1 //===-- tsan_rtl_report.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 ThreadSanitizer (TSan), a race detector. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "sanitizer_common/sanitizer_libc.h" 14 #include "sanitizer_common/sanitizer_placement_new.h" 15 #include "sanitizer_common/sanitizer_stackdepot.h" 16 #include "sanitizer_common/sanitizer_common.h" 17 #include "sanitizer_common/sanitizer_stacktrace.h" 18 #include "tsan_platform.h" 19 #include "tsan_rtl.h" 20 #include "tsan_suppressions.h" 21 #include "tsan_symbolize.h" 22 #include "tsan_report.h" 23 #include "tsan_sync.h" 24 #include "tsan_mman.h" 25 #include "tsan_flags.h" 26 #include "tsan_fd.h" 27 28 namespace __tsan { 29 30 using namespace __sanitizer; 31 32 static ReportStack *SymbolizeStack(StackTrace trace); 33 34 // Can be overriden by an application/test to intercept reports. 35 #ifdef TSAN_EXTERNAL_HOOKS 36 bool OnReport(const ReportDesc *rep, bool suppressed); 37 #else 38 SANITIZER_WEAK_CXX_DEFAULT_IMPL 39 bool OnReport(const ReportDesc *rep, bool suppressed) { 40 (void)rep; 41 return suppressed; 42 } 43 #endif 44 45 SANITIZER_WEAK_DEFAULT_IMPL 46 void __tsan_on_report(const ReportDesc *rep) { 47 (void)rep; 48 } 49 50 static void StackStripMain(SymbolizedStack *frames) { 51 SymbolizedStack *last_frame = nullptr; 52 SymbolizedStack *last_frame2 = nullptr; 53 for (SymbolizedStack *cur = frames; cur; cur = cur->next) { 54 last_frame2 = last_frame; 55 last_frame = cur; 56 } 57 58 if (last_frame2 == 0) 59 return; 60 #if !SANITIZER_GO 61 const char *last = last_frame->info.function; 62 const char *last2 = last_frame2->info.function; 63 // Strip frame above 'main' 64 if (last2 && 0 == internal_strcmp(last2, "main")) { 65 last_frame->ClearAll(); 66 last_frame2->next = nullptr; 67 // Strip our internal thread start routine. 68 } else if (last && 0 == internal_strcmp(last, "__tsan_thread_start_func")) { 69 last_frame->ClearAll(); 70 last_frame2->next = nullptr; 71 // Strip global ctors init, .preinit_array and main caller. 72 } else if (last && (0 == internal_strcmp(last, "__do_global_ctors_aux") || 73 0 == internal_strcmp(last, "__libc_csu_init") || 74 0 == internal_strcmp(last, "__libc_start_main"))) { 75 last_frame->ClearAll(); 76 last_frame2->next = nullptr; 77 // If both are 0, then we probably just failed to symbolize. 78 } else if (last || last2) { 79 // Ensure that we recovered stack completely. Trimmed stack 80 // can actually happen if we do not instrument some code, 81 // so it's only a debug print. However we must try hard to not miss it 82 // due to our fault. 83 DPrintf("Bottom stack frame is missed\n"); 84 } 85 #else 86 // The last frame always point into runtime (gosched0, goexit0, runtime.main). 87 last_frame->ClearAll(); 88 last_frame2->next = nullptr; 89 #endif 90 } 91 92 ReportStack *SymbolizeStackId(u32 stack_id) { 93 if (stack_id == 0) 94 return 0; 95 StackTrace stack = StackDepotGet(stack_id); 96 if (stack.trace == nullptr) 97 return nullptr; 98 return SymbolizeStack(stack); 99 } 100 101 static ReportStack *SymbolizeStack(StackTrace trace) { 102 if (trace.size == 0) 103 return 0; 104 SymbolizedStack *top = nullptr; 105 for (uptr si = 0; si < trace.size; si++) { 106 const uptr pc = trace.trace[si]; 107 uptr pc1 = pc; 108 // We obtain the return address, but we're interested in the previous 109 // instruction. 110 if ((pc & kExternalPCBit) == 0) 111 pc1 = StackTrace::GetPreviousInstructionPc(pc); 112 SymbolizedStack *ent = SymbolizeCode(pc1); 113 CHECK_NE(ent, 0); 114 SymbolizedStack *last = ent; 115 while (last->next) { 116 last->info.address = pc; // restore original pc for report 117 last = last->next; 118 } 119 last->info.address = pc; // restore original pc for report 120 last->next = top; 121 top = ent; 122 } 123 StackStripMain(top); 124 125 auto *stack = New<ReportStack>(); 126 stack->frames = top; 127 return stack; 128 } 129 130 bool ShouldReport(ThreadState *thr, ReportType typ) { 131 // We set thr->suppress_reports in the fork context. 132 // Taking any locking in the fork context can lead to deadlocks. 133 // If any locks are already taken, it's too late to do this check. 134 CheckedMutex::CheckNoLocks(); 135 // For the same reason check we didn't lock thread_registry yet. 136 if (SANITIZER_DEBUG) 137 ThreadRegistryLock l(&ctx->thread_registry); 138 if (!flags()->report_bugs || thr->suppress_reports) 139 return false; 140 switch (typ) { 141 case ReportTypeSignalUnsafe: 142 return flags()->report_signal_unsafe; 143 case ReportTypeThreadLeak: 144 #if !SANITIZER_GO 145 // It's impossible to join phantom threads 146 // in the child after fork. 147 if (ctx->after_multithreaded_fork) 148 return false; 149 #endif 150 return flags()->report_thread_leaks; 151 case ReportTypeMutexDestroyLocked: 152 return flags()->report_destroy_locked; 153 default: 154 return true; 155 } 156 } 157 158 ScopedReportBase::ScopedReportBase(ReportType typ, uptr tag) { 159 ctx->thread_registry.CheckLocked(); 160 rep_ = New<ReportDesc>(); 161 rep_->typ = typ; 162 rep_->tag = tag; 163 ctx->report_mtx.Lock(); 164 } 165 166 ScopedReportBase::~ScopedReportBase() { 167 ctx->report_mtx.Unlock(); 168 DestroyAndFree(rep_); 169 } 170 171 void ScopedReportBase::AddStack(StackTrace stack, bool suppressable) { 172 ReportStack **rs = rep_->stacks.PushBack(); 173 *rs = SymbolizeStack(stack); 174 (*rs)->suppressable = suppressable; 175 } 176 177 void ScopedReportBase::AddMemoryAccess(uptr addr, uptr external_tag, Shadow s, 178 Tid tid, StackTrace stack, 179 const MutexSet *mset) { 180 uptr addr0, size; 181 AccessType typ; 182 s.GetAccess(&addr0, &size, &typ); 183 auto *mop = New<ReportMop>(); 184 rep_->mops.PushBack(mop); 185 mop->tid = tid; 186 mop->addr = addr + addr0; 187 mop->size = size; 188 mop->write = !(typ & kAccessRead); 189 mop->atomic = typ & kAccessAtomic; 190 mop->stack = SymbolizeStack(stack); 191 mop->external_tag = external_tag; 192 if (mop->stack) 193 mop->stack->suppressable = true; 194 for (uptr i = 0; i < mset->Size(); i++) { 195 MutexSet::Desc d = mset->Get(i); 196 int id = this->AddMutex(d.addr, d.stack_id); 197 ReportMopMutex mtx = {id, d.write}; 198 mop->mset.PushBack(mtx); 199 } 200 } 201 202 void ScopedReportBase::AddUniqueTid(Tid unique_tid) { 203 rep_->unique_tids.PushBack(unique_tid); 204 } 205 206 void ScopedReportBase::AddThread(const ThreadContext *tctx, bool suppressable) { 207 for (uptr i = 0; i < rep_->threads.Size(); i++) { 208 if ((u32)rep_->threads[i]->id == tctx->tid) 209 return; 210 } 211 auto *rt = New<ReportThread>(); 212 rep_->threads.PushBack(rt); 213 rt->id = tctx->tid; 214 rt->os_id = tctx->os_id; 215 rt->running = (tctx->status == ThreadStatusRunning); 216 rt->name = internal_strdup(tctx->name); 217 rt->parent_tid = tctx->parent_tid; 218 rt->thread_type = tctx->thread_type; 219 rt->stack = 0; 220 rt->stack = SymbolizeStackId(tctx->creation_stack_id); 221 if (rt->stack) 222 rt->stack->suppressable = suppressable; 223 } 224 225 #if !SANITIZER_GO 226 static ThreadContext *FindThreadByTidLocked(Tid tid) { 227 ctx->thread_registry.CheckLocked(); 228 return static_cast<ThreadContext *>( 229 ctx->thread_registry.GetThreadLocked(tid)); 230 } 231 232 static bool IsInStackOrTls(ThreadContextBase *tctx_base, void *arg) { 233 uptr addr = (uptr)arg; 234 ThreadContext *tctx = static_cast<ThreadContext*>(tctx_base); 235 if (tctx->status != ThreadStatusRunning) 236 return false; 237 ThreadState *thr = tctx->thr; 238 CHECK(thr); 239 return ((addr >= thr->stk_addr && addr < thr->stk_addr + thr->stk_size) || 240 (addr >= thr->tls_addr && addr < thr->tls_addr + thr->tls_size)); 241 } 242 243 ThreadContext *IsThreadStackOrTls(uptr addr, bool *is_stack) { 244 ctx->thread_registry.CheckLocked(); 245 ThreadContext *tctx = 246 static_cast<ThreadContext *>(ctx->thread_registry.FindThreadContextLocked( 247 IsInStackOrTls, (void *)addr)); 248 if (!tctx) 249 return 0; 250 ThreadState *thr = tctx->thr; 251 CHECK(thr); 252 *is_stack = (addr >= thr->stk_addr && addr < thr->stk_addr + thr->stk_size); 253 return tctx; 254 } 255 #endif 256 257 void ScopedReportBase::AddThread(Tid tid, bool suppressable) { 258 #if !SANITIZER_GO 259 if (const ThreadContext *tctx = FindThreadByTidLocked(tid)) 260 AddThread(tctx, suppressable); 261 #endif 262 } 263 264 int ScopedReportBase::AddMutex(uptr addr, StackID creation_stack_id) { 265 for (uptr i = 0; i < rep_->mutexes.Size(); i++) { 266 if (rep_->mutexes[i]->addr == addr) 267 return rep_->mutexes[i]->id; 268 } 269 auto *rm = New<ReportMutex>(); 270 rep_->mutexes.PushBack(rm); 271 rm->id = rep_->mutexes.Size() - 1; 272 rm->addr = addr; 273 rm->stack = SymbolizeStackId(creation_stack_id); 274 return rm->id; 275 } 276 277 void ScopedReportBase::AddLocation(uptr addr, uptr size) { 278 if (addr == 0) 279 return; 280 #if !SANITIZER_GO 281 int fd = -1; 282 Tid creat_tid = kInvalidTid; 283 StackID creat_stack = 0; 284 if (FdLocation(addr, &fd, &creat_tid, &creat_stack)) { 285 auto *loc = New<ReportLocation>(); 286 loc->type = ReportLocationFD; 287 loc->fd = fd; 288 loc->tid = creat_tid; 289 loc->stack = SymbolizeStackId(creat_stack); 290 rep_->locs.PushBack(loc); 291 ThreadContext *tctx = FindThreadByTidLocked(creat_tid); 292 if (tctx) 293 AddThread(tctx); 294 return; 295 } 296 MBlock *b = 0; 297 uptr block_begin = 0; 298 Allocator *a = allocator(); 299 if (a->PointerIsMine((void*)addr)) { 300 block_begin = (uptr)a->GetBlockBegin((void *)addr); 301 if (block_begin) 302 b = ctx->metamap.GetBlock(block_begin); 303 } 304 if (!b) 305 b = JavaHeapBlock(addr, &block_begin); 306 if (b != 0) { 307 auto *loc = New<ReportLocation>(); 308 loc->type = ReportLocationHeap; 309 loc->heap_chunk_start = block_begin; 310 loc->heap_chunk_size = b->siz; 311 loc->external_tag = b->tag; 312 loc->tid = b->tid; 313 loc->stack = SymbolizeStackId(b->stk); 314 rep_->locs.PushBack(loc); 315 if (ThreadContext *tctx = FindThreadByTidLocked(b->tid)) 316 AddThread(tctx); 317 return; 318 } 319 bool is_stack = false; 320 if (ThreadContext *tctx = IsThreadStackOrTls(addr, &is_stack)) { 321 auto *loc = New<ReportLocation>(); 322 loc->type = is_stack ? ReportLocationStack : ReportLocationTLS; 323 loc->tid = tctx->tid; 324 rep_->locs.PushBack(loc); 325 AddThread(tctx); 326 } 327 #endif 328 if (ReportLocation *loc = SymbolizeData(addr)) { 329 loc->suppressable = true; 330 rep_->locs.PushBack(loc); 331 return; 332 } 333 } 334 335 #if !SANITIZER_GO 336 void ScopedReportBase::AddSleep(StackID stack_id) { 337 rep_->sleep = SymbolizeStackId(stack_id); 338 } 339 #endif 340 341 void ScopedReportBase::SetCount(int count) { rep_->count = count; } 342 343 const ReportDesc *ScopedReportBase::GetReport() const { return rep_; } 344 345 ScopedReport::ScopedReport(ReportType typ, uptr tag) 346 : ScopedReportBase(typ, tag) {} 347 348 ScopedReport::~ScopedReport() {} 349 350 // Replays the trace up to last_pos position in the last part 351 // or up to the provided epoch/sid (whichever is earlier) 352 // and calls the provided function f for each event. 353 template <typename Func> 354 void TraceReplay(Trace *trace, TracePart *last, Event *last_pos, Sid sid, 355 Epoch epoch, Func f) { 356 TracePart *part = trace->parts.Front(); 357 Sid ev_sid = kFreeSid; 358 Epoch ev_epoch = kEpochOver; 359 for (;;) { 360 DCHECK_EQ(part->trace, trace); 361 // Note: an event can't start in the last element. 362 // Since an event can take up to 2 elements, 363 // we ensure we have at least 2 before adding an event. 364 Event *end = &part->events[TracePart::kSize - 1]; 365 if (part == last) 366 end = last_pos; 367 f(kFreeSid, kEpochOver, nullptr); // notify about part start 368 for (Event *evp = &part->events[0]; evp < end; evp++) { 369 Event *evp0 = evp; 370 if (!evp->is_access && !evp->is_func) { 371 switch (evp->type) { 372 case EventType::kTime: { 373 auto *ev = reinterpret_cast<EventTime *>(evp); 374 ev_sid = static_cast<Sid>(ev->sid); 375 ev_epoch = static_cast<Epoch>(ev->epoch); 376 if (ev_sid == sid && ev_epoch > epoch) 377 return; 378 break; 379 } 380 case EventType::kAccessExt: 381 FALLTHROUGH; 382 case EventType::kAccessRange: 383 FALLTHROUGH; 384 case EventType::kLock: 385 FALLTHROUGH; 386 case EventType::kRLock: 387 // These take 2 Event elements. 388 evp++; 389 break; 390 case EventType::kUnlock: 391 // This takes 1 Event element. 392 break; 393 } 394 } 395 CHECK_NE(ev_sid, kFreeSid); 396 CHECK_NE(ev_epoch, kEpochOver); 397 f(ev_sid, ev_epoch, evp0); 398 } 399 if (part == last) 400 return; 401 part = trace->parts.Next(part); 402 CHECK(part); 403 } 404 CHECK(0); 405 } 406 407 static void RestoreStackMatch(VarSizeStackTrace *pstk, MutexSet *pmset, 408 Vector<uptr> *stack, MutexSet *mset, uptr pc, 409 bool *found) { 410 DPrintf2(" MATCHED\n"); 411 *pmset = *mset; 412 stack->PushBack(pc); 413 pstk->Init(&(*stack)[0], stack->Size()); 414 stack->PopBack(); 415 *found = true; 416 } 417 418 // Checks if addr1|size1 is fully contained in addr2|size2. 419 // We check for fully contained instread of just overlapping 420 // because a memory access is always traced once, but can be 421 // split into multiple accesses in the shadow. 422 static constexpr bool IsWithinAccess(uptr addr1, uptr size1, uptr addr2, 423 uptr size2) { 424 return addr1 >= addr2 && addr1 + size1 <= addr2 + size2; 425 } 426 427 // Replays the trace of slot sid up to the target event identified 428 // by epoch/addr/size/typ and restores and returns tid, stack, mutex set 429 // and tag for that event. If there are multiple such events, it returns 430 // the last one. Returns false if the event is not present in the trace. 431 bool RestoreStack(EventType type, Sid sid, Epoch epoch, uptr addr, uptr size, 432 AccessType typ, Tid *ptid, VarSizeStackTrace *pstk, 433 MutexSet *pmset, uptr *ptag) { 434 // This function restores stack trace and mutex set for the thread/epoch. 435 // It does so by getting stack trace and mutex set at the beginning of 436 // trace part, and then replaying the trace till the given epoch. 437 DPrintf2("RestoreStack: sid=%u@%u addr=0x%zx/%zu typ=%x\n", 438 static_cast<int>(sid), static_cast<int>(epoch), addr, size, 439 static_cast<int>(typ)); 440 ctx->slot_mtx.CheckLocked(); // needed to prevent trace part recycling 441 ctx->thread_registry.CheckLocked(); 442 TidSlot *slot = &ctx->slots[static_cast<uptr>(sid)]; 443 Tid tid = kInvalidTid; 444 // Need to lock the slot mutex as it protects slot->journal. 445 slot->mtx.CheckLocked(); 446 for (uptr i = 0; i < slot->journal.Size(); i++) { 447 DPrintf2(" journal: epoch=%d tid=%d\n", 448 static_cast<int>(slot->journal[i].epoch), slot->journal[i].tid); 449 if (i == slot->journal.Size() - 1 || slot->journal[i + 1].epoch > epoch) { 450 tid = slot->journal[i].tid; 451 break; 452 } 453 } 454 if (tid == kInvalidTid) 455 return false; 456 *ptid = tid; 457 ThreadContext *tctx = 458 static_cast<ThreadContext *>(ctx->thread_registry.GetThreadLocked(tid)); 459 Trace *trace = &tctx->trace; 460 // Snapshot first/last parts and the current position in the last part. 461 TracePart *first_part; 462 TracePart *last_part; 463 Event *last_pos; 464 { 465 Lock lock(&trace->mtx); 466 first_part = trace->parts.Front(); 467 if (!first_part) { 468 DPrintf2("RestoreStack: tid=%d trace=%p no trace parts\n", tid, trace); 469 return false; 470 } 471 last_part = trace->parts.Back(); 472 last_pos = trace->final_pos; 473 if (tctx->thr) 474 last_pos = (Event *)atomic_load_relaxed(&tctx->thr->trace_pos); 475 } 476 DynamicMutexSet mset; 477 Vector<uptr> stack; 478 uptr prev_pc = 0; 479 bool found = false; 480 bool is_read = typ & kAccessRead; 481 bool is_atomic = typ & kAccessAtomic; 482 bool is_free = typ & kAccessFree; 483 DPrintf2("RestoreStack: tid=%d parts=[%p-%p] last_pos=%p\n", tid, 484 trace->parts.Front(), last_part, last_pos); 485 TraceReplay( 486 trace, last_part, last_pos, sid, epoch, 487 [&](Sid ev_sid, Epoch ev_epoch, Event *evp) { 488 if (evp == nullptr) { 489 // Each trace part is self-consistent, so we reset state. 490 stack.Resize(0); 491 mset->Reset(); 492 prev_pc = 0; 493 return; 494 } 495 bool match = ev_sid == sid && ev_epoch == epoch; 496 if (evp->is_access) { 497 if (evp->is_func == 0 && evp->type == EventType::kAccessExt && 498 evp->_ == 0) // NopEvent 499 return; 500 auto *ev = reinterpret_cast<EventAccess *>(evp); 501 uptr ev_addr = RestoreAddr(ev->addr); 502 uptr ev_size = 1 << ev->size_log; 503 uptr ev_pc = 504 prev_pc + ev->pc_delta - (1 << (EventAccess::kPCBits - 1)); 505 prev_pc = ev_pc; 506 DPrintf2(" Access: pc=0x%zx addr=0x%zx/%zu type=%u/%u\n", ev_pc, 507 ev_addr, ev_size, ev->is_read, ev->is_atomic); 508 if (match && type == EventType::kAccessExt && 509 IsWithinAccess(addr, size, ev_addr, ev_size) && 510 is_read == ev->is_read && is_atomic == ev->is_atomic && !is_free) 511 RestoreStackMatch(pstk, pmset, &stack, mset, ev_pc, &found); 512 return; 513 } 514 if (evp->is_func) { 515 auto *ev = reinterpret_cast<EventFunc *>(evp); 516 if (ev->pc) { 517 DPrintf2(" FuncEnter: pc=0x%llx\n", ev->pc); 518 stack.PushBack(ev->pc); 519 } else { 520 DPrintf2(" FuncExit\n"); 521 // We don't log pathologically large stacks in each part, 522 // if the stack was truncated we can have more func exits than 523 // entries. 524 if (stack.Size()) 525 stack.PopBack(); 526 } 527 return; 528 } 529 switch (evp->type) { 530 case EventType::kAccessExt: { 531 auto *ev = reinterpret_cast<EventAccessExt *>(evp); 532 uptr ev_addr = RestoreAddr(ev->addr); 533 uptr ev_size = 1 << ev->size_log; 534 prev_pc = ev->pc; 535 DPrintf2(" AccessExt: pc=0x%llx addr=0x%zx/%zu type=%u/%u\n", 536 ev->pc, ev_addr, ev_size, ev->is_read, ev->is_atomic); 537 if (match && type == EventType::kAccessExt && 538 IsWithinAccess(addr, size, ev_addr, ev_size) && 539 is_read == ev->is_read && is_atomic == ev->is_atomic && 540 !is_free) 541 RestoreStackMatch(pstk, pmset, &stack, mset, ev->pc, &found); 542 break; 543 } 544 case EventType::kAccessRange: { 545 auto *ev = reinterpret_cast<EventAccessRange *>(evp); 546 uptr ev_addr = RestoreAddr(ev->addr); 547 uptr ev_size = 548 (ev->size_hi << EventAccessRange::kSizeLoBits) + ev->size_lo; 549 uptr ev_pc = RestoreAddr(ev->pc); 550 prev_pc = ev_pc; 551 DPrintf2(" Range: pc=0x%zx addr=0x%zx/%zu type=%u/%u\n", ev_pc, 552 ev_addr, ev_size, ev->is_read, ev->is_free); 553 if (match && type == EventType::kAccessExt && 554 IsWithinAccess(addr, size, ev_addr, ev_size) && 555 is_read == ev->is_read && !is_atomic && is_free == ev->is_free) 556 RestoreStackMatch(pstk, pmset, &stack, mset, ev_pc, &found); 557 break; 558 } 559 case EventType::kLock: 560 FALLTHROUGH; 561 case EventType::kRLock: { 562 auto *ev = reinterpret_cast<EventLock *>(evp); 563 bool is_write = ev->type == EventType::kLock; 564 uptr ev_addr = RestoreAddr(ev->addr); 565 uptr ev_pc = RestoreAddr(ev->pc); 566 StackID stack_id = 567 (ev->stack_hi << EventLock::kStackIDLoBits) + ev->stack_lo; 568 DPrintf2(" Lock: pc=0x%zx addr=0x%zx stack=%u write=%d\n", ev_pc, 569 ev_addr, stack_id, is_write); 570 mset->AddAddr(ev_addr, stack_id, is_write); 571 // Events with ev_pc == 0 are written to the beginning of trace 572 // part as initial mutex set (are not real). 573 if (match && type == EventType::kLock && addr == ev_addr && ev_pc) 574 RestoreStackMatch(pstk, pmset, &stack, mset, ev_pc, &found); 575 break; 576 } 577 case EventType::kUnlock: { 578 auto *ev = reinterpret_cast<EventUnlock *>(evp); 579 uptr ev_addr = RestoreAddr(ev->addr); 580 DPrintf2(" Unlock: addr=0x%zx\n", ev_addr); 581 mset->DelAddr(ev_addr); 582 break; 583 } 584 case EventType::kTime: 585 // TraceReplay already extracted sid/epoch from it, 586 // nothing else to do here. 587 break; 588 } 589 }); 590 ExtractTagFromStack(pstk, ptag); 591 return found; 592 } 593 594 bool RacyStacks::operator==(const RacyStacks &other) const { 595 if (hash[0] == other.hash[0] && hash[1] == other.hash[1]) 596 return true; 597 if (hash[0] == other.hash[1] && hash[1] == other.hash[0]) 598 return true; 599 return false; 600 } 601 602 static bool FindRacyStacks(const RacyStacks &hash) { 603 for (uptr i = 0; i < ctx->racy_stacks.Size(); i++) { 604 if (hash == ctx->racy_stacks[i]) { 605 VPrintf(2, "ThreadSanitizer: suppressing report as doubled (stack)\n"); 606 return true; 607 } 608 } 609 return false; 610 } 611 612 static bool HandleRacyStacks(ThreadState *thr, VarSizeStackTrace traces[2]) { 613 if (!flags()->suppress_equal_stacks) 614 return false; 615 RacyStacks hash; 616 hash.hash[0] = md5_hash(traces[0].trace, traces[0].size * sizeof(uptr)); 617 hash.hash[1] = md5_hash(traces[1].trace, traces[1].size * sizeof(uptr)); 618 { 619 ReadLock lock(&ctx->racy_mtx); 620 if (FindRacyStacks(hash)) 621 return true; 622 } 623 Lock lock(&ctx->racy_mtx); 624 if (FindRacyStacks(hash)) 625 return true; 626 ctx->racy_stacks.PushBack(hash); 627 return false; 628 } 629 630 static bool FindRacyAddress(const RacyAddress &ra0) { 631 for (uptr i = 0; i < ctx->racy_addresses.Size(); i++) { 632 RacyAddress ra2 = ctx->racy_addresses[i]; 633 uptr maxbeg = max(ra0.addr_min, ra2.addr_min); 634 uptr minend = min(ra0.addr_max, ra2.addr_max); 635 if (maxbeg < minend) { 636 VPrintf(2, "ThreadSanitizer: suppressing report as doubled (addr)\n"); 637 return true; 638 } 639 } 640 return false; 641 } 642 643 static bool HandleRacyAddress(ThreadState *thr, uptr addr_min, uptr addr_max) { 644 if (!flags()->suppress_equal_addresses) 645 return false; 646 RacyAddress ra0 = {addr_min, addr_max}; 647 { 648 ReadLock lock(&ctx->racy_mtx); 649 if (FindRacyAddress(ra0)) 650 return true; 651 } 652 Lock lock(&ctx->racy_mtx); 653 if (FindRacyAddress(ra0)) 654 return true; 655 ctx->racy_addresses.PushBack(ra0); 656 return false; 657 } 658 659 bool OutputReport(ThreadState *thr, const ScopedReport &srep) { 660 // These should have been checked in ShouldReport. 661 // It's too late to check them here, we have already taken locks. 662 CHECK(flags()->report_bugs); 663 CHECK(!thr->suppress_reports); 664 atomic_store_relaxed(&ctx->last_symbolize_time_ns, NanoTime()); 665 const ReportDesc *rep = srep.GetReport(); 666 CHECK_EQ(thr->current_report, nullptr); 667 thr->current_report = rep; 668 Suppression *supp = 0; 669 uptr pc_or_addr = 0; 670 for (uptr i = 0; pc_or_addr == 0 && i < rep->mops.Size(); i++) 671 pc_or_addr = IsSuppressed(rep->typ, rep->mops[i]->stack, &supp); 672 for (uptr i = 0; pc_or_addr == 0 && i < rep->stacks.Size(); i++) 673 pc_or_addr = IsSuppressed(rep->typ, rep->stacks[i], &supp); 674 for (uptr i = 0; pc_or_addr == 0 && i < rep->threads.Size(); i++) 675 pc_or_addr = IsSuppressed(rep->typ, rep->threads[i]->stack, &supp); 676 for (uptr i = 0; pc_or_addr == 0 && i < rep->locs.Size(); i++) 677 pc_or_addr = IsSuppressed(rep->typ, rep->locs[i], &supp); 678 if (pc_or_addr != 0) { 679 Lock lock(&ctx->fired_suppressions_mtx); 680 FiredSuppression s = {srep.GetReport()->typ, pc_or_addr, supp}; 681 ctx->fired_suppressions.push_back(s); 682 } 683 { 684 bool suppressed = OnReport(rep, pc_or_addr != 0); 685 if (suppressed) { 686 thr->current_report = nullptr; 687 return false; 688 } 689 } 690 PrintReport(rep); 691 __tsan_on_report(rep); 692 ctx->nreported++; 693 if (flags()->halt_on_error) 694 Die(); 695 thr->current_report = nullptr; 696 return true; 697 } 698 699 bool IsFiredSuppression(Context *ctx, ReportType type, StackTrace trace) { 700 ReadLock lock(&ctx->fired_suppressions_mtx); 701 for (uptr k = 0; k < ctx->fired_suppressions.size(); k++) { 702 if (ctx->fired_suppressions[k].type != type) 703 continue; 704 for (uptr j = 0; j < trace.size; j++) { 705 FiredSuppression *s = &ctx->fired_suppressions[k]; 706 if (trace.trace[j] == s->pc_or_addr) { 707 if (s->supp) 708 atomic_fetch_add(&s->supp->hit_count, 1, memory_order_relaxed); 709 return true; 710 } 711 } 712 } 713 return false; 714 } 715 716 static bool IsFiredSuppression(Context *ctx, ReportType type, uptr addr) { 717 ReadLock lock(&ctx->fired_suppressions_mtx); 718 for (uptr k = 0; k < ctx->fired_suppressions.size(); k++) { 719 if (ctx->fired_suppressions[k].type != type) 720 continue; 721 FiredSuppression *s = &ctx->fired_suppressions[k]; 722 if (addr == s->pc_or_addr) { 723 if (s->supp) 724 atomic_fetch_add(&s->supp->hit_count, 1, memory_order_relaxed); 725 return true; 726 } 727 } 728 return false; 729 } 730 731 void ReportRace(ThreadState *thr, RawShadow *shadow_mem, Shadow cur, Shadow old, 732 AccessType typ0) { 733 CheckedMutex::CheckNoLocks(); 734 735 // Symbolizer makes lots of intercepted calls. If we try to process them, 736 // at best it will cause deadlocks on internal mutexes. 737 ScopedIgnoreInterceptors ignore; 738 739 uptr addr = ShadowToMem(shadow_mem); 740 DPrintf("#%d: ReportRace %p\n", thr->tid, (void *)addr); 741 if (!ShouldReport(thr, ReportTypeRace)) 742 return; 743 uptr addr_off0, size0; 744 cur.GetAccess(&addr_off0, &size0, nullptr); 745 uptr addr_off1, size1, typ1; 746 old.GetAccess(&addr_off1, &size1, &typ1); 747 if (!flags()->report_atomic_races && 748 ((typ0 & kAccessAtomic) || (typ1 & kAccessAtomic)) && 749 !(typ0 & kAccessFree) && !(typ1 & kAccessFree)) 750 return; 751 752 const uptr kMop = 2; 753 Shadow s[kMop] = {cur, old}; 754 uptr addr0 = addr + addr_off0; 755 uptr addr1 = addr + addr_off1; 756 uptr end0 = addr0 + size0; 757 uptr end1 = addr1 + size1; 758 uptr addr_min = min(addr0, addr1); 759 uptr addr_max = max(end0, end1); 760 if (IsExpectedReport(addr_min, addr_max - addr_min)) 761 return; 762 if (HandleRacyAddress(thr, addr_min, addr_max)) 763 return; 764 765 ReportType rep_typ = ReportTypeRace; 766 if ((typ0 & kAccessVptr) && (typ1 & kAccessFree)) 767 rep_typ = ReportTypeVptrUseAfterFree; 768 else if (typ0 & kAccessVptr) 769 rep_typ = ReportTypeVptrRace; 770 else if (typ1 & kAccessFree) 771 rep_typ = ReportTypeUseAfterFree; 772 773 if (IsFiredSuppression(ctx, rep_typ, addr)) 774 return; 775 776 VarSizeStackTrace traces[kMop]; 777 Tid tids[kMop] = {thr->tid, kInvalidTid}; 778 uptr tags[kMop] = {kExternalTagNone, kExternalTagNone}; 779 780 ObtainCurrentStack(thr, thr->trace_prev_pc, &traces[0], &tags[0]); 781 if (IsFiredSuppression(ctx, rep_typ, traces[0])) 782 return; 783 784 DynamicMutexSet mset1; 785 MutexSet *mset[kMop] = {&thr->mset, mset1}; 786 787 // We need to lock the slot during RestoreStack because it protects 788 // the slot journal. 789 Lock slot_lock(&ctx->slots[static_cast<uptr>(s[1].sid())].mtx); 790 ThreadRegistryLock l0(&ctx->thread_registry); 791 Lock slots_lock(&ctx->slot_mtx); 792 if (!RestoreStack(EventType::kAccessExt, s[1].sid(), s[1].epoch(), addr1, 793 size1, typ1, &tids[1], &traces[1], mset[1], &tags[1])) 794 return; 795 796 if (IsFiredSuppression(ctx, rep_typ, traces[1])) 797 return; 798 799 if (HandleRacyStacks(thr, traces)) 800 return; 801 802 // If any of the accesses has a tag, treat this as an "external" race. 803 uptr tag = kExternalTagNone; 804 for (uptr i = 0; i < kMop; i++) { 805 if (tags[i] != kExternalTagNone) { 806 rep_typ = ReportTypeExternalRace; 807 tag = tags[i]; 808 break; 809 } 810 } 811 812 ScopedReport rep(rep_typ, tag); 813 for (uptr i = 0; i < kMop; i++) 814 rep.AddMemoryAccess(addr, tags[i], s[i], tids[i], traces[i], mset[i]); 815 816 for (uptr i = 0; i < kMop; i++) { 817 ThreadContext *tctx = static_cast<ThreadContext *>( 818 ctx->thread_registry.GetThreadLocked(tids[i])); 819 rep.AddThread(tctx); 820 } 821 822 rep.AddLocation(addr_min, addr_max - addr_min); 823 824 #if !SANITIZER_GO 825 if (!((typ0 | typ1) & kAccessFree) && 826 s[1].epoch() <= thr->last_sleep_clock.Get(s[1].sid())) 827 rep.AddSleep(thr->last_sleep_stack_id); 828 #endif 829 OutputReport(thr, rep); 830 } 831 832 void PrintCurrentStack(ThreadState *thr, uptr pc) { 833 VarSizeStackTrace trace; 834 ObtainCurrentStack(thr, pc, &trace); 835 PrintStack(SymbolizeStack(trace)); 836 } 837 838 // Always inlining PrintCurrentStackSlow, because LocatePcInTrace assumes 839 // __sanitizer_print_stack_trace exists in the actual unwinded stack, but 840 // tail-call to PrintCurrentStackSlow breaks this assumption because 841 // __sanitizer_print_stack_trace disappears after tail-call. 842 // However, this solution is not reliable enough, please see dvyukov's comment 843 // http://reviews.llvm.org/D19148#406208 844 // Also see PR27280 comment 2 and 3 for breaking examples and analysis. 845 ALWAYS_INLINE USED void PrintCurrentStackSlow(uptr pc) { 846 #if !SANITIZER_GO 847 uptr bp = GET_CURRENT_FRAME(); 848 auto *ptrace = New<BufferedStackTrace>(); 849 ptrace->Unwind(pc, bp, nullptr, false); 850 851 for (uptr i = 0; i < ptrace->size / 2; i++) { 852 uptr tmp = ptrace->trace_buffer[i]; 853 ptrace->trace_buffer[i] = ptrace->trace_buffer[ptrace->size - i - 1]; 854 ptrace->trace_buffer[ptrace->size - i - 1] = tmp; 855 } 856 PrintStack(SymbolizeStack(*ptrace)); 857 #endif 858 } 859 860 } // namespace __tsan 861 862 using namespace __tsan; 863 864 extern "C" { 865 SANITIZER_INTERFACE_ATTRIBUTE 866 void __sanitizer_print_stack_trace() { 867 PrintCurrentStackSlow(StackTrace::GetCurrentPc()); 868 } 869 } // extern "C" 870