1 //===-- tsan_rtl_thread.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_placement_new.h"
14 #include "tsan_rtl.h"
15 #include "tsan_mman.h"
16 #include "tsan_platform.h"
17 #include "tsan_report.h"
18 #include "tsan_sync.h"
19 
20 namespace __tsan {
21 
22 // ThreadContext implementation.
23 
24 ThreadContext::ThreadContext(Tid tid)
25     : ThreadContextBase(tid), thr(), sync(), epoch0(), epoch1() {}
26 
27 #if !SANITIZER_GO
28 ThreadContext::~ThreadContext() {
29 }
30 #endif
31 
32 void ThreadContext::OnDead() {
33   CHECK_EQ(sync.size(), 0);
34 }
35 
36 void ThreadContext::OnJoined(void *arg) {
37   ThreadState *caller_thr = static_cast<ThreadState *>(arg);
38   AcquireImpl(caller_thr, 0, &sync);
39   sync.Reset(&caller_thr->proc()->clock_cache);
40 }
41 
42 struct OnCreatedArgs {
43   ThreadState *thr;
44   uptr pc;
45 };
46 
47 void ThreadContext::OnCreated(void *arg) {
48   thr = 0;
49   if (tid == kMainTid)
50     return;
51   OnCreatedArgs *args = static_cast<OnCreatedArgs *>(arg);
52   if (!args->thr)  // GCD workers don't have a parent thread.
53     return;
54   args->thr->fast_state.IncrementEpoch();
55   // Can't increment epoch w/o writing to the trace as well.
56   TraceAddEvent(args->thr, args->thr->fast_state, EventTypeMop, 0);
57   ReleaseImpl(args->thr, 0, &sync);
58   creation_stack_id = CurrentStackId(args->thr, args->pc);
59 }
60 
61 void ThreadContext::OnReset() {
62   CHECK_EQ(sync.size(), 0);
63   uptr trace_p = GetThreadTrace(tid);
64   ReleaseMemoryPagesToOS(trace_p, trace_p + TraceSize() * sizeof(Event));
65   //!!! ReleaseMemoryToOS(GetThreadTraceHeader(tid), sizeof(Trace));
66 }
67 
68 void ThreadContext::OnDetached(void *arg) {
69   ThreadState *thr1 = static_cast<ThreadState*>(arg);
70   sync.Reset(&thr1->proc()->clock_cache);
71 }
72 
73 struct OnStartedArgs {
74   ThreadState *thr;
75   uptr stk_addr;
76   uptr stk_size;
77   uptr tls_addr;
78   uptr tls_size;
79 };
80 
81 void ThreadContext::OnStarted(void *arg) {
82   OnStartedArgs *args = static_cast<OnStartedArgs*>(arg);
83   thr = args->thr;
84   // RoundUp so that one trace part does not contain events
85   // from different threads.
86   epoch0 = RoundUp(epoch1 + 1, kTracePartSize);
87   epoch1 = (u64)-1;
88   new(thr) ThreadState(ctx, tid, unique_id, epoch0, reuse_count,
89       args->stk_addr, args->stk_size, args->tls_addr, args->tls_size);
90 #if !SANITIZER_GO
91   thr->shadow_stack = &ThreadTrace(thr->tid)->shadow_stack[0];
92   thr->shadow_stack_pos = thr->shadow_stack;
93   thr->shadow_stack_end = thr->shadow_stack + kShadowStackSize;
94 #else
95   // Setup dynamic shadow stack.
96   const int kInitStackSize = 8;
97   thr->shadow_stack = (uptr *)Alloc(kInitStackSize * sizeof(uptr));
98   thr->shadow_stack_pos = thr->shadow_stack;
99   thr->shadow_stack_end = thr->shadow_stack + kInitStackSize;
100 #endif
101   if (common_flags()->detect_deadlocks)
102     thr->dd_lt = ctx->dd->CreateLogicalThread(unique_id);
103   thr->fast_state.SetHistorySize(flags()->history_size);
104   // Commit switch to the new part of the trace.
105   // TraceAddEvent will reset stack0/mset0 in the new part for us.
106   TraceAddEvent(thr, thr->fast_state, EventTypeMop, 0);
107 
108   thr->fast_synch_epoch = epoch0;
109   AcquireImpl(thr, 0, &sync);
110   sync.Reset(&thr->proc()->clock_cache);
111   thr->is_inited = true;
112   DPrintf("#%d: ThreadStart epoch=%zu stk_addr=%zx stk_size=%zx "
113           "tls_addr=%zx tls_size=%zx\n",
114           tid, (uptr)epoch0, args->stk_addr, args->stk_size,
115           args->tls_addr, args->tls_size);
116 }
117 
118 void ThreadContext::OnFinished() {
119 #if SANITIZER_GO
120   Free(thr->shadow_stack);
121   thr->shadow_stack_pos = nullptr;
122   thr->shadow_stack_end = nullptr;
123 #endif
124   if (!detached) {
125     thr->fast_state.IncrementEpoch();
126     // Can't increment epoch w/o writing to the trace as well.
127     TraceAddEvent(thr, thr->fast_state, EventTypeMop, 0);
128     ReleaseImpl(thr, 0, &sync);
129   }
130   epoch1 = thr->fast_state.epoch();
131 
132   if (common_flags()->detect_deadlocks)
133     ctx->dd->DestroyLogicalThread(thr->dd_lt);
134   thr->clock.ResetCached(&thr->proc()->clock_cache);
135 #if !SANITIZER_GO
136   thr->last_sleep_clock.ResetCached(&thr->proc()->clock_cache);
137 #endif
138 #if !SANITIZER_GO
139   PlatformCleanUpThreadState(thr);
140 #endif
141   thr->~ThreadState();
142   thr = 0;
143 }
144 
145 #if !SANITIZER_GO
146 struct ThreadLeak {
147   ThreadContext *tctx;
148   int count;
149 };
150 
151 static void CollectThreadLeaks(ThreadContextBase *tctx_base, void *arg) {
152   auto &leaks = *static_cast<Vector<ThreadLeak> *>(arg);
153   auto *tctx = static_cast<ThreadContext *>(tctx_base);
154   if (tctx->detached || tctx->status != ThreadStatusFinished)
155     return;
156   for (uptr i = 0; i < leaks.Size(); i++) {
157     if (leaks[i].tctx->creation_stack_id == tctx->creation_stack_id) {
158       leaks[i].count++;
159       return;
160     }
161   }
162   leaks.PushBack({tctx, 1});
163 }
164 #endif
165 
166 #if !SANITIZER_GO
167 static void ReportIgnoresEnabled(ThreadContext *tctx, IgnoreSet *set) {
168   if (tctx->tid == kMainTid) {
169     Printf("ThreadSanitizer: main thread finished with ignores enabled\n");
170   } else {
171     Printf("ThreadSanitizer: thread T%d %s finished with ignores enabled,"
172       " created at:\n", tctx->tid, tctx->name);
173     PrintStack(SymbolizeStackId(tctx->creation_stack_id));
174   }
175   Printf("  One of the following ignores was not ended"
176       " (in order of probability)\n");
177   for (uptr i = 0; i < set->Size(); i++) {
178     Printf("  Ignore was enabled at:\n");
179     PrintStack(SymbolizeStackId(set->At(i)));
180   }
181   Die();
182 }
183 
184 static void ThreadCheckIgnore(ThreadState *thr) {
185   if (ctx->after_multithreaded_fork)
186     return;
187   if (thr->ignore_reads_and_writes)
188     ReportIgnoresEnabled(thr->tctx, &thr->mop_ignore_set);
189   if (thr->ignore_sync)
190     ReportIgnoresEnabled(thr->tctx, &thr->sync_ignore_set);
191 }
192 #else
193 static void ThreadCheckIgnore(ThreadState *thr) {}
194 #endif
195 
196 void ThreadFinalize(ThreadState *thr) {
197   ThreadCheckIgnore(thr);
198 #if !SANITIZER_GO
199   if (!ShouldReport(thr, ReportTypeThreadLeak))
200     return;
201   ThreadRegistryLock l(&ctx->thread_registry);
202   Vector<ThreadLeak> leaks;
203   ctx->thread_registry.RunCallbackForEachThreadLocked(CollectThreadLeaks,
204                                                       &leaks);
205   for (uptr i = 0; i < leaks.Size(); i++) {
206     ScopedReport rep(ReportTypeThreadLeak);
207     rep.AddThread(leaks[i].tctx, true);
208     rep.SetCount(leaks[i].count);
209     OutputReport(thr, rep);
210   }
211 #endif
212 }
213 
214 int ThreadCount(ThreadState *thr) {
215   uptr result;
216   ctx->thread_registry.GetNumberOfThreads(0, 0, &result);
217   return (int)result;
218 }
219 
220 Tid ThreadCreate(ThreadState *thr, uptr pc, uptr uid, bool detached) {
221   OnCreatedArgs args = { thr, pc };
222   u32 parent_tid = thr ? thr->tid : kInvalidTid;  // No parent for GCD workers.
223   Tid tid = ctx->thread_registry.CreateThread(uid, detached, parent_tid, &args);
224   DPrintf("#%d: ThreadCreate tid=%d uid=%zu\n", parent_tid, tid, uid);
225   return tid;
226 }
227 
228 void ThreadStart(ThreadState *thr, Tid tid, tid_t os_id,
229                  ThreadType thread_type) {
230   uptr stk_addr = 0;
231   uptr stk_size = 0;
232   uptr tls_addr = 0;
233   uptr tls_size = 0;
234 #if !SANITIZER_GO
235   if (thread_type != ThreadType::Fiber)
236     GetThreadStackAndTls(tid == kMainTid, &stk_addr, &stk_size, &tls_addr,
237                          &tls_size);
238 
239   if (tid != kMainTid) {
240     if (stk_addr && stk_size)
241       MemoryRangeImitateWrite(thr, /*pc=*/ 1, stk_addr, stk_size);
242 
243     if (tls_addr && tls_size) ImitateTlsWrite(thr, tls_addr, tls_size);
244   }
245 #endif
246 
247   ThreadRegistry *tr = &ctx->thread_registry;
248   OnStartedArgs args = { thr, stk_addr, stk_size, tls_addr, tls_size };
249   tr->StartThread(tid, os_id, thread_type, &args);
250 
251   tr->Lock();
252   thr->tctx = (ThreadContext*)tr->GetThreadLocked(tid);
253   tr->Unlock();
254 
255   while (!thr->tctx->trace.parts.Empty()) thr->tctx->trace.parts.PopBack();
256 
257 #if !SANITIZER_GO
258   if (ctx->after_multithreaded_fork) {
259     thr->ignore_interceptors++;
260     ThreadIgnoreBegin(thr, 0);
261     ThreadIgnoreSyncBegin(thr, 0);
262   }
263 #endif
264 }
265 
266 void ThreadFinish(ThreadState *thr) {
267   ThreadCheckIgnore(thr);
268   if (thr->stk_addr && thr->stk_size)
269     DontNeedShadowFor(thr->stk_addr, thr->stk_size);
270   if (thr->tls_addr && thr->tls_size)
271     DontNeedShadowFor(thr->tls_addr, thr->tls_size);
272   thr->is_dead = true;
273   ctx->thread_registry.FinishThread(thr->tid);
274 }
275 
276 struct ConsumeThreadContext {
277   uptr uid;
278   ThreadContextBase *tctx;
279 };
280 
281 static bool ConsumeThreadByUid(ThreadContextBase *tctx, void *arg) {
282   ConsumeThreadContext *findCtx = (ConsumeThreadContext *)arg;
283   if (tctx->user_id == findCtx->uid && tctx->status != ThreadStatusInvalid) {
284     if (findCtx->tctx) {
285       // Ensure that user_id is unique. If it's not the case we are screwed.
286       // Something went wrong before, but now there is no way to recover.
287       // Returning a wrong thread is not an option, it may lead to very hard
288       // to debug false positives (e.g. if we join a wrong thread).
289       Report("ThreadSanitizer: dup thread with used id 0x%zx\n", findCtx->uid);
290       Die();
291     }
292     findCtx->tctx = tctx;
293     tctx->user_id = 0;
294   }
295   return false;
296 }
297 
298 Tid ThreadConsumeTid(ThreadState *thr, uptr pc, uptr uid) {
299   ConsumeThreadContext findCtx = {uid, nullptr};
300   ctx->thread_registry.FindThread(ConsumeThreadByUid, &findCtx);
301   Tid tid = findCtx.tctx ? findCtx.tctx->tid : kInvalidTid;
302   DPrintf("#%d: ThreadTid uid=%zu tid=%d\n", thr->tid, uid, tid);
303   return tid;
304 }
305 
306 void ThreadJoin(ThreadState *thr, uptr pc, Tid tid) {
307   CHECK_GT(tid, 0);
308   CHECK_LT(tid, kMaxTid);
309   DPrintf("#%d: ThreadJoin tid=%d\n", thr->tid, tid);
310   ctx->thread_registry.JoinThread(tid, thr);
311 }
312 
313 void ThreadDetach(ThreadState *thr, uptr pc, Tid tid) {
314   CHECK_GT(tid, 0);
315   CHECK_LT(tid, kMaxTid);
316   ctx->thread_registry.DetachThread(tid, thr);
317 }
318 
319 void ThreadNotJoined(ThreadState *thr, uptr pc, Tid tid, uptr uid) {
320   CHECK_GT(tid, 0);
321   CHECK_LT(tid, kMaxTid);
322   ctx->thread_registry.SetThreadUserId(tid, uid);
323 }
324 
325 void ThreadSetName(ThreadState *thr, const char *name) {
326   ctx->thread_registry.SetThreadName(thr->tid, name);
327 }
328 
329 void MemoryAccessRange(ThreadState *thr, uptr pc, uptr addr,
330                        uptr size, bool is_write) {
331   if (size == 0)
332     return;
333 
334   RawShadow *shadow_mem = MemToShadow(addr);
335   DPrintf2("#%d: MemoryAccessRange: @%p %p size=%d is_write=%d\n",
336       thr->tid, (void*)pc, (void*)addr,
337       (int)size, is_write);
338 
339 #if SANITIZER_DEBUG
340   if (!IsAppMem(addr)) {
341     Printf("Access to non app mem %zx\n", addr);
342     DCHECK(IsAppMem(addr));
343   }
344   if (!IsAppMem(addr + size - 1)) {
345     Printf("Access to non app mem %zx\n", addr + size - 1);
346     DCHECK(IsAppMem(addr + size - 1));
347   }
348   if (!IsShadowMem(shadow_mem)) {
349     Printf("Bad shadow addr %p (%zx)\n", shadow_mem, addr);
350     DCHECK(IsShadowMem(shadow_mem));
351   }
352   if (!IsShadowMem(shadow_mem + size * kShadowCnt / 8 - 1)) {
353     Printf("Bad shadow addr %p (%zx)\n",
354                shadow_mem + size * kShadowCnt / 8 - 1, addr + size - 1);
355     DCHECK(IsShadowMem(shadow_mem + size * kShadowCnt / 8 - 1));
356   }
357 #endif
358 
359   if (*shadow_mem == kShadowRodata) {
360     DCHECK(!is_write);
361     // Access to .rodata section, no races here.
362     // Measurements show that it can be 10-20% of all memory accesses.
363     return;
364   }
365 
366   FastState fast_state = thr->fast_state;
367   if (fast_state.GetIgnoreBit())
368     return;
369 
370   fast_state.IncrementEpoch();
371   thr->fast_state = fast_state;
372   TraceAddEvent(thr, fast_state, EventTypeMop, pc);
373 
374   bool unaligned = (addr % kShadowCell) != 0;
375 
376   // Handle unaligned beginning, if any.
377   for (; addr % kShadowCell && size; addr++, size--) {
378     int const kAccessSizeLog = 0;
379     Shadow cur(fast_state);
380     cur.SetWrite(is_write);
381     cur.SetAddr0AndSizeLog(addr & (kShadowCell - 1), kAccessSizeLog);
382     MemoryAccessImpl(thr, addr, kAccessSizeLog, is_write, false,
383         shadow_mem, cur);
384   }
385   if (unaligned)
386     shadow_mem += kShadowCnt;
387   // Handle middle part, if any.
388   for (; size >= kShadowCell; addr += kShadowCell, size -= kShadowCell) {
389     int const kAccessSizeLog = 3;
390     Shadow cur(fast_state);
391     cur.SetWrite(is_write);
392     cur.SetAddr0AndSizeLog(0, kAccessSizeLog);
393     MemoryAccessImpl(thr, addr, kAccessSizeLog, is_write, false,
394         shadow_mem, cur);
395     shadow_mem += kShadowCnt;
396   }
397   // Handle ending, if any.
398   for (; size; addr++, size--) {
399     int const kAccessSizeLog = 0;
400     Shadow cur(fast_state);
401     cur.SetWrite(is_write);
402     cur.SetAddr0AndSizeLog(addr & (kShadowCell - 1), kAccessSizeLog);
403     MemoryAccessImpl(thr, addr, kAccessSizeLog, is_write, false,
404         shadow_mem, cur);
405   }
406 }
407 
408 #if !SANITIZER_GO
409 void FiberSwitchImpl(ThreadState *from, ThreadState *to) {
410   Processor *proc = from->proc();
411   ProcUnwire(proc, from);
412   ProcWire(proc, to);
413   set_cur_thread(to);
414 }
415 
416 ThreadState *FiberCreate(ThreadState *thr, uptr pc, unsigned flags) {
417   void *mem = Alloc(sizeof(ThreadState));
418   ThreadState *fiber = static_cast<ThreadState *>(mem);
419   internal_memset(fiber, 0, sizeof(*fiber));
420   Tid tid = ThreadCreate(thr, pc, 0, true);
421   FiberSwitchImpl(thr, fiber);
422   ThreadStart(fiber, tid, 0, ThreadType::Fiber);
423   FiberSwitchImpl(fiber, thr);
424   return fiber;
425 }
426 
427 void FiberDestroy(ThreadState *thr, uptr pc, ThreadState *fiber) {
428   FiberSwitchImpl(thr, fiber);
429   ThreadFinish(fiber);
430   FiberSwitchImpl(fiber, thr);
431   Free(fiber);
432 }
433 
434 void FiberSwitch(ThreadState *thr, uptr pc,
435                  ThreadState *fiber, unsigned flags) {
436   if (!(flags & FiberSwitchFlagNoSync))
437     Release(thr, pc, (uptr)fiber);
438   FiberSwitchImpl(thr, fiber);
439   if (!(flags & FiberSwitchFlagNoSync))
440     Acquire(fiber, pc, (uptr)fiber);
441 }
442 #endif
443 
444 }  // namespace __tsan
445