331         IMutableContext::currentContext = nullptr;
10332     }
10333     IContext::~IContext() = default;
10334     IMutableContext::~IMutableContext() = default;
10335     Context::~Context() = default;
10336 
rng()10337     SimplePcg32& rng() {
10338         static SimplePcg32 s_rng;
10339         return s_rng;
10340     }
10341 
10342 }
10343 // end catch_context.cpp
10344 // start catch_debug_console.cpp
10345 
10346 // start catch_debug_console.h
10347 
10348 #include <string>
10349 
10350 namespace Catch {
10351     void writeToDebugConsole( std::string const& text );
10352 }
10353 
10354 // end catch_debug_console.h
10355 #if defined(CATCH_CONFIG_ANDROID_LOGWRITE)
10356 #include <android/log.h>
10357 
10358     namespace Catch {
writeToDebugConsole(std::string const & text)10359         void writeToDebugConsole( std::string const& text ) {
10360             __android_log_write( ANDROID_LOG_DEBUG, "Catch", text.c_str() );
10361         }
10362     }
10363 
10364 #elif defined(CATCH_PLATFORM_WINDOWS)
10365 
10366     namespace Catch {
writeToDebugConsole(std::string const & text)10367         void writeToDebugConsole( std::string const& text ) {
10368             ::OutputDebugStringA( text.c_str() );
10369         }
10370     }
10371 
10372 #else
10373 
10374     namespace Catch {
writeToDebugConsole(std::string const & text)10375         void writeToDebugConsole( std::string const& text ) {
10376             // !TBD: Need a version for Mac/ XCode and other IDEs
10377             Catch::cout() << text;
10378         }
10379     }
10380 
10381 #endif // Platform
10382 // end catch_debug_console.cpp
10383 // start catch_debugger.cpp
10384 
10385 #if defined(CATCH_PLATFORM_MAC) || defined(CATCH_PLATFORM_IPHONE)
10386 
10387 #  include <cassert>
10388 #  include <sys/types.h>
10389 #  include <unistd.h>
10390 #  include <cstddef>
10391 #  include <ostream>
10392 
10393 #ifdef __apple_build_version__
10394     // These headers will only compile with AppleClang (XCode)
10395     // For other compilers (Clang, GCC, ... ) we need to exclude them
10396 #  include <sys/sysctl.h>
10397 #endif
10398 
10399     namespace Catch {
10400         #ifdef __apple_build_version__
10401         // The following function is taken directly from the following technical note:
10402         // https://developer.apple.com/library/archive/qa/qa1361/_index.html
10403 
10404         // Returns true if the current process is being debugged (either
10405         // running under the debugger or has a debugger attached post facto).
isDebuggerActive()10406         bool isDebuggerActive(){
10407             int                 mib[4];
10408             struct kinfo_proc   info;
10409             std::size_t         size;
10410 
10411             // Initialize the flags so that, if sysctl fails for some bizarre
10412             // reason, we get a predictable result.
10413 
10414             info.kp_proc.p_flag = 0;
10415 
10416             // Initialize mib, which tells sysctl the info we want, in this case
10417             // we're looking for information about a specific process ID.
10418 
10419             mib[0] = CTL_KERN;
10420             mib[1] = KERN_PROC;
10421             mib[2] = KERN_PROC_PID;
10422             mib[3] = getpid();
10423 
10424             // Call sysctl.
10425 
10426             size = sizeof(info);
10427             if( sysctl(mib, sizeof(mib) / sizeof(*mib), &info, &size, nullptr, 0) != 0 ) {
10428                 Catch::cerr() << "\n** Call to sysctl failed - unable to determine if debugger is active **\n" << std::endl;
10429                 return false;
10430             }
10431 
10432             // We're being debugged if the P_TRACED flag is set.
10433 
10434             return ( (info.kp_proc.p_flag & P_TRACED) != 0 );
10435         }
10436         #else
10437         bool isDebuggerActive() {
10438             // We need to find another way to determine this for non-appleclang compilers on macOS
10439             return false;
10440         }
10441         #endif
10442     } // namespace Catch
10443 
10444 #elif defined(CATCH_PLATFORM_LINUX)
10445     #include <fstream>
10446     #include <string>
10447 
10448     namespace Catch{
10449         // The standard POSIX way of detecting a debugger is to attempt to
10450         // ptrace() the process, but this needs to be done from a child and not
10451         // this process itself to still allow attaching to this process later
10452         // if wanted, so is rather heavy. Under Linux we have the PID of the
10453         // "debugger" (which doesn't need to be gdb, of course, it could also
10454         // be strace, for example) in /proc/$PID/status, so just get it from
10455         // there instead.
isDebuggerActive()10456         bool isDebuggerActive(){
10457             // Libstdc++ has a bug, where std::ifstream sets errno to 0
10458             // This way our users can properly assert over errno values
10459             ErrnoGuard guard;
10460             std::ifstream in("/proc/self/status");
10461             for( std::string line; std::getline(in, line); ) {
10462                 static const int PREFIX_LEN = 11;
10463                 if( line.compare(0, PREFIX_LEN, "TracerPid:\t") == 0 ) {
10464                     // We're traced if the PID is not 0 and no other PID starts
10465                     // with 0 digit, so it's enough to check for just a single
10466                     // character.
10467                     return line.length() > PREFIX_LEN && line[PREFIX_LEN] != '0';
10468                 }
10469             }
10470 
10471             return false;
10472         }
10473     } // namespace Catch
10474 #elif defined(_MSC_VER)
10475     extern "C" __declspec(dllimport) int __stdcall IsDebuggerPresent();
10476     namespace Catch {
isDebuggerActive()10477         bool isDebuggerActive() {
10478             return IsDebuggerPresent() != 0;
10479         }
10480     }
10481 #elif defined(__MINGW32__)
10482     extern "C" __declspec(dllimport) int __stdcall IsDebuggerPresent();
10483     namespace Catch {
isDebuggerActive()10484         bool isDebuggerActive() {
10485             return IsDebuggerPresent() != 0;
10486         }
10487     }
10488 #else
10489     namespace Catch {
isDebuggerActive()10490        bool isDebuggerActive() { return false; }
10491     }
10492 #endif // Platform
10493 // end catch_debugger.cpp
10494 // start catch_decomposer.cpp
10495 
10496 namespace Catch {
10497 
10498     ITransientExpression::~ITransientExpression() = default;
10499 
formatReconstructedExpression(std::ostream & os,std::string const & lhs,StringRef op,std::string const & rhs)10500     void formatReconstructedExpression( std::ostream &os, std::string const& lhs, StringRef op, std::string const& rhs ) {
10501         if( lhs.size() + rhs.size() < 40 &&
10502                 lhs.find('\n') == std::string::npos &&
10503                 rhs.find('\n') == std::string::npos )
10504             os << lhs << " " << op << " " << rhs;
10505         else
10506             os << lhs << "\n" << op << "\n" << rhs;
10507     }
10508 }
10509 // end catch_decomposer.cpp
10510 // start catch_enforce.cpp
10511 
10512 #include <stdexcept>
10513 
10514 namespace Catch {
10515 #if defined(CATCH_CONFIG_DISABLE_EXCEPTIONS) && !defined(CATCH_CONFIG_DISABLE_EXCEPTIONS_CUSTOM_HANDLER)
10516     [[noreturn]]
throw_exception(std::exception const & e)10517     void throw_exception(std::exception const& e) {
10518         Catch::cerr() << "Catch will terminate because it needed to throw an exception.\n"
10519                       << "The message was: " << e.what() << '\n';
10520         std::terminate();
10521     }
10522 #endif
10523 
10524     [[noreturn]]
throw_logic_error(std::string const & msg)10525     void throw_logic_error(std::string const& msg) {
10526         throw_exception(std::logic_error(msg));
10527     }
10528 
10529     [[noreturn]]
throw_domain_error(std::string const & msg)10530     void throw_domain_error(std::string const& msg) {
10531         throw_exception(std::domain_error(msg));
10532     }
10533 
10534     [[noreturn]]
throw_runtime_error(std::string const & msg)10535     void throw_runtime_error(std::string const& msg) {
10536         throw_exception(std::runtime_error(msg));
10537     }
10538 
10539 } // namespace Catch;
10540 // end catch_enforce.cpp
10541 // start catch_enum_values_registry.cpp
10542 // start catch_enum_values_registry.h
10543 
10544 #include <vector>
10545 #include <memory>
10546 
10547 namespace Catch {
10548 
10549     namespace Detail {
10550 
10551         std::unique_ptr<EnumInfo> makeEnumInfo( StringRef enumName, StringRef allValueNames, std::vector<int> const& values );
10552 
10553         class EnumValuesRegistry : public IMutableEnumValuesRegistry {
10554 
10555             std::vector<std::unique_ptr<EnumInfo>> m_enumInfos;
10556 
10557             EnumInfo const& registerEnum( StringRef enumName, StringRef allEnums, std::vector<int> const& values) override;
10558         };
10559 
10560         std::vector<StringRef> parseEnums( StringRef enums );
10561 
10562     } // Detail
10563 
10564 } // Catch
10565 
10566 // end catch_enum_values_registry.h
10567 
10568 #include <map>
10569 #include <cassert>
10570 
10571 namespace Catch {
10572 
~IMutableEnumValuesRegistry()10573     IMutableEnumValuesRegistry::~IMutableEnumValuesRegistry() {}
10574 
10575     namespace Detail {
10576 
10577         namespace {
10578             // Extracts the actual name part of an enum instance
10579             // In other words, it returns the Blue part of Bikeshed::Colour::Blue
extractInstanceName(StringRef enumInstance)10580             StringRef extractInstanceName(StringRef enumInstance) {
10581                 // Find last occurence of ":"
10582                 size_t name_start = enumInstance.size();
10583                 while (name_start > 0 && enumInstance[name_start - 1] != ':') {
10584                     --name_start;
10585                 }
10586                 return enumInstance.substr(name_start, enumInstance.size() - name_start);
10587             }
10588         }
10589 
parseEnums(StringRef enums)10590         std::vector<StringRef> parseEnums( StringRef enums ) {
10591             auto enumValues = splitStringRef( enums, ',' );
10592             std::vector<StringRef> parsed;
10593             parsed.reserve( enumValues.size() );
10594             for( auto const& enumValue : enumValues ) {
10595                 parsed.push_back(trim(extractInstanceName(enumValue)));
10596             }
10597             return parsed;
10598         }
10599 
~EnumInfo()10600         EnumInfo::~EnumInfo() {}
10601 
lookup(int value) const10602         StringRef EnumInfo::lookup( int value ) const {
10603             for( auto const& valueToName : m_values ) {
10604                 if( valueToName.first == value )
10605                     return valueToName.second;
10606             }
10607             return "{** unexpected enum value **}"_sr;
10608         }
10609 
makeEnumInfo(StringRef enumName,StringRef allValueNames,std::vector<int> const & values)10610         std::unique_ptr<EnumInfo> makeEnumInfo( StringRef enumName, StringRef allValueNames, std::vector<int> const& values ) {
10611             std::unique_ptr<EnumInfo> enumInfo( new EnumInfo );
10612             enumInfo->m_name = enumName;
10613             enumInfo->m_values.reserve( values.size() );
10614 
10615             const auto valueNames = Catch::Detail::parseEnums( allValueNames );
10616             assert( valueNames.size() == values.size() );
10617             std::size_t i = 0;
10618             for( auto value : values )
10619                 enumInfo->m_values.emplace_back(value, valueNames[i++]);
10620 
10621             return enumInfo;
10622         }
10623 
registerEnum(StringRef enumName,StringRef allValueNames,std::vector<int> const & values)10624         EnumInfo const& EnumValuesRegistry::registerEnum( StringRef enumName, StringRef allValueNames, std::vector<int> const& values ) {
10625             m_enumInfos.push_back(makeEnumInfo(enumName, allValueNames, values));
10626             return *m_enumInfos.back();
10627         }
10628 
10629     } // Detail
10630 } // Catch
10631 
10632 // end catch_enum_values_registry.cpp
10633 // start catch_errno_guard.cpp
10634 
10635 #include <cerrno>
10636 
10637 namespace Catch {
ErrnoGuard()10638         ErrnoGuard::ErrnoGuard():m_oldErrno(errno){}
~ErrnoGuard()10639         ErrnoGuard::~ErrnoGuard() { errno = m_oldErrno; }
10640 }
10641 // end catch_errno_guard.cpp
10642 // start catch_exception_translator_registry.cpp
10643 
10644 // start catch_exception_translator_registry.h
10645 
10646 #include <vector>
10647 #include <string>
10648 #include <memory>
10649 
10650 namespace Catch {
10651 
10652     class ExceptionTranslatorRegistry : public IExceptionTranslatorRegistry {
10653     public:
10654         ~ExceptionTranslatorRegistry();
10655         virtual void registerTranslator( const IExceptionTranslator* translator );
10656         std::string translateActiveException() const override;
10657         std::string tryTranslators() const;
10658 
10659     private:
10660         std::vector<std::unique_ptr<IExceptionTranslator const>> m_translators;
10661     };
10662 }
10663 
10664 // end catch_exception_translator_registry.h
10665 #ifdef __OBJC__
10666 #import "Foundation/Foundation.h"
10667 #endif
10668 
10669 namespace Catch {
10670 
~ExceptionTranslatorRegistry()10671     ExceptionTranslatorRegistry::~ExceptionTranslatorRegistry() {
10672     }
10673 
registerTranslator(const IExceptionTranslator * translator)10674     void ExceptionTranslatorRegistry::registerTranslator( const IExceptionTranslator* translator ) {
10675         m_translators.push_back( std::unique_ptr<const IExceptionTranslator>( translator ) );
10676     }
10677 
10678 #if !defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
translateActiveException() const10679     std::string ExceptionTranslatorRegistry::translateActiveException() const {
10680         try {
10681 #ifdef __OBJC__
10682             // In Objective-C try objective-c exceptions first
10683             @try {
10684                 return tryTranslators();
10685             }
10686             @catch (NSException *exception) {
10687                 return Catch::Detail::stringify( [exception description] );
10688             }
10689 #else
10690             // Compiling a mixed mode project with MSVC means that CLR
10691             // exceptions will be caught in (...) as well. However, these
10692             // do not fill-in std::current_exception and thus lead to crash
10693             // when attempting rethrow.
10694             // /EHa switch also causes structured exceptions to be caught
10695             // here, but they fill-in current_exception properly, so
10696             // at worst the output should be a little weird, instead of
10697             // causing a crash.
10698             if (std::current_exception() == nullptr) {
10699                 return "Non C++ exception. Possibly a CLR exception.";
10700             }
10701             return tryTranslators();
10702 #endif
10703         }
10704         catch( TestFailureException& ) {
10705             std::rethrow_exception(std::current_exception());
10706         }
10707         catch( std::exception& ex ) {
10708             return ex.what();
10709         }
10710         catch( std::string& msg ) {
10711             return msg;
10712         }
10713         catch( const char* msg ) {
10714             return msg;
10715         }
10716         catch(...) {
10717             return "Unknown exception";
10718         }
10719     }
10720 
tryTranslators() const10721     std::string ExceptionTranslatorRegistry::tryTranslators() const {
10722         if (m_translators.empty()) {
10723             std::rethrow_exception(std::current_exception());
10724         } else {
10725             return m_translators[0]->translate(m_translators.begin() + 1, m_translators.end());
10726         }
10727     }
10728 
10729 #else // ^^ Exceptions are enabled // Exceptions are disabled vv
translateActiveException() const10730     std::string ExceptionTranslatorRegistry::translateActiveException() const {
10731         CATCH_INTERNAL_ERROR("Attempted to translate active exception under CATCH_CONFIG_DISABLE_EXCEPTIONS!");
10732     }
10733 
tryTranslators() const10734     std::string ExceptionTranslatorRegistry::tryTranslators() const {
10735         CATCH_INTERNAL_ERROR("Attempted to use exception translators under CATCH_CONFIG_DISABLE_EXCEPTIONS!");
10736     }
10737 #endif
10738 
10739 }
10740 // end catch_exception_translator_registry.cpp
10741 // start catch_fatal_condition.cpp
10742 
10743 #if defined(__GNUC__)
10744 #    pragma GCC diagnostic push
10745 #    pragma GCC diagnostic ignored "-Wmissing-field-initializers"
10746 #endif
10747 
10748 #if defined( CATCH_CONFIG_WINDOWS_SEH ) || defined( CATCH_CONFIG_POSIX_SIGNALS )
10749 
10750 namespace {
10751     // Report the error condition
reportFatal(char const * const message)10752     void reportFatal( char const * const message ) {
10753         Catch::getCurrentContext().getResultCapture()->handleFatalErrorCondition( message );
10754     }
10755 }
10756 
10757 #endif // signals/SEH handling
10758 
10759 #if defined( CATCH_CONFIG_WINDOWS_SEH )
10760 
10761 namespace Catch {
10762     struct SignalDefs { DWORD id; const char* name; };
10763 
10764     // There is no 1-1 mapping between signals and windows exceptions.
10765     // Windows can easily distinguish between SO and SigSegV,
10766     // but SigInt, SigTerm, etc are handled differently.
10767     static SignalDefs signalDefs[] = {
10768         { static_cast<DWORD>(EXCEPTION_ILLEGAL_INSTRUCTION),  "SIGILL - Illegal instruction signal" },
10769         { static_cast<DWORD>(EXCEPTION_STACK_OVERFLOW), "SIGSEGV - Stack overflow" },
10770         { static_cast<DWORD>(EXCEPTION_ACCESS_VIOLATION), "SIGSEGV - Segmentation violation signal" },
10771         { static_cast<DWORD>(EXCEPTION_INT_DIVIDE_BY_ZERO), "Divide by zero error" },
10772     };
10773 
handleVectoredException(PEXCEPTION_POINTERS ExceptionInfo)10774     LONG CALLBACK FatalConditionHandler::handleVectoredException(PEXCEPTION_POINTERS ExceptionInfo) {
10775         for (auto const& def : signalDefs) {
10776             if (ExceptionInfo->ExceptionRecord->ExceptionCode == def.id) {
10777                 reportFatal(def.name);
10778             }
10779         }
10780         // If its not an exception we care about, pass it along.
10781         // This stops us from eating debugger breaks etc.
10782         return EXCEPTION_CONTINUE_SEARCH;
10783     }
10784 
FatalConditionHandler()10785     FatalConditionHandler::FatalConditionHandler() {
10786         isSet = true;
10787         // 32k seems enough for Catch to handle stack overflow,
10788         // but the value was found experimentally, so there is no strong guarantee
10789         guaranteeSize = 32 * 1024;
10790         exceptionHandlerHandle = nullptr;
10791         // Register as first handler in current chain
10792         exceptionHandlerHandle = AddVectoredExceptionHandler(1, handleVectoredException);
10793         // Pass in guarantee size to be filled
10794         SetThreadStackGuarantee(&guaranteeSize);
10795     }
10796 
reset()10797     void FatalConditionHandler::reset() {
10798         if (isSet) {
10799             RemoveVectoredExceptionHandler(exceptionHandlerHandle);
10800             SetThreadStackGuarantee(&guaranteeSize);
10801             exceptionHandlerHandle = nullptr;
10802             isSet = false;
10803         }
10804     }
10805 
~FatalConditionHandler()10806     FatalConditionHandler::~FatalConditionHandler() {
10807         reset();
10808     }
10809 
10810 bool FatalConditionHandler::isSet = false;
10811 ULONG FatalConditionHandler::guaranteeSize = 0;
10812 PVOID FatalConditionHandler::exceptionHandlerHandle = nullptr;
10813 
10814 } // namespace Catch
10815 
10816 #elif defined( CATCH_CONFIG_POSIX_SIGNALS )
10817 
10818 namespace Catch {
10819 
10820     struct SignalDefs {
10821         int id;
10822         const char* name;
10823     };
10824 
10825     // 32kb for the alternate stack seems to be sufficient. However, this value
10826     // is experimentally determined, so that's not guaranteed.
10827     static constexpr std::size_t sigStackSize = 32768 >= MINSIGSTKSZ ? 32768 : MINSIGSTKSZ;
10828 
10829     static SignalDefs signalDefs[] = {
10830         { SIGINT,  "SIGINT - Terminal interrupt signal" },
10831         { SIGILL,  "SIGILL - Illegal instruction signal" },
10832         { SIGFPE,  "SIGFPE - Floating point error signal" },
10833         { SIGSEGV, "SIGSEGV - Segmentation violation signal" },
10834         { SIGTERM, "SIGTERM - Termination request signal" },
10835         { SIGABRT, "SIGABRT - Abort (abnormal termination) signal" }
10836     };
10837 
handleSignal(int sig)10838     void FatalConditionHandler::handleSignal( int sig ) {
10839         char const * name = "<unknown signal>";
10840         for (auto const& def : signalDefs) {
10841             if (sig == def.id) {
10842                 name = def.name;
10843                 break;
10844             }
10845         }
10846         reset();
10847         reportFatal(name);
10848         raise( sig );
10849     }
10850 
FatalConditionHandler()10851     FatalConditionHandler::FatalConditionHandler() {
10852         isSet = true;
10853         stack_t sigStack;
10854         sigStack.ss_sp = altStackMem;
10855         sigStack.ss_size = sigStackSize;
10856         sigStack.ss_flags = 0;
10857         sigaltstack(&sigStack, &oldSigStack);
10858         struct sigaction sa = { };
10859 
10860         sa.sa_handler = handleSignal;
10861         sa.sa_flags = SA_ONSTACK;
10862         for (std::size_t i = 0; i < sizeof(signalDefs)/sizeof(SignalDefs); ++i) {
10863             sigaction(signalDefs[i].id, &sa, &oldSigActions[i]);
10864         }
10865     }
10866 
~FatalConditionHandler()10867     FatalConditionHandler::~FatalConditionHandler() {
10868         reset();
10869     }
10870 
reset()10871     void FatalConditionHandler::reset() {
10872         if( isSet ) {
10873             // Set signals back to previous values -- hopefully nobody overwrote them in the meantime
10874             for( std::size_t i = 0; i < sizeof(signalDefs)/sizeof(SignalDefs); ++i ) {
10875                 sigaction(signalDefs[i].id, &oldSigActions[i], nullptr);
10876             }
10877             // Return the old stack
10878             sigaltstack(&oldSigStack, nullptr);
10879             isSet = false;
10880         }
10881     }
10882 
10883     bool FatalConditionHandler::isSet = false;
10884     struct sigaction FatalConditionHandler::oldSigActions[sizeof(signalDefs)/sizeof(SignalDefs)] = {};
10885     stack_t FatalConditionHandler::oldSigStack = {};
10886     char FatalConditionHandler::altStackMem[sigStackSize] = {};
10887 
10888 } // namespace Catch
10889 
10890 #else
10891 
10892 namespace Catch {
reset()10893     void FatalConditionHandler::reset() {}
10894 }
10895 
10896 #endif // signals/SEH handling
10897 
10898 #if defined(__GNUC__)
10899 #    pragma GCC diagnostic pop
10900 #endif
10901 // end catch_fatal_condition.cpp
10902 // start catch_generators.cpp
10903 
10904 #include <limits>
10905 #include <set>
10906 
10907 namespace Catch {
10908 
~IGeneratorTracker()10909 IGeneratorTracker::~IGeneratorTracker() {}
10910 
what() const10911 const char* GeneratorException::what() const noexcept {
10912     return m_msg;
10913 }
10914 
10915 namespace Generators {
10916 
~GeneratorUntypedBase()10917     GeneratorUntypedBase::~GeneratorUntypedBase() {}
10918 
acquireGeneratorTracker(StringRef generatorName,SourceLineInfo const & lineInfo)10919     auto acquireGeneratorTracker( StringRef generatorName, SourceLineInfo const& lineInfo ) -> IGeneratorTracker& {
10920         return getResultCapture().acquireGeneratorTracker( generatorName, lineInfo );
10921     }
10922 
10923 } // namespace Generators
10924 } // namespace Catch
10925 // end catch_generators.cpp
10926 // start catch_interfaces_capture.cpp
10927 
10928 namespace Catch {
10929     IResultCapture::~IResultCapture() = default;
10930 }
10931 // end catch_interfaces_capture.cpp
10932 // start catch_interfaces_config.cpp
10933 
10934 namespace Catch {
10935     IConfig::~IConfig() = default;
10936 }
10937 // end catch_interfaces_config.cpp
10938 // start catch_interfaces_exception.cpp
10939 
10940 namespace Catch {
10941     IExceptionTranslator::~IExceptionTranslator() = default;
10942     IExceptionTranslatorRegistry::~IExceptionTranslatorRegistry() = default;
10943 }
10944 // end catch_interfaces_exception.cpp
10945 // start catch_interfaces_registry_hub.cpp
10946 
10947 namespace Catch {
10948     IRegistryHub::~IRegistryHub() = default;
10949     IMutableRegistryHub::~IMutableRegistryHub() = default;
10950 }
10951 // end catch_interfaces_registry_hub.cpp
10952 // start catch_interfaces_reporter.cpp
10953 
10954 // start catch_reporter_listening.h
10955 
10956 namespace Catch {
10957 
10958     class ListeningReporter : public IStreamingReporter {
10959         using Reporters = std::vector<IStreamingReporterPtr>;
10960         Reporters m_listeners;
10961         IStreamingReporterPtr m_reporter = nullptr;
10962         ReporterPreferences m_preferences;
10963 
10964     public:
10965         ListeningReporter();
10966 
10967         void addListener( IStreamingReporterPtr&& listener );
10968         void addReporter( IStreamingReporterPtr&& reporter );
10969 
10970     public: // IStreamingReporter
10971 
10972         ReporterPreferences getPreferences() const override;
10973 
10974         void noMatchingTestCases( std::string const& spec ) override;
10975 
10976         void reportInvalidArguments(std::string const&arg) override;
10977 
10978         static std::set<Verbosity> getSupportedVerbosities();
10979 
10980 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
10981         void benchmarkPreparing(std::string const& name) override;
10982         void benchmarkStarting( BenchmarkInfo const& benchmarkInfo ) override;
10983         void benchmarkEnded( BenchmarkStats<> const& benchmarkStats ) override;
10984         void benchmarkFailed(std::string const&) override;
10985 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
10986 
10987         void testRunStarting( TestRunInfo const& testRunInfo ) override;
10988         void testGroupStarting( GroupInfo const& groupInfo ) override;
10989         void testCaseStarting( TestCaseInfo const& testInfo ) override;
10990         void sectionStarting( SectionInfo const& sectionInfo ) override;
10991         void assertionStarting( AssertionInfo const& assertionInfo ) override;
10992 
10993         // The return value indicates if the messages buffer should be cleared:
10994         bool assertionEnded( AssertionStats const& assertionStats ) override;
10995         void sectionEnded( SectionStats const& sectionStats ) override;
10996         void testCaseEnded( TestCaseStats const& testCaseStats ) override;
10997         void testGroupEnded( TestGroupStats const& testGroupStats ) override;
10998         void testRunEnded( TestRunStats const& testRunStats ) override;
10999 
11000         void skipTest( TestCaseInfo const& testInfo ) override;
11001         bool isMulti() const override;
11002 
11003     };
11004 
11005 } // end namespace Catch
11006 
11007 // end catch_reporter_listening.h
11008 namespace Catch {
11009 
ReporterConfig(IConfigPtr const & _fullConfig)11010     ReporterConfig::ReporterConfig( IConfigPtr const& _fullConfig )
11011     :   m_stream( &_fullConfig->stream() ), m_fullConfig( _fullConfig ) {}
11012 
ReporterConfig(IConfigPtr const & _fullConfig,std::ostream & _stream)11013     ReporterConfig::ReporterConfig( IConfigPtr const& _fullConfig, std::ostream& _stream )
11014     :   m_stream( &_stream ), m_fullConfig( _fullConfig ) {}
11015 
stream() const11016     std::ostream& ReporterConfig::stream() const { return *m_stream; }
fullConfig() const11017     IConfigPtr ReporterConfig::fullConfig() const { return m_fullConfig; }
11018 
TestRunInfo(std::string const & _name)11019     TestRunInfo::TestRunInfo( std::string const& _name ) : name( _name ) {}
11020 
GroupInfo(std::string const & _name,std::size_t _groupIndex,std::size_t _groupsCount)11021     GroupInfo::GroupInfo(  std::string const& _name,
11022                            std::size_t _groupIndex,
11023                            std::size_t _groupsCount )
11024     :   name( _name ),
11025         groupIndex( _groupIndex ),
11026         groupsCounts( _groupsCount )
11027     {}
11028 
AssertionStats(AssertionResult const & _assertionResult,std::vector<MessageInfo> const & _infoMessages,Totals const & _totals)11029      AssertionStats::AssertionStats( AssertionResult const& _assertionResult,
11030                                      std::vector<MessageInfo> const& _infoMessages,
11031                                      Totals const& _totals )
11032     :   assertionResult( _assertionResult ),
11033         infoMessages( _infoMessages ),
11034         totals( _totals )
11035     {
11036         assertionResult.m_resultData.lazyExpression.m_transientExpression = _assertionResult.m_resultData.lazyExpression.m_transientExpression;
11037 
11038         if( assertionResult.hasMessage() ) {
11039             // Copy message into messages list.
11040             // !TBD This should have been done earlier, somewhere
11041             MessageBuilder builder( assertionResult.getTestMacroName(), assertionResult.getSourceInfo(), assertionResult.getResultType() );
11042             builder << assertionResult.getMessage();
11043             builder.m_info.message = builder.m_stream.str();
11044 
11045             infoMessages.push_back( builder.m_info );
11046         }
11047     }
11048 
11049      AssertionStats::~AssertionStats() = default;
11050 
SectionStats(SectionInfo const & _sectionInfo,Counts const & _assertions,double _durationInSeconds,bool _missingAssertions)11051     SectionStats::SectionStats(  SectionInfo const& _sectionInfo,
11052                                  Counts const& _assertions,
11053                                  double _durationInSeconds,
11054                                  bool _missingAssertions )
11055     :   sectionInfo( _sectionInfo ),
11056         assertions( _assertions ),
11057         durationInSeconds( _durationInSeconds ),
11058         missingAssertions( _missingAssertions )
11059     {}
11060 
11061     SectionStats::~SectionStats() = default;
11062 
TestCaseStats(TestCaseInfo const & _testInfo,Totals const & _totals,std::string const & _stdOut,std::string const & _stdErr,bool _aborting)11063     TestCaseStats::TestCaseStats(  TestCaseInfo const& _testInfo,
11064                                    Totals const& _totals,
11065                                    std::string const& _stdOut,
11066                                    std::string const& _stdErr,
11067                                    bool _aborting )
11068     : testInfo( _testInfo ),
11069         totals( _totals ),
11070         stdOut( _stdOut ),
11071         stdErr( _stdErr ),
11072         aborting( _aborting )
11073     {}
11074 
11075     TestCaseStats::~TestCaseStats() = default;
11076 
TestGroupStats(GroupInfo const & _groupInfo,Totals const & _totals,bool _aborting)11077     TestGroupStats::TestGroupStats( GroupInfo const& _groupInfo,
11078                                     Totals const& _totals,
11079                                     bool _aborting )
11080     :   groupInfo( _groupInfo ),
11081         totals( _totals ),
11082         aborting( _aborting )
11083     {}
11084 
TestGroupStats(GroupInfo const & _groupInfo)11085     TestGroupStats::TestGroupStats( GroupInfo const& _groupInfo )
11086     :   groupInfo( _groupInfo ),
11087         aborting( false )
11088     {}
11089 
11090     TestGroupStats::~TestGroupStats() = default;
11091 
TestRunStats(TestRunInfo const & _runInfo,Totals const & _totals,bool _aborting)11092     TestRunStats::TestRunStats(   TestRunInfo const& _runInfo,
11093                     Totals const& _totals,
11094                     bool _aborting )
11095     :   runInfo( _runInfo ),
11096         totals( _totals ),
11097         aborting( _aborting )
11098     {}
11099 
11100     TestRunStats::~TestRunStats() = default;
11101 
fatalErrorEncountered(StringRef)11102     void IStreamingReporter::fatalErrorEncountered( StringRef ) {}
isMulti() const11103     bool IStreamingReporter::isMulti() const { return false; }
11104 
11105     IReporterFactory::~IReporterFactory() = default;
11106     IReporterRegistry::~IReporterRegistry() = default;
11107 
11108 } // end namespace Catch
11109 // end catch_interfaces_reporter.cpp
11110 // start catch_interfaces_runner.cpp
11111 
11112 namespace Catch {
11113     IRunner::~IRunner() = default;
11114 }
11115 // end catch_interfaces_runner.cpp
11116 // start catch_interfaces_testcase.cpp
11117 
11118 namespace Catch {
11119     ITestInvoker::~ITestInvoker() = default;
11120     ITestCaseRegistry::~ITestCaseRegistry() = default;
11121 }
11122 // end catch_interfaces_testcase.cpp
11123 // start catch_leak_detector.cpp
11124 
11125 #ifdef CATCH_CONFIG_WINDOWS_CRTDBG
11126 #include <crtdbg.h>
11127 
11128 namespace Catch {
11129 
LeakDetector()11130     LeakDetector::LeakDetector() {
11131         int flag = _CrtSetDbgFlag(_CRTDBG_REPORT_FLAG);
11132         flag |= _CRTDBG_LEAK_CHECK_DF;
11133         flag |= _CRTDBG_ALLOC_MEM_DF;
11134         _CrtSetDbgFlag(flag);
11135         _CrtSetReportMode(_CRT_WARN, _CRTDBG_MODE_FILE | _CRTDBG_MODE_DEBUG);
11136         _CrtSetReportFile(_CRT_WARN, _CRTDBG_FILE_STDERR);
11137         // Change this to leaking allocation's number to break there
11138         _CrtSetBreakAlloc(-1);
11139     }
11140 }
11141 
11142 #else
11143 
LeakDetector()11144     Catch::LeakDetector::LeakDetector() {}
11145 
11146 #endif
11147 
~LeakDetector()11148 Catch::LeakDetector::~LeakDetector() {
11149     Catch::cleanUp();
11150 }
11151 // end catch_leak_detector.cpp
11152 // start catch_list.cpp
11153 
11154 // start catch_list.h
11155 
11156 #include <set>
11157 
11158 namespace Catch {
11159 
11160     std::size_t listTests( Config const& config );
11161 
11162     std::size_t listTestsNamesOnly( Config const& config );
11163 
11164     struct TagInfo {
11165         void add( std::string const& spelling );
11166         std::string all() const;
11167 
11168         std::set<std::string> spellings;
11169         std::size_t count = 0;
11170     };
11171 
11172     std::size_t listTags( Config const& config );
11173 
11174     std::size_t listReporters();
11175 
11176     Option<std::size_t> list( std::shared_ptr<Config> const& config );
11177 
11178 } // end namespace Catch
11179 
11180 // end catch_list.h
11181 // start catch_text.h
11182 
11183 namespace Catch {
11184     using namespace clara::TextFlow;
11185 }
11186 
11187 // end catch_text.h
11188 #include <limits>
11189 #include <algorithm>
11190 #include <iomanip>
11191 
11192 namespace Catch {
11193 
listTests(Config const & config)11194     std::size_t listTests( Config const& config ) {
11195         TestSpec const& testSpec = config.testSpec();
11196         if( config.hasTestFilters() )
11197             Catch::cout() << "Matching test cases:\n";
11198         else {
11199             Catch::cout() << "All available test cases:\n";
11200         }
11201 
11202         auto matchedTestCases = filterTests( getAllTestCasesSorted( config ), testSpec, config );
11203         for( auto const& testCaseInfo : matchedTestCases ) {
11204             Colour::Code colour = testCaseInfo.isHidden()
11205                 ? Colour::SecondaryText
11206                 : Colour::None;
11207             Colour colourGuard( colour );
11208 
11209             Catch::cout() << Column( testCaseInfo.name ).initialIndent( 2 ).indent( 4 ) << "\n";
11210             if( config.verbosity() >= Verbosity::High ) {
11211                 Catch::cout() << Column( Catch::Detail::stringify( testCaseInfo.lineInfo ) ).indent(4) << std::endl;
11212                 std::string description = testCaseInfo.description;
11213                 if( description.empty() )
11214                     description = "(NO DESCRIPTION)";
11215                 Catch::cout() << Column( description ).indent(4) << std::endl;
11216             }
11217             if( !testCaseInfo.tags.empty() )
11218                 Catch::cout() << Column( testCaseInfo.tagsAsString() ).indent( 6 ) << "\n";
11219         }
11220 
11221         if( !config.hasTestFilters() )
11222             Catch::cout() << pluralise( matchedTestCases.size(), "test case" ) << '\n' << std::endl;
11223         else
11224             Catch::cout() << pluralise( matchedTestCases.size(), "matching test case" ) << '\n' << std::endl;
11225         return matchedTestCases.size();
11226     }
11227 
listTestsNamesOnly(Config const & config)11228     std::size_t listTestsNamesOnly( Config const& config ) {
11229         TestSpec const& testSpec = config.testSpec();
11230         std::size_t matchedTests = 0;
11231         std::vector<TestCase> matchedTestCases = filterTests( getAllTestCasesSorted( config ), testSpec, config );
11232         for( auto const& testCaseInfo : matchedTestCases ) {
11233             matchedTests++;
11234             if( startsWith( testCaseInfo.name, '#' ) )
11235                Catch::cout() << '"' << testCaseInfo.name << '"';
11236             else
11237                Catch::cout() << testCaseInfo.name;
11238             if ( config.verbosity() >= Verbosity::High )
11239                 Catch::cout() << "\t@" << testCaseInfo.lineInfo;
11240             Catch::cout() << std::endl;
11241         }
11242         return matchedTests;
11243     }
11244 
add(std::string const & spelling)11245     void TagInfo::add( std::string const& spelling ) {
11246         ++count;
11247         spellings.insert( spelling );
11248     }
11249 
all() const11250     std::string TagInfo::all() const {
11251         size_t size = 0;
11252         for (auto const& spelling : spellings) {
11253             // Add 2 for the brackes
11254             size += spelling.size() + 2;
11255         }
11256 
11257         std::string out; out.reserve(size);
11258         for (auto const& spelling : spellings) {
11259             out += '[';
11260             out += spelling;
11261             out += ']';
11262         }
11263         return out;
11264     }
11265 
listTags(Config const & config)11266     std::size_t listTags( Config const& config ) {
11267         TestSpec const& testSpec = config.testSpec();
11268         if( config.hasTestFilters() )
11269             Catch::cout() << "Tags for matching test cases:\n";
11270         else {
11271             Catch::cout() << "All available tags:\n";
11272         }
11273 
11274         std::map<std::string, TagInfo> tagCounts;
11275 
11276         std::vector<TestCase> matchedTestCases = filterTests( getAllTestCasesSorted( config ), testSpec, config );
11277         for( auto const& testCase : matchedTestCases ) {
11278             for( auto const& tagName : testCase.getTestCaseInfo().tags ) {
11279                 std::string lcaseTagName = toLower( tagName );
11280                 auto countIt = tagCounts.find( lcaseTagName );
11281                 if( countIt == tagCounts.end() )
11282                     countIt = tagCounts.insert( std::make_pair( lcaseTagName, TagInfo() ) ).first;
11283                 countIt->second.add( tagName );
11284             }
11285         }
11286 
11287         for( auto const& tagCount : tagCounts ) {
11288             ReusableStringStream rss;
11289             rss << "  " << std::setw(2) << tagCount.second.count << "  ";
11290             auto str = rss.str();
11291             auto wrapper = Column( tagCount.second.all() )
11292                                                     .initialIndent( 0 )
11293                                                     .indent( str.size() )
11294                                                     .width( CATCH_CONFIG_CONSOLE_WIDTH-10 );
11295             Catch::cout() << str << wrapper << '\n';
11296         }
11297         Catch::cout() << pluralise( tagCounts.size(), "tag" ) << '\n' << std::endl;
11298         return tagCounts.size();
11299     }
11300 
listReporters()11301     std::size_t listReporters() {
11302         Catch::cout() << "Available reporters:\n";
11303         IReporterRegistry::FactoryMap const& factories = getRegistryHub().getReporterRegistry().getFactories();
11304         std::size_t maxNameLen = 0;
11305         for( auto const& factoryKvp : factories )
11306             maxNameLen = (std::max)( maxNameLen, factoryKvp.first.size() );
11307 
11308         for( auto const& factoryKvp : factories ) {
11309             Catch::cout()
11310                     << Column( factoryKvp.first + ":" )
11311                             .indent(2)
11312                             .width( 5+maxNameLen )
11313                     +  Column( factoryKvp.second->getDescription() )
11314                             .initialIndent(0)
11315                             .indent(2)
11316                             .width( CATCH_CONFIG_CONSOLE_WIDTH - maxNameLen-8 )
11317                     << "\n";
11318         }
11319         Catch::cout() << std::endl;
11320         return factories.size();
11321     }
11322 
list(std::shared_ptr<Config> const & config)11323     Option<std::size_t> list( std::shared_ptr<Config> const& config ) {
11324         Option<std::size_t> listedCount;
11325         getCurrentMutableContext().setConfig( config );
11326         if( config->listTests() )
11327             listedCount = listedCount.valueOr(0) + listTests( *config );
11328         if( config->listTestNamesOnly() )
11329             listedCount = listedCount.valueOr(0) + listTestsNamesOnly( *config );
11330         if( config->listTags() )
11331             listedCount = listedCount.valueOr(0) + listTags( *config );
11332         if( config->listReporters() )
11333             listedCount = listedCount.valueOr(0) + listReporters();
11334         return listedCount;
11335     }
11336 
11337 } // end namespace Catch
11338 // end catch_list.cpp
11339 // start catch_matchers.cpp
11340 
11341 namespace Catch {
11342 namespace Matchers {
11343     namespace Impl {
11344 
toString() const11345         std::string MatcherUntypedBase::toString() const {
11346             if( m_cachedToString.empty() )
11347                 m_cachedToString = describe();
11348             return m_cachedToString;
11349         }
11350 
11351         MatcherUntypedBase::~MatcherUntypedBase() = default;
11352 
11353     } // namespace Impl
11354 } // namespace Matchers
11355 
11356 using namespace Matchers;
11357 using Matchers::Impl::MatcherBase;
11358 
11359 } // namespace Catch
11360 // end catch_matchers.cpp
11361 // start catch_matchers_exception.cpp
11362 
11363 namespace Catch {
11364 namespace Matchers {
11365 namespace Exception {
11366 
match(std::exception const & ex) const11367 bool ExceptionMessageMatcher::match(std::exception const& ex) const {
11368     return ex.what() == m_message;
11369 }
11370 
describe() const11371 std::string ExceptionMessageMatcher::describe() const {
11372     return "exception message matches \"" + m_message + "\"";
11373 }
11374 
11375 }
Message(std::string const & message)11376 Exception::ExceptionMessageMatcher Message(std::string const& message) {
11377     return Exception::ExceptionMessageMatcher(message);
11378 }
11379 
11380 // namespace Exception
11381 } // namespace Matchers
11382 } // namespace Catch
11383 // end catch_matchers_exception.cpp
11384 // start catch_matchers_floating.cpp
11385 
11386 // start catch_polyfills.hpp
11387 
11388 namespace Catch {
11389     bool isnan(float f);
11390     bool isnan(double d);
11391 }
11392 
11393 // end catch_polyfills.hpp
11394 // start catch_to_string.hpp
11395 
11396 #include <string>
11397 
11398 namespace Catch {
11399     template <typename T>
to_string(T const & t)11400     std::string to_string(T const& t) {
11401 #if defined(CATCH_CONFIG_CPP11_TO_STRING)
11402         return std::to_string(t);
11403 #else
11404         ReusableStringStream rss;
11405         rss << t;
11406         return rss.str();
11407 #endif
11408     }
11409 } // end namespace Catch
11410 
11411 // end catch_to_string.hpp
11412 #include <algorithm>
11413 #include <cmath>
11414 #include <cstdlib>
11415 #include <cstdint>
11416 #include <cstring>
11417 #include <sstream>
11418 #include <type_traits>
11419 #include <iomanip>
11420 #include <limits>
11421 
11422 namespace Catch {
11423 namespace {
11424 
convert(float f)11425     int32_t convert(float f) {
11426         static_assert(sizeof(float) == sizeof(int32_t), "Important ULP matcher assumption violated");
11427         int32_t i;
11428         std::memcpy(&i, &f, sizeof(f));
11429         return i;
11430     }
11431 
convert(double d)11432     int64_t convert(double d) {
11433         static_assert(sizeof(double) == sizeof(int64_t), "Important ULP matcher assumption violated");
11434         int64_t i;
11435         std::memcpy(&i, &d, sizeof(d));
11436         return i;
11437     }
11438 
11439     template <typename FP>
almostEqualUlps(FP lhs,FP rhs,uint64_t maxUlpDiff)11440     bool almostEqualUlps(FP lhs, FP rhs, uint64_t maxUlpDiff) {
11441         // Comparison with NaN should always be false.
11442         // This way we can rule it out before getting into the ugly details
11443         if (Catch::isnan(lhs) || Catch::isnan(rhs)) {
11444             return false;
11445         }
11446 
11447         auto lc = convert(lhs);
11448         auto rc = convert(rhs);
11449 
11450         if ((lc < 0) != (rc < 0)) {
11451             // Potentially we can have +0 and -0
11452             return lhs == rhs;
11453         }
11454 
11455         auto ulpDiff = std::abs(lc - rc);
11456         return static_cast<uint64_t>(ulpDiff) <= maxUlpDiff;
11457     }
11458 
11459 #if defined(CATCH_CONFIG_GLOBAL_NEXTAFTER)
11460 
nextafter(float x,float y)11461     float nextafter(float x, float y) {
11462         return ::nextafterf(x, y);
11463     }
11464 
nextafter(double x,double y)11465     double nextafter(double x, double y) {
11466         return ::nextafter(x, y);
11467     }
11468 
11469 #endif // ^^^ CATCH_CONFIG_GLOBAL_NEXTAFTER ^^^
11470 
11471 template <typename FP>
step(FP start,FP direction,uint64_t steps)11472 FP step(FP start, FP direction, uint64_t steps) {
11473     for (uint64_t i = 0; i < steps; ++i) {
11474 #if defined(CATCH_CONFIG_GLOBAL_NEXTAFTER)
11475         start = Catch::nextafter(start, direction);
11476 #else
11477         start = std::nextafter(start, direction);
11478 #endif
11479     }
11480     return start;
11481 }
11482 
11483 // Performs equivalent check of std::fabs(lhs - rhs) <= margin
11484 // But without the subtraction to allow for INFINITY in comparison
marginComparison(double lhs,double rhs,double margin)11485 bool marginComparison(double lhs, double rhs, double margin) {
11486     return (lhs + margin >= rhs) && (rhs + margin >= lhs);
11487 }
11488 
11489 template <typename FloatingPoint>
write(std::ostream & out,FloatingPoint num)11490 void write(std::ostream& out, FloatingPoint num) {
11491     out << std::scientific
11492         << std::setprecision(std::numeric_limits<FloatingPoint>::max_digits10 - 1)
11493         << num;
11494 }
11495 
11496 } // end anonymous namespace
11497 
11498 namespace Matchers {
11499 namespace Floating {
11500 
11501     enum class FloatingPointKind : uint8_t {
11502         Float,
11503         Double
11504     };
11505 
WithinAbsMatcher(double target,double margin)11506     WithinAbsMatcher::WithinAbsMatcher(double target, double margin)
11507         :m_target{ target }, m_margin{ margin } {
11508         CATCH_ENFORCE(margin >= 0, "Invalid margin: " << margin << '.'
11509             << " Margin has to be non-negative.");
11510     }
11511 
11512     // Performs equivalent check of std::fabs(lhs - rhs) <= margin
11513     // But without the subtraction to allow for INFINITY in comparison
match(double const & matchee) const11514     bool WithinAbsMatcher::match(double const& matchee) const {
11515         return (matchee + m_margin >= m_target) && (m_target + m_margin >= matchee);
11516     }
11517 
describe() const11518     std::string WithinAbsMatcher::describe() const {
11519         return "is within " + ::Catch::Detail::stringify(m_margin) + " of " + ::Catch::Detail::stringify(m_target);
11520     }
11521 
WithinUlpsMatcher(double target,uint64_t ulps,FloatingPointKind baseType)11522     WithinUlpsMatcher::WithinUlpsMatcher(double target, uint64_t ulps, FloatingPointKind baseType)
11523         :m_target{ target }, m_ulps{ ulps }, m_type{ baseType } {
11524         CATCH_ENFORCE(m_type == FloatingPointKind::Double
11525                    || m_ulps < (std::numeric_limits<uint32_t>::max)(),
11526             "Provided ULP is impossibly large for a float comparison.");
11527     }
11528 
11529 #if defined(__clang__)
11530 #pragma clang diagnostic push
11531 // Clang <3.5 reports on the default branch in the switch below
11532 #pragma clang diagnostic ignored "-Wunreachable-code"
11533 #endif
11534 
match(double const & matchee) const11535     bool WithinUlpsMatcher::match(double const& matchee) const {
11536         switch (m_type) {
11537         case FloatingPointKind::Float:
11538             return almostEqualUlps<float>(static_cast<float>(matchee), static_cast<float>(m_target), m_ulps);
11539         case FloatingPointKind::Double:
11540             return almostEqualUlps<double>(matchee, m_target, m_ulps);
11541         default:
11542             CATCH_INTERNAL_ERROR( "Unknown FloatingPointKind value" );
11543         }
11544     }
11545 
11546 #if defined(__clang__)
11547 #pragma clang diagnostic pop
11548 #endif
11549 
describe() const11550     std::string WithinUlpsMatcher::describe() const {
11551         std::stringstream ret;
11552 
11553         ret << "is within " << m_ulps << " ULPs of ";
11554 
11555         if (m_type == FloatingPointKind::Float) {
11556             write(ret, static_cast<float>(m_target));
11557             ret << 'f';
11558         } else {
11559             write(ret, m_target);
11560         }
11561 
11562         ret << " ([";
11563         if (m_type == FloatingPointKind::Double) {
11564             write(ret, step(m_target, static_cast<double>(-INFINITY), m_ulps));
11565             ret << ", ";
11566             write(ret, step(m_target, static_cast<double>( INFINITY), m_ulps));
11567         } else {
11568             // We have to cast INFINITY to float because of MinGW, see #1782
11569             write(ret, step(static_cast<float>(m_target), static_cast<float>(-INFINITY), m_ulps));
11570             ret << ", ";
11571             write(ret, step(static_cast<float>(m_target), static_cast<float>( INFINITY), m_ulps));
11572         }
11573         ret << "])";
11574 
11575         return ret.str();
11576     }
11577 
WithinRelMatcher(double target,double epsilon)11578     WithinRelMatcher::WithinRelMatcher(double target, double epsilon):
11579         m_target(target),
11580         m_epsilon(epsilon){
11581         CATCH_ENFORCE(m_epsilon >= 0., "Relative comparison with epsilon <  0 does not make sense.");
11582         CATCH_ENFORCE(m_epsilon  < 1., "Relative comparison with epsilon >= 1 does not make sense.");
11583     }
11584 
match(double const & matchee) const11585     bool WithinRelMatcher::match(double const& matchee) const {
11586         const auto relMargin = m_epsilon * (std::max)(std::fabs(matchee), std::fabs(m_target));
11587         return marginComparison(matchee, m_target,
11588                                 std::isinf(relMargin)? 0 : relMargin);
11589     }
11590 
describe() const11591     std::string WithinRelMatcher::describe() const {
11592         Catch::ReusableStringStream sstr;
11593         sstr << "and " << m_target << " are within " << m_epsilon * 100. << "% of each other";
11594         return sstr.str();
11595     }
11596 
11597 }// namespace Floating
11598 
WithinULP(double target,uint64_t maxUlpDiff)11599 Floating::WithinUlpsMatcher WithinULP(double target, uint64_t maxUlpDiff) {
11600     return Floating::WithinUlpsMatcher(target, maxUlpDiff, Floating::FloatingPointKind::Double);
11601 }
11602 
WithinULP(float target,uint64_t maxUlpDiff)11603 Floating::WithinUlpsMatcher WithinULP(float target, uint64_t maxUlpDiff) {
11604     return Floating::WithinUlpsMatcher(target, maxUlpDiff, Floating::FloatingPointKind::Float);
11605 }
11606 
WithinAbs(double target,double margin)11607 Floating::WithinAbsMatcher WithinAbs(double target, double margin) {
11608     return Floating::WithinAbsMatcher(target, margin);
11609 }
11610 
WithinRel(double target,double eps)11611 Floating::WithinRelMatcher WithinRel(double target, double eps) {
11612     return Floating::WithinRelMatcher(target, eps);
11613 }
11614 
WithinRel(double target)11615 Floating::WithinRelMatcher WithinRel(double target) {
11616     return Floating::WithinRelMatcher(target, std::numeric_limits<double>::epsilon() * 100);
11617 }
11618 
WithinRel(float target,float eps)11619 Floating::WithinRelMatcher WithinRel(float target, float eps) {
11620     return Floating::WithinRelMatcher(target, eps);
11621 }
11622 
WithinRel(float target)11623 Floating::WithinRelMatcher WithinRel(float target) {
11624     return Floating::WithinRelMatcher(target, std::numeric_limits<float>::epsilon() * 100);
11625 }
11626 
11627 } // namespace Matchers
11628 } // namespace Catch
11629 
11630 // end catch_matchers_floating.cpp
11631 // start catch_matchers_generic.cpp
11632 
finalizeDescription(const std::string & desc)11633 std::string Catch::Matchers::Generic::Detail::finalizeDescription(const std::string& desc) {
11634     if (desc.empty()) {
11635         return "matches undescribed predicate";
11636     } else {
11637         return "matches predicate: \"" + desc + '"';
11638     }
11639 }
11640 // end catch_matchers_generic.cpp
11641 // start catch_matchers_string.cpp
11642 
11643 #include <regex>
11644 
11645 namespace Catch {
11646 namespace Matchers {
11647 
11648     namespace StdString {
11649 
CasedString(std::string const & str,CaseSensitive::Choice caseSensitivity)11650         CasedString::CasedString( std::string const& str, CaseSensitive::Choice caseSensitivity )
11651         :   m_caseSensitivity( caseSensitivity ),
11652             m_str( adjustString( str ) )
11653         {}
adjustString(std::string const & str) const11654         std::string CasedString::adjustString( std::string const& str ) const {
11655             return m_caseSensitivity == CaseSensitive::No
11656                    ? toLower( str )
11657                    : str;
11658         }
caseSensitivitySuffix() const11659         std::string CasedString::caseSensitivitySuffix() const {
11660             return m_caseSensitivity == CaseSensitive::No
11661                    ? " (case insensitive)"
11662                    : std::string();
11663         }
11664 
StringMatcherBase(std::string const & operation,CasedString const & comparator)11665         StringMatcherBase::StringMatcherBase( std::string const& operation, CasedString const& comparator )
11666         : m_comparator( comparator ),
11667           m_operation( operation ) {
11668         }
11669 
describe() const11670         std::string StringMatcherBase::describe() const {
11671             std::string description;
11672             description.reserve(5 + m_operation.size() + m_comparator.m_str.size() +
11673                                         m_comparator.caseSensitivitySuffix().size());
11674             description += m_operation;
11675             description += ": \"";
11676             description += m_comparator.m_str;
11677             description += "\"";
11678             description += m_comparator.caseSensitivitySuffix();
11679             return description;
11680         }
11681 
EqualsMatcher(CasedString const & comparator)11682         EqualsMatcher::EqualsMatcher( CasedString const& comparator ) : StringMatcherBase( "equals", comparator ) {}
11683 
match(std::string const & source) const11684         bool EqualsMatcher::match( std::string const& source ) const {
11685             return m_comparator.adjustString( source ) == m_comparator.m_str;
11686         }
11687 
ContainsMatcher(CasedString const & comparator)11688         ContainsMatcher::ContainsMatcher( CasedString const& comparator ) : StringMatcherBase( "contains", comparator ) {}
11689 
match(std::string const & source) const11690         bool ContainsMatcher::match( std::string const& source ) const {
11691             return contains( m_comparator.adjustString( source ), m_comparator.m_str );
11692         }
11693 
StartsWithMatcher(CasedString const & comparator)11694         StartsWithMatcher::StartsWithMatcher( CasedString const& comparator ) : StringMatcherBase( "starts with", comparator ) {}
11695 
match(std::string const & source) const11696         bool StartsWithMatcher::match( std::string const& source ) const {
11697             return startsWith( m_comparator.adjustString( source ), m_comparator.m_str );
11698         }
11699 
EndsWithMatcher(CasedString const & comparator)11700         EndsWithMatcher::EndsWithMatcher( CasedString const& comparator ) : StringMatcherBase( "ends with", comparator ) {}
11701 
match(std::string const & source) const11702         bool EndsWithMatcher::match( std::string const& source ) const {
11703             return endsWith( m_comparator.adjustString( source ), m_comparator.m_str );
11704         }
11705 
RegexMatcher(std::string regex,CaseSensitive::Choice caseSensitivity)11706         RegexMatcher::RegexMatcher(std::string regex, CaseSensitive::Choice caseSensitivity): m_regex(std::move(regex)), m_caseSensitivity(caseSensitivity) {}
11707 
match(std::string const & matchee) const11708         bool RegexMatcher::match(std::string const& matchee) const {
11709             auto flags = std::regex::ECMAScript; // ECMAScript is the default syntax option anyway
11710             if (m_caseSensitivity == CaseSensitive::Choice::No) {
11711                 flags |= std::regex::icase;
11712             }
11713             auto reg = std::regex(m_regex, flags);
11714             return std::regex_match(matchee, reg);
11715         }
11716 
describe() const11717         std::string RegexMatcher::describe() const {
11718             return "matches " + ::Catch::Detail::stringify(m_regex) + ((m_caseSensitivity == CaseSensitive::Choice::Yes)? " case sensitively" : " case insensitively");
11719         }
11720 
11721     } // namespace StdString
11722 
Equals(std::string const & str,CaseSensitive::Choice caseSensitivity)11723     StdString::EqualsMatcher Equals( std::string const& str, CaseSensitive::Choice caseSensitivity ) {
11724         return StdString::EqualsMatcher( StdString::CasedString( str, caseSensitivity) );
11725     }
Contains(std::string const & str,CaseSensitive::Choice caseSensitivity)11726     StdString::ContainsMatcher Contains( std::string const& str, CaseSensitive::Choice caseSensitivity ) {
11727         return StdString::ContainsMatcher( StdString::CasedString( str, caseSensitivity) );
11728     }
EndsWith(std::string const & str,CaseSensitive::Choice caseSensitivity)11729     StdString::EndsWithMatcher EndsWith( std::string const& str, CaseSensitive::Choice caseSensitivity ) {
11730         return StdString::EndsWithMatcher( StdString::CasedString( str, caseSensitivity) );
11731     }
StartsWith(std::string const & str,CaseSensitive::Choice caseSensitivity)11732     StdString::StartsWithMatcher StartsWith( std::string const& str, CaseSensitive::Choice caseSensitivity ) {
11733         return StdString::StartsWithMatcher( StdString::CasedString( str, caseSensitivity) );
11734     }
11735 
Matches(std::string const & regex,CaseSensitive::Choice caseSensitivity)11736     StdString::RegexMatcher Matches(std::string const& regex, CaseSensitive::Choice caseSensitivity) {
11737         return StdString::RegexMatcher(regex, caseSensitivity);
11738     }
11739 
11740 } // namespace Matchers
11741 } // namespace Catch
11742 // end catch_matchers_string.cpp
11743 // start catch_message.cpp
11744 
11745 // start catch_uncaught_exceptions.h
11746 
11747 namespace Catch {
11748     bool uncaught_exceptions();
11749 } // end namespace Catch
11750 
11751 // end catch_uncaught_exceptions.h
11752 #include <cassert>
11753 #include <stack>
11754 
11755 namespace Catch {
11756 
MessageInfo(StringRef const & _macroName,SourceLineInfo const & _lineInfo,ResultWas::OfType _type)11757     MessageInfo::MessageInfo(   StringRef const& _macroName,
11758                                 SourceLineInfo const& _lineInfo,
11759                                 ResultWas::OfType _type )
11760     :   macroName( _macroName ),
11761         lineInfo( _lineInfo ),
11762         type( _type ),
11763         sequence( ++globalCount )
11764     {}
11765 
operator ==(MessageInfo const & other) const11766     bool MessageInfo::operator==( MessageInfo const& other ) const {
11767         return sequence == other.sequence;
11768     }
11769 
operator <(MessageInfo const & other) const11770     bool MessageInfo::operator<( MessageInfo const& other ) const {
11771         return sequence < other.sequence;
11772     }
11773 
11774     // This may need protecting if threading support is added
11775     unsigned int MessageInfo::globalCount = 0;
11776 
11777     ////////////////////////////////////////////////////////////////////////////
11778 
MessageBuilder(StringRef const & macroName,SourceLineInfo const & lineInfo,ResultWas::OfType type)11779     Catch::MessageBuilder::MessageBuilder( StringRef const& macroName,
11780                                            SourceLineInfo const& lineInfo,
11781                                            ResultWas::OfType type )
11782         :m_info(macroName, lineInfo, type) {}
11783 
11784     ////////////////////////////////////////////////////////////////////////////
11785 
ScopedMessage(MessageBuilder const & builder)11786     ScopedMessage::ScopedMessage( MessageBuilder const& builder )
11787     : m_info( builder.m_info ), m_moved()
11788     {
11789         m_info.message = builder.m_stream.str();
11790         getResultCapture().pushScopedMessage( m_info );
11791     }
11792 
ScopedMessage(ScopedMessage && old)11793     ScopedMessage::ScopedMessage( ScopedMessage&& old )
11794     : m_info( old.m_info ), m_moved()
11795     {
11796         old.m_moved = true;
11797     }
11798 
~ScopedMessage()11799     ScopedMessage::~ScopedMessage() {
11800         if ( !uncaught_exceptions() && !m_moved ){
11801             getResultCapture().popScopedMessage(m_info);
11802         }
11803     }
11804 
Capturer(StringRef macroName,SourceLineInfo const & lineInfo,ResultWas::OfType resultType,StringRef names)11805     Capturer::Capturer( StringRef macroName, SourceLineInfo const& lineInfo, ResultWas::OfType resultType, StringRef names ) {
11806         auto trimmed = [&] (size_t start, size_t end) {
11807             while (names[start] == ',' || isspace(static_cast<unsigned char>(names[start]))) {
11808                 ++start;
11809             }
11810             while (names[end] == ',' || isspace(static_cast<unsigned char>(names[end]))) {
11811                 --end;
11812             }
11813             return names.substr(start, end - start + 1);
11814         };
11815         auto skipq = [&] (size_t start, char quote) {
11816             for (auto i = start + 1; i < names.size() ; ++i) {
11817                 if (names[i] == quote)
11818                     return i;
11819                 if (names[i] == '\\')
11820                     ++i;
11821             }
11822             CATCH_INTERNAL_ERROR("CAPTURE parsing encountered unmatched quote");
11823         };
11824 
11825         size_t start = 0;
11826         std::stack<char> openings;
11827         for (size_t pos = 0; pos < names.size(); ++pos) {
11828             char c = names[pos];
11829             switch (c) {
11830             case '[':
11831             case '{':
11832             case '(':
11833             // It is basically impossible to disambiguate between
11834             // comparison and start of template args in this context
11835 //            case '<':
11836                 openings.push(c);
11837                 break;
11838             case ']':
11839             case '}':
11840             case ')':
11841 //           case '>':
11842                 openings.pop();
11843                 break;
11844             case '"':
11845             case '\'':
11846                 pos = skipq(pos, c);
11847                 break;
11848             case ',':
11849                 if (start != pos && openings.empty()) {
11850                     m_messages.emplace_back(macroName, lineInfo, resultType);
11851                     m_messages.back().message = static_cast<std::string>(trimmed(start, pos));
11852                     m_messages.back().message += " := ";
11853                     start = pos;
11854                 }
11855             }
11856         }
11857         assert(openings.empty() && "Mismatched openings");
11858         m_messages.emplace_back(macroName, lineInfo, resultType);
11859         m_messages.back().message = static_cast<std::string>(trimmed(start, names.size() - 1));
11860         m_messages.back().message += " := ";
11861     }
~Capturer()11862     Capturer::~Capturer() {
11863         if ( !uncaught_exceptions() ){
11864             assert( m_captured == m_messages.size() );
11865             for( size_t i = 0; i < m_captured; ++i  )
11866                 m_resultCapture.popScopedMessage( m_messages[i] );
11867         }
11868     }
11869 
captureValue(size_t index,std::string const & value)11870     void Capturer::captureValue( size_t index, std::string const& value ) {
11871         assert( index < m_messages.size() );
11872         m_messages[index].message += value;
11873         m_resultCapture.pushScopedMessage( m_messages[index] );
11874         m_captured++;
11875     }
11876 
11877 } // end namespace Catch
11878 // end catch_message.cpp
11879 // start catch_output_redirect.cpp
11880 
11881 // start catch_output_redirect.h
11882 #ifndef TWOBLUECUBES_CATCH_OUTPUT_REDIRECT_H
11883 #define TWOBLUECUBES_CATCH_OUTPUT_REDIRECT_H
11884 
11885 #include <cstdio>
11886 #include <iosfwd>
11887 #include <string>
11888 
11889 namespace Catch {
11890 
11891     class RedirectedStream {
11892         std::ostream& m_originalStream;
11893         std::ostream& m_redirectionStream;
11894         std::streambuf* m_prevBuf;
11895 
11896     public:
11897         RedirectedStream( std::ostream& originalStream, std::ostream& redirectionStream );
11898         ~RedirectedStream();
11899     };
11900 
11901     class RedirectedStdOut {
11902         ReusableStringStream m_rss;
11903         RedirectedStream m_cout;
11904     public:
11905         RedirectedStdOut();
11906         auto str() const -> std::string;
11907     };
11908 
11909     // StdErr has two constituent streams in C++, std::cerr and std::clog
11910     // This means that we need to redirect 2 streams into 1 to keep proper
11911     // order of writes
11912     class RedirectedStdErr {
11913         ReusableStringStream m_rss;
11914         RedirectedStream m_cerr;
11915         RedirectedStream m_clog;
11916     public:
11917         RedirectedStdErr();
11918         auto str() const -> std::string;
11919     };
11920 
11921     class RedirectedStreams {
11922     public:
11923         RedirectedStreams(RedirectedStreams const&) = delete;
11924         RedirectedStreams& operator=(RedirectedStreams const&) = delete;
11925         RedirectedStreams(RedirectedStreams&&) = delete;
11926         RedirectedStreams& operator=(RedirectedStreams&&) = delete;
11927 
11928         RedirectedStreams(std::string& redirectedCout, std::string& redirectedCerr);
11929         ~RedirectedStreams();
11930     private:
11931         std::string& m_redirectedCout;
11932         std::string& m_redirectedCerr;
11933         RedirectedStdOut m_redirectedStdOut;
11934         RedirectedStdErr m_redirectedStdErr;
11935     };
11936 
11937 #if defined(CATCH_CONFIG_NEW_CAPTURE)
11938 
11939     // Windows's implementation of std::tmpfile is terrible (it tries
11940     // to create a file inside system folder, thus requiring elevated
11941     // privileges for the binary), so we have to use tmpnam(_s) and
11942     // create the file ourselves there.
11943     class TempFile {
11944     public:
11945         TempFile(TempFile const&) = delete;
11946         TempFile& operator=(TempFile const&) = delete;
11947         TempFile(TempFile&&) = delete;
11948         TempFile& operator=(TempFile&&) = delete;
11949 
11950         TempFile();
11951         ~TempFile();
11952 
11953         std::FILE* getFile();
11954         std::string getContents();
11955 
11956     private:
11957         std::FILE* m_file = nullptr;
11958     #if defined(_MSC_VER)
11959         char m_buffer[L_tmpnam] = { 0 };
11960     #endif
11961     };
11962 
11963     class OutputRedirect {
11964     public:
11965         OutputRedirect(OutputRedirect const&) = delete;
11966         OutputRedirect& operator=(OutputRedirect const&) = delete;
11967         OutputRedirect(OutputRedirect&&) = delete;
11968         OutputRedirect& operator=(OutputRedirect&&) = delete;
11969 
11970         OutputRedirect(std::string& stdout_dest, std::string& stderr_dest);
11971         ~OutputRedirect();
11972 
11973     private:
11974         int m_originalStdout = -1;
11975         int m_originalStderr = -1;
11976         TempFile m_stdoutFile;
11977         TempFile m_stderrFile;
11978         std::string& m_stdoutDest;
11979         std::string& m_stderrDest;
11980     };
11981 
11982 #endif
11983 
11984 } // end namespace Catch
11985 
11986 #endif // TWOBLUECUBES_CATCH_OUTPUT_REDIRECT_H
11987 // end catch_output_redirect.h
11988 #include <cstdio>
11989 #include <cstring>
11990 #include <fstream>
11991 #include <sstream>
11992 #include <stdexcept>
11993 
11994 #if defined(CATCH_CONFIG_NEW_CAPTURE)
11995     #if defined(_MSC_VER)
11996     #include <io.h>      //_dup and _dup2
11997     #define dup _dup
11998     #define dup2 _dup2
11999     #define fileno _fileno
12000     #else
12001     #include <unistd.h>  // dup and dup2
12002     #endif
12003 #endif
12004 
12005 namespace Catch {
12006 
RedirectedStream(std::ostream & originalStream,std::ostream & redirectionStream)12007     RedirectedStream::RedirectedStream( std::ostream& originalStream, std::ostream& redirectionStream )
12008     :   m_originalStream( originalStream ),
12009         m_redirectionStream( redirectionStream ),
12010         m_prevBuf( m_originalStream.rdbuf() )
12011     {
12012         m_originalStream.rdbuf( m_redirectionStream.rdbuf() );
12013     }
12014 
~RedirectedStream()12015     RedirectedStream::~RedirectedStream() {
12016         m_originalStream.rdbuf( m_prevBuf );
12017     }
12018 
RedirectedStdOut()12019     RedirectedStdOut::RedirectedStdOut() : m_cout( Catch::cout(), m_rss.get() ) {}
str() const12020     auto RedirectedStdOut::str() const -> std::string { return m_rss.str(); }
12021 
RedirectedStdErr()12022     RedirectedStdErr::RedirectedStdErr()
12023     :   m_cerr( Catch::cerr(), m_rss.get() ),
12024         m_clog( Catch::clog(), m_rss.get() )
12025     {}
str() const12026     auto RedirectedStdErr::str() const -> std::string { return m_rss.str(); }
12027 
RedirectedStreams(std::string & redirectedCout,std::string & redirectedCerr)12028     RedirectedStreams::RedirectedStreams(std::string& redirectedCout, std::string& redirectedCerr)
12029     :   m_redirectedCout(redirectedCout),
12030         m_redirectedCerr(redirectedCerr)
12031     {}
12032 
~RedirectedStreams()12033     RedirectedStreams::~RedirectedStreams() {
12034         m_redirectedCout += m_redirectedStdOut.str();
12035         m_redirectedCerr += m_redirectedStdErr.str();
12036     }
12037 
12038 #if defined(CATCH_CONFIG_NEW_CAPTURE)
12039 
12040 #if defined(_MSC_VER)
TempFile()12041     TempFile::TempFile() {
12042         if (tmpnam_s(m_buffer)) {
12043             CATCH_RUNTIME_ERROR("Could not get a temp filename");
12044         }
12045         if (fopen_s(&m_file, m_buffer, "w")) {
12046             char buffer[100];
12047             if (strerror_s(buffer, errno)) {
12048                 CATCH_RUNTIME_ERROR("Could not translate errno to a string");
12049             }
12050             CATCH_RUNTIME_ERROR("Could not open the temp file: '" << m_buffer << "' because: " << buffer);
12051         }
12052     }
12053 #else
TempFile()12054     TempFile::TempFile() {
12055         m_file = std::tmpfile();
12056         if (!m_file) {
12057             CATCH_RUNTIME_ERROR("Could not create a temp file.");
12058         }
12059     }
12060 
12061 #endif
12062 
~TempFile()12063     TempFile::~TempFile() {
12064          // TBD: What to do about errors here?
12065          std::fclose(m_file);
12066          // We manually create the file on Windows only, on Linux
12067          // it will be autodeleted
12068 #if defined(_MSC_VER)
12069          std::remove(m_buffer);
12070 #endif
12071     }
12072 
getFile()12073     FILE* TempFile::getFile() {
12074         return m_file;
12075     }
12076 
getContents()12077     std::string TempFile::getContents() {
12078         std::stringstream sstr;
12079         char buffer[100] = {};
12080         std::rewind(m_file);
12081         while (std::fgets(buffer, sizeof(buffer), m_file)) {
12082             sstr << buffer;
12083         }
12084         return sstr.str();
12085     }
12086 
OutputRedirect(std::string & stdout_dest,std::string & stderr_dest)12087     OutputRedirect::OutputRedirect(std::string& stdout_dest, std::string& stderr_dest) :
12088         m_originalStdout(dup(1)),
12089         m_originalStderr(dup(2)),
12090         m_stdoutDest(stdout_dest),
12091         m_stderrDest(stderr_dest) {
12092         dup2(fileno(m_stdoutFile.getFile()), 1);
12093         dup2(fileno(m_stderrFile.getFile()), 2);
12094     }
12095 
~OutputRedirect()12096     OutputRedirect::~OutputRedirect() {
12097         Catch::cout() << std::flush;
12098         fflush(stdout);
12099         // Since we support overriding these streams, we flush cerr
12100         // even though std::cerr is unbuffered
12101         Catch::cerr() << std::flush;
12102         Catch::clog() << std::flush;
12103         fflush(stderr);
12104 
12105         dup2(m_originalStdout, 1);
12106         dup2(m_originalStderr, 2);
12107 
12108         m_stdoutDest += m_stdoutFile.getContents();
12109         m_stderrDest += m_stderrFile.getContents();
12110     }
12111 
12112 #endif // CATCH_CONFIG_NEW_CAPTURE
12113 
12114 } // namespace Catch
12115 
12116 #if defined(CATCH_CONFIG_NEW_CAPTURE)
12117     #if defined(_MSC_VER)
12118     #undef dup
12119     #undef dup2
12120     #undef fileno
12121     #endif
12122 #endif
12123 // end catch_output_redirect.cpp
12124 // start catch_polyfills.cpp
12125 
12126 #include <cmath>
12127 
12128 namespace Catch {
12129 
12130 #if !defined(CATCH_CONFIG_POLYFILL_ISNAN)
isnan(float f)12131     bool isnan(float f) {
12132         return std::isnan(f);
12133     }
isnan(double d)12134     bool isnan(double d) {
12135         return std::isnan(d);
12136     }
12137 #else
12138     // For now we only use this for embarcadero
12139     bool isnan(float f) {
12140         return std::_isnan(f);
12141     }
12142     bool isnan(double d) {
12143         return std::_isnan(d);
12144     }
12145 #endif
12146 
12147 } // end namespace Catch
12148 // end catch_polyfills.cpp
12149 // start catch_random_number_generator.cpp
12150 
12151 namespace Catch {
12152 
12153 namespace {
12154 
12155 #if defined(_MSC_VER)
12156 #pragma warning(push)
12157 #pragma warning(disable:4146) // we negate uint32 during the rotate
12158 #endif
12159         // Safe rotr implementation thanks to John Regehr
rotate_right(uint32_t val,uint32_t count)12160         uint32_t rotate_right(uint32_t val, uint32_t count) {
12161             const uint32_t mask = 31;
12162             count &= mask;
12163             return (val >> count) | (val << (-count & mask));
12164         }
12165 
12166 #if defined(_MSC_VER)
12167 #pragma warning(pop)
12168 #endif
12169 
12170 }
12171 
SimplePcg32(result_type seed_)12172     SimplePcg32::SimplePcg32(result_type seed_) {
12173         seed(seed_);
12174     }
12175 
seed(result_type seed_)12176     void SimplePcg32::seed(result_type seed_) {
12177         m_state = 0;
12178         (*this)();
12179         m_state += seed_;
12180         (*this)();
12181     }
12182 
discard(uint64_t skip)12183     void SimplePcg32::discard(uint64_t skip) {
12184         // We could implement this to run in O(log n) steps, but this
12185         // should suffice for our use case.
12186         for (uint64_t s = 0; s < skip; ++s) {
12187             static_cast<void>((*this)());
12188         }
12189     }
12190 
operator ()()12191     SimplePcg32::result_type SimplePcg32::operator()() {
12192         // prepare the output value
12193         const uint32_t xorshifted = static_cast<uint32_t>(((m_state >> 18u) ^ m_state) >> 27u);
12194         const auto output = rotate_right(xorshifted, m_state >> 59u);
12195 
12196         // advance state
12197         m_state = m_state * 6364136223846793005ULL + s_inc;
12198 
12199         return output;
12200     }
12201 
operator ==(SimplePcg32 const & lhs,SimplePcg32 const & rhs)12202     bool operator==(SimplePcg32 const& lhs, SimplePcg32 const& rhs) {
12203         return lhs.m_state == rhs.m_state;
12204     }
12205 
operator !=(SimplePcg32 const & lhs,SimplePcg32 const & rhs)12206     bool operator!=(SimplePcg32 const& lhs, SimplePcg32 const& rhs) {
12207         return lhs.m_state != rhs.m_state;
12208     }
12209 }
12210 // end catch_random_number_generator.cpp
12211 // start catch_registry_hub.cpp
12212 
12213 // start catch_test_case_registry_impl.h
12214 
12215 #include <vector>
12216 #include <set>
12217 #include <algorithm>
12218 #include <ios>
12219 
12220 namespace Catch {
12221 
12222     class TestCase;
12223     struct IConfig;
12224 
12225     std::vector<TestCase> sortTests( IConfig const& config, std::vector<TestCase> const& unsortedTestCases );
12226 
12227     bool isThrowSafe( TestCase const& testCase, IConfig const& config );
12228     bool matchTest( TestCase const& testCase, TestSpec const& testSpec, IConfig const& config );
12229 
12230     void enforceNoDuplicateTestCases( std::vector<TestCase> const& functions );
12231 
12232     std::vector<TestCase> filterTests( std::vector<TestCase> const& testCases, TestSpec const& testSpec, IConfig const& config );
12233     std::vector<TestCase> const& getAllTestCasesSorted( IConfig const& config );
12234 
12235     class TestRegistry : public ITestCaseRegistry {
12236     public:
12237         virtual ~TestRegistry() = default;
12238 
12239         virtual void registerTest( TestCase const& testCase );
12240 
12241         std::vector<TestCase> const& getAllTests() const override;
12242         std::vector<TestCase> const& getAllTestsSorted( IConfig const& config ) const override;
12243 
12244     private:
12245         std::vector<TestCase> m_functions;
12246         mutable RunTests::InWhatOrder m_currentSortOrder = RunTests::InDeclarationOrder;
12247         mutable std::vector<TestCase> m_sortedFunctions;
12248         std::size_t m_unnamedCount = 0;
12249         std::ios_base::Init m_ostreamInit; // Forces cout/ cerr to be initialised
12250     };
12251 
12252     ///////////////////////////////////////////////////////////////////////////
12253 
12254     class TestInvokerAsFunction : public ITestInvoker {
12255         void(*m_testAsFunction)();
12256     public:
12257         TestInvokerAsFunction( void(*testAsFunction)() ) noexcept;
12258 
12259         void invoke() const override;
12260     };
12261 
12262     std::string extractClassName( StringRef const& classOrQualifiedMethodName );
12263 
12264     ///////////////////////////////////////////////////////////////////////////
12265 
12266 } // end namespace Catch
12267 
12268 // end catch_test_case_registry_impl.h
12269 // start catch_reporter_registry.h
12270 
12271 #include <map>
12272 
12273 namespace Catch {
12274 
12275     class ReporterRegistry : public IReporterRegistry {
12276 
12277     public:
12278 
12279         ~ReporterRegistry() override;
12280 
12281         IStreamingReporterPtr create( std::string const& name, IConfigPtr const& config ) const override;
12282 
12283         void registerReporter( std::string const& name, IReporterFactoryPtr const& factory );
12284         void registerListener( IReporterFactoryPtr const& factory );
12285 
12286         FactoryMap const& getFactories() const override;
12287         Listeners const& getListeners() const override;
12288 
12289     private:
12290         FactoryMap m_factories;
12291         Listeners m_listeners;
12292     };
12293 }
12294 
12295 // end catch_reporter_registry.h
12296 // start catch_tag_alias_registry.h
12297 
12298 // start catch_tag_alias.h
12299 
12300 #include <string>
12301 
12302 namespace Catch {
12303 
12304     struct TagAlias {
12305         TagAlias(std::string const& _tag, SourceLineInfo _lineInfo);
12306 
12307         std::string tag;
12308         SourceLineInfo lineInfo;
12309     };
12310 
12311 } // end namespace Catch
12312 
12313 // end catch_tag_alias.h
12314 #include <map>
12315 
12316 namespace Catch {
12317 
12318     class TagAliasRegistry : public ITagAliasRegistry {
12319     public:
12320         ~TagAliasRegistry() override;
12321         TagAlias const* find( std::string const& alias ) const override;
12322         std::string expandAliases( std::string const& unexpandedTestSpec ) const override;
12323         void add( std::string const& alias, std::string const& tag, SourceLineInfo const& lineInfo );
12324 
12325     private:
12326         std::map<std::string, TagAlias> m_registry;
12327     };
12328 
12329 } // end namespace Catch
12330 
12331 // end catch_tag_alias_registry.h
12332 // start catch_startup_exception_registry.h
12333 
12334 #include <vector>
12335 #include <exception>
12336 
12337 namespace Catch {
12338 
12339     class StartupExceptionRegistry {
12340 #if !defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
12341     public:
12342         void add(std::exception_ptr const& exception) noexcept;
12343         std::vector<std::exception_ptr> const& getExceptions() const noexcept;
12344     private:
12345         std::vector<std::exception_ptr> m_exceptions;
12346 #endif
12347     };
12348 
12349 } // end namespace Catch
12350 
12351 // end catch_startup_exception_registry.h
12352 // start catch_singletons.hpp
12353 
12354 namespace Catch {
12355 
12356     struct ISingleton {
12357         virtual ~ISingleton();
12358     };
12359 
12360     void addSingleton( ISingleton* singleton );
12361     void cleanupSingletons();
12362 
12363     template<typename SingletonImplT, typename InterfaceT = SingletonImplT, typename MutableInterfaceT = InterfaceT>
12364     class Singleton : SingletonImplT, public ISingleton {
12365 
getInternal()12366         static auto getInternal() -> Singleton* {
12367             static Singleton* s_instance = nullptr;
12368             if( !s_instance ) {
12369                 s_instance = new Singleton;
12370                 addSingleton( s_instance );
12371             }
12372             return s_instance;
12373         }
12374 
12375     public:
get()12376         static auto get() -> InterfaceT const& {
12377             return *getInternal();
12378         }
getMutable()12379         static auto getMutable() -> MutableInterfaceT& {
12380             return *getInternal();
12381         }
12382     };
12383 
12384 } // namespace Catch
12385 
12386 // end catch_singletons.hpp
12387 namespace Catch {
12388 
12389     namespace {
12390 
12391         class RegistryHub : public IRegistryHub, public IMutableRegistryHub,
12392                             private NonCopyable {
12393 
12394         public: // IRegistryHub
12395             RegistryHub() = default;
getReporterRegistry() const12396             IReporterRegistry const& getReporterRegistry() const override {
12397                 return m_reporterRegistry;
12398             }
getTestCaseRegistry() const12399             ITestCaseRegistry const& getTestCaseRegistry() const override {
12400                 return m_testCaseRegistry;
12401             }
getExceptionTranslatorRegistry() const12402             IExceptionTranslatorRegistry const& getExceptionTranslatorRegistry() const override {
12403                 return m_exceptionTranslatorRegistry;
12404             }
getTagAliasRegistry() const12405             ITagAliasRegistry const& getTagAliasRegistry() const override {
12406                 return m_tagAliasRegistry;
12407             }
getStartupExceptionRegistry() const12408             StartupExceptionRegistry const& getStartupExceptionRegistry() const override {
12409                 return m_exceptionRegistry;
12410             }
12411 
12412         public: // IMutableRegistryHub
registerReporter(std::string const & name,IReporterFactoryPtr const & factory)12413             void registerReporter( std::string const& name, IReporterFactoryPtr const& factory ) override {
12414                 m_reporterRegistry.registerReporter( name, factory );
12415             }
registerListener(IReporterFactoryPtr const & factory)12416             void registerListener( IReporterFactoryPtr const& factory ) override {
12417                 m_reporterRegistry.registerListener( factory );
12418             }
registerTest(TestCase const & testInfo)12419             void registerTest( TestCase const& testInfo ) override {
12420                 m_testCaseRegistry.registerTest( testInfo );
12421             }
registerTranslator(const IExceptionTranslator * translator)12422             void registerTranslator( const IExceptionTranslator* translator ) override {
12423                 m_exceptionTranslatorRegistry.registerTranslator( translator );
12424             }
registerTagAlias(std::string const & alias,std::string const & tag,SourceLineInfo const & lineInfo)12425             void registerTagAlias( std::string const& alias, std::string const& tag, SourceLineInfo const& lineInfo ) override {
12426                 m_tagAliasRegistry.add( alias, tag, lineInfo );
12427             }
registerStartupException()12428             void registerStartupException() noexcept override {
12429 #if !defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
12430                 m_exceptionRegistry.add(std::current_exception());
12431 #else
12432                 CATCH_INTERNAL_ERROR("Attempted to register active exception under CATCH_CONFIG_DISABLE_EXCEPTIONS!");
12433 #endif
12434             }
getMutableEnumValuesRegistry()12435             IMutableEnumValuesRegistry& getMutableEnumValuesRegistry() override {
12436                 return m_enumValuesRegistry;
12437             }
12438 
12439         private:
12440             TestRegistry m_testCaseRegistry;
12441             ReporterRegistry m_reporterRegistry;
12442             ExceptionTranslatorRegistry m_exceptionTranslatorRegistry;
12443             TagAliasRegistry m_tagAliasRegistry;
12444             StartupExceptionRegistry m_exceptionRegistry;
12445             Detail::EnumValuesRegistry m_enumValuesRegistry;
12446         };
12447     }
12448 
12449     using RegistryHubSingleton = Singleton<RegistryHub, IRegistryHub, IMutableRegistryHub>;
12450 
getRegistryHub()12451     IRegistryHub const& getRegistryHub() {
12452         return RegistryHubSingleton::get();
12453     }
getMutableRegistryHub()12454     IMutableRegistryHub& getMutableRegistryHub() {
12455         return RegistryHubSingleton::getMutable();
12456     }
cleanUp()12457     void cleanUp() {
12458         cleanupSingletons();
12459         cleanUpContext();
12460     }
translateActiveException()12461     std::string translateActiveException() {
12462         return getRegistryHub().getExceptionTranslatorRegistry().translateActiveException();
12463     }
12464 
12465 } // end namespace Catch
12466 // end catch_registry_hub.cpp
12467 // start catch_reporter_registry.cpp
12468 
12469 namespace Catch {
12470 
12471     ReporterRegistry::~ReporterRegistry() = default;
12472 
create(std::string const & name,IConfigPtr const & config) const12473     IStreamingReporterPtr ReporterRegistry::create( std::string const& name, IConfigPtr const& config ) const {
12474         auto it =  m_factories.find( name );
12475         if( it == m_factories.end() )
12476             return nullptr;
12477         return it->second->create( ReporterConfig( config ) );
12478     }
12479 
registerReporter(std::string const & name,IReporterFactoryPtr const & factory)12480     void ReporterRegistry::registerReporter( std::string const& name, IReporterFactoryPtr const& factory ) {
12481         m_factories.emplace(name, factory);
12482     }
registerListener(IReporterFactoryPtr const & factory)12483     void ReporterRegistry::registerListener( IReporterFactoryPtr const& factory ) {
12484         m_listeners.push_back( factory );
12485     }
12486 
getFactories() const12487     IReporterRegistry::FactoryMap const& ReporterRegistry::getFactories() const {
12488         return m_factories;
12489     }
getListeners() const12490     IReporterRegistry::Listeners const& ReporterRegistry::getListeners() const {
12491         return m_listeners;
12492     }
12493 
12494 }
12495 // end catch_reporter_registry.cpp
12496 // start catch_result_type.cpp
12497 
12498 namespace Catch {
12499 
isOk(ResultWas::OfType resultType)12500     bool isOk( ResultWas::OfType resultType ) {
12501         return ( resultType & ResultWas::FailureBit ) == 0;
12502     }
isJustInfo(int flags)12503     bool isJustInfo( int flags ) {
12504         return flags == ResultWas::Info;
12505     }
12506 
operator |(ResultDisposition::Flags lhs,ResultDisposition::Flags rhs)12507     ResultDisposition::Flags operator | ( ResultDisposition::Flags lhs, ResultDisposition::Flags rhs ) {
12508         return static_cast<ResultDisposition::Flags>( static_cast<int>( lhs ) | static_cast<int>( rhs ) );
12509     }
12510 
shouldContinueOnFailure(int flags)12511     bool shouldContinueOnFailure( int flags )    { return ( flags & ResultDisposition::ContinueOnFailure ) != 0; }
shouldSuppressFailure(int flags)12512     bool shouldSuppressFailure( int flags )      { return ( flags & ResultDisposition::SuppressFail ) != 0; }
12513 
12514 } // end namespace Catch
12515 // end catch_result_type.cpp
12516 // start catch_run_context.cpp
12517 
12518 #include <cassert>
12519 #include <algorithm>
12520 #include <sstream>
12521 
12522 namespace Catch {
12523 
12524     namespace Generators {
12525         struct GeneratorTracker : TestCaseTracking::TrackerBase, IGeneratorTracker {
12526             GeneratorBasePtr m_generator;
12527 
GeneratorTrackerCatch::Generators::GeneratorTracker12528             GeneratorTracker( TestCaseTracking::NameAndLocation const& nameAndLocation, TrackerContext& ctx, ITracker* parent )
12529             :   TrackerBase( nameAndLocation, ctx, parent )
12530             {}
12531             ~GeneratorTracker();
12532 
acquireCatch::Generators::GeneratorTracker12533             static GeneratorTracker& acquire( TrackerContext& ctx, TestCaseTracking::NameAndLocation const& nameAndLocation ) {
12534                 std::shared_ptr<GeneratorTracker> tracker;
12535 
12536                 ITracker& currentTracker = ctx.currentTracker();
12537                 // Under specific circumstances, the generator we want
12538                 // to acquire is also the current tracker. If this is
12539                 // the case, we have to avoid looking through current
12540                 // tracker's children, and instead return the current
12541                 // tracker.
12542                 // A case where this check is important is e.g.
12543                 //     for (int i = 0; i < 5; ++i) {
12544                 //         int n = GENERATE(1, 2);
12545                 //     }
12546                 //
12547                 // without it, the code above creates 5 nested generators.
12548                 if (currentTracker.nameAndLocation() == nameAndLocation) {
12549                     auto thisTracker = currentTracker.parent().findChild(nameAndLocation);
12550                     assert(thisTracker);
12551                     assert(thisTracker->isGeneratorTracker());
12552                     tracker = std::static_pointer_cast<GeneratorTracker>(thisTracker);
12553                 } else if ( TestCaseTracking::ITrackerPtr childTracker = currentTracker.findChild( nameAndLocation ) ) {
12554                     assert( childTracker );
12555                     assert( childTracker->isGeneratorTracker() );
12556                     tracker = std::static_pointer_cast<GeneratorTracker>( childTracker );
12557                 } else {
12558                     tracker = std::make_shared<GeneratorTracker>( nameAndLocation, ctx, &currentTracker );
12559                     currentTracker.addChild( tracker );
12560                 }
12561 
12562                 if( !tracker->isComplete() ) {
12563                     tracker->open();
12564                 }
12565 
12566                 return *tracker;
12567             }
12568 
12569             // TrackerBase interface
isGeneratorTrackerCatch::Generators::GeneratorTracker12570             bool isGeneratorTracker() const override { return true; }
hasGeneratorCatch::Generators::GeneratorTracker12571             auto hasGenerator() const -> bool override {
12572                 return !!m_generator;
12573             }
closeCatch::Generators::GeneratorTracker12574             void close() override {
12575                 TrackerBase::close();
12576                 // If a generator has a child (it is followed by a section)
12577                 // and none of its children have started, then we must wait
12578                 // until later to start consuming its values.
12579                 // This catches cases where `GENERATE` is placed between two
12580                 // `SECTION`s.
12581                 // **The check for m_children.empty cannot be removed**.
12582                 // doing so would break `GENERATE` _not_ followed by `SECTION`s.
12583                 const bool should_wait_for_child =
12584                     !m_children.empty() &&
12585                     std::find_if( m_children.begin(),
12586                                   m_children.end(),
12587                                   []( TestCaseTracking::ITrackerPtr tracker ) {
12588                                       return tracker->hasStarted();
12589                                   } ) == m_children.end();
12590 
12591                 // This check is a bit tricky, because m_generator->next()
12592                 // has a side-effect, where it consumes generator's current
12593                 // value, but we do not want to invoke the side-effect if
12594                 // this generator is still waiting for any child to start.
12595                 if ( should_wait_for_child ||
12596                      ( m_runState == CompletedSuccessfully &&
12597                        m_generator->next() ) ) {
12598                     m_children.clear();
12599                     m_runState = Executing;
12600                 }
12601             }
12602 
12603             // IGeneratorTracker interface
getGeneratorCatch::Generators::GeneratorTracker12604             auto getGenerator() const -> GeneratorBasePtr const& override {
12605                 return m_generator;
12606             }
setGeneratorCatch::Generators::GeneratorTracker12607             void setGenerator( GeneratorBasePtr&& generator ) override {
12608                 m_generator = std::move( generator );
12609             }
12610         };
~GeneratorTracker()12611         GeneratorTracker::~GeneratorTracker() {}
12612     }
12613 
RunContext(IConfigPtr const & _config,IStreamingReporterPtr && reporter)12614     RunContext::RunContext(IConfigPtr const& _config, IStreamingReporterPtr&& reporter)
12615     :   m_runInfo(_config->name()),
12616         m_context(getCurrentMutableContext()),
12617         m_config(_config),
12618         m_reporter(std::move(reporter)),
12619         m_lastAssertionInfo{ StringRef(), SourceLineInfo("",0), StringRef(), ResultDisposition::Normal },
12620         m_includeSuccessfulResults( m_config->includeSuccessfulResults() || m_reporter->getPreferences().shouldReportAllAssertions )
12621     {
12622         m_context.setRunner(this);
12623         m_context.setConfig(m_config);
12624         m_context.setResultCapture(this);
12625         m_reporter->testRunStarting(m_runInfo);
12626     }
12627 
~RunContext()12628     RunContext::~RunContext() {
12629         m_reporter->testRunEnded(TestRunStats(m_runInfo, m_totals, aborting()));
12630     }
12631 
testGroupStarting(std::string const & testSpec,std::size_t groupIndex,std::size_t groupsCount)12632     void RunContext::testGroupStarting(std::string const& testSpec, std::size_t groupIndex, std::size_t groupsCount) {
12633         m_reporter->testGroupStarting(GroupInfo(testSpec, groupIndex, groupsCount));
12634     }
12635 
testGroupEnded(std::string const & testSpec,Totals const & totals,std::size_t groupIndex,std::size_t groupsCount)12636     void RunContext::testGroupEnded(std::string const& testSpec, Totals const& totals, std::size_t groupIndex, std::size_t groupsCount) {
12637         m_reporter->testGroupEnded(TestGroupStats(GroupInfo(testSpec, groupIndex, groupsCount), totals, aborting()));
12638     }
12639 
runTest(TestCase const & testCase)12640     Totals RunContext::runTest(TestCase const& testCase) {
12641         Totals prevTotals = m_totals;
12642 
12643         std::string redirectedCout;
12644         std::string redirectedCerr;
12645 
12646         auto const& testInfo = testCase.getTestCaseInfo();
12647 
12648         m_reporter->testCaseStarting(testInfo);
12649 
12650         m_activeTestCase = &testCase;
12651 
12652         ITracker& rootTracker = m_trackerContext.startRun();
12653         assert(rootTracker.isSectionTracker());
12654         static_cast<SectionTracker&>(rootTracker).addInitialFilters(m_config->getSectionsToRun());
12655         do {
12656             m_trackerContext.startCycle();
12657             m_testCaseTracker = &SectionTracker::acquire(m_trackerContext, TestCaseTracking::NameAndLocation(testInfo.name, testInfo.lineInfo));
12658             runCurrentTest(redirectedCout, redirectedCerr);
12659         } while (!m_testCaseTracker->isSuccessfullyCompleted() && !aborting());
12660 
12661         Totals deltaTotals = m_totals.delta(prevTotals);
12662         if (testInfo.expectedToFail() && deltaTotals.testCases.passed > 0) {
12663             deltaTotals.assertions.failed++;
12664             deltaTotals.testCases.passed--;
12665             deltaTotals.testCases.failed++;
12666         }
12667         m_totals.testCases += deltaTotals.testCases;
12668         m_reporter->testCaseEnded(TestCaseStats(testInfo,
12669                                   deltaTotals,
12670                                   redirectedCout,
12671                                   redirectedCerr,
12672                                   aborting()));
12673 
12674         m_activeTestCase = nullptr;
12675         m_testCaseTracker = nullptr;
12676 
12677         return deltaTotals;
12678     }
12679 
config() const12680     IConfigPtr RunContext::config() const {
12681         return m_config;
12682     }
12683 
reporter() const12684     IStreamingReporter& RunContext::reporter() const {
12685         return *m_reporter;
12686     }
12687 
assertionEnded(AssertionResult const & result)12688     void RunContext::assertionEnded(AssertionResult const & result) {
12689         if (result.getResultType() == ResultWas::Ok) {
12690             m_totals.assertions.passed++;
12691             m_lastAssertionPassed = true;
12692         } else if (!result.isOk()) {
12693             m_lastAssertionPassed = false;
12694             if( m_activeTestCase->getTestCaseInfo().okToFail() )
12695                 m_totals.assertions.failedButOk++;
12696             else
12697                 m_totals.assertions.failed++;
12698         }
12699         else {
12700             m_lastAssertionPassed = true;
12701         }
12702 
12703         // We have no use for the return value (whether messages should be cleared), because messages were made scoped
12704         // and should be let to clear themselves out.
12705         static_cast<void>(m_reporter->assertionEnded(AssertionStats(result, m_messages, m_totals)));
12706 
12707         if (result.getResultType() != ResultWas::Warning)
12708             m_messageScopes.clear();
12709 
12710         // Reset working state
12711         resetAssertionInfo();
12712         m_lastResult = result;
12713     }
resetAssertionInfo()12714     void RunContext::resetAssertionInfo() {
12715         m_lastAssertionInfo.macroName = StringRef();
12716         m_lastAssertionInfo.capturedExpression = "{Unknown expression after the reported line}"_sr;
12717     }
12718 
sectionStarted(SectionInfo const & sectionInfo,Counts & assertions)12719     bool RunContext::sectionStarted(SectionInfo const & sectionInfo, Counts & assertions) {
12720         ITracker& sectionTracker = SectionTracker::acquire(m_trackerContext, TestCaseTracking::NameAndLocation(sectionInfo.name, sectionInfo.lineInfo));
12721         if (!sectionTracker.isOpen())
12722             return false;
12723         m_activeSections.push_back(&sectionTracker);
12724 
12725         m_lastAssertionInfo.lineInfo = sectionInfo.lineInfo;
12726 
12727         m_reporter->sectionStarting(sectionInfo);
12728 
12729         assertions = m_totals.assertions;
12730 
12731         return true;
12732     }
acquireGeneratorTracker(StringRef generatorName,SourceLineInfo const & lineInfo)12733     auto RunContext::acquireGeneratorTracker( StringRef generatorName, SourceLineInfo const& lineInfo ) -> IGeneratorTracker& {
12734         using namespace Generators;
12735         GeneratorTracker& tracker = GeneratorTracker::acquire(m_trackerContext,
12736                                                               TestCaseTracking::NameAndLocation( static_cast<std::string>(generatorName), lineInfo ) );
12737         m_lastAssertionInfo.lineInfo = lineInfo;
12738         return tracker;
12739     }
12740 
testForMissingAssertions(Counts & assertions)12741     bool RunContext::testForMissingAssertions(Counts& assertions) {
12742         if (assertions.total() != 0)
12743             return false;
12744         if (!m_config->warnAboutMissingAssertions())
12745             return false;
12746         if (m_trackerContext.currentTracker().hasChildren())
12747             return false;
12748         m_totals.assertions.failed++;
12749         assertions.failed++;
12750         return true;
12751     }
12752 
sectionEnded(SectionEndInfo const & endInfo)12753     void RunContext::sectionEnded(SectionEndInfo const & endInfo) {
12754         Counts assertions = m_totals.assertions - endInfo.prevAssertions;
12755         bool missingAssertions = testForMissingAssertions(assertions);
12756 
12757         if (!m_activeSections.empty()) {
12758             m_activeSections.back()->close();
12759             m_activeSections.pop_back();
12760         }
12761 
12762         m_reporter->sectionEnded(SectionStats(endInfo.sectionInfo, assertions, endInfo.durationInSeconds, missingAssertions));
12763         m_messages.clear();
12764         m_messageScopes.clear();
12765     }
12766 
sectionEndedEarly(SectionEndInfo const & endInfo)12767     void RunContext::sectionEndedEarly(SectionEndInfo const & endInfo) {
12768         if (m_unfinishedSections.empty())
12769             m_activeSections.back()->fail();
12770         else
12771             m_activeSections.back()->close();
12772         m_activeSections.pop_back();
12773 
12774         m_unfinishedSections.push_back(endInfo);
12775     }
12776 
12777 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
benchmarkPreparing(std::string const & name)12778     void RunContext::benchmarkPreparing(std::string const& name) {
12779         m_reporter->benchmarkPreparing(name);
12780     }
benchmarkStarting(BenchmarkInfo const & info)12781     void RunContext::benchmarkStarting( BenchmarkInfo const& info ) {
12782         m_reporter->benchmarkStarting( info );
12783     }
benchmarkEnded(BenchmarkStats<> const & stats)12784     void RunContext::benchmarkEnded( BenchmarkStats<> const& stats ) {
12785         m_reporter->benchmarkEnded( stats );
12786     }
benchmarkFailed(std::string const & error)12787     void RunContext::benchmarkFailed(std::string const & error) {
12788         m_reporter->benchmarkFailed(error);
12789     }
12790 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
12791 
pushScopedMessage(MessageInfo const & message)12792     void RunContext::pushScopedMessage(MessageInfo const & message) {
12793         m_messages.push_back(message);
12794     }
12795 
popScopedMessage(MessageInfo const & message)12796     void RunContext::popScopedMessage(MessageInfo const & message) {
12797         m_messages.erase(std::remove(m_messages.begin(), m_messages.end(), message), m_messages.end());
12798     }
12799 
emplaceUnscopedMessage(MessageBuilder const & builder)12800     void RunContext::emplaceUnscopedMessage( MessageBuilder const& builder ) {
12801         m_messageScopes.emplace_back( builder );
12802     }
12803 
getCurrentTestName() const12804     std::string RunContext::getCurrentTestName() const {
12805         return m_activeTestCase
12806             ? m_activeTestCase->getTestCaseInfo().name
12807             : std::string();
12808     }
12809 
getLastResult() const12810     const AssertionResult * RunContext::getLastResult() const {
12811         return &(*m_lastResult);
12812     }
12813 
exceptionEarlyReported()12814     void RunContext::exceptionEarlyReported() {
12815         m_shouldReportUnexpected = false;
12816     }
12817 
handleFatalErrorCondition(StringRef message)12818     void RunContext::handleFatalErrorCondition( StringRef message ) {
12819         // First notify reporter that bad things happened
12820         m_reporter->fatalErrorEncountered(message);
12821 
12822         // Don't rebuild the result -- the stringification itself can cause more fatal errors
12823         // Instead, fake a result data.
12824         AssertionResultData tempResult( ResultWas::FatalErrorCondition, { false } );
12825         tempResult.message = static_cast<std::string>(message);
12826         AssertionResult result(m_lastAssertionInfo, tempResult);
12827 
12828         assertionEnded(result);
12829 
12830         handleUnfinishedSections();
12831 
12832         // Recreate section for test case (as we will lose the one that was in scope)
12833         auto const& testCaseInfo = m_activeTestCase->getTestCaseInfo();
12834         SectionInfo testCaseSection(testCaseInfo.lineInfo, testCaseInfo.name);
12835 
12836         Counts assertions;
12837         assertions.failed = 1;
12838         SectionStats testCaseSectionStats(testCaseSection, assertions, 0, false);
12839         m_reporter->sectionEnded(testCaseSectionStats);
12840 
12841         auto const& testInfo = m_activeTestCase->getTestCaseInfo();
12842 
12843         Totals deltaTotals;
12844         deltaTotals.testCases.failed = 1;
12845         deltaTotals.assertions.failed = 1;
12846         m_reporter->testCaseEnded(TestCaseStats(testInfo,
12847                                   deltaTotals,
12848                                   std::string(),
12849                                   std::string(),
12850                                   false));
12851         m_totals.testCases.failed++;
12852         testGroupEnded(std::string(), m_totals, 1, 1);
12853         m_reporter->testRunEnded(TestRunStats(m_runInfo, m_totals, false));
12854     }
12855 
lastAssertionPassed()12856     bool RunContext::lastAssertionPassed() {
12857          return m_lastAssertionPassed;
12858     }
12859 
assertionPassed()12860     void RunContext::assertionPassed() {
12861         m_lastAssertionPassed = true;
12862         ++m_totals.assertions.passed;
12863         resetAssertionInfo();
12864         m_messageScopes.clear();
12865     }
12866 
aborting() const12867     bool RunContext::aborting() const {
12868         return m_totals.assertions.failed >= static_cast<std::size_t>(m_config->abortAfter());
12869     }
12870 
runCurrentTest(std::string & redirectedCout,std::string & redirectedCerr)12871     void RunContext::runCurrentTest(std::string & redirectedCout, std::string & redirectedCerr) {
12872         auto const& testCaseInfo = m_activeTestCase->getTestCaseInfo();
12873         SectionInfo testCaseSection(testCaseInfo.lineInfo, testCaseInfo.name);
12874         m_reporter->sectionStarting(testCaseSection);
12875         Counts prevAssertions = m_totals.assertions;
12876         double duration = 0;
12877         m_shouldReportUnexpected = true;
12878         m_lastAssertionInfo = { "TEST_CASE"_sr, testCaseInfo.lineInfo, StringRef(), ResultDisposition::Normal };
12879 
12880         seedRng(*m_config);
12881 
12882         Timer timer;
12883         CATCH_TRY {
12884             if (m_reporter->getPreferences().shouldRedirectStdOut) {
12885 #if !defined(CATCH_CONFIG_EXPERIMENTAL_REDIRECT)
12886                 RedirectedStreams redirectedStreams(redirectedCout, redirectedCerr);
12887 
12888                 timer.start();
12889                 invokeActiveTestCase();
12890 #else
12891                 OutputRedirect r(redirectedCout, redirectedCerr);
12892                 timer.start();
12893                 invokeActiveTestCase();
12894 #endif
12895             } else {
12896                 timer.start();
12897                 invokeActiveTestCase();
12898             }
12899             duration = timer.getElapsedSeconds();
12900         } CATCH_CATCH_ANON (TestFailureException&) {
12901             // This just means the test was aborted due to failure
12902         } CATCH_CATCH_ALL {
12903             // Under CATCH_CONFIG_FAST_COMPILE, unexpected exceptions under REQUIRE assertions
12904             // are reported without translation at the point of origin.
12905             if( m_shouldReportUnexpected ) {
12906                 AssertionReaction dummyReaction;
12907                 handleUnexpectedInflightException( m_lastAssertionInfo, translateActiveException(), dummyReaction );
12908             }
12909         }
12910         Counts assertions = m_totals.assertions - prevAssertions;
12911         bool missingAssertions = testForMissingAssertions(assertions);
12912 
12913         m_testCaseTracker->close();
12914         handleUnfinishedSections();
12915         m_messages.clear();
12916         m_messageScopes.clear();
12917 
12918         SectionStats testCaseSectionStats(testCaseSection, assertions, duration, missingAssertions);
12919         m_reporter->sectionEnded(testCaseSectionStats);
12920     }
12921 
invokeActiveTestCase()12922     void RunContext::invokeActiveTestCase() {
12923         FatalConditionHandler fatalConditionHandler; // Handle signals
12924         m_activeTestCase->invoke();
12925         fatalConditionHandler.reset();
12926     }
12927 
handleUnfinishedSections()12928     void RunContext::handleUnfinishedSections() {
12929         // If sections ended prematurely due to an exception we stored their
12930         // infos here so we can tear them down outside the unwind process.
12931         for (auto it = m_unfinishedSections.rbegin(),
12932              itEnd = m_unfinishedSections.rend();
12933              it != itEnd;
12934              ++it)
12935             sectionEnded(*it);
12936         m_unfinishedSections.clear();
12937     }
12938 
handleExpr(AssertionInfo const & info,ITransientExpression const & expr,AssertionReaction & reaction)12939     void RunContext::handleExpr(
12940         AssertionInfo const& info,
12941         ITransientExpression const& expr,
12942         AssertionReaction& reaction
12943     ) {
12944         m_reporter->assertionStarting( info );
12945 
12946         bool negated = isFalseTest( info.resultDisposition );
12947         bool result = expr.getResult() != negated;
12948 
12949         if( result ) {
12950             if (!m_includeSuccessfulResults) {
12951                 assertionPassed();
12952             }
12953             else {
12954                 reportExpr(info, ResultWas::Ok, &expr, negated);
12955             }
12956         }
12957         else {
12958             reportExpr(info, ResultWas::ExpressionFailed, &expr, negated );
12959             populateReaction( reaction );
12960         }
12961     }
reportExpr(AssertionInfo const & info,ResultWas::OfType resultType,ITransientExpression const * expr,bool negated)12962     void RunContext::reportExpr(
12963             AssertionInfo const &info,
12964             ResultWas::OfType resultType,
12965             ITransientExpression const *expr,
12966             bool negated ) {
12967 
12968         m_lastAssertionInfo = info;
12969         AssertionResultData data( resultType, LazyExpression( negated ) );
12970 
12971         AssertionResult assertionResult{ info, data };
12972         assertionResult.m_resultData.lazyExpression.m_transientExpression = expr;
12973 
12974         assertionEnded( assertionResult );
12975     }
12976 
handleMessage(AssertionInfo const & info,ResultWas::OfType resultType,StringRef const & message,AssertionReaction & reaction)12977     void RunContext::handleMessage(
12978             AssertionInfo const& info,
12979             ResultWas::OfType resultType,
12980             StringRef const& message,
12981             AssertionReaction& reaction
12982     ) {
12983         m_reporter->assertionStarting( info );
12984 
12985         m_lastAssertionInfo = info;
12986 
12987         AssertionResultData data( resultType, LazyExpression( false ) );
12988         data.message = static_cast<std::string>(message);
12989         AssertionResult assertionResult{ m_lastAssertionInfo, data };
12990         assertionEnded( assertionResult );
12991         if( !assertionResult.isOk() )
12992             populateReaction( reaction );
12993     }
handleUnexpectedExceptionNotThrown(AssertionInfo const & info,AssertionReaction & reaction)12994     void RunContext::handleUnexpectedExceptionNotThrown(
12995             AssertionInfo const& info,
12996             AssertionReaction& reaction
12997     ) {
12998         handleNonExpr(info, Catch::ResultWas::DidntThrowException, reaction);
12999     }
13000 
handleUnexpectedInflightException(AssertionInfo const & info,std::string const & message,AssertionReaction & reaction)13001     void RunContext::handleUnexpectedInflightException(
13002             AssertionInfo const& info,
13003             std::string const& message,
13004             AssertionReaction& reaction
13005     ) {
13006         m_lastAssertionInfo = info;
13007 
13008         AssertionResultData data( ResultWas::ThrewException, LazyExpression( false ) );
13009         data.message = message;
13010         AssertionResult assertionResult{ info, data };
13011         assertionEnded( assertionResult );
13012         populateReaction( reaction );
13013     }
13014 
populateReaction(AssertionReaction & reaction)13015     void RunContext::populateReaction( AssertionReaction& reaction ) {
13016         reaction.shouldDebugBreak = m_config->shouldDebugBreak();
13017         reaction.shouldThrow = aborting() || (m_lastAssertionInfo.resultDisposition & ResultDisposition::Normal);
13018     }
13019 
handleIncomplete(AssertionInfo const & info)13020     void RunContext::handleIncomplete(
13021             AssertionInfo const& info
13022     ) {
13023         m_lastAssertionInfo = info;
13024 
13025         AssertionResultData data( ResultWas::ThrewException, LazyExpression( false ) );
13026         data.message = "Exception translation was disabled by CATCH_CONFIG_FAST_COMPILE";
13027         AssertionResult assertionResult{ info, data };
13028         assertionEnded( assertionResult );
13029     }
handleNonExpr(AssertionInfo const & info,ResultWas::OfType resultType,AssertionReaction & reaction)13030     void RunContext::handleNonExpr(
13031             AssertionInfo const &info,
13032             ResultWas::OfType resultType,
13033             AssertionReaction &reaction
13034     ) {
13035         m_lastAssertionInfo = info;
13036 
13037         AssertionResultData data( resultType, LazyExpression( false ) );
13038         AssertionResult assertionResult{ info, data };
13039         assertionEnded( assertionResult );
13040 
13041         if( !assertionResult.isOk() )
13042             populateReaction( reaction );
13043     }
13044 
getResultCapture()13045     IResultCapture& getResultCapture() {
13046         if (auto* capture = getCurrentContext().getResultCapture())
13047             return *capture;
13048         else
13049             CATCH_INTERNAL_ERROR("No result capture instance");
13050     }
13051 
seedRng(IConfig const & config)13052     void seedRng(IConfig const& config) {
13053         if (config.rngSeed() != 0) {
13054             std::srand(config.rngSeed());
13055             rng().seed(config.rngSeed());
13056         }
13057     }
13058 
rngSeed()13059     unsigned int rngSeed() {
13060         return getCurrentContext().getConfig()->rngSeed();
13061     }
13062 
13063 }
13064 // end catch_run_context.cpp
13065 // start catch_section.cpp
13066 
13067 namespace Catch {
13068 
Section(SectionInfo const & info)13069     Section::Section( SectionInfo const& info )
13070     :   m_info( info ),
13071         m_sectionIncluded( getResultCapture().sectionStarted( m_info, m_assertions ) )
13072     {
13073         m_timer.start();
13074     }
13075 
~Section()13076     Section::~Section() {
13077         if( m_sectionIncluded ) {
13078             SectionEndInfo endInfo{ m_info, m_assertions, m_timer.getElapsedSeconds() };
13079             if( uncaught_exceptions() )
13080                 getResultCapture().sectionEndedEarly( endInfo );
13081             else
13082                 getResultCapture().sectionEnded( endInfo );
13083         }
13084     }
13085 
13086     // This indicates whether the section should be executed or not
operator bool() const13087     Section::operator bool() const {
13088         return m_sectionIncluded;
13089     }
13090 
13091 } // end namespace Catch
13092 // end catch_section.cpp
13093 // start catch_section_info.cpp
13094 
13095 namespace Catch {
13096 
SectionInfo(SourceLineInfo const & _lineInfo,std::string const & _name)13097     SectionInfo::SectionInfo
13098         (   SourceLineInfo const& _lineInfo,
13099             std::string const& _name )
13100     :   name( _name ),
13101         lineInfo( _lineInfo )
13102     {}
13103 
13104 } // end namespace Catch
13105 // end catch_section_info.cpp
13106 // start catch_session.cpp
13107 
13108 // start catch_session.h
13109 
13110 #include <memory>
13111 
13112 namespace Catch {
13113 
13114     class Session : NonCopyable {
13115     public:
13116 
13117         Session();
13118         ~Session() override;
13119 
13120         void showHelp() const;
13121         void libIdentify();
13122 
13123         int applyCommandLine( int argc, char const * const * argv );
13124     #if defined(CATCH_CONFIG_WCHAR) && defined(_WIN32) && defined(UNICODE)
13125         int applyCommandLine( int argc, wchar_t const * const * argv );
13126     #endif
13127 
13128         void useConfigData( ConfigData const& configData );
13129 
13130         template<typename CharT>
run(int argc,CharT const * const argv[])13131         int run(int argc, CharT const * const argv[]) {
13132             if (m_startupExceptions)
13133                 return 1;
13134             int returnCode = applyCommandLine(argc, argv);
13135             if (returnCode == 0)
13136                 returnCode = run();
13137             return returnCode;
13138         }
13139 
13140         int run();
13141 
13142         clara::Parser const& cli() const;
13143         void cli( clara::Parser const& newParser );
13144         ConfigData& configData();
13145         Config& config();
13146     private:
13147         int runInternal();
13148 
13149         clara::Parser m_cli;
13150         ConfigData m_configData;
13151         std::shared_ptr<Config> m_config;
13152         bool m_startupExceptions = false;
13153     };
13154 
13155 } // end namespace Catch
13156 
13157 // end catch_session.h
13158 // start catch_version.h
13159 
13160 #include <iosfwd>
13161 
13162 namespace Catch {
13163 
13164     // Versioning information
13165     struct Version {
13166         Version( Version const& ) = delete;
13167         Version& operator=( Version const& ) = delete;
13168         Version(    unsigned int _majorVersion,
13169                     unsigned int _minorVersion,
13170                     unsigned int _patchNumber,
13171                     char const * const _branchName,
13172                     unsigned int _buildNumber );
13173 
13174         unsigned int const majorVersion;
13175         unsigned int const minorVersion;
13176         unsigned int const patchNumber;
13177 
13178         // buildNumber is only used if branchName is not null
13179         char const * const branchName;
13180         unsigned int const buildNumber;
13181 
13182         friend std::ostream& operator << ( std::ostream& os, Version const& version );
13183     };
13184 
13185     Version const& libraryVersion();
13186 }
13187 
13188 // end catch_version.h
13189 #include <cstdlib>
13190 #include <iomanip>
13191 #include <set>
13192 #include <iterator>
13193 
13194 namespace Catch {
13195 
13196     namespace {
13197         const int MaxExitCode = 255;
13198 
createReporter(std::string const & reporterName,IConfigPtr const & config)13199         IStreamingReporterPtr createReporter(std::string const& reporterName, IConfigPtr const& config) {
13200             auto reporter = Catch::getRegistryHub().getReporterRegistry().create(reporterName, config);
13201             CATCH_ENFORCE(reporter, "No reporter registered with name: '" << reporterName << "'");
13202 
13203             return reporter;
13204         }
13205 
makeReporter(std::shared_ptr<Config> const & config)13206         IStreamingReporterPtr makeReporter(std::shared_ptr<Config> const& config) {
13207             if (Catch::getRegistryHub().getReporterRegistry().getListeners().empty()) {
13208                 return createReporter(config->getReporterName(), config);
13209             }
13210 
13211             // On older platforms, returning std::unique_ptr<ListeningReporter>
13212             // when the return type is std::unique_ptr<IStreamingReporter>
13213             // doesn't compile without a std::move call. However, this causes
13214             // a warning on newer platforms. Thus, we have to work around
13215             // it a bit and downcast the pointer manually.
13216             auto ret = std::unique_ptr<IStreamingReporter>(new ListeningReporter);
13217             auto& multi = static_cast<ListeningReporter&>(*ret);
13218             auto const& listeners = Catch::getRegistryHub().getReporterRegistry().getListeners();
13219             for (auto const& listener : listeners) {
13220                 multi.addListener(listener->create(Catch::ReporterConfig(config)));
13221             }
13222             multi.addReporter(createReporter(config->getReporterName(), config));
13223             return ret;
13224         }
13225 
13226         class TestGroup {
13227         public:
TestGroup(std::shared_ptr<Config> const & config)13228             explicit TestGroup(std::shared_ptr<Config> const& config)
13229             : m_config{config}
13230             , m_context{config, makeReporter(config)}
13231             {
13232                 auto const& allTestCases = getAllTestCasesSorted(*m_config);
13233                 m_matches = m_config->testSpec().matchesByFilter(allTestCases, *m_config);
13234                 auto const& invalidArgs = m_config->testSpec().getInvalidArgs();
13235 
13236                 if (m_matches.empty() && invalidArgs.empty()) {
13237                     for (auto const& test : allTestCases)
13238                         if (!test.isHidden())
13239                             m_tests.emplace(&test);
13240                 } else {
13241                     for (auto const& match : m_matches)
13242                         m_tests.insert(match.tests.begin(), match.tests.end());
13243                 }
13244             }
13245 
execute()13246             Totals execute() {
13247                 auto const& invalidArgs = m_config->testSpec().getInvalidArgs();
13248                 Totals totals;
13249                 m_context.testGroupStarting(m_config->name(), 1, 1);
13250                 for (auto const& testCase : m_tests) {
13251                     if (!m_context.aborting())
13252                         totals += m_context.runTest(*testCase);
13253                     else
13254                         m_context.reporter().skipTest(*testCase);
13255                 }
13256 
13257                 for (auto const& match : m_matches) {
13258                     if (match.tests.empty()) {
13259                         m_context.reporter().noMatchingTestCases(match.name);
13260                         totals.error = -1;
13261                     }
13262                 }
13263 
13264                 if (!invalidArgs.empty()) {
13265                     for (auto const& invalidArg: invalidArgs)
13266                          m_context.reporter().reportInvalidArguments(invalidArg);
13267                 }
13268 
13269                 m_context.testGroupEnded(m_config->name(), totals, 1, 1);
13270                 return totals;
13271             }
13272 
13273         private:
13274             using Tests = std::set<TestCase const*>;
13275 
13276             std::shared_ptr<Config> m_config;
13277             RunContext m_context;
13278             Tests m_tests;
13279             TestSpec::Matches m_matches;
13280         };
13281 
applyFilenamesAsTags(Catch::IConfig const & config)13282         void applyFilenamesAsTags(Catch::IConfig const& config) {
13283             auto& tests = const_cast<std::vector<TestCase>&>(getAllTestCasesSorted(config));
13284             for (auto& testCase : tests) {
13285                 auto tags = testCase.tags;
13286 
13287                 std::string filename = testCase.lineInfo.file;
13288                 auto lastSlash = filename.find_last_of("\\/");
13289                 if (lastSlash != std::string::npos) {
13290                     filename.erase(0, lastSlash);
13291                     filename[0] = '#';
13292                 }
13293 
13294                 auto lastDot = filename.find_last_of('.');
13295                 if (lastDot != std::string::npos) {
13296                     filename.erase(lastDot);
13297                 }
13298 
13299                 tags.push_back(std::move(filename));
13300                 setTags(testCase, tags);
13301             }
13302         }
13303 
13304     } // anon namespace
13305 
Session()13306     Session::Session() {
13307         static bool alreadyInstantiated = false;
13308         if( alreadyInstantiated ) {
13309             CATCH_TRY { CATCH_INTERNAL_ERROR( "Only one instance of Catch::Session can ever be used" ); }
13310             CATCH_CATCH_ALL { getMutableRegistryHub().registerStartupException(); }
13311         }
13312 
13313         // There cannot be exceptions at startup in no-exception mode.
13314 #if !defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
13315         const auto& exceptions = getRegistryHub().getStartupExceptionRegistry().getExceptions();
13316         if ( !exceptions.empty() ) {
13317             config();
13318             getCurrentMutableContext().setConfig(m_config);
13319 
13320             m_startupExceptions = true;
13321             Colour colourGuard( Colour::Red );
13322             Catch::cerr() << "Errors occurred during startup!" << '\n';
13323             // iterate over all exceptions and notify user
13324             for ( const auto& ex_ptr : exceptions ) {
13325                 try {
13326                     std::rethrow_exception(ex_ptr);
13327                 } catch ( std::exception const& ex ) {
13328                     Catch::cerr() << Column( ex.what() ).indent(2) << '\n';
13329                 }
13330             }
13331         }
13332 #endif
13333 
13334         alreadyInstantiated = true;
13335         m_cli = makeCommandLineParser( m_configData );
13336     }
~Session()13337     Session::~Session() {
13338         Catch::cleanUp();
13339     }
13340 
showHelp() const13341     void Session::showHelp() const {
13342         Catch::cout()
13343                 << "\nCatch v" << libraryVersion() << "\n"
13344                 << m_cli << std::endl
13345                 << "For more detailed usage please see the project docs\n" << std::endl;
13346     }
libIdentify()13347     void Session::libIdentify() {
13348         Catch::cout()
13349                 << std::left << std::setw(16) << "description: " << "A Catch2 test executable\n"
13350                 << std::left << std::setw(16) << "category: " << "testframework\n"
13351                 << std::left << std::setw(16) << "framework: " << "Catch Test\n"
13352                 << std::left << std::setw(16) << "version: " << libraryVersion() << std::endl;
13353     }
13354 
applyCommandLine(int argc,char const * const * argv)13355     int Session::applyCommandLine( int argc, char const * const * argv ) {
13356         if( m_startupExceptions )
13357             return 1;
13358 
13359         auto result = m_cli.parse( clara::Args( argc, argv ) );
13360         if( !result ) {
13361             config();
13362             getCurrentMutableContext().setConfig(m_config);
13363             Catch::cerr()
13364                 << Colour( Colour::Red )
13365                 << "\nError(s) in input:\n"
13366                 << Column( result.errorMessage() ).indent( 2 )
13367                 << "\n\n";
13368             Catch::cerr() << "Run with -? for usage\n" << std::endl;
13369             return MaxExitCode;
13370         }
13371 
13372         if( m_configData.showHelp )
13373             showHelp();
13374         if( m_configData.libIdentify )
13375             libIdentify();
13376         m_config.reset();
13377         return 0;
13378     }
13379 
13380 #if defined(CATCH_CONFIG_WCHAR) && defined(_WIN32) && defined(UNICODE)
applyCommandLine(int argc,wchar_t const * const * argv)13381     int Session::applyCommandLine( int argc, wchar_t const * const * argv ) {
13382 
13383         char **utf8Argv = new char *[ argc ];
13384 
13385         for ( int i = 0; i < argc; ++i ) {
13386             int bufSize = WideCharToMultiByte( CP_UTF8, 0, argv[i], -1, nullptr, 0, nullptr, nullptr );
13387 
13388             utf8Argv[ i ] = new char[ bufSize ];
13389 
13390             WideCharToMultiByte( CP_UTF8, 0, argv[i], -1, utf8Argv[i], bufSize, nullptr, nullptr );
13391         }
13392 
13393         int returnCode = applyCommandLine( argc, utf8Argv );
13394 
13395         for ( int i = 0; i < argc; ++i )
13396             delete [] utf8Argv[ i ];
13397 
13398         delete [] utf8Argv;
13399 
13400         return returnCode;
13401     }
13402 #endif
13403 
useConfigData(ConfigData const & configData)13404     void Session::useConfigData( ConfigData const& configData ) {
13405         m_configData = configData;
13406         m_config.reset();
13407     }
13408 
run()13409     int Session::run() {
13410         if( ( m_configData.waitForKeypress & WaitForKeypress::BeforeStart ) != 0 ) {
13411             Catch::cout() << "...waiting for enter/ return before starting" << std::endl;
13412             static_cast<void>(std::getchar());
13413         }
13414         int exitCode = runInternal();
13415         if( ( m_configData.waitForKeypress & WaitForKeypress::BeforeExit ) != 0 ) {
13416             Catch::cout() << "...waiting for enter/ return before exiting, with code: " << exitCode << std::endl;
13417             static_cast<void>(std::getchar());
13418         }
13419         return exitCode;
13420     }
13421 
cli() const13422     clara::Parser const& Session::cli() const {
13423         return m_cli;
13424     }
cli(clara::Parser const & newParser)13425     void Session::cli( clara::Parser const& newParser ) {
13426         m_cli = newParser;
13427     }
configData()13428     ConfigData& Session::configData() {
13429         return m_configData;
13430     }
config()13431     Config& Session::config() {
13432         if( !m_config )
13433             m_config = std::make_shared<Config>( m_configData );
13434         return *m_config;
13435     }
13436 
runInternal()13437     int Session::runInternal() {
13438         if( m_startupExceptions )
13439             return 1;
13440 
13441         if (m_configData.showHelp || m_configData.libIdentify) {
13442             return 0;
13443         }
13444 
13445         CATCH_TRY {
13446             config(); // Force config to be constructed
13447 
13448             seedRng( *m_config );
13449 
13450             if( m_configData.filenamesAsTags )
13451                 applyFilenamesAsTags( *m_config );
13452 
13453             // Handle list request
13454             if( Option<std::size_t> listed = list( m_config ) )
13455                 return static_cast<int>( *listed );
13456 
13457             TestGroup tests { m_config };
13458             auto const totals = tests.execute();
13459 
13460             if( m_config->warnAboutNoTests() && totals.error == -1 )
13461                 return 2;
13462 
13463             // Note that on unices only the lower 8 bits are usually used, clamping
13464             // the return value to 255 prevents false negative when some multiple
13465             // of 256 tests has failed
13466             return (std::min) (MaxExitCode, (std::max) (totals.error, static_cast<int>(totals.assertions.failed)));
13467         }
13468 #if !defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
13469         catch( std::exception& ex ) {
13470             Catch::cerr() << ex.what() << std::endl;
13471             return MaxExitCode;
13472         }
13473 #endif
13474     }
13475 
13476 } // end namespace Catch
13477 // end catch_session.cpp
13478 // start catch_singletons.cpp
13479 
13480 #include <vector>
13481 
13482 namespace Catch {
13483 
13484     namespace {
getSingletons()13485         static auto getSingletons() -> std::vector<ISingleton*>*& {
13486             static std::vector<ISingleton*>* g_singletons = nullptr;
13487             if( !g_singletons )
13488                 g_singletons = new std::vector<ISingleton*>();
13489             return g_singletons;
13490         }
13491     }
13492 
~ISingleton()13493     ISingleton::~ISingleton() {}
13494 
addSingleton(ISingleton * singleton)13495     void addSingleton(ISingleton* singleton ) {
13496         getSingletons()->push_back( singleton );
13497     }
cleanupSingletons()13498     void cleanupSingletons() {
13499         auto& singletons = getSingletons();
13500         for( auto singleton : *singletons )
13501             delete singleton;
13502         delete singletons;
13503         singletons = nullptr;
13504     }
13505 
13506 } // namespace Catch
13507 // end catch_singletons.cpp
13508 // start catch_startup_exception_registry.cpp
13509 
13510 #if !defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
13511 namespace Catch {
add(std::exception_ptr const & exception)13512 void StartupExceptionRegistry::add( std::exception_ptr const& exception ) noexcept {
13513         CATCH_TRY {
13514             m_exceptions.push_back(exception);
13515         } CATCH_CATCH_ALL {
13516             // If we run out of memory during start-up there's really not a lot more we can do about it
13517             std::terminate();
13518         }
13519     }
13520 
getExceptions() const13521     std::vector<std::exception_ptr> const& StartupExceptionRegistry::getExceptions() const noexcept {
13522         return m_exceptions;
13523     }
13524 
13525 } // end namespace Catch
13526 #endif
13527 // end catch_startup_exception_registry.cpp
13528 // start catch_stream.cpp
13529 
13530 #include <cstdio>
13531 #include <iostream>
13532 #include <fstream>
13533 #include <sstream>
13534 #include <vector>
13535 #include <memory>
13536 
13537 namespace Catch {
13538 
13539     Catch::IStream::~IStream() = default;
13540 
13541     namespace Detail { namespace {
13542         template<typename WriterF, std::size_t bufferSize=256>
13543         class StreamBufImpl : public std::streambuf {
13544             char data[bufferSize];
13545             WriterF m_writer;
13546 
13547         public:
StreamBufImpl()13548             StreamBufImpl() {
13549                 setp( data, data + sizeof(data) );
13550             }
13551 
~StreamBufImpl()13552             ~StreamBufImpl() noexcept {
13553                 StreamBufImpl::sync();
13554             }
13555 
13556         private:
overflow(int c)13557             int overflow( int c ) override {
13558                 sync();
13559 
13560                 if( c != EOF ) {
13561                     if( pbase() == epptr() )
13562                         m_writer( std::string( 1, static_cast<char>( c ) ) );
13563                     else
13564                         sputc( static_cast<char>( c ) );
13565                 }
13566                 return 0;
13567             }
13568 
sync()13569             int sync() override {
13570                 if( pbase() != pptr() ) {
13571                     m_writer( std::string( pbase(), static_cast<std::string::size_type>( pptr() - pbase() ) ) );
13572                     setp( pbase(), epptr() );
13573                 }
13574                 return 0;
13575             }
13576         };
13577 
13578         ///////////////////////////////////////////////////////////////////////////
13579 
13580         struct OutputDebugWriter {
13581 
operator ()Catch::Detail::__anon3134d1e13a11::OutputDebugWriter13582             void operator()( std::string const&str ) {
13583                 writeToDebugConsole( str );
13584             }
13585         };
13586 
13587         ///////////////////////////////////////////////////////////////////////////
13588 
13589         class FileStream : public IStream {
13590             mutable std::ofstream m_ofs;
13591         public:
FileStream(StringRef filename)13592             FileStream( StringRef filename ) {
13593                 m_ofs.open( filename.c_str() );
13594                 CATCH_ENFORCE( !m_ofs.fail(), "Unable to open file: '" << filename << "'" );
13595             }
13596             ~FileStream() override = default;
13597         public: // IStream
stream() const13598             std::ostream& stream() const override {
13599                 return m_ofs;
13600             }
13601         };
13602 
13603         ///////////////////////////////////////////////////////////////////////////
13604 
13605         class CoutStream : public IStream {
13606             mutable std::ostream m_os;
13607         public:
13608             // Store the streambuf from cout up-front because
13609             // cout may get redirected when running tests
CoutStream()13610             CoutStream() : m_os( Catch::cout().rdbuf() ) {}
13611             ~CoutStream() override = default;
13612 
13613         public: // IStream
stream() const13614             std::ostream& stream() const override { return m_os; }
13615         };
13616 
13617         ///////////////////////////////////////////////////////////////////////////
13618 
13619         class DebugOutStream : public IStream {
13620             std::unique_ptr<StreamBufImpl<OutputDebugWriter>> m_streamBuf;
13621             mutable std::ostream m_os;
13622         public:
DebugOutStream()13623             DebugOutStream()
13624             :   m_streamBuf( new StreamBufImpl<OutputDebugWriter>() ),
13625                 m_os( m_streamBuf.get() )
13626             {}
13627 
13628             ~DebugOutStream() override = default;
13629 
13630         public: // IStream
stream() const13631             std::ostream& stream() const override { return m_os; }
13632         };
13633 
13634     }} // namespace anon::detail
13635 
13636     ///////////////////////////////////////////////////////////////////////////
13637 
makeStream(StringRef const & filename)13638     auto makeStream( StringRef const &filename ) -> IStream const* {
13639         if( filename.empty() )
13640             return new Detail::CoutStream();
13641         else if( filename[0] == '%' ) {
13642             if( filename == "%debug" )
13643                 return new Detail::DebugOutStream();
13644             else
13645                 CATCH_ERROR( "Unrecognised stream: '" << filename << "'" );
13646         }
13647         else
13648             return new Detail::FileStream( filename );
13649     }
13650 
13651     // This class encapsulates the idea of a pool of ostringstreams that can be reused.
13652     struct StringStreams {
13653         std::vector<std::unique_ptr<std::ostringstream>> m_streams;
13654         std::vector<std::size_t> m_unused;
13655         std::ostringstream m_referenceStream; // Used for copy state/ flags from
13656 
addCatch::StringStreams13657         auto add() -> std::size_t {
13658             if( m_unused.empty() ) {
13659                 m_streams.push_back( std::unique_ptr<std::ostringstream>( new std::ostringstream ) );
13660                 return m_streams.size()-1;
13661             }
13662             else {
13663                 auto index = m_unused.back();
13664                 m_unused.pop_back();
13665                 return index;
13666             }
13667         }
13668 
releaseCatch::StringStreams13669         void release( std::size_t index ) {
13670             m_streams[index]->copyfmt( m_referenceStream ); // Restore initial flags and other state
13671             m_unused.push_back(index);
13672         }
13673     };
13674 
ReusableStringStream()13675     ReusableStringStream::ReusableStringStream()
13676     :   m_index( Singleton<StringStreams>::getMutable().add() ),
13677         m_oss( Singleton<StringStreams>::getMutable().m_streams[m_index].get() )
13678     {}
13679 
~ReusableStringStream()13680     ReusableStringStream::~ReusableStringStream() {
13681         static_cast<std::ostringstream*>( m_oss )->str("");
13682         m_oss->clear();
13683         Singleton<StringStreams>::getMutable().release( m_index );
13684     }
13685 
str() const13686     auto ReusableStringStream::str() const -> std::string {
13687         return static_cast<std::ostringstream*>( m_oss )->str();
13688     }
13689 
13690     ///////////////////////////////////////////////////////////////////////////
13691 
13692 #ifndef CATCH_CONFIG_NOSTDOUT // If you #define this you must implement these functions
cout()13693     std::ostream& cout() { return std::cout; }
cerr()13694     std::ostream& cerr() { return std::cerr; }
clog()13695     std::ostream& clog() { return std::clog; }
13696 #endif
13697 }
13698 // end catch_stream.cpp
13699 // start catch_string_manip.cpp
13700 
13701 #include <algorithm>
13702 #include <ostream>
13703 #include <cstring>
13704 #include <cctype>
13705 #include <vector>
13706 
13707 namespace Catch {
13708 
13709     namespace {
toLowerCh(char c)13710         char toLowerCh(char c) {
13711             return static_cast<char>( std::tolower( static_cast<unsigned char>(c) ) );
13712         }
13713     }
13714 
startsWith(std::string const & s,std::string const & prefix)13715     bool startsWith( std::string const& s, std::string const& prefix ) {
13716         return s.size() >= prefix.size() && std::equal(prefix.begin(), prefix.end(), s.begin());
13717     }
startsWith(std::string const & s,char prefix)13718     bool startsWith( std::string const& s, char prefix ) {
13719         return !s.empty() && s[0] == prefix;
13720     }
endsWith(std::string const & s,std::string const & suffix)13721     bool endsWith( std::string const& s, std::string const& suffix ) {
13722         return s.size() >= suffix.size() && std::equal(suffix.rbegin(), suffix.rend(), s.rbegin());
13723     }
endsWith(std::string const & s,char suffix)13724     bool endsWith( std::string const& s, char suffix ) {
13725         return !s.empty() && s[s.size()-1] == suffix;
13726     }
contains(std::string const & s,std::string const & infix)13727     bool contains( std::string const& s, std::string const& infix ) {
13728         return s.find( infix ) != std::string::npos;
13729     }
toLowerInPlace(std::string & s)13730     void toLowerInPlace( std::string& s ) {
13731         std::transform( s.begin(), s.end(), s.begin(), toLowerCh );
13732     }
toLower(std::string const & s)13733     std::string toLower( std::string const& s ) {
13734         std::string lc = s;
13735         toLowerInPlace( lc );
13736         return lc;
13737     }
trim(std::string const & str)13738     std::string trim( std::string const& str ) {
13739         static char const* whitespaceChars = "\n\r\t ";
13740         std::string::size_type start = str.find_first_not_of( whitespaceChars );
13741         std::string::size_type end = str.find_last_not_of( whitespaceChars );
13742 
13743         return start != std::string::npos ? str.substr( start, 1+end-start ) : std::string();
13744     }
13745 
trim(StringRef ref)13746     StringRef trim(StringRef ref) {
13747         const auto is_ws = [](char c) {
13748             return c == ' ' || c == '\t' || c == '\n' || c == '\r';
13749         };
13750         size_t real_begin = 0;
13751         while (real_begin < ref.size() && is_ws(ref[real_begin])) { ++real_begin; }
13752         size_t real_end = ref.size();
13753         while (real_end > real_begin && is_ws(ref[real_end - 1])) { --real_end; }
13754 
13755         return ref.substr(real_begin, real_end - real_begin);
13756     }
13757 
replaceInPlace(std::string & str,std::string const & replaceThis,std::string const & withThis)13758     bool replaceInPlace( std::string& str, std::string const& replaceThis, std::string const& withThis ) {
13759         bool replaced = false;
13760         std::size_t i = str.find( replaceThis );
13761         while( i != std::string::npos ) {
13762             replaced = true;
13763             str = str.substr( 0, i ) + withThis + str.substr( i+replaceThis.size() );
13764             if( i < str.size()-withThis.size() )
13765                 i = str.find( replaceThis, i+withThis.size() );
13766             else
13767                 i = std::string::npos;
13768         }
13769         return replaced;
13770     }
13771 
splitStringRef(StringRef str,char delimiter)13772     std::vector<StringRef> splitStringRef( StringRef str, char delimiter ) {
13773         std::vector<StringRef> subStrings;
13774         std::size_t start = 0;
13775         for(std::size_t pos = 0; pos < str.size(); ++pos ) {
13776             if( str[pos] == delimiter ) {
13777                 if( pos - start > 1 )
13778                     subStrings.push_back( str.substr( start, pos-start ) );
13779                 start = pos+1;
13780             }
13781         }
13782         if( start < str.size() )
13783             subStrings.push_back( str.substr( start, str.size()-start ) );
13784         return subStrings;
13785     }
13786 
pluralise(std::size_t count,std::string const & label)13787     pluralise::pluralise( std::size_t count, std::string const& label )
13788     :   m_count( count ),
13789         m_label( label )
13790     {}
13791 
operator <<(std::ostream & os,pluralise const & pluraliser)13792     std::ostream& operator << ( std::ostream& os, pluralise const& pluraliser ) {
13793         os << pluraliser.m_count << ' ' << pluraliser.m_label;
13794         if( pluraliser.m_count != 1 )
13795             os << 's';
13796         return os;
13797     }
13798 
13799 }
13800 // end catch_string_manip.cpp
13801 // start catch_stringref.cpp
13802 
13803 #include <algorithm>
13804 #include <ostream>
13805 #include <cstring>
13806 #include <cstdint>
13807 
13808 namespace Catch {
StringRef(char const * rawChars)13809     StringRef::StringRef( char const* rawChars ) noexcept
13810     : StringRef( rawChars, static_cast<StringRef::size_type>(std::strlen(rawChars) ) )
13811     {}
13812 
c_str() const13813     auto StringRef::c_str() const -> char const* {
13814         CATCH_ENFORCE(isNullTerminated(), "Called StringRef::c_str() on a non-null-terminated instance");
13815         return m_start;
13816     }
data() const13817     auto StringRef::data() const noexcept -> char const* {
13818         return m_start;
13819     }
13820 
substr(size_type start,size_type size) const13821     auto StringRef::substr( size_type start, size_type size ) const noexcept -> StringRef {
13822         if (start < m_size) {
13823             return StringRef(m_start + start, (std::min)(m_size - start, size));
13824         } else {
13825             return StringRef();
13826         }
13827     }
operator ==(StringRef const & other) const13828     auto StringRef::operator == ( StringRef const& other ) const noexcept -> bool {
13829         return m_size == other.m_size
13830             && (std::memcmp( m_start, other.m_start, m_size ) == 0);
13831     }
13832 
operator <<(std::ostream & os,StringRef const & str)13833     auto operator << ( std::ostream& os, StringRef const& str ) -> std::ostream& {
13834         return os.write(str.data(), str.size());
13835     }
13836 
operator +=(std::string & lhs,StringRef const & rhs)13837     auto operator+=( std::string& lhs, StringRef const& rhs ) -> std::string& {
13838         lhs.append(rhs.data(), rhs.size());
13839         return lhs;
13840     }
13841 
13842 } // namespace Catch
13843 // end catch_stringref.cpp
13844 // start catch_tag_alias.cpp
13845 
13846 namespace Catch {
TagAlias(std::string const & _tag,SourceLineInfo _lineInfo)13847     TagAlias::TagAlias(std::string const & _tag, SourceLineInfo _lineInfo): tag(_tag), lineInfo(_lineInfo) {}
13848 }
13849 // end catch_tag_alias.cpp
13850 // start catch_tag_alias_autoregistrar.cpp
13851 
13852 namespace Catch {
13853 
RegistrarForTagAliases(char const * alias,char const * tag,SourceLineInfo const & lineInfo)13854     RegistrarForTagAliases::RegistrarForTagAliases(char const* alias, char const* tag, SourceLineInfo const& lineInfo) {
13855         CATCH_TRY {
13856             getMutableRegistryHub().registerTagAlias(alias, tag, lineInfo);
13857         } CATCH_CATCH_ALL {
13858             // Do not throw when constructing global objects, instead register the exception to be processed later
13859             getMutableRegistryHub().registerStartupException();
13860         }
13861     }
13862 
13863 }
13864 // end catch_tag_alias_autoregistrar.cpp
13865 // start catch_tag_alias_registry.cpp
13866 
13867 #include <sstream>
13868 
13869 namespace Catch {
13870 
~TagAliasRegistry()13871     TagAliasRegistry::~TagAliasRegistry() {}
13872 
find(std::string const & alias) const13873     TagAlias const* TagAliasRegistry::find( std::string const& alias ) const {
13874         auto it = m_registry.find( alias );
13875         if( it != m_registry.end() )
13876             return &(it->second);
13877         else
13878             return nullptr;
13879     }
13880 
expandAliases(std::string const & unexpandedTestSpec) const13881     std::string TagAliasRegistry::expandAliases( std::string const& unexpandedTestSpec ) const {
13882         std::string expandedTestSpec = unexpandedTestSpec;
13883         for( auto const& registryKvp : m_registry ) {
13884             std::size_t pos = expandedTestSpec.find( registryKvp.first );
13885             if( pos != std::string::npos ) {
13886                 expandedTestSpec =  expandedTestSpec.substr( 0, pos ) +
13887                                     registryKvp.second.tag +
13888                                     expandedTestSpec.substr( pos + registryKvp.first.size() );
13889             }
13890         }
13891         return expandedTestSpec;
13892     }
13893 
add(std::string const & alias,std::string const & tag,SourceLineInfo const & lineInfo)13894     void TagAliasRegistry::add( std::string const& alias, std::string const& tag, SourceLineInfo const& lineInfo ) {
13895         CATCH_ENFORCE( startsWith(alias, "[@") && endsWith(alias, ']'),
13896                       "error: tag alias, '" << alias << "' is not of the form [@alias name].\n" << lineInfo );
13897 
13898         CATCH_ENFORCE( m_registry.insert(std::make_pair(alias, TagAlias(tag, lineInfo))).second,
13899                       "error: tag alias, '" << alias << "' already registered.\n"
13900                       << "\tFirst seen at: " << find(alias)->lineInfo << "\n"
13901                       << "\tRedefined at: " << lineInfo );
13902     }
13903 
~ITagAliasRegistry()13904     ITagAliasRegistry::~ITagAliasRegistry() {}
13905 
get()13906     ITagAliasRegistry const& ITagAliasRegistry::get() {
13907         return getRegistryHub().getTagAliasRegistry();
13908     }
13909 
13910 } // end namespace Catch
13911 // end catch_tag_alias_registry.cpp
13912 // start catch_test_case_info.cpp
13913 
13914 #include <cctype>
13915 #include <exception>
13916 #include <algorithm>
13917 #include <sstream>
13918 
13919 namespace Catch {
13920 
13921     namespace {
parseSpecialTag(std::string const & tag)13922         TestCaseInfo::SpecialProperties parseSpecialTag( std::string const& tag ) {
13923             if( startsWith( tag, '.' ) ||
13924                 tag == "!hide" )
13925                 return TestCaseInfo::IsHidden;
13926             else if( tag == "!throws" )
13927                 return TestCaseInfo::Throws;
13928             else if( tag == "!shouldfail" )
13929                 return TestCaseInfo::ShouldFail;
13930             else if( tag == "!mayfail" )
13931                 return TestCaseInfo::MayFail;
13932             else if( tag == "!nonportable" )
13933                 return TestCaseInfo::NonPortable;
13934             else if( tag == "!benchmark" )
13935                 return static_cast<TestCaseInfo::SpecialProperties>( TestCaseInfo::Benchmark | TestCaseInfo::IsHidden );
13936             else
13937                 return TestCaseInfo::None;
13938         }
isReservedTag(std::string const & tag)13939         bool isReservedTag( std::string const& tag ) {
13940             return parseSpecialTag( tag ) == TestCaseInfo::None && tag.size() > 0 && !std::isalnum( static_cast<unsigned char>(tag[0]) );
13941         }
enforceNotReservedTag(std::string const & tag,SourceLineInfo const & _lineInfo)13942         void enforceNotReservedTag( std::string const& tag, SourceLineInfo const& _lineInfo ) {
13943             CATCH_ENFORCE( !isReservedTag(tag),
13944                           "Tag name: [" << tag << "] is not allowed.\n"
13945                           << "Tag names starting with non alphanumeric characters are reserved\n"
13946                           << _lineInfo );
13947         }
13948     }
13949 
makeTestCase(ITestInvoker * _testCase,std::string const & _className,NameAndTags const & nameAndTags,SourceLineInfo const & _lineInfo)13950     TestCase makeTestCase(  ITestInvoker* _testCase,
13951                             std::string const& _className,
13952                             NameAndTags const& nameAndTags,
13953                             SourceLineInfo const& _lineInfo )
13954     {
13955         bool isHidden = false;
13956 
13957         // Parse out tags
13958         std::vector<std::string> tags;
13959         std::string desc, tag;
13960         bool inTag = false;
13961         for (char c : nameAndTags.tags) {
13962             if( !inTag ) {
13963                 if( c == '[' )
13964                     inTag = true;
13965                 else
13966                     desc += c;
13967             }
13968             else {
13969                 if( c == ']' ) {
13970                     TestCaseInfo::SpecialProperties prop = parseSpecialTag( tag );
13971                     if( ( prop & TestCaseInfo::IsHidden ) != 0 )
13972                         isHidden = true;
13973                     else if( prop == TestCaseInfo::None )
13974                         enforceNotReservedTag( tag, _lineInfo );
13975 
13976                     // Merged hide tags like `[.approvals]` should be added as
13977                     // `[.][approvals]`. The `[.]` is added at later point, so
13978                     // we only strip the prefix
13979                     if (startsWith(tag, '.') && tag.size() > 1) {
13980                         tag.erase(0, 1);
13981                     }
13982                     tags.push_back( tag );
13983                     tag.clear();
13984                     inTag = false;
13985                 }
13986                 else
13987                     tag += c;
13988             }
13989         }
13990         if( isHidden ) {
13991             // Add all "hidden" tags to make them behave identically
13992             tags.insert( tags.end(), { ".", "!hide" } );
13993         }
13994 
13995         TestCaseInfo info( static_cast<std::string>(nameAndTags.name), _className, desc, tags, _lineInfo );
13996         return TestCase( _testCase, std::move(info) );
13997     }
13998 
setTags(TestCaseInfo & testCaseInfo,std::vector<std::string> tags)13999     void setTags( TestCaseInfo& testCaseInfo, std::vector<std::string> tags ) {
14000         std::sort(begin(tags), end(tags));
14001         tags.erase(std::unique(begin(tags), end(tags)), end(tags));
14002         testCaseInfo.lcaseTags.clear();
14003 
14004         for( auto const& tag : tags ) {
14005             std::string lcaseTag = toLower( tag );
14006             testCaseInfo.properties = static_cast<TestCaseInfo::SpecialProperties>( testCaseInfo.properties | parseSpecialTag( lcaseTag ) );
14007             testCaseInfo.lcaseTags.push_back( lcaseTag );
14008         }
14009         testCaseInfo.tags = std::move(tags);
14010     }
14011 
TestCaseInfo(std::string const & _name,std::string const & _className,std::string const & _description,std::vector<std::string> const & _tags,SourceLineInfo const & _lineInfo)14012     TestCaseInfo::TestCaseInfo( std::string const& _name,
14013                                 std::string const& _className,
14014                                 std::string const& _description,
14015                                 std::vector<std::string> const& _tags,
14016                                 SourceLineInfo const& _lineInfo )
14017     :   name( _name ),
14018         className( _className ),
14019         description( _description ),
14020         lineInfo( _lineInfo ),
14021         properties( None )
14022     {
14023         setTags( *this, _tags );
14024     }
14025 
isHidden() const14026     bool TestCaseInfo::isHidden() const {
14027         return ( properties & IsHidden ) != 0;
14028     }
throws() const14029     bool TestCaseInfo::throws() const {
14030         return ( properties & Throws ) != 0;
14031     }
okToFail() const14032     bool TestCaseInfo::okToFail() const {
14033         return ( properties & (ShouldFail | MayFail ) ) != 0;
14034     }
expectedToFail() const14035     bool TestCaseInfo::expectedToFail() const {
14036         return ( properties & (ShouldFail ) ) != 0;
14037     }
14038 
tagsAsString() const14039     std::string TestCaseInfo::tagsAsString() const {
14040         std::string ret;
14041         // '[' and ']' per tag
14042         std::size_t full_size = 2 * tags.size();
14043         for (const auto& tag : tags) {
14044             full_size += tag.size();
14045         }
14046         ret.reserve(full_size);
14047         for (const auto& tag : tags) {
14048             ret.push_back('[');
14049             ret.append(tag);
14050             ret.push_back(']');
14051         }
14052 
14053         return ret;
14054     }
14055 
TestCase(ITestInvoker * testCase,TestCaseInfo && info)14056     TestCase::TestCase( ITestInvoker* testCase, TestCaseInfo&& info ) : TestCaseInfo( std::move(info) ), test( testCase ) {}
14057 
withName(std::string const & _newName) const14058     TestCase TestCase::withName( std::string const& _newName ) const {
14059         TestCase other( *this );
14060         other.name = _newName;
14061         return other;
14062     }
14063 
invoke() const14064     void TestCase::invoke() const {
14065         test->invoke();
14066     }
14067 
operator ==(TestCase const & other) const14068     bool TestCase::operator == ( TestCase const& other ) const {
14069         return  test.get() == other.test.get() &&
14070                 name == other.name &&
14071                 className == other.className;
14072     }
14073 
operator <(TestCase const & other) const14074     bool TestCase::operator < ( TestCase const& other ) const {
14075         return name < other.name;
14076     }
14077 
getTestCaseInfo() const14078     TestCaseInfo const& TestCase::getTestCaseInfo() const
14079     {
14080         return *this;
14081     }
14082 
14083 } // end namespace Catch
14084 // end catch_test_case_info.cpp
14085 // start catch_test_case_registry_impl.cpp
14086 
14087 #include <algorithm>
14088 #include <sstream>
14089 
14090 namespace Catch {
14091 
14092     namespace {
14093         struct TestHasher {
TestHasherCatch::__anon3134d1e13e11::TestHasher14094             explicit TestHasher(Catch::SimplePcg32& rng) {
14095                 basis = rng();
14096                 basis <<= 32;
14097                 basis |= rng();
14098             }
14099 
14100             uint64_t basis;
14101 
operator ()Catch::__anon3134d1e13e11::TestHasher14102             uint64_t operator()(TestCase const& t) const {
14103                 // Modified FNV-1a hash
14104                 static constexpr uint64_t prime = 1099511628211;
14105                 uint64_t hash = basis;
14106                 for (const char c : t.name) {
14107                     hash ^= c;
14108                     hash *= prime;
14109                 }
14110                 return hash;
14111             }
14112         };
14113     } // end unnamed namespace
14114 
sortTests(IConfig const & config,std::vector<TestCase> const & unsortedTestCases)14115     std::vector<TestCase> sortTests( IConfig const& config, std::vector<TestCase> const& unsortedTestCases ) {
14116         switch( config.runOrder() ) {
14117             case RunTests::InDeclarationOrder:
14118                 // already in declaration order
14119                 break;
14120 
14121             case RunTests::InLexicographicalOrder: {
14122                 std::vector<TestCase> sorted = unsortedTestCases;
14123                 std::sort( sorted.begin(), sorted.end() );
14124                 return sorted;
14125             }
14126 
14127             case RunTests::InRandomOrder: {
14128                 seedRng( config );
14129                 TestHasher h( rng() );
14130 
14131                 using hashedTest = std::pair<uint64_t, TestCase const*>;
14132                 std::vector<hashedTest> indexed_tests;
14133                 indexed_tests.reserve( unsortedTestCases.size() );
14134 
14135                 for (auto const& testCase : unsortedTestCases) {
14136                     indexed_tests.emplace_back(h(testCase), &testCase);
14137                 }
14138 
14139                 std::sort(indexed_tests.begin(), indexed_tests.end(),
14140                           [](hashedTest const& lhs, hashedTest const& rhs) {
14141                           if (lhs.first == rhs.first) {
14142                               return lhs.second->name < rhs.second->name;
14143                           }
14144                           return lhs.first < rhs.first;
14145                 });
14146 
14147                 std::vector<TestCase> sorted;
14148                 sorted.reserve( indexed_tests.size() );
14149 
14150                 for (auto const& hashed : indexed_tests) {
14151                     sorted.emplace_back(*hashed.second);
14152                 }
14153 
14154                 return sorted;
14155             }
14156         }
14157         return unsortedTestCases;
14158     }
14159 
isThrowSafe(TestCase const & testCase,IConfig const & config)14160     bool isThrowSafe( TestCase const& testCase, IConfig const& config ) {
14161         return !testCase.throws() || config.allowThrows();
14162     }
14163 
matchTest(TestCase const & testCase,TestSpec const & testSpec,IConfig const & config)14164     bool matchTest( TestCase const& testCase, TestSpec const& testSpec, IConfig const& config ) {
14165         return testSpec.matches( testCase ) && isThrowSafe( testCase, config );
14166     }
14167 
enforceNoDuplicateTestCases(std::vector<TestCase> const & functions)14168     void enforceNoDuplicateTestCases( std::vector<TestCase> const& functions ) {
14169         std::set<TestCase> seenFunctions;
14170         for( auto const& function : functions ) {
14171             auto prev = seenFunctions.insert( function );
14172             CATCH_ENFORCE( prev.second,
14173                     "error: TEST_CASE( \"" << function.name << "\" ) already defined.\n"
14174                     << "\tFirst seen at " << prev.first->getTestCaseInfo().lineInfo << "\n"
14175                     << "\tRedefined at " << function.getTestCaseInfo().lineInfo );
14176         }
14177     }
14178 
filterTests(std::vector<TestCase> const & testCases,TestSpec const & testSpec,IConfig const & config)14179     std::vector<TestCase> filterTests( std::vector<TestCase> const& testCases, TestSpec const& testSpec, IConfig const& config ) {
14180         std::vector<TestCase> filtered;
14181         filtered.reserve( testCases.size() );
14182         for (auto const& testCase : testCases) {
14183             if ((!testSpec.hasFilters() && !testCase.isHidden()) ||
14184                 (testSpec.hasFilters() && matchTest(testCase, testSpec, config))) {
14185                 filtered.push_back(testCase);
14186             }
14187         }
14188         return filtered;
14189     }
getAllTestCasesSorted(IConfig const & config)14190     std::vector<TestCase> const& getAllTestCasesSorted( IConfig const& config ) {
14191         return getRegistryHub().getTestCaseRegistry().getAllTestsSorted( config );
14192     }
14193 
registerTest(TestCase const & testCase)14194     void TestRegistry::registerTest( TestCase const& testCase ) {
14195         std::string name = testCase.getTestCaseInfo().name;
14196         if( name.empty() ) {
14197             ReusableStringStream rss;
14198             rss << "Anonymous test case " << ++m_unnamedCount;
14199             return registerTest( testCase.withName( rss.str() ) );
14200         }
14201         m_functions.push_back( testCase );
14202     }
14203 
getAllTests() const14204     std::vector<TestCase> const& TestRegistry::getAllTests() const {
14205         return m_functions;
14206     }
getAllTestsSorted(IConfig const & config) const14207     std::vector<TestCase> const& TestRegistry::getAllTestsSorted( IConfig const& config ) const {
14208         if( m_sortedFunctions.empty() )
14209             enforceNoDuplicateTestCases( m_functions );
14210 
14211         if(  m_currentSortOrder != config.runOrder() || m_sortedFunctions.empty() ) {
14212             m_sortedFunctions = sortTests( config, m_functions );
14213             m_currentSortOrder = config.runOrder();
14214         }
14215         return m_sortedFunctions;
14216     }
14217 
14218     ///////////////////////////////////////////////////////////////////////////
TestInvokerAsFunction(void (* testAsFunction)())14219     TestInvokerAsFunction::TestInvokerAsFunction( void(*testAsFunction)() ) noexcept : m_testAsFunction( testAsFunction ) {}
14220 
invoke() const14221     void TestInvokerAsFunction::invoke() const {
14222         m_testAsFunction();
14223     }
14224 
extractClassName(StringRef const & classOrQualifiedMethodName)14225     std::string extractClassName( StringRef const& classOrQualifiedMethodName ) {
14226         std::string className(classOrQualifiedMethodName);
14227         if( startsWith( className, '&' ) )
14228         {
14229             std::size_t lastColons = className.rfind( "::" );
14230             std::size_t penultimateColons = className.rfind( "::", lastColons-1 );
14231             if( penultimateColons == std::string::npos )
14232                 penultimateColons = 1;
14233             className = className.substr( penultimateColons, lastColons-penultimateColons );
14234         }
14235         return className;
14236     }
14237 
14238 } // end namespace Catch
14239 // end catch_test_case_registry_impl.cpp
14240 // start catch_test_case_tracker.cpp
14241 
14242 #include <algorithm>
14243 #include <cassert>
14244 #include <stdexcept>
14245 #include <memory>
14246 #include <sstream>
14247 
14248 #if defined(__clang__)
14249 #    pragma clang diagnostic push
14250 #    pragma clang diagnostic ignored "-Wexit-time-destructors"
14251 #endif
14252 
14253 namespace Catch {
14254 namespace TestCaseTracking {
14255 
NameAndLocation(std::string const & _name,SourceLineInfo const & _location)14256     NameAndLocation::NameAndLocation( std::string const& _name, SourceLineInfo const& _location )
14257     :   name( _name ),
14258         location( _location )
14259     {}
14260 
14261     ITracker::~ITracker() = default;
14262 
startRun()14263     ITracker& TrackerContext::startRun() {
14264         m_rootTracker = std::make_shared<SectionTracker>( NameAndLocation( "{root}", CATCH_INTERNAL_LINEINFO ), *this, nullptr );
14265         m_currentTracker = nullptr;
14266         m_runState = Executing;
14267         return *m_rootTracker;
14268     }
14269 
endRun()14270     void TrackerContext::endRun() {
14271         m_rootTracker.reset();
14272         m_currentTracker = nullptr;
14273         m_runState = NotStarted;
14274     }
14275 
startCycle()14276     void TrackerContext::startCycle() {
14277         m_currentTracker = m_rootTracker.get();
14278         m_runState = Executing;
14279     }
completeCycle()14280     void TrackerContext::completeCycle() {
14281         m_runState = CompletedCycle;
14282     }
14283 
completedCycle() const14284     bool TrackerContext::completedCycle() const {
14285         return m_runState == CompletedCycle;
14286     }
currentTracker()14287     ITracker& TrackerContext::currentTracker() {
14288         return *m_currentTracker;
14289     }
setCurrentTracker(ITracker * tracker)14290     void TrackerContext::setCurrentTracker( ITracker* tracker ) {
14291         m_currentTracker = tracker;
14292     }
14293 
TrackerBase(NameAndLocation const & nameAndLocation,TrackerContext & ctx,ITracker * parent)14294     TrackerBase::TrackerBase( NameAndLocation const& nameAndLocation, TrackerContext& ctx, ITracker* parent ):
14295         ITracker(nameAndLocation),
14296         m_ctx( ctx ),
14297         m_parent( parent )
14298     {}
14299 
isComplete() const14300     bool TrackerBase::isComplete() const {
14301         return m_runState == CompletedSuccessfully || m_runState == Failed;
14302     }
isSuccessfullyCompleted() const14303     bool TrackerBase::isSuccessfullyCompleted() const {
14304         return m_runState == CompletedSuccessfully;
14305     }
isOpen() const14306     bool TrackerBase::isOpen() const {
14307         return m_runState != NotStarted && !isComplete();
14308     }
hasChildren() const14309     bool TrackerBase::hasChildren() const {
14310         return !m_children.empty();
14311     }
14312 
addChild(ITrackerPtr const & child)14313     void TrackerBase::addChild( ITrackerPtr const& child ) {
14314         m_children.push_back( child );
14315     }
14316 
findChild(NameAndLocation const & nameAndLocation)14317     ITrackerPtr TrackerBase::findChild( NameAndLocation const& nameAndLocation ) {
14318         auto it = std::find_if( m_children.begin(), m_children.end(),
14319             [&nameAndLocation]( ITrackerPtr const& tracker ){
14320                 return
14321                     tracker->nameAndLocation().location == nameAndLocation.location &&
14322                     tracker->nameAndLocation().name == nameAndLocation.name;
14323             } );
14324         return( it != m_children.end() )
14325             ? *it
14326             : nullptr;
14327     }
parent()14328     ITracker& TrackerBase::parent() {
14329         assert( m_parent ); // Should always be non-null except for root
14330         return *m_parent;
14331     }
14332 
openChild()14333     void TrackerBase::openChild() {
14334         if( m_runState != ExecutingChildren ) {
14335             m_runState = ExecutingChildren;
14336             if( m_parent )
14337                 m_parent->openChild();
14338         }
14339     }
14340 
isSectionTracker() const14341     bool TrackerBase::isSectionTracker() const { return false; }
isGeneratorTracker() const14342     bool TrackerBase::isGeneratorTracker() const { return false; }
14343 
open()14344     void TrackerBase::open() {
14345         m_runState = Executing;
14346         moveToThis();
14347         if( m_parent )
14348             m_parent->openChild();
14349     }
14350 
close()14351     void TrackerBase::close() {
14352 
14353         // Close any still open children (e.g. generators)
14354         while( &m_ctx.currentTracker() != this )
14355             m_ctx.currentTracker().close();
14356 
14357         switch( m_runState ) {
14358             case NeedsAnotherRun:
14359                 break;
14360 
14361             case Executing:
14362                 m_runState = CompletedSuccessfully;
14363                 break;
14364             case ExecutingChildren:
14365                 if( std::all_of(m_children.begin(), m_children.end(), [](ITrackerPtr const& t){ return t->isComplete(); }) )
14366                     m_runState = CompletedSuccessfully;
14367                 break;
14368 
14369             case NotStarted:
14370             case CompletedSuccessfully:
14371             case Failed:
14372                 CATCH_INTERNAL_ERROR( "Illogical state: " << m_runState );
14373 
14374             default:
14375                 CATCH_INTERNAL_ERROR( "Unknown state: " << m_runState );
14376         }
14377         moveToParent();
14378         m_ctx.completeCycle();
14379     }
fail()14380     void TrackerBase::fail() {
14381         m_runState = Failed;
14382         if( m_parent )
14383             m_parent->markAsNeedingAnotherRun();
14384         moveToParent();
14385         m_ctx.completeCycle();
14386     }
markAsNeedingAnotherRun()14387     void TrackerBase::markAsNeedingAnotherRun() {
14388         m_runState = NeedsAnotherRun;
14389     }
14390 
moveToParent()14391     void TrackerBase::moveToParent() {
14392         assert( m_parent );
14393         m_ctx.setCurrentTracker( m_parent );
14394     }
moveToThis()14395     void TrackerBase::moveToThis() {
14396         m_ctx.setCurrentTracker( this );
14397     }
14398 
SectionTracker(NameAndLocation const & nameAndLocation,TrackerContext & ctx,ITracker * parent)14399     SectionTracker::SectionTracker( NameAndLocation const& nameAndLocation, TrackerContext& ctx, ITracker* parent )
14400     :   TrackerBase( nameAndLocation, ctx, parent ),
14401         m_trimmed_name(trim(nameAndLocation.name))
14402     {
14403         if( parent ) {
14404             while( !parent->isSectionTracker() )
14405                 parent = &parent->parent();
14406 
14407             SectionTracker& parentSection = static_cast<SectionTracker&>( *parent );
14408             addNextFilters( parentSection.m_filters );
14409         }
14410     }
14411 
isComplete() const14412     bool SectionTracker::isComplete() const {
14413         bool complete = true;
14414 
14415         if (m_filters.empty()
14416             || m_filters[0] == ""
14417             || std::find(m_filters.begin(), m_filters.end(), m_trimmed_name) != m_filters.end()) {
14418             complete = TrackerBase::isComplete();
14419         }
14420         return complete;
14421     }
14422 
isSectionTracker() const14423     bool SectionTracker::isSectionTracker() const { return true; }
14424 
acquire(TrackerContext & ctx,NameAndLocation const & nameAndLocation)14425     SectionTracker& SectionTracker::acquire( TrackerContext& ctx, NameAndLocation const& nameAndLocation ) {
14426         std::shared_ptr<SectionTracker> section;
14427 
14428         ITracker& currentTracker = ctx.currentTracker();
14429         if( ITrackerPtr childTracker = currentTracker.findChild( nameAndLocation ) ) {
14430             assert( childTracker );
14431             assert( childTracker->isSectionTracker() );
14432             section = std::static_pointer_cast<SectionTracker>( childTracker );
14433         }
14434         else {
14435             section = std::make_shared<SectionTracker>( nameAndLocation, ctx, &currentTracker );
14436             currentTracker.addChild( section );
14437         }
14438         if( !ctx.completedCycle() )
14439             section->tryOpen();
14440         return *section;
14441     }
14442 
tryOpen()14443     void SectionTracker::tryOpen() {
14444         if( !isComplete() )
14445             open();
14446     }
14447 
addInitialFilters(std::vector<std::string> const & filters)14448     void SectionTracker::addInitialFilters( std::vector<std::string> const& filters ) {
14449         if( !filters.empty() ) {
14450             m_filters.reserve( m_filters.size() + filters.size() + 2 );
14451             m_filters.emplace_back(""); // Root - should never be consulted
14452             m_filters.emplace_back(""); // Test Case - not a section filter
14453             m_filters.insert( m_filters.end(), filters.begin(), filters.end() );
14454         }
14455     }
addNextFilters(std::vector<std::string> const & filters)14456     void SectionTracker::addNextFilters( std::vector<std::string> const& filters ) {
14457         if( filters.size() > 1 )
14458             m_filters.insert( m_filters.end(), filters.begin()+1, filters.end() );
14459     }
14460 
14461 } // namespace TestCaseTracking
14462 
14463 using TestCaseTracking::ITracker;
14464 using TestCaseTracking::TrackerContext;
14465 using TestCaseTracking::SectionTracker;
14466 
14467 } // namespace Catch
14468 
14469 #if defined(__clang__)
14470 #    pragma clang diagnostic pop
14471 #endif
14472 // end catch_test_case_tracker.cpp
14473 // start catch_test_registry.cpp
14474 
14475 namespace Catch {
14476 
makeTestInvoker(void (* testAsFunction)())14477     auto makeTestInvoker( void(*testAsFunction)() ) noexcept -> ITestInvoker* {
14478         return new(std::nothrow) TestInvokerAsFunction( testAsFunction );
14479     }
14480 
NameAndTags(StringRef const & name_,StringRef const & tags_)14481     NameAndTags::NameAndTags( StringRef const& name_ , StringRef const& tags_ ) noexcept : name( name_ ), tags( tags_ ) {}
14482 
AutoReg(ITestInvoker * invoker,SourceLineInfo const & lineInfo,StringRef const & classOrMethod,NameAndTags const & nameAndTags)14483     AutoReg::AutoReg( ITestInvoker* invoker, SourceLineInfo const& lineInfo, StringRef const& classOrMethod, NameAndTags const& nameAndTags ) noexcept {
14484         CATCH_TRY {
14485             getMutableRegistryHub()
14486                     .registerTest(
14487                         makeTestCase(
14488                             invoker,
14489                             extractClassName( classOrMethod ),
14490                             nameAndTags,
14491                             lineInfo));
14492         } CATCH_CATCH_ALL {
14493             // Do not throw when constructing global objects, instead register the exception to be processed later
14494             getMutableRegistryHub().registerStartupException();
14495         }
14496     }
14497 
14498     AutoReg::~AutoReg() = default;
14499 }
14500 // end catch_test_registry.cpp
14501 // start catch_test_spec.cpp
14502 
14503 #include <algorithm>
14504 #include <string>
14505 #include <vector>
14506 #include <memory>
14507 
14508 namespace Catch {
14509 
Pattern(std::string const & name)14510     TestSpec::Pattern::Pattern( std::string const& name )
14511     : m_name( name )
14512     {}
14513 
14514     TestSpec::Pattern::~Pattern() = default;
14515 
name() const14516     std::string const& TestSpec::Pattern::name() const {
14517         return m_name;
14518     }
14519 
NamePattern(std::string const & name,std::string const & filterString)14520     TestSpec::NamePattern::NamePattern( std::string const& name, std::string const& filterString )
14521     : Pattern( filterString )
14522     , m_wildcardPattern( toLower( name ), CaseSensitive::No )
14523     {}
14524 
matches(TestCaseInfo const & testCase) const14525     bool TestSpec::NamePattern::matches( TestCaseInfo const& testCase ) const {
14526         return m_wildcardPattern.matches( testCase.name );
14527     }
14528 
TagPattern(std::string const & tag,std::string const & filterString)14529     TestSpec::TagPattern::TagPattern( std::string const& tag, std::string const& filterString )
14530     : Pattern( filterString )
14531     , m_tag( toLower( tag ) )
14532     {}
14533 
matches(TestCaseInfo const & testCase) const14534     bool TestSpec::TagPattern::matches( TestCaseInfo const& testCase ) const {
14535         return std::find(begin(testCase.lcaseTags),
14536                          end(testCase.lcaseTags),
14537                          m_tag) != end(testCase.lcaseTags);
14538     }
14539 
ExcludedPattern(PatternPtr const & underlyingPattern)14540     TestSpec::ExcludedPattern::ExcludedPattern( PatternPtr const& underlyingPattern )
14541     : Pattern( underlyingPattern->name() )
14542     , m_underlyingPattern( underlyingPattern )
14543     {}
14544 
matches(TestCaseInfo const & testCase) const14545     bool TestSpec::ExcludedPattern::matches( TestCaseInfo const& testCase ) const {
14546         return !m_underlyingPattern->matches( testCase );
14547     }
14548 
matches(TestCaseInfo const & testCase) const14549     bool TestSpec::Filter::matches( TestCaseInfo const& testCase ) const {
14550         return std::all_of( m_patterns.begin(), m_patterns.end(), [&]( PatternPtr const& p ){ return p->matches( testCase ); } );
14551     }
14552 
name() const14553     std::string TestSpec::Filter::name() const {
14554         std::string name;
14555         for( auto const& p : m_patterns )
14556             name += p->name();
14557         return name;
14558     }
14559 
hasFilters() const14560     bool TestSpec::hasFilters() const {
14561         return !m_filters.empty();
14562     }
14563 
matches(TestCaseInfo const & testCase) const14564     bool TestSpec::matches( TestCaseInfo const& testCase ) const {
14565         return std::any_of( m_filters.begin(), m_filters.end(), [&]( Filter const& f ){ return f.matches( testCase ); } );
14566     }
14567 
matchesByFilter(std::vector<TestCase> const & testCases,IConfig const & config) const14568     TestSpec::Matches TestSpec::matchesByFilter( std::vector<TestCase> const& testCases, IConfig const& config ) const
14569     {
14570         Matches matches( m_filters.size() );
14571         std::transform( m_filters.begin(), m_filters.end(), matches.begin(), [&]( Filter const& filter ){
14572             std::vector<TestCase const*> currentMatches;
14573             for( auto const& test : testCases )
14574                 if( isThrowSafe( test, config ) && filter.matches( test ) )
14575                     currentMatches.emplace_back( &test );
14576             return FilterMatch{ filter.name(), currentMatches };
14577         } );
14578         return matches;
14579     }
14580 
getInvalidArgs() const14581     const TestSpec::vectorStrings& TestSpec::getInvalidArgs() const{
14582         return  (m_invalidArgs);
14583     }
14584 
14585 }
14586 // end catch_test_spec.cpp
14587 // start catch_test_spec_parser.cpp
14588 
14589 namespace Catch {
14590 
TestSpecParser(ITagAliasRegistry const & tagAliases)14591     TestSpecParser::TestSpecParser( ITagAliasRegistry const& tagAliases ) : m_tagAliases( &tagAliases ) {}
14592 
parse(std::string const & arg)14593     TestSpecParser& TestSpecParser::parse( std::string const& arg ) {
14594         m_mode = None;
14595         m_exclusion = false;
14596         m_arg = m_tagAliases->expandAliases( arg );
14597         m_escapeChars.clear();
14598         m_substring.reserve(m_arg.size());
14599         m_patternName.reserve(m_arg.size());
14600         m_realPatternPos = 0;
14601 
14602         for( m_pos = 0; m_pos < m_arg.size(); ++m_pos )
14603           //if visitChar fails
14604            if( !visitChar( m_arg[m_pos] ) ){
14605                m_testSpec.m_invalidArgs.push_back(arg);
14606                break;
14607            }
14608         endMode();
14609         return *this;
14610     }
testSpec()14611     TestSpec TestSpecParser::testSpec() {
14612         addFilter();
14613         return m_testSpec;
14614     }
visitChar(char c)14615     bool TestSpecParser::visitChar( char c ) {
14616         if( (m_mode != EscapedName) && (c == '\\') ) {
14617             escape();
14618             addCharToPattern(c);
14619             return true;
14620         }else if((m_mode != EscapedName) && (c == ',') )  {
14621             return separate();
14622         }
14623 
14624         switch( m_mode ) {
14625         case None:
14626             if( processNoneChar( c ) )
14627                 return true;
14628             break;
14629         case Name:
14630             processNameChar( c );
14631             break;
14632         case EscapedName:
14633             endMode();
14634             addCharToPattern(c);
14635             return true;
14636         default:
14637         case Tag:
14638         case QuotedName:
14639             if( processOtherChar( c ) )
14640                 return true;
14641             break;
14642         }
14643 
14644         m_substring += c;
14645         if( !isControlChar( c ) ) {
14646             m_patternName += c;
14647             m_realPatternPos++;
14648         }
14649         return true;
14650     }
14651     // Two of the processing methods return true to signal the caller to return
14652     // without adding the given character to the current pattern strings
processNoneChar(char c)14653     bool TestSpecParser::processNoneChar( char c ) {
14654         switch( c ) {
14655         case ' ':
14656             return true;
14657         case '~':
14658             m_exclusion = true;
14659             return false;
14660         case '[':
14661             startNewMode( Tag );
14662             return false;
14663         case '"':
14664             startNewMode( QuotedName );
14665             return false;
14666         default:
14667             startNewMode( Name );
14668             return false;
14669         }
14670     }
processNameChar(char c)14671     void TestSpecParser::processNameChar( char c ) {
14672         if( c == '[' ) {
14673             if( m_substring == "exclude:" )
14674                 m_exclusion = true;
14675             else
14676                 endMode();
14677             startNewMode( Tag );
14678         }
14679     }
processOtherChar(char c)14680     bool TestSpecParser::processOtherChar( char c ) {
14681         if( !isControlChar( c ) )
14682             return false;
14683         m_substring += c;
14684         endMode();
14685         return true;
14686     }
startNewMode(Mode mode)14687     void TestSpecParser::startNewMode( Mode mode ) {
14688         m_mode = mode;
14689     }
endMode()14690     void TestSpecParser::endMode() {
14691         switch( m_mode ) {
14692         case Name:
14693         case QuotedName:
14694             return addNamePattern();
14695         case Tag:
14696             return addTagPattern();
14697         case EscapedName:
14698             revertBackToLastMode();
14699             return;
14700         case None:
14701         default:
14702             return startNewMode( None );
14703         }
14704     }
escape()14705     void TestSpecParser::escape() {
14706         saveLastMode();
14707         m_mode = EscapedName;
14708         m_escapeChars.push_back(m_realPatternPos);
14709     }
isControlChar(char c) const14710     bool TestSpecParser::isControlChar( char c ) const {
14711         switch( m_mode ) {
14712             default:
14713                 return false;
14714             case None:
14715                 return c == '~';
14716             case Name:
14717                 return c == '[';
14718             case EscapedName:
14719                 return true;
14720             case QuotedName:
14721                 return c == '"';
14722             case Tag:
14723                 return c == '[' || c == ']';
14724         }
14725     }
14726 
addFilter()14727     void TestSpecParser::addFilter() {
14728         if( !m_currentFilter.m_patterns.empty() ) {
14729             m_testSpec.m_filters.push_back( m_currentFilter );
14730             m_currentFilter = TestSpec::Filter();
14731         }
14732     }
14733 
saveLastMode()14734     void TestSpecParser::saveLastMode() {
14735       lastMode = m_mode;
14736     }
14737 
revertBackToLastMode()14738     void TestSpecParser::revertBackToLastMode() {
14739       m_mode = lastMode;
14740     }
14741 
separate()14742     bool TestSpecParser::separate() {
14743       if( (m_mode==QuotedName) || (m_mode==Tag) ){
14744          //invalid argument, signal failure to previous scope.
14745          m_mode = None;
14746          m_pos = m_arg.size();
14747          m_substring.clear();
14748          m_patternName.clear();
14749          m_realPatternPos = 0;
14750          return false;
14751       }
14752       endMode();
14753       addFilter();
14754       return true; //success
14755     }
14756 
preprocessPattern()14757     std::string TestSpecParser::preprocessPattern() {
14758         std::string token = m_patternName;
14759         for (std::size_t i = 0; i < m_escapeChars.size(); ++i)
14760             token = token.substr(0, m_escapeChars[i] - i) + token.substr(m_escapeChars[i] - i + 1);
14761         m_escapeChars.clear();
14762         if (startsWith(token, "exclude:")) {
14763             m_exclusion = true;
14764             token = token.substr(8);
14765         }
14766 
14767         m_patternName.clear();
14768         m_realPatternPos = 0;
14769 
14770         return token;
14771     }
14772 
addNamePattern()14773     void TestSpecParser::addNamePattern() {
14774         auto token = preprocessPattern();
14775 
14776         if (!token.empty()) {
14777             TestSpec::PatternPtr pattern = std::make_shared<TestSpec::NamePattern>(token, m_substring);
14778             if (m_exclusion)
14779                 pattern = std::make_shared<TestSpec::ExcludedPattern>(pattern);
14780             m_currentFilter.m_patterns.push_back(pattern);
14781         }
14782         m_substring.clear();
14783         m_exclusion = false;
14784         m_mode = None;
14785     }
14786 
addTagPattern()14787     void TestSpecParser::addTagPattern() {
14788         auto token = preprocessPattern();
14789 
14790         if (!token.empty()) {
14791             // If the tag pattern is the "hide and tag" shorthand (e.g. [.foo])
14792             // we have to create a separate hide tag and shorten the real one
14793             if (token.size() > 1 && token[0] == '.') {
14794                 token.erase(token.begin());
14795                 TestSpec::PatternPtr pattern = std::make_shared<TestSpec::TagPattern>(".", m_substring);
14796                 if (m_exclusion) {
14797                     pattern = std::make_shared<TestSpec::ExcludedPattern>(pattern);
14798                 }
14799                 m_currentFilter.m_patterns.push_back(pattern);
14800             }
14801 
14802             TestSpec::PatternPtr pattern = std::make_shared<TestSpec::TagPattern>(token, m_substring);
14803 
14804             if (m_exclusion) {
14805                 pattern = std::make_shared<TestSpec::ExcludedPattern>(pattern);
14806             }
14807             m_currentFilter.m_patterns.push_back(pattern);
14808         }
14809         m_substring.clear();
14810         m_exclusion = false;
14811         m_mode = None;
14812     }
14813 
parseTestSpec(std::string const & arg)14814     TestSpec parseTestSpec( std::string const& arg ) {
14815         return TestSpecParser( ITagAliasRegistry::get() ).parse( arg ).testSpec();
14816     }
14817 
14818 } // namespace Catch
14819 // end catch_test_spec_parser.cpp
14820 // start catch_timer.cpp
14821 
14822 #include <chrono>
14823 
14824 static const uint64_t nanosecondsInSecond = 1000000000;
14825 
14826 namespace Catch {
14827 
getCurrentNanosecondsSinceEpoch()14828     auto getCurrentNanosecondsSinceEpoch() -> uint64_t {
14829         return std::chrono::duration_cast<std::chrono::nanoseconds>( std::chrono::high_resolution_clock::now().time_since_epoch() ).count();
14830     }
14831 
14832     namespace {
estimateClockResolution()14833         auto estimateClockResolution() -> uint64_t {
14834             uint64_t sum = 0;
14835             static const uint64_t iterations = 1000000;
14836 
14837             auto startTime = getCurrentNanosecondsSinceEpoch();
14838 
14839             for( std::size_t i = 0; i < iterations; ++i ) {
14840 
14841                 uint64_t ticks;
14842                 uint64_t baseTicks = getCurrentNanosecondsSinceEpoch();
14843                 do {
14844                     ticks = getCurrentNanosecondsSinceEpoch();
14845                 } while( ticks == baseTicks );
14846 
14847                 auto delta = ticks - baseTicks;
14848                 sum += delta;
14849 
14850                 // If we have been calibrating for over 3 seconds -- the clock
14851                 // is terrible and we should move on.
14852                 // TBD: How to signal that the measured resolution is probably wrong?
14853                 if (ticks > startTime + 3 * nanosecondsInSecond) {
14854                     return sum / ( i + 1u );
14855                 }
14856             }
14857 
14858             // We're just taking the mean, here. To do better we could take the std. dev and exclude outliers
14859             // - and potentially do more iterations if there's a high variance.
14860             return sum/iterations;
14861         }
14862     }
getEstimatedClockResolution()14863     auto getEstimatedClockResolution() -> uint64_t {
14864         static auto s_resolution = estimateClockResolution();
14865         return s_resolution;
14866     }
14867 
start()14868     void Timer::start() {
14869        m_nanoseconds = getCurrentNanosecondsSinceEpoch();
14870     }
getElapsedNanoseconds() const14871     auto Timer::getElapsedNanoseconds() const -> uint64_t {
14872         return getCurrentNanosecondsSinceEpoch() - m_nanoseconds;
14873     }
getElapsedMicroseconds() const14874     auto Timer::getElapsedMicroseconds() const -> uint64_t {
14875         return getElapsedNanoseconds()/1000;
14876     }
getElapsedMilliseconds() const14877     auto Timer::getElapsedMilliseconds() const -> unsigned int {
14878         return static_cast<unsigned int>(getElapsedMicroseconds()/1000);
14879     }
getElapsedSeconds() const14880     auto Timer::getElapsedSeconds() const -> double {
14881         return getElapsedMicroseconds()/1000000.0;
14882     }
14883 
14884 } // namespace Catch
14885 // end catch_timer.cpp
14886 // start catch_tostring.cpp
14887 
14888 #if defined(__clang__)
14889 #    pragma clang diagnostic push
14890 #    pragma clang diagnostic ignored "-Wexit-time-destructors"
14891 #    pragma clang diagnostic ignored "-Wglobal-constructors"
14892 #endif
14893 
14894 // Enable specific decls locally
14895 #if !defined(CATCH_CONFIG_ENABLE_CHRONO_STRINGMAKER)
14896 #define CATCH_CONFIG_ENABLE_CHRONO_STRINGMAKER
14897 #endif
14898 
14899 #include <cmath>
14900 #include <iomanip>
14901 
14902 namespace Catch {
14903 
14904 namespace Detail {
14905 
14906     const std::string unprintableString = "{?}";
14907 
14908     namespace {
14909         const int hexThreshold = 255;
14910 
14911         struct Endianness {
14912             enum Arch { Big, Little };
14913 
whichCatch::Detail::__anon3134d1e14611::Endianness14914             static Arch which() {
14915                 int one = 1;
14916                 // If the lowest byte we read is non-zero, we can assume
14917                 // that little endian format is used.
14918                 auto value = *reinterpret_cast<char*>(&one);
14919                 return value ? Little : Big;
14920             }
14921         };
14922     }
14923 
rawMemoryToString(const void * object,std::size_t size)14924     std::string rawMemoryToString( const void *object, std::size_t size ) {
14925         // Reverse order for little endian architectures
14926         int i = 0, end = static_cast<int>( size ), inc = 1;
14927         if( Endianness::which() == Endianness::Little ) {
14928             i = end-1;
14929             end = inc = -1;
14930         }
14931 
14932         unsigned char const *bytes = static_cast<unsigned char const *>(object);
14933         ReusableStringStream rss;
14934         rss << "0x" << std::setfill('0') << std::hex;
14935         for( ; i != end; i += inc )
14936              rss << std::setw(2) << static_cast<unsigned>(bytes[i]);
14937        return rss.str();
14938     }
14939 }
14940 
14941 template<typename T>
fpToString(T value,int precision)14942 std::string fpToString( T value, int precision ) {
14943     if (Catch::isnan(value)) {
14944         return "nan";
14945     }
14946 
14947     ReusableStringStream rss;
14948     rss << std::setprecision( precision )
14949         << std::fixed
14950         << value;
14951     std::string d = rss.str();
14952     std::size_t i = d.find_last_not_of( '0' );
14953     if( i != std::string::npos && i != d.size()-1 ) {
14954         if( d[i] == '.' )
14955             i++;
14956         d = d.substr( 0, i+1 );
14957     }
14958     return d;
14959 }
14960 
14961 //// ======================================================= ////
14962 //
14963 //   Out-of-line defs for full specialization of StringMaker
14964 //
14965 //// ======================================================= ////
14966 
convert(const std::string & str)14967 std::string StringMaker<std::string>::convert(const std::string& str) {
14968     if (!getCurrentContext().getConfig()->showInvisibles()) {
14969         return '"' + str + '"';
14970     }
14971 
14972     std::string s("\"");
14973     for (char c : str) {
14974         switch (c) {
14975         case '\n':
14976             s.append("\\n");
14977             break;
14978         case '\t':
14979             s.append("\\t");
14980             break;
14981         default:
14982             s.push_back(c);
14983             break;
14984         }
14985     }
14986     s.append("\"");
14987     return s;
14988 }
14989 
14990 #ifdef CATCH_CONFIG_CPP17_STRING_VIEW
convert(std::string_view str)14991 std::string StringMaker<std::string_view>::convert(std::string_view str) {
14992     return ::Catch::Detail::stringify(std::string{ str });
14993 }
14994 #endif
14995 
convert(char const * str)14996 std::string StringMaker<char const*>::convert(char const* str) {
14997     if (str) {
14998         return ::Catch::Detail::stringify(std::string{ str });
14999     } else {
15000         return{ "{null string}" };
15001     }
15002 }
convert(char * str)15003 std::string StringMaker<char*>::convert(char* str) {
15004     if (str) {
15005         return ::Catch::Detail::stringify(std::string{ str });
15006     } else {
15007         return{ "{null string}" };
15008     }
15009 }
15010 
15011 #ifdef CATCH_CONFIG_WCHAR
convert(const std::wstring & wstr)15012 std::string StringMaker<std::wstring>::convert(const std::wstring& wstr) {
15013     std::string s;
15014     s.reserve(wstr.size());
15015     for (auto c : wstr) {
15016         s += (c <= 0xff) ? static_cast<char>(c) : '?';
15017     }
15018     return ::Catch::Detail::stringify(s);
15019 }
15020 
15021 # ifdef CATCH_CONFIG_CPP17_STRING_VIEW
convert(std::wstring_view str)15022 std::string StringMaker<std::wstring_view>::convert(std::wstring_view str) {
15023     return StringMaker<std::wstring>::convert(std::wstring(str));
15024 }
15025 # endif
15026 
convert(wchar_t const * str)15027 std::string StringMaker<wchar_t const*>::convert(wchar_t const * str) {
15028     if (str) {
15029         return ::Catch::Detail::stringify(std::wstring{ str });
15030     } else {
15031         return{ "{null string}" };
15032     }
15033 }
convert(wchar_t * str)15034 std::string StringMaker<wchar_t *>::convert(wchar_t * str) {
15035     if (str) {
15036         return ::Catch::Detail::stringify(std::wstring{ str });
15037     } else {
15038         return{ "{null string}" };
15039     }
15040 }
15041 #endif
15042 
15043 #if defined(CATCH_CONFIG_CPP17_BYTE)
15044 #include <cstddef>
convert(std::byte value)15045 std::string StringMaker<std::byte>::convert(std::byte value) {
15046     return ::Catch::Detail::stringify(std::to_integer<unsigned long long>(value));
15047 }
15048 #endif // defined(CATCH_CONFIG_CPP17_BYTE)
15049 
convert(int value)15050 std::string StringMaker<int>::convert(int value) {
15051     return ::Catch::Detail::stringify(static_cast<long long>(value));
15052 }
convert(long value)15053 std::string StringMaker<long>::convert(long value) {
15054     return ::Catch::Detail::stringify(static_cast<long long>(value));
15055 }
convert(long long value)15056 std::string StringMaker<long long>::convert(long long value) {
15057     ReusableStringStream rss;
15058     rss << value;
15059     if (value > Detail::hexThreshold) {
15060         rss << " (0x" << std::hex << value << ')';
15061     }
15062     return rss.str();
15063 }
15064 
convert(unsigned int value)15065 std::string StringMaker<unsigned int>::convert(unsigned int value) {
15066     return ::Catch::Detail::stringify(static_cast<unsigned long long>(value));
15067 }
convert(unsigned long value)15068 std::string StringMaker<unsigned long>::convert(unsigned long value) {
15069     return ::Catch::Detail::stringify(static_cast<unsigned long long>(value));
15070 }
convert(unsigned long long value)15071 std::string StringMaker<unsigned long long>::convert(unsigned long long value) {
15072     ReusableStringStream rss;
15073     rss << value;
15074     if (value > Detail::hexThreshold) {
15075         rss << " (0x" << std::hex << value << ')';
15076     }
15077     return rss.str();
15078 }
15079 
convert(bool b)15080 std::string StringMaker<bool>::convert(bool b) {
15081     return b ? "true" : "false";
15082 }
15083 
convert(signed char value)15084 std::string StringMaker<signed char>::convert(signed char value) {
15085     if (value == '\r') {
15086         return "'\\r'";
15087     } else if (value == '\f') {
15088         return "'\\f'";
15089     } else if (value == '\n') {
15090         return "'\\n'";
15091     } else if (value == '\t') {
15092         return "'\\t'";
15093     } else if ('\0' <= value && value < ' ') {
15094         return ::Catch::Detail::stringify(static_cast<unsigned int>(value));
15095     } else {
15096         char chstr[] = "' '";
15097         chstr[1] = value;
15098         return chstr;
15099     }
15100 }
convert(char c)15101 std::string StringMaker<char>::convert(char c) {
15102     return ::Catch::Detail::stringify(static_cast<signed char>(c));
15103 }
convert(unsigned char c)15104 std::string StringMaker<unsigned char>::convert(unsigned char c) {
15105     return ::Catch::Detail::stringify(static_cast<char>(c));
15106 }
15107 
convert(std::nullptr_t)15108 std::string StringMaker<std::nullptr_t>::convert(std::nullptr_t) {
15109     return "nullptr";
15110 }
15111 
15112 int StringMaker<float>::precision = 5;
15113 
convert(float value)15114 std::string StringMaker<float>::convert(float value) {
15115     return fpToString(value, precision) + 'f';
15116 }
15117 
15118 int StringMaker<double>::precision = 10;
15119 
convert(double value)15120 std::string StringMaker<double>::convert(double value) {
15121     return fpToString(value, precision);
15122 }
15123 
symbol()15124 std::string ratio_string<std::atto>::symbol() { return "a"; }
symbol()15125 std::string ratio_string<std::femto>::symbol() { return "f"; }
symbol()15126 std::string ratio_string<std::pico>::symbol() { return "p"; }
symbol()15127 std::string ratio_string<std::nano>::symbol() { return "n"; }
symbol()15128 std::string ratio_string<std::micro>::symbol() { return "u"; }
symbol()15129 std::string ratio_string<std::milli>::symbol() { return "m"; }
15130 
15131 } // end namespace Catch
15132 
15133 #if defined(__clang__)
15134 #    pragma clang diagnostic pop
15135 #endif
15136 
15137 // end catch_tostring.cpp
15138 // start catch_totals.cpp
15139 
15140 namespace Catch {
15141 
operator -(Counts const & other) const15142     Counts Counts::operator - ( Counts const& other ) const {
15143         Counts diff;
15144         diff.passed = passed - other.passed;
15145         diff.failed = failed - other.failed;
15146         diff.failedButOk = failedButOk - other.failedButOk;
15147         return diff;
15148     }
15149 
operator +=(Counts const & other)15150     Counts& Counts::operator += ( Counts const& other ) {
15151         passed += other.passed;
15152         failed += other.failed;
15153         failedButOk += other.failedButOk;
15154         return *this;
15155     }
15156 
total() const15157     std::size_t Counts::total() const {
15158         return passed + failed + failedButOk;
15159     }
allPassed() const15160     bool Counts::allPassed() const {
15161         return failed == 0 && failedButOk == 0;
15162     }
allOk() const15163     bool Counts::allOk() const {
15164         return failed == 0;
15165     }
15166 
operator -(Totals const & other) const15167     Totals Totals::operator - ( Totals const& other ) const {
15168         Totals diff;
15169         diff.assertions = assertions - other.assertions;
15170         diff.testCases = testCases - other.testCases;
15171         return diff;
15172     }
15173 
operator +=(Totals const & other)15174     Totals& Totals::operator += ( Totals const& other ) {
15175         assertions += other.assertions;
15176         testCases += other.testCases;
15177         return *this;
15178     }
15179 
delta(Totals const & prevTotals) const15180     Totals Totals::delta( Totals const& prevTotals ) const {
15181         Totals diff = *this - prevTotals;
15182         if( diff.assertions.failed > 0 )
15183             ++diff.testCases.failed;
15184         else if( diff.assertions.failedButOk > 0 )
15185             ++diff.testCases.failedButOk;
15186         else
15187             ++diff.testCases.passed;
15188         return diff;
15189     }
15190 
15191 }
15192 // end catch_totals.cpp
15193 // start catch_uncaught_exceptions.cpp
15194 
15195 #include <exception>
15196 
15197 namespace Catch {
uncaught_exceptions()15198     bool uncaught_exceptions() {
15199 #if defined(CATCH_CONFIG_DISABLE_EXCEPTIONS)
15200         return false;
15201 #elif defined(CATCH_CONFIG_CPP17_UNCAUGHT_EXCEPTIONS)
15202         return std::uncaught_exceptions() > 0;
15203 #else
15204         return std::uncaught_exception();
15205 #endif
15206   }
15207 } // end namespace Catch
15208 // end catch_uncaught_exceptions.cpp
15209 // start catch_version.cpp
15210 
15211 #include <ostream>
15212 
15213 namespace Catch {
15214 
Version(unsigned int _majorVersion,unsigned int _minorVersion,unsigned int _patchNumber,char const * const _branchName,unsigned int _buildNumber)15215     Version::Version
15216         (   unsigned int _majorVersion,
15217             unsigned int _minorVersion,
15218             unsigned int _patchNumber,
15219             char const * const _branchName,
15220             unsigned int _buildNumber )
15221     :   majorVersion( _majorVersion ),
15222         minorVersion( _minorVersion ),
15223         patchNumber( _patchNumber ),
15224         branchName( _branchName ),
15225         buildNumber( _buildNumber )
15226     {}
15227 
operator <<(std::ostream & os,Version const & version)15228     std::ostream& operator << ( std::ostream& os, Version const& version ) {
15229         os  << version.majorVersion << '.'
15230             << version.minorVersion << '.'
15231             << version.patchNumber;
15232         // branchName is never null -> 0th char is \0 if it is empty
15233         if (version.branchName[0]) {
15234             os << '-' << version.branchName
15235                << '.' << version.buildNumber;
15236         }
15237         return os;
15238     }
15239 
libraryVersion()15240     Version const& libraryVersion() {
15241         static Version version( 2, 13, 0, "", 0 );
15242         return version;
15243     }
15244 
15245 }
15246 // end catch_version.cpp
15247 // start catch_wildcard_pattern.cpp
15248 
15249 namespace Catch {
15250 
WildcardPattern(std::string const & pattern,CaseSensitive::Choice caseSensitivity)15251     WildcardPattern::WildcardPattern( std::string const& pattern,
15252                                       CaseSensitive::Choice caseSensitivity )
15253     :   m_caseSensitivity( caseSensitivity ),
15254         m_pattern( normaliseString( pattern ) )
15255     {
15256         if( startsWith( m_pattern, '*' ) ) {
15257             m_pattern = m_pattern.substr( 1 );
15258             m_wildcard = WildcardAtStart;
15259         }
15260         if( endsWith( m_pattern, '*' ) ) {
15261             m_pattern = m_pattern.substr( 0, m_pattern.size()-1 );
15262             m_wildcard = static_cast<WildcardPosition>( m_wildcard | WildcardAtEnd );
15263         }
15264     }
15265 
matches(std::string const & str) const15266     bool WildcardPattern::matches( std::string const& str ) const {
15267         switch( m_wildcard ) {
15268             case NoWildcard:
15269                 return m_pattern == normaliseString( str );
15270             case WildcardAtStart:
15271                 return endsWith( normaliseString( str ), m_pattern );
15272             case WildcardAtEnd:
15273                 return startsWith( normaliseString( str ), m_pattern );
15274             case WildcardAtBothEnds:
15275                 return contains( normaliseString( str ), m_pattern );
15276             default:
15277                 CATCH_INTERNAL_ERROR( "Unknown enum" );
15278         }
15279     }
15280 
normaliseString(std::string const & str) const15281     std::string WildcardPattern::normaliseString( std::string const& str ) const {
15282         return trim( m_caseSensitivity == CaseSensitive::No ? toLower( str ) : str );
15283     }
15284 }
15285 // end catch_wildcard_pattern.cpp
15286 // start catch_xmlwriter.cpp
15287 
15288 #include <iomanip>
15289 #include <type_traits>
15290 
15291 namespace Catch {
15292 
15293 namespace {
15294 
trailingBytes(unsigned char c)15295     size_t trailingBytes(unsigned char c) {
15296         if ((c & 0xE0) == 0xC0) {
15297             return 2;
15298         }
15299         if ((c & 0xF0) == 0xE0) {
15300             return 3;
15301         }
15302         if ((c & 0xF8) == 0xF0) {
15303             return 4;
15304         }
15305         CATCH_INTERNAL_ERROR("Invalid multibyte utf-8 start byte encountered");
15306     }
15307 
headerValue(unsigned char c)15308     uint32_t headerValue(unsigned char c) {
15309         if ((c & 0xE0) == 0xC0) {
15310             return c & 0x1F;
15311         }
15312         if ((c & 0xF0) == 0xE0) {
15313             return c & 0x0F;
15314         }
15315         if ((c & 0xF8) == 0xF0) {
15316             return c & 0x07;
15317         }
15318         CATCH_INTERNAL_ERROR("Invalid multibyte utf-8 start byte encountered");
15319     }
15320 
hexEscapeChar(std::ostream & os,unsigned char c)15321     void hexEscapeChar(std::ostream& os, unsigned char c) {
15322         std::ios_base::fmtflags f(os.flags());
15323         os << "\\x"
15324             << std::uppercase << std::hex << std::setfill('0') << std::setw(2)
15325             << static_cast<int>(c);
15326         os.flags(f);
15327     }
15328 
shouldNewline(XmlFormatting fmt)15329     bool shouldNewline(XmlFormatting fmt) {
15330         return !!(static_cast<std::underlying_type<XmlFormatting>::type>(fmt & XmlFormatting::Newline));
15331     }
15332 
shouldIndent(XmlFormatting fmt)15333     bool shouldIndent(XmlFormatting fmt) {
15334         return !!(static_cast<std::underlying_type<XmlFormatting>::type>(fmt & XmlFormatting::Indent));
15335     }
15336 
15337 } // anonymous namespace
15338 
operator |(XmlFormatting lhs,XmlFormatting rhs)15339     XmlFormatting operator | (XmlFormatting lhs, XmlFormatting rhs) {
15340         return static_cast<XmlFormatting>(
15341             static_cast<std::underlying_type<XmlFormatting>::type>(lhs) |
15342             static_cast<std::underlying_type<XmlFormatting>::type>(rhs)
15343         );
15344     }
15345 
operator &(XmlFormatting lhs,XmlFormatting rhs)15346     XmlFormatting operator & (XmlFormatting lhs, XmlFormatting rhs) {
15347         return static_cast<XmlFormatting>(
15348             static_cast<std::underlying_type<XmlFormatting>::type>(lhs) &
15349             static_cast<std::underlying_type<XmlFormatting>::type>(rhs)
15350         );
15351     }
15352 
XmlEncode(std::string const & str,ForWhat forWhat)15353     XmlEncode::XmlEncode( std::string const& str, ForWhat forWhat )
15354     :   m_str( str ),
15355         m_forWhat( forWhat )
15356     {}
15357 
encodeTo(std::ostream & os) const15358     void XmlEncode::encodeTo( std::ostream& os ) const {
15359         // Apostrophe escaping not necessary if we always use " to write attributes
15360         // (see: http://www.w3.org/TR/xml/#syntax)
15361 
15362         for( std::size_t idx = 0; idx < m_str.size(); ++ idx ) {
15363             unsigned char c = m_str[idx];
15364             switch (c) {
15365             case '<':   os << "&lt;"; break;
15366             case '&':   os << "&amp;"; break;
15367 
15368             case '>':
15369                 // See: http://www.w3.org/TR/xml/#syntax
15370                 if (idx > 2 && m_str[idx - 1] == ']' && m_str[idx - 2] == ']')
15371                     os << "&gt;";
15372                 else
15373                     os << c;
15374                 break;
15375 
15376             case '\"':
15377                 if (m_forWhat == ForAttributes)
15378                     os << "&quot;";
15379                 else
15380                     os << c;
15381                 break;
15382 
15383             default:
15384                 // Check for control characters and invalid utf-8
15385 
15386                 // Escape control characters in standard ascii
15387                 // see http://stackoverflow.com/questions/404107/why-are-control-characters-illegal-in-xml-1-0
15388                 if (c < 0x09 || (c > 0x0D && c < 0x20) || c == 0x7F) {
15389                     hexEscapeChar(os, c);
15390                     break;
15391                 }
15392 
15393                 // Plain ASCII: Write it to stream
15394                 if (c < 0x7F) {
15395                     os << c;
15396                     break;
15397                 }
15398 
15399                 // UTF-8 territory
15400                 // Check if the encoding is valid and if it is not, hex escape bytes.
15401                 // Important: We do not check the exact decoded values for validity, only the encoding format
15402                 // First check that this bytes is a valid lead byte:
15403                 // This means that it is not encoded as 1111 1XXX
15404                 // Or as 10XX XXXX
15405                 if (c <  0xC0 ||
15406                     c >= 0xF8) {
15407                     hexEscapeChar(os, c);
15408                     break;
15409                 }
15410 
15411                 auto encBytes = trailingBytes(c);
15412                 // Are there enough bytes left to avoid accessing out-of-bounds memory?
15413                 if (idx + encBytes - 1 >= m_str.size()) {
15414                     hexEscapeChar(os, c);
15415                     break;
15416                 }
15417                 // The header is valid, check data
15418                 // The next encBytes bytes must together be a valid utf-8
15419                 // This means: bitpattern 10XX XXXX and the extracted value is sane (ish)
15420                 bool valid = true;
15421                 uint32_t value = headerValue(c);
15422                 for (std::size_t n = 1; n < encBytes; ++n) {
15423                     unsigned char nc = m_str[idx + n];
15424                     valid &= ((nc & 0xC0) == 0x80);
15425                     value = (value << 6) | (nc & 0x3F);
15426                 }
15427 
15428                 if (
15429                     // Wrong bit pattern of following bytes
15430                     (!valid) ||
15431                     // Overlong encodings
15432                     (value < 0x80) ||
15433                     (0x80 <= value && value < 0x800   && encBytes > 2) ||
15434                     (0x800 < value && value < 0x10000 && encBytes > 3) ||
15435                     // Encoded value out of range
15436                     (value >= 0x110000)
15437                     ) {
15438                     hexEscapeChar(os, c);
15439                     break;
15440                 }
15441 
15442                 // If we got here, this is in fact a valid(ish) utf-8 sequence
15443                 for (std::size_t n = 0; n < encBytes; ++n) {
15444                     os << m_str[idx + n];
15445                 }
15446                 idx += encBytes - 1;
15447                 break;
15448             }
15449         }
15450     }
15451 
operator <<(std::ostream & os,XmlEncode const & xmlEncode)15452     std::ostream& operator << ( std::ostream& os, XmlEncode const& xmlEncode ) {
15453         xmlEncode.encodeTo( os );
15454         return os;
15455     }
15456 
ScopedElement(XmlWriter * writer,XmlFormatting fmt)15457     XmlWriter::ScopedElement::ScopedElement( XmlWriter* writer, XmlFormatting fmt )
15458     :   m_writer( writer ),
15459         m_fmt(fmt)
15460     {}
15461 
ScopedElement(ScopedElement && other)15462     XmlWriter::ScopedElement::ScopedElement( ScopedElement&& other ) noexcept
15463     :   m_writer( other.m_writer ),
15464         m_fmt(other.m_fmt)
15465     {
15466         other.m_writer = nullptr;
15467         other.m_fmt = XmlFormatting::None;
15468     }
operator =(ScopedElement && other)15469     XmlWriter::ScopedElement& XmlWriter::ScopedElement::operator=( ScopedElement&& other ) noexcept {
15470         if ( m_writer ) {
15471             m_writer->endElement();
15472         }
15473         m_writer = other.m_writer;
15474         other.m_writer = nullptr;
15475         m_fmt = other.m_fmt;
15476         other.m_fmt = XmlFormatting::None;
15477         return *this;
15478     }
15479 
~ScopedElement()15480     XmlWriter::ScopedElement::~ScopedElement() {
15481         if (m_writer) {
15482             m_writer->endElement(m_fmt);
15483         }
15484     }
15485 
writeText(std::string const & text,XmlFormatting fmt)15486     XmlWriter::ScopedElement& XmlWriter::ScopedElement::writeText( std::string const& text, XmlFormatting fmt ) {
15487         m_writer->writeText( text, fmt );
15488         return *this;
15489     }
15490 
XmlWriter(std::ostream & os)15491     XmlWriter::XmlWriter( std::ostream& os ) : m_os( os )
15492     {
15493         writeDeclaration();
15494     }
15495 
~XmlWriter()15496     XmlWriter::~XmlWriter() {
15497         while (!m_tags.empty()) {
15498             endElement();
15499         }
15500         newlineIfNecessary();
15501     }
15502 
startElement(std::string const & name,XmlFormatting fmt)15503     XmlWriter& XmlWriter::startElement( std::string const& name, XmlFormatting fmt ) {
15504         ensureTagClosed();
15505         newlineIfNecessary();
15506         if (shouldIndent(fmt)) {
15507             m_os << m_indent;
15508             m_indent += "  ";
15509         }
15510         m_os << '<' << name;
15511         m_tags.push_back( name );
15512         m_tagIsOpen = true;
15513         applyFormatting(fmt);
15514         return *this;
15515     }
15516 
scopedElement(std::string const & name,XmlFormatting fmt)15517     XmlWriter::ScopedElement XmlWriter::scopedElement( std::string const& name, XmlFormatting fmt ) {
15518         ScopedElement scoped( this, fmt );
15519         startElement( name, fmt );
15520         return scoped;
15521     }
15522 
endElement(XmlFormatting fmt)15523     XmlWriter& XmlWriter::endElement(XmlFormatting fmt) {
15524         m_indent = m_indent.substr(0, m_indent.size() - 2);
15525 
15526         if( m_tagIsOpen ) {
15527             m_os << "/>";
15528             m_tagIsOpen = false;
15529         } else {
15530             newlineIfNecessary();
15531             if (shouldIndent(fmt)) {
15532                 m_os << m_indent;
15533             }
15534             m_os << "</" << m_tags.back() << ">";
15535         }
15536         m_os << std::flush;
15537         applyFormatting(fmt);
15538         m_tags.pop_back();
15539         return *this;
15540     }
15541 
writeAttribute(std::string const & name,std::string const & attribute)15542     XmlWriter& XmlWriter::writeAttribute( std::string const& name, std::string const& attribute ) {
15543         if( !name.empty() && !attribute.empty() )
15544             m_os << ' ' << name << "=\"" << XmlEncode( attribute, XmlEncode::ForAttributes ) << '"';
15545         return *this;
15546     }
15547 
writeAttribute(std::string const & name,bool attribute)15548     XmlWriter& XmlWriter::writeAttribute( std::string const& name, bool attribute ) {
15549         m_os << ' ' << name << "=\"" << ( attribute ? "true" : "false" ) << '"';
15550         return *this;
15551     }
15552 
writeText(std::string const & text,XmlFormatting fmt)15553     XmlWriter& XmlWriter::writeText( std::string const& text, XmlFormatting fmt) {
15554         if( !text.empty() ){
15555             bool tagWasOpen = m_tagIsOpen;
15556             ensureTagClosed();
15557             if (tagWasOpen && shouldIndent(fmt)) {
15558                 m_os << m_indent;
15559             }
15560             m_os << XmlEncode( text );
15561             applyFormatting(fmt);
15562         }
15563         return *this;
15564     }
15565 
writeComment(std::string const & text,XmlFormatting fmt)15566     XmlWriter& XmlWriter::writeComment( std::string const& text, XmlFormatting fmt) {
15567         ensureTagClosed();
15568         if (shouldIndent(fmt)) {
15569             m_os << m_indent;
15570         }
15571         m_os << "<!--" << text << "-->";
15572         applyFormatting(fmt);
15573         return *this;
15574     }
15575 
writeStylesheetRef(std::string const & url)15576     void XmlWriter::writeStylesheetRef( std::string const& url ) {
15577         m_os << "<?xml-stylesheet type=\"text/xsl\" href=\"" << url << "\"?>\n";
15578     }
15579 
writeBlankLine()15580     XmlWriter& XmlWriter::writeBlankLine() {
15581         ensureTagClosed();
15582         m_os << '\n';
15583         return *this;
15584     }
15585 
ensureTagClosed()15586     void XmlWriter::ensureTagClosed() {
15587         if( m_tagIsOpen ) {
15588             m_os << '>' << std::flush;
15589             newlineIfNecessary();
15590             m_tagIsOpen = false;
15591         }
15592     }
15593 
applyFormatting(XmlFormatting fmt)15594     void XmlWriter::applyFormatting(XmlFormatting fmt) {
15595         m_needsNewline = shouldNewline(fmt);
15596     }
15597 
writeDeclaration()15598     void XmlWriter::writeDeclaration() {
15599         m_os << "<?xml version=\"1.0\" encoding=\"UTF-8\"?>\n";
15600     }
15601 
newlineIfNecessary()15602     void XmlWriter::newlineIfNecessary() {
15603         if( m_needsNewline ) {
15604             m_os << std::endl;
15605             m_needsNewline = false;
15606         }
15607     }
15608 }
15609 // end catch_xmlwriter.cpp
15610 // start catch_reporter_bases.cpp
15611 
15612 #include <cstring>
15613 #include <cfloat>
15614 #include <cstdio>
15615 #include <cassert>
15616 #include <memory>
15617 
15618 namespace Catch {
prepareExpandedExpression(AssertionResult & result)15619     void prepareExpandedExpression(AssertionResult& result) {
15620         result.getExpandedExpression();
15621     }
15622 
15623     // Because formatting using c++ streams is stateful, drop down to C is required
15624     // Alternatively we could use stringstream, but its performance is... not good.
getFormattedDuration(double duration)15625     std::string getFormattedDuration( double duration ) {
15626         // Max exponent + 1 is required to represent the whole part
15627         // + 1 for decimal point
15628         // + 3 for the 3 decimal places
15629         // + 1 for null terminator
15630         const std::size_t maxDoubleSize = DBL_MAX_10_EXP + 1 + 1 + 3 + 1;
15631         char buffer[maxDoubleSize];
15632 
15633         // Save previous errno, to prevent sprintf from overwriting it
15634         ErrnoGuard guard;
15635 #ifdef _MSC_VER
15636         sprintf_s(buffer, "%.3f", duration);
15637 #else
15638         std::sprintf(buffer, "%.3f", duration);
15639 #endif
15640         return std::string(buffer);
15641     }
15642 
shouldShowDuration(IConfig const & config,double duration)15643     bool shouldShowDuration( IConfig const& config, double duration ) {
15644         if ( config.showDurations() == ShowDurations::Always ) {
15645             return true;
15646         }
15647         if ( config.showDurations() == ShowDurations::Never ) {
15648             return false;
15649         }
15650         const double min = config.minDuration();
15651         return min >= 0 && duration >= min;
15652     }
15653 
serializeFilters(std::vector<std::string> const & container)15654     std::string serializeFilters( std::vector<std::string> const& container ) {
15655         ReusableStringStream oss;
15656         bool first = true;
15657         for (auto&& filter : container)
15658         {
15659             if (!first)
15660                 oss << ' ';
15661             else
15662                 first = false;
15663 
15664             oss << filter;
15665         }
15666         return oss.str();
15667     }
15668 
TestEventListenerBase(ReporterConfig const & _config)15669     TestEventListenerBase::TestEventListenerBase(ReporterConfig const & _config)
15670         :StreamingReporterBase(_config) {}
15671 
getSupportedVerbosities()15672     std::set<Verbosity> TestEventListenerBase::getSupportedVerbosities() {
15673         return { Verbosity::Quiet, Verbosity::Normal, Verbosity::High };
15674     }
15675 
assertionStarting(AssertionInfo const &)15676     void TestEventListenerBase::assertionStarting(AssertionInfo const &) {}
15677 
assertionEnded(AssertionStats const &)15678     bool TestEventListenerBase::assertionEnded(AssertionStats const &) {
15679         return false;
15680     }
15681 
15682 } // end namespace Catch
15683 // end catch_reporter_bases.cpp
15684 // start catch_reporter_compact.cpp
15685 
15686 namespace {
15687 
15688 #ifdef CATCH_PLATFORM_MAC
failedString()15689     const char* failedString() { return "FAILED"; }
passedString()15690     const char* passedString() { return "PASSED"; }
15691 #else
15692     const char* failedString() { return "failed"; }
15693     const char* passedString() { return "passed"; }
15694 #endif
15695 
15696     // Colour::LightGrey
dimColour()15697     Catch::Colour::Code dimColour() { return Catch::Colour::FileName; }
15698 
bothOrAll(std::size_t count)15699     std::string bothOrAll( std::size_t count ) {
15700         return count == 1 ? std::string() :
15701                count == 2 ? "both " : "all " ;
15702     }
15703 
15704 } // anon namespace
15705 
15706 namespace Catch {
15707 namespace {
15708 // Colour, message variants:
15709 // - white: No tests ran.
15710 // -   red: Failed [both/all] N test cases, failed [both/all] M assertions.
15711 // - white: Passed [both/all] N test cases (no assertions).
15712 // -   red: Failed N tests cases, failed M assertions.
15713 // - green: Passed [both/all] N tests cases with M assertions.
printTotals(std::ostream & out,const Totals & totals)15714 void printTotals(std::ostream& out, const Totals& totals) {
15715     if (totals.testCases.total() == 0) {
15716         out << "No tests ran.";
15717     } else if (totals.testCases.failed == totals.testCases.total()) {
15718         Colour colour(Colour::ResultError);
15719         const std::string qualify_assertions_failed =
15720             totals.assertions.failed == totals.assertions.total() ?
15721             bothOrAll(totals.assertions.failed) : std::string();
15722         out <<
15723             "Failed " << bothOrAll(totals.testCases.failed)
15724             << pluralise(totals.testCases.failed, "test case") << ", "
15725             "failed " << qualify_assertions_failed <<
15726             pluralise(totals.assertions.failed, "assertion") << '.';
15727     } else if (totals.assertions.total() == 0) {
15728         out <<
15729             "Passed " << bothOrAll(totals.testCases.total())
15730             << pluralise(totals.testCases.total(), "test case")
15731             << " (no assertions).";
15732     } else if (totals.assertions.failed) {
15733         Colour colour(Colour::ResultError);
15734         out <<
15735             "Failed " << pluralise(totals.testCases.failed, "test case") << ", "
15736             "failed " << pluralise(totals.assertions.failed, "assertion") << '.';
15737     } else {
15738         Colour colour(Colour::ResultSuccess);
15739         out <<
15740             "Passed " << bothOrAll(totals.testCases.passed)
15741             << pluralise(totals.testCases.passed, "test case") <<
15742             " with " << pluralise(totals.assertions.passed, "assertion") << '.';
15743     }
15744 }
15745 
15746 // Implementation of CompactReporter formatting
15747 class AssertionPrinter {
15748 public:
15749     AssertionPrinter& operator= (AssertionPrinter const&) = delete;
15750     AssertionPrinter(AssertionPrinter const&) = delete;
AssertionPrinter(std::ostream & _stream,AssertionStats const & _stats,bool _printInfoMessages)15751     AssertionPrinter(std::ostream& _stream, AssertionStats const& _stats, bool _printInfoMessages)
15752         : stream(_stream)
15753         , result(_stats.assertionResult)
15754         , messages(_stats.infoMessages)
15755         , itMessage(_stats.infoMessages.begin())
15756         , printInfoMessages(_printInfoMessages) {}
15757 
print()15758     void print() {
15759         printSourceInfo();
15760 
15761         itMessage = messages.begin();
15762 
15763         switch (result.getResultType()) {
15764         case ResultWas::Ok:
15765             printResultType(Colour::ResultSuccess, passedString());
15766             printOriginalExpression();
15767             printReconstructedExpression();
15768             if (!result.hasExpression())
15769                 printRemainingMessages(Colour::None);
15770             else
15771                 printRemainingMessages();
15772             break;
15773         case ResultWas::ExpressionFailed:
15774             if (result.isOk())
15775                 printResultType(Colour::ResultSuccess, failedString() + std::string(" - but was ok"));
15776             else
15777                 printResultType(Colour::Error, failedString());
15778             printOriginalExpression();
15779             printReconstructedExpression();
15780             printRemainingMessages();
15781             break;
15782         case ResultWas::ThrewException:
15783             printResultType(Colour::Error, failedString());
15784             printIssue("unexpected exception with message:");
15785             printMessage();
15786             printExpressionWas();
15787             printRemainingMessages();
15788             break;
15789         case ResultWas::FatalErrorCondition:
15790             printResultType(Colour::Error, failedString());
15791             printIssue("fatal error condition with message:");
15792             printMessage();
15793             printExpressionWas();
15794             printRemainingMessages();
15795             break;
15796         case ResultWas::DidntThrowException:
15797             printResultType(Colour::Error, failedString());
15798             printIssue("expected exception, got none");
15799             printExpressionWas();
15800             printRemainingMessages();
15801             break;
15802         case ResultWas::Info:
15803             printResultType(Colour::None, "info");
15804             printMessage();
15805             printRemainingMessages();
15806             break;
15807         case ResultWas::Warning:
15808             printResultType(Colour::None, "warning");
15809             printMessage();
15810             printRemainingMessages();
15811             break;
15812         case ResultWas::ExplicitFailure:
15813             printResultType(Colour::Error, failedString());
15814             printIssue("explicitly");
15815             printRemainingMessages(Colour::None);
15816             break;
15817             // These cases are here to prevent compiler warnings
15818         case ResultWas::Unknown:
15819         case ResultWas::FailureBit:
15820         case ResultWas::Exception:
15821             printResultType(Colour::Error, "** internal error **");
15822             break;
15823         }
15824     }
15825 
15826 private:
printSourceInfo() const15827     void printSourceInfo() const {
15828         Colour colourGuard(Colour::FileName);
15829         stream << result.getSourceInfo() << ':';
15830     }
15831 
printResultType(Colour::Code colour,std::string const & passOrFail) const15832     void printResultType(Colour::Code colour, std::string const& passOrFail) const {
15833         if (!passOrFail.empty()) {
15834             {
15835                 Colour colourGuard(colour);
15836                 stream << ' ' << passOrFail;
15837             }
15838             stream << ':';
15839         }
15840     }
15841 
printIssue(std::string const & issue) const15842     void printIssue(std::string const& issue) const {
15843         stream << ' ' << issue;
15844     }
15845 
printExpressionWas()15846     void printExpressionWas() {
15847         if (result.hasExpression()) {
15848             stream << ';';
15849             {
15850                 Colour colour(dimColour());
15851                 stream << " expression was:";
15852             }
15853             printOriginalExpression();
15854         }
15855     }
15856 
printOriginalExpression() const15857     void printOriginalExpression() const {
15858         if (result.hasExpression()) {
15859             stream << ' ' << result.getExpression();
15860         }
15861     }
15862 
printReconstructedExpression() const15863     void printReconstructedExpression() const {
15864         if (result.hasExpandedExpression()) {
15865             {
15866                 Colour colour(dimColour());
15867                 stream << " for: ";
15868             }
15869             stream << result.getExpandedExpression();
15870         }
15871     }
15872 
printMessage()15873     void printMessage() {
15874         if (itMessage != messages.end()) {
15875             stream << " '" << itMessage->message << '\'';
15876             ++itMessage;
15877         }
15878     }
15879 
printRemainingMessages(Colour::Code colour=dimColour ())15880     void printRemainingMessages(Colour::Code colour = dimColour()) {
15881         if (itMessage == messages.end())
15882             return;
15883 
15884         const auto itEnd = messages.cend();
15885         const auto N = static_cast<std::size_t>(std::distance(itMessage, itEnd));
15886 
15887         {
15888             Colour colourGuard(colour);
15889             stream << " with " << pluralise(N, "message") << ':';
15890         }
15891 
15892         while (itMessage != itEnd) {
15893             // If this assertion is a warning ignore any INFO messages
15894             if (printInfoMessages || itMessage->type != ResultWas::Info) {
15895                 printMessage();
15896                 if (itMessage != itEnd) {
15897                     Colour colourGuard(dimColour());
15898                     stream << " and";
15899                 }
15900                 continue;
15901             }
15902             ++itMessage;
15903         }
15904     }
15905 
15906 private:
15907     std::ostream& stream;
15908     AssertionResult const& result;
15909     std::vector<MessageInfo> messages;
15910     std::vector<MessageInfo>::const_iterator itMessage;
15911     bool printInfoMessages;
15912 };
15913 
15914 } // anon namespace
15915 
getDescription()15916         std::string CompactReporter::getDescription() {
15917             return "Reports test results on a single line, suitable for IDEs";
15918         }
15919 
noMatchingTestCases(std::string const & spec)15920         void CompactReporter::noMatchingTestCases( std::string const& spec ) {
15921             stream << "No test cases matched '" << spec << '\'' << std::endl;
15922         }
15923 
assertionStarting(AssertionInfo const &)15924         void CompactReporter::assertionStarting( AssertionInfo const& ) {}
15925 
assertionEnded(AssertionStats const & _assertionStats)15926         bool CompactReporter::assertionEnded( AssertionStats const& _assertionStats ) {
15927             AssertionResult const& result = _assertionStats.assertionResult;
15928 
15929             bool printInfoMessages = true;
15930 
15931             // Drop out if result was successful and we're not printing those
15932             if( !m_config->includeSuccessfulResults() && result.isOk() ) {
15933                 if( result.getResultType() != ResultWas::Warning )
15934                     return false;
15935                 printInfoMessages = false;
15936             }
15937 
15938             AssertionPrinter printer( stream, _assertionStats, printInfoMessages );
15939             printer.print();
15940 
15941             stream << std::endl;
15942             return true;
15943         }
15944 
sectionEnded(SectionStats const & _sectionStats)15945         void CompactReporter::sectionEnded(SectionStats const& _sectionStats) {
15946             double dur = _sectionStats.durationInSeconds;
15947             if ( shouldShowDuration( *m_config, dur ) ) {
15948                 stream << getFormattedDuration( dur ) << " s: " << _sectionStats.sectionInfo.name << std::endl;
15949             }
15950         }
15951 
testRunEnded(TestRunStats const & _testRunStats)15952         void CompactReporter::testRunEnded( TestRunStats const& _testRunStats ) {
15953             printTotals( stream, _testRunStats.totals );
15954             stream << '\n' << std::endl;
15955             StreamingReporterBase::testRunEnded( _testRunStats );
15956         }
15957 
~CompactReporter()15958         CompactReporter::~CompactReporter() {}
15959 
15960     CATCH_REGISTER_REPORTER( "compact", CompactReporter )
15961 
15962 } // end namespace Catch
15963 // end catch_reporter_compact.cpp
15964 // start catch_reporter_console.cpp
15965 
15966 #include <cfloat>
15967 #include <cstdio>
15968 
15969 #if defined(_MSC_VER)
15970 #pragma warning(push)
15971 #pragma warning(disable:4061) // Not all labels are EXPLICITLY handled in switch
15972  // Note that 4062 (not all labels are handled and default is missing) is enabled
15973 #endif
15974 
15975 #if defined(__clang__)
15976 #  pragma clang diagnostic push
15977 // For simplicity, benchmarking-only helpers are always enabled
15978 #  pragma clang diagnostic ignored "-Wunused-function"
15979 #endif
15980 
15981 namespace Catch {
15982 
15983 namespace {
15984 
15985 // Formatter impl for ConsoleReporter
15986 class ConsoleAssertionPrinter {
15987 public:
15988     ConsoleAssertionPrinter& operator= (ConsoleAssertionPrinter const&) = delete;
15989     ConsoleAssertionPrinter(ConsoleAssertionPrinter const&) = delete;
ConsoleAssertionPrinter(std::ostream & _stream,AssertionStats const & _stats,bool _printInfoMessages)15990     ConsoleAssertionPrinter(std::ostream& _stream, AssertionStats const& _stats, bool _printInfoMessages)
15991         : stream(_stream),
15992         stats(_stats),
15993         result(_stats.assertionResult),
15994         colour(Colour::None),
15995         message(result.getMessage()),
15996         messages(_stats.infoMessages),
15997         printInfoMessages(_printInfoMessages) {
15998         switch (result.getResultType()) {
15999         case ResultWas::Ok:
16000             colour = Colour::Success;
16001             passOrFail = "PASSED";
16002             //if( result.hasMessage() )
16003             if (_stats.infoMessages.size() == 1)
16004                 messageLabel = "with message";
16005             if (_stats.infoMessages.size() > 1)
16006                 messageLabel = "with messages";
16007             break;
16008         case ResultWas::ExpressionFailed:
16009             if (result.isOk()) {
16010                 colour = Colour::Success;
16011                 passOrFail = "FAILED - but was ok";
16012             } else {
16013                 colour = Colour::Error;
16014                 passOrFail = "FAILED";
16015             }
16016             if (_stats.infoMessages.size() == 1)
16017                 messageLabel = "with message";
16018             if (_stats.infoMessages.size() > 1)
16019                 messageLabel = "with messages";
16020             break;
16021         case ResultWas::ThrewException:
16022             colour = Colour::Error;
16023             passOrFail = "FAILED";
16024             messageLabel = "due to unexpected exception with ";
16025             if (_stats.infoMessages.size() == 1)
16026                 messageLabel += "message";
16027             if (_stats.infoMessages.size() > 1)
16028                 messageLabel += "messages";
16029             break;
16030         case ResultWas::FatalErrorCondition:
16031             colour = Colour::Error;
16032             passOrFail = "FAILED";
16033             messageLabel = "due to a fatal error condition";
16034             break;
16035         case ResultWas::DidntThrowException:
16036             colour = Colour::Error;
16037             passOrFail = "FAILED";
16038             messageLabel = "because no exception was thrown where one was expected";
16039             break;
16040         case ResultWas::Info:
16041             messageLabel = "info";
16042             break;
16043         case ResultWas::Warning:
16044             messageLabel = "warning";
16045             break;
16046         case ResultWas::ExplicitFailure:
16047             passOrFail = "FAILED";
16048             colour = Colour::Error;
16049             if (_stats.infoMessages.size() == 1)
16050                 messageLabel = "explicitly with message";
16051             if (_stats.infoMessages.size() > 1)
16052                 messageLabel = "explicitly with messages";
16053             break;
16054             // These cases are here to prevent compiler warnings
16055         case ResultWas::Unknown:
16056         case ResultWas::FailureBit:
16057         case ResultWas::Exception:
16058             passOrFail = "** internal error **";
16059             colour = Colour::Error;
16060             break;
16061         }
16062     }
16063 
print() const16064     void print() const {
16065         printSourceInfo();
16066         if (stats.totals.assertions.total() > 0) {
16067             printResultType();
16068             printOriginalExpression();
16069             printReconstructedExpression();
16070         } else {
16071             stream << '\n';
16072         }
16073         printMessage();
16074     }
16075 
16076 private:
printResultType() const16077     void printResultType() const {
16078         if (!passOrFail.empty()) {
16079             Colour colourGuard(colour);
16080             stream << passOrFail << ":\n";
16081         }
16082     }
printOriginalExpression() const16083     void printOriginalExpression() const {
16084         if (result.hasExpression()) {
16085             Colour colourGuard(Colour::OriginalExpression);
16086             stream << "  ";
16087             stream << result.getExpressionInMacro();
16088             stream << '\n';
16089         }
16090     }
printReconstructedExpression() const16091     void printReconstructedExpression() const {
16092         if (result.hasExpandedExpression()) {
16093             stream << "with expansion:\n";
16094             Colour colourGuard(Colour::ReconstructedExpression);
16095             stream << Column(result.getExpandedExpression()).indent(2) << '\n';
16096         }
16097     }
printMessage() const16098     void printMessage() const {
16099         if (!messageLabel.empty())
16100             stream << messageLabel << ':' << '\n';
16101         for (auto const& msg : messages) {
16102             // If this assertion is a warning ignore any INFO messages
16103             if (printInfoMessages || msg.type != ResultWas::Info)
16104                 stream << Column(msg.message).indent(2) << '\n';
16105         }
16106     }
printSourceInfo() const16107     void printSourceInfo() const {
16108         Colour colourGuard(Colour::FileName);
16109         stream << result.getSourceInfo() << ": ";
16110     }
16111 
16112     std::ostream& stream;
16113     AssertionStats const& stats;
16114     AssertionResult const& result;
16115     Colour::Code colour;
16116     std::string passOrFail;
16117     std::string messageLabel;
16118     std::string message;
16119     std::vector<MessageInfo> messages;
16120     bool printInfoMessages;
16121 };
16122 
makeRatio(std::size_t number,std::size_t total)16123 std::size_t makeRatio(std::size_t number, std::size_t total) {
16124     std::size_t ratio = total > 0 ? CATCH_CONFIG_CONSOLE_WIDTH * number / total : 0;
16125     return (ratio == 0 && number > 0) ? 1 : ratio;
16126 }
16127 
findMax(std::size_t & i,std::size_t & j,std::size_t & k)16128 std::size_t& findMax(std::size_t& i, std::size_t& j, std::size_t& k) {
16129     if (i > j && i > k)
16130         return i;
16131     else if (j > k)
16132         return j;
16133     else
16134         return k;
16135 }
16136 
16137 struct ColumnInfo {
16138     enum Justification { Left, Right };
16139     std::string name;
16140     int width;
16141     Justification justification;
16142 };
16143 struct ColumnBreak {};
16144 struct RowBreak {};
16145 
16146 class Duration {
16147     enum class Unit {
16148         Auto,
16149         Nanoseconds,
16150         Microseconds,
16151         Milliseconds,
16152         Seconds,
16153         Minutes
16154     };
16155     static const uint64_t s_nanosecondsInAMicrosecond = 1000;
16156     static const uint64_t s_nanosecondsInAMillisecond = 1000 * s_nanosecondsInAMicrosecond;
16157     static const uint64_t s_nanosecondsInASecond = 1000 * s_nanosecondsInAMillisecond;
16158     static const uint64_t s_nanosecondsInAMinute = 60 * s_nanosecondsInASecond;
16159 
16160     double m_inNanoseconds;
16161     Unit m_units;
16162 
16163 public:
Duration(double inNanoseconds,Unit units=Unit::Auto)16164     explicit Duration(double inNanoseconds, Unit units = Unit::Auto)
16165         : m_inNanoseconds(inNanoseconds),
16166         m_units(units) {
16167         if (m_units == Unit::Auto) {
16168             if (m_inNanoseconds < s_nanosecondsInAMicrosecond)
16169                 m_units = Unit::Nanoseconds;
16170             else if (m_inNanoseconds < s_nanosecondsInAMillisecond)
16171                 m_units = Unit::Microseconds;
16172             else if (m_inNanoseconds < s_nanosecondsInASecond)
16173                 m_units = Unit::Milliseconds;
16174             else if (m_inNanoseconds < s_nanosecondsInAMinute)
16175                 m_units = Unit::Seconds;
16176             else
16177                 m_units = Unit::Minutes;
16178         }
16179 
16180     }
16181 
value() const16182     auto value() const -> double {
16183         switch (m_units) {
16184         case Unit::Microseconds:
16185             return m_inNanoseconds / static_cast<double>(s_nanosecondsInAMicrosecond);
16186         case Unit::Milliseconds:
16187             return m_inNanoseconds / static_cast<double>(s_nanosecondsInAMillisecond);
16188         case Unit::Seconds:
16189             return m_inNanoseconds / static_cast<double>(s_nanosecondsInASecond);
16190         case Unit::Minutes:
16191             return m_inNanoseconds / static_cast<double>(s_nanosecondsInAMinute);
16192         default:
16193             return m_inNanoseconds;
16194         }
16195     }
unitsAsString() const16196     auto unitsAsString() const -> std::string {
16197         switch (m_units) {
16198         case Unit::Nanoseconds:
16199             return "ns";
16200         case Unit::Microseconds:
16201             return "us";
16202         case Unit::Milliseconds:
16203             return "ms";
16204         case Unit::Seconds:
16205             return "s";
16206         case Unit::Minutes:
16207             return "m";
16208         default:
16209             return "** internal error **";
16210         }
16211 
16212     }
operator <<(std::ostream & os,Duration const & duration)16213     friend auto operator << (std::ostream& os, Duration const& duration) -> std::ostream& {
16214         return os << duration.value() << ' ' << duration.unitsAsString();
16215     }
16216 };
16217 } // end anon namespace
16218 
16219 class TablePrinter {
16220     std::ostream& m_os;
16221     std::vector<ColumnInfo> m_columnInfos;
16222     std::ostringstream m_oss;
16223     int m_currentColumn = -1;
16224     bool m_isOpen = false;
16225 
16226 public:
TablePrinter(std::ostream & os,std::vector<ColumnInfo> columnInfos)16227     TablePrinter( std::ostream& os, std::vector<ColumnInfo> columnInfos )
16228     :   m_os( os ),
16229         m_columnInfos( std::move( columnInfos ) ) {}
16230 
columnInfos() const16231     auto columnInfos() const -> std::vector<ColumnInfo> const& {
16232         return m_columnInfos;
16233     }
16234 
open()16235     void open() {
16236         if (!m_isOpen) {
16237             m_isOpen = true;
16238             *this << RowBreak();
16239 
16240          Columns headerCols;
16241          Spacer spacer(2);
16242          for (auto const& info : m_columnInfos) {
16243             headerCols += Column(info.name).width(static_cast<std::size_t>(info.width - 2));
16244             headerCols += spacer;
16245          }
16246          m_os << headerCols << '\n';
16247 
16248             m_os << Catch::getLineOfChars<'-'>() << '\n';
16249         }
16250     }
close()16251     void close() {
16252         if (m_isOpen) {
16253             *this << RowBreak();
16254             m_os << std::endl;
16255             m_isOpen = false;
16256         }
16257     }
16258 
16259     template<typename T>
operator <<(TablePrinter & tp,T const & value)16260     friend TablePrinter& operator << (TablePrinter& tp, T const& value) {
16261         tp.m_oss << value;
16262         return tp;
16263     }
16264 
operator <<(TablePrinter & tp,ColumnBreak)16265     friend TablePrinter& operator << (TablePrinter& tp, ColumnBreak) {
16266         auto colStr = tp.m_oss.str();
16267         const auto strSize = colStr.size();
16268         tp.m_oss.str("");
16269         tp.open();
16270         if (tp.m_currentColumn == static_cast<int>(tp.m_columnInfos.size() - 1)) {
16271             tp.m_currentColumn = -1;
16272             tp.m_os << '\n';
16273         }
16274         tp.m_currentColumn++;
16275 
16276         auto colInfo = tp.m_columnInfos[tp.m_currentColumn];
16277         auto padding = (strSize + 1 < static_cast<std::size_t>(colInfo.width))
16278             ? std::string(colInfo.width - (strSize + 1), ' ')
16279             : std::string();
16280         if (colInfo.justification == ColumnInfo::Left)
16281             tp.m_os << colStr << padding << ' ';
16282         else
16283             tp.m_os << padding << colStr << ' ';
16284         return tp;
16285     }
16286 
operator <<(TablePrinter & tp,RowBreak)16287     friend TablePrinter& operator << (TablePrinter& tp, RowBreak) {
16288         if (tp.m_currentColumn > 0) {
16289             tp.m_os << '\n';
16290             tp.m_currentColumn = -1;
16291         }
16292         return tp;
16293     }
16294 };
16295 
ConsoleReporter(ReporterConfig const & config)16296 ConsoleReporter::ConsoleReporter(ReporterConfig const& config)
16297     : StreamingReporterBase(config),
16298     m_tablePrinter(new TablePrinter(config.stream(),
16299         [&config]() -> std::vector<ColumnInfo> {
16300         if (config.fullConfig()->benchmarkNoAnalysis())
16301         {
16302             return{
16303                 { "benchmark name", CATCH_CONFIG_CONSOLE_WIDTH - 43, ColumnInfo::Left },
16304                 { "     samples", 14, ColumnInfo::Right },
16305                 { "  iterations", 14, ColumnInfo::Right },
16306                 { "        mean", 14, ColumnInfo::Right }
16307             };
16308         }
16309         else
16310         {
16311             return{
16312                 { "benchmark name", CATCH_CONFIG_CONSOLE_WIDTH - 43, ColumnInfo::Left },
16313                 { "samples      mean       std dev", 14, ColumnInfo::Right },
16314                 { "iterations   low mean   low std dev", 14, ColumnInfo::Right },
16315                 { "estimated    high mean  high std dev", 14, ColumnInfo::Right }
16316             };
16317         }
16318     }())) {}
16319 ConsoleReporter::~ConsoleReporter() = default;
16320 
getDescription()16321 std::string ConsoleReporter::getDescription() {
16322     return "Reports test results as plain lines of text";
16323 }
16324 
noMatchingTestCases(std::string const & spec)16325 void ConsoleReporter::noMatchingTestCases(std::string const& spec) {
16326     stream << "No test cases matched '" << spec << '\'' << std::endl;
16327 }
16328 
reportInvalidArguments(std::string const & arg)16329 void ConsoleReporter::reportInvalidArguments(std::string const&arg){
16330     stream << "Invalid Filter: " << arg << std::endl;
16331 }
16332 
assertionStarting(AssertionInfo const &)16333 void ConsoleReporter::assertionStarting(AssertionInfo const&) {}
16334 
assertionEnded(AssertionStats const & _assertionStats)16335 bool ConsoleReporter::assertionEnded(AssertionStats const& _assertionStats) {
16336     AssertionResult const& result = _assertionStats.assertionResult;
16337 
16338     bool includeResults = m_config->includeSuccessfulResults() || !result.isOk();
16339 
16340     // Drop out if result was successful but we're not printing them.
16341     if (!includeResults && result.getResultType() != ResultWas::Warning)
16342         return false;
16343 
16344     lazyPrint();
16345 
16346     ConsoleAssertionPrinter printer(stream, _assertionStats, includeResults);
16347     printer.print();
16348     stream << std::endl;
16349     return true;
16350 }
16351 
sectionStarting(SectionInfo const & _sectionInfo)16352 void ConsoleReporter::sectionStarting(SectionInfo const& _sectionInfo) {
16353     m_tablePrinter->close();
16354     m_headerPrinted = false;
16355     StreamingReporterBase::sectionStarting(_sectionInfo);
16356 }
sectionEnded(SectionStats const & _sectionStats)16357 void ConsoleReporter::sectionEnded(SectionStats const& _sectionStats) {
16358     m_tablePrinter->close();
16359     if (_sectionStats.missingAssertions) {
16360         lazyPrint();
16361         Colour colour(Colour::ResultError);
16362         if (m_sectionStack.size() > 1)
16363             stream << "\nNo assertions in section";
16364         else
16365             stream << "\nNo assertions in test case";
16366         stream << " '" << _sectionStats.sectionInfo.name << "'\n" << std::endl;
16367     }
16368     double dur = _sectionStats.durationInSeconds;
16369     if (shouldShowDuration(*m_config, dur)) {
16370         stream << getFormattedDuration(dur) << " s: " << _sectionStats.sectionInfo.name << std::endl;
16371     }
16372     if (m_headerPrinted) {
16373         m_headerPrinted = false;
16374     }
16375     StreamingReporterBase::sectionEnded(_sectionStats);
16376 }
16377 
16378 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
benchmarkPreparing(std::string const & name)16379 void ConsoleReporter::benchmarkPreparing(std::string const& name) {
16380    lazyPrintWithoutClosingBenchmarkTable();
16381 
16382    auto nameCol = Column(name).width(static_cast<std::size_t>(m_tablePrinter->columnInfos()[0].width - 2));
16383 
16384    bool firstLine = true;
16385    for (auto line : nameCol) {
16386       if (!firstLine)
16387          (*m_tablePrinter) << ColumnBreak() << ColumnBreak() << ColumnBreak();
16388       else
16389          firstLine = false;
16390 
16391       (*m_tablePrinter) << line << ColumnBreak();
16392    }
16393 }
16394 
benchmarkStarting(BenchmarkInfo const & info)16395 void ConsoleReporter::benchmarkStarting(BenchmarkInfo const& info) {
16396     (*m_tablePrinter) << info.samples << ColumnBreak()
16397         << info.iterations << ColumnBreak();
16398     if (!m_config->benchmarkNoAnalysis())
16399         (*m_tablePrinter) << Duration(info.estimatedDuration) << ColumnBreak();
16400 }
benchmarkEnded(BenchmarkStats<> const & stats)16401 void ConsoleReporter::benchmarkEnded(BenchmarkStats<> const& stats) {
16402     if (m_config->benchmarkNoAnalysis())
16403     {
16404         (*m_tablePrinter) << Duration(stats.mean.point.count()) << ColumnBreak();
16405     }
16406     else
16407     {
16408         (*m_tablePrinter) << ColumnBreak()
16409             << Duration(stats.mean.point.count()) << ColumnBreak()
16410             << Duration(stats.mean.lower_bound.count()) << ColumnBreak()
16411             << Duration(stats.mean.upper_bound.count()) << ColumnBreak() << ColumnBreak()
16412             << Duration(stats.standardDeviation.point.count()) << ColumnBreak()
16413             << Duration(stats.standardDeviation.lower_bound.count()) << ColumnBreak()
16414             << Duration(stats.standardDeviation.upper_bound.count()) << ColumnBreak() << ColumnBreak() << ColumnBreak() << ColumnBreak() << ColumnBreak();
16415     }
16416 }
16417 
benchmarkFailed(std::string const & error)16418 void ConsoleReporter::benchmarkFailed(std::string const& error) {
16419    Colour colour(Colour::Red);
16420     (*m_tablePrinter)
16421         << "Benchmark failed (" << error << ')'
16422         << ColumnBreak() << RowBreak();
16423 }
16424 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
16425 
testCaseEnded(TestCaseStats const & _testCaseStats)16426 void ConsoleReporter::testCaseEnded(TestCaseStats const& _testCaseStats) {
16427     m_tablePrinter->close();
16428     StreamingReporterBase::testCaseEnded(_testCaseStats);
16429     m_headerPrinted = false;
16430 }
testGroupEnded(TestGroupStats const & _testGroupStats)16431 void ConsoleReporter::testGroupEnded(TestGroupStats const& _testGroupStats) {
16432     if (currentGroupInfo.used) {
16433         printSummaryDivider();
16434         stream << "Summary for group '" << _testGroupStats.groupInfo.name << "':\n";
16435         printTotals(_testGroupStats.totals);
16436         stream << '\n' << std::endl;
16437     }
16438     StreamingReporterBase::testGroupEnded(_testGroupStats);
16439 }
testRunEnded(TestRunStats const & _testRunStats)16440 void ConsoleReporter::testRunEnded(TestRunStats const& _testRunStats) {
16441     printTotalsDivider(_testRunStats.totals);
16442     printTotals(_testRunStats.totals);
16443     stream << std::endl;
16444     StreamingReporterBase::testRunEnded(_testRunStats);
16445 }
testRunStarting(TestRunInfo const & _testInfo)16446 void ConsoleReporter::testRunStarting(TestRunInfo const& _testInfo) {
16447     StreamingReporterBase::testRunStarting(_testInfo);
16448     printTestFilters();
16449 }
16450 
lazyPrint()16451 void ConsoleReporter::lazyPrint() {
16452 
16453     m_tablePrinter->close();
16454     lazyPrintWithoutClosingBenchmarkTable();
16455 }
16456 
lazyPrintWithoutClosingBenchmarkTable()16457 void ConsoleReporter::lazyPrintWithoutClosingBenchmarkTable() {
16458 
16459     if (!currentTestRunInfo.used)
16460         lazyPrintRunInfo();
16461     if (!currentGroupInfo.used)
16462         lazyPrintGroupInfo();
16463 
16464     if (!m_headerPrinted) {
16465         printTestCaseAndSectionHeader();
16466         m_headerPrinted = true;
16467     }
16468 }
lazyPrintRunInfo()16469 void ConsoleReporter::lazyPrintRunInfo() {
16470     stream << '\n' << getLineOfChars<'~'>() << '\n';
16471     Colour colour(Colour::SecondaryText);
16472     stream << currentTestRunInfo->name
16473         << " is a Catch v" << libraryVersion() << " host application.\n"
16474         << "Run with -? for options\n\n";
16475 
16476     if (m_config->rngSeed() != 0)
16477         stream << "Randomness seeded to: " << m_config->rngSeed() << "\n\n";
16478 
16479     currentTestRunInfo.used = true;
16480 }
lazyPrintGroupInfo()16481 void ConsoleReporter::lazyPrintGroupInfo() {
16482     if (!currentGroupInfo->name.empty() && currentGroupInfo->groupsCounts > 1) {
16483         printClosedHeader("Group: " + currentGroupInfo->name);
16484         currentGroupInfo.used = true;
16485     }
16486 }
printTestCaseAndSectionHeader()16487 void ConsoleReporter::printTestCaseAndSectionHeader() {
16488     assert(!m_sectionStack.empty());
16489     printOpenHeader(currentTestCaseInfo->name);
16490 
16491     if (m_sectionStack.size() > 1) {
16492         Colour colourGuard(Colour::Headers);
16493 
16494         auto
16495             it = m_sectionStack.begin() + 1, // Skip first section (test case)
16496             itEnd = m_sectionStack.end();
16497         for (; it != itEnd; ++it)
16498             printHeaderString(it->name, 2);
16499     }
16500 
16501     SourceLineInfo lineInfo = m_sectionStack.back().lineInfo;
16502 
16503     stream << getLineOfChars<'-'>() << '\n';
16504     Colour colourGuard(Colour::FileName);
16505     stream << lineInfo << '\n';
16506     stream << getLineOfChars<'.'>() << '\n' << std::endl;
16507 }
16508 
printClosedHeader(std::string const & _name)16509 void ConsoleReporter::printClosedHeader(std::string const& _name) {
16510     printOpenHeader(_name);
16511     stream << getLineOfChars<'.'>() << '\n';
16512 }
printOpenHeader(std::string const & _name)16513 void ConsoleReporter::printOpenHeader(std::string const& _name) {
16514     stream << getLineOfChars<'-'>() << '\n';
16515     {
16516         Colour colourGuard(Colour::Headers);
16517         printHeaderString(_name);
16518     }
16519 }
16520 
16521 // if string has a : in first line will set indent to follow it on
16522 // subsequent lines
printHeaderString(std::string const & _string,std::size_t indent)16523 void ConsoleReporter::printHeaderString(std::string const& _string, std::size_t indent) {
16524     std::size_t i = _string.find(": ");
16525     if (i != std::string::npos)
16526         i += 2;
16527     else
16528         i = 0;
16529     stream << Column(_string).indent(indent + i).initialIndent(indent) << '\n';
16530 }
16531 
16532 struct SummaryColumn {
16533 
SummaryColumnCatch::SummaryColumn16534     SummaryColumn( std::string _label, Colour::Code _colour )
16535     :   label( std::move( _label ) ),
16536         colour( _colour ) {}
addRowCatch::SummaryColumn16537     SummaryColumn addRow( std::size_t count ) {
16538         ReusableStringStream rss;
16539         rss << count;
16540         std::string row = rss.str();
16541         for (auto& oldRow : rows) {
16542             while (oldRow.size() < row.size())
16543                 oldRow = ' ' + oldRow;
16544             while (oldRow.size() > row.size())
16545                 row = ' ' + row;
16546         }
16547         rows.push_back(row);
16548         return *this;
16549     }
16550 
16551     std::string label;
16552     Colour::Code colour;
16553     std::vector<std::string> rows;
16554 
16555 };
16556 
printTotals(Totals const & totals)16557 void ConsoleReporter::printTotals( Totals const& totals ) {
16558     if (totals.testCases.total() == 0) {
16559         stream << Colour(Colour::Warning) << "No tests ran\n";
16560     } else if (totals.assertions.total() > 0 && totals.testCases.allPassed()) {
16561         stream << Colour(Colour::ResultSuccess) << "All tests passed";
16562         stream << " ("
16563             << pluralise(totals.assertions.passed, "assertion") << " in "
16564             << pluralise(totals.testCases.passed, "test case") << ')'
16565             << '\n';
16566     } else {
16567 
16568         std::vector<SummaryColumn> columns;
16569         columns.push_back(SummaryColumn("", Colour::None)
16570                           .addRow(totals.testCases.total())
16571                           .addRow(totals.assertions.total()));
16572         columns.push_back(SummaryColumn("passed", Colour::Success)
16573                           .addRow(totals.testCases.passed)
16574                           .addRow(totals.assertions.passed));
16575         columns.push_back(SummaryColumn("failed", Colour::ResultError)
16576                           .addRow(totals.testCases.failed)
16577                           .addRow(totals.assertions.failed));
16578         columns.push_back(SummaryColumn("failed as expected", Colour::ResultExpectedFailure)
16579                           .addRow(totals.testCases.failedButOk)
16580                           .addRow(totals.assertions.failedButOk));
16581 
16582         printSummaryRow("test cases", columns, 0);
16583         printSummaryRow("assertions", columns, 1);
16584     }
16585 }
printSummaryRow(std::string const & label,std::vector<SummaryColumn> const & cols,std::size_t row)16586 void ConsoleReporter::printSummaryRow(std::string const& label, std::vector<SummaryColumn> const& cols, std::size_t row) {
16587     for (auto col : cols) {
16588         std::string value = col.rows[row];
16589         if (col.label.empty()) {
16590             stream << label << ": ";
16591             if (value != "0")
16592                 stream << value;
16593             else
16594                 stream << Colour(Colour::Warning) << "- none -";
16595         } else if (value != "0") {
16596             stream << Colour(Colour::LightGrey) << " | ";
16597             stream << Colour(col.colour)
16598                 << value << ' ' << col.label;
16599         }
16600     }
16601     stream << '\n';
16602 }
16603 
printTotalsDivider(Totals const & totals)16604 void ConsoleReporter::printTotalsDivider(Totals const& totals) {
16605     if (totals.testCases.total() > 0) {
16606         std::size_t failedRatio = makeRatio(totals.testCases.failed, totals.testCases.total());
16607         std::size_t failedButOkRatio = makeRatio(totals.testCases.failedButOk, totals.testCases.total());
16608         std::size_t passedRatio = makeRatio(totals.testCases.passed, totals.testCases.total());
16609         while (failedRatio + failedButOkRatio + passedRatio < CATCH_CONFIG_CONSOLE_WIDTH - 1)
16610             findMax(failedRatio, failedButOkRatio, passedRatio)++;
16611         while (failedRatio + failedButOkRatio + passedRatio > CATCH_CONFIG_CONSOLE_WIDTH - 1)
16612             findMax(failedRatio, failedButOkRatio, passedRatio)--;
16613 
16614         stream << Colour(Colour::Error) << std::string(failedRatio, '=');
16615         stream << Colour(Colour::ResultExpectedFailure) << std::string(failedButOkRatio, '=');
16616         if (totals.testCases.allPassed())
16617             stream << Colour(Colour::ResultSuccess) << std::string(passedRatio, '=');
16618         else
16619             stream << Colour(Colour::Success) << std::string(passedRatio, '=');
16620     } else {
16621         stream << Colour(Colour::Warning) << std::string(CATCH_CONFIG_CONSOLE_WIDTH - 1, '=');
16622     }
16623     stream << '\n';
16624 }
printSummaryDivider()16625 void ConsoleReporter::printSummaryDivider() {
16626     stream << getLineOfChars<'-'>() << '\n';
16627 }
16628 
printTestFilters()16629 void ConsoleReporter::printTestFilters() {
16630     if (m_config->testSpec().hasFilters()) {
16631         Colour guard(Colour::BrightYellow);
16632         stream << "Filters: " << serializeFilters(m_config->getTestsOrTags()) << '\n';
16633     }
16634 }
16635 
16636 CATCH_REGISTER_REPORTER("console", ConsoleReporter)
16637 
16638 } // end namespace Catch
16639 
16640 #if defined(_MSC_VER)
16641 #pragma warning(pop)
16642 #endif
16643 
16644 #if defined(__clang__)
16645 #  pragma clang diagnostic pop
16646 #endif
16647 // end catch_reporter_console.cpp
16648 // start catch_reporter_junit.cpp
16649 
16650 #include <cassert>
16651 #include <sstream>
16652 #include <ctime>
16653 #include <algorithm>
16654 
16655 namespace Catch {
16656 
16657     namespace {
getCurrentTimestamp()16658         std::string getCurrentTimestamp() {
16659             // Beware, this is not reentrant because of backward compatibility issues
16660             // Also, UTC only, again because of backward compatibility (%z is C++11)
16661             time_t rawtime;
16662             std::time(&rawtime);
16663             auto const timeStampSize = sizeof("2017-01-16T17:06:45Z");
16664 
16665 #ifdef _MSC_VER
16666             std::tm timeInfo = {};
16667             gmtime_s(&timeInfo, &rawtime);
16668 #else
16669             std::tm* timeInfo;
16670             timeInfo = std::gmtime(&rawtime);
16671 #endif
16672 
16673             char timeStamp[timeStampSize];
16674             const char * const fmt = "%Y-%m-%dT%H:%M:%SZ";
16675 
16676 #ifdef _MSC_VER
16677             std::strftime(timeStamp, timeStampSize, fmt, &timeInfo);
16678 #else
16679             std::strftime(timeStamp, timeStampSize, fmt, timeInfo);
16680 #endif
16681             return std::string(timeStamp);
16682         }
16683 
fileNameTag(const std::vector<std::string> & tags)16684         std::string fileNameTag(const std::vector<std::string> &tags) {
16685             auto it = std::find_if(begin(tags),
16686                                    end(tags),
16687                                    [] (std::string const& tag) {return tag.front() == '#'; });
16688             if (it != tags.end())
16689                 return it->substr(1);
16690             return std::string();
16691         }
16692     } // anonymous namespace
16693 
JunitReporter(ReporterConfig const & _config)16694     JunitReporter::JunitReporter( ReporterConfig const& _config )
16695         :   CumulativeReporterBase( _config ),
16696             xml( _config.stream() )
16697         {
16698             m_reporterPrefs.shouldRedirectStdOut = true;
16699             m_reporterPrefs.shouldReportAllAssertions = true;
16700         }
16701 
~JunitReporter()16702     JunitReporter::~JunitReporter() {}
16703 
getDescription()16704     std::string JunitReporter::getDescription() {
16705         return "Reports test results in an XML format that looks like Ant's junitreport target";
16706     }
16707 
noMatchingTestCases(std::string const &)16708     void JunitReporter::noMatchingTestCases( std::string const& /*spec*/ ) {}
16709 
testRunStarting(TestRunInfo const & runInfo)16710     void JunitReporter::testRunStarting( TestRunInfo const& runInfo )  {
16711         CumulativeReporterBase::testRunStarting( runInfo );
16712         xml.startElement( "testsuites" );
16713     }
16714 
testGroupStarting(GroupInfo const & groupInfo)16715     void JunitReporter::testGroupStarting( GroupInfo const& groupInfo ) {
16716         suiteTimer.start();
16717         stdOutForSuite.clear();
16718         stdErrForSuite.clear();
16719         unexpectedExceptions = 0;
16720         CumulativeReporterBase::testGroupStarting( groupInfo );
16721     }
16722 
testCaseStarting(TestCaseInfo const & testCaseInfo)16723     void JunitReporter::testCaseStarting( TestCaseInfo const& testCaseInfo ) {
16724         m_okToFail = testCaseInfo.okToFail();
16725     }
16726 
assertionEnded(AssertionStats const & assertionStats)16727     bool JunitReporter::assertionEnded( AssertionStats const& assertionStats ) {
16728         if( assertionStats.assertionResult.getResultType() == ResultWas::ThrewException && !m_okToFail )
16729             unexpectedExceptions++;
16730         return CumulativeReporterBase::assertionEnded( assertionStats );
16731     }
16732 
testCaseEnded(TestCaseStats const & testCaseStats)16733     void JunitReporter::testCaseEnded( TestCaseStats const& testCaseStats ) {
16734         stdOutForSuite += testCaseStats.stdOut;
16735         stdErrForSuite += testCaseStats.stdErr;
16736         CumulativeReporterBase::testCaseEnded( testCaseStats );
16737     }
16738 
testGroupEnded(TestGroupStats const & testGroupStats)16739     void JunitReporter::testGroupEnded( TestGroupStats const& testGroupStats ) {
16740         double suiteTime = suiteTimer.getElapsedSeconds();
16741         CumulativeReporterBase::testGroupEnded( testGroupStats );
16742         writeGroup( *m_testGroups.back(), suiteTime );
16743     }
16744 
testRunEndedCumulative()16745     void JunitReporter::testRunEndedCumulative() {
16746         xml.endElement();
16747     }
16748 
writeGroup(TestGroupNode const & groupNode,double suiteTime)16749     void JunitReporter::writeGroup( TestGroupNode const& groupNode, double suiteTime ) {
16750         XmlWriter::ScopedElement e = xml.scopedElement( "testsuite" );
16751 
16752         TestGroupStats const& stats = groupNode.value;
16753         xml.writeAttribute( "name", stats.groupInfo.name );
16754         xml.writeAttribute( "errors", unexpectedExceptions );
16755         xml.writeAttribute( "failures", stats.totals.assertions.failed-unexpectedExceptions );
16756         xml.writeAttribute( "tests", stats.totals.assertions.total() );
16757         xml.writeAttribute( "hostname", "tbd" ); // !TBD
16758         if( m_config->showDurations() == ShowDurations::Never )
16759             xml.writeAttribute( "time", "" );
16760         else
16761             xml.writeAttribute( "time", suiteTime );
16762         xml.writeAttribute( "timestamp", getCurrentTimestamp() );
16763 
16764         // Write properties if there are any
16765         if (m_config->hasTestFilters() || m_config->rngSeed() != 0) {
16766             auto properties = xml.scopedElement("properties");
16767             if (m_config->hasTestFilters()) {
16768                 xml.scopedElement("property")
16769                     .writeAttribute("name", "filters")
16770                     .writeAttribute("value", serializeFilters(m_config->getTestsOrTags()));
16771             }
16772             if (m_config->rngSeed() != 0) {
16773                 xml.scopedElement("property")
16774                     .writeAttribute("name", "random-seed")
16775                     .writeAttribute("value", m_config->rngSeed());
16776             }
16777         }
16778 
16779         // Write test cases
16780         for( auto const& child : groupNode.children )
16781             writeTestCase( *child );
16782 
16783         xml.scopedElement( "system-out" ).writeText( trim( stdOutForSuite ), XmlFormatting::Newline );
16784         xml.scopedElement( "system-err" ).writeText( trim( stdErrForSuite ), XmlFormatting::Newline );
16785     }
16786 
writeTestCase(TestCaseNode const & testCaseNode)16787     void JunitReporter::writeTestCase( TestCaseNode const& testCaseNode ) {
16788         TestCaseStats const& stats = testCaseNode.value;
16789 
16790         // All test cases have exactly one section - which represents the
16791         // test case itself. That section may have 0-n nested sections
16792         assert( testCaseNode.children.size() == 1 );
16793         SectionNode const& rootSection = *testCaseNode.children.front();
16794 
16795         std::string className = stats.testInfo.className;
16796 
16797         if( className.empty() ) {
16798             className = fileNameTag(stats.testInfo.tags);
16799             if ( className.empty() )
16800                 className = "global";
16801         }
16802 
16803         if ( !m_config->name().empty() )
16804             className = m_config->name() + "." + className;
16805 
16806         writeSection( className, "", rootSection );
16807     }
16808 
writeSection(std::string const & className,std::string const & rootName,SectionNode const & sectionNode)16809     void JunitReporter::writeSection(  std::string const& className,
16810                         std::string const& rootName,
16811                         SectionNode const& sectionNode ) {
16812         std::string name = trim( sectionNode.stats.sectionInfo.name );
16813         if( !rootName.empty() )
16814             name = rootName + '/' + name;
16815 
16816         if( !sectionNode.assertions.empty() ||
16817             !sectionNode.stdOut.empty() ||
16818             !sectionNode.stdErr.empty() ) {
16819             XmlWriter::ScopedElement e = xml.scopedElement( "testcase" );
16820             if( className.empty() ) {
16821                 xml.writeAttribute( "classname", name );
16822                 xml.writeAttribute( "name", "root" );
16823             }
16824             else {
16825                 xml.writeAttribute( "classname", className );
16826                 xml.writeAttribute( "name", name );
16827             }
16828             xml.writeAttribute( "time", ::Catch::Detail::stringify( sectionNode.stats.durationInSeconds ) );
16829             // This is not ideal, but it should be enough to mimic gtest's
16830             // junit output.
16831             // Ideally the JUnit reporter would also handle `skipTest`
16832             // events and write those out appropriately.
16833             xml.writeAttribute( "status", "run" );
16834 
16835             writeAssertions( sectionNode );
16836 
16837             if( !sectionNode.stdOut.empty() )
16838                 xml.scopedElement( "system-out" ).writeText( trim( sectionNode.stdOut ), XmlFormatting::Newline );
16839             if( !sectionNode.stdErr.empty() )
16840                 xml.scopedElement( "system-err" ).writeText( trim( sectionNode.stdErr ), XmlFormatting::Newline );
16841         }
16842         for( auto const& childNode : sectionNode.childSections )
16843             if( className.empty() )
16844                 writeSection( name, "", *childNode );
16845             else
16846                 writeSection( className, name, *childNode );
16847     }
16848 
writeAssertions(SectionNode const & sectionNode)16849     void JunitReporter::writeAssertions( SectionNode const& sectionNode ) {
16850         for( auto const& assertion : sectionNode.assertions )
16851             writeAssertion( assertion );
16852     }
16853 
writeAssertion(AssertionStats const & stats)16854     void JunitReporter::writeAssertion( AssertionStats const& stats ) {
16855         AssertionResult const& result = stats.assertionResult;
16856         if( !result.isOk() ) {
16857             std::string elementName;
16858             switch( result.getResultType() ) {
16859                 case ResultWas::ThrewException:
16860                 case ResultWas::FatalErrorCondition:
16861                     elementName = "error";
16862                     break;
16863                 case ResultWas::ExplicitFailure:
16864                 case ResultWas::ExpressionFailed:
16865                 case ResultWas::DidntThrowException:
16866                     elementName = "failure";
16867                     break;
16868 
16869                 // We should never see these here:
16870                 case ResultWas::Info:
16871                 case ResultWas::Warning:
16872                 case ResultWas::Ok:
16873                 case ResultWas::Unknown:
16874                 case ResultWas::FailureBit:
16875                 case ResultWas::Exception:
16876                     elementName = "internalError";
16877                     break;
16878             }
16879 
16880             XmlWriter::ScopedElement e = xml.scopedElement( elementName );
16881 
16882             xml.writeAttribute( "message", result.getExpression() );
16883             xml.writeAttribute( "type", result.getTestMacroName() );
16884 
16885             ReusableStringStream rss;
16886             if (stats.totals.assertions.total() > 0) {
16887                 rss << "FAILED" << ":\n";
16888                 if (result.hasExpression()) {
16889                     rss << "  ";
16890                     rss << result.getExpressionInMacro();
16891                     rss << '\n';
16892                 }
16893                 if (result.hasExpandedExpression()) {
16894                     rss << "with expansion:\n";
16895                     rss << Column(result.getExpandedExpression()).indent(2) << '\n';
16896                 }
16897             } else {
16898                 rss << '\n';
16899             }
16900 
16901             if( !result.getMessage().empty() )
16902                 rss << result.getMessage() << '\n';
16903             for( auto const& msg : stats.infoMessages )
16904                 if( msg.type == ResultWas::Info )
16905                     rss << msg.message << '\n';
16906 
16907             rss << "at " << result.getSourceInfo();
16908             xml.writeText( rss.str(), XmlFormatting::Newline );
16909         }
16910     }
16911 
16912     CATCH_REGISTER_REPORTER( "junit", JunitReporter )
16913 
16914 } // end namespace Catch
16915 // end catch_reporter_junit.cpp
16916 // start catch_reporter_listening.cpp
16917 
16918 #include <cassert>
16919 
16920 namespace Catch {
16921 
ListeningReporter()16922     ListeningReporter::ListeningReporter() {
16923         // We will assume that listeners will always want all assertions
16924         m_preferences.shouldReportAllAssertions = true;
16925     }
16926 
addListener(IStreamingReporterPtr && listener)16927     void ListeningReporter::addListener( IStreamingReporterPtr&& listener ) {
16928         m_listeners.push_back( std::move( listener ) );
16929     }
16930 
addReporter(IStreamingReporterPtr && reporter)16931     void ListeningReporter::addReporter(IStreamingReporterPtr&& reporter) {
16932         assert(!m_reporter && "Listening reporter can wrap only 1 real reporter");
16933         m_reporter = std::move( reporter );
16934         m_preferences.shouldRedirectStdOut = m_reporter->getPreferences().shouldRedirectStdOut;
16935     }
16936 
getPreferences() const16937     ReporterPreferences ListeningReporter::getPreferences() const {
16938         return m_preferences;
16939     }
16940 
getSupportedVerbosities()16941     std::set<Verbosity> ListeningReporter::getSupportedVerbosities() {
16942         return std::set<Verbosity>{ };
16943     }
16944 
noMatchingTestCases(std::string const & spec)16945     void ListeningReporter::noMatchingTestCases( std::string const& spec ) {
16946         for ( auto const& listener : m_listeners ) {
16947             listener->noMatchingTestCases( spec );
16948         }
16949         m_reporter->noMatchingTestCases( spec );
16950     }
16951 
reportInvalidArguments(std::string const & arg)16952     void ListeningReporter::reportInvalidArguments(std::string const&arg){
16953         for ( auto const& listener : m_listeners ) {
16954             listener->reportInvalidArguments( arg );
16955         }
16956         m_reporter->reportInvalidArguments( arg );
16957     }
16958 
16959 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
benchmarkPreparing(std::string const & name)16960     void ListeningReporter::benchmarkPreparing( std::string const& name ) {
16961       for (auto const& listener : m_listeners) {
16962          listener->benchmarkPreparing(name);
16963       }
16964       m_reporter->benchmarkPreparing(name);
16965    }
benchmarkStarting(BenchmarkInfo const & benchmarkInfo)16966     void ListeningReporter::benchmarkStarting( BenchmarkInfo const& benchmarkInfo ) {
16967         for ( auto const& listener : m_listeners ) {
16968             listener->benchmarkStarting( benchmarkInfo );
16969         }
16970         m_reporter->benchmarkStarting( benchmarkInfo );
16971     }
benchmarkEnded(BenchmarkStats<> const & benchmarkStats)16972     void ListeningReporter::benchmarkEnded( BenchmarkStats<> const& benchmarkStats ) {
16973         for ( auto const& listener : m_listeners ) {
16974             listener->benchmarkEnded( benchmarkStats );
16975         }
16976         m_reporter->benchmarkEnded( benchmarkStats );
16977     }
16978 
benchmarkFailed(std::string const & error)16979    void ListeningReporter::benchmarkFailed( std::string const& error ) {
16980       for (auto const& listener : m_listeners) {
16981          listener->benchmarkFailed(error);
16982       }
16983       m_reporter->benchmarkFailed(error);
16984    }
16985 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
16986 
testRunStarting(TestRunInfo const & testRunInfo)16987     void ListeningReporter::testRunStarting( TestRunInfo const& testRunInfo ) {
16988         for ( auto const& listener : m_listeners ) {
16989             listener->testRunStarting( testRunInfo );
16990         }
16991         m_reporter->testRunStarting( testRunInfo );
16992     }
16993 
testGroupStarting(GroupInfo const & groupInfo)16994     void ListeningReporter::testGroupStarting( GroupInfo const& groupInfo ) {
16995         for ( auto const& listener : m_listeners ) {
16996             listener->testGroupStarting( groupInfo );
16997         }
16998         m_reporter->testGroupStarting( groupInfo );
16999     }
17000 
testCaseStarting(TestCaseInfo const & testInfo)17001     void ListeningReporter::testCaseStarting( TestCaseInfo const& testInfo ) {
17002         for ( auto const& listener : m_listeners ) {
17003             listener->testCaseStarting( testInfo );
17004         }
17005         m_reporter->testCaseStarting( testInfo );
17006     }
17007 
sectionStarting(SectionInfo const & sectionInfo)17008     void ListeningReporter::sectionStarting( SectionInfo const& sectionInfo ) {
17009         for ( auto const& listener : m_listeners ) {
17010             listener->sectionStarting( sectionInfo );
17011         }
17012         m_reporter->sectionStarting( sectionInfo );
17013     }
17014 
assertionStarting(AssertionInfo const & assertionInfo)17015     void ListeningReporter::assertionStarting( AssertionInfo const& assertionInfo ) {
17016         for ( auto const& listener : m_listeners ) {
17017             listener->assertionStarting( assertionInfo );
17018         }
17019         m_reporter->assertionStarting( assertionInfo );
17020     }
17021 
17022     // The return value indicates if the messages buffer should be cleared:
assertionEnded(AssertionStats const & assertionStats)17023     bool ListeningReporter::assertionEnded( AssertionStats const& assertionStats ) {
17024         for( auto const& listener : m_listeners ) {
17025             static_cast<void>( listener->assertionEnded( assertionStats ) );
17026         }
17027         return m_reporter->assertionEnded( assertionStats );
17028     }
17029 
sectionEnded(SectionStats const & sectionStats)17030     void ListeningReporter::sectionEnded( SectionStats const& sectionStats ) {
17031         for ( auto const& listener : m_listeners ) {
17032             listener->sectionEnded( sectionStats );
17033         }
17034         m_reporter->sectionEnded( sectionStats );
17035     }
17036 
testCaseEnded(TestCaseStats const & testCaseStats)17037     void ListeningReporter::testCaseEnded( TestCaseStats const& testCaseStats ) {
17038         for ( auto const& listener : m_listeners ) {
17039             listener->testCaseEnded( testCaseStats );
17040         }
17041         m_reporter->testCaseEnded( testCaseStats );
17042     }
17043 
testGroupEnded(TestGroupStats const & testGroupStats)17044     void ListeningReporter::testGroupEnded( TestGroupStats const& testGroupStats ) {
17045         for ( auto const& listener : m_listeners ) {
17046             listener->testGroupEnded( testGroupStats );
17047         }
17048         m_reporter->testGroupEnded( testGroupStats );
17049     }
17050 
testRunEnded(TestRunStats const & testRunStats)17051     void ListeningReporter::testRunEnded( TestRunStats const& testRunStats ) {
17052         for ( auto const& listener : m_listeners ) {
17053             listener->testRunEnded( testRunStats );
17054         }
17055         m_reporter->testRunEnded( testRunStats );
17056     }
17057 
skipTest(TestCaseInfo const & testInfo)17058     void ListeningReporter::skipTest( TestCaseInfo const& testInfo ) {
17059         for ( auto const& listener : m_listeners ) {
17060             listener->skipTest( testInfo );
17061         }
17062         m_reporter->skipTest( testInfo );
17063     }
17064 
isMulti() const17065     bool ListeningReporter::isMulti() const {
17066         return true;
17067     }
17068 
17069 } // end namespace Catch
17070 // end catch_reporter_listening.cpp
17071 // start catch_reporter_xml.cpp
17072 
17073 #if defined(_MSC_VER)
17074 #pragma warning(push)
17075 #pragma warning(disable:4061) // Not all labels are EXPLICITLY handled in switch
17076                               // Note that 4062 (not all labels are handled
17077                               // and default is missing) is enabled
17078 #endif
17079 
17080 namespace Catch {
XmlReporter(ReporterConfig const & _config)17081     XmlReporter::XmlReporter( ReporterConfig const& _config )
17082     :   StreamingReporterBase( _config ),
17083         m_xml(_config.stream())
17084     {
17085         m_reporterPrefs.shouldRedirectStdOut = true;
17086         m_reporterPrefs.shouldReportAllAssertions = true;
17087     }
17088 
17089     XmlReporter::~XmlReporter() = default;
17090 
getDescription()17091     std::string XmlReporter::getDescription() {
17092         return "Reports test results as an XML document";
17093     }
17094 
getStylesheetRef() const17095     std::string XmlReporter::getStylesheetRef() const {
17096         return std::string();
17097     }
17098 
writeSourceInfo(SourceLineInfo const & sourceInfo)17099     void XmlReporter::writeSourceInfo( SourceLineInfo const& sourceInfo ) {
17100         m_xml
17101             .writeAttribute( "filename", sourceInfo.file )
17102             .writeAttribute( "line", sourceInfo.line );
17103     }
17104 
noMatchingTestCases(std::string const & s)17105     void XmlReporter::noMatchingTestCases( std::string const& s ) {
17106         StreamingReporterBase::noMatchingTestCases( s );
17107     }
17108 
testRunStarting(TestRunInfo const & testInfo)17109     void XmlReporter::testRunStarting( TestRunInfo const& testInfo ) {
17110         StreamingReporterBase::testRunStarting( testInfo );
17111         std::string stylesheetRef = getStylesheetRef();
17112         if( !stylesheetRef.empty() )
17113             m_xml.writeStylesheetRef( stylesheetRef );
17114         m_xml.startElement( "Catch" );
17115         if( !m_config->name().empty() )
17116             m_xml.writeAttribute( "name", m_config->name() );
17117         if (m_config->testSpec().hasFilters())
17118             m_xml.writeAttribute( "filters", serializeFilters( m_config->getTestsOrTags() ) );
17119         if( m_config->rngSeed() != 0 )
17120             m_xml.scopedElement( "Randomness" )
17121                 .writeAttribute( "seed", m_config->rngSeed() );
17122     }
17123 
testGroupStarting(GroupInfo const & groupInfo)17124     void XmlReporter::testGroupStarting( GroupInfo const& groupInfo ) {
17125         StreamingReporterBase::testGroupStarting( groupInfo );
17126         m_xml.startElement( "Group" )
17127             .writeAttribute( "name", groupInfo.name );
17128     }
17129 
testCaseStarting(TestCaseInfo const & testInfo)17130     void XmlReporter::testCaseStarting( TestCaseInfo const& testInfo ) {
17131         StreamingReporterBase::testCaseStarting(testInfo);
17132         m_xml.startElement( "TestCase" )
17133             .writeAttribute( "name", trim( testInfo.name ) )
17134             .writeAttribute( "description", testInfo.description )
17135             .writeAttribute( "tags", testInfo.tagsAsString() );
17136 
17137         writeSourceInfo( testInfo.lineInfo );
17138 
17139         if ( m_config->showDurations() == ShowDurations::Always )
17140             m_testCaseTimer.start();
17141         m_xml.ensureTagClosed();
17142     }
17143 
sectionStarting(SectionInfo const & sectionInfo)17144     void XmlReporter::sectionStarting( SectionInfo const& sectionInfo ) {
17145         StreamingReporterBase::sectionStarting( sectionInfo );
17146         if( m_sectionDepth++ > 0 ) {
17147             m_xml.startElement( "Section" )
17148                 .writeAttribute( "name", trim( sectionInfo.name ) );
17149             writeSourceInfo( sectionInfo.lineInfo );
17150             m_xml.ensureTagClosed();
17151         }
17152     }
17153 
assertionStarting(AssertionInfo const &)17154     void XmlReporter::assertionStarting( AssertionInfo const& ) { }
17155 
assertionEnded(AssertionStats const & assertionStats)17156     bool XmlReporter::assertionEnded( AssertionStats const& assertionStats ) {
17157 
17158         AssertionResult const& result = assertionStats.assertionResult;
17159 
17160         bool includeResults = m_config->includeSuccessfulResults() || !result.isOk();
17161 
17162         if( includeResults || result.getResultType() == ResultWas::Warning ) {
17163             // Print any info messages in <Info> tags.
17164             for( auto const& msg : assertionStats.infoMessages ) {
17165                 if( msg.type == ResultWas::Info && includeResults ) {
17166                     m_xml.scopedElement( "Info" )
17167                             .writeText( msg.message );
17168                 } else if ( msg.type == ResultWas::Warning ) {
17169                     m_xml.scopedElement( "Warning" )
17170                             .writeText( msg.message );
17171                 }
17172             }
17173         }
17174 
17175         // Drop out if result was successful but we're not printing them.
17176         if( !includeResults && result.getResultType() != ResultWas::Warning )
17177             return true;
17178 
17179         // Print the expression if there is one.
17180         if( result.hasExpression() ) {
17181             m_xml.startElement( "Expression" )
17182                 .writeAttribute( "success", result.succeeded() )
17183                 .writeAttribute( "type", result.getTestMacroName() );
17184 
17185             writeSourceInfo( result.getSourceInfo() );
17186 
17187             m_xml.scopedElement( "Original" )
17188                 .writeText( result.getExpression() );
17189             m_xml.scopedElement( "Expanded" )
17190                 .writeText( result.getExpandedExpression() );
17191         }
17192 
17193         // And... Print a result applicable to each result type.
17194         switch( result.getResultType() ) {
17195             case ResultWas::ThrewException:
17196                 m_xml.startElement( "Exception" );
17197                 writeSourceInfo( result.getSourceInfo() );
17198                 m_xml.writeText( result.getMessage() );
17199                 m_xml.endElement();
17200                 break;
17201             case ResultWas::FatalErrorCondition:
17202                 m_xml.startElement( "FatalErrorCondition" );
17203                 writeSourceInfo( result.getSourceInfo() );
17204                 m_xml.writeText( result.getMessage() );
17205                 m_xml.endElement();
17206                 break;
17207             case ResultWas::Info:
17208                 m_xml.scopedElement( "Info" )
17209                     .writeText( result.getMessage() );
17210                 break;
17211             case ResultWas::Warning:
17212                 // Warning will already have been written
17213                 break;
17214             case ResultWas::ExplicitFailure:
17215                 m_xml.startElement( "Failure" );
17216                 writeSourceInfo( result.getSourceInfo() );
17217                 m_xml.writeText( result.getMessage() );
17218                 m_xml.endElement();
17219                 break;
17220             default:
17221                 break;
17222         }
17223 
17224         if( result.hasExpression() )
17225             m_xml.endElement();
17226 
17227         return true;
17228     }
17229 
sectionEnded(SectionStats const & sectionStats)17230     void XmlReporter::sectionEnded( SectionStats const& sectionStats ) {
17231         StreamingReporterBase::sectionEnded( sectionStats );
17232         if( --m_sectionDepth > 0 ) {
17233             XmlWriter::ScopedElement e = m_xml.scopedElement( "OverallResults" );
17234             e.writeAttribute( "successes", sectionStats.assertions.passed );
17235             e.writeAttribute( "failures", sectionStats.assertions.failed );
17236             e.writeAttribute( "expectedFailures", sectionStats.assertions.failedButOk );
17237 
17238             if ( m_config->showDurations() == ShowDurations::Always )
17239                 e.writeAttribute( "durationInSeconds", sectionStats.durationInSeconds );
17240 
17241             m_xml.endElement();
17242         }
17243     }
17244 
testCaseEnded(TestCaseStats const & testCaseStats)17245     void XmlReporter::testCaseEnded( TestCaseStats const& testCaseStats ) {
17246         StreamingReporterBase::testCaseEnded( testCaseStats );
17247         XmlWriter::ScopedElement e = m_xml.scopedElement( "OverallResult" );
17248         e.writeAttribute( "success", testCaseStats.totals.assertions.allOk() );
17249 
17250         if ( m_config->showDurations() == ShowDurations::Always )
17251             e.writeAttribute( "durationInSeconds", m_testCaseTimer.getElapsedSeconds() );
17252 
17253         if( !testCaseStats.stdOut.empty() )
17254             m_xml.scopedElement( "StdOut" ).writeText( trim( testCaseStats.stdOut ), XmlFormatting::Newline );
17255         if( !testCaseStats.stdErr.empty() )
17256             m_xml.scopedElement( "StdErr" ).writeText( trim( testCaseStats.stdErr ), XmlFormatting::Newline );
17257 
17258         m_xml.endElement();
17259     }
17260 
testGroupEnded(TestGroupStats const & testGroupStats)17261     void XmlReporter::testGroupEnded( TestGroupStats const& testGroupStats ) {
17262         StreamingReporterBase::testGroupEnded( testGroupStats );
17263         // TODO: Check testGroupStats.aborting and act accordingly.
17264         m_xml.scopedElement( "OverallResults" )
17265             .writeAttribute( "successes", testGroupStats.totals.assertions.passed )
17266             .writeAttribute( "failures", testGroupStats.totals.assertions.failed )
17267             .writeAttribute( "expectedFailures", testGroupStats.totals.assertions.failedButOk );
17268         m_xml.scopedElement( "OverallResultsCases")
17269             .writeAttribute( "successes", testGroupStats.totals.testCases.passed )
17270             .writeAttribute( "failures", testGroupStats.totals.testCases.failed )
17271             .writeAttribute( "expectedFailures", testGroupStats.totals.testCases.failedButOk );
17272         m_xml.endElement();
17273     }
17274 
testRunEnded(TestRunStats const & testRunStats)17275     void XmlReporter::testRunEnded( TestRunStats const& testRunStats ) {
17276         StreamingReporterBase::testRunEnded( testRunStats );
17277         m_xml.scopedElement( "OverallResults" )
17278             .writeAttribute( "successes", testRunStats.totals.assertions.passed )
17279             .writeAttribute( "failures", testRunStats.totals.assertions.failed )
17280             .writeAttribute( "expectedFailures", testRunStats.totals.assertions.failedButOk );
17281         m_xml.scopedElement( "OverallResultsCases")
17282             .writeAttribute( "successes", testRunStats.totals.testCases.passed )
17283             .writeAttribute( "failures", testRunStats.totals.testCases.failed )
17284             .writeAttribute( "expectedFailures", testRunStats.totals.testCases.failedButOk );
17285         m_xml.endElement();
17286     }
17287 
17288 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
benchmarkPreparing(std::string const & name)17289     void XmlReporter::benchmarkPreparing(std::string const& name) {
17290         m_xml.startElement("BenchmarkResults")
17291             .writeAttribute("name", name);
17292     }
17293 
benchmarkStarting(BenchmarkInfo const & info)17294     void XmlReporter::benchmarkStarting(BenchmarkInfo const &info) {
17295         m_xml.writeAttribute("samples", info.samples)
17296             .writeAttribute("resamples", info.resamples)
17297             .writeAttribute("iterations", info.iterations)
17298             .writeAttribute("clockResolution", info.clockResolution)
17299             .writeAttribute("estimatedDuration", info.estimatedDuration)
17300             .writeComment("All values in nano seconds");
17301     }
17302 
benchmarkEnded(BenchmarkStats<> const & benchmarkStats)17303     void XmlReporter::benchmarkEnded(BenchmarkStats<> const& benchmarkStats) {
17304         m_xml.startElement("mean")
17305             .writeAttribute("value", benchmarkStats.mean.point.count())
17306             .writeAttribute("lowerBound", benchmarkStats.mean.lower_bound.count())
17307             .writeAttribute("upperBound", benchmarkStats.mean.upper_bound.count())
17308             .writeAttribute("ci", benchmarkStats.mean.confidence_interval);
17309         m_xml.endElement();
17310         m_xml.startElement("standardDeviation")
17311             .writeAttribute("value", benchmarkStats.standardDeviation.point.count())
17312             .writeAttribute("lowerBound", benchmarkStats.standardDeviation.lower_bound.count())
17313             .writeAttribute("upperBound", benchmarkStats.standardDeviation.upper_bound.count())
17314             .writeAttribute("ci", benchmarkStats.standardDeviation.confidence_interval);
17315         m_xml.endElement();
17316         m_xml.startElement("outliers")
17317             .writeAttribute("variance", benchmarkStats.outlierVariance)
17318             .writeAttribute("lowMild", benchmarkStats.outliers.low_mild)
17319             .writeAttribute("lowSevere", benchmarkStats.outliers.low_severe)
17320             .writeAttribute("highMild", benchmarkStats.outliers.high_mild)
17321             .writeAttribute("highSevere", benchmarkStats.outliers.high_severe);
17322         m_xml.endElement();
17323         m_xml.endElement();
17324     }
17325 
benchmarkFailed(std::string const & error)17326     void XmlReporter::benchmarkFailed(std::string const &error) {
17327         m_xml.scopedElement("failed").
17328             writeAttribute("message", error);
17329         m_xml.endElement();
17330     }
17331 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
17332 
17333     CATCH_REGISTER_REPORTER( "xml", XmlReporter )
17334 
17335 } // end namespace Catch
17336 
17337 #if defined(_MSC_VER)
17338 #pragma warning(pop)
17339 #endif
17340 // end catch_reporter_xml.cpp
17341 
17342 namespace Catch {
17343     LeakDetector leakDetector;
17344 }
17345 
17346 #ifdef __clang__
17347 #pragma clang diagnostic pop
17348 #endif
17349 
17350 // end catch_impl.hpp
17351 #endif
17352 
17353 #ifdef CATCH_CONFIG_MAIN
17354 // start catch_default_main.hpp
17355 
17356 #ifndef __OBJC__
17357 
17358 #if defined(CATCH_CONFIG_WCHAR) && defined(CATCH_PLATFORM_WINDOWS) && defined(_UNICODE) && !defined(DO_NOT_USE_WMAIN)
17359 // Standard C/C++ Win32 Unicode wmain entry point
wmain(int argc,wchar_t * argv[],wchar_t * [])17360 extern "C" int wmain (int argc, wchar_t * argv[], wchar_t * []) {
17361 #else
17362 // Standard C/C++ main entry point
17363 int main (int argc, char * argv[]) {
17364 #endif
17365 
17366     return Catch::Session().run( argc, argv );
17367 }
17368 
17369 #else // __OBJC__
17370 
17371 // Objective-C entry point
17372 int main (int argc, char * const argv[]) {
17373 #if !CATCH_ARC_ENABLED
17374     NSAutoreleasePool * pool = [[NSAutoreleasePool alloc] init];
17375 #endif
17376 
17377     Catch::registerTestMethods();
17378     int result = Catch::Session().run( argc, (char**)argv );
17379 
17380 #if !CATCH_ARC_ENABLED
17381     [pool drain];
17382 #endif
17383 
17384     return result;
17385 }
17386 
17387 #endif // __OBJC__
17388 
17389 // end catch_default_main.hpp
17390 #endif
17391 
17392 #if !defined(CATCH_CONFIG_IMPL_ONLY)
17393 
17394 #ifdef CLARA_CONFIG_MAIN_NOT_DEFINED
17395 #  undef CLARA_CONFIG_MAIN
17396 #endif
17397 
17398 #if !defined(CATCH_CONFIG_DISABLE)
17399 //////
17400 // If this config identifier is defined then all CATCH macros are prefixed with CATCH_
17401 #ifdef CATCH_CONFIG_PREFIX_ALL
17402 
17403 #define CATCH_REQUIRE( ... ) INTERNAL_CATCH_TEST( "CATCH_REQUIRE", Catch::ResultDisposition::Normal, __VA_ARGS__ )
17404 #define CATCH_REQUIRE_FALSE( ... ) INTERNAL_CATCH_TEST( "CATCH_REQUIRE_FALSE", Catch::ResultDisposition::Normal | Catch::ResultDisposition::FalseTest, __VA_ARGS__ )
17405 
17406 #define CATCH_REQUIRE_THROWS( ... ) INTERNAL_CATCH_THROWS( "CATCH_REQUIRE_THROWS", Catch::ResultDisposition::Normal, __VA_ARGS__ )
17407 #define CATCH_REQUIRE_THROWS_AS( expr, exceptionType ) INTERNAL_CATCH_THROWS_AS( "CATCH_REQUIRE_THROWS_AS", exceptionType, Catch::ResultDisposition::Normal, expr )
17408 #define CATCH_REQUIRE_THROWS_WITH( expr, matcher ) INTERNAL_CATCH_THROWS_STR_MATCHES( "CATCH_REQUIRE_THROWS_WITH", Catch::ResultDisposition::Normal, matcher, expr )
17409 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
17410 #define CATCH_REQUIRE_THROWS_MATCHES( expr, exceptionType, matcher ) INTERNAL_CATCH_THROWS_MATCHES( "CATCH_REQUIRE_THROWS_MATCHES", exceptionType, Catch::ResultDisposition::Normal, matcher, expr )
17411 #endif// CATCH_CONFIG_DISABLE_MATCHERS
17412 #define CATCH_REQUIRE_NOTHROW( ... ) INTERNAL_CATCH_NO_THROW( "CATCH_REQUIRE_NOTHROW", Catch::ResultDisposition::Normal, __VA_ARGS__ )
17413 
17414 #define CATCH_CHECK( ... ) INTERNAL_CATCH_TEST( "CATCH_CHECK", Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17415 #define CATCH_CHECK_FALSE( ... ) INTERNAL_CATCH_TEST( "CATCH_CHECK_FALSE", Catch::ResultDisposition::ContinueOnFailure | Catch::ResultDisposition::FalseTest, __VA_ARGS__ )
17416 #define CATCH_CHECKED_IF( ... ) INTERNAL_CATCH_IF( "CATCH_CHECKED_IF", Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17417 #define CATCH_CHECKED_ELSE( ... ) INTERNAL_CATCH_ELSE( "CATCH_CHECKED_ELSE", Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17418 #define CATCH_CHECK_NOFAIL( ... ) INTERNAL_CATCH_TEST( "CATCH_CHECK_NOFAIL", Catch::ResultDisposition::ContinueOnFailure | Catch::ResultDisposition::SuppressFail, __VA_ARGS__ )
17419 
17420 #define CATCH_CHECK_THROWS( ... )  INTERNAL_CATCH_THROWS( "CATCH_CHECK_THROWS", Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17421 #define CATCH_CHECK_THROWS_AS( expr, exceptionType ) INTERNAL_CATCH_THROWS_AS( "CATCH_CHECK_THROWS_AS", exceptionType, Catch::ResultDisposition::ContinueOnFailure, expr )
17422 #define CATCH_CHECK_THROWS_WITH( expr, matcher ) INTERNAL_CATCH_THROWS_STR_MATCHES( "CATCH_CHECK_THROWS_WITH", Catch::ResultDisposition::ContinueOnFailure, matcher, expr )
17423 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
17424 #define CATCH_CHECK_THROWS_MATCHES( expr, exceptionType, matcher ) INTERNAL_CATCH_THROWS_MATCHES( "CATCH_CHECK_THROWS_MATCHES", exceptionType, Catch::ResultDisposition::ContinueOnFailure, matcher, expr )
17425 #endif // CATCH_CONFIG_DISABLE_MATCHERS
17426 #define CATCH_CHECK_NOTHROW( ... ) INTERNAL_CATCH_NO_THROW( "CATCH_CHECK_NOTHROW", Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17427 
17428 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
17429 #define CATCH_CHECK_THAT( arg, matcher ) INTERNAL_CHECK_THAT( "CATCH_CHECK_THAT", matcher, Catch::ResultDisposition::ContinueOnFailure, arg )
17430 
17431 #define CATCH_REQUIRE_THAT( arg, matcher ) INTERNAL_CHECK_THAT( "CATCH_REQUIRE_THAT", matcher, Catch::ResultDisposition::Normal, arg )
17432 #endif // CATCH_CONFIG_DISABLE_MATCHERS
17433 
17434 #define CATCH_INFO( msg ) INTERNAL_CATCH_INFO( "CATCH_INFO", msg )
17435 #define CATCH_UNSCOPED_INFO( msg ) INTERNAL_CATCH_UNSCOPED_INFO( "CATCH_UNSCOPED_INFO", msg )
17436 #define CATCH_WARN( msg ) INTERNAL_CATCH_MSG( "CATCH_WARN", Catch::ResultWas::Warning, Catch::ResultDisposition::ContinueOnFailure, msg )
17437 #define CATCH_CAPTURE( ... ) INTERNAL_CATCH_CAPTURE( INTERNAL_CATCH_UNIQUE_NAME(capturer), "CATCH_CAPTURE",__VA_ARGS__ )
17438 
17439 #define CATCH_TEST_CASE( ... ) INTERNAL_CATCH_TESTCASE( __VA_ARGS__ )
17440 #define CATCH_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_TEST_CASE_METHOD( className, __VA_ARGS__ )
17441 #define CATCH_METHOD_AS_TEST_CASE( method, ... ) INTERNAL_CATCH_METHOD_AS_TEST_CASE( method, __VA_ARGS__ )
17442 #define CATCH_REGISTER_TEST_CASE( Function, ... ) INTERNAL_CATCH_REGISTER_TESTCASE( Function, __VA_ARGS__ )
17443 #define CATCH_SECTION( ... ) INTERNAL_CATCH_SECTION( __VA_ARGS__ )
17444 #define CATCH_DYNAMIC_SECTION( ... ) INTERNAL_CATCH_DYNAMIC_SECTION( __VA_ARGS__ )
17445 #define CATCH_FAIL( ... ) INTERNAL_CATCH_MSG( "CATCH_FAIL", Catch::ResultWas::ExplicitFailure, Catch::ResultDisposition::Normal, __VA_ARGS__ )
17446 #define CATCH_FAIL_CHECK( ... ) INTERNAL_CATCH_MSG( "CATCH_FAIL_CHECK", Catch::ResultWas::ExplicitFailure, Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17447 #define CATCH_SUCCEED( ... ) INTERNAL_CATCH_MSG( "CATCH_SUCCEED", Catch::ResultWas::Ok, Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17448 
17449 #define CATCH_ANON_TEST_CASE() INTERNAL_CATCH_TESTCASE()
17450 
17451 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
17452 #define CATCH_TEMPLATE_TEST_CASE( ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE( __VA_ARGS__ )
17453 #define CATCH_TEMPLATE_TEST_CASE_SIG( ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_SIG( __VA_ARGS__ )
17454 #define CATCH_TEMPLATE_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD( className, __VA_ARGS__ )
17455 #define CATCH_TEMPLATE_TEST_CASE_METHOD_SIG( className, ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_SIG( className, __VA_ARGS__ )
17456 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE( ... ) INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE( __VA_ARGS__ )
17457 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE_SIG( ... ) INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_SIG( __VA_ARGS__ )
17458 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD( className, __VA_ARGS__ )
17459 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( className, ... ) INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( className, __VA_ARGS__ )
17460 #else
17461 #define CATCH_TEMPLATE_TEST_CASE( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE( __VA_ARGS__ ) )
17462 #define CATCH_TEMPLATE_TEST_CASE_SIG( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_SIG( __VA_ARGS__ ) )
17463 #define CATCH_TEMPLATE_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD( className, __VA_ARGS__ ) )
17464 #define CATCH_TEMPLATE_TEST_CASE_METHOD_SIG( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_SIG( className, __VA_ARGS__ ) )
17465 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE( __VA_ARGS__ ) )
17466 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE_SIG( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_SIG( __VA_ARGS__ ) )
17467 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD( className, __VA_ARGS__ ) )
17468 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( className, __VA_ARGS__ ) )
17469 #endif
17470 
17471 #if !defined(CATCH_CONFIG_RUNTIME_STATIC_REQUIRE)
17472 #define CATCH_STATIC_REQUIRE( ... )       static_assert(   __VA_ARGS__ ,      #__VA_ARGS__ );     CATCH_SUCCEED( #__VA_ARGS__ )
17473 #define CATCH_STATIC_REQUIRE_FALSE( ... ) static_assert( !(__VA_ARGS__), "!(" #__VA_ARGS__ ")" ); CATCH_SUCCEED( #__VA_ARGS__ )
17474 #else
17475 #define CATCH_STATIC_REQUIRE( ... )       CATCH_REQUIRE( __VA_ARGS__ )
17476 #define CATCH_STATIC_REQUIRE_FALSE( ... ) CATCH_REQUIRE_FALSE( __VA_ARGS__ )
17477 #endif
17478 
17479 // "BDD-style" convenience wrappers
17480 #define CATCH_SCENARIO( ... ) CATCH_TEST_CASE( "Scenario: " __VA_ARGS__ )
17481 #define CATCH_SCENARIO_METHOD( className, ... ) INTERNAL_CATCH_TEST_CASE_METHOD( className, "Scenario: " __VA_ARGS__ )
17482 #define CATCH_GIVEN( desc )     INTERNAL_CATCH_DYNAMIC_SECTION( "    Given: " << desc )
17483 #define CATCH_AND_GIVEN( desc ) INTERNAL_CATCH_DYNAMIC_SECTION( "And given: " << desc )
17484 #define CATCH_WHEN( desc )      INTERNAL_CATCH_DYNAMIC_SECTION( "     When: " << desc )
17485 #define CATCH_AND_WHEN( desc )  INTERNAL_CATCH_DYNAMIC_SECTION( " And when: " << desc )
17486 #define CATCH_THEN( desc )      INTERNAL_CATCH_DYNAMIC_SECTION( "     Then: " << desc )
17487 #define CATCH_AND_THEN( desc )  INTERNAL_CATCH_DYNAMIC_SECTION( "      And: " << desc )
17488 
17489 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
17490 #define CATCH_BENCHMARK(...) \
17491     INTERNAL_CATCH_BENCHMARK(INTERNAL_CATCH_UNIQUE_NAME(____C_A_T_C_H____B_E_N_C_H____), INTERNAL_CATCH_GET_1_ARG(__VA_ARGS__,,), INTERNAL_CATCH_GET_2_ARG(__VA_ARGS__,,))
17492 #define CATCH_BENCHMARK_ADVANCED(name) \
17493     INTERNAL_CATCH_BENCHMARK_ADVANCED(INTERNAL_CATCH_UNIQUE_NAME(____C_A_T_C_H____B_E_N_C_H____), name)
17494 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
17495 
17496 // If CATCH_CONFIG_PREFIX_ALL is not defined then the CATCH_ prefix is not required
17497 #else
17498 
17499 #define REQUIRE( ... ) INTERNAL_CATCH_TEST( "REQUIRE", Catch::ResultDisposition::Normal, __VA_ARGS__  )
17500 #define REQUIRE_FALSE( ... ) INTERNAL_CATCH_TEST( "REQUIRE_FALSE", Catch::ResultDisposition::Normal | Catch::ResultDisposition::FalseTest, __VA_ARGS__ )
17501 
17502 #define REQUIRE_THROWS( ... ) INTERNAL_CATCH_THROWS( "REQUIRE_THROWS", Catch::ResultDisposition::Normal, __VA_ARGS__ )
17503 #define REQUIRE_THROWS_AS( expr, exceptionType ) INTERNAL_CATCH_THROWS_AS( "REQUIRE_THROWS_AS", exceptionType, Catch::ResultDisposition::Normal, expr )
17504 #define REQUIRE_THROWS_WITH( expr, matcher ) INTERNAL_CATCH_THROWS_STR_MATCHES( "REQUIRE_THROWS_WITH", Catch::ResultDisposition::Normal, matcher, expr )
17505 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
17506 #define REQUIRE_THROWS_MATCHES( expr, exceptionType, matcher ) INTERNAL_CATCH_THROWS_MATCHES( "REQUIRE_THROWS_MATCHES", exceptionType, Catch::ResultDisposition::Normal, matcher, expr )
17507 #endif // CATCH_CONFIG_DISABLE_MATCHERS
17508 #define REQUIRE_NOTHROW( ... ) INTERNAL_CATCH_NO_THROW( "REQUIRE_NOTHROW", Catch::ResultDisposition::Normal, __VA_ARGS__ )
17509 
17510 #define CHECK( ... ) INTERNAL_CATCH_TEST( "CHECK", Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17511 #define CHECK_FALSE( ... ) INTERNAL_CATCH_TEST( "CHECK_FALSE", Catch::ResultDisposition::ContinueOnFailure | Catch::ResultDisposition::FalseTest, __VA_ARGS__ )
17512 #define CHECKED_IF( ... ) INTERNAL_CATCH_IF( "CHECKED_IF", Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17513 #define CHECKED_ELSE( ... ) INTERNAL_CATCH_ELSE( "CHECKED_ELSE", Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17514 #define CHECK_NOFAIL( ... ) INTERNAL_CATCH_TEST( "CHECK_NOFAIL", Catch::ResultDisposition::ContinueOnFailure | Catch::ResultDisposition::SuppressFail, __VA_ARGS__ )
17515 
17516 #define CHECK_THROWS( ... )  INTERNAL_CATCH_THROWS( "CHECK_THROWS", Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17517 #define CHECK_THROWS_AS( expr, exceptionType ) INTERNAL_CATCH_THROWS_AS( "CHECK_THROWS_AS", exceptionType, Catch::ResultDisposition::ContinueOnFailure, expr )
17518 #define CHECK_THROWS_WITH( expr, matcher ) INTERNAL_CATCH_THROWS_STR_MATCHES( "CHECK_THROWS_WITH", Catch::ResultDisposition::ContinueOnFailure, matcher, expr )
17519 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
17520 #define CHECK_THROWS_MATCHES( expr, exceptionType, matcher ) INTERNAL_CATCH_THROWS_MATCHES( "CHECK_THROWS_MATCHES", exceptionType, Catch::ResultDisposition::ContinueOnFailure, matcher, expr )
17521 #endif // CATCH_CONFIG_DISABLE_MATCHERS
17522 #define CHECK_NOTHROW( ... ) INTERNAL_CATCH_NO_THROW( "CHECK_NOTHROW", Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17523 
17524 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
17525 #define CHECK_THAT( arg, matcher ) INTERNAL_CHECK_THAT( "CHECK_THAT", matcher, Catch::ResultDisposition::ContinueOnFailure, arg )
17526 
17527 #define REQUIRE_THAT( arg, matcher ) INTERNAL_CHECK_THAT( "REQUIRE_THAT", matcher, Catch::ResultDisposition::Normal, arg )
17528 #endif // CATCH_CONFIG_DISABLE_MATCHERS
17529 
17530 #define INFO( msg ) INTERNAL_CATCH_INFO( "INFO", msg )
17531 #define UNSCOPED_INFO( msg ) INTERNAL_CATCH_UNSCOPED_INFO( "UNSCOPED_INFO", msg )
17532 #define WARN( msg ) INTERNAL_CATCH_MSG( "WARN", Catch::ResultWas::Warning, Catch::ResultDisposition::ContinueOnFailure, msg )
17533 #define CAPTURE( ... ) INTERNAL_CATCH_CAPTURE( INTERNAL_CATCH_UNIQUE_NAME(capturer), "CAPTURE",__VA_ARGS__ )
17534 
17535 #define TEST_CASE( ... ) INTERNAL_CATCH_TESTCASE( __VA_ARGS__ )
17536 #define TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_TEST_CASE_METHOD( className, __VA_ARGS__ )
17537 #define METHOD_AS_TEST_CASE( method, ... ) INTERNAL_CATCH_METHOD_AS_TEST_CASE( method, __VA_ARGS__ )
17538 #define REGISTER_TEST_CASE( Function, ... ) INTERNAL_CATCH_REGISTER_TESTCASE( Function, __VA_ARGS__ )
17539 #define SECTION( ... ) INTERNAL_CATCH_SECTION( __VA_ARGS__ )
17540 #define DYNAMIC_SECTION( ... ) INTERNAL_CATCH_DYNAMIC_SECTION( __VA_ARGS__ )
17541 #define FAIL( ... ) INTERNAL_CATCH_MSG( "FAIL", Catch::ResultWas::ExplicitFailure, Catch::ResultDisposition::Normal, __VA_ARGS__ )
17542 #define FAIL_CHECK( ... ) INTERNAL_CATCH_MSG( "FAIL_CHECK", Catch::ResultWas::ExplicitFailure, Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17543 #define SUCCEED( ... ) INTERNAL_CATCH_MSG( "SUCCEED", Catch::ResultWas::Ok, Catch::ResultDisposition::ContinueOnFailure, __VA_ARGS__ )
17544 #define ANON_TEST_CASE() INTERNAL_CATCH_TESTCASE()
17545 
17546 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
17547 #define TEMPLATE_TEST_CASE( ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE( __VA_ARGS__ )
17548 #define TEMPLATE_TEST_CASE_SIG( ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_SIG( __VA_ARGS__ )
17549 #define TEMPLATE_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD( className, __VA_ARGS__ )
17550 #define TEMPLATE_TEST_CASE_METHOD_SIG( className, ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_SIG( className, __VA_ARGS__ )
17551 #define TEMPLATE_PRODUCT_TEST_CASE( ... ) INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE( __VA_ARGS__ )
17552 #define TEMPLATE_PRODUCT_TEST_CASE_SIG( ... ) INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_SIG( __VA_ARGS__ )
17553 #define TEMPLATE_PRODUCT_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD( className, __VA_ARGS__ )
17554 #define TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( className, ... ) INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( className, __VA_ARGS__ )
17555 #define TEMPLATE_LIST_TEST_CASE( ... ) INTERNAL_CATCH_TEMPLATE_LIST_TEST_CASE(__VA_ARGS__)
17556 #define TEMPLATE_LIST_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_TEMPLATE_LIST_TEST_CASE_METHOD( className, __VA_ARGS__ )
17557 #else
17558 #define TEMPLATE_TEST_CASE( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE( __VA_ARGS__ ) )
17559 #define TEMPLATE_TEST_CASE_SIG( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_SIG( __VA_ARGS__ ) )
17560 #define TEMPLATE_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD( className, __VA_ARGS__ ) )
17561 #define TEMPLATE_TEST_CASE_METHOD_SIG( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_SIG( className, __VA_ARGS__ ) )
17562 #define TEMPLATE_PRODUCT_TEST_CASE( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE( __VA_ARGS__ ) )
17563 #define TEMPLATE_PRODUCT_TEST_CASE_SIG( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_SIG( __VA_ARGS__ ) )
17564 #define TEMPLATE_PRODUCT_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD( className, __VA_ARGS__ ) )
17565 #define TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( className, __VA_ARGS__ ) )
17566 #define TEMPLATE_LIST_TEST_CASE( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_LIST_TEST_CASE( __VA_ARGS__ ) )
17567 #define TEMPLATE_LIST_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_LIST_TEST_CASE_METHOD( className, __VA_ARGS__ ) )
17568 #endif
17569 
17570 #if !defined(CATCH_CONFIG_RUNTIME_STATIC_REQUIRE)
17571 #define STATIC_REQUIRE( ... )       static_assert(   __VA_ARGS__,  #__VA_ARGS__ ); SUCCEED( #__VA_ARGS__ )
17572 #define STATIC_REQUIRE_FALSE( ... ) static_assert( !(__VA_ARGS__), "!(" #__VA_ARGS__ ")" ); SUCCEED( "!(" #__VA_ARGS__ ")" )
17573 #else
17574 #define STATIC_REQUIRE( ... )       REQUIRE( __VA_ARGS__ )
17575 #define STATIC_REQUIRE_FALSE( ... ) REQUIRE_FALSE( __VA_ARGS__ )
17576 #endif
17577 
17578 #endif
17579 
17580 #define CATCH_TRANSLATE_EXCEPTION( signature ) INTERNAL_CATCH_TRANSLATE_EXCEPTION( signature )
17581 
17582 // "BDD-style" convenience wrappers
17583 #define SCENARIO( ... ) TEST_CASE( "Scenario: " __VA_ARGS__ )
17584 #define SCENARIO_METHOD( className, ... ) INTERNAL_CATCH_TEST_CASE_METHOD( className, "Scenario: " __VA_ARGS__ )
17585 
17586 #define GIVEN( desc )     INTERNAL_CATCH_DYNAMIC_SECTION( "    Given: " << desc )
17587 #define AND_GIVEN( desc ) INTERNAL_CATCH_DYNAMIC_SECTION( "And given: " << desc )
17588 #define WHEN( desc )      INTERNAL_CATCH_DYNAMIC_SECTION( "     When: " << desc )
17589 #define AND_WHEN( desc )  INTERNAL_CATCH_DYNAMIC_SECTION( " And when: " << desc )
17590 #define THEN( desc )      INTERNAL_CATCH_DYNAMIC_SECTION( "     Then: " << desc )
17591 #define AND_THEN( desc )  INTERNAL_CATCH_DYNAMIC_SECTION( "      And: " << desc )
17592 
17593 #if defined(CATCH_CONFIG_ENABLE_BENCHMARKING)
17594 #define BENCHMARK(...) \
17595     INTERNAL_CATCH_BENCHMARK(INTERNAL_CATCH_UNIQUE_NAME(____C_A_T_C_H____B_E_N_C_H____), INTERNAL_CATCH_GET_1_ARG(__VA_ARGS__,,), INTERNAL_CATCH_GET_2_ARG(__VA_ARGS__,,))
17596 #define BENCHMARK_ADVANCED(name) \
17597     INTERNAL_CATCH_BENCHMARK_ADVANCED(INTERNAL_CATCH_UNIQUE_NAME(____C_A_T_C_H____B_E_N_C_H____), name)
17598 #endif // CATCH_CONFIG_ENABLE_BENCHMARKING
17599 
17600 using Catch::Detail::Approx;
17601 
17602 #else // CATCH_CONFIG_DISABLE
17603 
17604 //////
17605 // If this config identifier is defined then all CATCH macros are prefixed with CATCH_
17606 #ifdef CATCH_CONFIG_PREFIX_ALL
17607 
17608 #define CATCH_REQUIRE( ... )        (void)(0)
17609 #define CATCH_REQUIRE_FALSE( ... )  (void)(0)
17610 
17611 #define CATCH_REQUIRE_THROWS( ... ) (void)(0)
17612 #define CATCH_REQUIRE_THROWS_AS( expr, exceptionType ) (void)(0)
17613 #define CATCH_REQUIRE_THROWS_WITH( expr, matcher )     (void)(0)
17614 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
17615 #define CATCH_REQUIRE_THROWS_MATCHES( expr, exceptionType, matcher ) (void)(0)
17616 #endif// CATCH_CONFIG_DISABLE_MATCHERS
17617 #define CATCH_REQUIRE_NOTHROW( ... ) (void)(0)
17618 
17619 #define CATCH_CHECK( ... )         (void)(0)
17620 #define CATCH_CHECK_FALSE( ... )   (void)(0)
17621 #define CATCH_CHECKED_IF( ... )    if (__VA_ARGS__)
17622 #define CATCH_CHECKED_ELSE( ... )  if (!(__VA_ARGS__))
17623 #define CATCH_CHECK_NOFAIL( ... )  (void)(0)
17624 
17625 #define CATCH_CHECK_THROWS( ... )  (void)(0)
17626 #define CATCH_CHECK_THROWS_AS( expr, exceptionType ) (void)(0)
17627 #define CATCH_CHECK_THROWS_WITH( expr, matcher )     (void)(0)
17628 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
17629 #define CATCH_CHECK_THROWS_MATCHES( expr, exceptionType, matcher ) (void)(0)
17630 #endif // CATCH_CONFIG_DISABLE_MATCHERS
17631 #define CATCH_CHECK_NOTHROW( ... ) (void)(0)
17632 
17633 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
17634 #define CATCH_CHECK_THAT( arg, matcher )   (void)(0)
17635 
17636 #define CATCH_REQUIRE_THAT( arg, matcher ) (void)(0)
17637 #endif // CATCH_CONFIG_DISABLE_MATCHERS
17638 
17639 #define CATCH_INFO( msg )          (void)(0)
17640 #define CATCH_UNSCOPED_INFO( msg ) (void)(0)
17641 #define CATCH_WARN( msg )          (void)(0)
17642 #define CATCH_CAPTURE( msg )       (void)(0)
17643 
17644 #define CATCH_TEST_CASE( ... ) INTERNAL_CATCH_TESTCASE_NO_REGISTRATION(INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_S_T____ ))
17645 #define CATCH_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_TESTCASE_NO_REGISTRATION(INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_S_T____ ))
17646 #define CATCH_METHOD_AS_TEST_CASE( method, ... )
17647 #define CATCH_REGISTER_TEST_CASE( Function, ... ) (void)(0)
17648 #define CATCH_SECTION( ... )
17649 #define CATCH_DYNAMIC_SECTION( ... )
17650 #define CATCH_FAIL( ... ) (void)(0)
17651 #define CATCH_FAIL_CHECK( ... ) (void)(0)
17652 #define CATCH_SUCCEED( ... ) (void)(0)
17653 
17654 #define CATCH_ANON_TEST_CASE() INTERNAL_CATCH_TESTCASE_NO_REGISTRATION(INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_S_T____ ))
17655 
17656 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
17657 #define CATCH_TEMPLATE_TEST_CASE( ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_NO_REGISTRATION(__VA_ARGS__)
17658 #define CATCH_TEMPLATE_TEST_CASE_SIG( ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_SIG_NO_REGISTRATION(__VA_ARGS__)
17659 #define CATCH_TEMPLATE_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_NO_REGISTRATION(className, __VA_ARGS__)
17660 #define CATCH_TEMPLATE_TEST_CASE_METHOD_SIG( className, ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_SIG_NO_REGISTRATION(className, __VA_ARGS__ )
17661 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE( ... ) CATCH_TEMPLATE_TEST_CASE( __VA_ARGS__ )
17662 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE_SIG( ... ) CATCH_TEMPLATE_TEST_CASE( __VA_ARGS__ )
17663 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD( className, ... ) CATCH_TEMPLATE_TEST_CASE_METHOD( className, __VA_ARGS__ )
17664 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( className, ... ) CATCH_TEMPLATE_TEST_CASE_METHOD( className, __VA_ARGS__ )
17665 #else
17666 #define CATCH_TEMPLATE_TEST_CASE( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_NO_REGISTRATION(__VA_ARGS__) )
17667 #define CATCH_TEMPLATE_TEST_CASE_SIG( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_SIG_NO_REGISTRATION(__VA_ARGS__) )
17668 #define CATCH_TEMPLATE_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_NO_REGISTRATION(className, __VA_ARGS__ ) )
17669 #define CATCH_TEMPLATE_TEST_CASE_METHOD_SIG( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_SIG_NO_REGISTRATION(className, __VA_ARGS__ ) )
17670 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE( ... ) CATCH_TEMPLATE_TEST_CASE( __VA_ARGS__ )
17671 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE_SIG( ... ) CATCH_TEMPLATE_TEST_CASE( __VA_ARGS__ )
17672 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD( className, ... ) CATCH_TEMPLATE_TEST_CASE_METHOD( className, __VA_ARGS__ )
17673 #define CATCH_TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( className, ... ) CATCH_TEMPLATE_TEST_CASE_METHOD( className, __VA_ARGS__ )
17674 #endif
17675 
17676 // "BDD-style" convenience wrappers
17677 #define CATCH_SCENARIO( ... ) INTERNAL_CATCH_TESTCASE_NO_REGISTRATION(INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_S_T____ ))
17678 #define CATCH_SCENARIO_METHOD( className, ... ) INTERNAL_CATCH_TESTCASE_METHOD_NO_REGISTRATION(INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_S_T____ ), className )
17679 #define CATCH_GIVEN( desc )
17680 #define CATCH_AND_GIVEN( desc )
17681 #define CATCH_WHEN( desc )
17682 #define CATCH_AND_WHEN( desc )
17683 #define CATCH_THEN( desc )
17684 #define CATCH_AND_THEN( desc )
17685 
17686 #define CATCH_STATIC_REQUIRE( ... )       (void)(0)
17687 #define CATCH_STATIC_REQUIRE_FALSE( ... ) (void)(0)
17688 
17689 // If CATCH_CONFIG_PREFIX_ALL is not defined then the CATCH_ prefix is not required
17690 #else
17691 
17692 #define REQUIRE( ... )       (void)(0)
17693 #define REQUIRE_FALSE( ... ) (void)(0)
17694 
17695 #define REQUIRE_THROWS( ... ) (void)(0)
17696 #define REQUIRE_THROWS_AS( expr, exceptionType ) (void)(0)
17697 #define REQUIRE_THROWS_WITH( expr, matcher ) (void)(0)
17698 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
17699 #define REQUIRE_THROWS_MATCHES( expr, exceptionType, matcher ) (void)(0)
17700 #endif // CATCH_CONFIG_DISABLE_MATCHERS
17701 #define REQUIRE_NOTHROW( ... ) (void)(0)
17702 
17703 #define CHECK( ... ) (void)(0)
17704 #define CHECK_FALSE( ... ) (void)(0)
17705 #define CHECKED_IF( ... ) if (__VA_ARGS__)
17706 #define CHECKED_ELSE( ... ) if (!(__VA_ARGS__))
17707 #define CHECK_NOFAIL( ... ) (void)(0)
17708 
17709 #define CHECK_THROWS( ... )  (void)(0)
17710 #define CHECK_THROWS_AS( expr, exceptionType ) (void)(0)
17711 #define CHECK_THROWS_WITH( expr, matcher ) (void)(0)
17712 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
17713 #define CHECK_THROWS_MATCHES( expr, exceptionType, matcher ) (void)(0)
17714 #endif // CATCH_CONFIG_DISABLE_MATCHERS
17715 #define CHECK_NOTHROW( ... ) (void)(0)
17716 
17717 #if !defined(CATCH_CONFIG_DISABLE_MATCHERS)
17718 #define CHECK_THAT( arg, matcher ) (void)(0)
17719 
17720 #define REQUIRE_THAT( arg, matcher ) (void)(0)
17721 #endif // CATCH_CONFIG_DISABLE_MATCHERS
17722 
17723 #define INFO( msg ) (void)(0)
17724 #define UNSCOPED_INFO( msg ) (void)(0)
17725 #define WARN( msg ) (void)(0)
17726 #define CAPTURE( msg ) (void)(0)
17727 
17728 #define TEST_CASE( ... )  INTERNAL_CATCH_TESTCASE_NO_REGISTRATION(INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_S_T____ ))
17729 #define TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_TESTCASE_NO_REGISTRATION(INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_S_T____ ))
17730 #define METHOD_AS_TEST_CASE( method, ... )
17731 #define REGISTER_TEST_CASE( Function, ... ) (void)(0)
17732 #define SECTION( ... )
17733 #define DYNAMIC_SECTION( ... )
17734 #define FAIL( ... ) (void)(0)
17735 #define FAIL_CHECK( ... ) (void)(0)
17736 #define SUCCEED( ... ) (void)(0)
17737 #define ANON_TEST_CASE() INTERNAL_CATCH_TESTCASE_NO_REGISTRATION(INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_S_T____ ))
17738 
17739 #ifndef CATCH_CONFIG_TRADITIONAL_MSVC_PREPROCESSOR
17740 #define TEMPLATE_TEST_CASE( ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_NO_REGISTRATION(__VA_ARGS__)
17741 #define TEMPLATE_TEST_CASE_SIG( ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_SIG_NO_REGISTRATION(__VA_ARGS__)
17742 #define TEMPLATE_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_NO_REGISTRATION(className, __VA_ARGS__)
17743 #define TEMPLATE_TEST_CASE_METHOD_SIG( className, ... ) INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_SIG_NO_REGISTRATION(className, __VA_ARGS__ )
17744 #define TEMPLATE_PRODUCT_TEST_CASE( ... ) TEMPLATE_TEST_CASE( __VA_ARGS__ )
17745 #define TEMPLATE_PRODUCT_TEST_CASE_SIG( ... ) TEMPLATE_TEST_CASE( __VA_ARGS__ )
17746 #define TEMPLATE_PRODUCT_TEST_CASE_METHOD( className, ... ) TEMPLATE_TEST_CASE_METHOD( className, __VA_ARGS__ )
17747 #define TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( className, ... ) TEMPLATE_TEST_CASE_METHOD( className, __VA_ARGS__ )
17748 #else
17749 #define TEMPLATE_TEST_CASE( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_NO_REGISTRATION(__VA_ARGS__) )
17750 #define TEMPLATE_TEST_CASE_SIG( ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_SIG_NO_REGISTRATION(__VA_ARGS__) )
17751 #define TEMPLATE_TEST_CASE_METHOD( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_NO_REGISTRATION(className, __VA_ARGS__ ) )
17752 #define TEMPLATE_TEST_CASE_METHOD_SIG( className, ... ) INTERNAL_CATCH_EXPAND_VARGS( INTERNAL_CATCH_TEMPLATE_TEST_CASE_METHOD_SIG_NO_REGISTRATION(className, __VA_ARGS__ ) )
17753 #define TEMPLATE_PRODUCT_TEST_CASE( ... ) TEMPLATE_TEST_CASE( __VA_ARGS__ )
17754 #define TEMPLATE_PRODUCT_TEST_CASE_SIG( ... ) TEMPLATE_TEST_CASE( __VA_ARGS__ )
17755 #define TEMPLATE_PRODUCT_TEST_CASE_METHOD( className, ... ) TEMPLATE_TEST_CASE_METHOD( className, __VA_ARGS__ )
17756 #define TEMPLATE_PRODUCT_TEST_CASE_METHOD_SIG( className, ... ) TEMPLATE_TEST_CASE_METHOD( className, __VA_ARGS__ )
17757 #endif
17758 
17759 #define STATIC_REQUIRE( ... )       (void)(0)
17760 #define STATIC_REQUIRE_FALSE( ... ) (void)(0)
17761 
17762 #endif
17763 
17764 #define CATCH_TRANSLATE_EXCEPTION( signature ) INTERNAL_CATCH_TRANSLATE_EXCEPTION_NO_REG( INTERNAL_CATCH_UNIQUE_NAME( catch_internal_ExceptionTranslator ), signature )
17765 
17766 // "BDD-style" convenience wrappers
17767 #define SCENARIO( ... ) INTERNAL_CATCH_TESTCASE_NO_REGISTRATION(INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_S_T____ ) )
17768 #define SCENARIO_METHOD( className, ... ) INTERNAL_CATCH_TESTCASE_METHOD_NO_REGISTRATION(INTERNAL_CATCH_UNIQUE_NAME( ____C_A_T_C_H____T_E_S_T____ ), className )
17769 
17770 #define GIVEN( desc )
17771 #define AND_GIVEN( desc )
17772 #define WHEN( desc )
17773 #define AND_WHEN( desc )
17774 #define THEN( desc )
17775 #define AND_THEN( desc )
17776 
17777 using Catch::Detail::Approx;
17778 
17779 #endif
17780 
17781 #endif // ! CATCH_CONFIG_IMPL_ONLY
17782 
17783 // start catch_reenable_warnings.h
17784 
17785 
17786 #ifdef __clang__
17787 #    ifdef __ICC // icpc defines the __clang__ macro
17788 #        pragma warning(pop)
17789 #    else
17790 #        pragma clang diagnostic pop
17791 #    endif
17792 #elif defined __GNUC__
17793 #    pragma GCC diagnostic pop
17794 #endif
17795 
17796 // end catch_reenable_warnings.h
17797 // end catch.hpp
17798 #endif // TWOBLUECUBES_SINGLE_INCLUDE_CATCH_HPP_INCLUDED
17799 
17800