1 //===-- asan_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 AddressSanitizer, an address sanity checker. 10 // 11 // Thread-related code. 12 //===----------------------------------------------------------------------===// 13 #include "asan_allocator.h" 14 #include "asan_interceptors.h" 15 #include "asan_poisoning.h" 16 #include "asan_stack.h" 17 #include "asan_thread.h" 18 #include "asan_mapping.h" 19 #include "sanitizer_common/sanitizer_common.h" 20 #include "sanitizer_common/sanitizer_placement_new.h" 21 #include "sanitizer_common/sanitizer_stackdepot.h" 22 #include "sanitizer_common/sanitizer_tls_get_addr.h" 23 #include "lsan/lsan_common.h" 24 25 namespace __asan { 26 27 // AsanThreadContext implementation. 28 29 void AsanThreadContext::OnCreated(void *arg) { 30 CreateThreadContextArgs *args = static_cast<CreateThreadContextArgs*>(arg); 31 if (args->stack) 32 stack_id = StackDepotPut(*args->stack); 33 thread = args->thread; 34 thread->set_context(this); 35 } 36 37 void AsanThreadContext::OnFinished() { 38 // Drop the link to the AsanThread object. 39 thread = nullptr; 40 } 41 42 // MIPS requires aligned address 43 static ALIGNED(16) char thread_registry_placeholder[sizeof(ThreadRegistry)]; 44 static ThreadRegistry *asan_thread_registry; 45 46 static BlockingMutex mu_for_thread_context(LINKER_INITIALIZED); 47 static LowLevelAllocator allocator_for_thread_context; 48 49 static ThreadContextBase *GetAsanThreadContext(u32 tid) { 50 BlockingMutexLock lock(&mu_for_thread_context); 51 return new(allocator_for_thread_context) AsanThreadContext(tid); 52 } 53 54 ThreadRegistry &asanThreadRegistry() { 55 static bool initialized; 56 // Don't worry about thread_safety - this should be called when there is 57 // a single thread. 58 if (!initialized) { 59 // Never reuse ASan threads: we store pointer to AsanThreadContext 60 // in TSD and can't reliably tell when no more TSD destructors will 61 // be called. It would be wrong to reuse AsanThreadContext for another 62 // thread before all TSD destructors will be called for it. 63 asan_thread_registry = 64 new (thread_registry_placeholder) ThreadRegistry(GetAsanThreadContext); 65 initialized = true; 66 } 67 return *asan_thread_registry; 68 } 69 70 AsanThreadContext *GetThreadContextByTidLocked(u32 tid) { 71 return static_cast<AsanThreadContext *>( 72 asanThreadRegistry().GetThreadLocked(tid)); 73 } 74 75 // AsanThread implementation. 76 77 AsanThread *AsanThread::Create(thread_callback_t start_routine, void *arg, 78 u32 parent_tid, StackTrace *stack, 79 bool detached) { 80 uptr PageSize = GetPageSizeCached(); 81 uptr size = RoundUpTo(sizeof(AsanThread), PageSize); 82 AsanThread *thread = (AsanThread*)MmapOrDie(size, __func__); 83 thread->start_routine_ = start_routine; 84 thread->arg_ = arg; 85 AsanThreadContext::CreateThreadContextArgs args = {thread, stack}; 86 asanThreadRegistry().CreateThread(*reinterpret_cast<uptr *>(thread), detached, 87 parent_tid, &args); 88 89 return thread; 90 } 91 92 void AsanThread::TSDDtor(void *tsd) { 93 AsanThreadContext *context = (AsanThreadContext*)tsd; 94 VReport(1, "T%d TSDDtor\n", context->tid); 95 if (context->thread) 96 context->thread->Destroy(); 97 } 98 99 void AsanThread::Destroy() { 100 int tid = this->tid(); 101 VReport(1, "T%d exited\n", tid); 102 103 bool was_running = 104 (asanThreadRegistry().FinishThread(tid) == ThreadStatusRunning); 105 if (was_running) { 106 if (AsanThread *thread = GetCurrentThread()) 107 CHECK_EQ(this, thread); 108 malloc_storage().CommitBack(); 109 if (common_flags()->use_sigaltstack) 110 UnsetAlternateSignalStack(); 111 FlushToDeadThreadStats(&stats_); 112 // We also clear the shadow on thread destruction because 113 // some code may still be executing in later TSD destructors 114 // and we don't want it to have any poisoned stack. 115 ClearShadowForThreadStackAndTLS(); 116 DeleteFakeStack(tid); 117 } else { 118 CHECK_NE(this, GetCurrentThread()); 119 } 120 uptr size = RoundUpTo(sizeof(AsanThread), GetPageSizeCached()); 121 UnmapOrDie(this, size); 122 if (was_running) 123 DTLS_Destroy(); 124 } 125 126 void AsanThread::StartSwitchFiber(FakeStack **fake_stack_save, uptr bottom, 127 uptr size) { 128 if (atomic_load(&stack_switching_, memory_order_relaxed)) { 129 Report("ERROR: starting fiber switch while in fiber switch\n"); 130 Die(); 131 } 132 133 next_stack_bottom_ = bottom; 134 next_stack_top_ = bottom + size; 135 atomic_store(&stack_switching_, 1, memory_order_release); 136 137 FakeStack *current_fake_stack = fake_stack_; 138 if (fake_stack_save) 139 *fake_stack_save = fake_stack_; 140 fake_stack_ = nullptr; 141 SetTLSFakeStack(nullptr); 142 // if fake_stack_save is null, the fiber will die, delete the fakestack 143 if (!fake_stack_save && current_fake_stack) 144 current_fake_stack->Destroy(this->tid()); 145 } 146 147 void AsanThread::FinishSwitchFiber(FakeStack *fake_stack_save, 148 uptr *bottom_old, 149 uptr *size_old) { 150 if (!atomic_load(&stack_switching_, memory_order_relaxed)) { 151 Report("ERROR: finishing a fiber switch that has not started\n"); 152 Die(); 153 } 154 155 if (fake_stack_save) { 156 SetTLSFakeStack(fake_stack_save); 157 fake_stack_ = fake_stack_save; 158 } 159 160 if (bottom_old) 161 *bottom_old = stack_bottom_; 162 if (size_old) 163 *size_old = stack_top_ - stack_bottom_; 164 stack_bottom_ = next_stack_bottom_; 165 stack_top_ = next_stack_top_; 166 atomic_store(&stack_switching_, 0, memory_order_release); 167 next_stack_top_ = 0; 168 next_stack_bottom_ = 0; 169 } 170 171 inline AsanThread::StackBounds AsanThread::GetStackBounds() const { 172 if (!atomic_load(&stack_switching_, memory_order_acquire)) { 173 // Make sure the stack bounds are fully initialized. 174 if (stack_bottom_ >= stack_top_) return {0, 0}; 175 return {stack_bottom_, stack_top_}; 176 } 177 char local; 178 const uptr cur_stack = (uptr)&local; 179 // Note: need to check next stack first, because FinishSwitchFiber 180 // may be in process of overwriting stack_top_/bottom_. But in such case 181 // we are already on the next stack. 182 if (cur_stack >= next_stack_bottom_ && cur_stack < next_stack_top_) 183 return {next_stack_bottom_, next_stack_top_}; 184 return {stack_bottom_, stack_top_}; 185 } 186 187 uptr AsanThread::stack_top() { 188 return GetStackBounds().top; 189 } 190 191 uptr AsanThread::stack_bottom() { 192 return GetStackBounds().bottom; 193 } 194 195 uptr AsanThread::stack_size() { 196 const auto bounds = GetStackBounds(); 197 return bounds.top - bounds.bottom; 198 } 199 200 // We want to create the FakeStack lazily on the first use, but not earlier 201 // than the stack size is known and the procedure has to be async-signal safe. 202 FakeStack *AsanThread::AsyncSignalSafeLazyInitFakeStack() { 203 uptr stack_size = this->stack_size(); 204 if (stack_size == 0) // stack_size is not yet available, don't use FakeStack. 205 return nullptr; 206 uptr old_val = 0; 207 // fake_stack_ has 3 states: 208 // 0 -- not initialized 209 // 1 -- being initialized 210 // ptr -- initialized 211 // This CAS checks if the state was 0 and if so changes it to state 1, 212 // if that was successful, it initializes the pointer. 213 if (atomic_compare_exchange_strong( 214 reinterpret_cast<atomic_uintptr_t *>(&fake_stack_), &old_val, 1UL, 215 memory_order_relaxed)) { 216 uptr stack_size_log = Log2(RoundUpToPowerOfTwo(stack_size)); 217 CHECK_LE(flags()->min_uar_stack_size_log, flags()->max_uar_stack_size_log); 218 stack_size_log = 219 Min(stack_size_log, static_cast<uptr>(flags()->max_uar_stack_size_log)); 220 stack_size_log = 221 Max(stack_size_log, static_cast<uptr>(flags()->min_uar_stack_size_log)); 222 fake_stack_ = FakeStack::Create(stack_size_log); 223 DCHECK_EQ(GetCurrentThread(), this); 224 SetTLSFakeStack(fake_stack_); 225 return fake_stack_; 226 } 227 return nullptr; 228 } 229 230 void AsanThread::Init(const InitOptions *options) { 231 DCHECK_NE(tid(), kInvalidTid); 232 next_stack_top_ = next_stack_bottom_ = 0; 233 atomic_store(&stack_switching_, false, memory_order_release); 234 CHECK_EQ(this->stack_size(), 0U); 235 SetThreadStackAndTls(options); 236 if (stack_top_ != stack_bottom_) { 237 CHECK_GT(this->stack_size(), 0U); 238 CHECK(AddrIsInMem(stack_bottom_)); 239 CHECK(AddrIsInMem(stack_top_ - 1)); 240 } 241 ClearShadowForThreadStackAndTLS(); 242 fake_stack_ = nullptr; 243 if (__asan_option_detect_stack_use_after_return && 244 tid() == GetCurrentTidOrInvalid()) { 245 // AsyncSignalSafeLazyInitFakeStack makes use of threadlocals and must be 246 // called from the context of the thread it is initializing, not its parent. 247 // Most platforms call AsanThread::Init on the newly-spawned thread, but 248 // Fuchsia calls this function from the parent thread. To support that 249 // approach, we avoid calling AsyncSignalSafeLazyInitFakeStack here; it will 250 // be called by the new thread when it first attempts to access the fake 251 // stack. 252 AsyncSignalSafeLazyInitFakeStack(); 253 } 254 int local = 0; 255 VReport(1, "T%d: stack [%p,%p) size 0x%zx; local=%p\n", tid(), 256 (void *)stack_bottom_, (void *)stack_top_, stack_top_ - stack_bottom_, 257 &local); 258 } 259 260 // Fuchsia doesn't use ThreadStart. 261 // asan_fuchsia.c definies CreateMainThread and SetThreadStackAndTls. 262 #if !SANITIZER_FUCHSIA 263 264 thread_return_t AsanThread::ThreadStart(tid_t os_id) { 265 Init(); 266 asanThreadRegistry().StartThread(tid(), os_id, ThreadType::Regular, nullptr); 267 268 if (common_flags()->use_sigaltstack) SetAlternateSignalStack(); 269 270 if (!start_routine_) { 271 // start_routine_ == 0 if we're on the main thread or on one of the 272 // OS X libdispatch worker threads. But nobody is supposed to call 273 // ThreadStart() for the worker threads. 274 CHECK_EQ(tid(), 0); 275 return 0; 276 } 277 278 thread_return_t res = start_routine_(arg_); 279 280 // On POSIX systems we defer this to the TSD destructor. LSan will consider 281 // the thread's memory as non-live from the moment we call Destroy(), even 282 // though that memory might contain pointers to heap objects which will be 283 // cleaned up by a user-defined TSD destructor. Thus, calling Destroy() before 284 // the TSD destructors have run might cause false positives in LSan. 285 if (!SANITIZER_POSIX) 286 this->Destroy(); 287 288 return res; 289 } 290 291 AsanThread *CreateMainThread() { 292 AsanThread *main_thread = AsanThread::Create( 293 /* start_routine */ nullptr, /* arg */ nullptr, /* parent_tid */ kMainTid, 294 /* stack */ nullptr, /* detached */ true); 295 SetCurrentThread(main_thread); 296 main_thread->ThreadStart(internal_getpid()); 297 return main_thread; 298 } 299 300 // This implementation doesn't use the argument, which is just passed down 301 // from the caller of Init (which see, above). It's only there to support 302 // OS-specific implementations that need more information passed through. 303 void AsanThread::SetThreadStackAndTls(const InitOptions *options) { 304 DCHECK_EQ(options, nullptr); 305 uptr tls_size = 0; 306 uptr stack_size = 0; 307 GetThreadStackAndTls(tid() == kMainTid, &stack_bottom_, &stack_size, 308 &tls_begin_, &tls_size); 309 stack_top_ = RoundDownTo(stack_bottom_ + stack_size, SHADOW_GRANULARITY); 310 tls_end_ = tls_begin_ + tls_size; 311 dtls_ = DTLS_Get(); 312 313 if (stack_top_ != stack_bottom_) { 314 int local; 315 CHECK(AddrIsInStack((uptr)&local)); 316 } 317 } 318 319 #endif // !SANITIZER_FUCHSIA 320 321 void AsanThread::ClearShadowForThreadStackAndTLS() { 322 if (stack_top_ != stack_bottom_) 323 PoisonShadow(stack_bottom_, stack_top_ - stack_bottom_, 0); 324 if (tls_begin_ != tls_end_) { 325 uptr tls_begin_aligned = RoundDownTo(tls_begin_, SHADOW_GRANULARITY); 326 uptr tls_end_aligned = RoundUpTo(tls_end_, SHADOW_GRANULARITY); 327 FastPoisonShadowPartialRightRedzone(tls_begin_aligned, 328 tls_end_ - tls_begin_aligned, 329 tls_end_aligned - tls_end_, 0); 330 } 331 } 332 333 bool AsanThread::GetStackFrameAccessByAddr(uptr addr, 334 StackFrameAccess *access) { 335 if (stack_top_ == stack_bottom_) 336 return false; 337 338 uptr bottom = 0; 339 if (AddrIsInStack(addr)) { 340 bottom = stack_bottom(); 341 } else if (FakeStack *fake_stack = get_fake_stack()) { 342 bottom = fake_stack->AddrIsInFakeStack(addr); 343 CHECK(bottom); 344 access->offset = addr - bottom; 345 access->frame_pc = ((uptr*)bottom)[2]; 346 access->frame_descr = (const char *)((uptr*)bottom)[1]; 347 return true; 348 } 349 uptr aligned_addr = RoundDownTo(addr, SANITIZER_WORDSIZE / 8); // align addr. 350 uptr mem_ptr = RoundDownTo(aligned_addr, SHADOW_GRANULARITY); 351 u8 *shadow_ptr = (u8*)MemToShadow(aligned_addr); 352 u8 *shadow_bottom = (u8*)MemToShadow(bottom); 353 354 while (shadow_ptr >= shadow_bottom && 355 *shadow_ptr != kAsanStackLeftRedzoneMagic) { 356 shadow_ptr--; 357 mem_ptr -= SHADOW_GRANULARITY; 358 } 359 360 while (shadow_ptr >= shadow_bottom && 361 *shadow_ptr == kAsanStackLeftRedzoneMagic) { 362 shadow_ptr--; 363 mem_ptr -= SHADOW_GRANULARITY; 364 } 365 366 if (shadow_ptr < shadow_bottom) { 367 return false; 368 } 369 370 uptr* ptr = (uptr*)(mem_ptr + SHADOW_GRANULARITY); 371 CHECK(ptr[0] == kCurrentStackFrameMagic); 372 access->offset = addr - (uptr)ptr; 373 access->frame_pc = ptr[2]; 374 access->frame_descr = (const char*)ptr[1]; 375 return true; 376 } 377 378 uptr AsanThread::GetStackVariableShadowStart(uptr addr) { 379 uptr bottom = 0; 380 if (AddrIsInStack(addr)) { 381 bottom = stack_bottom(); 382 } else if (FakeStack *fake_stack = get_fake_stack()) { 383 bottom = fake_stack->AddrIsInFakeStack(addr); 384 if (bottom == 0) { 385 return 0; 386 } 387 } else { 388 return 0; 389 } 390 391 uptr aligned_addr = RoundDownTo(addr, SANITIZER_WORDSIZE / 8); // align addr. 392 u8 *shadow_ptr = (u8*)MemToShadow(aligned_addr); 393 u8 *shadow_bottom = (u8*)MemToShadow(bottom); 394 395 while (shadow_ptr >= shadow_bottom && 396 (*shadow_ptr != kAsanStackLeftRedzoneMagic && 397 *shadow_ptr != kAsanStackMidRedzoneMagic && 398 *shadow_ptr != kAsanStackRightRedzoneMagic)) 399 shadow_ptr--; 400 401 return (uptr)shadow_ptr + 1; 402 } 403 404 bool AsanThread::AddrIsInStack(uptr addr) { 405 const auto bounds = GetStackBounds(); 406 return addr >= bounds.bottom && addr < bounds.top; 407 } 408 409 static bool ThreadStackContainsAddress(ThreadContextBase *tctx_base, 410 void *addr) { 411 AsanThreadContext *tctx = static_cast<AsanThreadContext *>(tctx_base); 412 AsanThread *t = tctx->thread; 413 if (!t) 414 return false; 415 if (t->AddrIsInStack((uptr)addr)) 416 return true; 417 FakeStack *fake_stack = t->get_fake_stack(); 418 if (!fake_stack) 419 return false; 420 return fake_stack->AddrIsInFakeStack((uptr)addr); 421 } 422 423 AsanThread *GetCurrentThread() { 424 AsanThreadContext *context = 425 reinterpret_cast<AsanThreadContext *>(AsanTSDGet()); 426 if (!context) { 427 if (SANITIZER_ANDROID) { 428 // On Android, libc constructor is called _after_ asan_init, and cleans up 429 // TSD. Try to figure out if this is still the main thread by the stack 430 // address. We are not entirely sure that we have correct main thread 431 // limits, so only do this magic on Android, and only if the found thread 432 // is the main thread. 433 AsanThreadContext *tctx = GetThreadContextByTidLocked(kMainTid); 434 if (tctx && ThreadStackContainsAddress(tctx, &context)) { 435 SetCurrentThread(tctx->thread); 436 return tctx->thread; 437 } 438 } 439 return nullptr; 440 } 441 return context->thread; 442 } 443 444 void SetCurrentThread(AsanThread *t) { 445 CHECK(t->context()); 446 VReport(2, "SetCurrentThread: %p for thread %p\n", t->context(), 447 (void *)GetThreadSelf()); 448 // Make sure we do not reset the current AsanThread. 449 CHECK_EQ(0, AsanTSDGet()); 450 AsanTSDSet(t->context()); 451 CHECK_EQ(t->context(), AsanTSDGet()); 452 } 453 454 u32 GetCurrentTidOrInvalid() { 455 AsanThread *t = GetCurrentThread(); 456 return t ? t->tid() : kInvalidTid; 457 } 458 459 AsanThread *FindThreadByStackAddress(uptr addr) { 460 asanThreadRegistry().CheckLocked(); 461 AsanThreadContext *tctx = static_cast<AsanThreadContext *>( 462 asanThreadRegistry().FindThreadContextLocked(ThreadStackContainsAddress, 463 (void *)addr)); 464 return tctx ? tctx->thread : nullptr; 465 } 466 467 void EnsureMainThreadIDIsCorrect() { 468 AsanThreadContext *context = 469 reinterpret_cast<AsanThreadContext *>(AsanTSDGet()); 470 if (context && (context->tid == kMainTid)) 471 context->os_id = GetTid(); 472 } 473 474 __asan::AsanThread *GetAsanThreadByOsIDLocked(tid_t os_id) { 475 __asan::AsanThreadContext *context = static_cast<__asan::AsanThreadContext *>( 476 __asan::asanThreadRegistry().FindThreadContextByOsIDLocked(os_id)); 477 if (!context) return nullptr; 478 return context->thread; 479 } 480 } // namespace __asan 481 482 // --- Implementation of LSan-specific functions --- {{{1 483 namespace __lsan { 484 bool GetThreadRangesLocked(tid_t os_id, uptr *stack_begin, uptr *stack_end, 485 uptr *tls_begin, uptr *tls_end, uptr *cache_begin, 486 uptr *cache_end, DTLS **dtls) { 487 __asan::AsanThread *t = __asan::GetAsanThreadByOsIDLocked(os_id); 488 if (!t) return false; 489 *stack_begin = t->stack_bottom(); 490 *stack_end = t->stack_top(); 491 *tls_begin = t->tls_begin(); 492 *tls_end = t->tls_end(); 493 // ASan doesn't keep allocator caches in TLS, so these are unused. 494 *cache_begin = 0; 495 *cache_end = 0; 496 *dtls = t->dtls(); 497 return true; 498 } 499 500 void GetAllThreadAllocatorCachesLocked(InternalMmapVector<uptr> *caches) {} 501 502 void ForEachExtraStackRange(tid_t os_id, RangeIteratorCallback callback, 503 void *arg) { 504 __asan::AsanThread *t = __asan::GetAsanThreadByOsIDLocked(os_id); 505 if (!t) 506 return; 507 __asan::FakeStack *fake_stack = t->get_fake_stack(); 508 if (!fake_stack) 509 return; 510 fake_stack->ForEachFakeFrame(callback, arg); 511 } 512 513 void LockThreadRegistry() { 514 __asan::asanThreadRegistry().Lock(); 515 } 516 517 void UnlockThreadRegistry() { 518 __asan::asanThreadRegistry().Unlock(); 519 } 520 521 ThreadRegistry *GetThreadRegistryLocked() { 522 __asan::asanThreadRegistry().CheckLocked(); 523 return &__asan::asanThreadRegistry(); 524 } 525 526 void EnsureMainThreadIDIsCorrect() { 527 __asan::EnsureMainThreadIDIsCorrect(); 528 } 529 } // namespace __lsan 530 531 // ---------------------- Interface ---------------- {{{1 532 using namespace __asan; 533 534 extern "C" { 535 SANITIZER_INTERFACE_ATTRIBUTE 536 void __sanitizer_start_switch_fiber(void **fakestacksave, const void *bottom, 537 uptr size) { 538 AsanThread *t = GetCurrentThread(); 539 if (!t) { 540 VReport(1, "__asan_start_switch_fiber called from unknown thread\n"); 541 return; 542 } 543 t->StartSwitchFiber((FakeStack**)fakestacksave, (uptr)bottom, size); 544 } 545 546 SANITIZER_INTERFACE_ATTRIBUTE 547 void __sanitizer_finish_switch_fiber(void* fakestack, 548 const void **bottom_old, 549 uptr *size_old) { 550 AsanThread *t = GetCurrentThread(); 551 if (!t) { 552 VReport(1, "__asan_finish_switch_fiber called from unknown thread\n"); 553 return; 554 } 555 t->FinishSwitchFiber((FakeStack*)fakestack, 556 (uptr*)bottom_old, 557 (uptr*)size_old); 558 } 559 } 560