Home | History | Annotate | Line # | Download | only in tsan
      1 //===-- tsan_rtl.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 // Main file (entry points) for the TSan run-time.
     12 //===----------------------------------------------------------------------===//
     13 
     14 #include "tsan_rtl.h"
     15 
     16 #include "sanitizer_common/sanitizer_atomic.h"
     17 #include "sanitizer_common/sanitizer_common.h"
     18 #include "sanitizer_common/sanitizer_file.h"
     19 #include "sanitizer_common/sanitizer_interface_internal.h"
     20 #include "sanitizer_common/sanitizer_libc.h"
     21 #include "sanitizer_common/sanitizer_placement_new.h"
     22 #include "sanitizer_common/sanitizer_stackdepot.h"
     23 #include "sanitizer_common/sanitizer_symbolizer.h"
     24 #include "tsan_defs.h"
     25 #include "tsan_interface.h"
     26 #include "tsan_mman.h"
     27 #include "tsan_platform.h"
     28 #include "tsan_suppressions.h"
     29 #include "tsan_symbolize.h"
     30 #include "ubsan/ubsan_init.h"
     31 
     32 volatile int __tsan_resumed = 0;
     33 
     34 extern "C" void __tsan_resume() {
     35   __tsan_resumed = 1;
     36 }
     37 
     38 SANITIZER_WEAK_DEFAULT_IMPL
     39 void __tsan_test_only_on_fork() {}
     40 
     41 namespace __tsan {
     42 
     43 #if !SANITIZER_GO
     44 void (*on_initialize)(void);
     45 int (*on_finalize)(int);
     46 #endif
     47 
     48 // XXX PR lib/58349 (https://gnats.NetBSD.org/58349): NetBSD ld.elf_so
     49 // doesn't support TLS alignment beyond void *, so we have to buffer
     50 // some extra space and do the alignment ourselves at all the reference
     51 // sites.
     52 #if !SANITIZER_GO && !SANITIZER_APPLE
     53 __attribute__((tls_model("initial-exec")))
     54 THREADLOCAL char cur_thread_placeholder[sizeof(ThreadState) + SANITIZER_CACHE_LINE_SIZE - 1] ALIGNED(
     55     SANITIZER_CACHE_LINE_SIZE);
     56 #endif
     57 static char ctx_placeholder[sizeof(Context) + SANITIZER_CACHE_LINE_SIZE - 1] ALIGNED(SANITIZER_CACHE_LINE_SIZE);
     58 Context *ctx;
     59 
     60 // Can be overriden by a front-end.
     61 #ifdef TSAN_EXTERNAL_HOOKS
     62 bool OnFinalize(bool failed);
     63 void OnInitialize();
     64 #else
     65 SANITIZER_WEAK_CXX_DEFAULT_IMPL
     66 bool OnFinalize(bool failed) {
     67 #  if !SANITIZER_GO
     68   if (on_finalize)
     69     return on_finalize(failed);
     70 #  endif
     71   return failed;
     72 }
     73 
     74 SANITIZER_WEAK_CXX_DEFAULT_IMPL
     75 void OnInitialize() {
     76 #  if !SANITIZER_GO
     77   if (on_initialize)
     78     on_initialize();
     79 #  endif
     80 }
     81 #endif
     82 
     83 static TracePart* TracePartAlloc(ThreadState* thr) {
     84   TracePart* part = nullptr;
     85   {
     86     Lock lock(&ctx->slot_mtx);
     87     uptr max_parts = Trace::kMinParts + flags()->history_size;
     88     Trace* trace = &thr->tctx->trace;
     89     if (trace->parts_allocated == max_parts ||
     90         ctx->trace_part_finished_excess) {
     91       part = ctx->trace_part_recycle.PopFront();
     92       DPrintf("#%d: TracePartAlloc: part=%p\n", thr->tid, part);
     93       if (part && part->trace) {
     94         Trace* trace1 = part->trace;
     95         Lock trace_lock(&trace1->mtx);
     96         part->trace = nullptr;
     97         TracePart* part1 = trace1->parts.PopFront();
     98         CHECK_EQ(part, part1);
     99         if (trace1->parts_allocated > trace1->parts.Size()) {
    100           ctx->trace_part_finished_excess +=
    101               trace1->parts_allocated - trace1->parts.Size();
    102           trace1->parts_allocated = trace1->parts.Size();
    103         }
    104       }
    105     }
    106     if (trace->parts_allocated < max_parts) {
    107       trace->parts_allocated++;
    108       if (ctx->trace_part_finished_excess)
    109         ctx->trace_part_finished_excess--;
    110     }
    111     if (!part)
    112       ctx->trace_part_total_allocated++;
    113     else if (ctx->trace_part_recycle_finished)
    114       ctx->trace_part_recycle_finished--;
    115   }
    116   if (!part)
    117     part = new (MmapOrDie(sizeof(*part), "TracePart")) TracePart();
    118   return part;
    119 }
    120 
    121 static void TracePartFree(TracePart* part) SANITIZER_REQUIRES(ctx->slot_mtx) {
    122   DCHECK(part->trace);
    123   part->trace = nullptr;
    124   ctx->trace_part_recycle.PushFront(part);
    125 }
    126 
    127 void TraceResetForTesting() {
    128   Lock lock(&ctx->slot_mtx);
    129   while (auto* part = ctx->trace_part_recycle.PopFront()) {
    130     if (auto trace = part->trace)
    131       CHECK_EQ(trace->parts.PopFront(), part);
    132     UnmapOrDie(part, sizeof(*part));
    133   }
    134   ctx->trace_part_total_allocated = 0;
    135   ctx->trace_part_recycle_finished = 0;
    136   ctx->trace_part_finished_excess = 0;
    137 }
    138 
    139 static void DoResetImpl(uptr epoch) {
    140   ThreadRegistryLock lock0(&ctx->thread_registry);
    141   Lock lock1(&ctx->slot_mtx);
    142   CHECK_EQ(ctx->global_epoch, epoch);
    143   ctx->global_epoch++;
    144   CHECK(!ctx->resetting);
    145   ctx->resetting = true;
    146   for (u32 i = ctx->thread_registry.NumThreadsLocked(); i--;) {
    147     ThreadContext* tctx = (ThreadContext*)ctx->thread_registry.GetThreadLocked(
    148         static_cast<Tid>(i));
    149     // Potentially we could purge all ThreadStatusDead threads from the
    150     // registry. Since we reset all shadow, they can't race with anything
    151     // anymore. However, their tid's can still be stored in some aux places
    152     // (e.g. tid of thread that created something).
    153     auto trace = &tctx->trace;
    154     Lock lock(&trace->mtx);
    155     bool attached = tctx->thr && tctx->thr->slot;
    156     auto parts = &trace->parts;
    157     bool local = false;
    158     while (!parts->Empty()) {
    159       auto part = parts->Front();
    160       local = local || part == trace->local_head;
    161       if (local)
    162         CHECK(!ctx->trace_part_recycle.Queued(part));
    163       else
    164         ctx->trace_part_recycle.Remove(part);
    165       if (attached && parts->Size() == 1) {
    166         // The thread is running and this is the last/current part.
    167         // Set the trace position to the end of the current part
    168         // to force the thread to call SwitchTracePart and re-attach
    169         // to a new slot and allocate a new trace part.
    170         // Note: the thread is concurrently modifying the position as well,
    171         // so this is only best-effort. The thread can only modify position
    172         // within this part, because switching parts is protected by
    173         // slot/trace mutexes that we hold here.
    174         atomic_store_relaxed(
    175             &tctx->thr->trace_pos,
    176             reinterpret_cast<uptr>(&part->events[TracePart::kSize]));
    177         break;
    178       }
    179       parts->Remove(part);
    180       TracePartFree(part);
    181     }
    182     CHECK_LE(parts->Size(), 1);
    183     trace->local_head = parts->Front();
    184     if (tctx->thr && !tctx->thr->slot) {
    185       atomic_store_relaxed(&tctx->thr->trace_pos, 0);
    186       tctx->thr->trace_prev_pc = 0;
    187     }
    188     if (trace->parts_allocated > trace->parts.Size()) {
    189       ctx->trace_part_finished_excess +=
    190           trace->parts_allocated - trace->parts.Size();
    191       trace->parts_allocated = trace->parts.Size();
    192     }
    193   }
    194   while (ctx->slot_queue.PopFront()) {
    195   }
    196   for (auto& slot : ctx->slots) {
    197     slot.SetEpoch(kEpochZero);
    198     slot.journal.Reset();
    199     slot.thr = nullptr;
    200     ctx->slot_queue.PushBack(&slot);
    201   }
    202 
    203   DPrintf("Resetting shadow...\n");
    204   auto shadow_begin = ShadowBeg();
    205   auto shadow_end = ShadowEnd();
    206 #if SANITIZER_GO
    207   CHECK_NE(0, ctx->mapped_shadow_begin);
    208   shadow_begin = ctx->mapped_shadow_begin;
    209   shadow_end = ctx->mapped_shadow_end;
    210   VPrintf(2, "shadow_begin-shadow_end: (0x%zx-0x%zx)\n",
    211           shadow_begin, shadow_end);
    212 #endif
    213 
    214 #if SANITIZER_WINDOWS
    215   auto resetFailed =
    216       !ZeroMmapFixedRegion(shadow_begin, shadow_end - shadow_begin);
    217 #else
    218   auto resetFailed =
    219       !MmapFixedSuperNoReserve(shadow_begin, shadow_end-shadow_begin, "shadow");
    220 #  if !SANITIZER_GO
    221   DontDumpShadow(shadow_begin, shadow_end - shadow_begin);
    222 #  endif
    223 #endif
    224   if (resetFailed) {
    225     Printf("failed to reset shadow memory\n");
    226     Die();
    227   }
    228   DPrintf("Resetting meta shadow...\n");
    229   ctx->metamap.ResetClocks();
    230   StoreShadow(&ctx->last_spurious_race, Shadow::kEmpty);
    231   ctx->resetting = false;
    232 }
    233 
    234 // Clang does not understand locking all slots in the loop:
    235 // error: expecting mutex 'slot.mtx' to be held at start of each loop
    236 void DoReset(ThreadState* thr, uptr epoch) SANITIZER_NO_THREAD_SAFETY_ANALYSIS {
    237   for (auto& slot : ctx->slots) {
    238     slot.mtx.Lock();
    239     if (UNLIKELY(epoch == 0))
    240       epoch = ctx->global_epoch;
    241     if (UNLIKELY(epoch != ctx->global_epoch)) {
    242       // Epoch can't change once we've locked the first slot.
    243       CHECK_EQ(slot.sid, 0);
    244       slot.mtx.Unlock();
    245       return;
    246     }
    247   }
    248   DPrintf("#%d: DoReset epoch=%lu\n", thr ? thr->tid : -1, epoch);
    249   DoResetImpl(epoch);
    250   for (auto& slot : ctx->slots) slot.mtx.Unlock();
    251 }
    252 
    253 void FlushShadowMemory() { DoReset(nullptr, 0); }
    254 
    255 static TidSlot* FindSlotAndLock(ThreadState* thr)
    256     SANITIZER_ACQUIRE(thr->slot->mtx) SANITIZER_NO_THREAD_SAFETY_ANALYSIS {
    257   CHECK(!thr->slot);
    258   TidSlot* slot = nullptr;
    259   for (;;) {
    260     uptr epoch;
    261     {
    262       Lock lock(&ctx->slot_mtx);
    263       epoch = ctx->global_epoch;
    264       if (slot) {
    265         // This is an exhausted slot from the previous iteration.
    266         if (ctx->slot_queue.Queued(slot))
    267           ctx->slot_queue.Remove(slot);
    268         thr->slot_locked = false;
    269         slot->mtx.Unlock();
    270       }
    271       for (;;) {
    272         slot = ctx->slot_queue.PopFront();
    273         if (!slot)
    274           break;
    275         if (slot->epoch() != kEpochLast) {
    276           ctx->slot_queue.PushBack(slot);
    277           break;
    278         }
    279       }
    280     }
    281     if (!slot) {
    282       DoReset(thr, epoch);
    283       continue;
    284     }
    285     slot->mtx.Lock();
    286     CHECK(!thr->slot_locked);
    287     thr->slot_locked = true;
    288     if (slot->thr) {
    289       DPrintf("#%d: preempting sid=%d tid=%d\n", thr->tid, (u32)slot->sid,
    290               slot->thr->tid);
    291       slot->SetEpoch(slot->thr->fast_state.epoch());
    292       slot->thr = nullptr;
    293     }
    294     if (slot->epoch() != kEpochLast)
    295       return slot;
    296   }
    297 }
    298 
    299 void SlotAttachAndLock(ThreadState* thr) {
    300   TidSlot* slot = FindSlotAndLock(thr);
    301   DPrintf("#%d: SlotAttach: slot=%u\n", thr->tid, static_cast<int>(slot->sid));
    302   CHECK(!slot->thr);
    303   CHECK(!thr->slot);
    304   slot->thr = thr;
    305   thr->slot = slot;
    306   Epoch epoch = EpochInc(slot->epoch());
    307   CHECK(!EpochOverflow(epoch));
    308   slot->SetEpoch(epoch);
    309   thr->fast_state.SetSid(slot->sid);
    310   thr->fast_state.SetEpoch(epoch);
    311   if (thr->slot_epoch != ctx->global_epoch) {
    312     thr->slot_epoch = ctx->global_epoch;
    313     thr->clock.Reset();
    314 #if !SANITIZER_GO
    315     thr->last_sleep_stack_id = kInvalidStackID;
    316     thr->last_sleep_clock.Reset();
    317 #endif
    318   }
    319   thr->clock.Set(slot->sid, epoch);
    320   slot->journal.PushBack({thr->tid, epoch});
    321 }
    322 
    323 static void SlotDetachImpl(ThreadState* thr, bool exiting) {
    324   TidSlot* slot = thr->slot;
    325   thr->slot = nullptr;
    326   if (thr != slot->thr) {
    327     slot = nullptr;  // we don't own the slot anymore
    328     if (thr->slot_epoch != ctx->global_epoch) {
    329       TracePart* part = nullptr;
    330       auto* trace = &thr->tctx->trace;
    331       {
    332         Lock l(&trace->mtx);
    333         auto* parts = &trace->parts;
    334         // The trace can be completely empty in an unlikely event
    335         // the thread is preempted right after it acquired the slot
    336         // in ThreadStart and did not trace any events yet.
    337         CHECK_LE(parts->Size(), 1);
    338         part = parts->PopFront();
    339         thr->tctx->trace.local_head = nullptr;
    340         atomic_store_relaxed(&thr->trace_pos, 0);
    341         thr->trace_prev_pc = 0;
    342       }
    343       if (part) {
    344         Lock l(&ctx->slot_mtx);
    345         TracePartFree(part);
    346       }
    347     }
    348     return;
    349   }
    350   CHECK(exiting || thr->fast_state.epoch() == kEpochLast);
    351   slot->SetEpoch(thr->fast_state.epoch());
    352   slot->thr = nullptr;
    353 }
    354 
    355 void SlotDetach(ThreadState* thr) {
    356   Lock lock(&thr->slot->mtx);
    357   SlotDetachImpl(thr, true);
    358 }
    359 
    360 void SlotLock(ThreadState* thr) SANITIZER_NO_THREAD_SAFETY_ANALYSIS {
    361   DCHECK(!thr->slot_locked);
    362 #if SANITIZER_DEBUG
    363   // Check these mutexes are not locked.
    364   // We can call DoReset from SlotAttachAndLock, which will lock
    365   // these mutexes, but it happens only every once in a while.
    366   { ThreadRegistryLock lock(&ctx->thread_registry); }
    367   { Lock lock(&ctx->slot_mtx); }
    368 #endif
    369   TidSlot* slot = thr->slot;
    370   slot->mtx.Lock();
    371   thr->slot_locked = true;
    372   if (LIKELY(thr == slot->thr && thr->fast_state.epoch() != kEpochLast))
    373     return;
    374   SlotDetachImpl(thr, false);
    375   thr->slot_locked = false;
    376   slot->mtx.Unlock();
    377   SlotAttachAndLock(thr);
    378 }
    379 
    380 void SlotUnlock(ThreadState* thr) {
    381   DCHECK(thr->slot_locked);
    382   thr->slot_locked = false;
    383   thr->slot->mtx.Unlock();
    384 }
    385 
    386 Context::Context()
    387     : initialized(),
    388       report_mtx(MutexTypeReport),
    389       nreported(),
    390       thread_registry([](Tid tid) -> ThreadContextBase* {
    391         return new (Alloc(sizeof(ThreadContext))) ThreadContext(tid);
    392       }),
    393       racy_mtx(MutexTypeRacy),
    394       racy_stacks(),
    395       fired_suppressions_mtx(MutexTypeFired),
    396       slot_mtx(MutexTypeSlots),
    397       resetting() {
    398   fired_suppressions.reserve(8);
    399   for (uptr i = 0; i < ARRAY_SIZE(slots); i++) {
    400     TidSlot* slot = &slots[i];
    401     slot->sid = static_cast<Sid>(i);
    402     slot_queue.PushBack(slot);
    403   }
    404   global_epoch = 1;
    405 }
    406 
    407 TidSlot::TidSlot() : mtx(MutexTypeSlot) {}
    408 
    409 // The objects are allocated in TLS, so one may rely on zero-initialization.
    410 ThreadState::ThreadState(Tid tid)
    411     // Do not touch these, rely on zero initialization,
    412     // they may be accessed before the ctor.
    413     // ignore_reads_and_writes()
    414     // ignore_interceptors()
    415     : tid(tid) {
    416   CHECK_EQ(reinterpret_cast<uptr>(this) % SANITIZER_CACHE_LINE_SIZE, 0);
    417 #if !SANITIZER_GO
    418   // C/C++ uses fixed size shadow stack.
    419   const int kInitStackSize = kShadowStackSize;
    420   shadow_stack = static_cast<uptr*>(
    421       MmapNoReserveOrDie(kInitStackSize * sizeof(uptr), "shadow stack"));
    422   SetShadowRegionHugePageMode(reinterpret_cast<uptr>(shadow_stack),
    423                               kInitStackSize * sizeof(uptr));
    424 #else
    425   // Go uses malloc-allocated shadow stack with dynamic size.
    426   const int kInitStackSize = 8;
    427   shadow_stack = static_cast<uptr*>(Alloc(kInitStackSize * sizeof(uptr)));
    428 #endif
    429   shadow_stack_pos = shadow_stack;
    430   shadow_stack_end = shadow_stack + kInitStackSize;
    431 }
    432 
    433 #if !SANITIZER_GO
    434 void MemoryProfiler(u64 uptime) {
    435   if (ctx->memprof_fd == kInvalidFd)
    436     return;
    437   InternalMmapVector<char> buf(4096);
    438   WriteMemoryProfile(buf.data(), buf.size(), uptime);
    439   WriteToFile(ctx->memprof_fd, buf.data(), internal_strlen(buf.data()));
    440 }
    441 
    442 static bool InitializeMemoryProfiler() {
    443   ctx->memprof_fd = kInvalidFd;
    444   const char *fname = flags()->profile_memory;
    445   if (!fname || !fname[0])
    446     return false;
    447   if (internal_strcmp(fname, "stdout") == 0) {
    448     ctx->memprof_fd = 1;
    449   } else if (internal_strcmp(fname, "stderr") == 0) {
    450     ctx->memprof_fd = 2;
    451   } else {
    452     InternalScopedString filename;
    453     filename.AppendF("%s.%d", fname, (int)internal_getpid());
    454     ctx->memprof_fd = OpenFile(filename.data(), WrOnly);
    455     if (ctx->memprof_fd == kInvalidFd) {
    456       Printf("ThreadSanitizer: failed to open memory profile file '%s'\n",
    457              filename.data());
    458       return false;
    459     }
    460   }
    461   MemoryProfiler(0);
    462   return true;
    463 }
    464 
    465 static void *BackgroundThread(void *arg) {
    466   // This is a non-initialized non-user thread, nothing to see here.
    467   // We don't use ScopedIgnoreInterceptors, because we want ignores to be
    468   // enabled even when the thread function exits (e.g. during pthread thread
    469   // shutdown code).
    470   cur_thread_init()->ignore_interceptors++;
    471   const u64 kMs2Ns = 1000 * 1000;
    472   const u64 start = NanoTime();
    473 
    474   u64 last_flush = start;
    475   uptr last_rss = 0;
    476   while (!atomic_load_relaxed(&ctx->stop_background_thread)) {
    477     SleepForMillis(100);
    478     u64 now = NanoTime();
    479 
    480     // Flush memory if requested.
    481     if (flags()->flush_memory_ms > 0) {
    482       if (last_flush + flags()->flush_memory_ms * kMs2Ns < now) {
    483         VReport(1, "ThreadSanitizer: periodic memory flush\n");
    484         FlushShadowMemory();
    485         now = last_flush = NanoTime();
    486       }
    487     }
    488     if (flags()->memory_limit_mb > 0) {
    489       uptr rss = GetRSS();
    490       uptr limit = uptr(flags()->memory_limit_mb) << 20;
    491       VReport(1,
    492               "ThreadSanitizer: memory flush check"
    493               " RSS=%llu LAST=%llu LIMIT=%llu\n",
    494               (u64)rss >> 20, (u64)last_rss >> 20, (u64)limit >> 20);
    495       if (2 * rss > limit + last_rss) {
    496         VReport(1, "ThreadSanitizer: flushing memory due to RSS\n");
    497         FlushShadowMemory();
    498         rss = GetRSS();
    499         now = NanoTime();
    500         VReport(1, "ThreadSanitizer: memory flushed RSS=%llu\n",
    501                 (u64)rss >> 20);
    502       }
    503       last_rss = rss;
    504     }
    505 
    506     MemoryProfiler(now - start);
    507 
    508     // Flush symbolizer cache if requested.
    509     if (flags()->flush_symbolizer_ms > 0) {
    510       u64 last = atomic_load(&ctx->last_symbolize_time_ns,
    511                              memory_order_relaxed);
    512       if (last != 0 && last + flags()->flush_symbolizer_ms * kMs2Ns < now) {
    513         Lock l(&ctx->report_mtx);
    514         ScopedErrorReportLock l2;
    515         SymbolizeFlush();
    516         atomic_store(&ctx->last_symbolize_time_ns, 0, memory_order_relaxed);
    517       }
    518     }
    519   }
    520   return nullptr;
    521 }
    522 
    523 static void StartBackgroundThread() {
    524   ctx->background_thread = internal_start_thread(&BackgroundThread, 0);
    525 }
    526 
    527 #ifndef __mips__
    528 static void StopBackgroundThread() {
    529   atomic_store(&ctx->stop_background_thread, 1, memory_order_relaxed);
    530   internal_join_thread(ctx->background_thread);
    531   ctx->background_thread = 0;
    532 }
    533 #endif
    534 #endif
    535 
    536 void DontNeedShadowFor(uptr addr, uptr size) {
    537   ReleaseMemoryPagesToOS(reinterpret_cast<uptr>(MemToShadow(addr)),
    538                          reinterpret_cast<uptr>(MemToShadow(addr + size)));
    539 }
    540 
    541 #if !SANITIZER_GO
    542 // We call UnmapShadow before the actual munmap, at that point we don't yet
    543 // know if the provided address/size are sane. We can't call UnmapShadow
    544 // after the actual munmap becuase at that point the memory range can
    545 // already be reused for something else, so we can't rely on the munmap
    546 // return value to understand is the values are sane.
    547 // While calling munmap with insane values (non-canonical address, negative
    548 // size, etc) is an error, the kernel won't crash. We must also try to not
    549 // crash as the failure mode is very confusing (paging fault inside of the
    550 // runtime on some derived shadow address).
    551 static bool IsValidMmapRange(uptr addr, uptr size) {
    552   if (size == 0)
    553     return true;
    554   if (static_cast<sptr>(size) < 0)
    555     return false;
    556   if (!IsAppMem(addr) || !IsAppMem(addr + size - 1))
    557     return false;
    558   // Check that if the start of the region belongs to one of app ranges,
    559   // end of the region belongs to the same region.
    560   const uptr ranges[][2] = {
    561       {LoAppMemBeg(), LoAppMemEnd()},
    562       {MidAppMemBeg(), MidAppMemEnd()},
    563       {HiAppMemBeg(), HiAppMemEnd()},
    564   };
    565   for (auto range : ranges) {
    566     if (addr >= range[0] && addr < range[1])
    567       return addr + size <= range[1];
    568   }
    569   return false;
    570 }
    571 
    572 void UnmapShadow(ThreadState *thr, uptr addr, uptr size) {
    573   if (size == 0 || !IsValidMmapRange(addr, size))
    574     return;
    575   DontNeedShadowFor(addr, size);
    576   ScopedGlobalProcessor sgp;
    577   SlotLocker locker(thr, true);
    578   ctx->metamap.ResetRange(thr->proc(), addr, size, true);
    579 }
    580 #endif
    581 
    582 void MapShadow(uptr addr, uptr size) {
    583   // Ensure thead registry lock held, so as to synchronize
    584   // with DoReset, which also access the mapped_shadow_* ctxt fields.
    585   ThreadRegistryLock lock0(&ctx->thread_registry);
    586   static bool data_mapped = false;
    587 
    588 #if !SANITIZER_GO
    589   // Global data is not 64K aligned, but there are no adjacent mappings,
    590   // so we can get away with unaligned mapping.
    591   // CHECK_EQ(addr, addr & ~((64 << 10) - 1));  // windows wants 64K alignment
    592   const uptr kPageSize = GetPageSizeCached();
    593   uptr shadow_begin = RoundDownTo((uptr)MemToShadow(addr), kPageSize);
    594   uptr shadow_end = RoundUpTo((uptr)MemToShadow(addr + size), kPageSize);
    595   if (!MmapFixedNoReserve(shadow_begin, shadow_end - shadow_begin, "shadow"))
    596     Die();
    597 #else
    598   uptr shadow_begin = RoundDownTo((uptr)MemToShadow(addr), (64 << 10));
    599   uptr shadow_end = RoundUpTo((uptr)MemToShadow(addr + size), (64 << 10));
    600   VPrintf(2, "MapShadow for (0x%zx-0x%zx), begin/end: (0x%zx-0x%zx)\n",
    601           addr, addr + size, shadow_begin, shadow_end);
    602 
    603   if (!data_mapped) {
    604     // First call maps data+bss.
    605     if (!MmapFixedSuperNoReserve(shadow_begin, shadow_end - shadow_begin, "shadow"))
    606       Die();
    607   } else {
    608     VPrintf(2, "ctx->mapped_shadow_{begin,end} = (0x%zx-0x%zx)\n",
    609             ctx->mapped_shadow_begin, ctx->mapped_shadow_end);
    610     // Second and subsequent calls map heap.
    611     if (shadow_end <= ctx->mapped_shadow_end)
    612       return;
    613     if (!ctx->mapped_shadow_begin || ctx->mapped_shadow_begin > shadow_begin)
    614        ctx->mapped_shadow_begin = shadow_begin;
    615     if (shadow_begin < ctx->mapped_shadow_end)
    616       shadow_begin = ctx->mapped_shadow_end;
    617     VPrintf(2, "MapShadow begin/end = (0x%zx-0x%zx)\n",
    618             shadow_begin, shadow_end);
    619     if (!MmapFixedSuperNoReserve(shadow_begin, shadow_end - shadow_begin,
    620                                  "shadow"))
    621       Die();
    622     ctx->mapped_shadow_end = shadow_end;
    623   }
    624 #endif
    625 
    626   // Meta shadow is 2:1, so tread carefully.
    627   static uptr mapped_meta_end = 0;
    628   uptr meta_begin = (uptr)MemToMeta(addr);
    629   uptr meta_end = (uptr)MemToMeta(addr + size);
    630   meta_begin = RoundDownTo(meta_begin, 64 << 10);
    631   meta_end = RoundUpTo(meta_end, 64 << 10);
    632   if (!data_mapped) {
    633     // First call maps data+bss.
    634     data_mapped = true;
    635     if (!MmapFixedSuperNoReserve(meta_begin, meta_end - meta_begin,
    636                                  "meta shadow"))
    637       Die();
    638   } else {
    639     // Mapping continuous heap.
    640     // Windows wants 64K alignment.
    641     meta_begin = RoundDownTo(meta_begin, 64 << 10);
    642     meta_end = RoundUpTo(meta_end, 64 << 10);
    643     CHECK_GT(meta_end, mapped_meta_end);
    644     if (meta_begin < mapped_meta_end)
    645       meta_begin = mapped_meta_end;
    646     if (!MmapFixedSuperNoReserve(meta_begin, meta_end - meta_begin,
    647                                  "meta shadow"))
    648       Die();
    649     mapped_meta_end = meta_end;
    650   }
    651   VPrintf(2, "mapped meta shadow for (0x%zx-0x%zx) at (0x%zx-0x%zx)\n", addr,
    652           addr + size, meta_begin, meta_end);
    653 }
    654 
    655 #if !SANITIZER_GO
    656 static void OnStackUnwind(const SignalContext &sig, const void *,
    657                           BufferedStackTrace *stack) {
    658   stack->Unwind(StackTrace::GetNextInstructionPc(sig.pc), sig.bp, sig.context,
    659                 common_flags()->fast_unwind_on_fatal);
    660 }
    661 
    662 static void TsanOnDeadlySignal(int signo, void *siginfo, void *context) {
    663   HandleDeadlySignal(siginfo, context, GetTid(), &OnStackUnwind, nullptr);
    664 }
    665 #endif
    666 
    667 void CheckUnwind() {
    668   // There is high probability that interceptors will check-fail as well,
    669   // on the other hand there is no sense in processing interceptors
    670   // since we are going to die soon.
    671   ScopedIgnoreInterceptors ignore;
    672 #if !SANITIZER_GO
    673   ThreadState* thr = cur_thread();
    674   thr->nomalloc = false;
    675   thr->ignore_sync++;
    676   thr->ignore_reads_and_writes++;
    677   atomic_store_relaxed(&thr->in_signal_handler, 0);
    678 #endif
    679   PrintCurrentStackSlow(StackTrace::GetCurrentPc());
    680 }
    681 
    682 bool is_initialized;
    683 
    684 void Initialize(ThreadState *thr) {
    685   // Thread safe because done before all threads exist.
    686   if (is_initialized)
    687     return;
    688   is_initialized = true;
    689   // We are not ready to handle interceptors yet.
    690   ScopedIgnoreInterceptors ignore;
    691   SanitizerToolName = "ThreadSanitizer";
    692   // Install tool-specific callbacks in sanitizer_common.
    693   SetCheckUnwindCallback(CheckUnwind);
    694 
    695   ctx = new(reinterpret_cast<char *>((reinterpret_cast<uptr>(ctx_placeholder) + SANITIZER_CACHE_LINE_SIZE - 1) & ~static_cast<uptr>(SANITIZER_CACHE_LINE_SIZE - 1))) Context;
    696   const char *env_name = SANITIZER_GO ? "GORACE" : "TSAN_OPTIONS";
    697   const char *options = GetEnv(env_name);
    698   CacheBinaryName();
    699   CheckASLR();
    700   InitializeFlags(&ctx->flags, options, env_name);
    701   AvoidCVE_2016_2143();
    702   __sanitizer::InitializePlatformEarly();
    703   __tsan::InitializePlatformEarly();
    704 
    705 #if !SANITIZER_GO
    706   InitializeAllocator();
    707   ReplaceSystemMalloc();
    708 #endif
    709   if (common_flags()->detect_deadlocks)
    710     ctx->dd = DDetector::Create(flags());
    711   Processor *proc = ProcCreate();
    712   ProcWire(proc, thr);
    713   InitializeInterceptors();
    714   InitializePlatform();
    715   InitializeDynamicAnnotations();
    716 #if !SANITIZER_GO
    717   InitializeShadowMemory();
    718   InitializeAllocatorLate();
    719   InstallDeadlySignalHandlers(TsanOnDeadlySignal);
    720 #endif
    721   // Setup correct file descriptor for error reports.
    722   __sanitizer_set_report_path(common_flags()->log_path);
    723   InitializeSuppressions();
    724 #if !SANITIZER_GO
    725   InitializeLibIgnore();
    726   Symbolizer::GetOrInit()->AddHooks(EnterSymbolizer, ExitSymbolizer);
    727 #endif
    728 
    729   VPrintf(1, "***** Running under ThreadSanitizer v3 (pid %d) *****\n",
    730           (int)internal_getpid());
    731 
    732   // Initialize thread 0.
    733   Tid tid = ThreadCreate(nullptr, 0, 0, true);
    734   CHECK_EQ(tid, kMainTid);
    735   ThreadStart(thr, tid, GetTid(), ThreadType::Regular);
    736 #if TSAN_CONTAINS_UBSAN
    737   __ubsan::InitAsPlugin();
    738 #endif
    739 
    740 #if !SANITIZER_GO
    741   Symbolizer::LateInitialize();
    742   if (InitializeMemoryProfiler() || flags()->force_background_thread)
    743     MaybeSpawnBackgroundThread();
    744 #endif
    745   ctx->initialized = true;
    746 
    747   if (flags()->stop_on_start) {
    748     Printf("ThreadSanitizer is suspended at startup (pid %d)."
    749            " Call __tsan_resume().\n",
    750            (int)internal_getpid());
    751     while (__tsan_resumed == 0) {}
    752   }
    753 
    754   OnInitialize();
    755 }
    756 
    757 void MaybeSpawnBackgroundThread() {
    758   // On MIPS, TSan initialization is run before
    759   // __pthread_initialize_minimal_internal() is finished, so we can not spawn
    760   // new threads.
    761 #if !SANITIZER_GO && !defined(__mips__)
    762   static atomic_uint32_t bg_thread = {};
    763   if (atomic_load(&bg_thread, memory_order_relaxed) == 0 &&
    764       atomic_exchange(&bg_thread, 1, memory_order_relaxed) == 0) {
    765     StartBackgroundThread();
    766     SetSandboxingCallback(StopBackgroundThread);
    767   }
    768 #endif
    769 }
    770 
    771 int Finalize(ThreadState *thr) {
    772   bool failed = false;
    773 
    774 #if !SANITIZER_GO
    775   if (common_flags()->print_module_map == 1)
    776     DumpProcessMap();
    777 #endif
    778 
    779   if (flags()->atexit_sleep_ms > 0 && ThreadCount(thr) > 1)
    780     internal_usleep(u64(flags()->atexit_sleep_ms) * 1000);
    781 
    782   {
    783     // Wait for pending reports.
    784     ScopedErrorReportLock lock;
    785   }
    786 
    787 #if !SANITIZER_GO
    788   if (Verbosity()) AllocatorPrintStats();
    789 #endif
    790 
    791   ThreadFinalize(thr);
    792 
    793   if (ctx->nreported) {
    794     failed = true;
    795 #if !SANITIZER_GO
    796     Printf("ThreadSanitizer: reported %d warnings\n", ctx->nreported);
    797 #else
    798     Printf("Found %d data race(s)\n", ctx->nreported);
    799 #endif
    800   }
    801 
    802   if (common_flags()->print_suppressions)
    803     PrintMatchedSuppressions();
    804 
    805   failed = OnFinalize(failed);
    806 
    807   return failed ? common_flags()->exitcode : 0;
    808 }
    809 
    810 #if !SANITIZER_GO
    811 void ForkBefore(ThreadState* thr, uptr pc) SANITIZER_NO_THREAD_SAFETY_ANALYSIS {
    812   GlobalProcessorLock();
    813   // Detaching from the slot makes OnUserFree skip writing to the shadow.
    814   // The slot will be locked so any attempts to use it will deadlock anyway.
    815   SlotDetach(thr);
    816   for (auto& slot : ctx->slots) slot.mtx.Lock();
    817   ctx->thread_registry.Lock();
    818   ctx->slot_mtx.Lock();
    819   ScopedErrorReportLock::Lock();
    820   AllocatorLock();
    821   // Suppress all reports in the pthread_atfork callbacks.
    822   // Reports will deadlock on the report_mtx.
    823   // We could ignore sync operations as well,
    824   // but so far it's unclear if it will do more good or harm.
    825   // Unnecessarily ignoring things can lead to false positives later.
    826   thr->suppress_reports++;
    827   // On OS X, REAL(fork) can call intercepted functions (OSSpinLockLock), and
    828   // we'll assert in CheckNoLocks() unless we ignore interceptors.
    829   // On OS X libSystem_atfork_prepare/parent/child callbacks are called
    830   // after/before our callbacks and they call free.
    831   thr->ignore_interceptors++;
    832   // Disables memory write in OnUserAlloc/Free.
    833   thr->ignore_reads_and_writes++;
    834 
    835   __tsan_test_only_on_fork();
    836 }
    837 
    838 static void ForkAfter(ThreadState* thr) SANITIZER_NO_THREAD_SAFETY_ANALYSIS {
    839   thr->suppress_reports--;  // Enabled in ForkBefore.
    840   thr->ignore_interceptors--;
    841   thr->ignore_reads_and_writes--;
    842   AllocatorUnlock();
    843   ScopedErrorReportLock::Unlock();
    844   ctx->slot_mtx.Unlock();
    845   ctx->thread_registry.Unlock();
    846   for (auto& slot : ctx->slots) slot.mtx.Unlock();
    847   SlotAttachAndLock(thr);
    848   SlotUnlock(thr);
    849   GlobalProcessorUnlock();
    850 }
    851 
    852 void ForkParentAfter(ThreadState* thr, uptr pc) { ForkAfter(thr); }
    853 
    854 void ForkChildAfter(ThreadState* thr, uptr pc, bool start_thread) {
    855   ForkAfter(thr);
    856   u32 nthread = ctx->thread_registry.OnFork(thr->tid);
    857   VPrintf(1,
    858           "ThreadSanitizer: forked new process with pid %d,"
    859           " parent had %d threads\n",
    860           (int)internal_getpid(), (int)nthread);
    861   if (nthread == 1) {
    862     if (start_thread)
    863       StartBackgroundThread();
    864   } else {
    865     // We've just forked a multi-threaded process. We cannot reasonably function
    866     // after that (some mutexes may be locked before fork). So just enable
    867     // ignores for everything in the hope that we will exec soon.
    868     ctx->after_multithreaded_fork = true;
    869     thr->ignore_interceptors++;
    870     thr->suppress_reports++;
    871     ThreadIgnoreBegin(thr, pc);
    872     ThreadIgnoreSyncBegin(thr, pc);
    873   }
    874 }
    875 #endif
    876 
    877 #if SANITIZER_GO
    878 NOINLINE
    879 void GrowShadowStack(ThreadState *thr) {
    880   const int sz = thr->shadow_stack_end - thr->shadow_stack;
    881   const int newsz = 2 * sz;
    882   auto *newstack = (uptr *)Alloc(newsz * sizeof(uptr));
    883   internal_memcpy(newstack, thr->shadow_stack, sz * sizeof(uptr));
    884   Free(thr->shadow_stack);
    885   thr->shadow_stack = newstack;
    886   thr->shadow_stack_pos = newstack + sz;
    887   thr->shadow_stack_end = newstack + newsz;
    888 }
    889 #endif
    890 
    891 StackID CurrentStackId(ThreadState *thr, uptr pc) {
    892 #if !SANITIZER_GO
    893   if (!thr->is_inited)  // May happen during bootstrap.
    894     return kInvalidStackID;
    895 #endif
    896   if (pc != 0) {
    897 #if !SANITIZER_GO
    898     DCHECK_LT(thr->shadow_stack_pos, thr->shadow_stack_end);
    899 #else
    900     if (thr->shadow_stack_pos == thr->shadow_stack_end)
    901       GrowShadowStack(thr);
    902 #endif
    903     thr->shadow_stack_pos[0] = pc;
    904     thr->shadow_stack_pos++;
    905   }
    906   StackID id = StackDepotPut(
    907       StackTrace(thr->shadow_stack, thr->shadow_stack_pos - thr->shadow_stack));
    908   if (pc != 0)
    909     thr->shadow_stack_pos--;
    910   return id;
    911 }
    912 
    913 static bool TraceSkipGap(ThreadState* thr) {
    914   Trace *trace = &thr->tctx->trace;
    915   Event *pos = reinterpret_cast<Event *>(atomic_load_relaxed(&thr->trace_pos));
    916   DCHECK_EQ(reinterpret_cast<uptr>(pos + 1) & TracePart::kAlignment, 0);
    917   auto *part = trace->parts.Back();
    918   DPrintf("#%d: TraceSwitchPart enter trace=%p parts=%p-%p pos=%p\n", thr->tid,
    919           trace, trace->parts.Front(), part, pos);
    920   if (!part)
    921     return false;
    922   // We can get here when we still have space in the current trace part.
    923   // The fast-path check in TraceAcquire has false positives in the middle of
    924   // the part. Check if we are indeed at the end of the current part or not,
    925   // and fill any gaps with NopEvent's.
    926   Event* end = &part->events[TracePart::kSize];
    927   DCHECK_GE(pos, &part->events[0]);
    928   DCHECK_LE(pos, end);
    929   if (pos + 1 < end) {
    930     if ((reinterpret_cast<uptr>(pos) & TracePart::kAlignment) ==
    931         TracePart::kAlignment)
    932       *pos++ = NopEvent;
    933     *pos++ = NopEvent;
    934     DCHECK_LE(pos + 2, end);
    935     atomic_store_relaxed(&thr->trace_pos, reinterpret_cast<uptr>(pos));
    936     return true;
    937   }
    938   // We are indeed at the end.
    939   for (; pos < end; pos++) *pos = NopEvent;
    940   return false;
    941 }
    942 
    943 NOINLINE
    944 void TraceSwitchPart(ThreadState* thr) {
    945   if (TraceSkipGap(thr))
    946     return;
    947 #if !SANITIZER_GO
    948   if (ctx->after_multithreaded_fork) {
    949     // We just need to survive till exec.
    950     TracePart* part = thr->tctx->trace.parts.Back();
    951     if (part) {
    952       atomic_store_relaxed(&thr->trace_pos,
    953                            reinterpret_cast<uptr>(&part->events[0]));
    954       return;
    955     }
    956   }
    957 #endif
    958   TraceSwitchPartImpl(thr);
    959 }
    960 
    961 void TraceSwitchPartImpl(ThreadState* thr) {
    962   SlotLocker locker(thr, true);
    963   Trace* trace = &thr->tctx->trace;
    964   TracePart* part = TracePartAlloc(thr);
    965   part->trace = trace;
    966   thr->trace_prev_pc = 0;
    967   TracePart* recycle = nullptr;
    968   // Keep roughly half of parts local to the thread
    969   // (not queued into the recycle queue).
    970   uptr local_parts = (Trace::kMinParts + flags()->history_size + 1) / 2;
    971   {
    972     Lock lock(&trace->mtx);
    973     if (trace->parts.Empty())
    974       trace->local_head = part;
    975     if (trace->parts.Size() >= local_parts) {
    976       recycle = trace->local_head;
    977       trace->local_head = trace->parts.Next(recycle);
    978     }
    979     trace->parts.PushBack(part);
    980     atomic_store_relaxed(&thr->trace_pos,
    981                          reinterpret_cast<uptr>(&part->events[0]));
    982   }
    983   // Make this part self-sufficient by restoring the current stack
    984   // and mutex set in the beginning of the trace.
    985   TraceTime(thr);
    986   {
    987     // Pathologically large stacks may not fit into the part.
    988     // In these cases we log only fixed number of top frames.
    989     const uptr kMaxFrames = 1000;
    990     // Check that kMaxFrames won't consume the whole part.
    991     static_assert(kMaxFrames < TracePart::kSize / 2, "kMaxFrames is too big");
    992     uptr* pos = Max(&thr->shadow_stack[0], thr->shadow_stack_pos - kMaxFrames);
    993     for (; pos < thr->shadow_stack_pos; pos++) {
    994       if (TryTraceFunc(thr, *pos))
    995         continue;
    996       CHECK(TraceSkipGap(thr));
    997       CHECK(TryTraceFunc(thr, *pos));
    998     }
    999   }
   1000   for (uptr i = 0; i < thr->mset.Size(); i++) {
   1001     MutexSet::Desc d = thr->mset.Get(i);
   1002     for (uptr i = 0; i < d.count; i++)
   1003       TraceMutexLock(thr, d.write ? EventType::kLock : EventType::kRLock, 0,
   1004                      d.addr, d.stack_id);
   1005   }
   1006   // Callers of TraceSwitchPart expect that TraceAcquire will always succeed
   1007   // after the call. It's possible that TryTraceFunc/TraceMutexLock above
   1008   // filled the trace part exactly up to the TracePart::kAlignment gap
   1009   // and the next TraceAcquire won't succeed. Skip the gap to avoid that.
   1010   EventFunc *ev;
   1011   if (!TraceAcquire(thr, &ev)) {
   1012     CHECK(TraceSkipGap(thr));
   1013     CHECK(TraceAcquire(thr, &ev));
   1014   }
   1015   {
   1016     Lock lock(&ctx->slot_mtx);
   1017     // There is a small chance that the slot may be not queued at this point.
   1018     // This can happen if the slot has kEpochLast epoch and another thread
   1019     // in FindSlotAndLock discovered that it's exhausted and removed it from
   1020     // the slot queue. kEpochLast can happen in 2 cases: (1) if TraceSwitchPart
   1021     // was called with the slot locked and epoch already at kEpochLast,
   1022     // or (2) if we've acquired a new slot in SlotLock in the beginning
   1023     // of the function and the slot was at kEpochLast - 1, so after increment
   1024     // in SlotAttachAndLock it become kEpochLast.
   1025     if (ctx->slot_queue.Queued(thr->slot)) {
   1026       ctx->slot_queue.Remove(thr->slot);
   1027       ctx->slot_queue.PushBack(thr->slot);
   1028     }
   1029     if (recycle)
   1030       ctx->trace_part_recycle.PushBack(recycle);
   1031   }
   1032   DPrintf("#%d: TraceSwitchPart exit parts=%p-%p pos=0x%zx\n", thr->tid,
   1033           trace->parts.Front(), trace->parts.Back(),
   1034           atomic_load_relaxed(&thr->trace_pos));
   1035 }
   1036 
   1037 void ThreadIgnoreBegin(ThreadState* thr, uptr pc) {
   1038   DPrintf("#%d: ThreadIgnoreBegin\n", thr->tid);
   1039   thr->ignore_reads_and_writes++;
   1040   CHECK_GT(thr->ignore_reads_and_writes, 0);
   1041   thr->fast_state.SetIgnoreBit();
   1042 #if !SANITIZER_GO
   1043   if (pc && !ctx->after_multithreaded_fork)
   1044     thr->mop_ignore_set.Add(CurrentStackId(thr, pc));
   1045 #endif
   1046 }
   1047 
   1048 void ThreadIgnoreEnd(ThreadState *thr) {
   1049   DPrintf("#%d: ThreadIgnoreEnd\n", thr->tid);
   1050   CHECK_GT(thr->ignore_reads_and_writes, 0);
   1051   thr->ignore_reads_and_writes--;
   1052   if (thr->ignore_reads_and_writes == 0) {
   1053     thr->fast_state.ClearIgnoreBit();
   1054 #if !SANITIZER_GO
   1055     thr->mop_ignore_set.Reset();
   1056 #endif
   1057   }
   1058 }
   1059 
   1060 #if !SANITIZER_GO
   1061 extern "C" SANITIZER_INTERFACE_ATTRIBUTE
   1062 uptr __tsan_testonly_shadow_stack_current_size() {
   1063   ThreadState *thr = cur_thread();
   1064   return thr->shadow_stack_pos - thr->shadow_stack;
   1065 }
   1066 #endif
   1067 
   1068 void ThreadIgnoreSyncBegin(ThreadState *thr, uptr pc) {
   1069   DPrintf("#%d: ThreadIgnoreSyncBegin\n", thr->tid);
   1070   thr->ignore_sync++;
   1071   CHECK_GT(thr->ignore_sync, 0);
   1072 #if !SANITIZER_GO
   1073   if (pc && !ctx->after_multithreaded_fork)
   1074     thr->sync_ignore_set.Add(CurrentStackId(thr, pc));
   1075 #endif
   1076 }
   1077 
   1078 void ThreadIgnoreSyncEnd(ThreadState *thr) {
   1079   DPrintf("#%d: ThreadIgnoreSyncEnd\n", thr->tid);
   1080   CHECK_GT(thr->ignore_sync, 0);
   1081   thr->ignore_sync--;
   1082 #if !SANITIZER_GO
   1083   if (thr->ignore_sync == 0)
   1084     thr->sync_ignore_set.Reset();
   1085 #endif
   1086 }
   1087 
   1088 bool MD5Hash::operator==(const MD5Hash &other) const {
   1089   return hash[0] == other.hash[0] && hash[1] == other.hash[1];
   1090 }
   1091 
   1092 #if SANITIZER_DEBUG
   1093 void build_consistency_debug() {}
   1094 #else
   1095 void build_consistency_release() {}
   1096 #endif
   1097 }  // namespace __tsan
   1098 
   1099 #if SANITIZER_CHECK_DEADLOCKS
   1100 namespace __sanitizer {
   1101 using namespace __tsan;
   1102 MutexMeta mutex_meta[] = {
   1103     {MutexInvalid, "Invalid", {}},
   1104     {MutexThreadRegistry,
   1105      "ThreadRegistry",
   1106      {MutexTypeSlots, MutexTypeTrace, MutexTypeReport}},
   1107     {MutexTypeReport, "Report", {MutexTypeTrace}},
   1108     {MutexTypeSyncVar, "SyncVar", {MutexTypeReport, MutexTypeTrace}},
   1109     {MutexTypeAnnotations, "Annotations", {}},
   1110     {MutexTypeAtExit, "AtExit", {}},
   1111     {MutexTypeFired, "Fired", {MutexLeaf}},
   1112     {MutexTypeRacy, "Racy", {MutexLeaf}},
   1113     {MutexTypeGlobalProc, "GlobalProc", {MutexTypeSlot, MutexTypeSlots}},
   1114     {MutexTypeInternalAlloc, "InternalAlloc", {MutexLeaf}},
   1115     {MutexTypeTrace, "Trace", {}},
   1116     {MutexTypeSlot,
   1117      "Slot",
   1118      {MutexMulti, MutexTypeTrace, MutexTypeSyncVar, MutexThreadRegistry,
   1119       MutexTypeSlots}},
   1120     {MutexTypeSlots, "Slots", {MutexTypeTrace, MutexTypeReport}},
   1121     {},
   1122 };
   1123 
   1124 void PrintMutexPC(uptr pc) { StackTrace(&pc, 1).Print(); }
   1125 
   1126 }  // namespace __sanitizer
   1127 #endif
   1128