1 //===--- ParseDeclCXX.cpp - C++ Declaration Parsing -------------*- C++ -*-===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 //  This file implements the C++ Declaration portions of the Parser interfaces.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "clang/Parse/Parser.h"
14 #include "clang/AST/ASTContext.h"
15 #include "clang/AST/DeclTemplate.h"
16 #include "clang/AST/PrettyDeclStackTrace.h"
17 #include "clang/Basic/Attributes.h"
18 #include "clang/Basic/CharInfo.h"
19 #include "clang/Basic/OperatorKinds.h"
20 #include "clang/Basic/TargetInfo.h"
21 #include "clang/Parse/ParseDiagnostic.h"
22 #include "clang/Parse/RAIIObjectsForParser.h"
23 #include "clang/Sema/DeclSpec.h"
24 #include "clang/Sema/ParsedTemplate.h"
25 #include "clang/Sema/Scope.h"
26 #include "llvm/ADT/SmallString.h"
27 #include "llvm/Support/TimeProfiler.h"
28 
29 using namespace clang;
30 
31 /// ParseNamespace - We know that the current token is a namespace keyword. This
32 /// may either be a top level namespace or a block-level namespace alias. If
33 /// there was an inline keyword, it has already been parsed.
34 ///
35 ///       namespace-definition: [C++: namespace.def]
36 ///         named-namespace-definition
37 ///         unnamed-namespace-definition
38 ///         nested-namespace-definition
39 ///
40 ///       named-namespace-definition:
41 ///         'inline'[opt] 'namespace' attributes[opt] identifier '{'
42 ///         namespace-body '}'
43 ///
44 ///       unnamed-namespace-definition:
45 ///         'inline'[opt] 'namespace' attributes[opt] '{' namespace-body '}'
46 ///
47 ///       nested-namespace-definition:
48 ///         'namespace' enclosing-namespace-specifier '::' 'inline'[opt]
49 ///         identifier '{' namespace-body '}'
50 ///
51 ///       enclosing-namespace-specifier:
52 ///         identifier
53 ///         enclosing-namespace-specifier '::' 'inline'[opt] identifier
54 ///
55 ///       namespace-alias-definition:  [C++ 7.3.2: namespace.alias]
56 ///         'namespace' identifier '=' qualified-namespace-specifier ';'
57 ///
58 Parser::DeclGroupPtrTy Parser::ParseNamespace(DeclaratorContext Context,
59                                               SourceLocation &DeclEnd,
60                                               SourceLocation InlineLoc) {
61   assert(Tok.is(tok::kw_namespace) && "Not a namespace!");
62   SourceLocation NamespaceLoc = ConsumeToken();  // eat the 'namespace'.
63   ObjCDeclContextSwitch ObjCDC(*this);
64 
65   if (Tok.is(tok::code_completion)) {
66     cutOffParsing();
67     Actions.CodeCompleteNamespaceDecl(getCurScope());
68     return nullptr;
69   }
70 
71   SourceLocation IdentLoc;
72   IdentifierInfo *Ident = nullptr;
73   InnerNamespaceInfoList ExtraNSs;
74   SourceLocation FirstNestedInlineLoc;
75 
76   ParsedAttributesWithRange attrs(AttrFactory);
77   SourceLocation attrLoc;
78   if (getLangOpts().CPlusPlus11 && isCXX11AttributeSpecifier()) {
79     Diag(Tok.getLocation(), getLangOpts().CPlusPlus17
80                                 ? diag::warn_cxx14_compat_ns_enum_attribute
81                                 : diag::ext_ns_enum_attribute)
82       << 0 /*namespace*/;
83     attrLoc = Tok.getLocation();
84     ParseCXX11Attributes(attrs);
85   }
86 
87   if (Tok.is(tok::identifier)) {
88     Ident = Tok.getIdentifierInfo();
89     IdentLoc = ConsumeToken();  // eat the identifier.
90     while (Tok.is(tok::coloncolon) &&
91            (NextToken().is(tok::identifier) ||
92             (NextToken().is(tok::kw_inline) &&
93              GetLookAheadToken(2).is(tok::identifier)))) {
94 
95       InnerNamespaceInfo Info;
96       Info.NamespaceLoc = ConsumeToken();
97 
98       if (Tok.is(tok::kw_inline)) {
99         Info.InlineLoc = ConsumeToken();
100         if (FirstNestedInlineLoc.isInvalid())
101           FirstNestedInlineLoc = Info.InlineLoc;
102       }
103 
104       Info.Ident = Tok.getIdentifierInfo();
105       Info.IdentLoc = ConsumeToken();
106 
107       ExtraNSs.push_back(Info);
108     }
109   }
110 
111   // A nested namespace definition cannot have attributes.
112   if (!ExtraNSs.empty() && attrLoc.isValid())
113     Diag(attrLoc, diag::err_unexpected_nested_namespace_attribute);
114 
115   // Read label attributes, if present.
116   if (Tok.is(tok::kw___attribute)) {
117     attrLoc = Tok.getLocation();
118     ParseGNUAttributes(attrs);
119   }
120 
121   if (Tok.is(tok::equal)) {
122     if (!Ident) {
123       Diag(Tok, diag::err_expected) << tok::identifier;
124       // Skip to end of the definition and eat the ';'.
125       SkipUntil(tok::semi);
126       return nullptr;
127     }
128     if (attrLoc.isValid())
129       Diag(attrLoc, diag::err_unexpected_namespace_attributes_alias);
130     if (InlineLoc.isValid())
131       Diag(InlineLoc, diag::err_inline_namespace_alias)
132           << FixItHint::CreateRemoval(InlineLoc);
133     Decl *NSAlias = ParseNamespaceAlias(NamespaceLoc, IdentLoc, Ident, DeclEnd);
134     return Actions.ConvertDeclToDeclGroup(NSAlias);
135   }
136 
137   BalancedDelimiterTracker T(*this, tok::l_brace);
138   if (T.consumeOpen()) {
139     if (Ident)
140       Diag(Tok, diag::err_expected) << tok::l_brace;
141     else
142       Diag(Tok, diag::err_expected_either) << tok::identifier << tok::l_brace;
143     return nullptr;
144   }
145 
146   if (getCurScope()->isClassScope() || getCurScope()->isTemplateParamScope() ||
147       getCurScope()->isInObjcMethodScope() || getCurScope()->getBlockParent() ||
148       getCurScope()->getFnParent()) {
149     Diag(T.getOpenLocation(), diag::err_namespace_nonnamespace_scope);
150     SkipUntil(tok::r_brace);
151     return nullptr;
152   }
153 
154   if (ExtraNSs.empty()) {
155     // Normal namespace definition, not a nested-namespace-definition.
156   } else if (InlineLoc.isValid()) {
157     Diag(InlineLoc, diag::err_inline_nested_namespace_definition);
158   } else if (getLangOpts().CPlusPlus20) {
159     Diag(ExtraNSs[0].NamespaceLoc,
160          diag::warn_cxx14_compat_nested_namespace_definition);
161     if (FirstNestedInlineLoc.isValid())
162       Diag(FirstNestedInlineLoc,
163            diag::warn_cxx17_compat_inline_nested_namespace_definition);
164   } else if (getLangOpts().CPlusPlus17) {
165     Diag(ExtraNSs[0].NamespaceLoc,
166          diag::warn_cxx14_compat_nested_namespace_definition);
167     if (FirstNestedInlineLoc.isValid())
168       Diag(FirstNestedInlineLoc, diag::ext_inline_nested_namespace_definition);
169   } else {
170     TentativeParsingAction TPA(*this);
171     SkipUntil(tok::r_brace, StopBeforeMatch);
172     Token rBraceToken = Tok;
173     TPA.Revert();
174 
175     if (!rBraceToken.is(tok::r_brace)) {
176       Diag(ExtraNSs[0].NamespaceLoc, diag::ext_nested_namespace_definition)
177           << SourceRange(ExtraNSs.front().NamespaceLoc,
178                          ExtraNSs.back().IdentLoc);
179     } else {
180       std::string NamespaceFix;
181       for (const auto &ExtraNS : ExtraNSs) {
182         NamespaceFix += " { ";
183         if (ExtraNS.InlineLoc.isValid())
184           NamespaceFix += "inline ";
185         NamespaceFix += "namespace ";
186         NamespaceFix += ExtraNS.Ident->getName();
187       }
188 
189       std::string RBraces;
190       for (unsigned i = 0, e = ExtraNSs.size(); i != e; ++i)
191         RBraces +=  "} ";
192 
193       Diag(ExtraNSs[0].NamespaceLoc, diag::ext_nested_namespace_definition)
194           << FixItHint::CreateReplacement(
195                  SourceRange(ExtraNSs.front().NamespaceLoc,
196                              ExtraNSs.back().IdentLoc),
197                  NamespaceFix)
198           << FixItHint::CreateInsertion(rBraceToken.getLocation(), RBraces);
199     }
200 
201     // Warn about nested inline namespaces.
202     if (FirstNestedInlineLoc.isValid())
203       Diag(FirstNestedInlineLoc, diag::ext_inline_nested_namespace_definition);
204   }
205 
206   // If we're still good, complain about inline namespaces in non-C++0x now.
207   if (InlineLoc.isValid())
208     Diag(InlineLoc, getLangOpts().CPlusPlus11 ?
209          diag::warn_cxx98_compat_inline_namespace : diag::ext_inline_namespace);
210 
211   // Enter a scope for the namespace.
212   ParseScope NamespaceScope(this, Scope::DeclScope);
213 
214   UsingDirectiveDecl *ImplicitUsingDirectiveDecl = nullptr;
215   Decl *NamespcDecl = Actions.ActOnStartNamespaceDef(
216       getCurScope(), InlineLoc, NamespaceLoc, IdentLoc, Ident,
217       T.getOpenLocation(), attrs, ImplicitUsingDirectiveDecl);
218 
219   PrettyDeclStackTraceEntry CrashInfo(Actions.Context, NamespcDecl,
220                                       NamespaceLoc, "parsing namespace");
221 
222   // Parse the contents of the namespace.  This includes parsing recovery on
223   // any improperly nested namespaces.
224   ParseInnerNamespace(ExtraNSs, 0, InlineLoc, attrs, T);
225 
226   // Leave the namespace scope.
227   NamespaceScope.Exit();
228 
229   DeclEnd = T.getCloseLocation();
230   Actions.ActOnFinishNamespaceDef(NamespcDecl, DeclEnd);
231 
232   return Actions.ConvertDeclToDeclGroup(NamespcDecl,
233                                         ImplicitUsingDirectiveDecl);
234 }
235 
236 /// ParseInnerNamespace - Parse the contents of a namespace.
237 void Parser::ParseInnerNamespace(const InnerNamespaceInfoList &InnerNSs,
238                                  unsigned int index, SourceLocation &InlineLoc,
239                                  ParsedAttributes &attrs,
240                                  BalancedDelimiterTracker &Tracker) {
241   if (index == InnerNSs.size()) {
242     while (!tryParseMisplacedModuleImport() && Tok.isNot(tok::r_brace) &&
243            Tok.isNot(tok::eof)) {
244       ParsedAttributesWithRange attrs(AttrFactory);
245       MaybeParseCXX11Attributes(attrs);
246       ParseExternalDeclaration(attrs);
247     }
248 
249     // The caller is what called check -- we are simply calling
250     // the close for it.
251     Tracker.consumeClose();
252 
253     return;
254   }
255 
256   // Handle a nested namespace definition.
257   // FIXME: Preserve the source information through to the AST rather than
258   // desugaring it here.
259   ParseScope NamespaceScope(this, Scope::DeclScope);
260   UsingDirectiveDecl *ImplicitUsingDirectiveDecl = nullptr;
261   Decl *NamespcDecl = Actions.ActOnStartNamespaceDef(
262       getCurScope(), InnerNSs[index].InlineLoc, InnerNSs[index].NamespaceLoc,
263       InnerNSs[index].IdentLoc, InnerNSs[index].Ident,
264       Tracker.getOpenLocation(), attrs, ImplicitUsingDirectiveDecl);
265   assert(!ImplicitUsingDirectiveDecl &&
266          "nested namespace definition cannot define anonymous namespace");
267 
268   ParseInnerNamespace(InnerNSs, ++index, InlineLoc, attrs, Tracker);
269 
270   NamespaceScope.Exit();
271   Actions.ActOnFinishNamespaceDef(NamespcDecl, Tracker.getCloseLocation());
272 }
273 
274 /// ParseNamespaceAlias - Parse the part after the '=' in a namespace
275 /// alias definition.
276 ///
277 Decl *Parser::ParseNamespaceAlias(SourceLocation NamespaceLoc,
278                                   SourceLocation AliasLoc,
279                                   IdentifierInfo *Alias,
280                                   SourceLocation &DeclEnd) {
281   assert(Tok.is(tok::equal) && "Not equal token");
282 
283   ConsumeToken(); // eat the '='.
284 
285   if (Tok.is(tok::code_completion)) {
286     cutOffParsing();
287     Actions.CodeCompleteNamespaceAliasDecl(getCurScope());
288     return nullptr;
289   }
290 
291   CXXScopeSpec SS;
292   // Parse (optional) nested-name-specifier.
293   ParseOptionalCXXScopeSpecifier(SS, /*ObjectType=*/nullptr,
294                                  /*ObjectHadErrors=*/false,
295                                  /*EnteringContext=*/false,
296                                  /*MayBePseudoDestructor=*/nullptr,
297                                  /*IsTypename=*/false,
298                                  /*LastII=*/nullptr,
299                                  /*OnlyNamespace=*/true);
300 
301   if (Tok.isNot(tok::identifier)) {
302     Diag(Tok, diag::err_expected_namespace_name);
303     // Skip to end of the definition and eat the ';'.
304     SkipUntil(tok::semi);
305     return nullptr;
306   }
307 
308   if (SS.isInvalid()) {
309     // Diagnostics have been emitted in ParseOptionalCXXScopeSpecifier.
310     // Skip to end of the definition and eat the ';'.
311     SkipUntil(tok::semi);
312     return nullptr;
313   }
314 
315   // Parse identifier.
316   IdentifierInfo *Ident = Tok.getIdentifierInfo();
317   SourceLocation IdentLoc = ConsumeToken();
318 
319   // Eat the ';'.
320   DeclEnd = Tok.getLocation();
321   if (ExpectAndConsume(tok::semi, diag::err_expected_semi_after_namespace_name))
322     SkipUntil(tok::semi);
323 
324   return Actions.ActOnNamespaceAliasDef(getCurScope(), NamespaceLoc, AliasLoc,
325                                         Alias, SS, IdentLoc, Ident);
326 }
327 
328 /// ParseLinkage - We know that the current token is a string_literal
329 /// and just before that, that extern was seen.
330 ///
331 ///       linkage-specification: [C++ 7.5p2: dcl.link]
332 ///         'extern' string-literal '{' declaration-seq[opt] '}'
333 ///         'extern' string-literal declaration
334 ///
335 Decl *Parser::ParseLinkage(ParsingDeclSpec &DS, DeclaratorContext Context) {
336   assert(isTokenStringLiteral() && "Not a string literal!");
337   ExprResult Lang = ParseStringLiteralExpression(false);
338 
339   ParseScope LinkageScope(this, Scope::DeclScope);
340   Decl *LinkageSpec =
341       Lang.isInvalid()
342           ? nullptr
343           : Actions.ActOnStartLinkageSpecification(
344                 getCurScope(), DS.getSourceRange().getBegin(), Lang.get(),
345                 Tok.is(tok::l_brace) ? Tok.getLocation() : SourceLocation());
346 
347   ParsedAttributesWithRange attrs(AttrFactory);
348   MaybeParseCXX11Attributes(attrs);
349 
350   if (Tok.isNot(tok::l_brace)) {
351     // Reset the source range in DS, as the leading "extern"
352     // does not really belong to the inner declaration ...
353     DS.SetRangeStart(SourceLocation());
354     DS.SetRangeEnd(SourceLocation());
355     // ... but anyway remember that such an "extern" was seen.
356     DS.setExternInLinkageSpec(true);
357     ParseExternalDeclaration(attrs, &DS);
358     return LinkageSpec ? Actions.ActOnFinishLinkageSpecification(
359                              getCurScope(), LinkageSpec, SourceLocation())
360                        : nullptr;
361   }
362 
363   DS.abort();
364 
365   ProhibitAttributes(attrs);
366 
367   BalancedDelimiterTracker T(*this, tok::l_brace);
368   T.consumeOpen();
369 
370   unsigned NestedModules = 0;
371   while (true) {
372     switch (Tok.getKind()) {
373     case tok::annot_module_begin:
374       ++NestedModules;
375       ParseTopLevelDecl();
376       continue;
377 
378     case tok::annot_module_end:
379       if (!NestedModules)
380         break;
381       --NestedModules;
382       ParseTopLevelDecl();
383       continue;
384 
385     case tok::annot_module_include:
386       ParseTopLevelDecl();
387       continue;
388 
389     case tok::eof:
390       break;
391 
392     case tok::r_brace:
393       if (!NestedModules)
394         break;
395       LLVM_FALLTHROUGH;
396     default:
397       ParsedAttributesWithRange attrs(AttrFactory);
398       MaybeParseCXX11Attributes(attrs);
399       ParseExternalDeclaration(attrs);
400       continue;
401     }
402 
403     break;
404   }
405 
406   T.consumeClose();
407   return LinkageSpec ? Actions.ActOnFinishLinkageSpecification(
408                            getCurScope(), LinkageSpec, T.getCloseLocation())
409                      : nullptr;
410 }
411 
412 /// Parse a C++ Modules TS export-declaration.
413 ///
414 ///       export-declaration:
415 ///         'export' declaration
416 ///         'export' '{' declaration-seq[opt] '}'
417 ///
418 Decl *Parser::ParseExportDeclaration() {
419   assert(Tok.is(tok::kw_export));
420   SourceLocation ExportLoc = ConsumeToken();
421 
422   ParseScope ExportScope(this, Scope::DeclScope);
423   Decl *ExportDecl = Actions.ActOnStartExportDecl(
424       getCurScope(), ExportLoc,
425       Tok.is(tok::l_brace) ? Tok.getLocation() : SourceLocation());
426 
427   if (Tok.isNot(tok::l_brace)) {
428     // FIXME: Factor out a ParseExternalDeclarationWithAttrs.
429     ParsedAttributesWithRange Attrs(AttrFactory);
430     MaybeParseCXX11Attributes(Attrs);
431     MaybeParseMicrosoftAttributes(Attrs);
432     ParseExternalDeclaration(Attrs);
433     return Actions.ActOnFinishExportDecl(getCurScope(), ExportDecl,
434                                          SourceLocation());
435   }
436 
437   BalancedDelimiterTracker T(*this, tok::l_brace);
438   T.consumeOpen();
439 
440   // The Modules TS draft says "An export-declaration shall declare at least one
441   // entity", but the intent is that it shall contain at least one declaration.
442   if (Tok.is(tok::r_brace) && getLangOpts().ModulesTS) {
443     Diag(ExportLoc, diag::err_export_empty)
444         << SourceRange(ExportLoc, Tok.getLocation());
445   }
446 
447   while (!tryParseMisplacedModuleImport() && Tok.isNot(tok::r_brace) &&
448          Tok.isNot(tok::eof)) {
449     ParsedAttributesWithRange Attrs(AttrFactory);
450     MaybeParseCXX11Attributes(Attrs);
451     MaybeParseMicrosoftAttributes(Attrs);
452     ParseExternalDeclaration(Attrs);
453   }
454 
455   T.consumeClose();
456   return Actions.ActOnFinishExportDecl(getCurScope(), ExportDecl,
457                                        T.getCloseLocation());
458 }
459 
460 /// ParseUsingDirectiveOrDeclaration - Parse C++ using using-declaration or
461 /// using-directive. Assumes that current token is 'using'.
462 Parser::DeclGroupPtrTy
463 Parser::ParseUsingDirectiveOrDeclaration(DeclaratorContext Context,
464                                          const ParsedTemplateInfo &TemplateInfo,
465                                          SourceLocation &DeclEnd,
466                                          ParsedAttributesWithRange &attrs) {
467   assert(Tok.is(tok::kw_using) && "Not using token");
468   ObjCDeclContextSwitch ObjCDC(*this);
469 
470   // Eat 'using'.
471   SourceLocation UsingLoc = ConsumeToken();
472 
473   if (Tok.is(tok::code_completion)) {
474     cutOffParsing();
475     Actions.CodeCompleteUsing(getCurScope());
476     return nullptr;
477   }
478 
479   // Consume unexpected 'template' keywords.
480   while (Tok.is(tok::kw_template)) {
481     SourceLocation TemplateLoc = ConsumeToken();
482     Diag(TemplateLoc, diag::err_unexpected_template_after_using)
483         << FixItHint::CreateRemoval(TemplateLoc);
484   }
485 
486   // 'using namespace' means this is a using-directive.
487   if (Tok.is(tok::kw_namespace)) {
488     // Template parameters are always an error here.
489     if (TemplateInfo.Kind) {
490       SourceRange R = TemplateInfo.getSourceRange();
491       Diag(UsingLoc, diag::err_templated_using_directive_declaration)
492         << 0 /* directive */ << R << FixItHint::CreateRemoval(R);
493     }
494 
495     Decl *UsingDir = ParseUsingDirective(Context, UsingLoc, DeclEnd, attrs);
496     return Actions.ConvertDeclToDeclGroup(UsingDir);
497   }
498 
499   // Otherwise, it must be a using-declaration or an alias-declaration.
500   return ParseUsingDeclaration(Context, TemplateInfo, UsingLoc, DeclEnd, attrs,
501                                AS_none);
502 }
503 
504 /// ParseUsingDirective - Parse C++ using-directive, assumes
505 /// that current token is 'namespace' and 'using' was already parsed.
506 ///
507 ///       using-directive: [C++ 7.3.p4: namespace.udir]
508 ///        'using' 'namespace' ::[opt] nested-name-specifier[opt]
509 ///                 namespace-name ;
510 /// [GNU] using-directive:
511 ///        'using' 'namespace' ::[opt] nested-name-specifier[opt]
512 ///                 namespace-name attributes[opt] ;
513 ///
514 Decl *Parser::ParseUsingDirective(DeclaratorContext Context,
515                                   SourceLocation UsingLoc,
516                                   SourceLocation &DeclEnd,
517                                   ParsedAttributes &attrs) {
518   assert(Tok.is(tok::kw_namespace) && "Not 'namespace' token");
519 
520   // Eat 'namespace'.
521   SourceLocation NamespcLoc = ConsumeToken();
522 
523   if (Tok.is(tok::code_completion)) {
524     cutOffParsing();
525     Actions.CodeCompleteUsingDirective(getCurScope());
526     return nullptr;
527   }
528 
529   CXXScopeSpec SS;
530   // Parse (optional) nested-name-specifier.
531   ParseOptionalCXXScopeSpecifier(SS, /*ObjectType=*/nullptr,
532                                  /*ObjectHadErrors=*/false,
533                                  /*EnteringContext=*/false,
534                                  /*MayBePseudoDestructor=*/nullptr,
535                                  /*IsTypename=*/false,
536                                  /*LastII=*/nullptr,
537                                  /*OnlyNamespace=*/true);
538 
539   IdentifierInfo *NamespcName = nullptr;
540   SourceLocation IdentLoc = SourceLocation();
541 
542   // Parse namespace-name.
543   if (Tok.isNot(tok::identifier)) {
544     Diag(Tok, diag::err_expected_namespace_name);
545     // If there was invalid namespace name, skip to end of decl, and eat ';'.
546     SkipUntil(tok::semi);
547     // FIXME: Are there cases, when we would like to call ActOnUsingDirective?
548     return nullptr;
549   }
550 
551   if (SS.isInvalid()) {
552     // Diagnostics have been emitted in ParseOptionalCXXScopeSpecifier.
553     // Skip to end of the definition and eat the ';'.
554     SkipUntil(tok::semi);
555     return nullptr;
556   }
557 
558   // Parse identifier.
559   NamespcName = Tok.getIdentifierInfo();
560   IdentLoc = ConsumeToken();
561 
562   // Parse (optional) attributes (most likely GNU strong-using extension).
563   bool GNUAttr = false;
564   if (Tok.is(tok::kw___attribute)) {
565     GNUAttr = true;
566     ParseGNUAttributes(attrs);
567   }
568 
569   // Eat ';'.
570   DeclEnd = Tok.getLocation();
571   if (ExpectAndConsume(tok::semi,
572                        GNUAttr ? diag::err_expected_semi_after_attribute_list
573                                : diag::err_expected_semi_after_namespace_name))
574     SkipUntil(tok::semi);
575 
576   return Actions.ActOnUsingDirective(getCurScope(), UsingLoc, NamespcLoc, SS,
577                                      IdentLoc, NamespcName, attrs);
578 }
579 
580 /// Parse a using-declarator (or the identifier in a C++11 alias-declaration).
581 ///
582 ///     using-declarator:
583 ///       'typename'[opt] nested-name-specifier unqualified-id
584 ///
585 bool Parser::ParseUsingDeclarator(DeclaratorContext Context,
586                                   UsingDeclarator &D) {
587   D.clear();
588 
589   // Ignore optional 'typename'.
590   // FIXME: This is wrong; we should parse this as a typename-specifier.
591   TryConsumeToken(tok::kw_typename, D.TypenameLoc);
592 
593   if (Tok.is(tok::kw___super)) {
594     Diag(Tok.getLocation(), diag::err_super_in_using_declaration);
595     return true;
596   }
597 
598   // Parse nested-name-specifier.
599   IdentifierInfo *LastII = nullptr;
600   if (ParseOptionalCXXScopeSpecifier(D.SS, /*ObjectType=*/nullptr,
601                                      /*ObjectHadErrors=*/false,
602                                      /*EnteringContext=*/false,
603                                      /*MayBePseudoDtor=*/nullptr,
604                                      /*IsTypename=*/false,
605                                      /*LastII=*/&LastII,
606                                      /*OnlyNamespace=*/false,
607                                      /*InUsingDeclaration=*/true))
608 
609     return true;
610   if (D.SS.isInvalid())
611     return true;
612 
613   // Parse the unqualified-id. We allow parsing of both constructor and
614   // destructor names and allow the action module to diagnose any semantic
615   // errors.
616   //
617   // C++11 [class.qual]p2:
618   //   [...] in a using-declaration that is a member-declaration, if the name
619   //   specified after the nested-name-specifier is the same as the identifier
620   //   or the simple-template-id's template-name in the last component of the
621   //   nested-name-specifier, the name is [...] considered to name the
622   //   constructor.
623   if (getLangOpts().CPlusPlus11 && Context == DeclaratorContext::Member &&
624       Tok.is(tok::identifier) &&
625       (NextToken().is(tok::semi) || NextToken().is(tok::comma) ||
626        NextToken().is(tok::ellipsis) || NextToken().is(tok::l_square) ||
627        NextToken().is(tok::kw___attribute)) &&
628       D.SS.isNotEmpty() && LastII == Tok.getIdentifierInfo() &&
629       !D.SS.getScopeRep()->getAsNamespace() &&
630       !D.SS.getScopeRep()->getAsNamespaceAlias()) {
631     SourceLocation IdLoc = ConsumeToken();
632     ParsedType Type =
633         Actions.getInheritingConstructorName(D.SS, IdLoc, *LastII);
634     D.Name.setConstructorName(Type, IdLoc, IdLoc);
635   } else {
636     if (ParseUnqualifiedId(
637             D.SS, /*ObjectType=*/nullptr,
638             /*ObjectHadErrors=*/false, /*EnteringContext=*/false,
639             /*AllowDestructorName=*/true,
640             /*AllowConstructorName=*/
641             !(Tok.is(tok::identifier) && NextToken().is(tok::equal)),
642             /*AllowDeductionGuide=*/false, nullptr, D.Name))
643       return true;
644   }
645 
646   if (TryConsumeToken(tok::ellipsis, D.EllipsisLoc))
647     Diag(Tok.getLocation(), getLangOpts().CPlusPlus17 ?
648          diag::warn_cxx17_compat_using_declaration_pack :
649          diag::ext_using_declaration_pack);
650 
651   return false;
652 }
653 
654 /// ParseUsingDeclaration - Parse C++ using-declaration or alias-declaration.
655 /// Assumes that 'using' was already seen.
656 ///
657 ///     using-declaration: [C++ 7.3.p3: namespace.udecl]
658 ///       'using' using-declarator-list[opt] ;
659 ///
660 ///     using-declarator-list: [C++1z]
661 ///       using-declarator '...'[opt]
662 ///       using-declarator-list ',' using-declarator '...'[opt]
663 ///
664 ///     using-declarator-list: [C++98-14]
665 ///       using-declarator
666 ///
667 ///     alias-declaration: C++11 [dcl.dcl]p1
668 ///       'using' identifier attribute-specifier-seq[opt] = type-id ;
669 ///
670 ///     using-enum-declaration: [C++20, dcl.enum]
671 ///       'using' elaborated-enum-specifier ;
672 ///
673 ///     elaborated-enum-specifier:
674 ///       'enum' nested-name-specifier[opt] identifier
675 Parser::DeclGroupPtrTy
676 Parser::ParseUsingDeclaration(
677     DeclaratorContext Context, const ParsedTemplateInfo &TemplateInfo,
678     SourceLocation UsingLoc, SourceLocation &DeclEnd,
679     ParsedAttributesWithRange &PrefixAttrs, AccessSpecifier AS) {
680   SourceLocation UELoc;
681   if (TryConsumeToken(tok::kw_enum, UELoc)) {
682     // C++20 using-enum
683     Diag(UELoc, getLangOpts().CPlusPlus20
684                     ? diag::warn_cxx17_compat_using_enum_declaration
685                     : diag::ext_using_enum_declaration);
686 
687     DiagnoseCXX11AttributeExtension(PrefixAttrs);
688 
689     DeclSpec DS(AttrFactory);
690     ParseEnumSpecifier(UELoc, DS, TemplateInfo, AS,
691                        // DSC_trailing has the semantics we desire
692                        DeclSpecContext::DSC_trailing);
693 
694     if (TemplateInfo.Kind) {
695       SourceRange R = TemplateInfo.getSourceRange();
696       Diag(UsingLoc, diag::err_templated_using_directive_declaration)
697           << 1 /* declaration */ << R << FixItHint::CreateRemoval(R);
698 
699       return nullptr;
700     }
701 
702     Decl *UED = Actions.ActOnUsingEnumDeclaration(getCurScope(), AS, UsingLoc,
703                                                   UELoc, DS);
704     DeclEnd = Tok.getLocation();
705     if (ExpectAndConsume(tok::semi, diag::err_expected_after,
706                          "using-enum declaration"))
707       SkipUntil(tok::semi);
708 
709     return Actions.ConvertDeclToDeclGroup(UED);
710   }
711 
712   // Check for misplaced attributes before the identifier in an
713   // alias-declaration.
714   ParsedAttributesWithRange MisplacedAttrs(AttrFactory);
715   MaybeParseCXX11Attributes(MisplacedAttrs);
716 
717   UsingDeclarator D;
718   bool InvalidDeclarator = ParseUsingDeclarator(Context, D);
719 
720   ParsedAttributesWithRange Attrs(AttrFactory);
721   MaybeParseAttributes(PAKM_GNU | PAKM_CXX11, Attrs);
722 
723   // If we had any misplaced attributes from earlier, this is where they
724   // should have been written.
725   if (MisplacedAttrs.Range.isValid()) {
726     Diag(MisplacedAttrs.Range.getBegin(), diag::err_attributes_not_allowed)
727         << FixItHint::CreateInsertionFromRange(
728                Tok.getLocation(),
729                CharSourceRange::getTokenRange(MisplacedAttrs.Range))
730         << FixItHint::CreateRemoval(MisplacedAttrs.Range);
731     Attrs.takeAllFrom(MisplacedAttrs);
732   }
733 
734   // Maybe this is an alias-declaration.
735   if (Tok.is(tok::equal)) {
736     if (InvalidDeclarator) {
737       SkipUntil(tok::semi);
738       return nullptr;
739     }
740 
741     ProhibitAttributes(PrefixAttrs);
742 
743     Decl *DeclFromDeclSpec = nullptr;
744     Decl *AD = ParseAliasDeclarationAfterDeclarator(
745         TemplateInfo, UsingLoc, D, DeclEnd, AS, Attrs, &DeclFromDeclSpec);
746     return Actions.ConvertDeclToDeclGroup(AD, DeclFromDeclSpec);
747   }
748 
749   DiagnoseCXX11AttributeExtension(PrefixAttrs);
750 
751   // Diagnose an attempt to declare a templated using-declaration.
752   // In C++11, alias-declarations can be templates:
753   //   template <...> using id = type;
754   if (TemplateInfo.Kind) {
755     SourceRange R = TemplateInfo.getSourceRange();
756     Diag(UsingLoc, diag::err_templated_using_directive_declaration)
757       << 1 /* declaration */ << R << FixItHint::CreateRemoval(R);
758 
759     // Unfortunately, we have to bail out instead of recovering by
760     // ignoring the parameters, just in case the nested name specifier
761     // depends on the parameters.
762     return nullptr;
763   }
764 
765   SmallVector<Decl *, 8> DeclsInGroup;
766   while (true) {
767     // Parse (optional) attributes.
768     MaybeParseAttributes(PAKM_GNU | PAKM_CXX11, Attrs);
769     DiagnoseCXX11AttributeExtension(Attrs);
770     Attrs.addAll(PrefixAttrs.begin(), PrefixAttrs.end());
771 
772     if (InvalidDeclarator)
773       SkipUntil(tok::comma, tok::semi, StopBeforeMatch);
774     else {
775       // "typename" keyword is allowed for identifiers only,
776       // because it may be a type definition.
777       if (D.TypenameLoc.isValid() &&
778           D.Name.getKind() != UnqualifiedIdKind::IK_Identifier) {
779         Diag(D.Name.getSourceRange().getBegin(),
780              diag::err_typename_identifiers_only)
781             << FixItHint::CreateRemoval(SourceRange(D.TypenameLoc));
782         // Proceed parsing, but discard the typename keyword.
783         D.TypenameLoc = SourceLocation();
784       }
785 
786       Decl *UD = Actions.ActOnUsingDeclaration(getCurScope(), AS, UsingLoc,
787                                                D.TypenameLoc, D.SS, D.Name,
788                                                D.EllipsisLoc, Attrs);
789       if (UD)
790         DeclsInGroup.push_back(UD);
791     }
792 
793     if (!TryConsumeToken(tok::comma))
794       break;
795 
796     // Parse another using-declarator.
797     Attrs.clear();
798     InvalidDeclarator = ParseUsingDeclarator(Context, D);
799   }
800 
801   if (DeclsInGroup.size() > 1)
802     Diag(Tok.getLocation(), getLangOpts().CPlusPlus17 ?
803          diag::warn_cxx17_compat_multi_using_declaration :
804          diag::ext_multi_using_declaration);
805 
806   // Eat ';'.
807   DeclEnd = Tok.getLocation();
808   if (ExpectAndConsume(tok::semi, diag::err_expected_after,
809                        !Attrs.empty()    ? "attributes list"
810                        : UELoc.isValid() ? "using-enum declaration"
811                                          : "using declaration"))
812     SkipUntil(tok::semi);
813 
814   return Actions.BuildDeclaratorGroup(DeclsInGroup);
815 }
816 
817 Decl *Parser::ParseAliasDeclarationAfterDeclarator(
818     const ParsedTemplateInfo &TemplateInfo, SourceLocation UsingLoc,
819     UsingDeclarator &D, SourceLocation &DeclEnd, AccessSpecifier AS,
820     ParsedAttributes &Attrs, Decl **OwnedType) {
821   if (ExpectAndConsume(tok::equal)) {
822     SkipUntil(tok::semi);
823     return nullptr;
824   }
825 
826   Diag(Tok.getLocation(), getLangOpts().CPlusPlus11 ?
827        diag::warn_cxx98_compat_alias_declaration :
828        diag::ext_alias_declaration);
829 
830   // Type alias templates cannot be specialized.
831   int SpecKind = -1;
832   if (TemplateInfo.Kind == ParsedTemplateInfo::Template &&
833       D.Name.getKind() == UnqualifiedIdKind::IK_TemplateId)
834     SpecKind = 0;
835   if (TemplateInfo.Kind == ParsedTemplateInfo::ExplicitSpecialization)
836     SpecKind = 1;
837   if (TemplateInfo.Kind == ParsedTemplateInfo::ExplicitInstantiation)
838     SpecKind = 2;
839   if (SpecKind != -1) {
840     SourceRange Range;
841     if (SpecKind == 0)
842       Range = SourceRange(D.Name.TemplateId->LAngleLoc,
843                           D.Name.TemplateId->RAngleLoc);
844     else
845       Range = TemplateInfo.getSourceRange();
846     Diag(Range.getBegin(), diag::err_alias_declaration_specialization)
847       << SpecKind << Range;
848     SkipUntil(tok::semi);
849     return nullptr;
850   }
851 
852   // Name must be an identifier.
853   if (D.Name.getKind() != UnqualifiedIdKind::IK_Identifier) {
854     Diag(D.Name.StartLocation, diag::err_alias_declaration_not_identifier);
855     // No removal fixit: can't recover from this.
856     SkipUntil(tok::semi);
857     return nullptr;
858   } else if (D.TypenameLoc.isValid())
859     Diag(D.TypenameLoc, diag::err_alias_declaration_not_identifier)
860         << FixItHint::CreateRemoval(SourceRange(
861                D.TypenameLoc,
862                D.SS.isNotEmpty() ? D.SS.getEndLoc() : D.TypenameLoc));
863   else if (D.SS.isNotEmpty())
864     Diag(D.SS.getBeginLoc(), diag::err_alias_declaration_not_identifier)
865       << FixItHint::CreateRemoval(D.SS.getRange());
866   if (D.EllipsisLoc.isValid())
867     Diag(D.EllipsisLoc, diag::err_alias_declaration_pack_expansion)
868       << FixItHint::CreateRemoval(SourceRange(D.EllipsisLoc));
869 
870   Decl *DeclFromDeclSpec = nullptr;
871   TypeResult TypeAlias =
872       ParseTypeName(nullptr,
873                     TemplateInfo.Kind ? DeclaratorContext::AliasTemplate
874                                       : DeclaratorContext::AliasDecl,
875                     AS, &DeclFromDeclSpec, &Attrs);
876   if (OwnedType)
877     *OwnedType = DeclFromDeclSpec;
878 
879   // Eat ';'.
880   DeclEnd = Tok.getLocation();
881   if (ExpectAndConsume(tok::semi, diag::err_expected_after,
882                        !Attrs.empty() ? "attributes list"
883                                       : "alias declaration"))
884     SkipUntil(tok::semi);
885 
886   TemplateParameterLists *TemplateParams = TemplateInfo.TemplateParams;
887   MultiTemplateParamsArg TemplateParamsArg(
888     TemplateParams ? TemplateParams->data() : nullptr,
889     TemplateParams ? TemplateParams->size() : 0);
890   return Actions.ActOnAliasDeclaration(getCurScope(), AS, TemplateParamsArg,
891                                        UsingLoc, D.Name, Attrs, TypeAlias,
892                                        DeclFromDeclSpec);
893 }
894 
895 static FixItHint getStaticAssertNoMessageFixIt(const Expr *AssertExpr,
896                                                SourceLocation EndExprLoc) {
897   if (const auto *BO = dyn_cast_or_null<BinaryOperator>(AssertExpr)) {
898     if (BO->getOpcode() == BO_LAnd &&
899         isa<StringLiteral>(BO->getRHS()->IgnoreImpCasts()))
900       return FixItHint::CreateReplacement(BO->getOperatorLoc(), ",");
901   }
902   return FixItHint::CreateInsertion(EndExprLoc, ", \"\"");
903 }
904 
905 /// ParseStaticAssertDeclaration - Parse C++0x or C11 static_assert-declaration.
906 ///
907 /// [C++0x] static_assert-declaration:
908 ///           static_assert ( constant-expression  ,  string-literal  ) ;
909 ///
910 /// [C11]   static_assert-declaration:
911 ///           _Static_assert ( constant-expression  ,  string-literal  ) ;
912 ///
913 Decl *Parser::ParseStaticAssertDeclaration(SourceLocation &DeclEnd){
914   assert(Tok.isOneOf(tok::kw_static_assert, tok::kw__Static_assert) &&
915          "Not a static_assert declaration");
916 
917   if (Tok.is(tok::kw__Static_assert) && !getLangOpts().C11)
918     Diag(Tok, diag::ext_c11_feature) << Tok.getName();
919   if (Tok.is(tok::kw_static_assert)) {
920     if (!getLangOpts().CPlusPlus)
921       Diag(Tok, diag::ext_ms_static_assert)
922           << FixItHint::CreateReplacement(Tok.getLocation(), "_Static_assert");
923     else
924       Diag(Tok, diag::warn_cxx98_compat_static_assert);
925   }
926 
927   SourceLocation StaticAssertLoc = ConsumeToken();
928 
929   BalancedDelimiterTracker T(*this, tok::l_paren);
930   if (T.consumeOpen()) {
931     Diag(Tok, diag::err_expected) << tok::l_paren;
932     SkipMalformedDecl();
933     return nullptr;
934   }
935 
936   EnterExpressionEvaluationContext ConstantEvaluated(
937       Actions, Sema::ExpressionEvaluationContext::ConstantEvaluated);
938   ExprResult AssertExpr(ParseConstantExpressionInExprEvalContext());
939   if (AssertExpr.isInvalid()) {
940     SkipMalformedDecl();
941     return nullptr;
942   }
943 
944   ExprResult AssertMessage;
945   if (Tok.is(tok::r_paren)) {
946     unsigned DiagVal;
947     if (getLangOpts().CPlusPlus17)
948       DiagVal = diag::warn_cxx14_compat_static_assert_no_message;
949     else if (getLangOpts().CPlusPlus)
950       DiagVal = diag::ext_cxx_static_assert_no_message;
951     else if (getLangOpts().C2x)
952       DiagVal = diag::warn_c17_compat_static_assert_no_message;
953     else
954       DiagVal = diag::ext_c_static_assert_no_message;
955     Diag(Tok, DiagVal) << getStaticAssertNoMessageFixIt(AssertExpr.get(),
956                                                         Tok.getLocation());
957   } else {
958     if (ExpectAndConsume(tok::comma)) {
959       SkipUntil(tok::semi);
960       return nullptr;
961     }
962 
963     if (!isTokenStringLiteral()) {
964       Diag(Tok, diag::err_expected_string_literal)
965         << /*Source='static_assert'*/1;
966       SkipMalformedDecl();
967       return nullptr;
968     }
969 
970     AssertMessage = ParseStringLiteralExpression();
971     if (AssertMessage.isInvalid()) {
972       SkipMalformedDecl();
973       return nullptr;
974     }
975   }
976 
977   T.consumeClose();
978 
979   DeclEnd = Tok.getLocation();
980   ExpectAndConsumeSemi(diag::err_expected_semi_after_static_assert);
981 
982   return Actions.ActOnStaticAssertDeclaration(StaticAssertLoc,
983                                               AssertExpr.get(),
984                                               AssertMessage.get(),
985                                               T.getCloseLocation());
986 }
987 
988 /// ParseDecltypeSpecifier - Parse a C++11 decltype specifier.
989 ///
990 /// 'decltype' ( expression )
991 /// 'decltype' ( 'auto' )      [C++1y]
992 ///
993 SourceLocation Parser::ParseDecltypeSpecifier(DeclSpec &DS) {
994   assert(Tok.isOneOf(tok::kw_decltype, tok::annot_decltype)
995            && "Not a decltype specifier");
996 
997   ExprResult Result;
998   SourceLocation StartLoc = Tok.getLocation();
999   SourceLocation EndLoc;
1000 
1001   if (Tok.is(tok::annot_decltype)) {
1002     Result = getExprAnnotation(Tok);
1003     EndLoc = Tok.getAnnotationEndLoc();
1004     ConsumeAnnotationToken();
1005     if (Result.isInvalid()) {
1006       DS.SetTypeSpecError();
1007       return EndLoc;
1008     }
1009   } else {
1010     if (Tok.getIdentifierInfo()->isStr("decltype"))
1011       Diag(Tok, diag::warn_cxx98_compat_decltype);
1012 
1013     ConsumeToken();
1014 
1015     BalancedDelimiterTracker T(*this, tok::l_paren);
1016     if (T.expectAndConsume(diag::err_expected_lparen_after,
1017                            "decltype", tok::r_paren)) {
1018       DS.SetTypeSpecError();
1019       return T.getOpenLocation() == Tok.getLocation() ?
1020              StartLoc : T.getOpenLocation();
1021     }
1022 
1023     // Check for C++1y 'decltype(auto)'.
1024     if (Tok.is(tok::kw_auto)) {
1025       // No need to disambiguate here: an expression can't start with 'auto',
1026       // because the typename-specifier in a function-style cast operation can't
1027       // be 'auto'.
1028       Diag(Tok.getLocation(),
1029            getLangOpts().CPlusPlus14
1030              ? diag::warn_cxx11_compat_decltype_auto_type_specifier
1031              : diag::ext_decltype_auto_type_specifier);
1032       ConsumeToken();
1033     } else {
1034       // Parse the expression
1035 
1036       // C++11 [dcl.type.simple]p4:
1037       //   The operand of the decltype specifier is an unevaluated operand.
1038       EnterExpressionEvaluationContext Unevaluated(
1039           Actions, Sema::ExpressionEvaluationContext::Unevaluated, nullptr,
1040           Sema::ExpressionEvaluationContextRecord::EK_Decltype);
1041       Result = Actions.CorrectDelayedTyposInExpr(
1042           ParseExpression(), /*InitDecl=*/nullptr,
1043           /*RecoverUncorrectedTypos=*/false,
1044           [](Expr *E) { return E->hasPlaceholderType() ? ExprError() : E; });
1045       if (Result.isInvalid()) {
1046         DS.SetTypeSpecError();
1047         if (SkipUntil(tok::r_paren, StopAtSemi | StopBeforeMatch)) {
1048           EndLoc = ConsumeParen();
1049         } else {
1050           if (PP.isBacktrackEnabled() && Tok.is(tok::semi)) {
1051             // Backtrack to get the location of the last token before the semi.
1052             PP.RevertCachedTokens(2);
1053             ConsumeToken(); // the semi.
1054             EndLoc = ConsumeAnyToken();
1055             assert(Tok.is(tok::semi));
1056           } else {
1057             EndLoc = Tok.getLocation();
1058           }
1059         }
1060         return EndLoc;
1061       }
1062 
1063       Result = Actions.ActOnDecltypeExpression(Result.get());
1064     }
1065 
1066     // Match the ')'
1067     T.consumeClose();
1068     if (T.getCloseLocation().isInvalid()) {
1069       DS.SetTypeSpecError();
1070       // FIXME: this should return the location of the last token
1071       //        that was consumed (by "consumeClose()")
1072       return T.getCloseLocation();
1073     }
1074 
1075     if (Result.isInvalid()) {
1076       DS.SetTypeSpecError();
1077       return T.getCloseLocation();
1078     }
1079 
1080     EndLoc = T.getCloseLocation();
1081   }
1082   assert(!Result.isInvalid());
1083 
1084   const char *PrevSpec = nullptr;
1085   unsigned DiagID;
1086   const PrintingPolicy &Policy = Actions.getASTContext().getPrintingPolicy();
1087   // Check for duplicate type specifiers (e.g. "int decltype(a)").
1088   if (Result.get()
1089         ? DS.SetTypeSpecType(DeclSpec::TST_decltype, StartLoc, PrevSpec,
1090                              DiagID, Result.get(), Policy)
1091         : DS.SetTypeSpecType(DeclSpec::TST_decltype_auto, StartLoc, PrevSpec,
1092                              DiagID, Policy)) {
1093     Diag(StartLoc, DiagID) << PrevSpec;
1094     DS.SetTypeSpecError();
1095   }
1096   return EndLoc;
1097 }
1098 
1099 void Parser::AnnotateExistingDecltypeSpecifier(const DeclSpec& DS,
1100                                                SourceLocation StartLoc,
1101                                                SourceLocation EndLoc) {
1102   // make sure we have a token we can turn into an annotation token
1103   if (PP.isBacktrackEnabled()) {
1104     PP.RevertCachedTokens(1);
1105     if (DS.getTypeSpecType() == TST_error) {
1106       // We encountered an error in parsing 'decltype(...)' so lets annotate all
1107       // the tokens in the backtracking cache - that we likely had to skip over
1108       // to get to a token that allows us to resume parsing, such as a
1109       // semi-colon.
1110       EndLoc = PP.getLastCachedTokenLocation();
1111     }
1112   }
1113   else
1114     PP.EnterToken(Tok, /*IsReinject*/true);
1115 
1116   Tok.setKind(tok::annot_decltype);
1117   setExprAnnotation(Tok,
1118                     DS.getTypeSpecType() == TST_decltype ? DS.getRepAsExpr() :
1119                     DS.getTypeSpecType() == TST_decltype_auto ? ExprResult() :
1120                     ExprError());
1121   Tok.setAnnotationEndLoc(EndLoc);
1122   Tok.setLocation(StartLoc);
1123   PP.AnnotateCachedTokens(Tok);
1124 }
1125 
1126 void Parser::ParseUnderlyingTypeSpecifier(DeclSpec &DS) {
1127   assert(Tok.is(tok::kw___underlying_type) &&
1128          "Not an underlying type specifier");
1129 
1130   SourceLocation StartLoc = ConsumeToken();
1131   BalancedDelimiterTracker T(*this, tok::l_paren);
1132   if (T.expectAndConsume(diag::err_expected_lparen_after,
1133                        "__underlying_type", tok::r_paren)) {
1134     return;
1135   }
1136 
1137   TypeResult Result = ParseTypeName();
1138   if (Result.isInvalid()) {
1139     SkipUntil(tok::r_paren, StopAtSemi);
1140     return;
1141   }
1142 
1143   // Match the ')'
1144   T.consumeClose();
1145   if (T.getCloseLocation().isInvalid())
1146     return;
1147 
1148   const char *PrevSpec = nullptr;
1149   unsigned DiagID;
1150   if (DS.SetTypeSpecType(DeclSpec::TST_underlyingType, StartLoc, PrevSpec,
1151                          DiagID, Result.get(),
1152                          Actions.getASTContext().getPrintingPolicy()))
1153     Diag(StartLoc, DiagID) << PrevSpec;
1154   DS.setTypeofParensRange(T.getRange());
1155 }
1156 
1157 /// ParseBaseTypeSpecifier - Parse a C++ base-type-specifier which is either a
1158 /// class name or decltype-specifier. Note that we only check that the result
1159 /// names a type; semantic analysis will need to verify that the type names a
1160 /// class. The result is either a type or null, depending on whether a type
1161 /// name was found.
1162 ///
1163 ///       base-type-specifier: [C++11 class.derived]
1164 ///         class-or-decltype
1165 ///       class-or-decltype: [C++11 class.derived]
1166 ///         nested-name-specifier[opt] class-name
1167 ///         decltype-specifier
1168 ///       class-name: [C++ class.name]
1169 ///         identifier
1170 ///         simple-template-id
1171 ///
1172 /// In C++98, instead of base-type-specifier, we have:
1173 ///
1174 ///         ::[opt] nested-name-specifier[opt] class-name
1175 TypeResult Parser::ParseBaseTypeSpecifier(SourceLocation &BaseLoc,
1176                                           SourceLocation &EndLocation) {
1177   // Ignore attempts to use typename
1178   if (Tok.is(tok::kw_typename)) {
1179     Diag(Tok, diag::err_expected_class_name_not_template)
1180       << FixItHint::CreateRemoval(Tok.getLocation());
1181     ConsumeToken();
1182   }
1183 
1184   // Parse optional nested-name-specifier
1185   CXXScopeSpec SS;
1186   if (ParseOptionalCXXScopeSpecifier(SS, /*ObjectType=*/nullptr,
1187                                      /*ObjectHadErrors=*/false,
1188                                      /*EnteringContext=*/false))
1189     return true;
1190 
1191   BaseLoc = Tok.getLocation();
1192 
1193   // Parse decltype-specifier
1194   // tok == kw_decltype is just error recovery, it can only happen when SS
1195   // isn't empty
1196   if (Tok.isOneOf(tok::kw_decltype, tok::annot_decltype)) {
1197     if (SS.isNotEmpty())
1198       Diag(SS.getBeginLoc(), diag::err_unexpected_scope_on_base_decltype)
1199         << FixItHint::CreateRemoval(SS.getRange());
1200     // Fake up a Declarator to use with ActOnTypeName.
1201     DeclSpec DS(AttrFactory);
1202 
1203     EndLocation = ParseDecltypeSpecifier(DS);
1204 
1205     Declarator DeclaratorInfo(DS, DeclaratorContext::TypeName);
1206     return Actions.ActOnTypeName(getCurScope(), DeclaratorInfo);
1207   }
1208 
1209   // Check whether we have a template-id that names a type.
1210   if (Tok.is(tok::annot_template_id)) {
1211     TemplateIdAnnotation *TemplateId = takeTemplateIdAnnotation(Tok);
1212     if (TemplateId->mightBeType()) {
1213       AnnotateTemplateIdTokenAsType(SS, /*IsClassName*/true);
1214 
1215       assert(Tok.is(tok::annot_typename) && "template-id -> type failed");
1216       TypeResult Type = getTypeAnnotation(Tok);
1217       EndLocation = Tok.getAnnotationEndLoc();
1218       ConsumeAnnotationToken();
1219       return Type;
1220     }
1221 
1222     // Fall through to produce an error below.
1223   }
1224 
1225   if (Tok.isNot(tok::identifier)) {
1226     Diag(Tok, diag::err_expected_class_name);
1227     return true;
1228   }
1229 
1230   IdentifierInfo *Id = Tok.getIdentifierInfo();
1231   SourceLocation IdLoc = ConsumeToken();
1232 
1233   if (Tok.is(tok::less)) {
1234     // It looks the user intended to write a template-id here, but the
1235     // template-name was wrong. Try to fix that.
1236     // FIXME: Invoke ParseOptionalCXXScopeSpecifier in a "'template' is neither
1237     // required nor permitted" mode, and do this there.
1238     TemplateNameKind TNK = TNK_Non_template;
1239     TemplateTy Template;
1240     if (!Actions.DiagnoseUnknownTemplateName(*Id, IdLoc, getCurScope(),
1241                                              &SS, Template, TNK)) {
1242       Diag(IdLoc, diag::err_unknown_template_name)
1243         << Id;
1244     }
1245 
1246     // Form the template name
1247     UnqualifiedId TemplateName;
1248     TemplateName.setIdentifier(Id, IdLoc);
1249 
1250     // Parse the full template-id, then turn it into a type.
1251     if (AnnotateTemplateIdToken(Template, TNK, SS, SourceLocation(),
1252                                 TemplateName))
1253       return true;
1254     if (Tok.is(tok::annot_template_id) &&
1255         takeTemplateIdAnnotation(Tok)->mightBeType())
1256       AnnotateTemplateIdTokenAsType(SS, /*IsClassName*/true);
1257 
1258     // If we didn't end up with a typename token, there's nothing more we
1259     // can do.
1260     if (Tok.isNot(tok::annot_typename))
1261       return true;
1262 
1263     // Retrieve the type from the annotation token, consume that token, and
1264     // return.
1265     EndLocation = Tok.getAnnotationEndLoc();
1266     TypeResult Type = getTypeAnnotation(Tok);
1267     ConsumeAnnotationToken();
1268     return Type;
1269   }
1270 
1271   // We have an identifier; check whether it is actually a type.
1272   IdentifierInfo *CorrectedII = nullptr;
1273   ParsedType Type = Actions.getTypeName(
1274       *Id, IdLoc, getCurScope(), &SS, /*isClassName=*/true, false, nullptr,
1275       /*IsCtorOrDtorName=*/false,
1276       /*WantNontrivialTypeSourceInfo=*/true,
1277       /*IsClassTemplateDeductionContext*/ false, &CorrectedII);
1278   if (!Type) {
1279     Diag(IdLoc, diag::err_expected_class_name);
1280     return true;
1281   }
1282 
1283   // Consume the identifier.
1284   EndLocation = IdLoc;
1285 
1286   // Fake up a Declarator to use with ActOnTypeName.
1287   DeclSpec DS(AttrFactory);
1288   DS.SetRangeStart(IdLoc);
1289   DS.SetRangeEnd(EndLocation);
1290   DS.getTypeSpecScope() = SS;
1291 
1292   const char *PrevSpec = nullptr;
1293   unsigned DiagID;
1294   DS.SetTypeSpecType(TST_typename, IdLoc, PrevSpec, DiagID, Type,
1295                      Actions.getASTContext().getPrintingPolicy());
1296 
1297   Declarator DeclaratorInfo(DS, DeclaratorContext::TypeName);
1298   return Actions.ActOnTypeName(getCurScope(), DeclaratorInfo);
1299 }
1300 
1301 void Parser::ParseMicrosoftInheritanceClassAttributes(ParsedAttributes &attrs) {
1302   while (Tok.isOneOf(tok::kw___single_inheritance,
1303                      tok::kw___multiple_inheritance,
1304                      tok::kw___virtual_inheritance)) {
1305     IdentifierInfo *AttrName = Tok.getIdentifierInfo();
1306     SourceLocation AttrNameLoc = ConsumeToken();
1307     attrs.addNew(AttrName, AttrNameLoc, nullptr, AttrNameLoc, nullptr, 0,
1308                  ParsedAttr::AS_Keyword);
1309   }
1310 }
1311 
1312 /// Determine whether the following tokens are valid after a type-specifier
1313 /// which could be a standalone declaration. This will conservatively return
1314 /// true if there's any doubt, and is appropriate for insert-';' fixits.
1315 bool Parser::isValidAfterTypeSpecifier(bool CouldBeBitfield) {
1316   // This switch enumerates the valid "follow" set for type-specifiers.
1317   switch (Tok.getKind()) {
1318   default: break;
1319   case tok::semi:               // struct foo {...} ;
1320   case tok::star:               // struct foo {...} *         P;
1321   case tok::amp:                // struct foo {...} &         R = ...
1322   case tok::ampamp:             // struct foo {...} &&        R = ...
1323   case tok::identifier:         // struct foo {...} V         ;
1324   case tok::r_paren:            //(struct foo {...} )         {4}
1325   case tok::coloncolon:         // struct foo {...} ::        a::b;
1326   case tok::annot_cxxscope:     // struct foo {...} a::       b;
1327   case tok::annot_typename:     // struct foo {...} a         ::b;
1328   case tok::annot_template_id:  // struct foo {...} a<int>    ::b;
1329   case tok::kw_decltype:        // struct foo {...} decltype  (a)::b;
1330   case tok::l_paren:            // struct foo {...} (         x);
1331   case tok::comma:              // __builtin_offsetof(struct foo{...} ,
1332   case tok::kw_operator:        // struct foo       operator  ++() {...}
1333   case tok::kw___declspec:      // struct foo {...} __declspec(...)
1334   case tok::l_square:           // void f(struct f  [         3])
1335   case tok::ellipsis:           // void f(struct f  ...       [Ns])
1336   // FIXME: we should emit semantic diagnostic when declaration
1337   // attribute is in type attribute position.
1338   case tok::kw___attribute:     // struct foo __attribute__((used)) x;
1339   case tok::annot_pragma_pack:  // struct foo {...} _Pragma(pack(pop));
1340   // struct foo {...} _Pragma(section(...));
1341   case tok::annot_pragma_ms_pragma:
1342   // struct foo {...} _Pragma(vtordisp(pop));
1343   case tok::annot_pragma_ms_vtordisp:
1344   // struct foo {...} _Pragma(pointers_to_members(...));
1345   case tok::annot_pragma_ms_pointers_to_members:
1346     return true;
1347   case tok::colon:
1348     return CouldBeBitfield ||   // enum E { ... }   :         2;
1349            ColonIsSacred;       // _Generic(..., enum E :     2);
1350   // Microsoft compatibility
1351   case tok::kw___cdecl:         // struct foo {...} __cdecl      x;
1352   case tok::kw___fastcall:      // struct foo {...} __fastcall   x;
1353   case tok::kw___stdcall:       // struct foo {...} __stdcall    x;
1354   case tok::kw___thiscall:      // struct foo {...} __thiscall   x;
1355   case tok::kw___vectorcall:    // struct foo {...} __vectorcall x;
1356     // We will diagnose these calling-convention specifiers on non-function
1357     // declarations later, so claim they are valid after a type specifier.
1358     return getLangOpts().MicrosoftExt;
1359   // Type qualifiers
1360   case tok::kw_const:           // struct foo {...} const     x;
1361   case tok::kw_volatile:        // struct foo {...} volatile  x;
1362   case tok::kw_restrict:        // struct foo {...} restrict  x;
1363   case tok::kw__Atomic:         // struct foo {...} _Atomic   x;
1364   case tok::kw___unaligned:     // struct foo {...} __unaligned *x;
1365   // Function specifiers
1366   // Note, no 'explicit'. An explicit function must be either a conversion
1367   // operator or a constructor. Either way, it can't have a return type.
1368   case tok::kw_inline:          // struct foo       inline    f();
1369   case tok::kw_virtual:         // struct foo       virtual   f();
1370   case tok::kw_friend:          // struct foo       friend    f();
1371   // Storage-class specifiers
1372   case tok::kw_static:          // struct foo {...} static    x;
1373   case tok::kw_extern:          // struct foo {...} extern    x;
1374   case tok::kw_typedef:         // struct foo {...} typedef   x;
1375   case tok::kw_register:        // struct foo {...} register  x;
1376   case tok::kw_auto:            // struct foo {...} auto      x;
1377   case tok::kw_mutable:         // struct foo {...} mutable   x;
1378   case tok::kw_thread_local:    // struct foo {...} thread_local x;
1379   case tok::kw_constexpr:       // struct foo {...} constexpr x;
1380   case tok::kw_consteval:       // struct foo {...} consteval x;
1381   case tok::kw_constinit:       // struct foo {...} constinit x;
1382     // As shown above, type qualifiers and storage class specifiers absolutely
1383     // can occur after class specifiers according to the grammar.  However,
1384     // almost no one actually writes code like this.  If we see one of these,
1385     // it is much more likely that someone missed a semi colon and the
1386     // type/storage class specifier we're seeing is part of the *next*
1387     // intended declaration, as in:
1388     //
1389     //   struct foo { ... }
1390     //   typedef int X;
1391     //
1392     // We'd really like to emit a missing semicolon error instead of emitting
1393     // an error on the 'int' saying that you can't have two type specifiers in
1394     // the same declaration of X.  Because of this, we look ahead past this
1395     // token to see if it's a type specifier.  If so, we know the code is
1396     // otherwise invalid, so we can produce the expected semi error.
1397     if (!isKnownToBeTypeSpecifier(NextToken()))
1398       return true;
1399     break;
1400   case tok::r_brace:  // struct bar { struct foo {...} }
1401     // Missing ';' at end of struct is accepted as an extension in C mode.
1402     if (!getLangOpts().CPlusPlus)
1403       return true;
1404     break;
1405   case tok::greater:
1406     // template<class T = class X>
1407     return getLangOpts().CPlusPlus;
1408   }
1409   return false;
1410 }
1411 
1412 /// ParseClassSpecifier - Parse a C++ class-specifier [C++ class] or
1413 /// elaborated-type-specifier [C++ dcl.type.elab]; we can't tell which
1414 /// until we reach the start of a definition or see a token that
1415 /// cannot start a definition.
1416 ///
1417 ///       class-specifier: [C++ class]
1418 ///         class-head '{' member-specification[opt] '}'
1419 ///         class-head '{' member-specification[opt] '}' attributes[opt]
1420 ///       class-head:
1421 ///         class-key identifier[opt] base-clause[opt]
1422 ///         class-key nested-name-specifier identifier base-clause[opt]
1423 ///         class-key nested-name-specifier[opt] simple-template-id
1424 ///                          base-clause[opt]
1425 /// [GNU]   class-key attributes[opt] identifier[opt] base-clause[opt]
1426 /// [GNU]   class-key attributes[opt] nested-name-specifier
1427 ///                          identifier base-clause[opt]
1428 /// [GNU]   class-key attributes[opt] nested-name-specifier[opt]
1429 ///                          simple-template-id base-clause[opt]
1430 ///       class-key:
1431 ///         'class'
1432 ///         'struct'
1433 ///         'union'
1434 ///
1435 ///       elaborated-type-specifier: [C++ dcl.type.elab]
1436 ///         class-key ::[opt] nested-name-specifier[opt] identifier
1437 ///         class-key ::[opt] nested-name-specifier[opt] 'template'[opt]
1438 ///                          simple-template-id
1439 ///
1440 ///  Note that the C++ class-specifier and elaborated-type-specifier,
1441 ///  together, subsume the C99 struct-or-union-specifier:
1442 ///
1443 ///       struct-or-union-specifier: [C99 6.7.2.1]
1444 ///         struct-or-union identifier[opt] '{' struct-contents '}'
1445 ///         struct-or-union identifier
1446 /// [GNU]   struct-or-union attributes[opt] identifier[opt] '{' struct-contents
1447 ///                                                         '}' attributes[opt]
1448 /// [GNU]   struct-or-union attributes[opt] identifier
1449 ///       struct-or-union:
1450 ///         'struct'
1451 ///         'union'
1452 void Parser::ParseClassSpecifier(tok::TokenKind TagTokKind,
1453                                  SourceLocation StartLoc, DeclSpec &DS,
1454                                  const ParsedTemplateInfo &TemplateInfo,
1455                                  AccessSpecifier AS,
1456                                  bool EnteringContext, DeclSpecContext DSC,
1457                                  ParsedAttributesWithRange &Attributes) {
1458   DeclSpec::TST TagType;
1459   if (TagTokKind == tok::kw_struct)
1460     TagType = DeclSpec::TST_struct;
1461   else if (TagTokKind == tok::kw___interface)
1462     TagType = DeclSpec::TST_interface;
1463   else if (TagTokKind == tok::kw_class)
1464     TagType = DeclSpec::TST_class;
1465   else {
1466     assert(TagTokKind == tok::kw_union && "Not a class specifier");
1467     TagType = DeclSpec::TST_union;
1468   }
1469 
1470   if (Tok.is(tok::code_completion)) {
1471     // Code completion for a struct, class, or union name.
1472     cutOffParsing();
1473     Actions.CodeCompleteTag(getCurScope(), TagType);
1474     return;
1475   }
1476 
1477   // C++03 [temp.explicit] 14.7.2/8:
1478   //   The usual access checking rules do not apply to names used to specify
1479   //   explicit instantiations.
1480   //
1481   // As an extension we do not perform access checking on the names used to
1482   // specify explicit specializations either. This is important to allow
1483   // specializing traits classes for private types.
1484   //
1485   // Note that we don't suppress if this turns out to be an elaborated
1486   // type specifier.
1487   bool shouldDelayDiagsInTag =
1488     (TemplateInfo.Kind == ParsedTemplateInfo::ExplicitInstantiation ||
1489      TemplateInfo.Kind == ParsedTemplateInfo::ExplicitSpecialization);
1490   SuppressAccessChecks diagsFromTag(*this, shouldDelayDiagsInTag);
1491 
1492   ParsedAttributesWithRange attrs(AttrFactory);
1493   // If attributes exist after tag, parse them.
1494   MaybeParseAttributes(PAKM_CXX11 | PAKM_Declspec | PAKM_GNU, attrs);
1495 
1496   // Parse inheritance specifiers.
1497   if (Tok.isOneOf(tok::kw___single_inheritance,
1498                   tok::kw___multiple_inheritance,
1499                   tok::kw___virtual_inheritance))
1500     ParseMicrosoftInheritanceClassAttributes(attrs);
1501 
1502   // Allow attributes to precede or succeed the inheritance specifiers.
1503   MaybeParseAttributes(PAKM_CXX11 | PAKM_Declspec | PAKM_GNU, attrs);
1504 
1505   // Source location used by FIXIT to insert misplaced
1506   // C++11 attributes
1507   SourceLocation AttrFixitLoc = Tok.getLocation();
1508 
1509   if (TagType == DeclSpec::TST_struct &&
1510       Tok.isNot(tok::identifier) &&
1511       !Tok.isAnnotation() &&
1512       Tok.getIdentifierInfo() &&
1513       Tok.isOneOf(tok::kw___is_abstract,
1514                   tok::kw___is_aggregate,
1515                   tok::kw___is_arithmetic,
1516                   tok::kw___is_array,
1517                   tok::kw___is_assignable,
1518                   tok::kw___is_base_of,
1519                   tok::kw___is_class,
1520                   tok::kw___is_complete_type,
1521                   tok::kw___is_compound,
1522                   tok::kw___is_const,
1523                   tok::kw___is_constructible,
1524                   tok::kw___is_convertible,
1525                   tok::kw___is_convertible_to,
1526                   tok::kw___is_destructible,
1527                   tok::kw___is_empty,
1528                   tok::kw___is_enum,
1529                   tok::kw___is_floating_point,
1530                   tok::kw___is_final,
1531                   tok::kw___is_function,
1532                   tok::kw___is_fundamental,
1533                   tok::kw___is_integral,
1534                   tok::kw___is_interface_class,
1535                   tok::kw___is_literal,
1536                   tok::kw___is_lvalue_expr,
1537                   tok::kw___is_lvalue_reference,
1538                   tok::kw___is_member_function_pointer,
1539                   tok::kw___is_member_object_pointer,
1540                   tok::kw___is_member_pointer,
1541                   tok::kw___is_nothrow_assignable,
1542                   tok::kw___is_nothrow_constructible,
1543                   tok::kw___is_nothrow_destructible,
1544                   tok::kw___is_object,
1545                   tok::kw___is_pod,
1546                   tok::kw___is_pointer,
1547                   tok::kw___is_polymorphic,
1548                   tok::kw___is_reference,
1549                   tok::kw___is_rvalue_expr,
1550                   tok::kw___is_rvalue_reference,
1551                   tok::kw___is_same,
1552                   tok::kw___is_scalar,
1553                   tok::kw___is_sealed,
1554                   tok::kw___is_signed,
1555                   tok::kw___is_standard_layout,
1556                   tok::kw___is_trivial,
1557                   tok::kw___is_trivially_assignable,
1558                   tok::kw___is_trivially_constructible,
1559                   tok::kw___is_trivially_copyable,
1560                   tok::kw___is_union,
1561                   tok::kw___is_unsigned,
1562                   tok::kw___is_void,
1563                   tok::kw___is_volatile))
1564     // GNU libstdc++ 4.2 and libc++ use certain intrinsic names as the
1565     // name of struct templates, but some are keywords in GCC >= 4.3
1566     // and Clang. Therefore, when we see the token sequence "struct
1567     // X", make X into a normal identifier rather than a keyword, to
1568     // allow libstdc++ 4.2 and libc++ to work properly.
1569     TryKeywordIdentFallback(true);
1570 
1571   struct PreserveAtomicIdentifierInfoRAII {
1572     PreserveAtomicIdentifierInfoRAII(Token &Tok, bool Enabled)
1573         : AtomicII(nullptr) {
1574       if (!Enabled)
1575         return;
1576       assert(Tok.is(tok::kw__Atomic));
1577       AtomicII = Tok.getIdentifierInfo();
1578       AtomicII->revertTokenIDToIdentifier();
1579       Tok.setKind(tok::identifier);
1580     }
1581     ~PreserveAtomicIdentifierInfoRAII() {
1582       if (!AtomicII)
1583         return;
1584       AtomicII->revertIdentifierToTokenID(tok::kw__Atomic);
1585     }
1586     IdentifierInfo *AtomicII;
1587   };
1588 
1589   // HACK: MSVC doesn't consider _Atomic to be a keyword and its STL
1590   // implementation for VS2013 uses _Atomic as an identifier for one of the
1591   // classes in <atomic>.  When we are parsing 'struct _Atomic', don't consider
1592   // '_Atomic' to be a keyword.  We are careful to undo this so that clang can
1593   // use '_Atomic' in its own header files.
1594   bool ShouldChangeAtomicToIdentifier = getLangOpts().MSVCCompat &&
1595                                         Tok.is(tok::kw__Atomic) &&
1596                                         TagType == DeclSpec::TST_struct;
1597   PreserveAtomicIdentifierInfoRAII AtomicTokenGuard(
1598       Tok, ShouldChangeAtomicToIdentifier);
1599 
1600   // Parse the (optional) nested-name-specifier.
1601   CXXScopeSpec &SS = DS.getTypeSpecScope();
1602   if (getLangOpts().CPlusPlus) {
1603     // "FOO : BAR" is not a potential typo for "FOO::BAR".  In this context it
1604     // is a base-specifier-list.
1605     ColonProtectionRAIIObject X(*this);
1606 
1607     CXXScopeSpec Spec;
1608     bool HasValidSpec = true;
1609     if (ParseOptionalCXXScopeSpecifier(Spec, /*ObjectType=*/nullptr,
1610                                        /*ObjectHadErrors=*/false,
1611                                        EnteringContext)) {
1612       DS.SetTypeSpecError();
1613       HasValidSpec = false;
1614     }
1615     if (Spec.isSet())
1616       if (Tok.isNot(tok::identifier) && Tok.isNot(tok::annot_template_id)) {
1617         Diag(Tok, diag::err_expected) << tok::identifier;
1618         HasValidSpec = false;
1619       }
1620     if (HasValidSpec)
1621       SS = Spec;
1622   }
1623 
1624   TemplateParameterLists *TemplateParams = TemplateInfo.TemplateParams;
1625 
1626   auto RecoverFromUndeclaredTemplateName = [&](IdentifierInfo *Name,
1627                                                SourceLocation NameLoc,
1628                                                SourceRange TemplateArgRange,
1629                                                bool KnownUndeclared) {
1630     Diag(NameLoc, diag::err_explicit_spec_non_template)
1631         << (TemplateInfo.Kind == ParsedTemplateInfo::ExplicitInstantiation)
1632         << TagTokKind << Name << TemplateArgRange << KnownUndeclared;
1633 
1634     // Strip off the last template parameter list if it was empty, since
1635     // we've removed its template argument list.
1636     if (TemplateParams && TemplateInfo.LastParameterListWasEmpty) {
1637       if (TemplateParams->size() > 1) {
1638         TemplateParams->pop_back();
1639       } else {
1640         TemplateParams = nullptr;
1641         const_cast<ParsedTemplateInfo &>(TemplateInfo).Kind =
1642             ParsedTemplateInfo::NonTemplate;
1643       }
1644     } else if (TemplateInfo.Kind == ParsedTemplateInfo::ExplicitInstantiation) {
1645       // Pretend this is just a forward declaration.
1646       TemplateParams = nullptr;
1647       const_cast<ParsedTemplateInfo &>(TemplateInfo).Kind =
1648           ParsedTemplateInfo::NonTemplate;
1649       const_cast<ParsedTemplateInfo &>(TemplateInfo).TemplateLoc =
1650           SourceLocation();
1651       const_cast<ParsedTemplateInfo &>(TemplateInfo).ExternLoc =
1652           SourceLocation();
1653     }
1654   };
1655 
1656   // Parse the (optional) class name or simple-template-id.
1657   IdentifierInfo *Name = nullptr;
1658   SourceLocation NameLoc;
1659   TemplateIdAnnotation *TemplateId = nullptr;
1660   if (Tok.is(tok::identifier)) {
1661     Name = Tok.getIdentifierInfo();
1662     NameLoc = ConsumeToken();
1663 
1664     if (Tok.is(tok::less) && getLangOpts().CPlusPlus) {
1665       // The name was supposed to refer to a template, but didn't.
1666       // Eat the template argument list and try to continue parsing this as
1667       // a class (or template thereof).
1668       TemplateArgList TemplateArgs;
1669       SourceLocation LAngleLoc, RAngleLoc;
1670       if (ParseTemplateIdAfterTemplateName(true, LAngleLoc, TemplateArgs,
1671                                            RAngleLoc)) {
1672         // We couldn't parse the template argument list at all, so don't
1673         // try to give any location information for the list.
1674         LAngleLoc = RAngleLoc = SourceLocation();
1675       }
1676       RecoverFromUndeclaredTemplateName(
1677           Name, NameLoc, SourceRange(LAngleLoc, RAngleLoc), false);
1678     }
1679   } else if (Tok.is(tok::annot_template_id)) {
1680     TemplateId = takeTemplateIdAnnotation(Tok);
1681     NameLoc = ConsumeAnnotationToken();
1682 
1683     if (TemplateId->Kind == TNK_Undeclared_template) {
1684       // Try to resolve the template name to a type template. May update Kind.
1685       Actions.ActOnUndeclaredTypeTemplateName(
1686           getCurScope(), TemplateId->Template, TemplateId->Kind, NameLoc, Name);
1687       if (TemplateId->Kind == TNK_Undeclared_template) {
1688         RecoverFromUndeclaredTemplateName(
1689             Name, NameLoc,
1690             SourceRange(TemplateId->LAngleLoc, TemplateId->RAngleLoc), true);
1691         TemplateId = nullptr;
1692       }
1693     }
1694 
1695     if (TemplateId && !TemplateId->mightBeType()) {
1696       // The template-name in the simple-template-id refers to
1697       // something other than a type template. Give an appropriate
1698       // error message and skip to the ';'.
1699       SourceRange Range(NameLoc);
1700       if (SS.isNotEmpty())
1701         Range.setBegin(SS.getBeginLoc());
1702 
1703       // FIXME: Name may be null here.
1704       Diag(TemplateId->LAngleLoc, diag::err_template_spec_syntax_non_template)
1705           << TemplateId->Name << static_cast<int>(TemplateId->Kind) << Range;
1706 
1707       DS.SetTypeSpecError();
1708       SkipUntil(tok::semi, StopBeforeMatch);
1709       return;
1710     }
1711   }
1712 
1713   // There are four options here.
1714   //  - If we are in a trailing return type, this is always just a reference,
1715   //    and we must not try to parse a definition. For instance,
1716   //      [] () -> struct S { };
1717   //    does not define a type.
1718   //  - If we have 'struct foo {...', 'struct foo :...',
1719   //    'struct foo final :' or 'struct foo final {', then this is a definition.
1720   //  - If we have 'struct foo;', then this is either a forward declaration
1721   //    or a friend declaration, which have to be treated differently.
1722   //  - Otherwise we have something like 'struct foo xyz', a reference.
1723   //
1724   //  We also detect these erroneous cases to provide better diagnostic for
1725   //  C++11 attributes parsing.
1726   //  - attributes follow class name:
1727   //    struct foo [[]] {};
1728   //  - attributes appear before or after 'final':
1729   //    struct foo [[]] final [[]] {};
1730   //
1731   // However, in type-specifier-seq's, things look like declarations but are
1732   // just references, e.g.
1733   //   new struct s;
1734   // or
1735   //   &T::operator struct s;
1736   // For these, DSC is DeclSpecContext::DSC_type_specifier or
1737   // DeclSpecContext::DSC_alias_declaration.
1738 
1739   // If there are attributes after class name, parse them.
1740   MaybeParseCXX11Attributes(Attributes);
1741 
1742   const PrintingPolicy &Policy = Actions.getASTContext().getPrintingPolicy();
1743   Sema::TagUseKind TUK;
1744   if (isDefiningTypeSpecifierContext(DSC) == AllowDefiningTypeSpec::No ||
1745       (getLangOpts().OpenMP && OpenMPDirectiveParsing))
1746     TUK = Sema::TUK_Reference;
1747   else if (Tok.is(tok::l_brace) ||
1748            (getLangOpts().CPlusPlus && Tok.is(tok::colon)) ||
1749            (isClassCompatibleKeyword() &&
1750             (NextToken().is(tok::l_brace) || NextToken().is(tok::colon)))) {
1751     if (DS.isFriendSpecified()) {
1752       // C++ [class.friend]p2:
1753       //   A class shall not be defined in a friend declaration.
1754       Diag(Tok.getLocation(), diag::err_friend_decl_defines_type)
1755         << SourceRange(DS.getFriendSpecLoc());
1756 
1757       // Skip everything up to the semicolon, so that this looks like a proper
1758       // friend class (or template thereof) declaration.
1759       SkipUntil(tok::semi, StopBeforeMatch);
1760       TUK = Sema::TUK_Friend;
1761     } else {
1762       // Okay, this is a class definition.
1763       TUK = Sema::TUK_Definition;
1764     }
1765   } else if (isClassCompatibleKeyword() &&
1766              (NextToken().is(tok::l_square) ||
1767               NextToken().is(tok::kw_alignas) ||
1768               isCXX11VirtSpecifier(NextToken()) != VirtSpecifiers::VS_None)) {
1769     // We can't tell if this is a definition or reference
1770     // until we skipped the 'final' and C++11 attribute specifiers.
1771     TentativeParsingAction PA(*this);
1772 
1773     // Skip the 'final', abstract'... keywords.
1774     while (isClassCompatibleKeyword()) {
1775       ConsumeToken();
1776     }
1777 
1778     // Skip C++11 attribute specifiers.
1779     while (true) {
1780       if (Tok.is(tok::l_square) && NextToken().is(tok::l_square)) {
1781         ConsumeBracket();
1782         if (!SkipUntil(tok::r_square, StopAtSemi))
1783           break;
1784       } else if (Tok.is(tok::kw_alignas) && NextToken().is(tok::l_paren)) {
1785         ConsumeToken();
1786         ConsumeParen();
1787         if (!SkipUntil(tok::r_paren, StopAtSemi))
1788           break;
1789       } else {
1790         break;
1791       }
1792     }
1793 
1794     if (Tok.isOneOf(tok::l_brace, tok::colon))
1795       TUK = Sema::TUK_Definition;
1796     else
1797       TUK = Sema::TUK_Reference;
1798 
1799     PA.Revert();
1800   } else if (!isTypeSpecifier(DSC) &&
1801              (Tok.is(tok::semi) ||
1802               (Tok.isAtStartOfLine() && !isValidAfterTypeSpecifier(false)))) {
1803     TUK = DS.isFriendSpecified() ? Sema::TUK_Friend : Sema::TUK_Declaration;
1804     if (Tok.isNot(tok::semi)) {
1805       const PrintingPolicy &PPol = Actions.getASTContext().getPrintingPolicy();
1806       // A semicolon was missing after this declaration. Diagnose and recover.
1807       ExpectAndConsume(tok::semi, diag::err_expected_after,
1808                        DeclSpec::getSpecifierName(TagType, PPol));
1809       PP.EnterToken(Tok, /*IsReinject*/true);
1810       Tok.setKind(tok::semi);
1811     }
1812   } else
1813     TUK = Sema::TUK_Reference;
1814 
1815   // Forbid misplaced attributes. In cases of a reference, we pass attributes
1816   // to caller to handle.
1817   if (TUK != Sema::TUK_Reference) {
1818     // If this is not a reference, then the only possible
1819     // valid place for C++11 attributes to appear here
1820     // is between class-key and class-name. If there are
1821     // any attributes after class-name, we try a fixit to move
1822     // them to the right place.
1823     SourceRange AttrRange = Attributes.Range;
1824     if (AttrRange.isValid()) {
1825       Diag(AttrRange.getBegin(), diag::err_attributes_not_allowed)
1826         << AttrRange
1827         << FixItHint::CreateInsertionFromRange(AttrFixitLoc,
1828                                                CharSourceRange(AttrRange, true))
1829         << FixItHint::CreateRemoval(AttrRange);
1830 
1831       // Recover by adding misplaced attributes to the attribute list
1832       // of the class so they can be applied on the class later.
1833       attrs.takeAllFrom(Attributes);
1834     }
1835   }
1836 
1837   // If this is an elaborated type specifier, and we delayed
1838   // diagnostics before, just merge them into the current pool.
1839   if (shouldDelayDiagsInTag) {
1840     diagsFromTag.done();
1841     if (TUK == Sema::TUK_Reference)
1842       diagsFromTag.redelay();
1843   }
1844 
1845   if (!Name && !TemplateId && (DS.getTypeSpecType() == DeclSpec::TST_error ||
1846                                TUK != Sema::TUK_Definition)) {
1847     if (DS.getTypeSpecType() != DeclSpec::TST_error) {
1848       // We have a declaration or reference to an anonymous class.
1849       Diag(StartLoc, diag::err_anon_type_definition)
1850         << DeclSpec::getSpecifierName(TagType, Policy);
1851     }
1852 
1853     // If we are parsing a definition and stop at a base-clause, continue on
1854     // until the semicolon.  Continuing from the comma will just trick us into
1855     // thinking we are seeing a variable declaration.
1856     if (TUK == Sema::TUK_Definition && Tok.is(tok::colon))
1857       SkipUntil(tok::semi, StopBeforeMatch);
1858     else
1859       SkipUntil(tok::comma, StopAtSemi);
1860     return;
1861   }
1862 
1863   // Create the tag portion of the class or class template.
1864   DeclResult TagOrTempResult = true; // invalid
1865   TypeResult TypeResult = true; // invalid
1866 
1867   bool Owned = false;
1868   Sema::SkipBodyInfo SkipBody;
1869   if (TemplateId) {
1870     // Explicit specialization, class template partial specialization,
1871     // or explicit instantiation.
1872     ASTTemplateArgsPtr TemplateArgsPtr(TemplateId->getTemplateArgs(),
1873                                        TemplateId->NumArgs);
1874     if (TemplateId->isInvalid()) {
1875       // Can't build the declaration.
1876     } else if (TemplateInfo.Kind == ParsedTemplateInfo::ExplicitInstantiation &&
1877         TUK == Sema::TUK_Declaration) {
1878       // This is an explicit instantiation of a class template.
1879       ProhibitCXX11Attributes(attrs, diag::err_attributes_not_allowed,
1880                               /*DiagnoseEmptyAttrs=*/true);
1881 
1882       TagOrTempResult = Actions.ActOnExplicitInstantiation(
1883           getCurScope(), TemplateInfo.ExternLoc, TemplateInfo.TemplateLoc,
1884           TagType, StartLoc, SS, TemplateId->Template,
1885           TemplateId->TemplateNameLoc, TemplateId->LAngleLoc, TemplateArgsPtr,
1886           TemplateId->RAngleLoc, attrs);
1887 
1888       // Friend template-ids are treated as references unless
1889       // they have template headers, in which case they're ill-formed
1890       // (FIXME: "template <class T> friend class A<T>::B<int>;").
1891       // We diagnose this error in ActOnClassTemplateSpecialization.
1892     } else if (TUK == Sema::TUK_Reference ||
1893                (TUK == Sema::TUK_Friend &&
1894                 TemplateInfo.Kind == ParsedTemplateInfo::NonTemplate)) {
1895       ProhibitCXX11Attributes(attrs, diag::err_attributes_not_allowed,
1896                               /*DiagnoseEmptyAttrs=*/true);
1897       TypeResult = Actions.ActOnTagTemplateIdType(TUK, TagType, StartLoc,
1898                                                   SS,
1899                                                   TemplateId->TemplateKWLoc,
1900                                                   TemplateId->Template,
1901                                                   TemplateId->TemplateNameLoc,
1902                                                   TemplateId->LAngleLoc,
1903                                                   TemplateArgsPtr,
1904                                                   TemplateId->RAngleLoc);
1905     } else {
1906       // This is an explicit specialization or a class template
1907       // partial specialization.
1908       TemplateParameterLists FakedParamLists;
1909       if (TemplateInfo.Kind == ParsedTemplateInfo::ExplicitInstantiation) {
1910         // This looks like an explicit instantiation, because we have
1911         // something like
1912         //
1913         //   template class Foo<X>
1914         //
1915         // but it actually has a definition. Most likely, this was
1916         // meant to be an explicit specialization, but the user forgot
1917         // the '<>' after 'template'.
1918         // It this is friend declaration however, since it cannot have a
1919         // template header, it is most likely that the user meant to
1920         // remove the 'template' keyword.
1921         assert((TUK == Sema::TUK_Definition || TUK == Sema::TUK_Friend) &&
1922                "Expected a definition here");
1923 
1924         if (TUK == Sema::TUK_Friend) {
1925           Diag(DS.getFriendSpecLoc(), diag::err_friend_explicit_instantiation);
1926           TemplateParams = nullptr;
1927         } else {
1928           SourceLocation LAngleLoc =
1929               PP.getLocForEndOfToken(TemplateInfo.TemplateLoc);
1930           Diag(TemplateId->TemplateNameLoc,
1931                diag::err_explicit_instantiation_with_definition)
1932               << SourceRange(TemplateInfo.TemplateLoc)
1933               << FixItHint::CreateInsertion(LAngleLoc, "<>");
1934 
1935           // Create a fake template parameter list that contains only
1936           // "template<>", so that we treat this construct as a class
1937           // template specialization.
1938           FakedParamLists.push_back(Actions.ActOnTemplateParameterList(
1939               0, SourceLocation(), TemplateInfo.TemplateLoc, LAngleLoc, None,
1940               LAngleLoc, nullptr));
1941           TemplateParams = &FakedParamLists;
1942         }
1943       }
1944 
1945       // Build the class template specialization.
1946       TagOrTempResult = Actions.ActOnClassTemplateSpecialization(
1947           getCurScope(), TagType, TUK, StartLoc, DS.getModulePrivateSpecLoc(),
1948           SS, *TemplateId, attrs,
1949           MultiTemplateParamsArg(TemplateParams ? &(*TemplateParams)[0]
1950                                                 : nullptr,
1951                                  TemplateParams ? TemplateParams->size() : 0),
1952           &SkipBody);
1953     }
1954   } else if (TemplateInfo.Kind == ParsedTemplateInfo::ExplicitInstantiation &&
1955              TUK == Sema::TUK_Declaration) {
1956     // Explicit instantiation of a member of a class template
1957     // specialization, e.g.,
1958     //
1959     //   template struct Outer<int>::Inner;
1960     //
1961     ProhibitAttributes(attrs);
1962 
1963     TagOrTempResult = Actions.ActOnExplicitInstantiation(
1964         getCurScope(), TemplateInfo.ExternLoc, TemplateInfo.TemplateLoc,
1965         TagType, StartLoc, SS, Name, NameLoc, attrs);
1966   } else if (TUK == Sema::TUK_Friend &&
1967              TemplateInfo.Kind != ParsedTemplateInfo::NonTemplate) {
1968     ProhibitCXX11Attributes(attrs, diag::err_attributes_not_allowed,
1969                             /*DiagnoseEmptyAttrs=*/true);
1970 
1971     TagOrTempResult = Actions.ActOnTemplatedFriendTag(
1972         getCurScope(), DS.getFriendSpecLoc(), TagType, StartLoc, SS, Name,
1973         NameLoc, attrs,
1974         MultiTemplateParamsArg(TemplateParams ? &(*TemplateParams)[0] : nullptr,
1975                                TemplateParams ? TemplateParams->size() : 0));
1976   } else {
1977     if (TUK != Sema::TUK_Declaration && TUK != Sema::TUK_Definition)
1978       ProhibitCXX11Attributes(attrs, diag::err_attributes_not_allowed,
1979                               /* DiagnoseEmptyAttrs=*/true);
1980 
1981     if (TUK == Sema::TUK_Definition &&
1982         TemplateInfo.Kind == ParsedTemplateInfo::ExplicitInstantiation) {
1983       // If the declarator-id is not a template-id, issue a diagnostic and
1984       // recover by ignoring the 'template' keyword.
1985       Diag(Tok, diag::err_template_defn_explicit_instantiation)
1986         << 1 << FixItHint::CreateRemoval(TemplateInfo.TemplateLoc);
1987       TemplateParams = nullptr;
1988     }
1989 
1990     bool IsDependent = false;
1991 
1992     // Don't pass down template parameter lists if this is just a tag
1993     // reference.  For example, we don't need the template parameters here:
1994     //   template <class T> class A *makeA(T t);
1995     MultiTemplateParamsArg TParams;
1996     if (TUK != Sema::TUK_Reference && TemplateParams)
1997       TParams =
1998         MultiTemplateParamsArg(&(*TemplateParams)[0], TemplateParams->size());
1999 
2000     stripTypeAttributesOffDeclSpec(attrs, DS, TUK);
2001 
2002     // Declaration or definition of a class type
2003     TagOrTempResult = Actions.ActOnTag(
2004         getCurScope(), TagType, TUK, StartLoc, SS, Name, NameLoc, attrs, AS,
2005         DS.getModulePrivateSpecLoc(), TParams, Owned, IsDependent,
2006         SourceLocation(), false, clang::TypeResult(),
2007         DSC == DeclSpecContext::DSC_type_specifier,
2008         DSC == DeclSpecContext::DSC_template_param ||
2009             DSC == DeclSpecContext::DSC_template_type_arg,
2010         &SkipBody);
2011 
2012     // If ActOnTag said the type was dependent, try again with the
2013     // less common call.
2014     if (IsDependent) {
2015       assert(TUK == Sema::TUK_Reference || TUK == Sema::TUK_Friend);
2016       TypeResult = Actions.ActOnDependentTag(getCurScope(), TagType, TUK,
2017                                              SS, Name, StartLoc, NameLoc);
2018     }
2019   }
2020 
2021   // If there is a body, parse it and inform the actions module.
2022   if (TUK == Sema::TUK_Definition) {
2023     assert(Tok.is(tok::l_brace) ||
2024            (getLangOpts().CPlusPlus && Tok.is(tok::colon)) ||
2025            isClassCompatibleKeyword());
2026     if (SkipBody.ShouldSkip)
2027       SkipCXXMemberSpecification(StartLoc, AttrFixitLoc, TagType,
2028                                  TagOrTempResult.get());
2029     else if (getLangOpts().CPlusPlus)
2030       ParseCXXMemberSpecification(StartLoc, AttrFixitLoc, attrs, TagType,
2031                                   TagOrTempResult.get());
2032     else {
2033       Decl *D =
2034           SkipBody.CheckSameAsPrevious ? SkipBody.New : TagOrTempResult.get();
2035       // Parse the definition body.
2036       ParseStructUnionBody(StartLoc, TagType, cast<RecordDecl>(D));
2037       if (SkipBody.CheckSameAsPrevious &&
2038           !Actions.ActOnDuplicateDefinition(DS, TagOrTempResult.get(),
2039                                             SkipBody)) {
2040         DS.SetTypeSpecError();
2041         return;
2042       }
2043     }
2044   }
2045 
2046   if (!TagOrTempResult.isInvalid())
2047     // Delayed processing of attributes.
2048     Actions.ProcessDeclAttributeDelayed(TagOrTempResult.get(), attrs);
2049 
2050   const char *PrevSpec = nullptr;
2051   unsigned DiagID;
2052   bool Result;
2053   if (!TypeResult.isInvalid()) {
2054     Result = DS.SetTypeSpecType(DeclSpec::TST_typename, StartLoc,
2055                                 NameLoc.isValid() ? NameLoc : StartLoc,
2056                                 PrevSpec, DiagID, TypeResult.get(), Policy);
2057   } else if (!TagOrTempResult.isInvalid()) {
2058     Result = DS.SetTypeSpecType(TagType, StartLoc,
2059                                 NameLoc.isValid() ? NameLoc : StartLoc,
2060                                 PrevSpec, DiagID, TagOrTempResult.get(), Owned,
2061                                 Policy);
2062   } else {
2063     DS.SetTypeSpecError();
2064     return;
2065   }
2066 
2067   if (Result)
2068     Diag(StartLoc, DiagID) << PrevSpec;
2069 
2070   // At this point, we've successfully parsed a class-specifier in 'definition'
2071   // form (e.g. "struct foo { int x; }".  While we could just return here, we're
2072   // going to look at what comes after it to improve error recovery.  If an
2073   // impossible token occurs next, we assume that the programmer forgot a ; at
2074   // the end of the declaration and recover that way.
2075   //
2076   // Also enforce C++ [temp]p3:
2077   //   In a template-declaration which defines a class, no declarator
2078   //   is permitted.
2079   //
2080   // After a type-specifier, we don't expect a semicolon. This only happens in
2081   // C, since definitions are not permitted in this context in C++.
2082   if (TUK == Sema::TUK_Definition &&
2083       (getLangOpts().CPlusPlus || !isTypeSpecifier(DSC)) &&
2084       (TemplateInfo.Kind || !isValidAfterTypeSpecifier(false))) {
2085     if (Tok.isNot(tok::semi)) {
2086       const PrintingPolicy &PPol = Actions.getASTContext().getPrintingPolicy();
2087       ExpectAndConsume(tok::semi, diag::err_expected_after,
2088                        DeclSpec::getSpecifierName(TagType, PPol));
2089       // Push this token back into the preprocessor and change our current token
2090       // to ';' so that the rest of the code recovers as though there were an
2091       // ';' after the definition.
2092       PP.EnterToken(Tok, /*IsReinject=*/true);
2093       Tok.setKind(tok::semi);
2094     }
2095   }
2096 }
2097 
2098 /// ParseBaseClause - Parse the base-clause of a C++ class [C++ class.derived].
2099 ///
2100 ///       base-clause : [C++ class.derived]
2101 ///         ':' base-specifier-list
2102 ///       base-specifier-list:
2103 ///         base-specifier '...'[opt]
2104 ///         base-specifier-list ',' base-specifier '...'[opt]
2105 void Parser::ParseBaseClause(Decl *ClassDecl) {
2106   assert(Tok.is(tok::colon) && "Not a base clause");
2107   ConsumeToken();
2108 
2109   // Build up an array of parsed base specifiers.
2110   SmallVector<CXXBaseSpecifier *, 8> BaseInfo;
2111 
2112   while (true) {
2113     // Parse a base-specifier.
2114     BaseResult Result = ParseBaseSpecifier(ClassDecl);
2115     if (Result.isInvalid()) {
2116       // Skip the rest of this base specifier, up until the comma or
2117       // opening brace.
2118       SkipUntil(tok::comma, tok::l_brace, StopAtSemi | StopBeforeMatch);
2119     } else {
2120       // Add this to our array of base specifiers.
2121       BaseInfo.push_back(Result.get());
2122     }
2123 
2124     // If the next token is a comma, consume it and keep reading
2125     // base-specifiers.
2126     if (!TryConsumeToken(tok::comma))
2127       break;
2128   }
2129 
2130   // Attach the base specifiers
2131   Actions.ActOnBaseSpecifiers(ClassDecl, BaseInfo);
2132 }
2133 
2134 /// ParseBaseSpecifier - Parse a C++ base-specifier. A base-specifier is
2135 /// one entry in the base class list of a class specifier, for example:
2136 ///    class foo : public bar, virtual private baz {
2137 /// 'public bar' and 'virtual private baz' are each base-specifiers.
2138 ///
2139 ///       base-specifier: [C++ class.derived]
2140 ///         attribute-specifier-seq[opt] base-type-specifier
2141 ///         attribute-specifier-seq[opt] 'virtual' access-specifier[opt]
2142 ///                 base-type-specifier
2143 ///         attribute-specifier-seq[opt] access-specifier 'virtual'[opt]
2144 ///                 base-type-specifier
2145 BaseResult Parser::ParseBaseSpecifier(Decl *ClassDecl) {
2146   bool IsVirtual = false;
2147   SourceLocation StartLoc = Tok.getLocation();
2148 
2149   ParsedAttributesWithRange Attributes(AttrFactory);
2150   MaybeParseCXX11Attributes(Attributes);
2151 
2152   // Parse the 'virtual' keyword.
2153   if (TryConsumeToken(tok::kw_virtual))
2154     IsVirtual = true;
2155 
2156   CheckMisplacedCXX11Attribute(Attributes, StartLoc);
2157 
2158   // Parse an (optional) access specifier.
2159   AccessSpecifier Access = getAccessSpecifierIfPresent();
2160   if (Access != AS_none)
2161     ConsumeToken();
2162 
2163   CheckMisplacedCXX11Attribute(Attributes, StartLoc);
2164 
2165   // Parse the 'virtual' keyword (again!), in case it came after the
2166   // access specifier.
2167   if (Tok.is(tok::kw_virtual))  {
2168     SourceLocation VirtualLoc = ConsumeToken();
2169     if (IsVirtual) {
2170       // Complain about duplicate 'virtual'
2171       Diag(VirtualLoc, diag::err_dup_virtual)
2172         << FixItHint::CreateRemoval(VirtualLoc);
2173     }
2174 
2175     IsVirtual = true;
2176   }
2177 
2178   CheckMisplacedCXX11Attribute(Attributes, StartLoc);
2179 
2180   // Parse the class-name.
2181 
2182   // HACK: MSVC doesn't consider _Atomic to be a keyword and its STL
2183   // implementation for VS2013 uses _Atomic as an identifier for one of the
2184   // classes in <atomic>.  Treat '_Atomic' to be an identifier when we are
2185   // parsing the class-name for a base specifier.
2186   if (getLangOpts().MSVCCompat && Tok.is(tok::kw__Atomic) &&
2187       NextToken().is(tok::less))
2188     Tok.setKind(tok::identifier);
2189 
2190   SourceLocation EndLocation;
2191   SourceLocation BaseLoc;
2192   TypeResult BaseType = ParseBaseTypeSpecifier(BaseLoc, EndLocation);
2193   if (BaseType.isInvalid())
2194     return true;
2195 
2196   // Parse the optional ellipsis (for a pack expansion). The ellipsis is
2197   // actually part of the base-specifier-list grammar productions, but we
2198   // parse it here for convenience.
2199   SourceLocation EllipsisLoc;
2200   TryConsumeToken(tok::ellipsis, EllipsisLoc);
2201 
2202   // Find the complete source range for the base-specifier.
2203   SourceRange Range(StartLoc, EndLocation);
2204 
2205   // Notify semantic analysis that we have parsed a complete
2206   // base-specifier.
2207   return Actions.ActOnBaseSpecifier(ClassDecl, Range, Attributes, IsVirtual,
2208                                     Access, BaseType.get(), BaseLoc,
2209                                     EllipsisLoc);
2210 }
2211 
2212 /// getAccessSpecifierIfPresent - Determine whether the next token is
2213 /// a C++ access-specifier.
2214 ///
2215 ///       access-specifier: [C++ class.derived]
2216 ///         'private'
2217 ///         'protected'
2218 ///         'public'
2219 AccessSpecifier Parser::getAccessSpecifierIfPresent() const {
2220   switch (Tok.getKind()) {
2221   default: return AS_none;
2222   case tok::kw_private: return AS_private;
2223   case tok::kw_protected: return AS_protected;
2224   case tok::kw_public: return AS_public;
2225   }
2226 }
2227 
2228 /// If the given declarator has any parts for which parsing has to be
2229 /// delayed, e.g., default arguments or an exception-specification, create a
2230 /// late-parsed method declaration record to handle the parsing at the end of
2231 /// the class definition.
2232 void Parser::HandleMemberFunctionDeclDelays(Declarator& DeclaratorInfo,
2233                                             Decl *ThisDecl) {
2234   DeclaratorChunk::FunctionTypeInfo &FTI
2235     = DeclaratorInfo.getFunctionTypeInfo();
2236   // If there was a late-parsed exception-specification, we'll need a
2237   // late parse
2238   bool NeedLateParse = FTI.getExceptionSpecType() == EST_Unparsed;
2239 
2240   if (!NeedLateParse) {
2241     // Look ahead to see if there are any default args
2242     for (unsigned ParamIdx = 0; ParamIdx < FTI.NumParams; ++ParamIdx) {
2243       auto Param = cast<ParmVarDecl>(FTI.Params[ParamIdx].Param);
2244       if (Param->hasUnparsedDefaultArg()) {
2245         NeedLateParse = true;
2246         break;
2247       }
2248     }
2249   }
2250 
2251   if (NeedLateParse) {
2252     // Push this method onto the stack of late-parsed method
2253     // declarations.
2254     auto LateMethod = new LateParsedMethodDeclaration(this, ThisDecl);
2255     getCurrentClass().LateParsedDeclarations.push_back(LateMethod);
2256 
2257     // Push tokens for each parameter. Those that do not have defaults will be
2258     // NULL. We need to track all the parameters so that we can push them into
2259     // scope for later parameters and perhaps for the exception specification.
2260     LateMethod->DefaultArgs.reserve(FTI.NumParams);
2261     for (unsigned ParamIdx = 0; ParamIdx < FTI.NumParams; ++ParamIdx)
2262       LateMethod->DefaultArgs.push_back(LateParsedDefaultArgument(
2263           FTI.Params[ParamIdx].Param,
2264           std::move(FTI.Params[ParamIdx].DefaultArgTokens)));
2265 
2266     // Stash the exception-specification tokens in the late-pased method.
2267     if (FTI.getExceptionSpecType() == EST_Unparsed) {
2268       LateMethod->ExceptionSpecTokens = FTI.ExceptionSpecTokens;
2269       FTI.ExceptionSpecTokens = nullptr;
2270     }
2271   }
2272 }
2273 
2274 /// isCXX11VirtSpecifier - Determine whether the given token is a C++11
2275 /// virt-specifier.
2276 ///
2277 ///       virt-specifier:
2278 ///         override
2279 ///         final
2280 ///         __final
2281 VirtSpecifiers::Specifier Parser::isCXX11VirtSpecifier(const Token &Tok) const {
2282   if (!getLangOpts().CPlusPlus || Tok.isNot(tok::identifier))
2283     return VirtSpecifiers::VS_None;
2284 
2285   IdentifierInfo *II = Tok.getIdentifierInfo();
2286 
2287   // Initialize the contextual keywords.
2288   if (!Ident_final) {
2289     Ident_final = &PP.getIdentifierTable().get("final");
2290     if (getLangOpts().GNUKeywords)
2291       Ident_GNU_final = &PP.getIdentifierTable().get("__final");
2292     if (getLangOpts().MicrosoftExt) {
2293       Ident_sealed = &PP.getIdentifierTable().get("sealed");
2294       Ident_abstract = &PP.getIdentifierTable().get("abstract");
2295     }
2296     Ident_override = &PP.getIdentifierTable().get("override");
2297   }
2298 
2299   if (II == Ident_override)
2300     return VirtSpecifiers::VS_Override;
2301 
2302   if (II == Ident_sealed)
2303     return VirtSpecifiers::VS_Sealed;
2304 
2305   if (II == Ident_abstract)
2306     return VirtSpecifiers::VS_Abstract;
2307 
2308   if (II == Ident_final)
2309     return VirtSpecifiers::VS_Final;
2310 
2311   if (II == Ident_GNU_final)
2312     return VirtSpecifiers::VS_GNU_Final;
2313 
2314   return VirtSpecifiers::VS_None;
2315 }
2316 
2317 /// ParseOptionalCXX11VirtSpecifierSeq - Parse a virt-specifier-seq.
2318 ///
2319 ///       virt-specifier-seq:
2320 ///         virt-specifier
2321 ///         virt-specifier-seq virt-specifier
2322 void Parser::ParseOptionalCXX11VirtSpecifierSeq(VirtSpecifiers &VS,
2323                                                 bool IsInterface,
2324                                                 SourceLocation FriendLoc) {
2325   while (true) {
2326     VirtSpecifiers::Specifier Specifier = isCXX11VirtSpecifier();
2327     if (Specifier == VirtSpecifiers::VS_None)
2328       return;
2329 
2330     if (FriendLoc.isValid()) {
2331       Diag(Tok.getLocation(), diag::err_friend_decl_spec)
2332         << VirtSpecifiers::getSpecifierName(Specifier)
2333         << FixItHint::CreateRemoval(Tok.getLocation())
2334         << SourceRange(FriendLoc, FriendLoc);
2335       ConsumeToken();
2336       continue;
2337     }
2338 
2339     // C++ [class.mem]p8:
2340     //   A virt-specifier-seq shall contain at most one of each virt-specifier.
2341     const char *PrevSpec = nullptr;
2342     if (VS.SetSpecifier(Specifier, Tok.getLocation(), PrevSpec))
2343       Diag(Tok.getLocation(), diag::err_duplicate_virt_specifier)
2344         << PrevSpec
2345         << FixItHint::CreateRemoval(Tok.getLocation());
2346 
2347     if (IsInterface && (Specifier == VirtSpecifiers::VS_Final ||
2348                         Specifier == VirtSpecifiers::VS_Sealed)) {
2349       Diag(Tok.getLocation(), diag::err_override_control_interface)
2350         << VirtSpecifiers::getSpecifierName(Specifier);
2351     } else if (Specifier == VirtSpecifiers::VS_Sealed) {
2352       Diag(Tok.getLocation(), diag::ext_ms_sealed_keyword);
2353     } else if (Specifier == VirtSpecifiers::VS_Abstract) {
2354       Diag(Tok.getLocation(), diag::ext_ms_abstract_keyword);
2355     } else if (Specifier == VirtSpecifiers::VS_GNU_Final) {
2356       Diag(Tok.getLocation(), diag::ext_warn_gnu_final);
2357     } else {
2358       Diag(Tok.getLocation(),
2359            getLangOpts().CPlusPlus11
2360                ? diag::warn_cxx98_compat_override_control_keyword
2361                : diag::ext_override_control_keyword)
2362           << VirtSpecifiers::getSpecifierName(Specifier);
2363     }
2364     ConsumeToken();
2365   }
2366 }
2367 
2368 /// isCXX11FinalKeyword - Determine whether the next token is a C++11
2369 /// 'final' or Microsoft 'sealed' contextual keyword.
2370 bool Parser::isCXX11FinalKeyword() const {
2371   VirtSpecifiers::Specifier Specifier = isCXX11VirtSpecifier();
2372   return Specifier == VirtSpecifiers::VS_Final ||
2373          Specifier == VirtSpecifiers::VS_GNU_Final ||
2374          Specifier == VirtSpecifiers::VS_Sealed;
2375 }
2376 
2377 /// isClassCompatibleKeyword - Determine whether the next token is a C++11
2378 /// 'final' or Microsoft 'sealed' or 'abstract' contextual keywords.
2379 bool Parser::isClassCompatibleKeyword() const {
2380   VirtSpecifiers::Specifier Specifier = isCXX11VirtSpecifier();
2381   return Specifier == VirtSpecifiers::VS_Final ||
2382          Specifier == VirtSpecifiers::VS_GNU_Final ||
2383          Specifier == VirtSpecifiers::VS_Sealed ||
2384          Specifier == VirtSpecifiers::VS_Abstract;
2385 }
2386 
2387 /// Parse a C++ member-declarator up to, but not including, the optional
2388 /// brace-or-equal-initializer or pure-specifier.
2389 bool Parser::ParseCXXMemberDeclaratorBeforeInitializer(
2390     Declarator &DeclaratorInfo, VirtSpecifiers &VS, ExprResult &BitfieldSize,
2391     LateParsedAttrList &LateParsedAttrs) {
2392   // member-declarator:
2393   //   declarator virt-specifier-seq[opt] pure-specifier[opt]
2394   //   declarator requires-clause
2395   //   declarator brace-or-equal-initializer[opt]
2396   //   identifier attribute-specifier-seq[opt] ':' constant-expression
2397   //       brace-or-equal-initializer[opt]
2398   //   ':' constant-expression
2399   //
2400   // NOTE: the latter two productions are a proposed bugfix rather than the
2401   // current grammar rules as of C++20.
2402   if (Tok.isNot(tok::colon))
2403     ParseDeclarator(DeclaratorInfo);
2404   else
2405     DeclaratorInfo.SetIdentifier(nullptr, Tok.getLocation());
2406 
2407   if (!DeclaratorInfo.isFunctionDeclarator() && TryConsumeToken(tok::colon)) {
2408     assert(DeclaratorInfo.isPastIdentifier() &&
2409            "don't know where identifier would go yet?");
2410     BitfieldSize = ParseConstantExpression();
2411     if (BitfieldSize.isInvalid())
2412       SkipUntil(tok::comma, StopAtSemi | StopBeforeMatch);
2413   } else if (Tok.is(tok::kw_requires)) {
2414     ParseTrailingRequiresClause(DeclaratorInfo);
2415   } else {
2416     ParseOptionalCXX11VirtSpecifierSeq(
2417         VS, getCurrentClass().IsInterface,
2418         DeclaratorInfo.getDeclSpec().getFriendSpecLoc());
2419     if (!VS.isUnset())
2420       MaybeParseAndDiagnoseDeclSpecAfterCXX11VirtSpecifierSeq(DeclaratorInfo, VS);
2421   }
2422 
2423   // If a simple-asm-expr is present, parse it.
2424   if (Tok.is(tok::kw_asm)) {
2425     SourceLocation Loc;
2426     ExprResult AsmLabel(ParseSimpleAsm(/*ForAsmLabel*/ true, &Loc));
2427     if (AsmLabel.isInvalid())
2428       SkipUntil(tok::comma, StopAtSemi | StopBeforeMatch);
2429 
2430     DeclaratorInfo.setAsmLabel(AsmLabel.get());
2431     DeclaratorInfo.SetRangeEnd(Loc);
2432   }
2433 
2434   // If attributes exist after the declarator, but before an '{', parse them.
2435   // However, this does not apply for [[]] attributes (which could show up
2436   // before or after the __attribute__ attributes).
2437   DiagnoseAndSkipCXX11Attributes();
2438   MaybeParseGNUAttributes(DeclaratorInfo, &LateParsedAttrs);
2439   DiagnoseAndSkipCXX11Attributes();
2440 
2441   // For compatibility with code written to older Clang, also accept a
2442   // virt-specifier *after* the GNU attributes.
2443   if (BitfieldSize.isUnset() && VS.isUnset()) {
2444     ParseOptionalCXX11VirtSpecifierSeq(
2445         VS, getCurrentClass().IsInterface,
2446         DeclaratorInfo.getDeclSpec().getFriendSpecLoc());
2447     if (!VS.isUnset()) {
2448       // If we saw any GNU-style attributes that are known to GCC followed by a
2449       // virt-specifier, issue a GCC-compat warning.
2450       for (const ParsedAttr &AL : DeclaratorInfo.getAttributes())
2451         if (AL.isKnownToGCC() && !AL.isCXX11Attribute())
2452           Diag(AL.getLoc(), diag::warn_gcc_attribute_location);
2453 
2454       MaybeParseAndDiagnoseDeclSpecAfterCXX11VirtSpecifierSeq(DeclaratorInfo, VS);
2455     }
2456   }
2457 
2458   // If this has neither a name nor a bit width, something has gone seriously
2459   // wrong. Skip until the semi-colon or }.
2460   if (!DeclaratorInfo.hasName() && BitfieldSize.isUnset()) {
2461     // If so, skip until the semi-colon or a }.
2462     SkipUntil(tok::r_brace, StopAtSemi | StopBeforeMatch);
2463     return true;
2464   }
2465   return false;
2466 }
2467 
2468 /// Look for declaration specifiers possibly occurring after C++11
2469 /// virt-specifier-seq and diagnose them.
2470 void Parser::MaybeParseAndDiagnoseDeclSpecAfterCXX11VirtSpecifierSeq(
2471     Declarator &D,
2472     VirtSpecifiers &VS) {
2473   DeclSpec DS(AttrFactory);
2474 
2475   // GNU-style and C++11 attributes are not allowed here, but they will be
2476   // handled by the caller.  Diagnose everything else.
2477   ParseTypeQualifierListOpt(
2478       DS, AR_NoAttributesParsed, false,
2479       /*IdentifierRequired=*/false, llvm::function_ref<void()>([&]() {
2480         Actions.CodeCompleteFunctionQualifiers(DS, D, &VS);
2481       }));
2482   D.ExtendWithDeclSpec(DS);
2483 
2484   if (D.isFunctionDeclarator()) {
2485     auto &Function = D.getFunctionTypeInfo();
2486     if (DS.getTypeQualifiers() != DeclSpec::TQ_unspecified) {
2487       auto DeclSpecCheck = [&](DeclSpec::TQ TypeQual, StringRef FixItName,
2488                                SourceLocation SpecLoc) {
2489         FixItHint Insertion;
2490         auto &MQ = Function.getOrCreateMethodQualifiers();
2491         if (!(MQ.getTypeQualifiers() & TypeQual)) {
2492           std::string Name(FixItName.data());
2493           Name += " ";
2494           Insertion = FixItHint::CreateInsertion(VS.getFirstLocation(), Name);
2495           MQ.SetTypeQual(TypeQual, SpecLoc);
2496         }
2497         Diag(SpecLoc, diag::err_declspec_after_virtspec)
2498             << FixItName
2499             << VirtSpecifiers::getSpecifierName(VS.getLastSpecifier())
2500             << FixItHint::CreateRemoval(SpecLoc) << Insertion;
2501       };
2502       DS.forEachQualifier(DeclSpecCheck);
2503     }
2504 
2505     // Parse ref-qualifiers.
2506     bool RefQualifierIsLValueRef = true;
2507     SourceLocation RefQualifierLoc;
2508     if (ParseRefQualifier(RefQualifierIsLValueRef, RefQualifierLoc)) {
2509       const char *Name = (RefQualifierIsLValueRef ? "& " : "&& ");
2510       FixItHint Insertion = FixItHint::CreateInsertion(VS.getFirstLocation(), Name);
2511       Function.RefQualifierIsLValueRef = RefQualifierIsLValueRef;
2512       Function.RefQualifierLoc = RefQualifierLoc;
2513 
2514       Diag(RefQualifierLoc, diag::err_declspec_after_virtspec)
2515         << (RefQualifierIsLValueRef ? "&" : "&&")
2516         << VirtSpecifiers::getSpecifierName(VS.getLastSpecifier())
2517         << FixItHint::CreateRemoval(RefQualifierLoc)
2518         << Insertion;
2519       D.SetRangeEnd(RefQualifierLoc);
2520     }
2521   }
2522 }
2523 
2524 /// ParseCXXClassMemberDeclaration - Parse a C++ class member declaration.
2525 ///
2526 ///       member-declaration:
2527 ///         decl-specifier-seq[opt] member-declarator-list[opt] ';'
2528 ///         function-definition ';'[opt]
2529 ///         ::[opt] nested-name-specifier template[opt] unqualified-id ';'[TODO]
2530 ///         using-declaration                                            [TODO]
2531 /// [C++0x] static_assert-declaration
2532 ///         template-declaration
2533 /// [GNU]   '__extension__' member-declaration
2534 ///
2535 ///       member-declarator-list:
2536 ///         member-declarator
2537 ///         member-declarator-list ',' member-declarator
2538 ///
2539 ///       member-declarator:
2540 ///         declarator virt-specifier-seq[opt] pure-specifier[opt]
2541 /// [C++2a] declarator requires-clause
2542 ///         declarator constant-initializer[opt]
2543 /// [C++11] declarator brace-or-equal-initializer[opt]
2544 ///         identifier[opt] ':' constant-expression
2545 ///
2546 ///       virt-specifier-seq:
2547 ///         virt-specifier
2548 ///         virt-specifier-seq virt-specifier
2549 ///
2550 ///       virt-specifier:
2551 ///         override
2552 ///         final
2553 /// [MS]    sealed
2554 ///
2555 ///       pure-specifier:
2556 ///         '= 0'
2557 ///
2558 ///       constant-initializer:
2559 ///         '=' constant-expression
2560 ///
2561 Parser::DeclGroupPtrTy
2562 Parser::ParseCXXClassMemberDeclaration(AccessSpecifier AS,
2563                                        ParsedAttributes &AccessAttrs,
2564                                        const ParsedTemplateInfo &TemplateInfo,
2565                                        ParsingDeclRAIIObject *TemplateDiags) {
2566   if (Tok.is(tok::at)) {
2567     if (getLangOpts().ObjC && NextToken().isObjCAtKeyword(tok::objc_defs))
2568       Diag(Tok, diag::err_at_defs_cxx);
2569     else
2570       Diag(Tok, diag::err_at_in_class);
2571 
2572     ConsumeToken();
2573     SkipUntil(tok::r_brace, StopAtSemi);
2574     return nullptr;
2575   }
2576 
2577   // Turn on colon protection early, while parsing declspec, although there is
2578   // nothing to protect there. It prevents from false errors if error recovery
2579   // incorrectly determines where the declspec ends, as in the example:
2580   //   struct A { enum class B { C }; };
2581   //   const int C = 4;
2582   //   struct D { A::B : C; };
2583   ColonProtectionRAIIObject X(*this);
2584 
2585   // Access declarations.
2586   bool MalformedTypeSpec = false;
2587   if (!TemplateInfo.Kind &&
2588       Tok.isOneOf(tok::identifier, tok::coloncolon, tok::kw___super)) {
2589     if (TryAnnotateCXXScopeToken())
2590       MalformedTypeSpec = true;
2591 
2592     bool isAccessDecl;
2593     if (Tok.isNot(tok::annot_cxxscope))
2594       isAccessDecl = false;
2595     else if (NextToken().is(tok::identifier))
2596       isAccessDecl = GetLookAheadToken(2).is(tok::semi);
2597     else
2598       isAccessDecl = NextToken().is(tok::kw_operator);
2599 
2600     if (isAccessDecl) {
2601       // Collect the scope specifier token we annotated earlier.
2602       CXXScopeSpec SS;
2603       ParseOptionalCXXScopeSpecifier(SS, /*ObjectType=*/nullptr,
2604                                      /*ObjectHadErrors=*/false,
2605                                      /*EnteringContext=*/false);
2606 
2607       if (SS.isInvalid()) {
2608         SkipUntil(tok::semi);
2609         return nullptr;
2610       }
2611 
2612       // Try to parse an unqualified-id.
2613       SourceLocation TemplateKWLoc;
2614       UnqualifiedId Name;
2615       if (ParseUnqualifiedId(SS, /*ObjectType=*/nullptr,
2616                              /*ObjectHadErrors=*/false, false, true, true,
2617                              false, &TemplateKWLoc, Name)) {
2618         SkipUntil(tok::semi);
2619         return nullptr;
2620       }
2621 
2622       // TODO: recover from mistakenly-qualified operator declarations.
2623       if (ExpectAndConsume(tok::semi, diag::err_expected_after,
2624                            "access declaration")) {
2625         SkipUntil(tok::semi);
2626         return nullptr;
2627       }
2628 
2629       // FIXME: We should do something with the 'template' keyword here.
2630       return DeclGroupPtrTy::make(DeclGroupRef(Actions.ActOnUsingDeclaration(
2631           getCurScope(), AS, /*UsingLoc*/ SourceLocation(),
2632           /*TypenameLoc*/ SourceLocation(), SS, Name,
2633           /*EllipsisLoc*/ SourceLocation(),
2634           /*AttrList*/ ParsedAttributesView())));
2635     }
2636   }
2637 
2638   // static_assert-declaration. A templated static_assert declaration is
2639   // diagnosed in Parser::ParseSingleDeclarationAfterTemplate.
2640   if (!TemplateInfo.Kind &&
2641       Tok.isOneOf(tok::kw_static_assert, tok::kw__Static_assert)) {
2642     SourceLocation DeclEnd;
2643     return DeclGroupPtrTy::make(
2644         DeclGroupRef(ParseStaticAssertDeclaration(DeclEnd)));
2645   }
2646 
2647   if (Tok.is(tok::kw_template)) {
2648     assert(!TemplateInfo.TemplateParams &&
2649            "Nested template improperly parsed?");
2650     ObjCDeclContextSwitch ObjCDC(*this);
2651     SourceLocation DeclEnd;
2652     return DeclGroupPtrTy::make(
2653         DeclGroupRef(ParseTemplateDeclarationOrSpecialization(
2654             DeclaratorContext::Member, DeclEnd, AccessAttrs, AS)));
2655   }
2656 
2657   // Handle:  member-declaration ::= '__extension__' member-declaration
2658   if (Tok.is(tok::kw___extension__)) {
2659     // __extension__ silences extension warnings in the subexpression.
2660     ExtensionRAIIObject O(Diags);  // Use RAII to do this.
2661     ConsumeToken();
2662     return ParseCXXClassMemberDeclaration(AS, AccessAttrs,
2663                                           TemplateInfo, TemplateDiags);
2664   }
2665 
2666   ParsedAttributesWithRange attrs(AttrFactory);
2667   ParsedAttributesViewWithRange FnAttrs;
2668   // Optional C++11 attribute-specifier
2669   MaybeParseCXX11Attributes(attrs);
2670 
2671   // The next token may be an OpenMP pragma annotation token. That would
2672   // normally be handled from ParseCXXClassMemberDeclarationWithPragmas, but in
2673   // this case, it came from an *attribute* rather than a pragma. Handle it now.
2674   if (Tok.is(tok::annot_attr_openmp))
2675     return ParseOpenMPDeclarativeDirectiveWithExtDecl(AS, attrs);
2676 
2677   // We need to keep these attributes for future diagnostic
2678   // before they are taken over by declaration specifier.
2679   FnAttrs.addAll(attrs.begin(), attrs.end());
2680   FnAttrs.Range = attrs.Range;
2681 
2682   MaybeParseMicrosoftAttributes(attrs);
2683 
2684   if (Tok.is(tok::kw_using)) {
2685     // Eat 'using'.
2686     SourceLocation UsingLoc = ConsumeToken();
2687 
2688     // Consume unexpected 'template' keywords.
2689     while (Tok.is(tok::kw_template)) {
2690       SourceLocation TemplateLoc = ConsumeToken();
2691       Diag(TemplateLoc, diag::err_unexpected_template_after_using)
2692           << FixItHint::CreateRemoval(TemplateLoc);
2693     }
2694 
2695     if (Tok.is(tok::kw_namespace)) {
2696       Diag(UsingLoc, diag::err_using_namespace_in_class);
2697       SkipUntil(tok::semi, StopBeforeMatch);
2698       return nullptr;
2699     }
2700     SourceLocation DeclEnd;
2701     // Otherwise, it must be a using-declaration or an alias-declaration.
2702     return ParseUsingDeclaration(DeclaratorContext::Member, TemplateInfo,
2703                                  UsingLoc, DeclEnd, attrs, AS);
2704   }
2705 
2706   // Hold late-parsed attributes so we can attach a Decl to them later.
2707   LateParsedAttrList CommonLateParsedAttrs;
2708 
2709   // decl-specifier-seq:
2710   // Parse the common declaration-specifiers piece.
2711   ParsingDeclSpec DS(*this, TemplateDiags);
2712   DS.takeAttributesFrom(attrs);
2713   if (MalformedTypeSpec)
2714     DS.SetTypeSpecError();
2715 
2716   ParseDeclarationSpecifiers(DS, TemplateInfo, AS, DeclSpecContext::DSC_class,
2717                              &CommonLateParsedAttrs);
2718 
2719   // Turn off colon protection that was set for declspec.
2720   X.restore();
2721 
2722   // If we had a free-standing type definition with a missing semicolon, we
2723   // may get this far before the problem becomes obvious.
2724   if (DS.hasTagDefinition() &&
2725       TemplateInfo.Kind == ParsedTemplateInfo::NonTemplate &&
2726       DiagnoseMissingSemiAfterTagDefinition(DS, AS, DeclSpecContext::DSC_class,
2727                                             &CommonLateParsedAttrs))
2728     return nullptr;
2729 
2730   MultiTemplateParamsArg TemplateParams(
2731       TemplateInfo.TemplateParams? TemplateInfo.TemplateParams->data()
2732                                  : nullptr,
2733       TemplateInfo.TemplateParams? TemplateInfo.TemplateParams->size() : 0);
2734 
2735   if (TryConsumeToken(tok::semi)) {
2736     if (DS.isFriendSpecified())
2737       ProhibitAttributes(FnAttrs);
2738 
2739     RecordDecl *AnonRecord = nullptr;
2740     Decl *TheDecl = Actions.ParsedFreeStandingDeclSpec(
2741         getCurScope(), AS, DS, TemplateParams, false, AnonRecord);
2742     DS.complete(TheDecl);
2743     if (AnonRecord) {
2744       Decl* decls[] = {AnonRecord, TheDecl};
2745       return Actions.BuildDeclaratorGroup(decls);
2746     }
2747     return Actions.ConvertDeclToDeclGroup(TheDecl);
2748   }
2749 
2750   ParsingDeclarator DeclaratorInfo(*this, DS, DeclaratorContext::Member);
2751   if (TemplateInfo.TemplateParams)
2752     DeclaratorInfo.setTemplateParameterLists(TemplateParams);
2753   VirtSpecifiers VS;
2754 
2755   // Hold late-parsed attributes so we can attach a Decl to them later.
2756   LateParsedAttrList LateParsedAttrs;
2757 
2758   SourceLocation EqualLoc;
2759   SourceLocation PureSpecLoc;
2760 
2761   auto TryConsumePureSpecifier = [&] (bool AllowDefinition) {
2762     if (Tok.isNot(tok::equal))
2763       return false;
2764 
2765     auto &Zero = NextToken();
2766     SmallString<8> Buffer;
2767     if (Zero.isNot(tok::numeric_constant) ||
2768         PP.getSpelling(Zero, Buffer) != "0")
2769       return false;
2770 
2771     auto &After = GetLookAheadToken(2);
2772     if (!After.isOneOf(tok::semi, tok::comma) &&
2773         !(AllowDefinition &&
2774           After.isOneOf(tok::l_brace, tok::colon, tok::kw_try)))
2775       return false;
2776 
2777     EqualLoc = ConsumeToken();
2778     PureSpecLoc = ConsumeToken();
2779     return true;
2780   };
2781 
2782   SmallVector<Decl *, 8> DeclsInGroup;
2783   ExprResult BitfieldSize;
2784   ExprResult TrailingRequiresClause;
2785   bool ExpectSemi = true;
2786 
2787   // Parse the first declarator.
2788   if (ParseCXXMemberDeclaratorBeforeInitializer(
2789           DeclaratorInfo, VS, BitfieldSize, LateParsedAttrs)) {
2790     TryConsumeToken(tok::semi);
2791     return nullptr;
2792   }
2793 
2794   // Check for a member function definition.
2795   if (BitfieldSize.isUnset()) {
2796     // MSVC permits pure specifier on inline functions defined at class scope.
2797     // Hence check for =0 before checking for function definition.
2798     if (getLangOpts().MicrosoftExt && DeclaratorInfo.isDeclarationOfFunction())
2799       TryConsumePureSpecifier(/*AllowDefinition*/ true);
2800 
2801     FunctionDefinitionKind DefinitionKind = FunctionDefinitionKind::Declaration;
2802     // function-definition:
2803     //
2804     // In C++11, a non-function declarator followed by an open brace is a
2805     // braced-init-list for an in-class member initialization, not an
2806     // erroneous function definition.
2807     if (Tok.is(tok::l_brace) && !getLangOpts().CPlusPlus11) {
2808       DefinitionKind = FunctionDefinitionKind::Definition;
2809     } else if (DeclaratorInfo.isFunctionDeclarator()) {
2810       if (Tok.isOneOf(tok::l_brace, tok::colon, tok::kw_try)) {
2811         DefinitionKind = FunctionDefinitionKind::Definition;
2812       } else if (Tok.is(tok::equal)) {
2813         const Token &KW = NextToken();
2814         if (KW.is(tok::kw_default))
2815           DefinitionKind = FunctionDefinitionKind::Defaulted;
2816         else if (KW.is(tok::kw_delete))
2817           DefinitionKind = FunctionDefinitionKind::Deleted;
2818         else if (KW.is(tok::code_completion)) {
2819           cutOffParsing();
2820           Actions.CodeCompleteAfterFunctionEquals(DeclaratorInfo);
2821           return nullptr;
2822         }
2823       }
2824     }
2825     DeclaratorInfo.setFunctionDefinitionKind(DefinitionKind);
2826 
2827     // C++11 [dcl.attr.grammar] p4: If an attribute-specifier-seq appertains
2828     // to a friend declaration, that declaration shall be a definition.
2829     if (DeclaratorInfo.isFunctionDeclarator() &&
2830         DefinitionKind == FunctionDefinitionKind::Declaration &&
2831         DS.isFriendSpecified()) {
2832       // Diagnose attributes that appear before decl specifier:
2833       // [[]] friend int foo();
2834       ProhibitAttributes(FnAttrs);
2835     }
2836 
2837     if (DefinitionKind != FunctionDefinitionKind::Declaration) {
2838       if (!DeclaratorInfo.isFunctionDeclarator()) {
2839         Diag(DeclaratorInfo.getIdentifierLoc(), diag::err_func_def_no_params);
2840         ConsumeBrace();
2841         SkipUntil(tok::r_brace);
2842 
2843         // Consume the optional ';'
2844         TryConsumeToken(tok::semi);
2845 
2846         return nullptr;
2847       }
2848 
2849       if (DS.getStorageClassSpec() == DeclSpec::SCS_typedef) {
2850         Diag(DeclaratorInfo.getIdentifierLoc(),
2851              diag::err_function_declared_typedef);
2852 
2853         // Recover by treating the 'typedef' as spurious.
2854         DS.ClearStorageClassSpecs();
2855       }
2856 
2857       Decl *FunDecl =
2858         ParseCXXInlineMethodDef(AS, AccessAttrs, DeclaratorInfo, TemplateInfo,
2859                                 VS, PureSpecLoc);
2860 
2861       if (FunDecl) {
2862         for (unsigned i = 0, ni = CommonLateParsedAttrs.size(); i < ni; ++i) {
2863           CommonLateParsedAttrs[i]->addDecl(FunDecl);
2864         }
2865         for (unsigned i = 0, ni = LateParsedAttrs.size(); i < ni; ++i) {
2866           LateParsedAttrs[i]->addDecl(FunDecl);
2867         }
2868       }
2869       LateParsedAttrs.clear();
2870 
2871       // Consume the ';' - it's optional unless we have a delete or default
2872       if (Tok.is(tok::semi))
2873         ConsumeExtraSemi(AfterMemberFunctionDefinition);
2874 
2875       return DeclGroupPtrTy::make(DeclGroupRef(FunDecl));
2876     }
2877   }
2878 
2879   // member-declarator-list:
2880   //   member-declarator
2881   //   member-declarator-list ',' member-declarator
2882 
2883   while (1) {
2884     InClassInitStyle HasInClassInit = ICIS_NoInit;
2885     bool HasStaticInitializer = false;
2886     if (Tok.isOneOf(tok::equal, tok::l_brace) && PureSpecLoc.isInvalid()) {
2887       // DRXXXX: Anonymous bit-fields cannot have a brace-or-equal-initializer.
2888       if (BitfieldSize.isUsable() && !DeclaratorInfo.hasName()) {
2889         // Diagnose the error and pretend there is no in-class initializer.
2890         Diag(Tok, diag::err_anon_bitfield_member_init);
2891         SkipUntil(tok::comma, StopAtSemi | StopBeforeMatch);
2892       } else if (DeclaratorInfo.isDeclarationOfFunction()) {
2893         // It's a pure-specifier.
2894         if (!TryConsumePureSpecifier(/*AllowFunctionDefinition*/ false))
2895           // Parse it as an expression so that Sema can diagnose it.
2896           HasStaticInitializer = true;
2897       } else if (DeclaratorInfo.getDeclSpec().getStorageClassSpec() !=
2898                      DeclSpec::SCS_static &&
2899                  DeclaratorInfo.getDeclSpec().getStorageClassSpec() !=
2900                      DeclSpec::SCS_typedef &&
2901                  !DS.isFriendSpecified()) {
2902         // It's a default member initializer.
2903         if (BitfieldSize.get())
2904           Diag(Tok, getLangOpts().CPlusPlus20
2905                         ? diag::warn_cxx17_compat_bitfield_member_init
2906                         : diag::ext_bitfield_member_init);
2907         HasInClassInit = Tok.is(tok::equal) ? ICIS_CopyInit : ICIS_ListInit;
2908       } else {
2909         HasStaticInitializer = true;
2910       }
2911     }
2912 
2913     // NOTE: If Sema is the Action module and declarator is an instance field,
2914     // this call will *not* return the created decl; It will return null.
2915     // See Sema::ActOnCXXMemberDeclarator for details.
2916 
2917     NamedDecl *ThisDecl = nullptr;
2918     if (DS.isFriendSpecified()) {
2919       // C++11 [dcl.attr.grammar] p4: If an attribute-specifier-seq appertains
2920       // to a friend declaration, that declaration shall be a definition.
2921       //
2922       // Diagnose attributes that appear in a friend member function declarator:
2923       //   friend int foo [[]] ();
2924       SmallVector<SourceRange, 4> Ranges;
2925       DeclaratorInfo.getCXX11AttributeRanges(Ranges);
2926       for (SmallVectorImpl<SourceRange>::iterator I = Ranges.begin(),
2927            E = Ranges.end(); I != E; ++I)
2928         Diag((*I).getBegin(), diag::err_attributes_not_allowed) << *I;
2929 
2930       ThisDecl = Actions.ActOnFriendFunctionDecl(getCurScope(), DeclaratorInfo,
2931                                                  TemplateParams);
2932     } else {
2933       ThisDecl = Actions.ActOnCXXMemberDeclarator(getCurScope(), AS,
2934                                                   DeclaratorInfo,
2935                                                   TemplateParams,
2936                                                   BitfieldSize.get(),
2937                                                   VS, HasInClassInit);
2938 
2939       if (VarTemplateDecl *VT =
2940               ThisDecl ? dyn_cast<VarTemplateDecl>(ThisDecl) : nullptr)
2941         // Re-direct this decl to refer to the templated decl so that we can
2942         // initialize it.
2943         ThisDecl = VT->getTemplatedDecl();
2944 
2945       if (ThisDecl)
2946         Actions.ProcessDeclAttributeList(getCurScope(), ThisDecl, AccessAttrs);
2947     }
2948 
2949     // Error recovery might have converted a non-static member into a static
2950     // member.
2951     if (HasInClassInit != ICIS_NoInit &&
2952         DeclaratorInfo.getDeclSpec().getStorageClassSpec() ==
2953             DeclSpec::SCS_static) {
2954       HasInClassInit = ICIS_NoInit;
2955       HasStaticInitializer = true;
2956     }
2957 
2958     if (PureSpecLoc.isValid() && VS.getAbstractLoc().isValid()) {
2959       Diag(PureSpecLoc, diag::err_duplicate_virt_specifier) << "abstract";
2960     }
2961     if (ThisDecl && PureSpecLoc.isValid())
2962       Actions.ActOnPureSpecifier(ThisDecl, PureSpecLoc);
2963     else if (ThisDecl && VS.getAbstractLoc().isValid())
2964       Actions.ActOnPureSpecifier(ThisDecl, VS.getAbstractLoc());
2965 
2966     // Handle the initializer.
2967     if (HasInClassInit != ICIS_NoInit) {
2968       // The initializer was deferred; parse it and cache the tokens.
2969       Diag(Tok, getLangOpts().CPlusPlus11
2970                     ? diag::warn_cxx98_compat_nonstatic_member_init
2971                     : diag::ext_nonstatic_member_init);
2972 
2973       if (DeclaratorInfo.isArrayOfUnknownBound()) {
2974         // C++11 [dcl.array]p3: An array bound may also be omitted when the
2975         // declarator is followed by an initializer.
2976         //
2977         // A brace-or-equal-initializer for a member-declarator is not an
2978         // initializer in the grammar, so this is ill-formed.
2979         Diag(Tok, diag::err_incomplete_array_member_init);
2980         SkipUntil(tok::comma, StopAtSemi | StopBeforeMatch);
2981 
2982         // Avoid later warnings about a class member of incomplete type.
2983         if (ThisDecl)
2984           ThisDecl->setInvalidDecl();
2985       } else
2986         ParseCXXNonStaticMemberInitializer(ThisDecl);
2987     } else if (HasStaticInitializer) {
2988       // Normal initializer.
2989       ExprResult Init = ParseCXXMemberInitializer(
2990           ThisDecl, DeclaratorInfo.isDeclarationOfFunction(), EqualLoc);
2991 
2992       if (Init.isInvalid())
2993         SkipUntil(tok::comma, StopAtSemi | StopBeforeMatch);
2994       else if (ThisDecl)
2995         Actions.AddInitializerToDecl(ThisDecl, Init.get(), EqualLoc.isInvalid());
2996     } else if (ThisDecl && DS.getStorageClassSpec() == DeclSpec::SCS_static)
2997       // No initializer.
2998       Actions.ActOnUninitializedDecl(ThisDecl);
2999 
3000     if (ThisDecl) {
3001       if (!ThisDecl->isInvalidDecl()) {
3002         // Set the Decl for any late parsed attributes
3003         for (unsigned i = 0, ni = CommonLateParsedAttrs.size(); i < ni; ++i)
3004           CommonLateParsedAttrs[i]->addDecl(ThisDecl);
3005 
3006         for (unsigned i = 0, ni = LateParsedAttrs.size(); i < ni; ++i)
3007           LateParsedAttrs[i]->addDecl(ThisDecl);
3008       }
3009       Actions.FinalizeDeclaration(ThisDecl);
3010       DeclsInGroup.push_back(ThisDecl);
3011 
3012       if (DeclaratorInfo.isFunctionDeclarator() &&
3013           DeclaratorInfo.getDeclSpec().getStorageClassSpec() !=
3014               DeclSpec::SCS_typedef)
3015         HandleMemberFunctionDeclDelays(DeclaratorInfo, ThisDecl);
3016     }
3017     LateParsedAttrs.clear();
3018 
3019     DeclaratorInfo.complete(ThisDecl);
3020 
3021     // If we don't have a comma, it is either the end of the list (a ';')
3022     // or an error, bail out.
3023     SourceLocation CommaLoc;
3024     if (!TryConsumeToken(tok::comma, CommaLoc))
3025       break;
3026 
3027     if (Tok.isAtStartOfLine() &&
3028         !MightBeDeclarator(DeclaratorContext::Member)) {
3029       // This comma was followed by a line-break and something which can't be
3030       // the start of a declarator. The comma was probably a typo for a
3031       // semicolon.
3032       Diag(CommaLoc, diag::err_expected_semi_declaration)
3033         << FixItHint::CreateReplacement(CommaLoc, ";");
3034       ExpectSemi = false;
3035       break;
3036     }
3037 
3038     // Parse the next declarator.
3039     DeclaratorInfo.clear();
3040     VS.clear();
3041     BitfieldSize = ExprResult(/*Invalid=*/false);
3042     EqualLoc = PureSpecLoc = SourceLocation();
3043     DeclaratorInfo.setCommaLoc(CommaLoc);
3044 
3045     // GNU attributes are allowed before the second and subsequent declarator.
3046     // However, this does not apply for [[]] attributes (which could show up
3047     // before or after the __attribute__ attributes).
3048     DiagnoseAndSkipCXX11Attributes();
3049     MaybeParseGNUAttributes(DeclaratorInfo);
3050     DiagnoseAndSkipCXX11Attributes();
3051 
3052     if (ParseCXXMemberDeclaratorBeforeInitializer(
3053             DeclaratorInfo, VS, BitfieldSize, LateParsedAttrs))
3054       break;
3055   }
3056 
3057   if (ExpectSemi &&
3058       ExpectAndConsume(tok::semi, diag::err_expected_semi_decl_list)) {
3059     // Skip to end of block or statement.
3060     SkipUntil(tok::r_brace, StopAtSemi | StopBeforeMatch);
3061     // If we stopped at a ';', eat it.
3062     TryConsumeToken(tok::semi);
3063     return nullptr;
3064   }
3065 
3066   return Actions.FinalizeDeclaratorGroup(getCurScope(), DS, DeclsInGroup);
3067 }
3068 
3069 /// ParseCXXMemberInitializer - Parse the brace-or-equal-initializer.
3070 /// Also detect and reject any attempted defaulted/deleted function definition.
3071 /// The location of the '=', if any, will be placed in EqualLoc.
3072 ///
3073 /// This does not check for a pure-specifier; that's handled elsewhere.
3074 ///
3075 ///   brace-or-equal-initializer:
3076 ///     '=' initializer-expression
3077 ///     braced-init-list
3078 ///
3079 ///   initializer-clause:
3080 ///     assignment-expression
3081 ///     braced-init-list
3082 ///
3083 ///   defaulted/deleted function-definition:
3084 ///     '=' 'default'
3085 ///     '=' 'delete'
3086 ///
3087 /// Prior to C++0x, the assignment-expression in an initializer-clause must
3088 /// be a constant-expression.
3089 ExprResult Parser::ParseCXXMemberInitializer(Decl *D, bool IsFunction,
3090                                              SourceLocation &EqualLoc) {
3091   assert(Tok.isOneOf(tok::equal, tok::l_brace)
3092          && "Data member initializer not starting with '=' or '{'");
3093 
3094   EnterExpressionEvaluationContext Context(
3095       Actions, Sema::ExpressionEvaluationContext::PotentiallyEvaluated, D);
3096   if (TryConsumeToken(tok::equal, EqualLoc)) {
3097     if (Tok.is(tok::kw_delete)) {
3098       // In principle, an initializer of '= delete p;' is legal, but it will
3099       // never type-check. It's better to diagnose it as an ill-formed expression
3100       // than as an ill-formed deleted non-function member.
3101       // An initializer of '= delete p, foo' will never be parsed, because
3102       // a top-level comma always ends the initializer expression.
3103       const Token &Next = NextToken();
3104       if (IsFunction || Next.isOneOf(tok::semi, tok::comma, tok::eof)) {
3105         if (IsFunction)
3106           Diag(ConsumeToken(), diag::err_default_delete_in_multiple_declaration)
3107             << 1 /* delete */;
3108         else
3109           Diag(ConsumeToken(), diag::err_deleted_non_function);
3110         return ExprError();
3111       }
3112     } else if (Tok.is(tok::kw_default)) {
3113       if (IsFunction)
3114         Diag(Tok, diag::err_default_delete_in_multiple_declaration)
3115           << 0 /* default */;
3116       else
3117         Diag(ConsumeToken(), diag::err_default_special_members)
3118             << getLangOpts().CPlusPlus20;
3119       return ExprError();
3120     }
3121   }
3122   if (const auto *PD = dyn_cast_or_null<MSPropertyDecl>(D)) {
3123     Diag(Tok, diag::err_ms_property_initializer) << PD;
3124     return ExprError();
3125   }
3126   return ParseInitializer();
3127 }
3128 
3129 void Parser::SkipCXXMemberSpecification(SourceLocation RecordLoc,
3130                                         SourceLocation AttrFixitLoc,
3131                                         unsigned TagType, Decl *TagDecl) {
3132   // Skip the optional 'final' keyword.
3133   if (getLangOpts().CPlusPlus && Tok.is(tok::identifier)) {
3134     assert(isCXX11FinalKeyword() && "not a class definition");
3135     ConsumeToken();
3136 
3137     // Diagnose any C++11 attributes after 'final' keyword.
3138     // We deliberately discard these attributes.
3139     ParsedAttributesWithRange Attrs(AttrFactory);
3140     CheckMisplacedCXX11Attribute(Attrs, AttrFixitLoc);
3141 
3142     // This can only happen if we had malformed misplaced attributes;
3143     // we only get called if there is a colon or left-brace after the
3144     // attributes.
3145     if (Tok.isNot(tok::colon) && Tok.isNot(tok::l_brace))
3146       return;
3147   }
3148 
3149   // Skip the base clauses. This requires actually parsing them, because
3150   // otherwise we can't be sure where they end (a left brace may appear
3151   // within a template argument).
3152   if (Tok.is(tok::colon)) {
3153     // Enter the scope of the class so that we can correctly parse its bases.
3154     ParseScope ClassScope(this, Scope::ClassScope|Scope::DeclScope);
3155     ParsingClassDefinition ParsingDef(*this, TagDecl, /*NonNestedClass*/ true,
3156                                       TagType == DeclSpec::TST_interface);
3157     auto OldContext =
3158         Actions.ActOnTagStartSkippedDefinition(getCurScope(), TagDecl);
3159 
3160     // Parse the bases but don't attach them to the class.
3161     ParseBaseClause(nullptr);
3162 
3163     Actions.ActOnTagFinishSkippedDefinition(OldContext);
3164 
3165     if (!Tok.is(tok::l_brace)) {
3166       Diag(PP.getLocForEndOfToken(PrevTokLocation),
3167            diag::err_expected_lbrace_after_base_specifiers);
3168       return;
3169     }
3170   }
3171 
3172   // Skip the body.
3173   assert(Tok.is(tok::l_brace));
3174   BalancedDelimiterTracker T(*this, tok::l_brace);
3175   T.consumeOpen();
3176   T.skipToEnd();
3177 
3178   // Parse and discard any trailing attributes.
3179   ParsedAttributes Attrs(AttrFactory);
3180   if (Tok.is(tok::kw___attribute))
3181     MaybeParseGNUAttributes(Attrs);
3182 }
3183 
3184 Parser::DeclGroupPtrTy Parser::ParseCXXClassMemberDeclarationWithPragmas(
3185     AccessSpecifier &AS, ParsedAttributesWithRange &AccessAttrs,
3186     DeclSpec::TST TagType, Decl *TagDecl) {
3187   ParenBraceBracketBalancer BalancerRAIIObj(*this);
3188 
3189   switch (Tok.getKind()) {
3190   case tok::kw___if_exists:
3191   case tok::kw___if_not_exists:
3192     ParseMicrosoftIfExistsClassDeclaration(TagType, AccessAttrs, AS);
3193     return nullptr;
3194 
3195   case tok::semi:
3196     // Check for extraneous top-level semicolon.
3197     ConsumeExtraSemi(InsideStruct, TagType);
3198     return nullptr;
3199 
3200     // Handle pragmas that can appear as member declarations.
3201   case tok::annot_pragma_vis:
3202     HandlePragmaVisibility();
3203     return nullptr;
3204   case tok::annot_pragma_pack:
3205     HandlePragmaPack();
3206     return nullptr;
3207   case tok::annot_pragma_align:
3208     HandlePragmaAlign();
3209     return nullptr;
3210   case tok::annot_pragma_ms_pointers_to_members:
3211     HandlePragmaMSPointersToMembers();
3212     return nullptr;
3213   case tok::annot_pragma_ms_pragma:
3214     HandlePragmaMSPragma();
3215     return nullptr;
3216   case tok::annot_pragma_ms_vtordisp:
3217     HandlePragmaMSVtorDisp();
3218     return nullptr;
3219   case tok::annot_pragma_dump:
3220     HandlePragmaDump();
3221     return nullptr;
3222 
3223   case tok::kw_namespace:
3224     // If we see a namespace here, a close brace was missing somewhere.
3225     DiagnoseUnexpectedNamespace(cast<NamedDecl>(TagDecl));
3226     return nullptr;
3227 
3228   case tok::kw_private:
3229     // FIXME: We don't accept GNU attributes on access specifiers in OpenCL mode
3230     // yet.
3231     if (getLangOpts().OpenCL && !NextToken().is(tok::colon))
3232       return ParseCXXClassMemberDeclaration(AS, AccessAttrs);
3233     LLVM_FALLTHROUGH;
3234   case tok::kw_public:
3235   case tok::kw_protected: {
3236     AccessSpecifier NewAS = getAccessSpecifierIfPresent();
3237     assert(NewAS != AS_none);
3238     // Current token is a C++ access specifier.
3239     AS = NewAS;
3240     SourceLocation ASLoc = Tok.getLocation();
3241     unsigned TokLength = Tok.getLength();
3242     ConsumeToken();
3243     AccessAttrs.clear();
3244     MaybeParseGNUAttributes(AccessAttrs);
3245 
3246     SourceLocation EndLoc;
3247     if (TryConsumeToken(tok::colon, EndLoc)) {
3248     } else if (TryConsumeToken(tok::semi, EndLoc)) {
3249       Diag(EndLoc, diag::err_expected)
3250           << tok::colon << FixItHint::CreateReplacement(EndLoc, ":");
3251     } else {
3252       EndLoc = ASLoc.getLocWithOffset(TokLength);
3253       Diag(EndLoc, diag::err_expected)
3254           << tok::colon << FixItHint::CreateInsertion(EndLoc, ":");
3255     }
3256 
3257     // The Microsoft extension __interface does not permit non-public
3258     // access specifiers.
3259     if (TagType == DeclSpec::TST_interface && AS != AS_public) {
3260       Diag(ASLoc, diag::err_access_specifier_interface) << (AS == AS_protected);
3261     }
3262 
3263     if (Actions.ActOnAccessSpecifier(NewAS, ASLoc, EndLoc, AccessAttrs)) {
3264       // found another attribute than only annotations
3265       AccessAttrs.clear();
3266     }
3267 
3268     return nullptr;
3269   }
3270 
3271   case tok::annot_attr_openmp:
3272   case tok::annot_pragma_openmp:
3273     return ParseOpenMPDeclarativeDirectiveWithExtDecl(
3274         AS, AccessAttrs, /*Delayed=*/true, TagType, TagDecl);
3275 
3276   default:
3277     if (tok::isPragmaAnnotation(Tok.getKind())) {
3278       Diag(Tok.getLocation(), diag::err_pragma_misplaced_in_decl)
3279           << DeclSpec::getSpecifierName(TagType,
3280                                    Actions.getASTContext().getPrintingPolicy());
3281       ConsumeAnnotationToken();
3282       return nullptr;
3283     }
3284     return ParseCXXClassMemberDeclaration(AS, AccessAttrs);
3285   }
3286 }
3287 
3288 /// ParseCXXMemberSpecification - Parse the class definition.
3289 ///
3290 ///       member-specification:
3291 ///         member-declaration member-specification[opt]
3292 ///         access-specifier ':' member-specification[opt]
3293 ///
3294 void Parser::ParseCXXMemberSpecification(SourceLocation RecordLoc,
3295                                          SourceLocation AttrFixitLoc,
3296                                          ParsedAttributesWithRange &Attrs,
3297                                          unsigned TagType, Decl *TagDecl) {
3298   assert((TagType == DeclSpec::TST_struct ||
3299          TagType == DeclSpec::TST_interface ||
3300          TagType == DeclSpec::TST_union  ||
3301          TagType == DeclSpec::TST_class) && "Invalid TagType!");
3302 
3303   llvm::TimeTraceScope TimeScope("ParseClass", [&]() {
3304     if (auto *TD = dyn_cast_or_null<NamedDecl>(TagDecl))
3305       return TD->getQualifiedNameAsString();
3306     return std::string("<anonymous>");
3307   });
3308 
3309   PrettyDeclStackTraceEntry CrashInfo(Actions.Context, TagDecl, RecordLoc,
3310                                       "parsing struct/union/class body");
3311 
3312   // Determine whether this is a non-nested class. Note that local
3313   // classes are *not* considered to be nested classes.
3314   bool NonNestedClass = true;
3315   if (!ClassStack.empty()) {
3316     for (const Scope *S = getCurScope(); S; S = S->getParent()) {
3317       if (S->isClassScope()) {
3318         // We're inside a class scope, so this is a nested class.
3319         NonNestedClass = false;
3320 
3321         // The Microsoft extension __interface does not permit nested classes.
3322         if (getCurrentClass().IsInterface) {
3323           Diag(RecordLoc, diag::err_invalid_member_in_interface)
3324             << /*ErrorType=*/6
3325             << (isa<NamedDecl>(TagDecl)
3326                   ? cast<NamedDecl>(TagDecl)->getQualifiedNameAsString()
3327                   : "(anonymous)");
3328         }
3329         break;
3330       }
3331 
3332       if ((S->getFlags() & Scope::FnScope))
3333         // If we're in a function or function template then this is a local
3334         // class rather than a nested class.
3335         break;
3336     }
3337   }
3338 
3339   // Enter a scope for the class.
3340   ParseScope ClassScope(this, Scope::ClassScope|Scope::DeclScope);
3341 
3342   // Note that we are parsing a new (potentially-nested) class definition.
3343   ParsingClassDefinition ParsingDef(*this, TagDecl, NonNestedClass,
3344                                     TagType == DeclSpec::TST_interface);
3345 
3346   if (TagDecl)
3347     Actions.ActOnTagStartDefinition(getCurScope(), TagDecl);
3348 
3349   SourceLocation FinalLoc;
3350   SourceLocation AbstractLoc;
3351   bool IsFinalSpelledSealed = false;
3352   bool IsAbstract = false;
3353 
3354   // Parse the optional 'final' keyword.
3355   if (getLangOpts().CPlusPlus && Tok.is(tok::identifier)) {
3356     while (true) {
3357       VirtSpecifiers::Specifier Specifier = isCXX11VirtSpecifier(Tok);
3358       if (Specifier == VirtSpecifiers::VS_None)
3359         break;
3360       if (isCXX11FinalKeyword()) {
3361         if (FinalLoc.isValid()) {
3362           auto Skipped = ConsumeToken();
3363           Diag(Skipped, diag::err_duplicate_class_virt_specifier)
3364               << VirtSpecifiers::getSpecifierName(Specifier);
3365         } else {
3366           FinalLoc = ConsumeToken();
3367           if (Specifier == VirtSpecifiers::VS_Sealed)
3368             IsFinalSpelledSealed = true;
3369         }
3370       } else {
3371         if (AbstractLoc.isValid()) {
3372           auto Skipped = ConsumeToken();
3373           Diag(Skipped, diag::err_duplicate_class_virt_specifier)
3374               << VirtSpecifiers::getSpecifierName(Specifier);
3375         } else {
3376           AbstractLoc = ConsumeToken();
3377           IsAbstract = true;
3378         }
3379       }
3380       if (TagType == DeclSpec::TST_interface)
3381         Diag(FinalLoc, diag::err_override_control_interface)
3382             << VirtSpecifiers::getSpecifierName(Specifier);
3383       else if (Specifier == VirtSpecifiers::VS_Final)
3384         Diag(FinalLoc, getLangOpts().CPlusPlus11
3385                            ? diag::warn_cxx98_compat_override_control_keyword
3386                            : diag::ext_override_control_keyword)
3387             << VirtSpecifiers::getSpecifierName(Specifier);
3388       else if (Specifier == VirtSpecifiers::VS_Sealed)
3389         Diag(FinalLoc, diag::ext_ms_sealed_keyword);
3390       else if (Specifier == VirtSpecifiers::VS_Abstract)
3391         Diag(AbstractLoc, diag::ext_ms_abstract_keyword);
3392       else if (Specifier == VirtSpecifiers::VS_GNU_Final)
3393         Diag(FinalLoc, diag::ext_warn_gnu_final);
3394     }
3395     assert((FinalLoc.isValid() || AbstractLoc.isValid()) &&
3396            "not a class definition");
3397 
3398     // Parse any C++11 attributes after 'final' keyword.
3399     // These attributes are not allowed to appear here,
3400     // and the only possible place for them to appertain
3401     // to the class would be between class-key and class-name.
3402     CheckMisplacedCXX11Attribute(Attrs, AttrFixitLoc);
3403 
3404     // ParseClassSpecifier() does only a superficial check for attributes before
3405     // deciding to call this method.  For example, for
3406     // `class C final alignas ([l) {` it will decide that this looks like a
3407     // misplaced attribute since it sees `alignas '(' ')'`.  But the actual
3408     // attribute parsing code will try to parse the '[' as a constexpr lambda
3409     // and consume enough tokens that the alignas parsing code will eat the
3410     // opening '{'.  So bail out if the next token isn't one we expect.
3411     if (!Tok.is(tok::colon) && !Tok.is(tok::l_brace)) {
3412       if (TagDecl)
3413         Actions.ActOnTagDefinitionError(getCurScope(), TagDecl);
3414       return;
3415     }
3416   }
3417 
3418   if (Tok.is(tok::colon)) {
3419     ParseScope InheritanceScope(this, getCurScope()->getFlags() |
3420                                           Scope::ClassInheritanceScope);
3421 
3422     ParseBaseClause(TagDecl);
3423     if (!Tok.is(tok::l_brace)) {
3424       bool SuggestFixIt = false;
3425       SourceLocation BraceLoc = PP.getLocForEndOfToken(PrevTokLocation);
3426       if (Tok.isAtStartOfLine()) {
3427         switch (Tok.getKind()) {
3428         case tok::kw_private:
3429         case tok::kw_protected:
3430         case tok::kw_public:
3431           SuggestFixIt = NextToken().getKind() == tok::colon;
3432           break;
3433         case tok::kw_static_assert:
3434         case tok::r_brace:
3435         case tok::kw_using:
3436         // base-clause can have simple-template-id; 'template' can't be there
3437         case tok::kw_template:
3438           SuggestFixIt = true;
3439           break;
3440         case tok::identifier:
3441           SuggestFixIt = isConstructorDeclarator(true);
3442           break;
3443         default:
3444           SuggestFixIt = isCXXSimpleDeclaration(/*AllowForRangeDecl=*/false);
3445           break;
3446         }
3447       }
3448       DiagnosticBuilder LBraceDiag =
3449           Diag(BraceLoc, diag::err_expected_lbrace_after_base_specifiers);
3450       if (SuggestFixIt) {
3451         LBraceDiag << FixItHint::CreateInsertion(BraceLoc, " {");
3452         // Try recovering from missing { after base-clause.
3453         PP.EnterToken(Tok, /*IsReinject*/true);
3454         Tok.setKind(tok::l_brace);
3455       } else {
3456         if (TagDecl)
3457           Actions.ActOnTagDefinitionError(getCurScope(), TagDecl);
3458         return;
3459       }
3460     }
3461   }
3462 
3463   assert(Tok.is(tok::l_brace));
3464   BalancedDelimiterTracker T(*this, tok::l_brace);
3465   T.consumeOpen();
3466 
3467   if (TagDecl)
3468     Actions.ActOnStartCXXMemberDeclarations(getCurScope(), TagDecl, FinalLoc,
3469                                             IsFinalSpelledSealed, IsAbstract,
3470                                             T.getOpenLocation());
3471 
3472   // C++ 11p3: Members of a class defined with the keyword class are private
3473   // by default. Members of a class defined with the keywords struct or union
3474   // are public by default.
3475   AccessSpecifier CurAS;
3476   if (TagType == DeclSpec::TST_class)
3477     CurAS = AS_private;
3478   else
3479     CurAS = AS_public;
3480   ParsedAttributesWithRange AccessAttrs(AttrFactory);
3481 
3482   if (TagDecl) {
3483     // While we still have something to read, read the member-declarations.
3484     while (!tryParseMisplacedModuleImport() && Tok.isNot(tok::r_brace) &&
3485            Tok.isNot(tok::eof)) {
3486       // Each iteration of this loop reads one member-declaration.
3487       ParseCXXClassMemberDeclarationWithPragmas(
3488           CurAS, AccessAttrs, static_cast<DeclSpec::TST>(TagType), TagDecl);
3489       MaybeDestroyTemplateIds();
3490     }
3491     T.consumeClose();
3492   } else {
3493     SkipUntil(tok::r_brace);
3494   }
3495 
3496   // If attributes exist after class contents, parse them.
3497   ParsedAttributes attrs(AttrFactory);
3498   MaybeParseGNUAttributes(attrs);
3499 
3500   if (TagDecl)
3501     Actions.ActOnFinishCXXMemberSpecification(getCurScope(), RecordLoc, TagDecl,
3502                                               T.getOpenLocation(),
3503                                               T.getCloseLocation(), attrs);
3504 
3505   // C++11 [class.mem]p2:
3506   //   Within the class member-specification, the class is regarded as complete
3507   //   within function bodies, default arguments, exception-specifications, and
3508   //   brace-or-equal-initializers for non-static data members (including such
3509   //   things in nested classes).
3510   if (TagDecl && NonNestedClass) {
3511     // We are not inside a nested class. This class and its nested classes
3512     // are complete and we can parse the delayed portions of method
3513     // declarations and the lexed inline method definitions, along with any
3514     // delayed attributes.
3515 
3516     SourceLocation SavedPrevTokLocation = PrevTokLocation;
3517     ParseLexedPragmas(getCurrentClass());
3518     ParseLexedAttributes(getCurrentClass());
3519     ParseLexedMethodDeclarations(getCurrentClass());
3520 
3521     // We've finished with all pending member declarations.
3522     Actions.ActOnFinishCXXMemberDecls();
3523 
3524     ParseLexedMemberInitializers(getCurrentClass());
3525     ParseLexedMethodDefs(getCurrentClass());
3526     PrevTokLocation = SavedPrevTokLocation;
3527 
3528     // We've finished parsing everything, including default argument
3529     // initializers.
3530     Actions.ActOnFinishCXXNonNestedClass();
3531   }
3532 
3533   if (TagDecl)
3534     Actions.ActOnTagFinishDefinition(getCurScope(), TagDecl, T.getRange());
3535 
3536   // Leave the class scope.
3537   ParsingDef.Pop();
3538   ClassScope.Exit();
3539 }
3540 
3541 void Parser::DiagnoseUnexpectedNamespace(NamedDecl *D) {
3542   assert(Tok.is(tok::kw_namespace));
3543 
3544   // FIXME: Suggest where the close brace should have gone by looking
3545   // at indentation changes within the definition body.
3546   Diag(D->getLocation(),
3547        diag::err_missing_end_of_definition) << D;
3548   Diag(Tok.getLocation(),
3549        diag::note_missing_end_of_definition_before) << D;
3550 
3551   // Push '};' onto the token stream to recover.
3552   PP.EnterToken(Tok, /*IsReinject*/ true);
3553 
3554   Tok.startToken();
3555   Tok.setLocation(PP.getLocForEndOfToken(PrevTokLocation));
3556   Tok.setKind(tok::semi);
3557   PP.EnterToken(Tok, /*IsReinject*/ true);
3558 
3559   Tok.setKind(tok::r_brace);
3560 }
3561 
3562 /// ParseConstructorInitializer - Parse a C++ constructor initializer,
3563 /// which explicitly initializes the members or base classes of a
3564 /// class (C++ [class.base.init]). For example, the three initializers
3565 /// after the ':' in the Derived constructor below:
3566 ///
3567 /// @code
3568 /// class Base { };
3569 /// class Derived : Base {
3570 ///   int x;
3571 ///   float f;
3572 /// public:
3573 ///   Derived(float f) : Base(), x(17), f(f) { }
3574 /// };
3575 /// @endcode
3576 ///
3577 /// [C++]  ctor-initializer:
3578 ///          ':' mem-initializer-list
3579 ///
3580 /// [C++]  mem-initializer-list:
3581 ///          mem-initializer ...[opt]
3582 ///          mem-initializer ...[opt] , mem-initializer-list
3583 void Parser::ParseConstructorInitializer(Decl *ConstructorDecl) {
3584   assert(Tok.is(tok::colon) &&
3585          "Constructor initializer always starts with ':'");
3586 
3587   // Poison the SEH identifiers so they are flagged as illegal in constructor
3588   // initializers.
3589   PoisonSEHIdentifiersRAIIObject PoisonSEHIdentifiers(*this, true);
3590   SourceLocation ColonLoc = ConsumeToken();
3591 
3592   SmallVector<CXXCtorInitializer*, 4> MemInitializers;
3593   bool AnyErrors = false;
3594 
3595   do {
3596     if (Tok.is(tok::code_completion)) {
3597       cutOffParsing();
3598       Actions.CodeCompleteConstructorInitializer(ConstructorDecl,
3599                                                  MemInitializers);
3600       return;
3601     }
3602 
3603     MemInitResult MemInit = ParseMemInitializer(ConstructorDecl);
3604     if (!MemInit.isInvalid())
3605       MemInitializers.push_back(MemInit.get());
3606     else
3607       AnyErrors = true;
3608 
3609     if (Tok.is(tok::comma))
3610       ConsumeToken();
3611     else if (Tok.is(tok::l_brace))
3612       break;
3613     // If the previous initializer was valid and the next token looks like a
3614     // base or member initializer, assume that we're just missing a comma.
3615     else if (!MemInit.isInvalid() &&
3616              Tok.isOneOf(tok::identifier, tok::coloncolon)) {
3617       SourceLocation Loc = PP.getLocForEndOfToken(PrevTokLocation);
3618       Diag(Loc, diag::err_ctor_init_missing_comma)
3619         << FixItHint::CreateInsertion(Loc, ", ");
3620     } else {
3621       // Skip over garbage, until we get to '{'.  Don't eat the '{'.
3622       if (!MemInit.isInvalid())
3623         Diag(Tok.getLocation(), diag::err_expected_either) << tok::l_brace
3624                                                            << tok::comma;
3625       SkipUntil(tok::l_brace, StopAtSemi | StopBeforeMatch);
3626       break;
3627     }
3628   } while (true);
3629 
3630   Actions.ActOnMemInitializers(ConstructorDecl, ColonLoc, MemInitializers,
3631                                AnyErrors);
3632 }
3633 
3634 /// ParseMemInitializer - Parse a C++ member initializer, which is
3635 /// part of a constructor initializer that explicitly initializes one
3636 /// member or base class (C++ [class.base.init]). See
3637 /// ParseConstructorInitializer for an example.
3638 ///
3639 /// [C++] mem-initializer:
3640 ///         mem-initializer-id '(' expression-list[opt] ')'
3641 /// [C++0x] mem-initializer-id braced-init-list
3642 ///
3643 /// [C++] mem-initializer-id:
3644 ///         '::'[opt] nested-name-specifier[opt] class-name
3645 ///         identifier
3646 MemInitResult Parser::ParseMemInitializer(Decl *ConstructorDecl) {
3647   // parse '::'[opt] nested-name-specifier[opt]
3648   CXXScopeSpec SS;
3649   if (ParseOptionalCXXScopeSpecifier(SS, /*ObjectType=*/nullptr,
3650                                      /*ObjectHadErrors=*/false,
3651                                      /*EnteringContext=*/false))
3652     return true;
3653 
3654   // : identifier
3655   IdentifierInfo *II = nullptr;
3656   SourceLocation IdLoc = Tok.getLocation();
3657   // : declype(...)
3658   DeclSpec DS(AttrFactory);
3659   // : template_name<...>
3660   TypeResult TemplateTypeTy;
3661 
3662   if (Tok.is(tok::identifier)) {
3663     // Get the identifier. This may be a member name or a class name,
3664     // but we'll let the semantic analysis determine which it is.
3665     II = Tok.getIdentifierInfo();
3666     ConsumeToken();
3667   } else if (Tok.is(tok::annot_decltype)) {
3668     // Get the decltype expression, if there is one.
3669     // Uses of decltype will already have been converted to annot_decltype by
3670     // ParseOptionalCXXScopeSpecifier at this point.
3671     // FIXME: Can we get here with a scope specifier?
3672     ParseDecltypeSpecifier(DS);
3673   } else {
3674     TemplateIdAnnotation *TemplateId = Tok.is(tok::annot_template_id)
3675                                            ? takeTemplateIdAnnotation(Tok)
3676                                            : nullptr;
3677     if (TemplateId && TemplateId->mightBeType()) {
3678       AnnotateTemplateIdTokenAsType(SS, /*IsClassName*/true);
3679       assert(Tok.is(tok::annot_typename) && "template-id -> type failed");
3680       TemplateTypeTy = getTypeAnnotation(Tok);
3681       ConsumeAnnotationToken();
3682     } else {
3683       Diag(Tok, diag::err_expected_member_or_base_name);
3684       return true;
3685     }
3686   }
3687 
3688   // Parse the '('.
3689   if (getLangOpts().CPlusPlus11 && Tok.is(tok::l_brace)) {
3690     Diag(Tok, diag::warn_cxx98_compat_generalized_initializer_lists);
3691 
3692     // FIXME: Add support for signature help inside initializer lists.
3693     ExprResult InitList = ParseBraceInitializer();
3694     if (InitList.isInvalid())
3695       return true;
3696 
3697     SourceLocation EllipsisLoc;
3698     TryConsumeToken(tok::ellipsis, EllipsisLoc);
3699 
3700     if (TemplateTypeTy.isInvalid())
3701       return true;
3702     return Actions.ActOnMemInitializer(ConstructorDecl, getCurScope(), SS, II,
3703                                        TemplateTypeTy.get(), DS, IdLoc,
3704                                        InitList.get(), EllipsisLoc);
3705   } else if(Tok.is(tok::l_paren)) {
3706     BalancedDelimiterTracker T(*this, tok::l_paren);
3707     T.consumeOpen();
3708 
3709     // Parse the optional expression-list.
3710     ExprVector ArgExprs;
3711     CommaLocsTy CommaLocs;
3712     auto RunSignatureHelp = [&] {
3713       if (TemplateTypeTy.isInvalid())
3714         return QualType();
3715       QualType PreferredType = Actions.ProduceCtorInitMemberSignatureHelp(
3716           getCurScope(), ConstructorDecl, SS, TemplateTypeTy.get(), ArgExprs, II,
3717           T.getOpenLocation());
3718       CalledSignatureHelp = true;
3719       return PreferredType;
3720     };
3721     if (Tok.isNot(tok::r_paren) &&
3722         ParseExpressionList(ArgExprs, CommaLocs, [&] {
3723           PreferredType.enterFunctionArgument(Tok.getLocation(),
3724                                               RunSignatureHelp);
3725         })) {
3726       if (PP.isCodeCompletionReached() && !CalledSignatureHelp)
3727         RunSignatureHelp();
3728       SkipUntil(tok::r_paren, StopAtSemi);
3729       return true;
3730     }
3731 
3732     T.consumeClose();
3733 
3734     SourceLocation EllipsisLoc;
3735     TryConsumeToken(tok::ellipsis, EllipsisLoc);
3736 
3737     if (TemplateTypeTy.isInvalid())
3738       return true;
3739     return Actions.ActOnMemInitializer(ConstructorDecl, getCurScope(), SS, II,
3740                                        TemplateTypeTy.get(), DS, IdLoc,
3741                                        T.getOpenLocation(), ArgExprs,
3742                                        T.getCloseLocation(), EllipsisLoc);
3743   }
3744 
3745   if (TemplateTypeTy.isInvalid())
3746     return true;
3747 
3748   if (getLangOpts().CPlusPlus11)
3749     return Diag(Tok, diag::err_expected_either) << tok::l_paren << tok::l_brace;
3750   else
3751     return Diag(Tok, diag::err_expected) << tok::l_paren;
3752 }
3753 
3754 /// Parse a C++ exception-specification if present (C++0x [except.spec]).
3755 ///
3756 ///       exception-specification:
3757 ///         dynamic-exception-specification
3758 ///         noexcept-specification
3759 ///
3760 ///       noexcept-specification:
3761 ///         'noexcept'
3762 ///         'noexcept' '(' constant-expression ')'
3763 ExceptionSpecificationType
3764 Parser::tryParseExceptionSpecification(bool Delayed,
3765                     SourceRange &SpecificationRange,
3766                     SmallVectorImpl<ParsedType> &DynamicExceptions,
3767                     SmallVectorImpl<SourceRange> &DynamicExceptionRanges,
3768                     ExprResult &NoexceptExpr,
3769                     CachedTokens *&ExceptionSpecTokens) {
3770   ExceptionSpecificationType Result = EST_None;
3771   ExceptionSpecTokens = nullptr;
3772 
3773   // Handle delayed parsing of exception-specifications.
3774   if (Delayed) {
3775     if (Tok.isNot(tok::kw_throw) && Tok.isNot(tok::kw_noexcept))
3776       return EST_None;
3777 
3778     // Consume and cache the starting token.
3779     bool IsNoexcept = Tok.is(tok::kw_noexcept);
3780     Token StartTok = Tok;
3781     SpecificationRange = SourceRange(ConsumeToken());
3782 
3783     // Check for a '('.
3784     if (!Tok.is(tok::l_paren)) {
3785       // If this is a bare 'noexcept', we're done.
3786       if (IsNoexcept) {
3787         Diag(Tok, diag::warn_cxx98_compat_noexcept_decl);
3788         NoexceptExpr = nullptr;
3789         return EST_BasicNoexcept;
3790       }
3791 
3792       Diag(Tok, diag::err_expected_lparen_after) << "throw";
3793       return EST_DynamicNone;
3794     }
3795 
3796     // Cache the tokens for the exception-specification.
3797     ExceptionSpecTokens = new CachedTokens;
3798     ExceptionSpecTokens->push_back(StartTok); // 'throw' or 'noexcept'
3799     ExceptionSpecTokens->push_back(Tok); // '('
3800     SpecificationRange.setEnd(ConsumeParen()); // '('
3801 
3802     ConsumeAndStoreUntil(tok::r_paren, *ExceptionSpecTokens,
3803                          /*StopAtSemi=*/true,
3804                          /*ConsumeFinalToken=*/true);
3805     SpecificationRange.setEnd(ExceptionSpecTokens->back().getLocation());
3806 
3807     return EST_Unparsed;
3808   }
3809 
3810   // See if there's a dynamic specification.
3811   if (Tok.is(tok::kw_throw)) {
3812     Result = ParseDynamicExceptionSpecification(SpecificationRange,
3813                                                 DynamicExceptions,
3814                                                 DynamicExceptionRanges);
3815     assert(DynamicExceptions.size() == DynamicExceptionRanges.size() &&
3816            "Produced different number of exception types and ranges.");
3817   }
3818 
3819   // If there's no noexcept specification, we're done.
3820   if (Tok.isNot(tok::kw_noexcept))
3821     return Result;
3822 
3823   Diag(Tok, diag::warn_cxx98_compat_noexcept_decl);
3824 
3825   // If we already had a dynamic specification, parse the noexcept for,
3826   // recovery, but emit a diagnostic and don't store the results.
3827   SourceRange NoexceptRange;
3828   ExceptionSpecificationType NoexceptType = EST_None;
3829 
3830   SourceLocation KeywordLoc = ConsumeToken();
3831   if (Tok.is(tok::l_paren)) {
3832     // There is an argument.
3833     BalancedDelimiterTracker T(*this, tok::l_paren);
3834     T.consumeOpen();
3835     NoexceptExpr = ParseConstantExpression();
3836     T.consumeClose();
3837     if (!NoexceptExpr.isInvalid()) {
3838       NoexceptExpr = Actions.ActOnNoexceptSpec(KeywordLoc, NoexceptExpr.get(),
3839                                                NoexceptType);
3840       NoexceptRange = SourceRange(KeywordLoc, T.getCloseLocation());
3841     } else {
3842       NoexceptType = EST_BasicNoexcept;
3843     }
3844   } else {
3845     // There is no argument.
3846     NoexceptType = EST_BasicNoexcept;
3847     NoexceptRange = SourceRange(KeywordLoc, KeywordLoc);
3848   }
3849 
3850   if (Result == EST_None) {
3851     SpecificationRange = NoexceptRange;
3852     Result = NoexceptType;
3853 
3854     // If there's a dynamic specification after a noexcept specification,
3855     // parse that and ignore the results.
3856     if (Tok.is(tok::kw_throw)) {
3857       Diag(Tok.getLocation(), diag::err_dynamic_and_noexcept_specification);
3858       ParseDynamicExceptionSpecification(NoexceptRange, DynamicExceptions,
3859                                          DynamicExceptionRanges);
3860     }
3861   } else {
3862     Diag(Tok.getLocation(), diag::err_dynamic_and_noexcept_specification);
3863   }
3864 
3865   return Result;
3866 }
3867 
3868 static void diagnoseDynamicExceptionSpecification(
3869     Parser &P, SourceRange Range, bool IsNoexcept) {
3870   if (P.getLangOpts().CPlusPlus11) {
3871     const char *Replacement = IsNoexcept ? "noexcept" : "noexcept(false)";
3872     P.Diag(Range.getBegin(),
3873            P.getLangOpts().CPlusPlus17 && !IsNoexcept
3874                ? diag::ext_dynamic_exception_spec
3875                : diag::warn_exception_spec_deprecated)
3876         << Range;
3877     P.Diag(Range.getBegin(), diag::note_exception_spec_deprecated)
3878       << Replacement << FixItHint::CreateReplacement(Range, Replacement);
3879   }
3880 }
3881 
3882 /// ParseDynamicExceptionSpecification - Parse a C++
3883 /// dynamic-exception-specification (C++ [except.spec]).
3884 ///
3885 ///       dynamic-exception-specification:
3886 ///         'throw' '(' type-id-list [opt] ')'
3887 /// [MS]    'throw' '(' '...' ')'
3888 ///
3889 ///       type-id-list:
3890 ///         type-id ... [opt]
3891 ///         type-id-list ',' type-id ... [opt]
3892 ///
3893 ExceptionSpecificationType Parser::ParseDynamicExceptionSpecification(
3894                                   SourceRange &SpecificationRange,
3895                                   SmallVectorImpl<ParsedType> &Exceptions,
3896                                   SmallVectorImpl<SourceRange> &Ranges) {
3897   assert(Tok.is(tok::kw_throw) && "expected throw");
3898 
3899   SpecificationRange.setBegin(ConsumeToken());
3900   BalancedDelimiterTracker T(*this, tok::l_paren);
3901   if (T.consumeOpen()) {
3902     Diag(Tok, diag::err_expected_lparen_after) << "throw";
3903     SpecificationRange.setEnd(SpecificationRange.getBegin());
3904     return EST_DynamicNone;
3905   }
3906 
3907   // Parse throw(...), a Microsoft extension that means "this function
3908   // can throw anything".
3909   if (Tok.is(tok::ellipsis)) {
3910     SourceLocation EllipsisLoc = ConsumeToken();
3911     if (!getLangOpts().MicrosoftExt)
3912       Diag(EllipsisLoc, diag::ext_ellipsis_exception_spec);
3913     T.consumeClose();
3914     SpecificationRange.setEnd(T.getCloseLocation());
3915     diagnoseDynamicExceptionSpecification(*this, SpecificationRange, false);
3916     return EST_MSAny;
3917   }
3918 
3919   // Parse the sequence of type-ids.
3920   SourceRange Range;
3921   while (Tok.isNot(tok::r_paren)) {
3922     TypeResult Res(ParseTypeName(&Range));
3923 
3924     if (Tok.is(tok::ellipsis)) {
3925       // C++0x [temp.variadic]p5:
3926       //   - In a dynamic-exception-specification (15.4); the pattern is a
3927       //     type-id.
3928       SourceLocation Ellipsis = ConsumeToken();
3929       Range.setEnd(Ellipsis);
3930       if (!Res.isInvalid())
3931         Res = Actions.ActOnPackExpansion(Res.get(), Ellipsis);
3932     }
3933 
3934     if (!Res.isInvalid()) {
3935       Exceptions.push_back(Res.get());
3936       Ranges.push_back(Range);
3937     }
3938 
3939     if (!TryConsumeToken(tok::comma))
3940       break;
3941   }
3942 
3943   T.consumeClose();
3944   SpecificationRange.setEnd(T.getCloseLocation());
3945   diagnoseDynamicExceptionSpecification(*this, SpecificationRange,
3946                                         Exceptions.empty());
3947   return Exceptions.empty() ? EST_DynamicNone : EST_Dynamic;
3948 }
3949 
3950 /// ParseTrailingReturnType - Parse a trailing return type on a new-style
3951 /// function declaration.
3952 TypeResult Parser::ParseTrailingReturnType(SourceRange &Range,
3953                                            bool MayBeFollowedByDirectInit) {
3954   assert(Tok.is(tok::arrow) && "expected arrow");
3955 
3956   ConsumeToken();
3957 
3958   return ParseTypeName(&Range, MayBeFollowedByDirectInit
3959                                    ? DeclaratorContext::TrailingReturnVar
3960                                    : DeclaratorContext::TrailingReturn);
3961 }
3962 
3963 /// Parse a requires-clause as part of a function declaration.
3964 void Parser::ParseTrailingRequiresClause(Declarator &D) {
3965   assert(Tok.is(tok::kw_requires) && "expected requires");
3966 
3967   SourceLocation RequiresKWLoc = ConsumeToken();
3968 
3969   ExprResult TrailingRequiresClause;
3970   ParseScope ParamScope(this,
3971                         Scope::DeclScope |
3972                         Scope::FunctionDeclarationScope |
3973                         Scope::FunctionPrototypeScope);
3974 
3975   Actions.ActOnStartTrailingRequiresClause(getCurScope(), D);
3976 
3977   llvm::Optional<Sema::CXXThisScopeRAII> ThisScope;
3978   InitCXXThisScopeForDeclaratorIfRelevant(D, D.getDeclSpec(), ThisScope);
3979 
3980   TrailingRequiresClause =
3981       ParseConstraintLogicalOrExpression(/*IsTrailingRequiresClause=*/true);
3982 
3983   TrailingRequiresClause =
3984       Actions.ActOnFinishTrailingRequiresClause(TrailingRequiresClause);
3985 
3986   if (!D.isDeclarationOfFunction()) {
3987     Diag(RequiresKWLoc,
3988          diag::err_requires_clause_on_declarator_not_declaring_a_function);
3989     return;
3990   }
3991 
3992   if (TrailingRequiresClause.isInvalid())
3993     SkipUntil({tok::l_brace, tok::arrow, tok::kw_try, tok::comma, tok::colon},
3994               StopAtSemi | StopBeforeMatch);
3995   else
3996     D.setTrailingRequiresClause(TrailingRequiresClause.get());
3997 
3998   // Did the user swap the trailing return type and requires clause?
3999   if (D.isFunctionDeclarator() && Tok.is(tok::arrow) &&
4000       D.getDeclSpec().getTypeSpecType() == TST_auto) {
4001     SourceLocation ArrowLoc = Tok.getLocation();
4002     SourceRange Range;
4003     TypeResult TrailingReturnType =
4004         ParseTrailingReturnType(Range, /*MayBeFollowedByDirectInit=*/false);
4005 
4006     if (!TrailingReturnType.isInvalid()) {
4007       Diag(ArrowLoc,
4008            diag::err_requires_clause_must_appear_after_trailing_return)
4009           << Range;
4010       auto &FunctionChunk = D.getFunctionTypeInfo();
4011       FunctionChunk.HasTrailingReturnType = TrailingReturnType.isUsable();
4012       FunctionChunk.TrailingReturnType = TrailingReturnType.get();
4013       FunctionChunk.TrailingReturnTypeLoc = Range.getBegin();
4014     } else
4015       SkipUntil({tok::equal, tok::l_brace, tok::arrow, tok::kw_try, tok::comma},
4016                 StopAtSemi | StopBeforeMatch);
4017   }
4018 }
4019 
4020 /// We have just started parsing the definition of a new class,
4021 /// so push that class onto our stack of classes that is currently
4022 /// being parsed.
4023 Sema::ParsingClassState
4024 Parser::PushParsingClass(Decl *ClassDecl, bool NonNestedClass,
4025                          bool IsInterface) {
4026   assert((NonNestedClass || !ClassStack.empty()) &&
4027          "Nested class without outer class");
4028   ClassStack.push(new ParsingClass(ClassDecl, NonNestedClass, IsInterface));
4029   return Actions.PushParsingClass();
4030 }
4031 
4032 /// Deallocate the given parsed class and all of its nested
4033 /// classes.
4034 void Parser::DeallocateParsedClasses(Parser::ParsingClass *Class) {
4035   for (unsigned I = 0, N = Class->LateParsedDeclarations.size(); I != N; ++I)
4036     delete Class->LateParsedDeclarations[I];
4037   delete Class;
4038 }
4039 
4040 /// Pop the top class of the stack of classes that are
4041 /// currently being parsed.
4042 ///
4043 /// This routine should be called when we have finished parsing the
4044 /// definition of a class, but have not yet popped the Scope
4045 /// associated with the class's definition.
4046 void Parser::PopParsingClass(Sema::ParsingClassState state) {
4047   assert(!ClassStack.empty() && "Mismatched push/pop for class parsing");
4048 
4049   Actions.PopParsingClass(state);
4050 
4051   ParsingClass *Victim = ClassStack.top();
4052   ClassStack.pop();
4053   if (Victim->TopLevelClass) {
4054     // Deallocate all of the nested classes of this class,
4055     // recursively: we don't need to keep any of this information.
4056     DeallocateParsedClasses(Victim);
4057     return;
4058   }
4059   assert(!ClassStack.empty() && "Missing top-level class?");
4060 
4061   if (Victim->LateParsedDeclarations.empty()) {
4062     // The victim is a nested class, but we will not need to perform
4063     // any processing after the definition of this class since it has
4064     // no members whose handling was delayed. Therefore, we can just
4065     // remove this nested class.
4066     DeallocateParsedClasses(Victim);
4067     return;
4068   }
4069 
4070   // This nested class has some members that will need to be processed
4071   // after the top-level class is completely defined. Therefore, add
4072   // it to the list of nested classes within its parent.
4073   assert(getCurScope()->isClassScope() && "Nested class outside of class scope?");
4074   ClassStack.top()->LateParsedDeclarations.push_back(
4075       new LateParsedClass(this, Victim));
4076 }
4077 
4078 /// Try to parse an 'identifier' which appears within an attribute-token.
4079 ///
4080 /// \return the parsed identifier on success, and 0 if the next token is not an
4081 /// attribute-token.
4082 ///
4083 /// C++11 [dcl.attr.grammar]p3:
4084 ///   If a keyword or an alternative token that satisfies the syntactic
4085 ///   requirements of an identifier is contained in an attribute-token,
4086 ///   it is considered an identifier.
4087 IdentifierInfo *Parser::TryParseCXX11AttributeIdentifier(SourceLocation &Loc) {
4088   switch (Tok.getKind()) {
4089   default:
4090     // Identifiers and keywords have identifier info attached.
4091     if (!Tok.isAnnotation()) {
4092       if (IdentifierInfo *II = Tok.getIdentifierInfo()) {
4093         Loc = ConsumeToken();
4094         return II;
4095       }
4096     }
4097     return nullptr;
4098 
4099   case tok::numeric_constant: {
4100     // If we got a numeric constant, check to see if it comes from a macro that
4101     // corresponds to the predefined __clang__ macro. If it does, warn the user
4102     // and recover by pretending they said _Clang instead.
4103     if (Tok.getLocation().isMacroID()) {
4104       SmallString<8> ExpansionBuf;
4105       SourceLocation ExpansionLoc =
4106           PP.getSourceManager().getExpansionLoc(Tok.getLocation());
4107       StringRef Spelling = PP.getSpelling(ExpansionLoc, ExpansionBuf);
4108       if (Spelling == "__clang__") {
4109         SourceRange TokRange(
4110             ExpansionLoc,
4111             PP.getSourceManager().getExpansionLoc(Tok.getEndLoc()));
4112         Diag(Tok, diag::warn_wrong_clang_attr_namespace)
4113             << FixItHint::CreateReplacement(TokRange, "_Clang");
4114         Loc = ConsumeToken();
4115         return &PP.getIdentifierTable().get("_Clang");
4116       }
4117     }
4118     return nullptr;
4119   }
4120 
4121   case tok::ampamp:       // 'and'
4122   case tok::pipe:         // 'bitor'
4123   case tok::pipepipe:     // 'or'
4124   case tok::caret:        // 'xor'
4125   case tok::tilde:        // 'compl'
4126   case tok::amp:          // 'bitand'
4127   case tok::ampequal:     // 'and_eq'
4128   case tok::pipeequal:    // 'or_eq'
4129   case tok::caretequal:   // 'xor_eq'
4130   case tok::exclaim:      // 'not'
4131   case tok::exclaimequal: // 'not_eq'
4132     // Alternative tokens do not have identifier info, but their spelling
4133     // starts with an alphabetical character.
4134     SmallString<8> SpellingBuf;
4135     SourceLocation SpellingLoc =
4136         PP.getSourceManager().getSpellingLoc(Tok.getLocation());
4137     StringRef Spelling = PP.getSpelling(SpellingLoc, SpellingBuf);
4138     if (isLetter(Spelling[0])) {
4139       Loc = ConsumeToken();
4140       return &PP.getIdentifierTable().get(Spelling);
4141     }
4142     return nullptr;
4143   }
4144 }
4145 
4146 void Parser::ParseOpenMPAttributeArgs(IdentifierInfo *AttrName,
4147                                       CachedTokens &OpenMPTokens) {
4148   // Both 'sequence' and 'directive' attributes require arguments, so parse the
4149   // open paren for the argument list.
4150   BalancedDelimiterTracker T(*this, tok::l_paren);
4151   if (T.consumeOpen()) {
4152     Diag(Tok, diag::err_expected) << tok::l_paren;
4153     return;
4154   }
4155 
4156   if (AttrName->isStr("directive")) {
4157     // If the attribute is named `directive`, we can consume its argument list
4158     // and push the tokens from it into the cached token stream for a new OpenMP
4159     // pragma directive.
4160     Token OMPBeginTok;
4161     OMPBeginTok.startToken();
4162     OMPBeginTok.setKind(tok::annot_attr_openmp);
4163     OMPBeginTok.setLocation(Tok.getLocation());
4164     OpenMPTokens.push_back(OMPBeginTok);
4165 
4166     ConsumeAndStoreUntil(tok::r_paren, OpenMPTokens, /*StopAtSemi=*/false,
4167                          /*ConsumeFinalToken*/ false);
4168     Token OMPEndTok;
4169     OMPEndTok.startToken();
4170     OMPEndTok.setKind(tok::annot_pragma_openmp_end);
4171     OMPEndTok.setLocation(Tok.getLocation());
4172     OpenMPTokens.push_back(OMPEndTok);
4173   } else {
4174     assert(AttrName->isStr("sequence") &&
4175            "Expected either 'directive' or 'sequence'");
4176     // If the attribute is named 'sequence', its argument is a list of one or
4177     // more OpenMP attributes (either 'omp::directive' or 'omp::sequence',
4178     // where the 'omp::' is optional).
4179     do {
4180       // We expect to see one of the following:
4181       //  * An identifier (omp) for the attribute namespace followed by ::
4182       //  * An identifier (directive) or an identifier (sequence).
4183       SourceLocation IdentLoc;
4184       IdentifierInfo *Ident = TryParseCXX11AttributeIdentifier(IdentLoc);
4185 
4186       // If there is an identifier and it is 'omp', a double colon is required
4187       // followed by the actual identifier we're after.
4188       if (Ident && Ident->isStr("omp") && !ExpectAndConsume(tok::coloncolon))
4189         Ident = TryParseCXX11AttributeIdentifier(IdentLoc);
4190 
4191       // If we failed to find an identifier (scoped or otherwise), or we found
4192       // an unexpected identifier, diagnose.
4193       if (!Ident || (!Ident->isStr("directive") && !Ident->isStr("sequence"))) {
4194         Diag(Tok.getLocation(), diag::err_expected_sequence_or_directive);
4195         SkipUntil(tok::r_paren, StopBeforeMatch);
4196         continue;
4197       }
4198       // We read an identifier. If the identifier is one of the ones we
4199       // expected, we can recurse to parse the args.
4200       ParseOpenMPAttributeArgs(Ident, OpenMPTokens);
4201 
4202       // There may be a comma to signal that we expect another directive in the
4203       // sequence.
4204     } while (TryConsumeToken(tok::comma));
4205   }
4206   // Parse the closing paren for the argument list.
4207   T.consumeClose();
4208 }
4209 
4210 static bool IsBuiltInOrStandardCXX11Attribute(IdentifierInfo *AttrName,
4211                                               IdentifierInfo *ScopeName) {
4212   switch (
4213       ParsedAttr::getParsedKind(AttrName, ScopeName, ParsedAttr::AS_CXX11)) {
4214   case ParsedAttr::AT_CarriesDependency:
4215   case ParsedAttr::AT_Deprecated:
4216   case ParsedAttr::AT_FallThrough:
4217   case ParsedAttr::AT_CXX11NoReturn:
4218   case ParsedAttr::AT_NoUniqueAddress:
4219   case ParsedAttr::AT_Likely:
4220   case ParsedAttr::AT_Unlikely:
4221     return true;
4222   case ParsedAttr::AT_WarnUnusedResult:
4223     return !ScopeName && AttrName->getName().equals("nodiscard");
4224   case ParsedAttr::AT_Unused:
4225     return !ScopeName && AttrName->getName().equals("maybe_unused");
4226   default:
4227     return false;
4228   }
4229 }
4230 
4231 /// ParseCXX11AttributeArgs -- Parse a C++11 attribute-argument-clause.
4232 ///
4233 /// [C++11] attribute-argument-clause:
4234 ///         '(' balanced-token-seq ')'
4235 ///
4236 /// [C++11] balanced-token-seq:
4237 ///         balanced-token
4238 ///         balanced-token-seq balanced-token
4239 ///
4240 /// [C++11] balanced-token:
4241 ///         '(' balanced-token-seq ')'
4242 ///         '[' balanced-token-seq ']'
4243 ///         '{' balanced-token-seq '}'
4244 ///         any token but '(', ')', '[', ']', '{', or '}'
4245 bool Parser::ParseCXX11AttributeArgs(IdentifierInfo *AttrName,
4246                                      SourceLocation AttrNameLoc,
4247                                      ParsedAttributes &Attrs,
4248                                      SourceLocation *EndLoc,
4249                                      IdentifierInfo *ScopeName,
4250                                      SourceLocation ScopeLoc,
4251                                      CachedTokens &OpenMPTokens) {
4252   assert(Tok.is(tok::l_paren) && "Not a C++11 attribute argument list");
4253   SourceLocation LParenLoc = Tok.getLocation();
4254   const LangOptions &LO = getLangOpts();
4255   ParsedAttr::Syntax Syntax =
4256       LO.CPlusPlus ? ParsedAttr::AS_CXX11 : ParsedAttr::AS_C2x;
4257 
4258   // If the attribute isn't known, we will not attempt to parse any
4259   // arguments.
4260   if (!hasAttribute(LO.CPlusPlus ? AttrSyntax::CXX : AttrSyntax::C, ScopeName,
4261                     AttrName, getTargetInfo(), getLangOpts())) {
4262     // Eat the left paren, then skip to the ending right paren.
4263     ConsumeParen();
4264     SkipUntil(tok::r_paren);
4265     return false;
4266   }
4267 
4268   if (ScopeName && (ScopeName->isStr("gnu") || ScopeName->isStr("__gnu__"))) {
4269     // GNU-scoped attributes have some special cases to handle GNU-specific
4270     // behaviors.
4271     ParseGNUAttributeArgs(AttrName, AttrNameLoc, Attrs, EndLoc, ScopeName,
4272                           ScopeLoc, Syntax, nullptr);
4273     return true;
4274   }
4275 
4276   if (ScopeName && ScopeName->isStr("omp")) {
4277     Diag(AttrNameLoc, getLangOpts().OpenMP >= 51
4278                           ? diag::warn_omp51_compat_attributes
4279                                     : diag::ext_omp_attributes);
4280 
4281     ParseOpenMPAttributeArgs(AttrName, OpenMPTokens);
4282 
4283     // We claim that an attribute was parsed and added so that one is not
4284     // created for us by the caller.
4285     return true;
4286   }
4287 
4288   unsigned NumArgs;
4289   // Some Clang-scoped attributes have some special parsing behavior.
4290   if (ScopeName && (ScopeName->isStr("clang") || ScopeName->isStr("_Clang")))
4291     NumArgs = ParseClangAttributeArgs(AttrName, AttrNameLoc, Attrs, EndLoc,
4292                                       ScopeName, ScopeLoc, Syntax);
4293   else
4294     NumArgs =
4295         ParseAttributeArgsCommon(AttrName, AttrNameLoc, Attrs, EndLoc,
4296                                  ScopeName, ScopeLoc, Syntax);
4297 
4298   if (!Attrs.empty() &&
4299       IsBuiltInOrStandardCXX11Attribute(AttrName, ScopeName)) {
4300     ParsedAttr &Attr = Attrs.back();
4301     // If the attribute is a standard or built-in attribute and we are
4302     // parsing an argument list, we need to determine whether this attribute
4303     // was allowed to have an argument list (such as [[deprecated]]), and how
4304     // many arguments were parsed (so we can diagnose on [[deprecated()]]).
4305     if (Attr.getMaxArgs() && !NumArgs) {
4306       // The attribute was allowed to have arguments, but none were provided
4307       // even though the attribute parsed successfully. This is an error.
4308       Diag(LParenLoc, diag::err_attribute_requires_arguments) << AttrName;
4309       Attr.setInvalid(true);
4310     } else if (!Attr.getMaxArgs()) {
4311       // The attribute parsed successfully, but was not allowed to have any
4312       // arguments. It doesn't matter whether any were provided -- the
4313       // presence of the argument list (even if empty) is diagnosed.
4314       Diag(LParenLoc, diag::err_cxx11_attribute_forbids_arguments)
4315           << AttrName
4316           << FixItHint::CreateRemoval(SourceRange(LParenLoc, *EndLoc));
4317       Attr.setInvalid(true);
4318     }
4319   }
4320   return true;
4321 }
4322 
4323 /// ParseCXX11AttributeSpecifier - Parse a C++11 or C2x attribute-specifier.
4324 ///
4325 /// [C++11] attribute-specifier:
4326 ///         '[' '[' attribute-list ']' ']'
4327 ///         alignment-specifier
4328 ///
4329 /// [C++11] attribute-list:
4330 ///         attribute[opt]
4331 ///         attribute-list ',' attribute[opt]
4332 ///         attribute '...'
4333 ///         attribute-list ',' attribute '...'
4334 ///
4335 /// [C++11] attribute:
4336 ///         attribute-token attribute-argument-clause[opt]
4337 ///
4338 /// [C++11] attribute-token:
4339 ///         identifier
4340 ///         attribute-scoped-token
4341 ///
4342 /// [C++11] attribute-scoped-token:
4343 ///         attribute-namespace '::' identifier
4344 ///
4345 /// [C++11] attribute-namespace:
4346 ///         identifier
4347 void Parser::ParseCXX11AttributeSpecifierInternal(ParsedAttributes &Attrs,
4348                                                   CachedTokens &OpenMPTokens,
4349                                                   SourceLocation *EndLoc) {
4350   if (Tok.is(tok::kw_alignas)) {
4351     Diag(Tok.getLocation(), diag::warn_cxx98_compat_alignas);
4352     ParseAlignmentSpecifier(Attrs, EndLoc);
4353     return;
4354   }
4355 
4356   assert(Tok.is(tok::l_square) && NextToken().is(tok::l_square) &&
4357          "Not a double square bracket attribute list");
4358 
4359   SourceLocation OpenLoc = Tok.getLocation();
4360   Diag(OpenLoc, diag::warn_cxx98_compat_attribute);
4361 
4362   ConsumeBracket();
4363   checkCompoundToken(OpenLoc, tok::l_square, CompoundToken::AttrBegin);
4364   ConsumeBracket();
4365 
4366   SourceLocation CommonScopeLoc;
4367   IdentifierInfo *CommonScopeName = nullptr;
4368   if (Tok.is(tok::kw_using)) {
4369     Diag(Tok.getLocation(), getLangOpts().CPlusPlus17
4370                                 ? diag::warn_cxx14_compat_using_attribute_ns
4371                                 : diag::ext_using_attribute_ns);
4372     ConsumeToken();
4373 
4374     CommonScopeName = TryParseCXX11AttributeIdentifier(CommonScopeLoc);
4375     if (!CommonScopeName) {
4376       Diag(Tok.getLocation(), diag::err_expected) << tok::identifier;
4377       SkipUntil(tok::r_square, tok::colon, StopBeforeMatch);
4378     }
4379     if (!TryConsumeToken(tok::colon) && CommonScopeName)
4380       Diag(Tok.getLocation(), diag::err_expected) << tok::colon;
4381   }
4382 
4383   llvm::SmallDenseMap<IdentifierInfo*, SourceLocation, 4> SeenAttrs;
4384 
4385   bool AttrParsed = false;
4386   while (!Tok.isOneOf(tok::r_square, tok::semi)) {
4387     if (AttrParsed) {
4388       // If we parsed an attribute, a comma is required before parsing any
4389       // additional attributes.
4390       if (ExpectAndConsume(tok::comma)) {
4391         SkipUntil(tok::r_square, StopAtSemi | StopBeforeMatch);
4392         continue;
4393       }
4394       AttrParsed = false;
4395     }
4396 
4397     // Eat all remaining superfluous commas before parsing the next attribute.
4398     while (TryConsumeToken(tok::comma))
4399       ;
4400 
4401     SourceLocation ScopeLoc, AttrLoc;
4402     IdentifierInfo *ScopeName = nullptr, *AttrName = nullptr;
4403 
4404     AttrName = TryParseCXX11AttributeIdentifier(AttrLoc);
4405     if (!AttrName)
4406       // Break out to the "expected ']'" diagnostic.
4407       break;
4408 
4409     // scoped attribute
4410     if (TryConsumeToken(tok::coloncolon)) {
4411       ScopeName = AttrName;
4412       ScopeLoc = AttrLoc;
4413 
4414       AttrName = TryParseCXX11AttributeIdentifier(AttrLoc);
4415       if (!AttrName) {
4416         Diag(Tok.getLocation(), diag::err_expected) << tok::identifier;
4417         SkipUntil(tok::r_square, tok::comma, StopAtSemi | StopBeforeMatch);
4418         continue;
4419       }
4420     }
4421 
4422     if (CommonScopeName) {
4423       if (ScopeName) {
4424         Diag(ScopeLoc, diag::err_using_attribute_ns_conflict)
4425             << SourceRange(CommonScopeLoc);
4426       } else {
4427         ScopeName = CommonScopeName;
4428         ScopeLoc = CommonScopeLoc;
4429       }
4430     }
4431 
4432     // Parse attribute arguments
4433     if (Tok.is(tok::l_paren))
4434       AttrParsed = ParseCXX11AttributeArgs(AttrName, AttrLoc, Attrs, EndLoc,
4435                                            ScopeName, ScopeLoc, OpenMPTokens);
4436 
4437     if (!AttrParsed) {
4438       Attrs.addNew(
4439           AttrName,
4440           SourceRange(ScopeLoc.isValid() ? ScopeLoc : AttrLoc, AttrLoc),
4441           ScopeName, ScopeLoc, nullptr, 0,
4442           getLangOpts().CPlusPlus ? ParsedAttr::AS_CXX11 : ParsedAttr::AS_C2x);
4443       AttrParsed = true;
4444     }
4445 
4446     if (TryConsumeToken(tok::ellipsis))
4447       Diag(Tok, diag::err_cxx11_attribute_forbids_ellipsis)
4448         << AttrName;
4449   }
4450 
4451   // If we hit an error and recovered by parsing up to a semicolon, eat the
4452   // semicolon and don't issue further diagnostics about missing brackets.
4453   if (Tok.is(tok::semi)) {
4454     ConsumeToken();
4455     return;
4456   }
4457 
4458   SourceLocation CloseLoc = Tok.getLocation();
4459   if (ExpectAndConsume(tok::r_square))
4460     SkipUntil(tok::r_square);
4461   else if (Tok.is(tok::r_square))
4462     checkCompoundToken(CloseLoc, tok::r_square, CompoundToken::AttrEnd);
4463   if (EndLoc)
4464     *EndLoc = Tok.getLocation();
4465   if (ExpectAndConsume(tok::r_square))
4466     SkipUntil(tok::r_square);
4467 }
4468 
4469 /// ParseCXX11Attributes - Parse a C++11 or C2x attribute-specifier-seq.
4470 ///
4471 /// attribute-specifier-seq:
4472 ///       attribute-specifier-seq[opt] attribute-specifier
4473 void Parser::ParseCXX11Attributes(ParsedAttributesWithRange &attrs,
4474                                   SourceLocation *endLoc) {
4475   assert(standardAttributesAllowed());
4476 
4477   SourceLocation StartLoc = Tok.getLocation(), Loc;
4478   if (!endLoc)
4479     endLoc = &Loc;
4480 
4481   do {
4482     ParseCXX11AttributeSpecifier(attrs, endLoc);
4483   } while (isCXX11AttributeSpecifier());
4484 
4485   attrs.Range = SourceRange(StartLoc, *endLoc);
4486 }
4487 
4488 void Parser::DiagnoseAndSkipCXX11Attributes() {
4489   // Start and end location of an attribute or an attribute list.
4490   SourceLocation StartLoc = Tok.getLocation();
4491   SourceLocation EndLoc = SkipCXX11Attributes();
4492 
4493   if (EndLoc.isValid()) {
4494     SourceRange Range(StartLoc, EndLoc);
4495     Diag(StartLoc, diag::err_attributes_not_allowed)
4496       << Range;
4497   }
4498 }
4499 
4500 SourceLocation Parser::SkipCXX11Attributes() {
4501   SourceLocation EndLoc;
4502 
4503   if (!isCXX11AttributeSpecifier())
4504     return EndLoc;
4505 
4506   do {
4507     if (Tok.is(tok::l_square)) {
4508       BalancedDelimiterTracker T(*this, tok::l_square);
4509       T.consumeOpen();
4510       T.skipToEnd();
4511       EndLoc = T.getCloseLocation();
4512     } else {
4513       assert(Tok.is(tok::kw_alignas) && "not an attribute specifier");
4514       ConsumeToken();
4515       BalancedDelimiterTracker T(*this, tok::l_paren);
4516       if (!T.consumeOpen())
4517         T.skipToEnd();
4518       EndLoc = T.getCloseLocation();
4519     }
4520   } while (isCXX11AttributeSpecifier());
4521 
4522   return EndLoc;
4523 }
4524 
4525 /// Parse uuid() attribute when it appears in a [] Microsoft attribute.
4526 void Parser::ParseMicrosoftUuidAttributeArgs(ParsedAttributes &Attrs) {
4527   assert(Tok.is(tok::identifier) && "Not a Microsoft attribute list");
4528   IdentifierInfo *UuidIdent = Tok.getIdentifierInfo();
4529   assert(UuidIdent->getName() == "uuid" && "Not a Microsoft attribute list");
4530 
4531   SourceLocation UuidLoc = Tok.getLocation();
4532   ConsumeToken();
4533 
4534   // Ignore the left paren location for now.
4535   BalancedDelimiterTracker T(*this, tok::l_paren);
4536   if (T.consumeOpen()) {
4537     Diag(Tok, diag::err_expected) << tok::l_paren;
4538     return;
4539   }
4540 
4541   ArgsVector ArgExprs;
4542   if (Tok.is(tok::string_literal)) {
4543     // Easy case: uuid("...") -- quoted string.
4544     ExprResult StringResult = ParseStringLiteralExpression();
4545     if (StringResult.isInvalid())
4546       return;
4547     ArgExprs.push_back(StringResult.get());
4548   } else {
4549     // something like uuid({000000A0-0000-0000-C000-000000000049}) -- no
4550     // quotes in the parens. Just append the spelling of all tokens encountered
4551     // until the closing paren.
4552 
4553     SmallString<42> StrBuffer; // 2 "", 36 bytes UUID, 2 optional {}, 1 nul
4554     StrBuffer += "\"";
4555 
4556     // Since none of C++'s keywords match [a-f]+, accepting just tok::l_brace,
4557     // tok::r_brace, tok::minus, tok::identifier (think C000) and
4558     // tok::numeric_constant (0000) should be enough. But the spelling of the
4559     // uuid argument is checked later anyways, so there's no harm in accepting
4560     // almost anything here.
4561     // cl is very strict about whitespace in this form and errors out if any
4562     // is present, so check the space flags on the tokens.
4563     SourceLocation StartLoc = Tok.getLocation();
4564     while (Tok.isNot(tok::r_paren)) {
4565       if (Tok.hasLeadingSpace() || Tok.isAtStartOfLine()) {
4566         Diag(Tok, diag::err_attribute_uuid_malformed_guid);
4567         SkipUntil(tok::r_paren, StopAtSemi);
4568         return;
4569       }
4570       SmallString<16> SpellingBuffer;
4571       SpellingBuffer.resize(Tok.getLength() + 1);
4572       bool Invalid = false;
4573       StringRef TokSpelling = PP.getSpelling(Tok, SpellingBuffer, &Invalid);
4574       if (Invalid) {
4575         SkipUntil(tok::r_paren, StopAtSemi);
4576         return;
4577       }
4578       StrBuffer += TokSpelling;
4579       ConsumeAnyToken();
4580     }
4581     StrBuffer += "\"";
4582 
4583     if (Tok.hasLeadingSpace() || Tok.isAtStartOfLine()) {
4584       Diag(Tok, diag::err_attribute_uuid_malformed_guid);
4585       ConsumeParen();
4586       return;
4587     }
4588 
4589     // Pretend the user wrote the appropriate string literal here.
4590     // ActOnStringLiteral() copies the string data into the literal, so it's
4591     // ok that the Token points to StrBuffer.
4592     Token Toks[1];
4593     Toks[0].startToken();
4594     Toks[0].setKind(tok::string_literal);
4595     Toks[0].setLocation(StartLoc);
4596     Toks[0].setLiteralData(StrBuffer.data());
4597     Toks[0].setLength(StrBuffer.size());
4598     StringLiteral *UuidString =
4599         cast<StringLiteral>(Actions.ActOnStringLiteral(Toks, nullptr).get());
4600     ArgExprs.push_back(UuidString);
4601   }
4602 
4603   if (!T.consumeClose()) {
4604     Attrs.addNew(UuidIdent, SourceRange(UuidLoc, T.getCloseLocation()), nullptr,
4605                  SourceLocation(), ArgExprs.data(), ArgExprs.size(),
4606                  ParsedAttr::AS_Microsoft);
4607   }
4608 }
4609 
4610 /// ParseMicrosoftAttributes - Parse Microsoft attributes [Attr]
4611 ///
4612 /// [MS] ms-attribute:
4613 ///             '[' token-seq ']'
4614 ///
4615 /// [MS] ms-attribute-seq:
4616 ///             ms-attribute[opt]
4617 ///             ms-attribute ms-attribute-seq
4618 void Parser::ParseMicrosoftAttributes(ParsedAttributes &attrs,
4619                                       SourceLocation *endLoc) {
4620   assert(Tok.is(tok::l_square) && "Not a Microsoft attribute list");
4621 
4622   do {
4623     // FIXME: If this is actually a C++11 attribute, parse it as one.
4624     BalancedDelimiterTracker T(*this, tok::l_square);
4625     T.consumeOpen();
4626 
4627     // Skip most ms attributes except for a specific list.
4628     while (true) {
4629       SkipUntil(tok::r_square, tok::identifier, StopAtSemi | StopBeforeMatch);
4630       if (Tok.isNot(tok::identifier)) // ']', but also eof
4631         break;
4632       if (Tok.getIdentifierInfo()->getName() == "uuid")
4633         ParseMicrosoftUuidAttributeArgs(attrs);
4634       else
4635         ConsumeToken();
4636     }
4637 
4638     T.consumeClose();
4639     if (endLoc)
4640       *endLoc = T.getCloseLocation();
4641   } while (Tok.is(tok::l_square));
4642 }
4643 
4644 void Parser::ParseMicrosoftIfExistsClassDeclaration(
4645     DeclSpec::TST TagType, ParsedAttributes &AccessAttrs,
4646     AccessSpecifier &CurAS) {
4647   IfExistsCondition Result;
4648   if (ParseMicrosoftIfExistsCondition(Result))
4649     return;
4650 
4651   BalancedDelimiterTracker Braces(*this, tok::l_brace);
4652   if (Braces.consumeOpen()) {
4653     Diag(Tok, diag::err_expected) << tok::l_brace;
4654     return;
4655   }
4656 
4657   switch (Result.Behavior) {
4658   case IEB_Parse:
4659     // Parse the declarations below.
4660     break;
4661 
4662   case IEB_Dependent:
4663     Diag(Result.KeywordLoc, diag::warn_microsoft_dependent_exists)
4664       << Result.IsIfExists;
4665     // Fall through to skip.
4666     LLVM_FALLTHROUGH;
4667 
4668   case IEB_Skip:
4669     Braces.skipToEnd();
4670     return;
4671   }
4672 
4673   while (Tok.isNot(tok::r_brace) && !isEofOrEom()) {
4674     // __if_exists, __if_not_exists can nest.
4675     if (Tok.isOneOf(tok::kw___if_exists, tok::kw___if_not_exists)) {
4676       ParseMicrosoftIfExistsClassDeclaration(TagType,
4677                                              AccessAttrs, CurAS);
4678       continue;
4679     }
4680 
4681     // Check for extraneous top-level semicolon.
4682     if (Tok.is(tok::semi)) {
4683       ConsumeExtraSemi(InsideStruct, TagType);
4684       continue;
4685     }
4686 
4687     AccessSpecifier AS = getAccessSpecifierIfPresent();
4688     if (AS != AS_none) {
4689       // Current token is a C++ access specifier.
4690       CurAS = AS;
4691       SourceLocation ASLoc = Tok.getLocation();
4692       ConsumeToken();
4693       if (Tok.is(tok::colon))
4694         Actions.ActOnAccessSpecifier(AS, ASLoc, Tok.getLocation(),
4695                                      ParsedAttributesView{});
4696       else
4697         Diag(Tok, diag::err_expected) << tok::colon;
4698       ConsumeToken();
4699       continue;
4700     }
4701 
4702     // Parse all the comma separated declarators.
4703     ParseCXXClassMemberDeclaration(CurAS, AccessAttrs);
4704   }
4705 
4706   Braces.consumeClose();
4707 }
4708