1 //===-- dfsan.cpp ---------------------------------------------------------===//
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 is a part of DataFlowSanitizer.
10 //
11 // DataFlowSanitizer runtime. This file defines the public interface to
12 // DataFlowSanitizer as well as the definition of certain runtime functions
13 // called automatically by the compiler (specifically the instrumentation pass
14 // in llvm/lib/Transforms/Instrumentation/DataFlowSanitizer.cpp).
15 //
16 // The public interface is defined in include/sanitizer/dfsan_interface.h whose
17 // functions are prefixed dfsan_ while the compiler interface functions are
18 // prefixed __dfsan_.
19 //===----------------------------------------------------------------------===//
20
21 #include "dfsan/dfsan.h"
22
23 #include "dfsan/dfsan_chained_origin_depot.h"
24 #include "dfsan/dfsan_flags.h"
25 #include "dfsan/dfsan_origin.h"
26 #include "dfsan/dfsan_thread.h"
27 #include "sanitizer_common/sanitizer_atomic.h"
28 #include "sanitizer_common/sanitizer_common.h"
29 #include "sanitizer_common/sanitizer_file.h"
30 #include "sanitizer_common/sanitizer_flag_parser.h"
31 #include "sanitizer_common/sanitizer_flags.h"
32 #include "sanitizer_common/sanitizer_internal_defs.h"
33 #include "sanitizer_common/sanitizer_libc.h"
34 #include "sanitizer_common/sanitizer_report_decorator.h"
35 #include "sanitizer_common/sanitizer_stacktrace.h"
36
37 using namespace __dfsan;
38
39 Flags __dfsan::flags_data;
40
41 // The size of TLS variables. These constants must be kept in sync with the ones
42 // in DataFlowSanitizer.cpp.
43 static const int kDFsanArgTlsSize = 800;
44 static const int kDFsanRetvalTlsSize = 800;
45 static const int kDFsanArgOriginTlsSize = 800;
46
47 SANITIZER_INTERFACE_ATTRIBUTE THREADLOCAL u64
48 __dfsan_retval_tls[kDFsanRetvalTlsSize / sizeof(u64)];
49 SANITIZER_INTERFACE_ATTRIBUTE THREADLOCAL u32 __dfsan_retval_origin_tls;
50 SANITIZER_INTERFACE_ATTRIBUTE THREADLOCAL u64
51 __dfsan_arg_tls[kDFsanArgTlsSize / sizeof(u64)];
52 SANITIZER_INTERFACE_ATTRIBUTE THREADLOCAL u32
53 __dfsan_arg_origin_tls[kDFsanArgOriginTlsSize / sizeof(u32)];
54
55 // Instrumented code may set this value in terms of -dfsan-track-origins.
56 // * undefined or 0: do not track origins.
57 // * 1: track origins at memory store operations.
58 // * 2: track origins at memory load and store operations.
59 // TODO: track callsites.
60 extern "C" SANITIZER_WEAK_ATTRIBUTE const int __dfsan_track_origins;
61
dfsan_get_track_origins()62 extern "C" SANITIZER_INTERFACE_ATTRIBUTE int dfsan_get_track_origins() {
63 return &__dfsan_track_origins ? __dfsan_track_origins : 0;
64 }
65
66 // On Linux/x86_64, memory is laid out as follows:
67 //
68 // +--------------------+ 0x800000000000 (top of memory)
69 // | application 3 |
70 // +--------------------+ 0x700000000000
71 // | invalid |
72 // +--------------------+ 0x610000000000
73 // | origin 1 |
74 // +--------------------+ 0x600000000000
75 // | application 2 |
76 // +--------------------+ 0x510000000000
77 // | shadow 1 |
78 // +--------------------+ 0x500000000000
79 // | invalid |
80 // +--------------------+ 0x400000000000
81 // | origin 3 |
82 // +--------------------+ 0x300000000000
83 // | shadow 3 |
84 // +--------------------+ 0x200000000000
85 // | origin 2 |
86 // +--------------------+ 0x110000000000
87 // | invalid |
88 // +--------------------+ 0x100000000000
89 // | shadow 2 |
90 // +--------------------+ 0x010000000000
91 // | application 1 |
92 // +--------------------+ 0x000000000000
93 //
94 // MEM_TO_SHADOW(mem) = mem ^ 0x500000000000
95 // SHADOW_TO_ORIGIN(shadow) = shadow + 0x100000000000
96
97 extern "C" SANITIZER_INTERFACE_ATTRIBUTE
__dfsan_union_load(const dfsan_label * ls,uptr n)98 dfsan_label __dfsan_union_load(const dfsan_label *ls, uptr n) {
99 dfsan_label label = ls[0];
100 for (uptr i = 1; i != n; ++i)
101 label |= ls[i];
102 return label;
103 }
104
105 // Return the union of all the n labels from addr at the high 32 bit, and the
106 // origin of the first taint byte at the low 32 bit.
107 extern "C" SANITIZER_INTERFACE_ATTRIBUTE u64
__dfsan_load_label_and_origin(const void * addr,uptr n)108 __dfsan_load_label_and_origin(const void *addr, uptr n) {
109 dfsan_label label = 0;
110 u64 ret = 0;
111 uptr p = (uptr)addr;
112 dfsan_label *s = shadow_for((void *)p);
113 for (uptr i = 0; i < n; ++i) {
114 dfsan_label l = s[i];
115 if (!l)
116 continue;
117 label |= l;
118 if (!ret)
119 ret = *(dfsan_origin *)origin_for((void *)(p + i));
120 }
121 return ret | (u64)label << 32;
122 }
123
124 extern "C" SANITIZER_INTERFACE_ATTRIBUTE
__dfsan_unimplemented(char * fname)125 void __dfsan_unimplemented(char *fname) {
126 if (flags().warn_unimplemented)
127 Report("WARNING: DataFlowSanitizer: call to uninstrumented function %s\n",
128 fname);
129 }
130
__dfsan_wrapper_extern_weak_null(const void * addr,char * fname)131 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void __dfsan_wrapper_extern_weak_null(
132 const void *addr, char *fname) {
133 if (!addr)
134 Report(
135 "ERROR: DataFlowSanitizer: dfsan generated wrapper calling null "
136 "extern_weak function %s\nIf this only happens with dfsan, the "
137 "dfsan instrumentation pass may be accidentally optimizing out a "
138 "null check\n",
139 fname);
140 }
141
142 // Use '-mllvm -dfsan-debug-nonzero-labels' and break on this function
143 // to try to figure out where labels are being introduced in a nominally
144 // label-free program.
__dfsan_nonzero_label()145 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void __dfsan_nonzero_label() {
146 if (flags().warn_nonzero_labels)
147 Report("WARNING: DataFlowSanitizer: saw nonzero label\n");
148 }
149
150 // Indirect call to an uninstrumented vararg function. We don't have a way of
151 // handling these at the moment.
152 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void
__dfsan_vararg_wrapper(const char * fname)153 __dfsan_vararg_wrapper(const char *fname) {
154 Report("FATAL: DataFlowSanitizer: unsupported indirect call to vararg "
155 "function %s\n", fname);
156 Die();
157 }
158
159 // Resolves the union of two labels.
160 SANITIZER_INTERFACE_ATTRIBUTE dfsan_label
dfsan_union(dfsan_label l1,dfsan_label l2)161 dfsan_union(dfsan_label l1, dfsan_label l2) {
162 return l1 | l2;
163 }
164
165 static const uptr kOriginAlign = sizeof(dfsan_origin);
166 static const uptr kOriginAlignMask = ~(kOriginAlign - 1UL);
167
OriginAlignUp(uptr u)168 static uptr OriginAlignUp(uptr u) {
169 return (u + kOriginAlign - 1) & kOriginAlignMask;
170 }
171
OriginAlignDown(uptr u)172 static uptr OriginAlignDown(uptr u) { return u & kOriginAlignMask; }
173
174 // Return the origin of the first taint byte in the size bytes from the address
175 // addr.
GetOriginIfTainted(uptr addr,uptr size)176 static dfsan_origin GetOriginIfTainted(uptr addr, uptr size) {
177 for (uptr i = 0; i < size; ++i, ++addr) {
178 dfsan_label *s = shadow_for((void *)addr);
179
180 if (*s) {
181 // Validate address region.
182 CHECK(MEM_IS_SHADOW(s));
183 return *(dfsan_origin *)origin_for((void *)addr);
184 }
185 }
186 return 0;
187 }
188
189 // For platforms which support slow unwinder only, we need to restrict the store
190 // context size to 1, basically only storing the current pc, because the slow
191 // unwinder which is based on libunwind is not async signal safe and causes
192 // random freezes in forking applications as well as in signal handlers.
193 // DFSan supports only Linux. So we do not restrict the store context size.
194 #define GET_STORE_STACK_TRACE_PC_BP(pc, bp) \
195 BufferedStackTrace stack; \
196 stack.Unwind(pc, bp, nullptr, true, flags().store_context_size);
197
198 #define PRINT_CALLER_STACK_TRACE \
199 { \
200 GET_CALLER_PC_BP_SP; \
201 (void)sp; \
202 GET_STORE_STACK_TRACE_PC_BP(pc, bp) \
203 stack.Print(); \
204 }
205
206 // Return a chain with the previous ID id and the current stack.
207 // from_init = true if this is the first chain of an origin tracking path.
ChainOrigin(u32 id,StackTrace * stack,bool from_init=false)208 static u32 ChainOrigin(u32 id, StackTrace *stack, bool from_init = false) {
209 // StackDepot is not async signal safe. Do not create new chains in a signal
210 // handler.
211 DFsanThread *t = GetCurrentThread();
212 if (t && t->InSignalHandler())
213 return id;
214
215 // As an optimization the origin of an application byte is updated only when
216 // its shadow is non-zero. Because we are only interested in the origins of
217 // taint labels, it does not matter what origin a zero label has. This reduces
218 // memory write cost. MSan does similar optimization. The following invariant
219 // may not hold because of some bugs. We check the invariant to help debug.
220 if (!from_init && id == 0 && flags().check_origin_invariant) {
221 Printf(" DFSan found invalid origin invariant\n");
222 PRINT_CALLER_STACK_TRACE
223 }
224
225 Origin o = Origin::FromRawId(id);
226 stack->tag = StackTrace::TAG_UNKNOWN;
227 Origin chained = Origin::CreateChainedOrigin(o, stack);
228 return chained.raw_id();
229 }
230
ChainAndWriteOriginIfTainted(uptr src,uptr size,uptr dst,StackTrace * stack)231 static void ChainAndWriteOriginIfTainted(uptr src, uptr size, uptr dst,
232 StackTrace *stack) {
233 dfsan_origin o = GetOriginIfTainted(src, size);
234 if (o) {
235 o = ChainOrigin(o, stack);
236 *(dfsan_origin *)origin_for((void *)dst) = o;
237 }
238 }
239
240 // Copy the origins of the size bytes from src to dst. The source and target
241 // memory ranges cannot be overlapped. This is used by memcpy. stack records the
242 // stack trace of the memcpy. When dst and src are not 4-byte aligned properly,
243 // origins at the unaligned address boundaries may be overwritten because four
244 // contiguous bytes share the same origin.
CopyOrigin(const void * dst,const void * src,uptr size,StackTrace * stack)245 static void CopyOrigin(const void *dst, const void *src, uptr size,
246 StackTrace *stack) {
247 uptr d = (uptr)dst;
248 uptr beg = OriginAlignDown(d);
249 // Copy left unaligned origin if that memory is tainted.
250 if (beg < d) {
251 ChainAndWriteOriginIfTainted((uptr)src, beg + kOriginAlign - d, beg, stack);
252 beg += kOriginAlign;
253 }
254
255 uptr end = OriginAlignDown(d + size);
256 // If both ends fall into the same 4-byte slot, we are done.
257 if (end < beg)
258 return;
259
260 // Copy right unaligned origin if that memory is tainted.
261 if (end < d + size)
262 ChainAndWriteOriginIfTainted((uptr)src + (end - d), (d + size) - end, end,
263 stack);
264
265 if (beg >= end)
266 return;
267
268 // Align src up.
269 uptr src_a = OriginAlignUp((uptr)src);
270 dfsan_origin *src_o = origin_for((void *)src_a);
271 u32 *src_s = (u32 *)shadow_for((void *)src_a);
272 dfsan_origin *src_end = origin_for((void *)(src_a + (end - beg)));
273 dfsan_origin *dst_o = origin_for((void *)beg);
274 dfsan_origin last_src_o = 0;
275 dfsan_origin last_dst_o = 0;
276 for (; src_o < src_end; ++src_o, ++src_s, ++dst_o) {
277 if (!*src_s)
278 continue;
279 if (*src_o != last_src_o) {
280 last_src_o = *src_o;
281 last_dst_o = ChainOrigin(last_src_o, stack);
282 }
283 *dst_o = last_dst_o;
284 }
285 }
286
287 // Copy the origins of the size bytes from src to dst. The source and target
288 // memory ranges may be overlapped. So the copy is done in a reverse order.
289 // This is used by memmove. stack records the stack trace of the memmove.
ReverseCopyOrigin(const void * dst,const void * src,uptr size,StackTrace * stack)290 static void ReverseCopyOrigin(const void *dst, const void *src, uptr size,
291 StackTrace *stack) {
292 uptr d = (uptr)dst;
293 uptr end = OriginAlignDown(d + size);
294
295 // Copy right unaligned origin if that memory is tainted.
296 if (end < d + size)
297 ChainAndWriteOriginIfTainted((uptr)src + (end - d), (d + size) - end, end,
298 stack);
299
300 uptr beg = OriginAlignDown(d);
301
302 if (beg + kOriginAlign < end) {
303 // Align src up.
304 uptr src_a = OriginAlignUp((uptr)src);
305 void *src_end = (void *)(src_a + end - beg - kOriginAlign);
306 dfsan_origin *src_end_o = origin_for(src_end);
307 u32 *src_end_s = (u32 *)shadow_for(src_end);
308 dfsan_origin *src_begin_o = origin_for((void *)src_a);
309 dfsan_origin *dst = origin_for((void *)(end - kOriginAlign));
310 dfsan_origin last_src_o = 0;
311 dfsan_origin last_dst_o = 0;
312 for (; src_end_o >= src_begin_o; --src_end_o, --src_end_s, --dst) {
313 if (!*src_end_s)
314 continue;
315 if (*src_end_o != last_src_o) {
316 last_src_o = *src_end_o;
317 last_dst_o = ChainOrigin(last_src_o, stack);
318 }
319 *dst = last_dst_o;
320 }
321 }
322
323 // Copy left unaligned origin if that memory is tainted.
324 if (beg < d)
325 ChainAndWriteOriginIfTainted((uptr)src, beg + kOriginAlign - d, beg, stack);
326 }
327
328 // Copy or move the origins of the len bytes from src to dst. The source and
329 // target memory ranges may or may not be overlapped. This is used by memory
330 // transfer operations. stack records the stack trace of the memory transfer
331 // operation.
MoveOrigin(const void * dst,const void * src,uptr size,StackTrace * stack)332 static void MoveOrigin(const void *dst, const void *src, uptr size,
333 StackTrace *stack) {
334 // Validate address regions.
335 if (!MEM_IS_SHADOW(shadow_for(dst)) ||
336 !MEM_IS_SHADOW(shadow_for((void *)((uptr)dst + size))) ||
337 !MEM_IS_SHADOW(shadow_for(src)) ||
338 !MEM_IS_SHADOW(shadow_for((void *)((uptr)src + size)))) {
339 CHECK(false);
340 return;
341 }
342 // If destination origin range overlaps with source origin range, move
343 // origins by copying origins in a reverse order; otherwise, copy origins in
344 // a normal order. The orders of origin transfer are consistent with the
345 // orders of how memcpy and memmove transfer user data.
346 uptr src_aligned_beg = OriginAlignDown((uptr)src);
347 uptr src_aligned_end = OriginAlignDown((uptr)src + size);
348 uptr dst_aligned_beg = OriginAlignDown((uptr)dst);
349 if (dst_aligned_beg < src_aligned_end && dst_aligned_beg >= src_aligned_beg)
350 return ReverseCopyOrigin(dst, src, size, stack);
351 return CopyOrigin(dst, src, size, stack);
352 }
353
354 // Set the size bytes from the addres dst to be the origin value.
SetOrigin(const void * dst,uptr size,u32 origin)355 static void SetOrigin(const void *dst, uptr size, u32 origin) {
356 if (size == 0)
357 return;
358
359 // Origin mapping is 4 bytes per 4 bytes of application memory.
360 // Here we extend the range such that its left and right bounds are both
361 // 4 byte aligned.
362 uptr x = unaligned_origin_for((uptr)dst);
363 uptr beg = OriginAlignDown(x);
364 uptr end = OriginAlignUp(x + size); // align up.
365 u64 origin64 = ((u64)origin << 32) | origin;
366 // This is like memset, but the value is 32-bit. We unroll by 2 to write
367 // 64 bits at once. May want to unroll further to get 128-bit stores.
368 if (beg & 7ULL) {
369 if (*(u32 *)beg != origin)
370 *(u32 *)beg = origin;
371 beg += 4;
372 }
373 for (uptr addr = beg; addr < (end & ~7UL); addr += 8) {
374 if (*(u64 *)addr == origin64)
375 continue;
376 *(u64 *)addr = origin64;
377 }
378 if (end & 7ULL)
379 if (*(u32 *)(end - kOriginAlign) != origin)
380 *(u32 *)(end - kOriginAlign) = origin;
381 }
382
383 #define RET_CHAIN_ORIGIN(id) \
384 GET_CALLER_PC_BP_SP; \
385 (void)sp; \
386 GET_STORE_STACK_TRACE_PC_BP(pc, bp); \
387 return ChainOrigin(id, &stack);
388
389 // Return a new origin chain with the previous ID id and the current stack
390 // trace.
391 extern "C" SANITIZER_INTERFACE_ATTRIBUTE dfsan_origin
__dfsan_chain_origin(dfsan_origin id)392 __dfsan_chain_origin(dfsan_origin id) {
393 RET_CHAIN_ORIGIN(id)
394 }
395
396 // Return a new origin chain with the previous ID id and the current stack
397 // trace if the label is tainted.
398 extern "C" SANITIZER_INTERFACE_ATTRIBUTE dfsan_origin
__dfsan_chain_origin_if_tainted(dfsan_label label,dfsan_origin id)399 __dfsan_chain_origin_if_tainted(dfsan_label label, dfsan_origin id) {
400 if (!label)
401 return id;
402 RET_CHAIN_ORIGIN(id)
403 }
404
405 // Copy or move the origins of the len bytes from src to dst.
__dfsan_mem_origin_transfer(const void * dst,const void * src,uptr len)406 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void __dfsan_mem_origin_transfer(
407 const void *dst, const void *src, uptr len) {
408 if (src == dst)
409 return;
410 GET_CALLER_PC_BP;
411 GET_STORE_STACK_TRACE_PC_BP(pc, bp);
412 MoveOrigin(dst, src, len, &stack);
413 }
414
dfsan_mem_origin_transfer(const void * dst,const void * src,uptr len)415 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void dfsan_mem_origin_transfer(
416 const void *dst, const void *src, uptr len) {
417 __dfsan_mem_origin_transfer(dst, src, len);
418 }
419
CopyShadow(void * dst,const void * src,uptr len)420 static void CopyShadow(void *dst, const void *src, uptr len) {
421 internal_memcpy((void *)__dfsan::shadow_for(dst),
422 (const void *)__dfsan::shadow_for(src),
423 len * sizeof(dfsan_label));
424 }
425
dfsan_mem_shadow_transfer(void * dst,const void * src,uptr len)426 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void dfsan_mem_shadow_transfer(
427 void *dst, const void *src, uptr len) {
428 CopyShadow(dst, src, len);
429 }
430
431 // Copy shadow and origins of the len bytes from src to dst.
432 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void
__dfsan_mem_shadow_origin_transfer(void * dst,const void * src,uptr size)433 __dfsan_mem_shadow_origin_transfer(void *dst, const void *src, uptr size) {
434 if (src == dst)
435 return;
436 CopyShadow(dst, src, size);
437 if (dfsan_get_track_origins()) {
438 // Duplicating code instead of calling __dfsan_mem_origin_transfer
439 // so that the getting the caller stack frame works correctly.
440 GET_CALLER_PC_BP;
441 GET_STORE_STACK_TRACE_PC_BP(pc, bp);
442 MoveOrigin(dst, src, size, &stack);
443 }
444 }
445
446 // Copy shadow and origins as per __atomic_compare_exchange.
447 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void
__dfsan_mem_shadow_origin_conditional_exchange(u8 condition,void * target,void * expected,const void * desired,uptr size)448 __dfsan_mem_shadow_origin_conditional_exchange(u8 condition, void *target,
449 void *expected,
450 const void *desired, uptr size) {
451 void *dst;
452 const void *src;
453 // condition is result of native call to __atomic_compare_exchange
454 if (condition) {
455 // Copy desired into target
456 dst = target;
457 src = desired;
458 } else {
459 // Copy target into expected
460 dst = expected;
461 src = target;
462 }
463 if (src == dst)
464 return;
465 CopyShadow(dst, src, size);
466 if (dfsan_get_track_origins()) {
467 // Duplicating code instead of calling __dfsan_mem_origin_transfer
468 // so that the getting the caller stack frame works correctly.
469 GET_CALLER_PC_BP;
470 GET_STORE_STACK_TRACE_PC_BP(pc, bp);
471 MoveOrigin(dst, src, size, &stack);
472 }
473 }
474
475 namespace __dfsan {
476
477 bool dfsan_inited = false;
478 bool dfsan_init_is_running = false;
479
dfsan_copy_memory(void * dst,const void * src,uptr size)480 void dfsan_copy_memory(void *dst, const void *src, uptr size) {
481 internal_memcpy(dst, src, size);
482 dfsan_mem_shadow_transfer(dst, src, size);
483 if (dfsan_get_track_origins())
484 dfsan_mem_origin_transfer(dst, src, size);
485 }
486
487 // Releases the pages within the origin address range.
ReleaseOrigins(void * addr,uptr size)488 static void ReleaseOrigins(void *addr, uptr size) {
489 const uptr beg_origin_addr = (uptr)__dfsan::origin_for(addr);
490 const void *end_addr = (void *)((uptr)addr + size);
491 const uptr end_origin_addr = (uptr)__dfsan::origin_for(end_addr);
492
493 if (end_origin_addr - beg_origin_addr <
494 common_flags()->clear_shadow_mmap_threshold)
495 return;
496
497 const uptr page_size = GetPageSizeCached();
498 const uptr beg_aligned = RoundUpTo(beg_origin_addr, page_size);
499 const uptr end_aligned = RoundDownTo(end_origin_addr, page_size);
500
501 if (!MmapFixedSuperNoReserve(beg_aligned, end_aligned - beg_aligned))
502 Die();
503 }
504
WriteZeroShadowInRange(uptr beg,uptr end)505 static void WriteZeroShadowInRange(uptr beg, uptr end) {
506 // Don't write the label if it is already the value we need it to be.
507 // In a program where most addresses are not labeled, it is common that
508 // a page of shadow memory is entirely zeroed. The Linux copy-on-write
509 // implementation will share all of the zeroed pages, making a copy of a
510 // page when any value is written. The un-sharing will happen even if
511 // the value written does not change the value in memory. Avoiding the
512 // write when both |label| and |*labelp| are zero dramatically reduces
513 // the amount of real memory used by large programs.
514 if (!mem_is_zero((const char *)beg, end - beg))
515 internal_memset((void *)beg, 0, end - beg);
516 }
517
518 // Releases the pages within the shadow address range, and sets
519 // the shadow addresses not on the pages to be 0.
ReleaseOrClearShadows(void * addr,uptr size)520 static void ReleaseOrClearShadows(void *addr, uptr size) {
521 const uptr beg_shadow_addr = (uptr)__dfsan::shadow_for(addr);
522 const void *end_addr = (void *)((uptr)addr + size);
523 const uptr end_shadow_addr = (uptr)__dfsan::shadow_for(end_addr);
524
525 if (end_shadow_addr - beg_shadow_addr <
526 common_flags()->clear_shadow_mmap_threshold) {
527 WriteZeroShadowInRange(beg_shadow_addr, end_shadow_addr);
528 return;
529 }
530
531 const uptr page_size = GetPageSizeCached();
532 const uptr beg_aligned = RoundUpTo(beg_shadow_addr, page_size);
533 const uptr end_aligned = RoundDownTo(end_shadow_addr, page_size);
534
535 if (beg_aligned >= end_aligned) {
536 WriteZeroShadowInRange(beg_shadow_addr, end_shadow_addr);
537 } else {
538 if (beg_aligned != beg_shadow_addr)
539 WriteZeroShadowInRange(beg_shadow_addr, beg_aligned);
540 if (end_aligned != end_shadow_addr)
541 WriteZeroShadowInRange(end_aligned, end_shadow_addr);
542 if (!MmapFixedSuperNoReserve(beg_aligned, end_aligned - beg_aligned))
543 Die();
544 }
545 }
546
SetShadow(dfsan_label label,void * addr,uptr size,dfsan_origin origin)547 void SetShadow(dfsan_label label, void *addr, uptr size, dfsan_origin origin) {
548 if (0 != label) {
549 const uptr beg_shadow_addr = (uptr)__dfsan::shadow_for(addr);
550 internal_memset((void *)beg_shadow_addr, label, size);
551 if (dfsan_get_track_origins())
552 SetOrigin(addr, size, origin);
553 return;
554 }
555
556 if (dfsan_get_track_origins())
557 ReleaseOrigins(addr, size);
558
559 ReleaseOrClearShadows(addr, size);
560 }
561
562 } // namespace __dfsan
563
564 // If the label s is tainted, set the size bytes from the address p to be a new
565 // origin chain with the previous ID o and the current stack trace. This is
566 // used by instrumentation to reduce code size when too much code is inserted.
__dfsan_maybe_store_origin(dfsan_label s,void * p,uptr size,dfsan_origin o)567 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void __dfsan_maybe_store_origin(
568 dfsan_label s, void *p, uptr size, dfsan_origin o) {
569 if (UNLIKELY(s)) {
570 GET_CALLER_PC_BP_SP;
571 (void)sp;
572 GET_STORE_STACK_TRACE_PC_BP(pc, bp);
573 SetOrigin(p, size, ChainOrigin(o, &stack));
574 }
575 }
576
__dfsan_set_label(dfsan_label label,dfsan_origin origin,void * addr,uptr size)577 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void __dfsan_set_label(
578 dfsan_label label, dfsan_origin origin, void *addr, uptr size) {
579 __dfsan::SetShadow(label, addr, size, origin);
580 }
581
582 SANITIZER_INTERFACE_ATTRIBUTE
dfsan_set_label(dfsan_label label,void * addr,uptr size)583 void dfsan_set_label(dfsan_label label, void *addr, uptr size) {
584 dfsan_origin init_origin = 0;
585 if (label && dfsan_get_track_origins()) {
586 GET_CALLER_PC_BP;
587 GET_STORE_STACK_TRACE_PC_BP(pc, bp);
588 init_origin = ChainOrigin(0, &stack, true);
589 }
590 __dfsan::SetShadow(label, addr, size, init_origin);
591 }
592
593 SANITIZER_INTERFACE_ATTRIBUTE
dfsan_add_label(dfsan_label label,void * addr,uptr size)594 void dfsan_add_label(dfsan_label label, void *addr, uptr size) {
595 if (0 == label)
596 return;
597
598 if (dfsan_get_track_origins()) {
599 GET_CALLER_PC_BP;
600 GET_STORE_STACK_TRACE_PC_BP(pc, bp);
601 dfsan_origin init_origin = ChainOrigin(0, &stack, true);
602 SetOrigin(addr, size, init_origin);
603 }
604
605 for (dfsan_label *labelp = shadow_for(addr); size != 0; --size, ++labelp)
606 *labelp |= label;
607 }
608
609 // Unlike the other dfsan interface functions the behavior of this function
610 // depends on the label of one of its arguments. Hence it is implemented as a
611 // custom function.
612 extern "C" SANITIZER_INTERFACE_ATTRIBUTE dfsan_label
__dfsw_dfsan_get_label(long data,dfsan_label data_label,dfsan_label * ret_label)613 __dfsw_dfsan_get_label(long data, dfsan_label data_label,
614 dfsan_label *ret_label) {
615 *ret_label = 0;
616 return data_label;
617 }
618
__dfso_dfsan_get_label(long data,dfsan_label data_label,dfsan_label * ret_label,dfsan_origin data_origin,dfsan_origin * ret_origin)619 extern "C" SANITIZER_INTERFACE_ATTRIBUTE dfsan_label __dfso_dfsan_get_label(
620 long data, dfsan_label data_label, dfsan_label *ret_label,
621 dfsan_origin data_origin, dfsan_origin *ret_origin) {
622 *ret_label = 0;
623 *ret_origin = 0;
624 return data_label;
625 }
626
627 // This function is used if dfsan_get_origin is called when origin tracking is
628 // off.
__dfsw_dfsan_get_origin(long data,dfsan_label data_label,dfsan_label * ret_label)629 extern "C" SANITIZER_INTERFACE_ATTRIBUTE dfsan_origin __dfsw_dfsan_get_origin(
630 long data, dfsan_label data_label, dfsan_label *ret_label) {
631 *ret_label = 0;
632 return 0;
633 }
634
__dfso_dfsan_get_origin(long data,dfsan_label data_label,dfsan_label * ret_label,dfsan_origin data_origin,dfsan_origin * ret_origin)635 extern "C" SANITIZER_INTERFACE_ATTRIBUTE dfsan_origin __dfso_dfsan_get_origin(
636 long data, dfsan_label data_label, dfsan_label *ret_label,
637 dfsan_origin data_origin, dfsan_origin *ret_origin) {
638 *ret_label = 0;
639 *ret_origin = 0;
640 return data_origin;
641 }
642
643 SANITIZER_INTERFACE_ATTRIBUTE dfsan_label
dfsan_read_label(const void * addr,uptr size)644 dfsan_read_label(const void *addr, uptr size) {
645 if (size == 0)
646 return 0;
647 return __dfsan_union_load(shadow_for(addr), size);
648 }
649
650 SANITIZER_INTERFACE_ATTRIBUTE dfsan_origin
dfsan_read_origin_of_first_taint(const void * addr,uptr size)651 dfsan_read_origin_of_first_taint(const void *addr, uptr size) {
652 return GetOriginIfTainted((uptr)addr, size);
653 }
654
dfsan_set_label_origin(dfsan_label label,dfsan_origin origin,void * addr,uptr size)655 SANITIZER_INTERFACE_ATTRIBUTE void dfsan_set_label_origin(dfsan_label label,
656 dfsan_origin origin,
657 void *addr,
658 uptr size) {
659 __dfsan_set_label(label, origin, addr, size);
660 }
661
662 extern "C" SANITIZER_INTERFACE_ATTRIBUTE int
dfsan_has_label(dfsan_label label,dfsan_label elem)663 dfsan_has_label(dfsan_label label, dfsan_label elem) {
664 return (label & elem) == elem;
665 }
666
667 namespace __dfsan {
668
669 typedef void (*dfsan_conditional_callback_t)(dfsan_label label,
670 dfsan_origin origin);
671 static dfsan_conditional_callback_t conditional_callback = nullptr;
672 static dfsan_label labels_in_signal_conditional = 0;
673
ConditionalCallback(dfsan_label label,dfsan_origin origin)674 static void ConditionalCallback(dfsan_label label, dfsan_origin origin) {
675 // Programs have many branches. For efficiency the conditional sink callback
676 // handler needs to ignore as many as possible as early as possible.
677 if (label == 0) {
678 return;
679 }
680 if (conditional_callback == nullptr) {
681 return;
682 }
683
684 // This initial ConditionalCallback handler needs to be in here in dfsan
685 // runtime (rather than being an entirely user implemented hook) so that it
686 // has access to dfsan thread information.
687 DFsanThread *t = GetCurrentThread();
688 // A callback operation which does useful work (like record the flow) will
689 // likely be too long executed in a signal handler.
690 if (t && t->InSignalHandler()) {
691 // Record set of labels used in signal handler for completeness.
692 labels_in_signal_conditional |= label;
693 return;
694 }
695
696 conditional_callback(label, origin);
697 }
698
699 } // namespace __dfsan
700
701 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void
__dfsan_conditional_callback_origin(dfsan_label label,dfsan_origin origin)702 __dfsan_conditional_callback_origin(dfsan_label label, dfsan_origin origin) {
703 __dfsan::ConditionalCallback(label, origin);
704 }
705
__dfsan_conditional_callback(dfsan_label label)706 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void __dfsan_conditional_callback(
707 dfsan_label label) {
708 __dfsan::ConditionalCallback(label, 0);
709 }
710
dfsan_set_conditional_callback(__dfsan::dfsan_conditional_callback_t callback)711 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void dfsan_set_conditional_callback(
712 __dfsan::dfsan_conditional_callback_t callback) {
713 __dfsan::conditional_callback = callback;
714 }
715
716 extern "C" SANITIZER_INTERFACE_ATTRIBUTE dfsan_label
dfsan_get_labels_in_signal_conditional()717 dfsan_get_labels_in_signal_conditional() {
718 return __dfsan::labels_in_signal_conditional;
719 }
720
721 namespace __dfsan {
722
723 typedef void (*dfsan_reaches_function_callback_t)(dfsan_label label,
724 dfsan_origin origin,
725 const char *file,
726 unsigned int line,
727 const char *function);
728 static dfsan_reaches_function_callback_t reaches_function_callback = nullptr;
729 static dfsan_label labels_in_signal_reaches_function = 0;
730
ReachesFunctionCallback(dfsan_label label,dfsan_origin origin,const char * file,unsigned int line,const char * function)731 static void ReachesFunctionCallback(dfsan_label label, dfsan_origin origin,
732 const char *file, unsigned int line,
733 const char *function) {
734 if (label == 0) {
735 return;
736 }
737 if (reaches_function_callback == nullptr) {
738 return;
739 }
740
741 // This initial ReachesFunctionCallback handler needs to be in here in dfsan
742 // runtime (rather than being an entirely user implemented hook) so that it
743 // has access to dfsan thread information.
744 DFsanThread *t = GetCurrentThread();
745 // A callback operation which does useful work (like record the flow) will
746 // likely be too long executed in a signal handler.
747 if (t && t->InSignalHandler()) {
748 // Record set of labels used in signal handler for completeness.
749 labels_in_signal_reaches_function |= label;
750 return;
751 }
752
753 reaches_function_callback(label, origin, file, line, function);
754 }
755
756 } // namespace __dfsan
757
758 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void
__dfsan_reaches_function_callback_origin(dfsan_label label,dfsan_origin origin,const char * file,unsigned int line,const char * function)759 __dfsan_reaches_function_callback_origin(dfsan_label label, dfsan_origin origin,
760 const char *file, unsigned int line,
761 const char *function) {
762 __dfsan::ReachesFunctionCallback(label, origin, file, line, function);
763 }
764
765 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void
__dfsan_reaches_function_callback(dfsan_label label,const char * file,unsigned int line,const char * function)766 __dfsan_reaches_function_callback(dfsan_label label, const char *file,
767 unsigned int line, const char *function) {
768 __dfsan::ReachesFunctionCallback(label, 0, file, line, function);
769 }
770
771 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void
dfsan_set_reaches_function_callback(__dfsan::dfsan_reaches_function_callback_t callback)772 dfsan_set_reaches_function_callback(
773 __dfsan::dfsan_reaches_function_callback_t callback) {
774 __dfsan::reaches_function_callback = callback;
775 }
776
777 extern "C" SANITIZER_INTERFACE_ATTRIBUTE dfsan_label
dfsan_get_labels_in_signal_reaches_function()778 dfsan_get_labels_in_signal_reaches_function() {
779 return __dfsan::labels_in_signal_reaches_function;
780 }
781
782 class Decorator : public __sanitizer::SanitizerCommonDecorator {
783 public:
Decorator()784 Decorator() : SanitizerCommonDecorator() {}
Origin() const785 const char *Origin() const { return Magenta(); }
786 };
787
788 namespace {
789
PrintNoOriginTrackingWarning()790 void PrintNoOriginTrackingWarning() {
791 Decorator d;
792 Printf(
793 " %sDFSan: origin tracking is not enabled. Did you specify the "
794 "-dfsan-track-origins=1 option?%s\n",
795 d.Warning(), d.Default());
796 }
797
PrintNoTaintWarning(const void * address)798 void PrintNoTaintWarning(const void *address) {
799 Decorator d;
800 Printf(" %sDFSan: no tainted value at %x%s\n", d.Warning(), address,
801 d.Default());
802 }
803
PrintInvalidOriginWarning(dfsan_label label,const void * address)804 void PrintInvalidOriginWarning(dfsan_label label, const void *address) {
805 Decorator d;
806 Printf(
807 " %sTaint value 0x%x (at %p) has invalid origin tracking. This can "
808 "be a DFSan bug.%s\n",
809 d.Warning(), label, address, d.Default());
810 }
811
PrintInvalidOriginIdWarning(dfsan_origin origin)812 void PrintInvalidOriginIdWarning(dfsan_origin origin) {
813 Decorator d;
814 Printf(
815 " %sOrigin Id %d has invalid origin tracking. This can "
816 "be a DFSan bug.%s\n",
817 d.Warning(), origin, d.Default());
818 }
819
PrintOriginTraceFramesToStr(Origin o,InternalScopedString * out)820 bool PrintOriginTraceFramesToStr(Origin o, InternalScopedString *out) {
821 Decorator d;
822 bool found = false;
823
824 while (o.isChainedOrigin()) {
825 StackTrace stack;
826 dfsan_origin origin_id = o.raw_id();
827 o = o.getNextChainedOrigin(&stack);
828 if (o.isChainedOrigin())
829 out->append(
830 " %sOrigin value: 0x%x, Taint value was stored to memory at%s\n",
831 d.Origin(), origin_id, d.Default());
832 else
833 out->append(" %sOrigin value: 0x%x, Taint value was created at%s\n",
834 d.Origin(), origin_id, d.Default());
835
836 // Includes a trailing newline, so no need to add it again.
837 stack.PrintTo(out);
838 found = true;
839 }
840
841 return found;
842 }
843
PrintOriginTraceToStr(const void * addr,const char * description,InternalScopedString * out)844 bool PrintOriginTraceToStr(const void *addr, const char *description,
845 InternalScopedString *out) {
846 CHECK(out);
847 CHECK(dfsan_get_track_origins());
848 Decorator d;
849
850 const dfsan_label label = *__dfsan::shadow_for(addr);
851 CHECK(label);
852
853 const dfsan_origin origin = *__dfsan::origin_for(addr);
854
855 out->append(" %sTaint value 0x%x (at %p) origin tracking (%s)%s\n",
856 d.Origin(), label, addr, description ? description : "",
857 d.Default());
858
859 Origin o = Origin::FromRawId(origin);
860 return PrintOriginTraceFramesToStr(o, out);
861 }
862
863 } // namespace
864
dfsan_print_origin_trace(const void * addr,const char * description)865 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void dfsan_print_origin_trace(
866 const void *addr, const char *description) {
867 if (!dfsan_get_track_origins()) {
868 PrintNoOriginTrackingWarning();
869 return;
870 }
871
872 const dfsan_label label = *__dfsan::shadow_for(addr);
873 if (!label) {
874 PrintNoTaintWarning(addr);
875 return;
876 }
877
878 InternalScopedString trace;
879 bool success = PrintOriginTraceToStr(addr, description, &trace);
880
881 if (trace.length())
882 Printf("%s", trace.data());
883
884 if (!success)
885 PrintInvalidOriginWarning(label, addr);
886 }
887
888 extern "C" SANITIZER_INTERFACE_ATTRIBUTE uptr
dfsan_sprint_origin_trace(const void * addr,const char * description,char * out_buf,uptr out_buf_size)889 dfsan_sprint_origin_trace(const void *addr, const char *description,
890 char *out_buf, uptr out_buf_size) {
891 CHECK(out_buf);
892
893 if (!dfsan_get_track_origins()) {
894 PrintNoOriginTrackingWarning();
895 return 0;
896 }
897
898 const dfsan_label label = *__dfsan::shadow_for(addr);
899 if (!label) {
900 PrintNoTaintWarning(addr);
901 return 0;
902 }
903
904 InternalScopedString trace;
905 bool success = PrintOriginTraceToStr(addr, description, &trace);
906
907 if (!success) {
908 PrintInvalidOriginWarning(label, addr);
909 return 0;
910 }
911
912 if (out_buf_size) {
913 internal_strncpy(out_buf, trace.data(), out_buf_size - 1);
914 out_buf[out_buf_size - 1] = '\0';
915 }
916
917 return trace.length();
918 }
919
dfsan_print_origin_id_trace(dfsan_origin origin)920 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void dfsan_print_origin_id_trace(
921 dfsan_origin origin) {
922 if (!dfsan_get_track_origins()) {
923 PrintNoOriginTrackingWarning();
924 return;
925 }
926 Origin o = Origin::FromRawId(origin);
927
928 InternalScopedString trace;
929 bool success = PrintOriginTraceFramesToStr(o, &trace);
930
931 if (trace.length())
932 Printf("%s", trace.data());
933
934 if (!success)
935 PrintInvalidOriginIdWarning(origin);
936 }
937
dfsan_sprint_origin_id_trace(dfsan_origin origin,char * out_buf,uptr out_buf_size)938 extern "C" SANITIZER_INTERFACE_ATTRIBUTE uptr dfsan_sprint_origin_id_trace(
939 dfsan_origin origin, char *out_buf, uptr out_buf_size) {
940 CHECK(out_buf);
941
942 if (!dfsan_get_track_origins()) {
943 PrintNoOriginTrackingWarning();
944 return 0;
945 }
946 Origin o = Origin::FromRawId(origin);
947
948 InternalScopedString trace;
949 bool success = PrintOriginTraceFramesToStr(o, &trace);
950
951 if (!success) {
952 PrintInvalidOriginIdWarning(origin);
953 return 0;
954 }
955
956 if (out_buf_size) {
957 internal_strncpy(out_buf, trace.data(), out_buf_size - 1);
958 out_buf[out_buf_size - 1] = '\0';
959 }
960
961 return trace.length();
962 }
963
964 extern "C" SANITIZER_INTERFACE_ATTRIBUTE dfsan_origin
dfsan_get_init_origin(const void * addr)965 dfsan_get_init_origin(const void *addr) {
966 if (!dfsan_get_track_origins())
967 return 0;
968
969 const dfsan_label label = *__dfsan::shadow_for(addr);
970 if (!label)
971 return 0;
972
973 const dfsan_origin origin = *__dfsan::origin_for(addr);
974
975 Origin o = Origin::FromRawId(origin);
976 dfsan_origin origin_id = o.raw_id();
977 while (o.isChainedOrigin()) {
978 StackTrace stack;
979 origin_id = o.raw_id();
980 o = o.getNextChainedOrigin(&stack);
981 }
982 return origin_id;
983 }
984
UnwindImpl(uptr pc,uptr bp,void * context,bool request_fast,u32 max_depth)985 void __sanitizer::BufferedStackTrace::UnwindImpl(uptr pc, uptr bp,
986 void *context,
987 bool request_fast,
988 u32 max_depth) {
989 using namespace __dfsan;
990 DFsanThread *t = GetCurrentThread();
991 if (!t || !StackTrace::WillUseFastUnwind(request_fast)) {
992 return Unwind(max_depth, pc, bp, context, 0, 0, false);
993 }
994 Unwind(max_depth, pc, bp, nullptr, t->stack_top(), t->stack_bottom(), true);
995 }
996
__sanitizer_print_stack_trace()997 extern "C" SANITIZER_INTERFACE_ATTRIBUTE void __sanitizer_print_stack_trace() {
998 GET_CALLER_PC_BP;
999 GET_STORE_STACK_TRACE_PC_BP(pc, bp);
1000 stack.Print();
1001 }
1002
1003 extern "C" SANITIZER_INTERFACE_ATTRIBUTE uptr
dfsan_sprint_stack_trace(char * out_buf,uptr out_buf_size)1004 dfsan_sprint_stack_trace(char *out_buf, uptr out_buf_size) {
1005 CHECK(out_buf);
1006 GET_CALLER_PC_BP;
1007 GET_STORE_STACK_TRACE_PC_BP(pc, bp);
1008 return stack.PrintTo(out_buf, out_buf_size);
1009 }
1010
SetDefaults()1011 void Flags::SetDefaults() {
1012 #define DFSAN_FLAG(Type, Name, DefaultValue, Description) Name = DefaultValue;
1013 #include "dfsan_flags.inc"
1014 #undef DFSAN_FLAG
1015 }
1016
RegisterDfsanFlags(FlagParser * parser,Flags * f)1017 static void RegisterDfsanFlags(FlagParser *parser, Flags *f) {
1018 #define DFSAN_FLAG(Type, Name, DefaultValue, Description) \
1019 RegisterFlag(parser, #Name, Description, &f->Name);
1020 #include "dfsan_flags.inc"
1021 #undef DFSAN_FLAG
1022 }
1023
InitializeFlags()1024 static void InitializeFlags() {
1025 SetCommonFlagsDefaults();
1026 {
1027 CommonFlags cf;
1028 cf.CopyFrom(*common_flags());
1029 cf.intercept_tls_get_addr = true;
1030 OverrideCommonFlags(cf);
1031 }
1032 flags().SetDefaults();
1033
1034 FlagParser parser;
1035 RegisterCommonFlags(&parser);
1036 RegisterDfsanFlags(&parser, &flags());
1037 parser.ParseStringFromEnv("DFSAN_OPTIONS");
1038 InitializeCommonFlags();
1039 if (Verbosity()) ReportUnrecognizedFlags();
1040 if (common_flags()->help) parser.PrintFlagDescriptions();
1041 }
1042
1043 SANITIZER_INTERFACE_ATTRIBUTE
dfsan_clear_arg_tls(uptr offset,uptr size)1044 void dfsan_clear_arg_tls(uptr offset, uptr size) {
1045 internal_memset((void *)((uptr)__dfsan_arg_tls + offset), 0, size);
1046 }
1047
1048 SANITIZER_INTERFACE_ATTRIBUTE
dfsan_clear_thread_local_state()1049 void dfsan_clear_thread_local_state() {
1050 internal_memset(__dfsan_arg_tls, 0, sizeof(__dfsan_arg_tls));
1051 internal_memset(__dfsan_retval_tls, 0, sizeof(__dfsan_retval_tls));
1052
1053 if (dfsan_get_track_origins()) {
1054 internal_memset(__dfsan_arg_origin_tls, 0, sizeof(__dfsan_arg_origin_tls));
1055 internal_memset(&__dfsan_retval_origin_tls, 0,
1056 sizeof(__dfsan_retval_origin_tls));
1057 }
1058 }
1059
1060 SANITIZER_INTERFACE_ATTRIBUTE
dfsan_set_arg_tls(uptr offset,dfsan_label label)1061 void dfsan_set_arg_tls(uptr offset, dfsan_label label) {
1062 // 2x to match ShadowTLSAlignment.
1063 // ShadowTLSAlignment should probably be changed.
1064 // TODO: Consider reducing ShadowTLSAlignment to 1.
1065 // Aligning to 2 bytes is probably a remnant of fast16 mode.
1066 ((dfsan_label *)__dfsan_arg_tls)[offset * 2] = label;
1067 }
1068
1069 SANITIZER_INTERFACE_ATTRIBUTE
dfsan_set_arg_origin_tls(uptr offset,dfsan_origin o)1070 void dfsan_set_arg_origin_tls(uptr offset, dfsan_origin o) {
1071 __dfsan_arg_origin_tls[offset] = o;
1072 }
1073
dfsan_flush()1074 extern "C" void dfsan_flush() {
1075 const uptr maxVirtualAddress = GetMaxUserVirtualAddress();
1076 for (unsigned i = 0; i < kMemoryLayoutSize; ++i) {
1077 uptr start = kMemoryLayout[i].start;
1078 uptr end = kMemoryLayout[i].end;
1079 uptr size = end - start;
1080 MappingDesc::Type type = kMemoryLayout[i].type;
1081
1082 if (type != MappingDesc::SHADOW && type != MappingDesc::ORIGIN)
1083 continue;
1084
1085 // Check if the segment should be mapped based on platform constraints.
1086 if (start >= maxVirtualAddress)
1087 continue;
1088
1089 if (!MmapFixedSuperNoReserve(start, size, kMemoryLayout[i].name)) {
1090 Printf("FATAL: DataFlowSanitizer: failed to clear memory region\n");
1091 Die();
1092 }
1093 }
1094 __dfsan::labels_in_signal_conditional = 0;
1095 __dfsan::labels_in_signal_reaches_function = 0;
1096 }
1097
1098 // TODO: CheckMemoryLayoutSanity is based on msan.
1099 // Consider refactoring these into a shared implementation.
CheckMemoryLayoutSanity()1100 static void CheckMemoryLayoutSanity() {
1101 uptr prev_end = 0;
1102 for (unsigned i = 0; i < kMemoryLayoutSize; ++i) {
1103 uptr start = kMemoryLayout[i].start;
1104 uptr end = kMemoryLayout[i].end;
1105 MappingDesc::Type type = kMemoryLayout[i].type;
1106 CHECK_LT(start, end);
1107 CHECK_EQ(prev_end, start);
1108 CHECK(addr_is_type(start, type));
1109 CHECK(addr_is_type((start + end) / 2, type));
1110 CHECK(addr_is_type(end - 1, type));
1111 if (type == MappingDesc::APP) {
1112 uptr addr = start;
1113 CHECK(MEM_IS_SHADOW(MEM_TO_SHADOW(addr)));
1114 CHECK(MEM_IS_ORIGIN(MEM_TO_ORIGIN(addr)));
1115 CHECK_EQ(MEM_TO_ORIGIN(addr), SHADOW_TO_ORIGIN(MEM_TO_SHADOW(addr)));
1116
1117 addr = (start + end) / 2;
1118 CHECK(MEM_IS_SHADOW(MEM_TO_SHADOW(addr)));
1119 CHECK(MEM_IS_ORIGIN(MEM_TO_ORIGIN(addr)));
1120 CHECK_EQ(MEM_TO_ORIGIN(addr), SHADOW_TO_ORIGIN(MEM_TO_SHADOW(addr)));
1121
1122 addr = end - 1;
1123 CHECK(MEM_IS_SHADOW(MEM_TO_SHADOW(addr)));
1124 CHECK(MEM_IS_ORIGIN(MEM_TO_ORIGIN(addr)));
1125 CHECK_EQ(MEM_TO_ORIGIN(addr), SHADOW_TO_ORIGIN(MEM_TO_SHADOW(addr)));
1126 }
1127 prev_end = end;
1128 }
1129 }
1130
1131 // TODO: CheckMemoryRangeAvailability is based on msan.
1132 // Consider refactoring these into a shared implementation.
CheckMemoryRangeAvailability(uptr beg,uptr size)1133 static bool CheckMemoryRangeAvailability(uptr beg, uptr size) {
1134 if (size > 0) {
1135 uptr end = beg + size - 1;
1136 if (!MemoryRangeIsAvailable(beg, end)) {
1137 Printf("FATAL: Memory range %p - %p is not available.\n", beg, end);
1138 return false;
1139 }
1140 }
1141 return true;
1142 }
1143
1144 // TODO: ProtectMemoryRange is based on msan.
1145 // Consider refactoring these into a shared implementation.
ProtectMemoryRange(uptr beg,uptr size,const char * name)1146 static bool ProtectMemoryRange(uptr beg, uptr size, const char *name) {
1147 if (size > 0) {
1148 void *addr = MmapFixedNoAccess(beg, size, name);
1149 if (beg == 0 && addr) {
1150 // Depending on the kernel configuration, we may not be able to protect
1151 // the page at address zero.
1152 uptr gap = 16 * GetPageSizeCached();
1153 beg += gap;
1154 size -= gap;
1155 addr = MmapFixedNoAccess(beg, size, name);
1156 }
1157 if ((uptr)addr != beg) {
1158 uptr end = beg + size - 1;
1159 Printf("FATAL: Cannot protect memory range %p - %p (%s).\n", beg, end,
1160 name);
1161 return false;
1162 }
1163 }
1164 return true;
1165 }
1166
1167 // TODO: InitShadow is based on msan.
1168 // Consider refactoring these into a shared implementation.
InitShadow(bool init_origins)1169 bool InitShadow(bool init_origins) {
1170 // Let user know mapping parameters first.
1171 VPrintf(1, "dfsan_init %p\n", (void *)&__dfsan::dfsan_init);
1172 for (unsigned i = 0; i < kMemoryLayoutSize; ++i)
1173 VPrintf(1, "%s: %zx - %zx\n", kMemoryLayout[i].name, kMemoryLayout[i].start,
1174 kMemoryLayout[i].end - 1);
1175
1176 CheckMemoryLayoutSanity();
1177
1178 if (!MEM_IS_APP(&__dfsan::dfsan_init)) {
1179 Printf("FATAL: Code %p is out of application range. Non-PIE build?\n",
1180 (uptr)&__dfsan::dfsan_init);
1181 return false;
1182 }
1183
1184 const uptr maxVirtualAddress = GetMaxUserVirtualAddress();
1185
1186 for (unsigned i = 0; i < kMemoryLayoutSize; ++i) {
1187 uptr start = kMemoryLayout[i].start;
1188 uptr end = kMemoryLayout[i].end;
1189 uptr size = end - start;
1190 MappingDesc::Type type = kMemoryLayout[i].type;
1191
1192 // Check if the segment should be mapped based on platform constraints.
1193 if (start >= maxVirtualAddress)
1194 continue;
1195
1196 bool map = type == MappingDesc::SHADOW ||
1197 (init_origins && type == MappingDesc::ORIGIN);
1198 bool protect = type == MappingDesc::INVALID ||
1199 (!init_origins && type == MappingDesc::ORIGIN);
1200 CHECK(!(map && protect));
1201 if (!map && !protect)
1202 CHECK(type == MappingDesc::APP);
1203 if (map) {
1204 if (!CheckMemoryRangeAvailability(start, size))
1205 return false;
1206 if (!MmapFixedSuperNoReserve(start, size, kMemoryLayout[i].name))
1207 return false;
1208 if (common_flags()->use_madv_dontdump)
1209 DontDumpShadowMemory(start, size);
1210 }
1211 if (protect) {
1212 if (!CheckMemoryRangeAvailability(start, size))
1213 return false;
1214 if (!ProtectMemoryRange(start, size, kMemoryLayout[i].name))
1215 return false;
1216 }
1217 }
1218
1219 return true;
1220 }
1221
DFsanInit(int argc,char ** argv,char ** envp)1222 static void DFsanInit(int argc, char **argv, char **envp) {
1223 CHECK(!dfsan_init_is_running);
1224 if (dfsan_inited)
1225 return;
1226 dfsan_init_is_running = true;
1227 SanitizerToolName = "DataflowSanitizer";
1228
1229 AvoidCVE_2016_2143();
1230
1231 InitializeFlags();
1232
1233 CheckASLR();
1234
1235 InitShadow(dfsan_get_track_origins());
1236
1237 initialize_interceptors();
1238
1239 // Set up threads
1240 DFsanTSDInit(DFsanTSDDtor);
1241
1242 dfsan_allocator_init();
1243
1244 DFsanThread *main_thread = DFsanThread::Create(nullptr, nullptr);
1245 SetCurrentThread(main_thread);
1246 main_thread->Init();
1247
1248 dfsan_init_is_running = false;
1249 dfsan_inited = true;
1250 }
1251
1252 namespace __dfsan {
1253
dfsan_init()1254 void dfsan_init() { DFsanInit(0, nullptr, nullptr); }
1255
1256 } // namespace __dfsan
1257
1258 #if SANITIZER_CAN_USE_PREINIT_ARRAY
1259 __attribute__((section(".preinit_array"),
1260 used)) static void (*dfsan_init_ptr)(int, char **,
1261 char **) = DFsanInit;
1262 #endif
1263