1 //===-- sanitizer_allocator_test.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/AddressSanitizer runtime. 10 // Tests for sanitizer_allocator.h. 11 // 12 //===----------------------------------------------------------------------===// 13 #include "sanitizer_common/sanitizer_allocator.h" 14 #include "sanitizer_common/sanitizer_allocator_internal.h" 15 #include "sanitizer_common/sanitizer_common.h" 16 17 #include "sanitizer_test_utils.h" 18 #include "sanitizer_pthread_wrappers.h" 19 20 #include "gtest/gtest.h" 21 22 #include <stdio.h> 23 #include <stdlib.h> 24 #include <algorithm> 25 #include <vector> 26 #include <random> 27 #include <set> 28 29 using namespace __sanitizer; 30 31 #if SANITIZER_SOLARIS && defined(__sparcv9) 32 // FIXME: These tests probably fail because Solaris/sparcv9 uses the full 33 // 64-bit address space. Needs more investigation 34 #define SKIP_ON_SOLARIS_SPARCV9(x) DISABLED_##x 35 #else 36 #define SKIP_ON_SOLARIS_SPARCV9(x) x 37 #endif 38 39 // On 64-bit systems with small virtual address spaces (e.g. 39-bit) we can't 40 // use size class maps with a large number of classes, as that will make the 41 // SizeClassAllocator64 region size too small (< 2^32). 42 #if SANITIZER_ANDROID && defined(__aarch64__) 43 #define ALLOCATOR64_SMALL_SIZE 1 44 #elif SANITIZER_RISCV64 45 #define ALLOCATOR64_SMALL_SIZE 1 46 #else 47 #define ALLOCATOR64_SMALL_SIZE 0 48 #endif 49 50 // Too slow for debug build 51 #if !SANITIZER_DEBUG 52 53 #if SANITIZER_CAN_USE_ALLOCATOR64 54 #if SANITIZER_WINDOWS 55 // On Windows 64-bit there is no easy way to find a large enough fixed address 56 // space that is always available. Thus, a dynamically allocated address space 57 // is used instead (i.e. ~(uptr)0). 58 static const uptr kAllocatorSpace = ~(uptr)0; 59 static const uptr kAllocatorSize = 0x8000000000ULL; // 500G 60 static const u64 kAddressSpaceSize = 1ULL << 47; 61 typedef DefaultSizeClassMap SizeClassMap; 62 #elif SANITIZER_ANDROID && defined(__aarch64__) 63 static const uptr kAllocatorSpace = 0x3000000000ULL; 64 static const uptr kAllocatorSize = 0x2000000000ULL; 65 static const u64 kAddressSpaceSize = 1ULL << 39; 66 typedef VeryCompactSizeClassMap SizeClassMap; 67 #elif SANITIZER_RISCV64 68 const uptr kAllocatorSpace = ~(uptr)0; 69 const uptr kAllocatorSize = 0x2000000000ULL; // 128G. 70 static const u64 kAddressSpaceSize = 1ULL << 38; 71 typedef VeryDenseSizeClassMap SizeClassMap; 72 #else 73 static const uptr kAllocatorSpace = 0x700000000000ULL; 74 static const uptr kAllocatorSize = 0x010000000000ULL; // 1T. 75 static const u64 kAddressSpaceSize = 1ULL << 47; 76 typedef DefaultSizeClassMap SizeClassMap; 77 #endif 78 79 template <typename AddressSpaceViewTy> 80 struct AP64 { // Allocator Params. Short name for shorter demangled names.. 81 static const uptr kSpaceBeg = kAllocatorSpace; 82 static const uptr kSpaceSize = kAllocatorSize; 83 static const uptr kMetadataSize = 16; 84 typedef ::SizeClassMap SizeClassMap; 85 typedef NoOpMapUnmapCallback MapUnmapCallback; 86 static const uptr kFlags = 0; 87 using AddressSpaceView = AddressSpaceViewTy; 88 }; 89 90 template <typename AddressSpaceViewTy> 91 struct AP64Dyn { 92 static const uptr kSpaceBeg = ~(uptr)0; 93 static const uptr kSpaceSize = kAllocatorSize; 94 static const uptr kMetadataSize = 16; 95 typedef ::SizeClassMap SizeClassMap; 96 typedef NoOpMapUnmapCallback MapUnmapCallback; 97 static const uptr kFlags = 0; 98 using AddressSpaceView = AddressSpaceViewTy; 99 }; 100 101 template <typename AddressSpaceViewTy> 102 struct AP64Compact { 103 static const uptr kSpaceBeg = ~(uptr)0; 104 static const uptr kSpaceSize = kAllocatorSize; 105 static const uptr kMetadataSize = 16; 106 typedef CompactSizeClassMap SizeClassMap; 107 typedef NoOpMapUnmapCallback MapUnmapCallback; 108 static const uptr kFlags = 0; 109 using AddressSpaceView = AddressSpaceViewTy; 110 }; 111 112 template <typename AddressSpaceViewTy> 113 struct AP64VeryCompact { 114 static const uptr kSpaceBeg = ~(uptr)0; 115 static const uptr kSpaceSize = 1ULL << 37; 116 static const uptr kMetadataSize = 16; 117 typedef VeryCompactSizeClassMap SizeClassMap; 118 typedef NoOpMapUnmapCallback MapUnmapCallback; 119 static const uptr kFlags = 0; 120 using AddressSpaceView = AddressSpaceViewTy; 121 }; 122 123 template <typename AddressSpaceViewTy> 124 struct AP64Dense { 125 static const uptr kSpaceBeg = kAllocatorSpace; 126 static const uptr kSpaceSize = kAllocatorSize; 127 static const uptr kMetadataSize = 16; 128 typedef DenseSizeClassMap SizeClassMap; 129 typedef NoOpMapUnmapCallback MapUnmapCallback; 130 static const uptr kFlags = 0; 131 using AddressSpaceView = AddressSpaceViewTy; 132 }; 133 134 template <typename AddressSpaceView> 135 using Allocator64ASVT = SizeClassAllocator64<AP64<AddressSpaceView>>; 136 using Allocator64 = Allocator64ASVT<LocalAddressSpaceView>; 137 138 template <typename AddressSpaceView> 139 using Allocator64DynamicASVT = SizeClassAllocator64<AP64Dyn<AddressSpaceView>>; 140 using Allocator64Dynamic = Allocator64DynamicASVT<LocalAddressSpaceView>; 141 142 template <typename AddressSpaceView> 143 using Allocator64CompactASVT = 144 SizeClassAllocator64<AP64Compact<AddressSpaceView>>; 145 using Allocator64Compact = Allocator64CompactASVT<LocalAddressSpaceView>; 146 147 template <typename AddressSpaceView> 148 using Allocator64VeryCompactASVT = 149 SizeClassAllocator64<AP64VeryCompact<AddressSpaceView>>; 150 using Allocator64VeryCompact = 151 Allocator64VeryCompactASVT<LocalAddressSpaceView>; 152 153 template <typename AddressSpaceView> 154 using Allocator64DenseASVT = SizeClassAllocator64<AP64Dense<AddressSpaceView>>; 155 using Allocator64Dense = Allocator64DenseASVT<LocalAddressSpaceView>; 156 157 #elif defined(__mips64) 158 static const u64 kAddressSpaceSize = 1ULL << 40; 159 #elif defined(__aarch64__) 160 static const u64 kAddressSpaceSize = 1ULL << 39; 161 #elif defined(__s390x__) 162 static const u64 kAddressSpaceSize = 1ULL << 53; 163 #elif defined(__s390__) 164 static const u64 kAddressSpaceSize = 1ULL << 31; 165 #else 166 static const u64 kAddressSpaceSize = 1ULL << 32; 167 #endif 168 169 static const uptr kRegionSizeLog = FIRST_32_SECOND_64(20, 24); 170 171 template <typename AddressSpaceViewTy> 172 struct AP32Compact { 173 static const uptr kSpaceBeg = 0; 174 static const u64 kSpaceSize = kAddressSpaceSize; 175 static const uptr kMetadataSize = 16; 176 typedef CompactSizeClassMap SizeClassMap; 177 static const uptr kRegionSizeLog = ::kRegionSizeLog; 178 using AddressSpaceView = AddressSpaceViewTy; 179 typedef NoOpMapUnmapCallback MapUnmapCallback; 180 static const uptr kFlags = 0; 181 }; 182 template <typename AddressSpaceView> 183 using Allocator32CompactASVT = 184 SizeClassAllocator32<AP32Compact<AddressSpaceView>>; 185 using Allocator32Compact = Allocator32CompactASVT<LocalAddressSpaceView>; 186 187 template <class SizeClassMap> 188 void TestSizeClassMap() { 189 typedef SizeClassMap SCMap; 190 SCMap::Print(); 191 SCMap::Validate(); 192 } 193 194 TEST(SanitizerCommon, DefaultSizeClassMap) { 195 TestSizeClassMap<DefaultSizeClassMap>(); 196 } 197 198 TEST(SanitizerCommon, CompactSizeClassMap) { 199 TestSizeClassMap<CompactSizeClassMap>(); 200 } 201 202 TEST(SanitizerCommon, VeryCompactSizeClassMap) { 203 TestSizeClassMap<VeryCompactSizeClassMap>(); 204 } 205 206 TEST(SanitizerCommon, InternalSizeClassMap) { 207 TestSizeClassMap<InternalSizeClassMap>(); 208 } 209 210 TEST(SanitizerCommon, DenseSizeClassMap) { 211 TestSizeClassMap<VeryCompactSizeClassMap>(); 212 } 213 214 template <class Allocator> 215 void TestSizeClassAllocator(uptr premapped_heap = 0) { 216 Allocator *a = new Allocator; 217 a->Init(kReleaseToOSIntervalNever, premapped_heap); 218 typename Allocator::AllocatorCache cache; 219 memset(&cache, 0, sizeof(cache)); 220 cache.Init(0); 221 222 static const uptr sizes[] = { 223 1, 16, 30, 40, 100, 1000, 10000, 224 50000, 60000, 100000, 120000, 300000, 500000, 1000000, 2000000 225 }; 226 227 std::vector<void *> allocated; 228 229 uptr last_total_allocated = 0; 230 for (int i = 0; i < 3; i++) { 231 // Allocate a bunch of chunks. 232 for (uptr s = 0; s < ARRAY_SIZE(sizes); s++) { 233 uptr size = sizes[s]; 234 if (!a->CanAllocate(size, 1)) continue; 235 // printf("s = %ld\n", size); 236 uptr n_iter = std::max((uptr)6, 4000000 / size); 237 // fprintf(stderr, "size: %ld iter: %ld\n", size, n_iter); 238 for (uptr i = 0; i < n_iter; i++) { 239 uptr class_id0 = Allocator::SizeClassMapT::ClassID(size); 240 char *x = (char*)cache.Allocate(a, class_id0); 241 x[0] = 0; 242 x[size - 1] = 0; 243 x[size / 2] = 0; 244 allocated.push_back(x); 245 CHECK_EQ(x, a->GetBlockBegin(x)); 246 CHECK_EQ(x, a->GetBlockBegin(x + size - 1)); 247 CHECK(a->PointerIsMine(x)); 248 CHECK(a->PointerIsMine(x + size - 1)); 249 CHECK(a->PointerIsMine(x + size / 2)); 250 CHECK_GE(a->GetActuallyAllocatedSize(x), size); 251 uptr class_id = a->GetSizeClass(x); 252 CHECK_EQ(class_id, Allocator::SizeClassMapT::ClassID(size)); 253 uptr *metadata = reinterpret_cast<uptr*>(a->GetMetaData(x)); 254 metadata[0] = reinterpret_cast<uptr>(x) + 1; 255 metadata[1] = 0xABCD; 256 } 257 } 258 // Deallocate all. 259 for (uptr i = 0; i < allocated.size(); i++) { 260 void *x = allocated[i]; 261 uptr *metadata = reinterpret_cast<uptr*>(a->GetMetaData(x)); 262 CHECK_EQ(metadata[0], reinterpret_cast<uptr>(x) + 1); 263 CHECK_EQ(metadata[1], 0xABCD); 264 cache.Deallocate(a, a->GetSizeClass(x), x); 265 } 266 allocated.clear(); 267 uptr total_allocated = a->TotalMemoryUsed(); 268 if (last_total_allocated == 0) 269 last_total_allocated = total_allocated; 270 CHECK_EQ(last_total_allocated, total_allocated); 271 } 272 273 // Check that GetBlockBegin never crashes. 274 for (uptr x = 0, step = kAddressSpaceSize / 100000; 275 x < kAddressSpaceSize - step; x += step) 276 if (a->PointerIsMine(reinterpret_cast<void *>(x))) 277 Ident(a->GetBlockBegin(reinterpret_cast<void *>(x))); 278 279 a->TestOnlyUnmap(); 280 delete a; 281 } 282 283 #if SANITIZER_CAN_USE_ALLOCATOR64 284 285 // Allocates kAllocatorSize aligned bytes on construction and frees it on 286 // destruction. 287 class ScopedPremappedHeap { 288 public: 289 ScopedPremappedHeap() { 290 BasePtr = MmapNoReserveOrDie(2 * kAllocatorSize, "preallocated heap"); 291 AlignedAddr = RoundUpTo(reinterpret_cast<uptr>(BasePtr), kAllocatorSize); 292 } 293 294 ~ScopedPremappedHeap() { UnmapOrDie(BasePtr, kAllocatorSize); } 295 296 uptr Addr() { return AlignedAddr; } 297 298 private: 299 void *BasePtr; 300 uptr AlignedAddr; 301 }; 302 303 // These tests can fail on Windows if memory is somewhat full and lit happens 304 // to run them all at the same time. FIXME: Make them not flaky and reenable. 305 #if !SANITIZER_WINDOWS 306 TEST(SanitizerCommon, SizeClassAllocator64) { 307 TestSizeClassAllocator<Allocator64>(); 308 } 309 310 TEST(SanitizerCommon, SizeClassAllocator64Dynamic) { 311 TestSizeClassAllocator<Allocator64Dynamic>(); 312 } 313 314 #if !ALLOCATOR64_SMALL_SIZE 315 // Android only has 39-bit address space, so mapping 2 * kAllocatorSize 316 // sometimes fails. 317 TEST(SanitizerCommon, SizeClassAllocator64DynamicPremapped) { 318 ScopedPremappedHeap h; 319 TestSizeClassAllocator<Allocator64Dynamic>(h.Addr()); 320 } 321 322 TEST(SanitizerCommon, SizeClassAllocator64Compact) { 323 TestSizeClassAllocator<Allocator64Compact>(); 324 } 325 326 TEST(SanitizerCommon, SizeClassAllocator64Dense) { 327 TestSizeClassAllocator<Allocator64Dense>(); 328 } 329 #endif 330 331 TEST(SanitizerCommon, SizeClassAllocator64VeryCompact) { 332 TestSizeClassAllocator<Allocator64VeryCompact>(); 333 } 334 #endif 335 #endif 336 337 TEST(SanitizerCommon, SizeClassAllocator32Compact) { 338 TestSizeClassAllocator<Allocator32Compact>(); 339 } 340 341 template <typename AddressSpaceViewTy> 342 struct AP32SeparateBatches { 343 static const uptr kSpaceBeg = 0; 344 static const u64 kSpaceSize = kAddressSpaceSize; 345 static const uptr kMetadataSize = 16; 346 typedef DefaultSizeClassMap SizeClassMap; 347 static const uptr kRegionSizeLog = ::kRegionSizeLog; 348 using AddressSpaceView = AddressSpaceViewTy; 349 typedef NoOpMapUnmapCallback MapUnmapCallback; 350 static const uptr kFlags = 351 SizeClassAllocator32FlagMasks::kUseSeparateSizeClassForBatch; 352 }; 353 template <typename AddressSpaceView> 354 using Allocator32SeparateBatchesASVT = 355 SizeClassAllocator32<AP32SeparateBatches<AddressSpaceView>>; 356 using Allocator32SeparateBatches = 357 Allocator32SeparateBatchesASVT<LocalAddressSpaceView>; 358 359 TEST(SanitizerCommon, SizeClassAllocator32SeparateBatches) { 360 TestSizeClassAllocator<Allocator32SeparateBatches>(); 361 } 362 363 template <class Allocator> 364 void SizeClassAllocatorMetadataStress(uptr premapped_heap = 0) { 365 Allocator *a = new Allocator; 366 a->Init(kReleaseToOSIntervalNever, premapped_heap); 367 typename Allocator::AllocatorCache cache; 368 memset(&cache, 0, sizeof(cache)); 369 cache.Init(0); 370 371 const uptr kNumAllocs = 1 << 13; 372 void *allocated[kNumAllocs]; 373 void *meta[kNumAllocs]; 374 for (uptr i = 0; i < kNumAllocs; i++) { 375 void *x = cache.Allocate(a, 1 + i % (Allocator::kNumClasses - 1)); 376 allocated[i] = x; 377 meta[i] = a->GetMetaData(x); 378 } 379 // Get Metadata kNumAllocs^2 times. 380 for (uptr i = 0; i < kNumAllocs * kNumAllocs; i++) { 381 uptr idx = i % kNumAllocs; 382 void *m = a->GetMetaData(allocated[idx]); 383 EXPECT_EQ(m, meta[idx]); 384 } 385 for (uptr i = 0; i < kNumAllocs; i++) { 386 cache.Deallocate(a, 1 + i % (Allocator::kNumClasses - 1), allocated[i]); 387 } 388 389 a->TestOnlyUnmap(); 390 delete a; 391 } 392 393 #if SANITIZER_CAN_USE_ALLOCATOR64 394 // These tests can fail on Windows if memory is somewhat full and lit happens 395 // to run them all at the same time. FIXME: Make them not flaky and reenable. 396 #if !SANITIZER_WINDOWS 397 TEST(SanitizerCommon, SizeClassAllocator64MetadataStress) { 398 SizeClassAllocatorMetadataStress<Allocator64>(); 399 } 400 401 TEST(SanitizerCommon, SizeClassAllocator64DynamicMetadataStress) { 402 SizeClassAllocatorMetadataStress<Allocator64Dynamic>(); 403 } 404 405 #if !ALLOCATOR64_SMALL_SIZE 406 TEST(SanitizerCommon, SizeClassAllocator64DynamicPremappedMetadataStress) { 407 ScopedPremappedHeap h; 408 SizeClassAllocatorMetadataStress<Allocator64Dynamic>(h.Addr()); 409 } 410 411 TEST(SanitizerCommon, SizeClassAllocator64CompactMetadataStress) { 412 SizeClassAllocatorMetadataStress<Allocator64Compact>(); 413 } 414 #endif 415 416 #endif 417 #endif // SANITIZER_CAN_USE_ALLOCATOR64 418 TEST(SanitizerCommon, SizeClassAllocator32CompactMetadataStress) { 419 SizeClassAllocatorMetadataStress<Allocator32Compact>(); 420 } 421 422 template <class Allocator> 423 void SizeClassAllocatorGetBlockBeginStress(u64 TotalSize, 424 uptr premapped_heap = 0) { 425 Allocator *a = new Allocator; 426 a->Init(kReleaseToOSIntervalNever, premapped_heap); 427 typename Allocator::AllocatorCache cache; 428 memset(&cache, 0, sizeof(cache)); 429 cache.Init(0); 430 431 uptr max_size_class = Allocator::SizeClassMapT::kLargestClassID; 432 uptr size = Allocator::SizeClassMapT::Size(max_size_class); 433 // Make sure we correctly compute GetBlockBegin() w/o overflow. 434 for (size_t i = 0; i <= TotalSize / size; i++) { 435 void *x = cache.Allocate(a, max_size_class); 436 void *beg = a->GetBlockBegin(x); 437 // if ((i & (i - 1)) == 0) 438 // fprintf(stderr, "[%zd] %p %p\n", i, x, beg); 439 EXPECT_EQ(x, beg); 440 } 441 442 a->TestOnlyUnmap(); 443 delete a; 444 } 445 446 #if SANITIZER_CAN_USE_ALLOCATOR64 447 // These tests can fail on Windows if memory is somewhat full and lit happens 448 // to run them all at the same time. FIXME: Make them not flaky and reenable. 449 #if !SANITIZER_WINDOWS 450 TEST(SanitizerCommon, SizeClassAllocator64GetBlockBegin) { 451 SizeClassAllocatorGetBlockBeginStress<Allocator64>( 452 1ULL << (SANITIZER_ANDROID ? 31 : 33)); 453 } 454 TEST(SanitizerCommon, SizeClassAllocator64DynamicGetBlockBegin) { 455 SizeClassAllocatorGetBlockBeginStress<Allocator64Dynamic>( 456 1ULL << (SANITIZER_ANDROID ? 31 : 33)); 457 } 458 #if !ALLOCATOR64_SMALL_SIZE 459 TEST(SanitizerCommon, SizeClassAllocator64DynamicPremappedGetBlockBegin) { 460 ScopedPremappedHeap h; 461 SizeClassAllocatorGetBlockBeginStress<Allocator64Dynamic>( 462 1ULL << (SANITIZER_ANDROID ? 31 : 33), h.Addr()); 463 } 464 TEST(SanitizerCommon, SizeClassAllocator64CompactGetBlockBegin) { 465 SizeClassAllocatorGetBlockBeginStress<Allocator64Compact>(1ULL << 33); 466 } 467 #endif 468 TEST(SanitizerCommon, SizeClassAllocator64VeryCompactGetBlockBegin) { 469 // Does not have > 4Gb for each class. 470 SizeClassAllocatorGetBlockBeginStress<Allocator64VeryCompact>(1ULL << 31); 471 } 472 TEST(SanitizerCommon, SizeClassAllocator32CompactGetBlockBegin) { 473 SizeClassAllocatorGetBlockBeginStress<Allocator32Compact>(1ULL << 33); 474 } 475 #endif 476 #endif // SANITIZER_CAN_USE_ALLOCATOR64 477 478 struct TestMapUnmapCallback { 479 static int map_count, unmap_count; 480 void OnMap(uptr p, uptr size) const { map_count++; } 481 void OnUnmap(uptr p, uptr size) const { unmap_count++; } 482 }; 483 int TestMapUnmapCallback::map_count; 484 int TestMapUnmapCallback::unmap_count; 485 486 #if SANITIZER_CAN_USE_ALLOCATOR64 487 // These tests can fail on Windows if memory is somewhat full and lit happens 488 // to run them all at the same time. FIXME: Make them not flaky and reenable. 489 #if !SANITIZER_WINDOWS 490 491 template <typename AddressSpaceViewTy = LocalAddressSpaceView> 492 struct AP64WithCallback { 493 static const uptr kSpaceBeg = kAllocatorSpace; 494 static const uptr kSpaceSize = kAllocatorSize; 495 static const uptr kMetadataSize = 16; 496 typedef ::SizeClassMap SizeClassMap; 497 typedef TestMapUnmapCallback MapUnmapCallback; 498 static const uptr kFlags = 0; 499 using AddressSpaceView = AddressSpaceViewTy; 500 }; 501 502 TEST(SanitizerCommon, SizeClassAllocator64MapUnmapCallback) { 503 TestMapUnmapCallback::map_count = 0; 504 TestMapUnmapCallback::unmap_count = 0; 505 typedef SizeClassAllocator64<AP64WithCallback<>> Allocator64WithCallBack; 506 Allocator64WithCallBack *a = new Allocator64WithCallBack; 507 a->Init(kReleaseToOSIntervalNever); 508 EXPECT_EQ(TestMapUnmapCallback::map_count, 1); // Allocator state. 509 typename Allocator64WithCallBack::AllocatorCache cache; 510 memset(&cache, 0, sizeof(cache)); 511 cache.Init(0); 512 AllocatorStats stats; 513 stats.Init(); 514 const size_t kNumChunks = 128; 515 uint32_t chunks[kNumChunks]; 516 a->GetFromAllocator(&stats, 30, chunks, kNumChunks); 517 // State + alloc + metadata + freearray. 518 EXPECT_EQ(TestMapUnmapCallback::map_count, 4); 519 a->TestOnlyUnmap(); 520 EXPECT_EQ(TestMapUnmapCallback::unmap_count, 1); // The whole thing. 521 delete a; 522 } 523 #endif 524 #endif 525 526 template <typename AddressSpaceViewTy = LocalAddressSpaceView> 527 struct AP32WithCallback { 528 static const uptr kSpaceBeg = 0; 529 static const u64 kSpaceSize = kAddressSpaceSize; 530 static const uptr kMetadataSize = 16; 531 typedef CompactSizeClassMap SizeClassMap; 532 static const uptr kRegionSizeLog = ::kRegionSizeLog; 533 using AddressSpaceView = AddressSpaceViewTy; 534 typedef TestMapUnmapCallback MapUnmapCallback; 535 static const uptr kFlags = 0; 536 }; 537 538 TEST(SanitizerCommon, SizeClassAllocator32MapUnmapCallback) { 539 TestMapUnmapCallback::map_count = 0; 540 TestMapUnmapCallback::unmap_count = 0; 541 typedef SizeClassAllocator32<AP32WithCallback<>> Allocator32WithCallBack; 542 Allocator32WithCallBack *a = new Allocator32WithCallBack; 543 a->Init(kReleaseToOSIntervalNever); 544 EXPECT_EQ(TestMapUnmapCallback::map_count, 0); 545 Allocator32WithCallBack::AllocatorCache cache; 546 memset(&cache, 0, sizeof(cache)); 547 cache.Init(0); 548 AllocatorStats stats; 549 stats.Init(); 550 a->AllocateBatch(&stats, &cache, 32); 551 EXPECT_EQ(TestMapUnmapCallback::map_count, 1); 552 a->TestOnlyUnmap(); 553 EXPECT_EQ(TestMapUnmapCallback::unmap_count, 1); 554 delete a; 555 // fprintf(stderr, "Map: %d Unmap: %d\n", 556 // TestMapUnmapCallback::map_count, 557 // TestMapUnmapCallback::unmap_count); 558 } 559 560 TEST(SanitizerCommon, LargeMmapAllocatorMapUnmapCallback) { 561 TestMapUnmapCallback::map_count = 0; 562 TestMapUnmapCallback::unmap_count = 0; 563 LargeMmapAllocator<TestMapUnmapCallback> a; 564 a.Init(); 565 AllocatorStats stats; 566 stats.Init(); 567 void *x = a.Allocate(&stats, 1 << 20, 1); 568 EXPECT_EQ(TestMapUnmapCallback::map_count, 1); 569 a.Deallocate(&stats, x); 570 EXPECT_EQ(TestMapUnmapCallback::unmap_count, 1); 571 } 572 573 // Don't test OOM conditions on Win64 because it causes other tests on the same 574 // machine to OOM. 575 #if SANITIZER_CAN_USE_ALLOCATOR64 && !SANITIZER_WINDOWS64 576 TEST(SanitizerCommon, SizeClassAllocator64Overflow) { 577 Allocator64 a; 578 a.Init(kReleaseToOSIntervalNever); 579 Allocator64::AllocatorCache cache; 580 memset(&cache, 0, sizeof(cache)); 581 cache.Init(0); 582 AllocatorStats stats; 583 stats.Init(); 584 585 const size_t kNumChunks = 128; 586 uint32_t chunks[kNumChunks]; 587 bool allocation_failed = false; 588 for (int i = 0; i < 1000000; i++) { 589 uptr class_id = a.kNumClasses - 1; 590 if (!a.GetFromAllocator(&stats, class_id, chunks, kNumChunks)) { 591 allocation_failed = true; 592 break; 593 } 594 } 595 EXPECT_EQ(allocation_failed, true); 596 597 a.TestOnlyUnmap(); 598 } 599 #endif 600 601 TEST(SanitizerCommon, LargeMmapAllocator) { 602 LargeMmapAllocator<NoOpMapUnmapCallback> a; 603 a.Init(); 604 AllocatorStats stats; 605 stats.Init(); 606 607 static const int kNumAllocs = 1000; 608 char *allocated[kNumAllocs]; 609 static const uptr size = 4000; 610 // Allocate some. 611 for (int i = 0; i < kNumAllocs; i++) { 612 allocated[i] = (char *)a.Allocate(&stats, size, 1); 613 CHECK(a.PointerIsMine(allocated[i])); 614 } 615 // Deallocate all. 616 CHECK_GT(a.TotalMemoryUsed(), size * kNumAllocs); 617 for (int i = 0; i < kNumAllocs; i++) { 618 char *p = allocated[i]; 619 CHECK(a.PointerIsMine(p)); 620 a.Deallocate(&stats, p); 621 } 622 // Check that non left. 623 CHECK_EQ(a.TotalMemoryUsed(), 0); 624 625 // Allocate some more, also add metadata. 626 for (int i = 0; i < kNumAllocs; i++) { 627 char *x = (char *)a.Allocate(&stats, size, 1); 628 CHECK_GE(a.GetActuallyAllocatedSize(x), size); 629 uptr *meta = reinterpret_cast<uptr*>(a.GetMetaData(x)); 630 *meta = i; 631 allocated[i] = x; 632 } 633 for (int i = 0; i < kNumAllocs * kNumAllocs; i++) { 634 char *p = allocated[i % kNumAllocs]; 635 CHECK(a.PointerIsMine(p)); 636 CHECK(a.PointerIsMine(p + 2000)); 637 } 638 CHECK_GT(a.TotalMemoryUsed(), size * kNumAllocs); 639 // Deallocate all in reverse order. 640 for (int i = 0; i < kNumAllocs; i++) { 641 int idx = kNumAllocs - i - 1; 642 char *p = allocated[idx]; 643 uptr *meta = reinterpret_cast<uptr*>(a.GetMetaData(p)); 644 CHECK_EQ(*meta, idx); 645 CHECK(a.PointerIsMine(p)); 646 a.Deallocate(&stats, p); 647 } 648 CHECK_EQ(a.TotalMemoryUsed(), 0); 649 650 // Test alignments. Test with 512MB alignment on x64 non-Windows machines. 651 // Windows doesn't overcommit, and many machines do not have 51.2GB of swap. 652 uptr max_alignment = 653 (SANITIZER_WORDSIZE == 64 && !SANITIZER_WINDOWS) ? (1 << 28) : (1 << 24); 654 for (uptr alignment = 8; alignment <= max_alignment; alignment *= 2) { 655 const uptr kNumAlignedAllocs = 100; 656 for (uptr i = 0; i < kNumAlignedAllocs; i++) { 657 uptr size = ((i % 10) + 1) * 4096; 658 char *p = allocated[i] = (char *)a.Allocate(&stats, size, alignment); 659 CHECK_EQ(p, a.GetBlockBegin(p)); 660 CHECK_EQ(p, a.GetBlockBegin(p + size - 1)); 661 CHECK_EQ(p, a.GetBlockBegin(p + size / 2)); 662 CHECK_EQ(0, (uptr)allocated[i] % alignment); 663 p[0] = p[size - 1] = 0; 664 } 665 for (uptr i = 0; i < kNumAlignedAllocs; i++) { 666 a.Deallocate(&stats, allocated[i]); 667 } 668 } 669 670 // Regression test for boundary condition in GetBlockBegin(). 671 uptr page_size = GetPageSizeCached(); 672 char *p = (char *)a.Allocate(&stats, page_size, 1); 673 CHECK_EQ(p, a.GetBlockBegin(p)); 674 CHECK_EQ(p, (char *)a.GetBlockBegin(p + page_size - 1)); 675 CHECK_NE(p, (char *)a.GetBlockBegin(p + page_size)); 676 a.Deallocate(&stats, p); 677 } 678 679 template <class PrimaryAllocator> 680 void TestCombinedAllocator(uptr premapped_heap = 0) { 681 typedef CombinedAllocator<PrimaryAllocator> Allocator; 682 Allocator *a = new Allocator; 683 a->Init(kReleaseToOSIntervalNever, premapped_heap); 684 std::mt19937 r; 685 686 typename Allocator::AllocatorCache cache; 687 memset(&cache, 0, sizeof(cache)); 688 a->InitCache(&cache); 689 690 EXPECT_EQ(a->Allocate(&cache, -1, 1), (void*)0); 691 EXPECT_EQ(a->Allocate(&cache, -1, 1024), (void*)0); 692 EXPECT_EQ(a->Allocate(&cache, (uptr)-1 - 1024, 1), (void*)0); 693 EXPECT_EQ(a->Allocate(&cache, (uptr)-1 - 1024, 1024), (void*)0); 694 EXPECT_EQ(a->Allocate(&cache, (uptr)-1 - 1023, 1024), (void*)0); 695 EXPECT_EQ(a->Allocate(&cache, -1, 1), (void*)0); 696 697 const uptr kNumAllocs = 100000; 698 const uptr kNumIter = 10; 699 for (uptr iter = 0; iter < kNumIter; iter++) { 700 std::vector<void*> allocated; 701 for (uptr i = 0; i < kNumAllocs; i++) { 702 uptr size = (i % (1 << 14)) + 1; 703 if ((i % 1024) == 0) 704 size = 1 << (10 + (i % 14)); 705 void *x = a->Allocate(&cache, size, 1); 706 uptr *meta = reinterpret_cast<uptr*>(a->GetMetaData(x)); 707 CHECK_EQ(*meta, 0); 708 *meta = size; 709 allocated.push_back(x); 710 } 711 712 std::shuffle(allocated.begin(), allocated.end(), r); 713 714 // Test ForEachChunk(...) 715 { 716 std::set<void *> reported_chunks; 717 auto cb = [](uptr chunk, void *arg) { 718 auto reported_chunks_ptr = reinterpret_cast<std::set<void *> *>(arg); 719 auto pair = 720 reported_chunks_ptr->insert(reinterpret_cast<void *>(chunk)); 721 // Check chunk is never reported more than once. 722 ASSERT_TRUE(pair.second); 723 }; 724 a->ForEachChunk(cb, reinterpret_cast<void *>(&reported_chunks)); 725 for (const auto &allocated_ptr : allocated) { 726 ASSERT_NE(reported_chunks.find(allocated_ptr), reported_chunks.end()); 727 } 728 } 729 730 for (uptr i = 0; i < kNumAllocs; i++) { 731 void *x = allocated[i]; 732 uptr *meta = reinterpret_cast<uptr*>(a->GetMetaData(x)); 733 CHECK_NE(*meta, 0); 734 CHECK(a->PointerIsMine(x)); 735 *meta = 0; 736 a->Deallocate(&cache, x); 737 } 738 allocated.clear(); 739 a->SwallowCache(&cache); 740 } 741 a->DestroyCache(&cache); 742 a->TestOnlyUnmap(); 743 } 744 745 #if SANITIZER_CAN_USE_ALLOCATOR64 746 TEST(SanitizerCommon, CombinedAllocator64) { 747 TestCombinedAllocator<Allocator64>(); 748 } 749 750 TEST(SanitizerCommon, CombinedAllocator64Dynamic) { 751 TestCombinedAllocator<Allocator64Dynamic>(); 752 } 753 754 #if !ALLOCATOR64_SMALL_SIZE 755 #if !SANITIZER_WINDOWS 756 // Windows fails to map 1TB, so disable this test. 757 TEST(SanitizerCommon, CombinedAllocator64DynamicPremapped) { 758 ScopedPremappedHeap h; 759 TestCombinedAllocator<Allocator64Dynamic>(h.Addr()); 760 } 761 #endif 762 763 TEST(SanitizerCommon, CombinedAllocator64Compact) { 764 TestCombinedAllocator<Allocator64Compact>(); 765 } 766 #endif 767 768 TEST(SanitizerCommon, CombinedAllocator64VeryCompact) { 769 TestCombinedAllocator<Allocator64VeryCompact>(); 770 } 771 #endif 772 773 TEST(SanitizerCommon, SKIP_ON_SOLARIS_SPARCV9(CombinedAllocator32Compact)) { 774 TestCombinedAllocator<Allocator32Compact>(); 775 } 776 777 template <class Allocator> 778 void TestSizeClassAllocatorLocalCache(uptr premapped_heap = 0) { 779 using AllocatorCache = typename Allocator::AllocatorCache; 780 AllocatorCache cache; 781 Allocator *a = new Allocator(); 782 783 a->Init(kReleaseToOSIntervalNever, premapped_heap); 784 memset(&cache, 0, sizeof(cache)); 785 cache.Init(0); 786 787 const uptr kNumAllocs = 10000; 788 const int kNumIter = 100; 789 uptr saved_total = 0; 790 for (int class_id = 1; class_id <= 5; class_id++) { 791 for (int it = 0; it < kNumIter; it++) { 792 void *allocated[kNumAllocs]; 793 for (uptr i = 0; i < kNumAllocs; i++) { 794 allocated[i] = cache.Allocate(a, class_id); 795 } 796 for (uptr i = 0; i < kNumAllocs; i++) { 797 cache.Deallocate(a, class_id, allocated[i]); 798 } 799 cache.Drain(a); 800 uptr total_allocated = a->TotalMemoryUsed(); 801 if (it) 802 CHECK_EQ(saved_total, total_allocated); 803 saved_total = total_allocated; 804 } 805 } 806 807 a->TestOnlyUnmap(); 808 delete a; 809 } 810 811 #if SANITIZER_CAN_USE_ALLOCATOR64 812 // These tests can fail on Windows if memory is somewhat full and lit happens 813 // to run them all at the same time. FIXME: Make them not flaky and reenable. 814 #if !SANITIZER_WINDOWS 815 TEST(SanitizerCommon, SizeClassAllocator64LocalCache) { 816 TestSizeClassAllocatorLocalCache<Allocator64>(); 817 } 818 819 TEST(SanitizerCommon, SizeClassAllocator64DynamicLocalCache) { 820 TestSizeClassAllocatorLocalCache<Allocator64Dynamic>(); 821 } 822 823 #if !ALLOCATOR64_SMALL_SIZE 824 TEST(SanitizerCommon, SizeClassAllocator64DynamicPremappedLocalCache) { 825 ScopedPremappedHeap h; 826 TestSizeClassAllocatorLocalCache<Allocator64Dynamic>(h.Addr()); 827 } 828 829 TEST(SanitizerCommon, SizeClassAllocator64CompactLocalCache) { 830 TestSizeClassAllocatorLocalCache<Allocator64Compact>(); 831 } 832 #endif 833 TEST(SanitizerCommon, SizeClassAllocator64VeryCompactLocalCache) { 834 TestSizeClassAllocatorLocalCache<Allocator64VeryCompact>(); 835 } 836 #endif 837 #endif 838 839 TEST(SanitizerCommon, SizeClassAllocator32CompactLocalCache) { 840 TestSizeClassAllocatorLocalCache<Allocator32Compact>(); 841 } 842 843 #if SANITIZER_CAN_USE_ALLOCATOR64 844 typedef Allocator64::AllocatorCache AllocatorCache; 845 static AllocatorCache static_allocator_cache; 846 847 void *AllocatorLeakTestWorker(void *arg) { 848 typedef AllocatorCache::Allocator Allocator; 849 Allocator *a = (Allocator*)(arg); 850 static_allocator_cache.Allocate(a, 10); 851 static_allocator_cache.Drain(a); 852 return 0; 853 } 854 855 TEST(SanitizerCommon, AllocatorLeakTest) { 856 typedef AllocatorCache::Allocator Allocator; 857 Allocator a; 858 a.Init(kReleaseToOSIntervalNever); 859 uptr total_used_memory = 0; 860 for (int i = 0; i < 100; i++) { 861 pthread_t t; 862 PTHREAD_CREATE(&t, 0, AllocatorLeakTestWorker, &a); 863 PTHREAD_JOIN(t, 0); 864 if (i == 0) 865 total_used_memory = a.TotalMemoryUsed(); 866 EXPECT_EQ(a.TotalMemoryUsed(), total_used_memory); 867 } 868 869 a.TestOnlyUnmap(); 870 } 871 872 // Struct which is allocated to pass info to new threads. The new thread frees 873 // it. 874 struct NewThreadParams { 875 AllocatorCache *thread_cache; 876 AllocatorCache::Allocator *allocator; 877 uptr class_id; 878 }; 879 880 // Called in a new thread. Just frees its argument. 881 static void *DeallocNewThreadWorker(void *arg) { 882 NewThreadParams *params = reinterpret_cast<NewThreadParams*>(arg); 883 params->thread_cache->Deallocate(params->allocator, params->class_id, params); 884 return NULL; 885 } 886 887 // The allocator cache is supposed to be POD and zero initialized. We should be 888 // able to call Deallocate on a zeroed cache, and it will self-initialize. 889 TEST(Allocator, AllocatorCacheDeallocNewThread) { 890 AllocatorCache::Allocator allocator; 891 allocator.Init(kReleaseToOSIntervalNever); 892 AllocatorCache main_cache; 893 AllocatorCache child_cache; 894 memset(&main_cache, 0, sizeof(main_cache)); 895 memset(&child_cache, 0, sizeof(child_cache)); 896 897 uptr class_id = DefaultSizeClassMap::ClassID(sizeof(NewThreadParams)); 898 NewThreadParams *params = reinterpret_cast<NewThreadParams*>( 899 main_cache.Allocate(&allocator, class_id)); 900 params->thread_cache = &child_cache; 901 params->allocator = &allocator; 902 params->class_id = class_id; 903 pthread_t t; 904 PTHREAD_CREATE(&t, 0, DeallocNewThreadWorker, params); 905 PTHREAD_JOIN(t, 0); 906 907 allocator.TestOnlyUnmap(); 908 } 909 #endif 910 911 TEST(Allocator, Basic) { 912 char *p = (char*)InternalAlloc(10); 913 EXPECT_NE(p, (char*)0); 914 char *p2 = (char*)InternalAlloc(20); 915 EXPECT_NE(p2, (char*)0); 916 EXPECT_NE(p2, p); 917 InternalFree(p); 918 InternalFree(p2); 919 } 920 921 TEST(Allocator, Stress) { 922 const int kCount = 1000; 923 char *ptrs[kCount]; 924 unsigned rnd = 42; 925 for (int i = 0; i < kCount; i++) { 926 uptr sz = my_rand_r(&rnd) % 1000; 927 char *p = (char*)InternalAlloc(sz); 928 EXPECT_NE(p, (char*)0); 929 ptrs[i] = p; 930 } 931 for (int i = 0; i < kCount; i++) { 932 InternalFree(ptrs[i]); 933 } 934 } 935 936 TEST(Allocator, LargeAlloc) { 937 void *p = InternalAlloc(10 << 20); 938 InternalFree(p); 939 } 940 941 TEST(Allocator, ScopedBuffer) { 942 const int kSize = 512; 943 { 944 InternalMmapVector<int> int_buf(kSize); 945 EXPECT_EQ((uptr)kSize, int_buf.size()); 946 } 947 InternalMmapVector<char> char_buf(kSize); 948 EXPECT_EQ((uptr)kSize, char_buf.size()); 949 internal_memset(char_buf.data(), 'c', kSize); 950 for (int i = 0; i < kSize; i++) { 951 EXPECT_EQ('c', char_buf[i]); 952 } 953 } 954 955 void IterationTestCallback(uptr chunk, void *arg) { 956 reinterpret_cast<std::set<uptr> *>(arg)->insert(chunk); 957 } 958 959 template <class Allocator> 960 void TestSizeClassAllocatorIteration(uptr premapped_heap = 0) { 961 Allocator *a = new Allocator; 962 a->Init(kReleaseToOSIntervalNever, premapped_heap); 963 typename Allocator::AllocatorCache cache; 964 memset(&cache, 0, sizeof(cache)); 965 cache.Init(0); 966 967 static const uptr sizes[] = {1, 16, 30, 40, 100, 1000, 10000, 968 50000, 60000, 100000, 120000, 300000, 500000, 1000000, 2000000}; 969 970 std::vector<void *> allocated; 971 972 // Allocate a bunch of chunks. 973 for (uptr s = 0; s < ARRAY_SIZE(sizes); s++) { 974 uptr size = sizes[s]; 975 if (!a->CanAllocate(size, 1)) continue; 976 // printf("s = %ld\n", size); 977 uptr n_iter = std::max((uptr)6, 80000 / size); 978 // fprintf(stderr, "size: %ld iter: %ld\n", size, n_iter); 979 for (uptr j = 0; j < n_iter; j++) { 980 uptr class_id0 = Allocator::SizeClassMapT::ClassID(size); 981 void *x = cache.Allocate(a, class_id0); 982 allocated.push_back(x); 983 } 984 } 985 986 std::set<uptr> reported_chunks; 987 a->ForceLock(); 988 a->ForEachChunk(IterationTestCallback, &reported_chunks); 989 a->ForceUnlock(); 990 991 for (uptr i = 0; i < allocated.size(); i++) { 992 // Don't use EXPECT_NE. Reporting the first mismatch is enough. 993 ASSERT_NE(reported_chunks.find(reinterpret_cast<uptr>(allocated[i])), 994 reported_chunks.end()); 995 } 996 997 a->TestOnlyUnmap(); 998 delete a; 999 } 1000 1001 #if SANITIZER_CAN_USE_ALLOCATOR64 1002 // These tests can fail on Windows if memory is somewhat full and lit happens 1003 // to run them all at the same time. FIXME: Make them not flaky and reenable. 1004 #if !SANITIZER_WINDOWS 1005 TEST(SanitizerCommon, SizeClassAllocator64Iteration) { 1006 TestSizeClassAllocatorIteration<Allocator64>(); 1007 } 1008 TEST(SanitizerCommon, SizeClassAllocator64DynamicIteration) { 1009 TestSizeClassAllocatorIteration<Allocator64Dynamic>(); 1010 } 1011 #if !ALLOCATOR64_SMALL_SIZE 1012 TEST(SanitizerCommon, SizeClassAllocator64DynamicPremappedIteration) { 1013 ScopedPremappedHeap h; 1014 TestSizeClassAllocatorIteration<Allocator64Dynamic>(h.Addr()); 1015 } 1016 #endif 1017 #endif 1018 #endif 1019 1020 TEST(SanitizerCommon, SKIP_ON_SOLARIS_SPARCV9(SizeClassAllocator32Iteration)) { 1021 TestSizeClassAllocatorIteration<Allocator32Compact>(); 1022 } 1023 1024 TEST(SanitizerCommon, LargeMmapAllocatorIteration) { 1025 LargeMmapAllocator<NoOpMapUnmapCallback> a; 1026 a.Init(); 1027 AllocatorStats stats; 1028 stats.Init(); 1029 1030 static const uptr kNumAllocs = 1000; 1031 char *allocated[kNumAllocs]; 1032 static const uptr size = 40; 1033 // Allocate some. 1034 for (uptr i = 0; i < kNumAllocs; i++) 1035 allocated[i] = (char *)a.Allocate(&stats, size, 1); 1036 1037 std::set<uptr> reported_chunks; 1038 a.ForceLock(); 1039 a.ForEachChunk(IterationTestCallback, &reported_chunks); 1040 a.ForceUnlock(); 1041 1042 for (uptr i = 0; i < kNumAllocs; i++) { 1043 // Don't use EXPECT_NE. Reporting the first mismatch is enough. 1044 ASSERT_NE(reported_chunks.find(reinterpret_cast<uptr>(allocated[i])), 1045 reported_chunks.end()); 1046 } 1047 for (uptr i = 0; i < kNumAllocs; i++) 1048 a.Deallocate(&stats, allocated[i]); 1049 } 1050 1051 TEST(SanitizerCommon, LargeMmapAllocatorBlockBegin) { 1052 LargeMmapAllocator<NoOpMapUnmapCallback> a; 1053 a.Init(); 1054 AllocatorStats stats; 1055 stats.Init(); 1056 1057 static const uptr kNumAllocs = 1024; 1058 static const uptr kNumExpectedFalseLookups = 10000000; 1059 char *allocated[kNumAllocs]; 1060 static const uptr size = 4096; 1061 // Allocate some. 1062 for (uptr i = 0; i < kNumAllocs; i++) { 1063 allocated[i] = (char *)a.Allocate(&stats, size, 1); 1064 } 1065 1066 a.ForceLock(); 1067 for (uptr i = 0; i < kNumAllocs * kNumAllocs; i++) { 1068 // if ((i & (i - 1)) == 0) fprintf(stderr, "[%zd]\n", i); 1069 char *p1 = allocated[i % kNumAllocs]; 1070 EXPECT_EQ(p1, a.GetBlockBeginFastLocked(p1)); 1071 EXPECT_EQ(p1, a.GetBlockBeginFastLocked(p1 + size / 2)); 1072 EXPECT_EQ(p1, a.GetBlockBeginFastLocked(p1 + size - 1)); 1073 EXPECT_EQ(p1, a.GetBlockBeginFastLocked(p1 - 100)); 1074 } 1075 1076 for (uptr i = 0; i < kNumExpectedFalseLookups; i++) { 1077 void *p = reinterpret_cast<void *>(i % 1024); 1078 EXPECT_EQ((void *)0, a.GetBlockBeginFastLocked(p)); 1079 p = reinterpret_cast<void *>(~0L - (i % 1024)); 1080 EXPECT_EQ((void *)0, a.GetBlockBeginFastLocked(p)); 1081 } 1082 a.ForceUnlock(); 1083 1084 for (uptr i = 0; i < kNumAllocs; i++) 1085 a.Deallocate(&stats, allocated[i]); 1086 } 1087 1088 1089 // Don't test OOM conditions on Win64 because it causes other tests on the same 1090 // machine to OOM. 1091 #if SANITIZER_CAN_USE_ALLOCATOR64 && !SANITIZER_WINDOWS64 1092 typedef __sanitizer::SizeClassMap<2, 22, 22, 34, 128, 16> SpecialSizeClassMap; 1093 template <typename AddressSpaceViewTy = LocalAddressSpaceView> 1094 struct AP64_SpecialSizeClassMap { 1095 static const uptr kSpaceBeg = kAllocatorSpace; 1096 static const uptr kSpaceSize = kAllocatorSize; 1097 static const uptr kMetadataSize = 0; 1098 typedef SpecialSizeClassMap SizeClassMap; 1099 typedef NoOpMapUnmapCallback MapUnmapCallback; 1100 static const uptr kFlags = 0; 1101 using AddressSpaceView = AddressSpaceViewTy; 1102 }; 1103 1104 // Regression test for out-of-memory condition in PopulateFreeList(). 1105 TEST(SanitizerCommon, SizeClassAllocator64PopulateFreeListOOM) { 1106 // In a world where regions are small and chunks are huge... 1107 typedef SizeClassAllocator64<AP64_SpecialSizeClassMap<>> SpecialAllocator64; 1108 const uptr kRegionSize = 1109 kAllocatorSize / SpecialSizeClassMap::kNumClassesRounded; 1110 SpecialAllocator64 *a = new SpecialAllocator64; 1111 a->Init(kReleaseToOSIntervalNever); 1112 SpecialAllocator64::AllocatorCache cache; 1113 memset(&cache, 0, sizeof(cache)); 1114 cache.Init(0); 1115 1116 // ...one man is on a mission to overflow a region with a series of 1117 // successive allocations. 1118 1119 const uptr kClassID = ALLOCATOR64_SMALL_SIZE ? 18 : 24; 1120 const uptr kAllocationSize = SpecialSizeClassMap::Size(kClassID); 1121 ASSERT_LT(2 * kAllocationSize, kRegionSize); 1122 ASSERT_GT(3 * kAllocationSize, kRegionSize); 1123 EXPECT_NE(cache.Allocate(a, kClassID), nullptr); 1124 EXPECT_NE(cache.Allocate(a, kClassID), nullptr); 1125 EXPECT_EQ(cache.Allocate(a, kClassID), nullptr); 1126 1127 const uptr Class2 = ALLOCATOR64_SMALL_SIZE ? 15 : 21; 1128 const uptr Size2 = SpecialSizeClassMap::Size(Class2); 1129 ASSERT_EQ(Size2 * 8, kRegionSize); 1130 char *p[7]; 1131 for (int i = 0; i < 7; i++) { 1132 p[i] = (char*)cache.Allocate(a, Class2); 1133 EXPECT_NE(p[i], nullptr); 1134 fprintf(stderr, "p[%d] %p s = %lx\n", i, (void*)p[i], Size2); 1135 p[i][Size2 - 1] = 42; 1136 if (i) ASSERT_LT(p[i - 1], p[i]); 1137 } 1138 EXPECT_EQ(cache.Allocate(a, Class2), nullptr); 1139 cache.Deallocate(a, Class2, p[0]); 1140 cache.Drain(a); 1141 ASSERT_EQ(p[6][Size2 - 1], 42); 1142 a->TestOnlyUnmap(); 1143 delete a; 1144 } 1145 1146 #endif 1147 1148 #if SANITIZER_CAN_USE_ALLOCATOR64 1149 1150 class NoMemoryMapper { 1151 public: 1152 uptr last_request_buffer_size = 0; 1153 1154 u64 *MapPackedCounterArrayBuffer(uptr buffer_size) { 1155 last_request_buffer_size = buffer_size * sizeof(u64); 1156 return nullptr; 1157 } 1158 }; 1159 1160 class RedZoneMemoryMapper { 1161 public: 1162 RedZoneMemoryMapper() { 1163 const auto page_size = GetPageSize(); 1164 buffer = MmapOrDie(3ULL * page_size, ""); 1165 MprotectNoAccess(reinterpret_cast<uptr>(buffer), page_size); 1166 MprotectNoAccess(reinterpret_cast<uptr>(buffer) + page_size * 2, page_size); 1167 } 1168 ~RedZoneMemoryMapper() { UnmapOrDie(buffer, 3 * GetPageSize()); } 1169 1170 u64 *MapPackedCounterArrayBuffer(uptr buffer_size) { 1171 buffer_size *= sizeof(u64); 1172 const auto page_size = GetPageSize(); 1173 CHECK_EQ(buffer_size, page_size); 1174 u64 *p = 1175 reinterpret_cast<u64 *>(reinterpret_cast<uptr>(buffer) + page_size); 1176 memset(p, 0, page_size); 1177 return p; 1178 } 1179 1180 private: 1181 void *buffer; 1182 }; 1183 1184 TEST(SanitizerCommon, SizeClassAllocator64PackedCounterArray) { 1185 NoMemoryMapper no_memory_mapper; 1186 for (int i = 0; i < 64; i++) { 1187 // Various valid counter's max values packed into one word. 1188 Allocator64::PackedCounterArray counters_2n(1, 1ULL << i, 1189 &no_memory_mapper); 1190 EXPECT_EQ(8ULL, no_memory_mapper.last_request_buffer_size); 1191 1192 // Check the "all bit set" values too. 1193 Allocator64::PackedCounterArray counters_2n1_1(1, ~0ULL >> i, 1194 &no_memory_mapper); 1195 EXPECT_EQ(8ULL, no_memory_mapper.last_request_buffer_size); 1196 1197 // Verify the packing ratio, the counter is expected to be packed into the 1198 // closest power of 2 bits. 1199 Allocator64::PackedCounterArray counters(64, 1ULL << i, &no_memory_mapper); 1200 EXPECT_EQ(8ULL * RoundUpToPowerOfTwo(i + 1), 1201 no_memory_mapper.last_request_buffer_size); 1202 } 1203 1204 RedZoneMemoryMapper memory_mapper; 1205 // Go through 1, 2, 4, 8, .. 64 bits per counter. 1206 for (int i = 0; i < 7; i++) { 1207 // Make sure counters request one memory page for the buffer. 1208 const u64 kNumCounters = (GetPageSize() / 8) * (64 >> i); 1209 Allocator64::PackedCounterArray counters( 1210 kNumCounters, 1ULL << ((1 << i) - 1), &memory_mapper); 1211 counters.Inc(0); 1212 for (u64 c = 1; c < kNumCounters - 1; c++) { 1213 ASSERT_EQ(0ULL, counters.Get(c)); 1214 counters.Inc(c); 1215 ASSERT_EQ(1ULL, counters.Get(c - 1)); 1216 } 1217 ASSERT_EQ(0ULL, counters.Get(kNumCounters - 1)); 1218 counters.Inc(kNumCounters - 1); 1219 1220 if (i > 0) { 1221 counters.IncRange(0, kNumCounters - 1); 1222 for (u64 c = 0; c < kNumCounters; c++) 1223 ASSERT_EQ(2ULL, counters.Get(c)); 1224 } 1225 } 1226 } 1227 1228 class RangeRecorder { 1229 public: 1230 std::string reported_pages; 1231 1232 RangeRecorder() 1233 : page_size_scaled_log( 1234 Log2(GetPageSizeCached() >> Allocator64::kCompactPtrScale)), 1235 last_page_reported(0) {} 1236 1237 void ReleasePageRangeToOS(u32 class_id, u32 from, u32 to) { 1238 from >>= page_size_scaled_log; 1239 to >>= page_size_scaled_log; 1240 ASSERT_LT(from, to); 1241 if (!reported_pages.empty()) 1242 ASSERT_LT(last_page_reported, from); 1243 reported_pages.append(from - last_page_reported, '.'); 1244 reported_pages.append(to - from, 'x'); 1245 last_page_reported = to; 1246 } 1247 1248 private: 1249 const uptr page_size_scaled_log; 1250 u32 last_page_reported; 1251 }; 1252 1253 TEST(SanitizerCommon, SizeClassAllocator64FreePagesRangeTracker) { 1254 typedef Allocator64::FreePagesRangeTracker<RangeRecorder> RangeTracker; 1255 1256 // 'x' denotes a page to be released, '.' denotes a page to be kept around. 1257 const char* test_cases[] = { 1258 "", 1259 ".", 1260 "x", 1261 "........", 1262 "xxxxxxxxxxx", 1263 "..............xxxxx", 1264 "xxxxxxxxxxxxxxxxxx.....", 1265 "......xxxxxxxx........", 1266 "xxx..........xxxxxxxxxxxxxxx", 1267 "......xxxx....xxxx........", 1268 "xxx..........xxxxxxxx....xxxxxxx", 1269 "x.x.x.x.x.x.x.x.x.x.x.x.", 1270 ".x.x.x.x.x.x.x.x.x.x.x.x", 1271 ".x.x.x.x.x.x.x.x.x.x.x.x.", 1272 "x.x.x.x.x.x.x.x.x.x.x.x.x", 1273 }; 1274 1275 for (auto test_case : test_cases) { 1276 RangeRecorder range_recorder; 1277 RangeTracker tracker(&range_recorder, 1); 1278 for (int i = 0; test_case[i] != 0; i++) 1279 tracker.NextPage(test_case[i] == 'x'); 1280 tracker.Done(); 1281 // Strip trailing '.'-pages before comparing the results as they are not 1282 // going to be reported to range_recorder anyway. 1283 const char* last_x = strrchr(test_case, 'x'); 1284 std::string expected( 1285 test_case, 1286 last_x == nullptr ? 0 : (last_x - test_case + 1)); 1287 EXPECT_STREQ(expected.c_str(), range_recorder.reported_pages.c_str()); 1288 } 1289 } 1290 1291 class ReleasedPagesTrackingMemoryMapper { 1292 public: 1293 std::set<u32> reported_pages; 1294 std::vector<u64> buffer; 1295 1296 u64 *MapPackedCounterArrayBuffer(uptr buffer_size) { 1297 reported_pages.clear(); 1298 buffer.assign(buffer_size, 0); 1299 return buffer.data(); 1300 } 1301 void ReleasePageRangeToOS(u32 class_id, u32 from, u32 to) { 1302 uptr page_size_scaled = 1303 GetPageSizeCached() >> Allocator64::kCompactPtrScale; 1304 for (u32 i = from; i < to; i += page_size_scaled) 1305 reported_pages.insert(i); 1306 } 1307 }; 1308 1309 template <class Allocator> 1310 void TestReleaseFreeMemoryToOS() { 1311 ReleasedPagesTrackingMemoryMapper memory_mapper; 1312 const uptr kAllocatedPagesCount = 1024; 1313 const uptr page_size = GetPageSizeCached(); 1314 const uptr page_size_scaled = page_size >> Allocator::kCompactPtrScale; 1315 std::mt19937 r; 1316 uint32_t rnd_state = 42; 1317 1318 for (uptr class_id = 1; class_id <= Allocator::SizeClassMapT::kLargestClassID; 1319 class_id++) { 1320 const uptr chunk_size = Allocator::SizeClassMapT::Size(class_id); 1321 const uptr chunk_size_scaled = chunk_size >> Allocator::kCompactPtrScale; 1322 const uptr max_chunks = 1323 kAllocatedPagesCount * GetPageSizeCached() / chunk_size; 1324 1325 // Generate the random free list. 1326 std::vector<u32> free_array; 1327 bool in_free_range = false; 1328 uptr current_range_end = 0; 1329 for (uptr i = 0; i < max_chunks; i++) { 1330 if (i == current_range_end) { 1331 in_free_range = (my_rand_r(&rnd_state) & 1U) == 1; 1332 current_range_end += my_rand_r(&rnd_state) % 100 + 1; 1333 } 1334 if (in_free_range) 1335 free_array.push_back(i * chunk_size_scaled); 1336 } 1337 if (free_array.empty()) 1338 continue; 1339 // Shuffle free_list to verify that ReleaseFreeMemoryToOS does not depend on 1340 // the list ordering. 1341 std::shuffle(free_array.begin(), free_array.end(), r); 1342 1343 Allocator::ReleaseFreeMemoryToOS(&free_array[0], free_array.size(), 1344 chunk_size, kAllocatedPagesCount, 1345 &memory_mapper, class_id); 1346 1347 // Verify that there are no released pages touched by used chunks and all 1348 // ranges of free chunks big enough to contain the entire memory pages had 1349 // these pages released. 1350 uptr verified_released_pages = 0; 1351 std::set<u32> free_chunks(free_array.begin(), free_array.end()); 1352 1353 u32 current_chunk = 0; 1354 in_free_range = false; 1355 u32 current_free_range_start = 0; 1356 for (uptr i = 0; i <= max_chunks; i++) { 1357 bool is_free_chunk = free_chunks.find(current_chunk) != free_chunks.end(); 1358 1359 if (is_free_chunk) { 1360 if (!in_free_range) { 1361 in_free_range = true; 1362 current_free_range_start = current_chunk; 1363 } 1364 } else { 1365 // Verify that this used chunk does not touch any released page. 1366 for (uptr i_page = current_chunk / page_size_scaled; 1367 i_page <= (current_chunk + chunk_size_scaled - 1) / 1368 page_size_scaled; 1369 i_page++) { 1370 bool page_released = 1371 memory_mapper.reported_pages.find(i_page * page_size_scaled) != 1372 memory_mapper.reported_pages.end(); 1373 ASSERT_EQ(false, page_released); 1374 } 1375 1376 if (in_free_range) { 1377 in_free_range = false; 1378 // Verify that all entire memory pages covered by this range of free 1379 // chunks were released. 1380 u32 page = RoundUpTo(current_free_range_start, page_size_scaled); 1381 while (page + page_size_scaled <= current_chunk) { 1382 bool page_released = 1383 memory_mapper.reported_pages.find(page) != 1384 memory_mapper.reported_pages.end(); 1385 ASSERT_EQ(true, page_released); 1386 verified_released_pages++; 1387 page += page_size_scaled; 1388 } 1389 } 1390 } 1391 1392 current_chunk += chunk_size_scaled; 1393 } 1394 1395 ASSERT_EQ(memory_mapper.reported_pages.size(), verified_released_pages); 1396 } 1397 } 1398 1399 TEST(SanitizerCommon, SizeClassAllocator64ReleaseFreeMemoryToOS) { 1400 TestReleaseFreeMemoryToOS<Allocator64>(); 1401 } 1402 1403 #if !ALLOCATOR64_SMALL_SIZE 1404 TEST(SanitizerCommon, SizeClassAllocator64CompactReleaseFreeMemoryToOS) { 1405 TestReleaseFreeMemoryToOS<Allocator64Compact>(); 1406 } 1407 1408 TEST(SanitizerCommon, SizeClassAllocator64VeryCompactReleaseFreeMemoryToOS) { 1409 TestReleaseFreeMemoryToOS<Allocator64VeryCompact>(); 1410 } 1411 #endif // !ALLOCATOR64_SMALL_SIZE 1412 1413 #endif // SANITIZER_CAN_USE_ALLOCATOR64 1414 1415 TEST(SanitizerCommon, LowLevelAllocatorShouldRoundUpSizeOnAlloc) { 1416 // When allocating a memory block slightly bigger than a memory page and 1417 // LowLevelAllocator calls MmapOrDie for the internal buffer, it should round 1418 // the size up to the page size, so that subsequent calls to the allocator 1419 // can use the remaining space in the last allocated page. 1420 static LowLevelAllocator allocator; 1421 char *ptr1 = (char *)allocator.Allocate(GetPageSizeCached() + 16); 1422 char *ptr2 = (char *)allocator.Allocate(16); 1423 EXPECT_EQ(ptr2, ptr1 + GetPageSizeCached() + 16); 1424 } 1425 1426 #endif // #if !SANITIZER_DEBUG 1427