tsan_rtl.cpp revision 1.1 1 1.1 mrg //===-- tsan_rtl.cpp ------------------------------------------------------===//
2 1.1 mrg //
3 1.1 mrg // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 1.1 mrg // See https://llvm.org/LICENSE.txt for license information.
5 1.1 mrg // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 1.1 mrg //
7 1.1 mrg //===----------------------------------------------------------------------===//
8 1.1 mrg //
9 1.1 mrg // This file is a part of ThreadSanitizer (TSan), a race detector.
10 1.1 mrg //
11 1.1 mrg // Main file (entry points) for the TSan run-time.
12 1.1 mrg //===----------------------------------------------------------------------===//
13 1.1 mrg
14 1.1 mrg #include "sanitizer_common/sanitizer_atomic.h"
15 1.1 mrg #include "sanitizer_common/sanitizer_common.h"
16 1.1 mrg #include "sanitizer_common/sanitizer_file.h"
17 1.1 mrg #include "sanitizer_common/sanitizer_libc.h"
18 1.1 mrg #include "sanitizer_common/sanitizer_stackdepot.h"
19 1.1 mrg #include "sanitizer_common/sanitizer_placement_new.h"
20 1.1 mrg #include "sanitizer_common/sanitizer_symbolizer.h"
21 1.1 mrg #include "tsan_defs.h"
22 1.1 mrg #include "tsan_platform.h"
23 1.1 mrg #include "tsan_rtl.h"
24 1.1 mrg #include "tsan_mman.h"
25 1.1 mrg #include "tsan_suppressions.h"
26 1.1 mrg #include "tsan_symbolize.h"
27 1.1 mrg #include "ubsan/ubsan_init.h"
28 1.1 mrg
29 1.1 mrg #ifdef __SSE3__
30 1.1 mrg // <emmintrin.h> transitively includes <stdlib.h>,
31 1.1 mrg // and it's prohibited to include std headers into tsan runtime.
32 1.1 mrg // So we do this dirty trick.
33 1.1 mrg #define _MM_MALLOC_H_INCLUDED
34 1.1 mrg #define __MM_MALLOC_H
35 1.1 mrg #include <emmintrin.h>
36 1.1 mrg typedef __m128i m128;
37 1.1 mrg #endif
38 1.1 mrg
39 1.1 mrg volatile int __tsan_resumed = 0;
40 1.1 mrg
41 1.1 mrg extern "C" void __tsan_resume() {
42 1.1 mrg __tsan_resumed = 1;
43 1.1 mrg }
44 1.1 mrg
45 1.1 mrg namespace __tsan {
46 1.1 mrg
47 1.1 mrg #if !SANITIZER_GO && !SANITIZER_MAC
48 1.1 mrg __attribute__((tls_model("initial-exec")))
49 1.1 mrg THREADLOCAL char cur_thread_placeholder[sizeof(ThreadState)] ALIGNED(64);
50 1.1 mrg #endif
51 1.1 mrg static char ctx_placeholder[sizeof(Context)] ALIGNED(64);
52 1.1 mrg Context *ctx;
53 1.1 mrg
54 1.1 mrg // Can be overriden by a front-end.
55 1.1 mrg #ifdef TSAN_EXTERNAL_HOOKS
56 1.1 mrg bool OnFinalize(bool failed);
57 1.1 mrg void OnInitialize();
58 1.1 mrg #else
59 1.1 mrg SANITIZER_WEAK_CXX_DEFAULT_IMPL
60 1.1 mrg bool OnFinalize(bool failed) {
61 1.1 mrg return failed;
62 1.1 mrg }
63 1.1 mrg SANITIZER_WEAK_CXX_DEFAULT_IMPL
64 1.1 mrg void OnInitialize() {}
65 1.1 mrg #endif
66 1.1 mrg
67 1.1 mrg static char thread_registry_placeholder[sizeof(ThreadRegistry)];
68 1.1 mrg
69 1.1 mrg static ThreadContextBase *CreateThreadContext(u32 tid) {
70 1.1 mrg // Map thread trace when context is created.
71 1.1 mrg char name[50];
72 1.1 mrg internal_snprintf(name, sizeof(name), "trace %u", tid);
73 1.1 mrg MapThreadTrace(GetThreadTrace(tid), TraceSize() * sizeof(Event), name);
74 1.1 mrg const uptr hdr = GetThreadTraceHeader(tid);
75 1.1 mrg internal_snprintf(name, sizeof(name), "trace header %u", tid);
76 1.1 mrg MapThreadTrace(hdr, sizeof(Trace), name);
77 1.1 mrg new((void*)hdr) Trace();
78 1.1 mrg // We are going to use only a small part of the trace with the default
79 1.1 mrg // value of history_size. However, the constructor writes to the whole trace.
80 1.1 mrg // Unmap the unused part.
81 1.1 mrg uptr hdr_end = hdr + sizeof(Trace);
82 1.1 mrg hdr_end -= sizeof(TraceHeader) * (kTraceParts - TraceParts());
83 1.1 mrg hdr_end = RoundUp(hdr_end, GetPageSizeCached());
84 1.1 mrg if (hdr_end < hdr + sizeof(Trace))
85 1.1 mrg UnmapOrDie((void*)hdr_end, hdr + sizeof(Trace) - hdr_end);
86 1.1 mrg void *mem = internal_alloc(MBlockThreadContex, sizeof(ThreadContext));
87 1.1 mrg return new(mem) ThreadContext(tid);
88 1.1 mrg }
89 1.1 mrg
90 1.1 mrg #if !SANITIZER_GO
91 1.1 mrg static const u32 kThreadQuarantineSize = 16;
92 1.1 mrg #else
93 1.1 mrg static const u32 kThreadQuarantineSize = 64;
94 1.1 mrg #endif
95 1.1 mrg
96 1.1 mrg Context::Context()
97 1.1 mrg : initialized()
98 1.1 mrg , report_mtx(MutexTypeReport, StatMtxReport)
99 1.1 mrg , nreported()
100 1.1 mrg , nmissed_expected()
101 1.1 mrg , thread_registry(new(thread_registry_placeholder) ThreadRegistry(
102 1.1 mrg CreateThreadContext, kMaxTid, kThreadQuarantineSize, kMaxTidReuse))
103 1.1 mrg , racy_mtx(MutexTypeRacy, StatMtxRacy)
104 1.1 mrg , racy_stacks()
105 1.1 mrg , racy_addresses()
106 1.1 mrg , fired_suppressions_mtx(MutexTypeFired, StatMtxFired)
107 1.1 mrg , clock_alloc("clock allocator") {
108 1.1 mrg fired_suppressions.reserve(8);
109 1.1 mrg }
110 1.1 mrg
111 1.1 mrg // The objects are allocated in TLS, so one may rely on zero-initialization.
112 1.1 mrg ThreadState::ThreadState(Context *ctx, int tid, int unique_id, u64 epoch,
113 1.1 mrg unsigned reuse_count,
114 1.1 mrg uptr stk_addr, uptr stk_size,
115 1.1 mrg uptr tls_addr, uptr tls_size)
116 1.1 mrg : fast_state(tid, epoch)
117 1.1 mrg // Do not touch these, rely on zero initialization,
118 1.1 mrg // they may be accessed before the ctor.
119 1.1 mrg // , ignore_reads_and_writes()
120 1.1 mrg // , ignore_interceptors()
121 1.1 mrg , clock(tid, reuse_count)
122 1.1 mrg #if !SANITIZER_GO
123 1.1 mrg , jmp_bufs()
124 1.1 mrg #endif
125 1.1 mrg , tid(tid)
126 1.1 mrg , unique_id(unique_id)
127 1.1 mrg , stk_addr(stk_addr)
128 1.1 mrg , stk_size(stk_size)
129 1.1 mrg , tls_addr(tls_addr)
130 1.1 mrg , tls_size(tls_size)
131 1.1 mrg #if !SANITIZER_GO
132 1.1 mrg , last_sleep_clock(tid)
133 1.1 mrg #endif
134 1.1 mrg {
135 1.1 mrg }
136 1.1 mrg
137 1.1 mrg #if !SANITIZER_GO
138 1.1 mrg static void MemoryProfiler(Context *ctx, fd_t fd, int i) {
139 1.1 mrg uptr n_threads;
140 1.1 mrg uptr n_running_threads;
141 1.1 mrg ctx->thread_registry->GetNumberOfThreads(&n_threads, &n_running_threads);
142 1.1 mrg InternalMmapVector<char> buf(4096);
143 1.1 mrg WriteMemoryProfile(buf.data(), buf.size(), n_threads, n_running_threads);
144 1.1 mrg WriteToFile(fd, buf.data(), internal_strlen(buf.data()));
145 1.1 mrg }
146 1.1 mrg
147 1.1 mrg static void BackgroundThread(void *arg) {
148 1.1 mrg // This is a non-initialized non-user thread, nothing to see here.
149 1.1 mrg // We don't use ScopedIgnoreInterceptors, because we want ignores to be
150 1.1 mrg // enabled even when the thread function exits (e.g. during pthread thread
151 1.1 mrg // shutdown code).
152 1.1 mrg cur_thread_init();
153 1.1 mrg cur_thread()->ignore_interceptors++;
154 1.1 mrg const u64 kMs2Ns = 1000 * 1000;
155 1.1 mrg
156 1.1 mrg fd_t mprof_fd = kInvalidFd;
157 1.1 mrg if (flags()->profile_memory && flags()->profile_memory[0]) {
158 1.1 mrg if (internal_strcmp(flags()->profile_memory, "stdout") == 0) {
159 1.1 mrg mprof_fd = 1;
160 1.1 mrg } else if (internal_strcmp(flags()->profile_memory, "stderr") == 0) {
161 1.1 mrg mprof_fd = 2;
162 1.1 mrg } else {
163 1.1 mrg InternalScopedString filename(kMaxPathLength);
164 1.1 mrg filename.append("%s.%d", flags()->profile_memory, (int)internal_getpid());
165 1.1 mrg fd_t fd = OpenFile(filename.data(), WrOnly);
166 1.1 mrg if (fd == kInvalidFd) {
167 1.1 mrg Printf("ThreadSanitizer: failed to open memory profile file '%s'\n",
168 1.1 mrg &filename[0]);
169 1.1 mrg } else {
170 1.1 mrg mprof_fd = fd;
171 1.1 mrg }
172 1.1 mrg }
173 1.1 mrg }
174 1.1 mrg
175 1.1 mrg u64 last_flush = NanoTime();
176 1.1 mrg uptr last_rss = 0;
177 1.1 mrg for (int i = 0;
178 1.1 mrg atomic_load(&ctx->stop_background_thread, memory_order_relaxed) == 0;
179 1.1 mrg i++) {
180 1.1 mrg SleepForMillis(100);
181 1.1 mrg u64 now = NanoTime();
182 1.1 mrg
183 1.1 mrg // Flush memory if requested.
184 1.1 mrg if (flags()->flush_memory_ms > 0) {
185 1.1 mrg if (last_flush + flags()->flush_memory_ms * kMs2Ns < now) {
186 1.1 mrg VPrintf(1, "ThreadSanitizer: periodic memory flush\n");
187 1.1 mrg FlushShadowMemory();
188 1.1 mrg last_flush = NanoTime();
189 1.1 mrg }
190 1.1 mrg }
191 1.1 mrg // GetRSS can be expensive on huge programs, so don't do it every 100ms.
192 1.1 mrg if (flags()->memory_limit_mb > 0) {
193 1.1 mrg uptr rss = GetRSS();
194 1.1 mrg uptr limit = uptr(flags()->memory_limit_mb) << 20;
195 1.1 mrg VPrintf(1, "ThreadSanitizer: memory flush check"
196 1.1 mrg " RSS=%llu LAST=%llu LIMIT=%llu\n",
197 1.1 mrg (u64)rss >> 20, (u64)last_rss >> 20, (u64)limit >> 20);
198 1.1 mrg if (2 * rss > limit + last_rss) {
199 1.1 mrg VPrintf(1, "ThreadSanitizer: flushing memory due to RSS\n");
200 1.1 mrg FlushShadowMemory();
201 1.1 mrg rss = GetRSS();
202 1.1 mrg VPrintf(1, "ThreadSanitizer: memory flushed RSS=%llu\n", (u64)rss>>20);
203 1.1 mrg }
204 1.1 mrg last_rss = rss;
205 1.1 mrg }
206 1.1 mrg
207 1.1 mrg // Write memory profile if requested.
208 1.1 mrg if (mprof_fd != kInvalidFd)
209 1.1 mrg MemoryProfiler(ctx, mprof_fd, i);
210 1.1 mrg
211 1.1 mrg // Flush symbolizer cache if requested.
212 1.1 mrg if (flags()->flush_symbolizer_ms > 0) {
213 1.1 mrg u64 last = atomic_load(&ctx->last_symbolize_time_ns,
214 1.1 mrg memory_order_relaxed);
215 1.1 mrg if (last != 0 && last + flags()->flush_symbolizer_ms * kMs2Ns < now) {
216 1.1 mrg Lock l(&ctx->report_mtx);
217 1.1 mrg ScopedErrorReportLock l2;
218 1.1 mrg SymbolizeFlush();
219 1.1 mrg atomic_store(&ctx->last_symbolize_time_ns, 0, memory_order_relaxed);
220 1.1 mrg }
221 1.1 mrg }
222 1.1 mrg }
223 1.1 mrg }
224 1.1 mrg
225 1.1 mrg static void StartBackgroundThread() {
226 1.1 mrg ctx->background_thread = internal_start_thread(&BackgroundThread, 0);
227 1.1 mrg }
228 1.1 mrg
229 1.1 mrg #ifndef __mips__
230 1.1 mrg static void StopBackgroundThread() {
231 1.1 mrg atomic_store(&ctx->stop_background_thread, 1, memory_order_relaxed);
232 1.1 mrg internal_join_thread(ctx->background_thread);
233 1.1 mrg ctx->background_thread = 0;
234 1.1 mrg }
235 1.1 mrg #endif
236 1.1 mrg #endif
237 1.1 mrg
238 1.1 mrg void DontNeedShadowFor(uptr addr, uptr size) {
239 1.1 mrg ReleaseMemoryPagesToOS(MemToShadow(addr), MemToShadow(addr + size));
240 1.1 mrg }
241 1.1 mrg
242 1.1 mrg #if !SANITIZER_GO
243 1.1 mrg void UnmapShadow(ThreadState *thr, uptr addr, uptr size) {
244 1.1 mrg if (size == 0) return;
245 1.1 mrg DontNeedShadowFor(addr, size);
246 1.1 mrg ScopedGlobalProcessor sgp;
247 1.1 mrg ctx->metamap.ResetRange(thr->proc(), addr, size);
248 1.1 mrg }
249 1.1 mrg #endif
250 1.1 mrg
251 1.1 mrg void MapShadow(uptr addr, uptr size) {
252 1.1 mrg // Global data is not 64K aligned, but there are no adjacent mappings,
253 1.1 mrg // so we can get away with unaligned mapping.
254 1.1 mrg // CHECK_EQ(addr, addr & ~((64 << 10) - 1)); // windows wants 64K alignment
255 1.1 mrg const uptr kPageSize = GetPageSizeCached();
256 1.1 mrg uptr shadow_begin = RoundDownTo((uptr)MemToShadow(addr), kPageSize);
257 1.1 mrg uptr shadow_end = RoundUpTo((uptr)MemToShadow(addr + size), kPageSize);
258 1.1 mrg if (!MmapFixedNoReserve(shadow_begin, shadow_end - shadow_begin, "shadow"))
259 1.1 mrg Die();
260 1.1 mrg
261 1.1 mrg // Meta shadow is 2:1, so tread carefully.
262 1.1 mrg static bool data_mapped = false;
263 1.1 mrg static uptr mapped_meta_end = 0;
264 1.1 mrg uptr meta_begin = (uptr)MemToMeta(addr);
265 1.1 mrg uptr meta_end = (uptr)MemToMeta(addr + size);
266 1.1 mrg meta_begin = RoundDownTo(meta_begin, 64 << 10);
267 1.1 mrg meta_end = RoundUpTo(meta_end, 64 << 10);
268 1.1 mrg if (!data_mapped) {
269 1.1 mrg // First call maps data+bss.
270 1.1 mrg data_mapped = true;
271 1.1 mrg if (!MmapFixedNoReserve(meta_begin, meta_end - meta_begin, "meta shadow"))
272 1.1 mrg Die();
273 1.1 mrg } else {
274 1.1 mrg // Mapping continous heap.
275 1.1 mrg // Windows wants 64K alignment.
276 1.1 mrg meta_begin = RoundDownTo(meta_begin, 64 << 10);
277 1.1 mrg meta_end = RoundUpTo(meta_end, 64 << 10);
278 1.1 mrg if (meta_end <= mapped_meta_end)
279 1.1 mrg return;
280 1.1 mrg if (meta_begin < mapped_meta_end)
281 1.1 mrg meta_begin = mapped_meta_end;
282 1.1 mrg if (!MmapFixedNoReserve(meta_begin, meta_end - meta_begin, "meta shadow"))
283 1.1 mrg Die();
284 1.1 mrg mapped_meta_end = meta_end;
285 1.1 mrg }
286 1.1 mrg VPrintf(2, "mapped meta shadow for (%p-%p) at (%p-%p)\n",
287 1.1 mrg addr, addr+size, meta_begin, meta_end);
288 1.1 mrg }
289 1.1 mrg
290 1.1 mrg void MapThreadTrace(uptr addr, uptr size, const char *name) {
291 1.1 mrg DPrintf("#0: Mapping trace at %p-%p(0x%zx)\n", addr, addr + size, size);
292 1.1 mrg CHECK_GE(addr, TraceMemBeg());
293 1.1 mrg CHECK_LE(addr + size, TraceMemEnd());
294 1.1 mrg CHECK_EQ(addr, addr & ~((64 << 10) - 1)); // windows wants 64K alignment
295 1.1 mrg if (!MmapFixedNoReserve(addr, size, name)) {
296 1.1 mrg Printf("FATAL: ThreadSanitizer can not mmap thread trace (%p/%p)\n",
297 1.1 mrg addr, size);
298 1.1 mrg Die();
299 1.1 mrg }
300 1.1 mrg }
301 1.1 mrg
302 1.1 mrg static void CheckShadowMapping() {
303 1.1 mrg uptr beg, end;
304 1.1 mrg for (int i = 0; GetUserRegion(i, &beg, &end); i++) {
305 1.1 mrg // Skip cases for empty regions (heap definition for architectures that
306 1.1 mrg // do not use 64-bit allocator).
307 1.1 mrg if (beg == end)
308 1.1 mrg continue;
309 1.1 mrg VPrintf(3, "checking shadow region %p-%p\n", beg, end);
310 1.1 mrg uptr prev = 0;
311 1.1 mrg for (uptr p0 = beg; p0 <= end; p0 += (end - beg) / 4) {
312 1.1 mrg for (int x = -(int)kShadowCell; x <= (int)kShadowCell; x += kShadowCell) {
313 1.1 mrg const uptr p = RoundDown(p0 + x, kShadowCell);
314 1.1 mrg if (p < beg || p >= end)
315 1.1 mrg continue;
316 1.1 mrg const uptr s = MemToShadow(p);
317 1.1 mrg const uptr m = (uptr)MemToMeta(p);
318 1.1 mrg VPrintf(3, " checking pointer %p: shadow=%p meta=%p\n", p, s, m);
319 1.1 mrg CHECK(IsAppMem(p));
320 1.1 mrg CHECK(IsShadowMem(s));
321 1.1 mrg CHECK_EQ(p, ShadowToMem(s));
322 1.1 mrg CHECK(IsMetaMem(m));
323 1.1 mrg if (prev) {
324 1.1 mrg // Ensure that shadow and meta mappings are linear within a single
325 1.1 mrg // user range. Lots of code that processes memory ranges assumes it.
326 1.1 mrg const uptr prev_s = MemToShadow(prev);
327 1.1 mrg const uptr prev_m = (uptr)MemToMeta(prev);
328 1.1 mrg CHECK_EQ(s - prev_s, (p - prev) * kShadowMultiplier);
329 1.1 mrg CHECK_EQ((m - prev_m) / kMetaShadowSize,
330 1.1 mrg (p - prev) / kMetaShadowCell);
331 1.1 mrg }
332 1.1 mrg prev = p;
333 1.1 mrg }
334 1.1 mrg }
335 1.1 mrg }
336 1.1 mrg }
337 1.1 mrg
338 1.1 mrg #if !SANITIZER_GO
339 1.1 mrg static void OnStackUnwind(const SignalContext &sig, const void *,
340 1.1 mrg BufferedStackTrace *stack) {
341 1.1 mrg stack->Unwind(StackTrace::GetNextInstructionPc(sig.pc), sig.bp, sig.context,
342 1.1 mrg common_flags()->fast_unwind_on_fatal);
343 1.1 mrg }
344 1.1 mrg
345 1.1 mrg static void TsanOnDeadlySignal(int signo, void *siginfo, void *context) {
346 1.1 mrg HandleDeadlySignal(siginfo, context, GetTid(), &OnStackUnwind, nullptr);
347 1.1 mrg }
348 1.1 mrg #endif
349 1.1 mrg
350 1.1 mrg void Initialize(ThreadState *thr) {
351 1.1 mrg // Thread safe because done before all threads exist.
352 1.1 mrg static bool is_initialized = false;
353 1.1 mrg if (is_initialized)
354 1.1 mrg return;
355 1.1 mrg is_initialized = true;
356 1.1 mrg // We are not ready to handle interceptors yet.
357 1.1 mrg ScopedIgnoreInterceptors ignore;
358 1.1 mrg SanitizerToolName = "ThreadSanitizer";
359 1.1 mrg // Install tool-specific callbacks in sanitizer_common.
360 1.1 mrg SetCheckFailedCallback(TsanCheckFailed);
361 1.1 mrg
362 1.1 mrg ctx = new(ctx_placeholder) Context;
363 1.1 mrg const char *env_name = SANITIZER_GO ? "GORACE" : "TSAN_OPTIONS";
364 1.1 mrg const char *options = GetEnv(env_name);
365 1.1 mrg CacheBinaryName();
366 1.1 mrg CheckASLR();
367 1.1 mrg InitializeFlags(&ctx->flags, options, env_name);
368 1.1 mrg AvoidCVE_2016_2143();
369 1.1 mrg __sanitizer::InitializePlatformEarly();
370 1.1 mrg __tsan::InitializePlatformEarly();
371 1.1 mrg
372 1.1 mrg #if !SANITIZER_GO
373 1.1 mrg // Re-exec ourselves if we need to set additional env or command line args.
374 1.1 mrg MaybeReexec();
375 1.1 mrg
376 1.1 mrg InitializeAllocator();
377 1.1 mrg ReplaceSystemMalloc();
378 1.1 mrg #endif
379 1.1 mrg if (common_flags()->detect_deadlocks)
380 1.1 mrg ctx->dd = DDetector::Create(flags());
381 1.1 mrg Processor *proc = ProcCreate();
382 1.1 mrg ProcWire(proc, thr);
383 1.1 mrg InitializeInterceptors();
384 1.1 mrg CheckShadowMapping();
385 1.1 mrg InitializePlatform();
386 1.1 mrg InitializeMutex();
387 1.1 mrg InitializeDynamicAnnotations();
388 1.1 mrg #if !SANITIZER_GO
389 1.1 mrg InitializeShadowMemory();
390 1.1 mrg InitializeAllocatorLate();
391 1.1 mrg InstallDeadlySignalHandlers(TsanOnDeadlySignal);
392 1.1 mrg #endif
393 1.1 mrg // Setup correct file descriptor for error reports.
394 1.1 mrg __sanitizer_set_report_path(common_flags()->log_path);
395 1.1 mrg InitializeSuppressions();
396 1.1 mrg #if !SANITIZER_GO
397 1.1 mrg InitializeLibIgnore();
398 1.1 mrg Symbolizer::GetOrInit()->AddHooks(EnterSymbolizer, ExitSymbolizer);
399 1.1 mrg #endif
400 1.1 mrg
401 1.1 mrg VPrintf(1, "***** Running under ThreadSanitizer v2 (pid %d) *****\n",
402 1.1 mrg (int)internal_getpid());
403 1.1 mrg
404 1.1 mrg // Initialize thread 0.
405 1.1 mrg int tid = ThreadCreate(thr, 0, 0, true);
406 1.1 mrg CHECK_EQ(tid, 0);
407 1.1 mrg ThreadStart(thr, tid, GetTid(), ThreadType::Regular);
408 1.1 mrg #if TSAN_CONTAINS_UBSAN
409 1.1 mrg __ubsan::InitAsPlugin();
410 1.1 mrg #endif
411 1.1 mrg ctx->initialized = true;
412 1.1 mrg
413 1.1 mrg #if !SANITIZER_GO
414 1.1 mrg Symbolizer::LateInitialize();
415 1.1 mrg #endif
416 1.1 mrg
417 1.1 mrg if (flags()->stop_on_start) {
418 1.1 mrg Printf("ThreadSanitizer is suspended at startup (pid %d)."
419 1.1 mrg " Call __tsan_resume().\n",
420 1.1 mrg (int)internal_getpid());
421 1.1 mrg while (__tsan_resumed == 0) {}
422 1.1 mrg }
423 1.1 mrg
424 1.1 mrg OnInitialize();
425 1.1 mrg }
426 1.1 mrg
427 1.1 mrg void MaybeSpawnBackgroundThread() {
428 1.1 mrg // On MIPS, TSan initialization is run before
429 1.1 mrg // __pthread_initialize_minimal_internal() is finished, so we can not spawn
430 1.1 mrg // new threads.
431 1.1 mrg #if !SANITIZER_GO && !defined(__mips__)
432 1.1 mrg static atomic_uint32_t bg_thread = {};
433 1.1 mrg if (atomic_load(&bg_thread, memory_order_relaxed) == 0 &&
434 1.1 mrg atomic_exchange(&bg_thread, 1, memory_order_relaxed) == 0) {
435 1.1 mrg StartBackgroundThread();
436 1.1 mrg SetSandboxingCallback(StopBackgroundThread);
437 1.1 mrg }
438 1.1 mrg #endif
439 1.1 mrg }
440 1.1 mrg
441 1.1 mrg
442 1.1 mrg int Finalize(ThreadState *thr) {
443 1.1 mrg bool failed = false;
444 1.1 mrg
445 1.1 mrg if (common_flags()->print_module_map == 1) PrintModuleMap();
446 1.1 mrg
447 1.1 mrg if (flags()->atexit_sleep_ms > 0 && ThreadCount(thr) > 1)
448 1.1 mrg SleepForMillis(flags()->atexit_sleep_ms);
449 1.1 mrg
450 1.1 mrg // Wait for pending reports.
451 1.1 mrg ctx->report_mtx.Lock();
452 1.1 mrg { ScopedErrorReportLock l; }
453 1.1 mrg ctx->report_mtx.Unlock();
454 1.1 mrg
455 1.1 mrg #if !SANITIZER_GO
456 1.1 mrg if (Verbosity()) AllocatorPrintStats();
457 1.1 mrg #endif
458 1.1 mrg
459 1.1 mrg ThreadFinalize(thr);
460 1.1 mrg
461 1.1 mrg if (ctx->nreported) {
462 1.1 mrg failed = true;
463 1.1 mrg #if !SANITIZER_GO
464 1.1 mrg Printf("ThreadSanitizer: reported %d warnings\n", ctx->nreported);
465 1.1 mrg #else
466 1.1 mrg Printf("Found %d data race(s)\n", ctx->nreported);
467 1.1 mrg #endif
468 1.1 mrg }
469 1.1 mrg
470 1.1 mrg if (ctx->nmissed_expected) {
471 1.1 mrg failed = true;
472 1.1 mrg Printf("ThreadSanitizer: missed %d expected races\n",
473 1.1 mrg ctx->nmissed_expected);
474 1.1 mrg }
475 1.1 mrg
476 1.1 mrg if (common_flags()->print_suppressions)
477 1.1 mrg PrintMatchedSuppressions();
478 1.1 mrg #if !SANITIZER_GO
479 1.1 mrg if (flags()->print_benign)
480 1.1 mrg PrintMatchedBenignRaces();
481 1.1 mrg #endif
482 1.1 mrg
483 1.1 mrg failed = OnFinalize(failed);
484 1.1 mrg
485 1.1 mrg #if TSAN_COLLECT_STATS
486 1.1 mrg StatAggregate(ctx->stat, thr->stat);
487 1.1 mrg StatOutput(ctx->stat);
488 1.1 mrg #endif
489 1.1 mrg
490 1.1 mrg return failed ? common_flags()->exitcode : 0;
491 1.1 mrg }
492 1.1 mrg
493 1.1 mrg #if !SANITIZER_GO
494 1.1 mrg void ForkBefore(ThreadState *thr, uptr pc) {
495 1.1 mrg ctx->thread_registry->Lock();
496 1.1 mrg ctx->report_mtx.Lock();
497 1.1 mrg }
498 1.1 mrg
499 1.1 mrg void ForkParentAfter(ThreadState *thr, uptr pc) {
500 1.1 mrg ctx->report_mtx.Unlock();
501 1.1 mrg ctx->thread_registry->Unlock();
502 1.1 mrg }
503 1.1 mrg
504 1.1 mrg void ForkChildAfter(ThreadState *thr, uptr pc) {
505 1.1 mrg ctx->report_mtx.Unlock();
506 1.1 mrg ctx->thread_registry->Unlock();
507 1.1 mrg
508 1.1 mrg uptr nthread = 0;
509 1.1 mrg ctx->thread_registry->GetNumberOfThreads(0, 0, &nthread /* alive threads */);
510 1.1 mrg VPrintf(1, "ThreadSanitizer: forked new process with pid %d,"
511 1.1 mrg " parent had %d threads\n", (int)internal_getpid(), (int)nthread);
512 1.1 mrg if (nthread == 1) {
513 1.1 mrg StartBackgroundThread();
514 1.1 mrg } else {
515 1.1 mrg // We've just forked a multi-threaded process. We cannot reasonably function
516 1.1 mrg // after that (some mutexes may be locked before fork). So just enable
517 1.1 mrg // ignores for everything in the hope that we will exec soon.
518 1.1 mrg ctx->after_multithreaded_fork = true;
519 1.1 mrg thr->ignore_interceptors++;
520 1.1 mrg ThreadIgnoreBegin(thr, pc);
521 1.1 mrg ThreadIgnoreSyncBegin(thr, pc);
522 1.1 mrg }
523 1.1 mrg }
524 1.1 mrg #endif
525 1.1 mrg
526 1.1 mrg #if SANITIZER_GO
527 1.1 mrg NOINLINE
528 1.1 mrg void GrowShadowStack(ThreadState *thr) {
529 1.1 mrg const int sz = thr->shadow_stack_end - thr->shadow_stack;
530 1.1 mrg const int newsz = 2 * sz;
531 1.1 mrg uptr *newstack = (uptr*)internal_alloc(MBlockShadowStack,
532 1.1 mrg newsz * sizeof(uptr));
533 1.1 mrg internal_memcpy(newstack, thr->shadow_stack, sz * sizeof(uptr));
534 1.1 mrg internal_free(thr->shadow_stack);
535 1.1 mrg thr->shadow_stack = newstack;
536 1.1 mrg thr->shadow_stack_pos = newstack + sz;
537 1.1 mrg thr->shadow_stack_end = newstack + newsz;
538 1.1 mrg }
539 1.1 mrg #endif
540 1.1 mrg
541 1.1 mrg u32 CurrentStackId(ThreadState *thr, uptr pc) {
542 1.1 mrg if (!thr->is_inited) // May happen during bootstrap.
543 1.1 mrg return 0;
544 1.1 mrg if (pc != 0) {
545 1.1 mrg #if !SANITIZER_GO
546 1.1 mrg DCHECK_LT(thr->shadow_stack_pos, thr->shadow_stack_end);
547 1.1 mrg #else
548 1.1 mrg if (thr->shadow_stack_pos == thr->shadow_stack_end)
549 1.1 mrg GrowShadowStack(thr);
550 1.1 mrg #endif
551 1.1 mrg thr->shadow_stack_pos[0] = pc;
552 1.1 mrg thr->shadow_stack_pos++;
553 1.1 mrg }
554 1.1 mrg u32 id = StackDepotPut(
555 1.1 mrg StackTrace(thr->shadow_stack, thr->shadow_stack_pos - thr->shadow_stack));
556 1.1 mrg if (pc != 0)
557 1.1 mrg thr->shadow_stack_pos--;
558 1.1 mrg return id;
559 1.1 mrg }
560 1.1 mrg
561 1.1 mrg void TraceSwitch(ThreadState *thr) {
562 1.1 mrg #if !SANITIZER_GO
563 1.1 mrg if (ctx->after_multithreaded_fork)
564 1.1 mrg return;
565 1.1 mrg #endif
566 1.1 mrg thr->nomalloc++;
567 1.1 mrg Trace *thr_trace = ThreadTrace(thr->tid);
568 1.1 mrg Lock l(&thr_trace->mtx);
569 1.1 mrg unsigned trace = (thr->fast_state.epoch() / kTracePartSize) % TraceParts();
570 1.1 mrg TraceHeader *hdr = &thr_trace->headers[trace];
571 1.1 mrg hdr->epoch0 = thr->fast_state.epoch();
572 1.1 mrg ObtainCurrentStack(thr, 0, &hdr->stack0);
573 1.1 mrg hdr->mset0 = thr->mset;
574 1.1 mrg thr->nomalloc--;
575 1.1 mrg }
576 1.1 mrg
577 1.1 mrg Trace *ThreadTrace(int tid) {
578 1.1 mrg return (Trace*)GetThreadTraceHeader(tid);
579 1.1 mrg }
580 1.1 mrg
581 1.1 mrg uptr TraceTopPC(ThreadState *thr) {
582 1.1 mrg Event *events = (Event*)GetThreadTrace(thr->tid);
583 1.1 mrg uptr pc = events[thr->fast_state.GetTracePos()];
584 1.1 mrg return pc;
585 1.1 mrg }
586 1.1 mrg
587 1.1 mrg uptr TraceSize() {
588 1.1 mrg return (uptr)(1ull << (kTracePartSizeBits + flags()->history_size + 1));
589 1.1 mrg }
590 1.1 mrg
591 1.1 mrg uptr TraceParts() {
592 1.1 mrg return TraceSize() / kTracePartSize;
593 1.1 mrg }
594 1.1 mrg
595 1.1 mrg #if !SANITIZER_GO
596 1.1 mrg extern "C" void __tsan_trace_switch() {
597 1.1 mrg TraceSwitch(cur_thread());
598 1.1 mrg }
599 1.1 mrg
600 1.1 mrg extern "C" void __tsan_report_race() {
601 1.1 mrg ReportRace(cur_thread());
602 1.1 mrg }
603 1.1 mrg #endif
604 1.1 mrg
605 1.1 mrg ALWAYS_INLINE
606 1.1 mrg Shadow LoadShadow(u64 *p) {
607 1.1 mrg u64 raw = atomic_load((atomic_uint64_t*)p, memory_order_relaxed);
608 1.1 mrg return Shadow(raw);
609 1.1 mrg }
610 1.1 mrg
611 1.1 mrg ALWAYS_INLINE
612 1.1 mrg void StoreShadow(u64 *sp, u64 s) {
613 1.1 mrg atomic_store((atomic_uint64_t*)sp, s, memory_order_relaxed);
614 1.1 mrg }
615 1.1 mrg
616 1.1 mrg ALWAYS_INLINE
617 1.1 mrg void StoreIfNotYetStored(u64 *sp, u64 *s) {
618 1.1 mrg StoreShadow(sp, *s);
619 1.1 mrg *s = 0;
620 1.1 mrg }
621 1.1 mrg
622 1.1 mrg ALWAYS_INLINE
623 1.1 mrg void HandleRace(ThreadState *thr, u64 *shadow_mem,
624 1.1 mrg Shadow cur, Shadow old) {
625 1.1 mrg thr->racy_state[0] = cur.raw();
626 1.1 mrg thr->racy_state[1] = old.raw();
627 1.1 mrg thr->racy_shadow_addr = shadow_mem;
628 1.1 mrg #if !SANITIZER_GO
629 1.1 mrg HACKY_CALL(__tsan_report_race);
630 1.1 mrg #else
631 1.1 mrg ReportRace(thr);
632 1.1 mrg #endif
633 1.1 mrg }
634 1.1 mrg
635 1.1 mrg static inline bool HappensBefore(Shadow old, ThreadState *thr) {
636 1.1 mrg return thr->clock.get(old.TidWithIgnore()) >= old.epoch();
637 1.1 mrg }
638 1.1 mrg
639 1.1 mrg ALWAYS_INLINE
640 1.1 mrg void MemoryAccessImpl1(ThreadState *thr, uptr addr,
641 1.1 mrg int kAccessSizeLog, bool kAccessIsWrite, bool kIsAtomic,
642 1.1 mrg u64 *shadow_mem, Shadow cur) {
643 1.1 mrg StatInc(thr, StatMop);
644 1.1 mrg StatInc(thr, kAccessIsWrite ? StatMopWrite : StatMopRead);
645 1.1 mrg StatInc(thr, (StatType)(StatMop1 + kAccessSizeLog));
646 1.1 mrg
647 1.1 mrg // This potentially can live in an MMX/SSE scratch register.
648 1.1 mrg // The required intrinsics are:
649 1.1 mrg // __m128i _mm_move_epi64(__m128i*);
650 1.1 mrg // _mm_storel_epi64(u64*, __m128i);
651 1.1 mrg u64 store_word = cur.raw();
652 1.1 mrg bool stored = false;
653 1.1 mrg
654 1.1 mrg // scan all the shadow values and dispatch to 4 categories:
655 1.1 mrg // same, replace, candidate and race (see comments below).
656 1.1 mrg // we consider only 3 cases regarding access sizes:
657 1.1 mrg // equal, intersect and not intersect. initially I considered
658 1.1 mrg // larger and smaller as well, it allowed to replace some
659 1.1 mrg // 'candidates' with 'same' or 'replace', but I think
660 1.1 mrg // it's just not worth it (performance- and complexity-wise).
661 1.1 mrg
662 1.1 mrg Shadow old(0);
663 1.1 mrg
664 1.1 mrg // It release mode we manually unroll the loop,
665 1.1 mrg // because empirically gcc generates better code this way.
666 1.1 mrg // However, we can't afford unrolling in debug mode, because the function
667 1.1 mrg // consumes almost 4K of stack. Gtest gives only 4K of stack to death test
668 1.1 mrg // threads, which is not enough for the unrolled loop.
669 1.1 mrg #if SANITIZER_DEBUG
670 1.1 mrg for (int idx = 0; idx < 4; idx++) {
671 1.1 mrg #include "tsan_update_shadow_word_inl.h"
672 1.1 mrg }
673 1.1 mrg #else
674 1.1 mrg int idx = 0;
675 1.1 mrg #include "tsan_update_shadow_word_inl.h"
676 1.1 mrg idx = 1;
677 1.1 mrg if (stored) {
678 1.1 mrg #include "tsan_update_shadow_word_inl.h"
679 1.1 mrg } else {
680 1.1 mrg #include "tsan_update_shadow_word_inl.h"
681 1.1 mrg }
682 1.1 mrg idx = 2;
683 1.1 mrg if (stored) {
684 1.1 mrg #include "tsan_update_shadow_word_inl.h"
685 1.1 mrg } else {
686 1.1 mrg #include "tsan_update_shadow_word_inl.h"
687 1.1 mrg }
688 1.1 mrg idx = 3;
689 1.1 mrg if (stored) {
690 1.1 mrg #include "tsan_update_shadow_word_inl.h"
691 1.1 mrg } else {
692 1.1 mrg #include "tsan_update_shadow_word_inl.h"
693 1.1 mrg }
694 1.1 mrg #endif
695 1.1 mrg
696 1.1 mrg // we did not find any races and had already stored
697 1.1 mrg // the current access info, so we are done
698 1.1 mrg if (LIKELY(stored))
699 1.1 mrg return;
700 1.1 mrg // choose a random candidate slot and replace it
701 1.1 mrg StoreShadow(shadow_mem + (cur.epoch() % kShadowCnt), store_word);
702 1.1 mrg StatInc(thr, StatShadowReplace);
703 1.1 mrg return;
704 1.1 mrg RACE:
705 1.1 mrg HandleRace(thr, shadow_mem, cur, old);
706 1.1 mrg return;
707 1.1 mrg }
708 1.1 mrg
709 1.1 mrg void UnalignedMemoryAccess(ThreadState *thr, uptr pc, uptr addr,
710 1.1 mrg int size, bool kAccessIsWrite, bool kIsAtomic) {
711 1.1 mrg while (size) {
712 1.1 mrg int size1 = 1;
713 1.1 mrg int kAccessSizeLog = kSizeLog1;
714 1.1 mrg if (size >= 8 && (addr & ~7) == ((addr + 7) & ~7)) {
715 1.1 mrg size1 = 8;
716 1.1 mrg kAccessSizeLog = kSizeLog8;
717 1.1 mrg } else if (size >= 4 && (addr & ~7) == ((addr + 3) & ~7)) {
718 1.1 mrg size1 = 4;
719 1.1 mrg kAccessSizeLog = kSizeLog4;
720 1.1 mrg } else if (size >= 2 && (addr & ~7) == ((addr + 1) & ~7)) {
721 1.1 mrg size1 = 2;
722 1.1 mrg kAccessSizeLog = kSizeLog2;
723 1.1 mrg }
724 1.1 mrg MemoryAccess(thr, pc, addr, kAccessSizeLog, kAccessIsWrite, kIsAtomic);
725 1.1 mrg addr += size1;
726 1.1 mrg size -= size1;
727 1.1 mrg }
728 1.1 mrg }
729 1.1 mrg
730 1.1 mrg ALWAYS_INLINE
731 1.1 mrg bool ContainsSameAccessSlow(u64 *s, u64 a, u64 sync_epoch, bool is_write) {
732 1.1 mrg Shadow cur(a);
733 1.1 mrg for (uptr i = 0; i < kShadowCnt; i++) {
734 1.1 mrg Shadow old(LoadShadow(&s[i]));
735 1.1 mrg if (Shadow::Addr0AndSizeAreEqual(cur, old) &&
736 1.1 mrg old.TidWithIgnore() == cur.TidWithIgnore() &&
737 1.1 mrg old.epoch() > sync_epoch &&
738 1.1 mrg old.IsAtomic() == cur.IsAtomic() &&
739 1.1 mrg old.IsRead() <= cur.IsRead())
740 1.1 mrg return true;
741 1.1 mrg }
742 1.1 mrg return false;
743 1.1 mrg }
744 1.1 mrg
745 1.1 mrg #if defined(__SSE3__)
746 1.1 mrg #define SHUF(v0, v1, i0, i1, i2, i3) _mm_castps_si128(_mm_shuffle_ps( \
747 1.1 mrg _mm_castsi128_ps(v0), _mm_castsi128_ps(v1), \
748 1.1 mrg (i0)*1 + (i1)*4 + (i2)*16 + (i3)*64))
749 1.1 mrg ALWAYS_INLINE
750 1.1 mrg bool ContainsSameAccessFast(u64 *s, u64 a, u64 sync_epoch, bool is_write) {
751 1.1 mrg // This is an optimized version of ContainsSameAccessSlow.
752 1.1 mrg // load current access into access[0:63]
753 1.1 mrg const m128 access = _mm_cvtsi64_si128(a);
754 1.1 mrg // duplicate high part of access in addr0:
755 1.1 mrg // addr0[0:31] = access[32:63]
756 1.1 mrg // addr0[32:63] = access[32:63]
757 1.1 mrg // addr0[64:95] = access[32:63]
758 1.1 mrg // addr0[96:127] = access[32:63]
759 1.1 mrg const m128 addr0 = SHUF(access, access, 1, 1, 1, 1);
760 1.1 mrg // load 4 shadow slots
761 1.1 mrg const m128 shadow0 = _mm_load_si128((__m128i*)s);
762 1.1 mrg const m128 shadow1 = _mm_load_si128((__m128i*)s + 1);
763 1.1 mrg // load high parts of 4 shadow slots into addr_vect:
764 1.1 mrg // addr_vect[0:31] = shadow0[32:63]
765 1.1 mrg // addr_vect[32:63] = shadow0[96:127]
766 1.1 mrg // addr_vect[64:95] = shadow1[32:63]
767 1.1 mrg // addr_vect[96:127] = shadow1[96:127]
768 1.1 mrg m128 addr_vect = SHUF(shadow0, shadow1, 1, 3, 1, 3);
769 1.1 mrg if (!is_write) {
770 1.1 mrg // set IsRead bit in addr_vect
771 1.1 mrg const m128 rw_mask1 = _mm_cvtsi64_si128(1<<15);
772 1.1 mrg const m128 rw_mask = SHUF(rw_mask1, rw_mask1, 0, 0, 0, 0);
773 1.1 mrg addr_vect = _mm_or_si128(addr_vect, rw_mask);
774 1.1 mrg }
775 1.1 mrg // addr0 == addr_vect?
776 1.1 mrg const m128 addr_res = _mm_cmpeq_epi32(addr0, addr_vect);
777 1.1 mrg // epoch1[0:63] = sync_epoch
778 1.1 mrg const m128 epoch1 = _mm_cvtsi64_si128(sync_epoch);
779 1.1 mrg // epoch[0:31] = sync_epoch[0:31]
780 1.1 mrg // epoch[32:63] = sync_epoch[0:31]
781 1.1 mrg // epoch[64:95] = sync_epoch[0:31]
782 1.1 mrg // epoch[96:127] = sync_epoch[0:31]
783 1.1 mrg const m128 epoch = SHUF(epoch1, epoch1, 0, 0, 0, 0);
784 1.1 mrg // load low parts of shadow cell epochs into epoch_vect:
785 1.1 mrg // epoch_vect[0:31] = shadow0[0:31]
786 1.1 mrg // epoch_vect[32:63] = shadow0[64:95]
787 1.1 mrg // epoch_vect[64:95] = shadow1[0:31]
788 1.1 mrg // epoch_vect[96:127] = shadow1[64:95]
789 1.1 mrg const m128 epoch_vect = SHUF(shadow0, shadow1, 0, 2, 0, 2);
790 1.1 mrg // epoch_vect >= sync_epoch?
791 1.1 mrg const m128 epoch_res = _mm_cmpgt_epi32(epoch_vect, epoch);
792 1.1 mrg // addr_res & epoch_res
793 1.1 mrg const m128 res = _mm_and_si128(addr_res, epoch_res);
794 1.1 mrg // mask[0] = res[7]
795 1.1 mrg // mask[1] = res[15]
796 1.1 mrg // ...
797 1.1 mrg // mask[15] = res[127]
798 1.1 mrg const int mask = _mm_movemask_epi8(res);
799 1.1 mrg return mask != 0;
800 1.1 mrg }
801 1.1 mrg #endif
802 1.1 mrg
803 1.1 mrg ALWAYS_INLINE
804 1.1 mrg bool ContainsSameAccess(u64 *s, u64 a, u64 sync_epoch, bool is_write) {
805 1.1 mrg #if defined(__SSE3__)
806 1.1 mrg bool res = ContainsSameAccessFast(s, a, sync_epoch, is_write);
807 1.1 mrg // NOTE: this check can fail if the shadow is concurrently mutated
808 1.1 mrg // by other threads. But it still can be useful if you modify
809 1.1 mrg // ContainsSameAccessFast and want to ensure that it's not completely broken.
810 1.1 mrg // DCHECK_EQ(res, ContainsSameAccessSlow(s, a, sync_epoch, is_write));
811 1.1 mrg return res;
812 1.1 mrg #else
813 1.1 mrg return ContainsSameAccessSlow(s, a, sync_epoch, is_write);
814 1.1 mrg #endif
815 1.1 mrg }
816 1.1 mrg
817 1.1 mrg ALWAYS_INLINE USED
818 1.1 mrg void MemoryAccess(ThreadState *thr, uptr pc, uptr addr,
819 1.1 mrg int kAccessSizeLog, bool kAccessIsWrite, bool kIsAtomic) {
820 1.1 mrg u64 *shadow_mem = (u64*)MemToShadow(addr);
821 1.1 mrg DPrintf2("#%d: MemoryAccess: @%p %p size=%d"
822 1.1 mrg " is_write=%d shadow_mem=%p {%zx, %zx, %zx, %zx}\n",
823 1.1 mrg (int)thr->fast_state.tid(), (void*)pc, (void*)addr,
824 1.1 mrg (int)(1 << kAccessSizeLog), kAccessIsWrite, shadow_mem,
825 1.1 mrg (uptr)shadow_mem[0], (uptr)shadow_mem[1],
826 1.1 mrg (uptr)shadow_mem[2], (uptr)shadow_mem[3]);
827 1.1 mrg #if SANITIZER_DEBUG
828 1.1 mrg if (!IsAppMem(addr)) {
829 1.1 mrg Printf("Access to non app mem %zx\n", addr);
830 1.1 mrg DCHECK(IsAppMem(addr));
831 1.1 mrg }
832 1.1 mrg if (!IsShadowMem((uptr)shadow_mem)) {
833 1.1 mrg Printf("Bad shadow addr %p (%zx)\n", shadow_mem, addr);
834 1.1 mrg DCHECK(IsShadowMem((uptr)shadow_mem));
835 1.1 mrg }
836 1.1 mrg #endif
837 1.1 mrg
838 1.1 mrg if (!SANITIZER_GO && !kAccessIsWrite && *shadow_mem == kShadowRodata) {
839 1.1 mrg // Access to .rodata section, no races here.
840 1.1 mrg // Measurements show that it can be 10-20% of all memory accesses.
841 1.1 mrg StatInc(thr, StatMop);
842 1.1 mrg StatInc(thr, kAccessIsWrite ? StatMopWrite : StatMopRead);
843 1.1 mrg StatInc(thr, (StatType)(StatMop1 + kAccessSizeLog));
844 1.1 mrg StatInc(thr, StatMopRodata);
845 1.1 mrg return;
846 1.1 mrg }
847 1.1 mrg
848 1.1 mrg FastState fast_state = thr->fast_state;
849 1.1 mrg if (UNLIKELY(fast_state.GetIgnoreBit())) {
850 1.1 mrg StatInc(thr, StatMop);
851 1.1 mrg StatInc(thr, kAccessIsWrite ? StatMopWrite : StatMopRead);
852 1.1 mrg StatInc(thr, (StatType)(StatMop1 + kAccessSizeLog));
853 1.1 mrg StatInc(thr, StatMopIgnored);
854 1.1 mrg return;
855 1.1 mrg }
856 1.1 mrg
857 1.1 mrg Shadow cur(fast_state);
858 1.1 mrg cur.SetAddr0AndSizeLog(addr & 7, kAccessSizeLog);
859 1.1 mrg cur.SetWrite(kAccessIsWrite);
860 1.1 mrg cur.SetAtomic(kIsAtomic);
861 1.1 mrg
862 1.1 mrg if (LIKELY(ContainsSameAccess(shadow_mem, cur.raw(),
863 1.1 mrg thr->fast_synch_epoch, kAccessIsWrite))) {
864 1.1 mrg StatInc(thr, StatMop);
865 1.1 mrg StatInc(thr, kAccessIsWrite ? StatMopWrite : StatMopRead);
866 1.1 mrg StatInc(thr, (StatType)(StatMop1 + kAccessSizeLog));
867 1.1 mrg StatInc(thr, StatMopSame);
868 1.1 mrg return;
869 1.1 mrg }
870 1.1 mrg
871 1.1 mrg if (kCollectHistory) {
872 1.1 mrg fast_state.IncrementEpoch();
873 1.1 mrg thr->fast_state = fast_state;
874 1.1 mrg TraceAddEvent(thr, fast_state, EventTypeMop, pc);
875 1.1 mrg cur.IncrementEpoch();
876 1.1 mrg }
877 1.1 mrg
878 1.1 mrg MemoryAccessImpl1(thr, addr, kAccessSizeLog, kAccessIsWrite, kIsAtomic,
879 1.1 mrg shadow_mem, cur);
880 1.1 mrg }
881 1.1 mrg
882 1.1 mrg // Called by MemoryAccessRange in tsan_rtl_thread.cpp
883 1.1 mrg ALWAYS_INLINE USED
884 1.1 mrg void MemoryAccessImpl(ThreadState *thr, uptr addr,
885 1.1 mrg int kAccessSizeLog, bool kAccessIsWrite, bool kIsAtomic,
886 1.1 mrg u64 *shadow_mem, Shadow cur) {
887 1.1 mrg if (LIKELY(ContainsSameAccess(shadow_mem, cur.raw(),
888 1.1 mrg thr->fast_synch_epoch, kAccessIsWrite))) {
889 1.1 mrg StatInc(thr, StatMop);
890 1.1 mrg StatInc(thr, kAccessIsWrite ? StatMopWrite : StatMopRead);
891 1.1 mrg StatInc(thr, (StatType)(StatMop1 + kAccessSizeLog));
892 1.1 mrg StatInc(thr, StatMopSame);
893 1.1 mrg return;
894 1.1 mrg }
895 1.1 mrg
896 1.1 mrg MemoryAccessImpl1(thr, addr, kAccessSizeLog, kAccessIsWrite, kIsAtomic,
897 1.1 mrg shadow_mem, cur);
898 1.1 mrg }
899 1.1 mrg
900 1.1 mrg static void MemoryRangeSet(ThreadState *thr, uptr pc, uptr addr, uptr size,
901 1.1 mrg u64 val) {
902 1.1 mrg (void)thr;
903 1.1 mrg (void)pc;
904 1.1 mrg if (size == 0)
905 1.1 mrg return;
906 1.1 mrg // FIXME: fix me.
907 1.1 mrg uptr offset = addr % kShadowCell;
908 1.1 mrg if (offset) {
909 1.1 mrg offset = kShadowCell - offset;
910 1.1 mrg if (size <= offset)
911 1.1 mrg return;
912 1.1 mrg addr += offset;
913 1.1 mrg size -= offset;
914 1.1 mrg }
915 1.1 mrg DCHECK_EQ(addr % 8, 0);
916 1.1 mrg // If a user passes some insane arguments (memset(0)),
917 1.1 mrg // let it just crash as usual.
918 1.1 mrg if (!IsAppMem(addr) || !IsAppMem(addr + size - 1))
919 1.1 mrg return;
920 1.1 mrg // Don't want to touch lots of shadow memory.
921 1.1 mrg // If a program maps 10MB stack, there is no need reset the whole range.
922 1.1 mrg size = (size + (kShadowCell - 1)) & ~(kShadowCell - 1);
923 1.1 mrg // UnmapOrDie/MmapFixedNoReserve does not work on Windows.
924 1.1 mrg if (SANITIZER_WINDOWS || size < common_flags()->clear_shadow_mmap_threshold) {
925 1.1 mrg u64 *p = (u64*)MemToShadow(addr);
926 1.1 mrg CHECK(IsShadowMem((uptr)p));
927 1.1 mrg CHECK(IsShadowMem((uptr)(p + size * kShadowCnt / kShadowCell - 1)));
928 1.1 mrg // FIXME: may overwrite a part outside the region
929 1.1 mrg for (uptr i = 0; i < size / kShadowCell * kShadowCnt;) {
930 1.1 mrg p[i++] = val;
931 1.1 mrg for (uptr j = 1; j < kShadowCnt; j++)
932 1.1 mrg p[i++] = 0;
933 1.1 mrg }
934 1.1 mrg } else {
935 1.1 mrg // The region is big, reset only beginning and end.
936 1.1 mrg const uptr kPageSize = GetPageSizeCached();
937 1.1 mrg u64 *begin = (u64*)MemToShadow(addr);
938 1.1 mrg u64 *end = begin + size / kShadowCell * kShadowCnt;
939 1.1 mrg u64 *p = begin;
940 1.1 mrg // Set at least first kPageSize/2 to page boundary.
941 1.1 mrg while ((p < begin + kPageSize / kShadowSize / 2) || ((uptr)p % kPageSize)) {
942 1.1 mrg *p++ = val;
943 1.1 mrg for (uptr j = 1; j < kShadowCnt; j++)
944 1.1 mrg *p++ = 0;
945 1.1 mrg }
946 1.1 mrg // Reset middle part.
947 1.1 mrg u64 *p1 = p;
948 1.1 mrg p = RoundDown(end, kPageSize);
949 1.1 mrg UnmapOrDie((void*)p1, (uptr)p - (uptr)p1);
950 1.1 mrg if (!MmapFixedNoReserve((uptr)p1, (uptr)p - (uptr)p1))
951 1.1 mrg Die();
952 1.1 mrg // Set the ending.
953 1.1 mrg while (p < end) {
954 1.1 mrg *p++ = val;
955 1.1 mrg for (uptr j = 1; j < kShadowCnt; j++)
956 1.1 mrg *p++ = 0;
957 1.1 mrg }
958 1.1 mrg }
959 1.1 mrg }
960 1.1 mrg
961 1.1 mrg void MemoryResetRange(ThreadState *thr, uptr pc, uptr addr, uptr size) {
962 1.1 mrg MemoryRangeSet(thr, pc, addr, size, 0);
963 1.1 mrg }
964 1.1 mrg
965 1.1 mrg void MemoryRangeFreed(ThreadState *thr, uptr pc, uptr addr, uptr size) {
966 1.1 mrg // Processing more than 1k (4k of shadow) is expensive,
967 1.1 mrg // can cause excessive memory consumption (user does not necessary touch
968 1.1 mrg // the whole range) and most likely unnecessary.
969 1.1 mrg if (size > 1024)
970 1.1 mrg size = 1024;
971 1.1 mrg CHECK_EQ(thr->is_freeing, false);
972 1.1 mrg thr->is_freeing = true;
973 1.1 mrg MemoryAccessRange(thr, pc, addr, size, true);
974 1.1 mrg thr->is_freeing = false;
975 1.1 mrg if (kCollectHistory) {
976 1.1 mrg thr->fast_state.IncrementEpoch();
977 1.1 mrg TraceAddEvent(thr, thr->fast_state, EventTypeMop, pc);
978 1.1 mrg }
979 1.1 mrg Shadow s(thr->fast_state);
980 1.1 mrg s.ClearIgnoreBit();
981 1.1 mrg s.MarkAsFreed();
982 1.1 mrg s.SetWrite(true);
983 1.1 mrg s.SetAddr0AndSizeLog(0, 3);
984 1.1 mrg MemoryRangeSet(thr, pc, addr, size, s.raw());
985 1.1 mrg }
986 1.1 mrg
987 1.1 mrg void MemoryRangeImitateWrite(ThreadState *thr, uptr pc, uptr addr, uptr size) {
988 1.1 mrg if (kCollectHistory) {
989 1.1 mrg thr->fast_state.IncrementEpoch();
990 1.1 mrg TraceAddEvent(thr, thr->fast_state, EventTypeMop, pc);
991 1.1 mrg }
992 1.1 mrg Shadow s(thr->fast_state);
993 1.1 mrg s.ClearIgnoreBit();
994 1.1 mrg s.SetWrite(true);
995 1.1 mrg s.SetAddr0AndSizeLog(0, 3);
996 1.1 mrg MemoryRangeSet(thr, pc, addr, size, s.raw());
997 1.1 mrg }
998 1.1 mrg
999 1.1 mrg void MemoryRangeImitateWriteOrResetRange(ThreadState *thr, uptr pc, uptr addr,
1000 1.1 mrg uptr size) {
1001 1.1 mrg if (thr->ignore_reads_and_writes == 0)
1002 1.1 mrg MemoryRangeImitateWrite(thr, pc, addr, size);
1003 1.1 mrg else
1004 1.1 mrg MemoryResetRange(thr, pc, addr, size);
1005 1.1 mrg }
1006 1.1 mrg
1007 1.1 mrg ALWAYS_INLINE USED
1008 1.1 mrg void FuncEntry(ThreadState *thr, uptr pc) {
1009 1.1 mrg StatInc(thr, StatFuncEnter);
1010 1.1 mrg DPrintf2("#%d: FuncEntry %p\n", (int)thr->fast_state.tid(), (void*)pc);
1011 1.1 mrg if (kCollectHistory) {
1012 1.1 mrg thr->fast_state.IncrementEpoch();
1013 1.1 mrg TraceAddEvent(thr, thr->fast_state, EventTypeFuncEnter, pc);
1014 1.1 mrg }
1015 1.1 mrg
1016 1.1 mrg // Shadow stack maintenance can be replaced with
1017 1.1 mrg // stack unwinding during trace switch (which presumably must be faster).
1018 1.1 mrg DCHECK_GE(thr->shadow_stack_pos, thr->shadow_stack);
1019 1.1 mrg #if !SANITIZER_GO
1020 1.1 mrg DCHECK_LT(thr->shadow_stack_pos, thr->shadow_stack_end);
1021 1.1 mrg #else
1022 1.1 mrg if (thr->shadow_stack_pos == thr->shadow_stack_end)
1023 1.1 mrg GrowShadowStack(thr);
1024 1.1 mrg #endif
1025 1.1 mrg thr->shadow_stack_pos[0] = pc;
1026 1.1 mrg thr->shadow_stack_pos++;
1027 1.1 mrg }
1028 1.1 mrg
1029 1.1 mrg ALWAYS_INLINE USED
1030 1.1 mrg void FuncExit(ThreadState *thr) {
1031 1.1 mrg StatInc(thr, StatFuncExit);
1032 1.1 mrg DPrintf2("#%d: FuncExit\n", (int)thr->fast_state.tid());
1033 1.1 mrg if (kCollectHistory) {
1034 1.1 mrg thr->fast_state.IncrementEpoch();
1035 1.1 mrg TraceAddEvent(thr, thr->fast_state, EventTypeFuncExit, 0);
1036 1.1 mrg }
1037 1.1 mrg
1038 1.1 mrg DCHECK_GT(thr->shadow_stack_pos, thr->shadow_stack);
1039 1.1 mrg #if !SANITIZER_GO
1040 1.1 mrg DCHECK_LT(thr->shadow_stack_pos, thr->shadow_stack_end);
1041 1.1 mrg #endif
1042 1.1 mrg thr->shadow_stack_pos--;
1043 1.1 mrg }
1044 1.1 mrg
1045 1.1 mrg void ThreadIgnoreBegin(ThreadState *thr, uptr pc, bool save_stack) {
1046 1.1 mrg DPrintf("#%d: ThreadIgnoreBegin\n", thr->tid);
1047 1.1 mrg thr->ignore_reads_and_writes++;
1048 1.1 mrg CHECK_GT(thr->ignore_reads_and_writes, 0);
1049 1.1 mrg thr->fast_state.SetIgnoreBit();
1050 1.1 mrg #if !SANITIZER_GO
1051 1.1 mrg if (save_stack && !ctx->after_multithreaded_fork)
1052 1.1 mrg thr->mop_ignore_set.Add(CurrentStackId(thr, pc));
1053 1.1 mrg #endif
1054 1.1 mrg }
1055 1.1 mrg
1056 1.1 mrg void ThreadIgnoreEnd(ThreadState *thr, uptr pc) {
1057 1.1 mrg DPrintf("#%d: ThreadIgnoreEnd\n", thr->tid);
1058 1.1 mrg CHECK_GT(thr->ignore_reads_and_writes, 0);
1059 1.1 mrg thr->ignore_reads_and_writes--;
1060 1.1 mrg if (thr->ignore_reads_and_writes == 0) {
1061 1.1 mrg thr->fast_state.ClearIgnoreBit();
1062 1.1 mrg #if !SANITIZER_GO
1063 1.1 mrg thr->mop_ignore_set.Reset();
1064 1.1 mrg #endif
1065 1.1 mrg }
1066 1.1 mrg }
1067 1.1 mrg
1068 1.1 mrg #if !SANITIZER_GO
1069 1.1 mrg extern "C" SANITIZER_INTERFACE_ATTRIBUTE
1070 1.1 mrg uptr __tsan_testonly_shadow_stack_current_size() {
1071 1.1 mrg ThreadState *thr = cur_thread();
1072 1.1 mrg return thr->shadow_stack_pos - thr->shadow_stack;
1073 1.1 mrg }
1074 1.1 mrg #endif
1075 1.1 mrg
1076 1.1 mrg void ThreadIgnoreSyncBegin(ThreadState *thr, uptr pc, bool save_stack) {
1077 1.1 mrg DPrintf("#%d: ThreadIgnoreSyncBegin\n", thr->tid);
1078 1.1 mrg thr->ignore_sync++;
1079 1.1 mrg CHECK_GT(thr->ignore_sync, 0);
1080 1.1 mrg #if !SANITIZER_GO
1081 1.1 mrg if (save_stack && !ctx->after_multithreaded_fork)
1082 1.1 mrg thr->sync_ignore_set.Add(CurrentStackId(thr, pc));
1083 1.1 mrg #endif
1084 1.1 mrg }
1085 1.1 mrg
1086 1.1 mrg void ThreadIgnoreSyncEnd(ThreadState *thr, uptr pc) {
1087 1.1 mrg DPrintf("#%d: ThreadIgnoreSyncEnd\n", thr->tid);
1088 1.1 mrg CHECK_GT(thr->ignore_sync, 0);
1089 1.1 mrg thr->ignore_sync--;
1090 1.1 mrg #if !SANITIZER_GO
1091 1.1 mrg if (thr->ignore_sync == 0)
1092 1.1 mrg thr->sync_ignore_set.Reset();
1093 1.1 mrg #endif
1094 1.1 mrg }
1095 1.1 mrg
1096 1.1 mrg bool MD5Hash::operator==(const MD5Hash &other) const {
1097 1.1 mrg return hash[0] == other.hash[0] && hash[1] == other.hash[1];
1098 1.1 mrg }
1099 1.1 mrg
1100 1.1 mrg #if SANITIZER_DEBUG
1101 1.1 mrg void build_consistency_debug() {}
1102 1.1 mrg #else
1103 1.1 mrg void build_consistency_release() {}
1104 1.1 mrg #endif
1105 1.1 mrg
1106 1.1 mrg #if TSAN_COLLECT_STATS
1107 1.1 mrg void build_consistency_stats() {}
1108 1.1 mrg #else
1109 1.1 mrg void build_consistency_nostats() {}
1110 1.1 mrg #endif
1111 1.1 mrg
1112 1.1 mrg } // namespace __tsan
1113 1.1 mrg
1114 1.1 mrg #if !SANITIZER_GO
1115 1.1 mrg // Must be included in this file to make sure everything is inlined.
1116 1.1 mrg #include "tsan_interface_inl.h"
1117 1.1 mrg #endif
1118