1 //===- AddressSanitizer.cpp - memory error detector -----------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file is a part of AddressSanitizer, an address sanity checker. 11 // Details of the algorithm: 12 // https://github.com/google/sanitizers/wiki/AddressSanitizerAlgorithm 13 // 14 //===----------------------------------------------------------------------===// 15 16 #include "llvm/ADT/ArrayRef.h" 17 #include "llvm/ADT/DenseMap.h" 18 #include "llvm/ADT/DepthFirstIterator.h" 19 #include "llvm/ADT/SmallPtrSet.h" 20 #include "llvm/ADT/SmallVector.h" 21 #include "llvm/ADT/Statistic.h" 22 #include "llvm/ADT/StringExtras.h" 23 #include "llvm/ADT/StringRef.h" 24 #include "llvm/ADT/Triple.h" 25 #include "llvm/ADT/Twine.h" 26 #include "llvm/Analysis/MemoryBuiltins.h" 27 #include "llvm/Analysis/TargetLibraryInfo.h" 28 #include "llvm/Transforms/Utils/Local.h" 29 #include "llvm/Analysis/ValueTracking.h" 30 #include "llvm/BinaryFormat/MachO.h" 31 #include "llvm/IR/Argument.h" 32 #include "llvm/IR/Attributes.h" 33 #include "llvm/IR/BasicBlock.h" 34 #include "llvm/IR/CallSite.h" 35 #include "llvm/IR/Comdat.h" 36 #include "llvm/IR/Constant.h" 37 #include "llvm/IR/Constants.h" 38 #include "llvm/IR/DIBuilder.h" 39 #include "llvm/IR/DataLayout.h" 40 #include "llvm/IR/DebugInfoMetadata.h" 41 #include "llvm/IR/DebugLoc.h" 42 #include "llvm/IR/DerivedTypes.h" 43 #include "llvm/IR/Dominators.h" 44 #include "llvm/IR/Function.h" 45 #include "llvm/IR/GlobalAlias.h" 46 #include "llvm/IR/GlobalValue.h" 47 #include "llvm/IR/GlobalVariable.h" 48 #include "llvm/IR/IRBuilder.h" 49 #include "llvm/IR/InlineAsm.h" 50 #include "llvm/IR/InstVisitor.h" 51 #include "llvm/IR/InstrTypes.h" 52 #include "llvm/IR/Instruction.h" 53 #include "llvm/IR/Instructions.h" 54 #include "llvm/IR/IntrinsicInst.h" 55 #include "llvm/IR/Intrinsics.h" 56 #include "llvm/IR/LLVMContext.h" 57 #include "llvm/IR/MDBuilder.h" 58 #include "llvm/IR/Metadata.h" 59 #include "llvm/IR/Module.h" 60 #include "llvm/IR/Type.h" 61 #include "llvm/IR/Use.h" 62 #include "llvm/IR/Value.h" 63 #include "llvm/MC/MCSectionMachO.h" 64 #include "llvm/Pass.h" 65 #include "llvm/Support/Casting.h" 66 #include "llvm/Support/CommandLine.h" 67 #include "llvm/Support/Debug.h" 68 #include "llvm/Support/ErrorHandling.h" 69 #include "llvm/Support/MathExtras.h" 70 #include "llvm/Support/ScopedPrinter.h" 71 #include "llvm/Support/raw_ostream.h" 72 #include "llvm/Transforms/Instrumentation.h" 73 #include "llvm/Transforms/Utils/ASanStackFrameLayout.h" 74 #include "llvm/Transforms/Utils/BasicBlockUtils.h" 75 #include "llvm/Transforms/Utils/ModuleUtils.h" 76 #include "llvm/Transforms/Utils/PromoteMemToReg.h" 77 #include <algorithm> 78 #include <cassert> 79 #include <cstddef> 80 #include <cstdint> 81 #include <iomanip> 82 #include <limits> 83 #include <memory> 84 #include <sstream> 85 #include <string> 86 #include <tuple> 87 88 using namespace llvm; 89 90 #define DEBUG_TYPE "asan" 91 92 static const uint64_t kDefaultShadowScale = 3; 93 static const uint64_t kDefaultShadowOffset32 = 1ULL << 29; 94 static const uint64_t kDefaultShadowOffset64 = 1ULL << 44; 95 static const uint64_t kDynamicShadowSentinel = 96 std::numeric_limits<uint64_t>::max(); 97 static const uint64_t kIOSShadowOffset32 = 1ULL << 30; 98 static const uint64_t kIOSSimShadowOffset32 = 1ULL << 30; 99 static const uint64_t kIOSSimShadowOffset64 = kDefaultShadowOffset64; 100 static const uint64_t kSmallX86_64ShadowOffsetBase = 0x7FFFFFFF; // < 2G. 101 static const uint64_t kSmallX86_64ShadowOffsetAlignMask = ~0xFFFULL; 102 static const uint64_t kLinuxKasan_ShadowOffset64 = 0xdffffc0000000000; 103 static const uint64_t kPPC64_ShadowOffset64 = 1ULL << 44; 104 static const uint64_t kSystemZ_ShadowOffset64 = 1ULL << 52; 105 static const uint64_t kMIPS32_ShadowOffset32 = 0x0aaa0000; 106 static const uint64_t kMIPS64_ShadowOffset64 = 1ULL << 37; 107 static const uint64_t kAArch64_ShadowOffset64 = 1ULL << 36; 108 static const uint64_t kFreeBSD_ShadowOffset32 = 1ULL << 30; 109 static const uint64_t kFreeBSD_ShadowOffset64 = 1ULL << 46; 110 static const uint64_t kNetBSD_ShadowOffset32 = 1ULL << 30; 111 static const uint64_t kNetBSD_ShadowOffset64 = 1ULL << 46; 112 static const uint64_t kPS4CPU_ShadowOffset64 = 1ULL << 40; 113 static const uint64_t kWindowsShadowOffset32 = 3ULL << 28; 114 115 static const uint64_t kMyriadShadowScale = 5; 116 static const uint64_t kMyriadMemoryOffset32 = 0x80000000ULL; 117 static const uint64_t kMyriadMemorySize32 = 0x20000000ULL; 118 static const uint64_t kMyriadTagShift = 29; 119 static const uint64_t kMyriadDDRTag = 4; 120 static const uint64_t kMyriadCacheBitMask32 = 0x40000000ULL; 121 122 // The shadow memory space is dynamically allocated. 123 static const uint64_t kWindowsShadowOffset64 = kDynamicShadowSentinel; 124 125 static const size_t kMinStackMallocSize = 1 << 6; // 64B 126 static const size_t kMaxStackMallocSize = 1 << 16; // 64K 127 static const uintptr_t kCurrentStackFrameMagic = 0x41B58AB3; 128 static const uintptr_t kRetiredStackFrameMagic = 0x45E0360E; 129 130 static const char *const kAsanModuleCtorName = "asan.module_ctor"; 131 static const char *const kAsanModuleDtorName = "asan.module_dtor"; 132 static const uint64_t kAsanCtorAndDtorPriority = 1; 133 static const char *const kAsanReportErrorTemplate = "__asan_report_"; 134 static const char *const kAsanRegisterGlobalsName = "__asan_register_globals"; 135 static const char *const kAsanUnregisterGlobalsName = 136 "__asan_unregister_globals"; 137 static const char *const kAsanRegisterImageGlobalsName = 138 "__asan_register_image_globals"; 139 static const char *const kAsanUnregisterImageGlobalsName = 140 "__asan_unregister_image_globals"; 141 static const char *const kAsanRegisterElfGlobalsName = 142 "__asan_register_elf_globals"; 143 static const char *const kAsanUnregisterElfGlobalsName = 144 "__asan_unregister_elf_globals"; 145 static const char *const kAsanPoisonGlobalsName = "__asan_before_dynamic_init"; 146 static const char *const kAsanUnpoisonGlobalsName = "__asan_after_dynamic_init"; 147 static const char *const kAsanInitName = "__asan_init"; 148 static const char *const kAsanVersionCheckNamePrefix = 149 "__asan_version_mismatch_check_v"; 150 static const char *const kAsanPtrCmp = "__sanitizer_ptr_cmp"; 151 static const char *const kAsanPtrSub = "__sanitizer_ptr_sub"; 152 static const char *const kAsanHandleNoReturnName = "__asan_handle_no_return"; 153 static const int kMaxAsanStackMallocSizeClass = 10; 154 static const char *const kAsanStackMallocNameTemplate = "__asan_stack_malloc_"; 155 static const char *const kAsanStackFreeNameTemplate = "__asan_stack_free_"; 156 static const char *const kAsanGenPrefix = "___asan_gen_"; 157 static const char *const kODRGenPrefix = "__odr_asan_gen_"; 158 static const char *const kSanCovGenPrefix = "__sancov_gen_"; 159 static const char *const kAsanSetShadowPrefix = "__asan_set_shadow_"; 160 static const char *const kAsanPoisonStackMemoryName = 161 "__asan_poison_stack_memory"; 162 static const char *const kAsanUnpoisonStackMemoryName = 163 "__asan_unpoison_stack_memory"; 164 165 // ASan version script has __asan_* wildcard. Triple underscore prevents a 166 // linker (gold) warning about attempting to export a local symbol. 167 static const char *const kAsanGlobalsRegisteredFlagName = 168 "___asan_globals_registered"; 169 170 static const char *const kAsanOptionDetectUseAfterReturn = 171 "__asan_option_detect_stack_use_after_return"; 172 173 static const char *const kAsanShadowMemoryDynamicAddress = 174 "__asan_shadow_memory_dynamic_address"; 175 176 static const char *const kAsanAllocaPoison = "__asan_alloca_poison"; 177 static const char *const kAsanAllocasUnpoison = "__asan_allocas_unpoison"; 178 179 // Accesses sizes are powers of two: 1, 2, 4, 8, 16. 180 static const size_t kNumberOfAccessSizes = 5; 181 182 static const unsigned kAllocaRzSize = 32; 183 184 // Command-line flags. 185 186 static cl::opt<bool> ClEnableKasan( 187 "asan-kernel", cl::desc("Enable KernelAddressSanitizer instrumentation"), 188 cl::Hidden, cl::init(false)); 189 190 static cl::opt<bool> ClRecover( 191 "asan-recover", 192 cl::desc("Enable recovery mode (continue-after-error)."), 193 cl::Hidden, cl::init(false)); 194 195 // This flag may need to be replaced with -f[no-]asan-reads. 196 static cl::opt<bool> ClInstrumentReads("asan-instrument-reads", 197 cl::desc("instrument read instructions"), 198 cl::Hidden, cl::init(true)); 199 200 static cl::opt<bool> ClInstrumentWrites( 201 "asan-instrument-writes", cl::desc("instrument write instructions"), 202 cl::Hidden, cl::init(true)); 203 204 static cl::opt<bool> ClInstrumentAtomics( 205 "asan-instrument-atomics", 206 cl::desc("instrument atomic instructions (rmw, cmpxchg)"), cl::Hidden, 207 cl::init(true)); 208 209 static cl::opt<bool> ClAlwaysSlowPath( 210 "asan-always-slow-path", 211 cl::desc("use instrumentation with slow path for all accesses"), cl::Hidden, 212 cl::init(false)); 213 214 static cl::opt<bool> ClForceDynamicShadow( 215 "asan-force-dynamic-shadow", 216 cl::desc("Load shadow address into a local variable for each function"), 217 cl::Hidden, cl::init(false)); 218 219 static cl::opt<bool> 220 ClWithIfunc("asan-with-ifunc", 221 cl::desc("Access dynamic shadow through an ifunc global on " 222 "platforms that support this"), 223 cl::Hidden, cl::init(true)); 224 225 static cl::opt<bool> ClWithIfuncSuppressRemat( 226 "asan-with-ifunc-suppress-remat", 227 cl::desc("Suppress rematerialization of dynamic shadow address by passing " 228 "it through inline asm in prologue."), 229 cl::Hidden, cl::init(true)); 230 231 // This flag limits the number of instructions to be instrumented 232 // in any given BB. Normally, this should be set to unlimited (INT_MAX), 233 // but due to http://llvm.org/bugs/show_bug.cgi?id=12652 we temporary 234 // set it to 10000. 235 static cl::opt<int> ClMaxInsnsToInstrumentPerBB( 236 "asan-max-ins-per-bb", cl::init(10000), 237 cl::desc("maximal number of instructions to instrument in any given BB"), 238 cl::Hidden); 239 240 // This flag may need to be replaced with -f[no]asan-stack. 241 static cl::opt<bool> ClStack("asan-stack", cl::desc("Handle stack memory"), 242 cl::Hidden, cl::init(true)); 243 static cl::opt<uint32_t> ClMaxInlinePoisoningSize( 244 "asan-max-inline-poisoning-size", 245 cl::desc( 246 "Inline shadow poisoning for blocks up to the given size in bytes."), 247 cl::Hidden, cl::init(64)); 248 249 static cl::opt<bool> ClUseAfterReturn("asan-use-after-return", 250 cl::desc("Check stack-use-after-return"), 251 cl::Hidden, cl::init(true)); 252 253 static cl::opt<bool> ClRedzoneByvalArgs("asan-redzone-byval-args", 254 cl::desc("Create redzones for byval " 255 "arguments (extra copy " 256 "required)"), cl::Hidden, 257 cl::init(true)); 258 259 static cl::opt<bool> ClUseAfterScope("asan-use-after-scope", 260 cl::desc("Check stack-use-after-scope"), 261 cl::Hidden, cl::init(false)); 262 263 // This flag may need to be replaced with -f[no]asan-globals. 264 static cl::opt<bool> ClGlobals("asan-globals", 265 cl::desc("Handle global objects"), cl::Hidden, 266 cl::init(true)); 267 268 static cl::opt<bool> ClInitializers("asan-initialization-order", 269 cl::desc("Handle C++ initializer order"), 270 cl::Hidden, cl::init(true)); 271 272 static cl::opt<bool> ClInvalidPointerPairs( 273 "asan-detect-invalid-pointer-pair", 274 cl::desc("Instrument <, <=, >, >=, - with pointer operands"), cl::Hidden, 275 cl::init(false)); 276 277 static cl::opt<unsigned> ClRealignStack( 278 "asan-realign-stack", 279 cl::desc("Realign stack to the value of this flag (power of two)"), 280 cl::Hidden, cl::init(32)); 281 282 static cl::opt<int> ClInstrumentationWithCallsThreshold( 283 "asan-instrumentation-with-call-threshold", 284 cl::desc( 285 "If the function being instrumented contains more than " 286 "this number of memory accesses, use callbacks instead of " 287 "inline checks (-1 means never use callbacks)."), 288 cl::Hidden, cl::init(7000)); 289 290 static cl::opt<std::string> ClMemoryAccessCallbackPrefix( 291 "asan-memory-access-callback-prefix", 292 cl::desc("Prefix for memory access callbacks"), cl::Hidden, 293 cl::init("__asan_")); 294 295 static cl::opt<bool> 296 ClInstrumentDynamicAllocas("asan-instrument-dynamic-allocas", 297 cl::desc("instrument dynamic allocas"), 298 cl::Hidden, cl::init(true)); 299 300 static cl::opt<bool> ClSkipPromotableAllocas( 301 "asan-skip-promotable-allocas", 302 cl::desc("Do not instrument promotable allocas"), cl::Hidden, 303 cl::init(true)); 304 305 // These flags allow to change the shadow mapping. 306 // The shadow mapping looks like 307 // Shadow = (Mem >> scale) + offset 308 309 static cl::opt<int> ClMappingScale("asan-mapping-scale", 310 cl::desc("scale of asan shadow mapping"), 311 cl::Hidden, cl::init(0)); 312 313 static cl::opt<unsigned long long> ClMappingOffset( 314 "asan-mapping-offset", 315 cl::desc("offset of asan shadow mapping [EXPERIMENTAL]"), cl::Hidden, 316 cl::init(0)); 317 318 // Optimization flags. Not user visible, used mostly for testing 319 // and benchmarking the tool. 320 321 static cl::opt<bool> ClOpt("asan-opt", cl::desc("Optimize instrumentation"), 322 cl::Hidden, cl::init(true)); 323 324 static cl::opt<bool> ClOptSameTemp( 325 "asan-opt-same-temp", cl::desc("Instrument the same temp just once"), 326 cl::Hidden, cl::init(true)); 327 328 static cl::opt<bool> ClOptGlobals("asan-opt-globals", 329 cl::desc("Don't instrument scalar globals"), 330 cl::Hidden, cl::init(true)); 331 332 static cl::opt<bool> ClOptStack( 333 "asan-opt-stack", cl::desc("Don't instrument scalar stack variables"), 334 cl::Hidden, cl::init(false)); 335 336 static cl::opt<bool> ClDynamicAllocaStack( 337 "asan-stack-dynamic-alloca", 338 cl::desc("Use dynamic alloca to represent stack variables"), cl::Hidden, 339 cl::init(true)); 340 341 static cl::opt<uint32_t> ClForceExperiment( 342 "asan-force-experiment", 343 cl::desc("Force optimization experiment (for testing)"), cl::Hidden, 344 cl::init(0)); 345 346 static cl::opt<bool> 347 ClUsePrivateAliasForGlobals("asan-use-private-alias", 348 cl::desc("Use private aliases for global" 349 " variables"), 350 cl::Hidden, cl::init(false)); 351 352 static cl::opt<bool> 353 ClUseGlobalsGC("asan-globals-live-support", 354 cl::desc("Use linker features to support dead " 355 "code stripping of globals"), 356 cl::Hidden, cl::init(true)); 357 358 // This is on by default even though there is a bug in gold: 359 // https://sourceware.org/bugzilla/show_bug.cgi?id=19002 360 static cl::opt<bool> 361 ClWithComdat("asan-with-comdat", 362 cl::desc("Place ASan constructors in comdat sections"), 363 cl::Hidden, cl::init(true)); 364 365 // Debug flags. 366 367 static cl::opt<int> ClDebug("asan-debug", cl::desc("debug"), cl::Hidden, 368 cl::init(0)); 369 370 static cl::opt<int> ClDebugStack("asan-debug-stack", cl::desc("debug stack"), 371 cl::Hidden, cl::init(0)); 372 373 static cl::opt<std::string> ClDebugFunc("asan-debug-func", cl::Hidden, 374 cl::desc("Debug func")); 375 376 static cl::opt<int> ClDebugMin("asan-debug-min", cl::desc("Debug min inst"), 377 cl::Hidden, cl::init(-1)); 378 379 static cl::opt<int> ClDebugMax("asan-debug-max", cl::desc("Debug max inst"), 380 cl::Hidden, cl::init(-1)); 381 382 STATISTIC(NumInstrumentedReads, "Number of instrumented reads"); 383 STATISTIC(NumInstrumentedWrites, "Number of instrumented writes"); 384 STATISTIC(NumOptimizedAccessesToGlobalVar, 385 "Number of optimized accesses to global vars"); 386 STATISTIC(NumOptimizedAccessesToStackVar, 387 "Number of optimized accesses to stack vars"); 388 389 namespace { 390 391 /// Frontend-provided metadata for source location. 392 struct LocationMetadata { 393 StringRef Filename; 394 int LineNo = 0; 395 int ColumnNo = 0; 396 397 LocationMetadata() = default; 398 399 bool empty() const { return Filename.empty(); } 400 401 void parse(MDNode *MDN) { 402 assert(MDN->getNumOperands() == 3); 403 MDString *DIFilename = cast<MDString>(MDN->getOperand(0)); 404 Filename = DIFilename->getString(); 405 LineNo = 406 mdconst::extract<ConstantInt>(MDN->getOperand(1))->getLimitedValue(); 407 ColumnNo = 408 mdconst::extract<ConstantInt>(MDN->getOperand(2))->getLimitedValue(); 409 } 410 }; 411 412 /// Frontend-provided metadata for global variables. 413 class GlobalsMetadata { 414 public: 415 struct Entry { 416 LocationMetadata SourceLoc; 417 StringRef Name; 418 bool IsDynInit = false; 419 bool IsBlacklisted = false; 420 421 Entry() = default; 422 }; 423 424 GlobalsMetadata() = default; 425 426 void reset() { 427 inited_ = false; 428 Entries.clear(); 429 } 430 431 void init(Module &M) { 432 assert(!inited_); 433 inited_ = true; 434 NamedMDNode *Globals = M.getNamedMetadata("llvm.asan.globals"); 435 if (!Globals) return; 436 for (auto MDN : Globals->operands()) { 437 // Metadata node contains the global and the fields of "Entry". 438 assert(MDN->getNumOperands() == 5); 439 auto *GV = mdconst::extract_or_null<GlobalVariable>(MDN->getOperand(0)); 440 // The optimizer may optimize away a global entirely. 441 if (!GV) continue; 442 // We can already have an entry for GV if it was merged with another 443 // global. 444 Entry &E = Entries[GV]; 445 if (auto *Loc = cast_or_null<MDNode>(MDN->getOperand(1))) 446 E.SourceLoc.parse(Loc); 447 if (auto *Name = cast_or_null<MDString>(MDN->getOperand(2))) 448 E.Name = Name->getString(); 449 ConstantInt *IsDynInit = 450 mdconst::extract<ConstantInt>(MDN->getOperand(3)); 451 E.IsDynInit |= IsDynInit->isOne(); 452 ConstantInt *IsBlacklisted = 453 mdconst::extract<ConstantInt>(MDN->getOperand(4)); 454 E.IsBlacklisted |= IsBlacklisted->isOne(); 455 } 456 } 457 458 /// Returns metadata entry for a given global. 459 Entry get(GlobalVariable *G) const { 460 auto Pos = Entries.find(G); 461 return (Pos != Entries.end()) ? Pos->second : Entry(); 462 } 463 464 private: 465 bool inited_ = false; 466 DenseMap<GlobalVariable *, Entry> Entries; 467 }; 468 469 /// This struct defines the shadow mapping using the rule: 470 /// shadow = (mem >> Scale) ADD-or-OR Offset. 471 /// If InGlobal is true, then 472 /// extern char __asan_shadow[]; 473 /// shadow = (mem >> Scale) + &__asan_shadow 474 struct ShadowMapping { 475 int Scale; 476 uint64_t Offset; 477 bool OrShadowOffset; 478 bool InGlobal; 479 }; 480 481 } // end anonymous namespace 482 483 static ShadowMapping getShadowMapping(Triple &TargetTriple, int LongSize, 484 bool IsKasan) { 485 bool IsAndroid = TargetTriple.isAndroid(); 486 bool IsIOS = TargetTriple.isiOS() || TargetTriple.isWatchOS(); 487 bool IsFreeBSD = TargetTriple.isOSFreeBSD(); 488 bool IsNetBSD = TargetTriple.isOSNetBSD(); 489 bool IsPS4CPU = TargetTriple.isPS4CPU(); 490 bool IsLinux = TargetTriple.isOSLinux(); 491 bool IsPPC64 = TargetTriple.getArch() == Triple::ppc64 || 492 TargetTriple.getArch() == Triple::ppc64le; 493 bool IsSystemZ = TargetTriple.getArch() == Triple::systemz; 494 bool IsX86 = TargetTriple.getArch() == Triple::x86; 495 bool IsX86_64 = TargetTriple.getArch() == Triple::x86_64; 496 bool IsMIPS32 = TargetTriple.isMIPS32(); 497 bool IsMIPS64 = TargetTriple.isMIPS64(); 498 bool IsArmOrThumb = TargetTriple.isARM() || TargetTriple.isThumb(); 499 bool IsAArch64 = TargetTriple.getArch() == Triple::aarch64; 500 bool IsWindows = TargetTriple.isOSWindows(); 501 bool IsFuchsia = TargetTriple.isOSFuchsia(); 502 bool IsMyriad = TargetTriple.getVendor() == llvm::Triple::Myriad; 503 504 ShadowMapping Mapping; 505 506 Mapping.Scale = IsMyriad ? kMyriadShadowScale : kDefaultShadowScale; 507 if (ClMappingScale.getNumOccurrences() > 0) { 508 Mapping.Scale = ClMappingScale; 509 } 510 511 if (LongSize == 32) { 512 if (IsAndroid) 513 Mapping.Offset = kDynamicShadowSentinel; 514 else if (IsMIPS32) 515 Mapping.Offset = kMIPS32_ShadowOffset32; 516 else if (IsFreeBSD) 517 Mapping.Offset = kFreeBSD_ShadowOffset32; 518 else if (IsNetBSD) 519 Mapping.Offset = kNetBSD_ShadowOffset32; 520 else if (IsIOS) 521 // If we're targeting iOS and x86, the binary is built for iOS simulator. 522 Mapping.Offset = IsX86 ? kIOSSimShadowOffset32 : kIOSShadowOffset32; 523 else if (IsWindows) 524 Mapping.Offset = kWindowsShadowOffset32; 525 else if (IsMyriad) { 526 uint64_t ShadowOffset = (kMyriadMemoryOffset32 + kMyriadMemorySize32 - 527 (kMyriadMemorySize32 >> Mapping.Scale)); 528 Mapping.Offset = ShadowOffset - (kMyriadMemoryOffset32 >> Mapping.Scale); 529 } 530 else 531 Mapping.Offset = kDefaultShadowOffset32; 532 } else { // LongSize == 64 533 // Fuchsia is always PIE, which means that the beginning of the address 534 // space is always available. 535 if (IsFuchsia) 536 Mapping.Offset = 0; 537 else if (IsPPC64) 538 Mapping.Offset = kPPC64_ShadowOffset64; 539 else if (IsSystemZ) 540 Mapping.Offset = kSystemZ_ShadowOffset64; 541 else if (IsFreeBSD && !IsMIPS64) 542 Mapping.Offset = kFreeBSD_ShadowOffset64; 543 else if (IsNetBSD) 544 Mapping.Offset = kNetBSD_ShadowOffset64; 545 else if (IsPS4CPU) 546 Mapping.Offset = kPS4CPU_ShadowOffset64; 547 else if (IsLinux && IsX86_64) { 548 if (IsKasan) 549 Mapping.Offset = kLinuxKasan_ShadowOffset64; 550 else 551 Mapping.Offset = (kSmallX86_64ShadowOffsetBase & 552 (kSmallX86_64ShadowOffsetAlignMask << Mapping.Scale)); 553 } else if (IsWindows && IsX86_64) { 554 Mapping.Offset = kWindowsShadowOffset64; 555 } else if (IsMIPS64) 556 Mapping.Offset = kMIPS64_ShadowOffset64; 557 else if (IsIOS) 558 // If we're targeting iOS and x86, the binary is built for iOS simulator. 559 // We are using dynamic shadow offset on the 64-bit devices. 560 Mapping.Offset = 561 IsX86_64 ? kIOSSimShadowOffset64 : kDynamicShadowSentinel; 562 else if (IsAArch64) 563 Mapping.Offset = kAArch64_ShadowOffset64; 564 else 565 Mapping.Offset = kDefaultShadowOffset64; 566 } 567 568 if (ClForceDynamicShadow) { 569 Mapping.Offset = kDynamicShadowSentinel; 570 } 571 572 if (ClMappingOffset.getNumOccurrences() > 0) { 573 Mapping.Offset = ClMappingOffset; 574 } 575 576 // OR-ing shadow offset if more efficient (at least on x86) if the offset 577 // is a power of two, but on ppc64 we have to use add since the shadow 578 // offset is not necessary 1/8-th of the address space. On SystemZ, 579 // we could OR the constant in a single instruction, but it's more 580 // efficient to load it once and use indexed addressing. 581 Mapping.OrShadowOffset = !IsAArch64 && !IsPPC64 && !IsSystemZ && !IsPS4CPU && 582 !(Mapping.Offset & (Mapping.Offset - 1)) && 583 Mapping.Offset != kDynamicShadowSentinel; 584 bool IsAndroidWithIfuncSupport = 585 IsAndroid && !TargetTriple.isAndroidVersionLT(21); 586 Mapping.InGlobal = ClWithIfunc && IsAndroidWithIfuncSupport && IsArmOrThumb; 587 588 return Mapping; 589 } 590 591 static size_t RedzoneSizeForScale(int MappingScale) { 592 // Redzone used for stack and globals is at least 32 bytes. 593 // For scales 6 and 7, the redzone has to be 64 and 128 bytes respectively. 594 return std::max(32U, 1U << MappingScale); 595 } 596 597 namespace { 598 599 /// AddressSanitizer: instrument the code in module to find memory bugs. 600 struct AddressSanitizer : public FunctionPass { 601 // Pass identification, replacement for typeid 602 static char ID; 603 604 explicit AddressSanitizer(bool CompileKernel = false, bool Recover = false, 605 bool UseAfterScope = false) 606 : FunctionPass(ID), UseAfterScope(UseAfterScope || ClUseAfterScope) { 607 this->Recover = ClRecover.getNumOccurrences() > 0 ? ClRecover : Recover; 608 this->CompileKernel = ClEnableKasan.getNumOccurrences() > 0 ? 609 ClEnableKasan : CompileKernel; 610 initializeAddressSanitizerPass(*PassRegistry::getPassRegistry()); 611 } 612 613 StringRef getPassName() const override { 614 return "AddressSanitizerFunctionPass"; 615 } 616 617 void getAnalysisUsage(AnalysisUsage &AU) const override { 618 AU.addRequired<DominatorTreeWrapperPass>(); 619 AU.addRequired<TargetLibraryInfoWrapperPass>(); 620 } 621 622 uint64_t getAllocaSizeInBytes(const AllocaInst &AI) const { 623 uint64_t ArraySize = 1; 624 if (AI.isArrayAllocation()) { 625 const ConstantInt *CI = dyn_cast<ConstantInt>(AI.getArraySize()); 626 assert(CI && "non-constant array size"); 627 ArraySize = CI->getZExtValue(); 628 } 629 Type *Ty = AI.getAllocatedType(); 630 uint64_t SizeInBytes = 631 AI.getModule()->getDataLayout().getTypeAllocSize(Ty); 632 return SizeInBytes * ArraySize; 633 } 634 635 /// Check if we want (and can) handle this alloca. 636 bool isInterestingAlloca(const AllocaInst &AI); 637 638 /// If it is an interesting memory access, return the PointerOperand 639 /// and set IsWrite/Alignment. Otherwise return nullptr. 640 /// MaybeMask is an output parameter for the mask Value, if we're looking at a 641 /// masked load/store. 642 Value *isInterestingMemoryAccess(Instruction *I, bool *IsWrite, 643 uint64_t *TypeSize, unsigned *Alignment, 644 Value **MaybeMask = nullptr); 645 646 void instrumentMop(ObjectSizeOffsetVisitor &ObjSizeVis, Instruction *I, 647 bool UseCalls, const DataLayout &DL); 648 void instrumentPointerComparisonOrSubtraction(Instruction *I); 649 void instrumentAddress(Instruction *OrigIns, Instruction *InsertBefore, 650 Value *Addr, uint32_t TypeSize, bool IsWrite, 651 Value *SizeArgument, bool UseCalls, uint32_t Exp); 652 void instrumentUnusualSizeOrAlignment(Instruction *I, 653 Instruction *InsertBefore, Value *Addr, 654 uint32_t TypeSize, bool IsWrite, 655 Value *SizeArgument, bool UseCalls, 656 uint32_t Exp); 657 Value *createSlowPathCmp(IRBuilder<> &IRB, Value *AddrLong, 658 Value *ShadowValue, uint32_t TypeSize); 659 Instruction *generateCrashCode(Instruction *InsertBefore, Value *Addr, 660 bool IsWrite, size_t AccessSizeIndex, 661 Value *SizeArgument, uint32_t Exp); 662 void instrumentMemIntrinsic(MemIntrinsic *MI); 663 Value *memToShadow(Value *Shadow, IRBuilder<> &IRB); 664 bool runOnFunction(Function &F) override; 665 bool maybeInsertAsanInitAtFunctionEntry(Function &F); 666 void maybeInsertDynamicShadowAtFunctionEntry(Function &F); 667 void markEscapedLocalAllocas(Function &F); 668 bool doInitialization(Module &M) override; 669 bool doFinalization(Module &M) override; 670 671 DominatorTree &getDominatorTree() const { return *DT; } 672 673 private: 674 friend struct FunctionStackPoisoner; 675 676 void initializeCallbacks(Module &M); 677 678 bool LooksLikeCodeInBug11395(Instruction *I); 679 bool GlobalIsLinkerInitialized(GlobalVariable *G); 680 bool isSafeAccess(ObjectSizeOffsetVisitor &ObjSizeVis, Value *Addr, 681 uint64_t TypeSize) const; 682 683 /// Helper to cleanup per-function state. 684 struct FunctionStateRAII { 685 AddressSanitizer *Pass; 686 687 FunctionStateRAII(AddressSanitizer *Pass) : Pass(Pass) { 688 assert(Pass->ProcessedAllocas.empty() && 689 "last pass forgot to clear cache"); 690 assert(!Pass->LocalDynamicShadow); 691 } 692 693 ~FunctionStateRAII() { 694 Pass->LocalDynamicShadow = nullptr; 695 Pass->ProcessedAllocas.clear(); 696 } 697 }; 698 699 LLVMContext *C; 700 Triple TargetTriple; 701 int LongSize; 702 bool CompileKernel; 703 bool Recover; 704 bool UseAfterScope; 705 Type *IntptrTy; 706 ShadowMapping Mapping; 707 DominatorTree *DT; 708 Function *AsanHandleNoReturnFunc; 709 Function *AsanPtrCmpFunction, *AsanPtrSubFunction; 710 Constant *AsanShadowGlobal; 711 712 // These arrays is indexed by AccessIsWrite, Experiment and log2(AccessSize). 713 Function *AsanErrorCallback[2][2][kNumberOfAccessSizes]; 714 Function *AsanMemoryAccessCallback[2][2][kNumberOfAccessSizes]; 715 716 // These arrays is indexed by AccessIsWrite and Experiment. 717 Function *AsanErrorCallbackSized[2][2]; 718 Function *AsanMemoryAccessCallbackSized[2][2]; 719 720 Function *AsanMemmove, *AsanMemcpy, *AsanMemset; 721 InlineAsm *EmptyAsm; 722 Value *LocalDynamicShadow = nullptr; 723 GlobalsMetadata GlobalsMD; 724 DenseMap<const AllocaInst *, bool> ProcessedAllocas; 725 }; 726 727 class AddressSanitizerModule : public ModulePass { 728 public: 729 // Pass identification, replacement for typeid 730 static char ID; 731 732 explicit AddressSanitizerModule(bool CompileKernel = false, 733 bool Recover = false, 734 bool UseGlobalsGC = true) 735 : ModulePass(ID), 736 UseGlobalsGC(UseGlobalsGC && ClUseGlobalsGC), 737 // Not a typo: ClWithComdat is almost completely pointless without 738 // ClUseGlobalsGC (because then it only works on modules without 739 // globals, which are rare); it is a prerequisite for ClUseGlobalsGC; 740 // and both suffer from gold PR19002 for which UseGlobalsGC constructor 741 // argument is designed as workaround. Therefore, disable both 742 // ClWithComdat and ClUseGlobalsGC unless the frontend says it's ok to 743 // do globals-gc. 744 UseCtorComdat(UseGlobalsGC && ClWithComdat) { 745 this->Recover = ClRecover.getNumOccurrences() > 0 ? 746 ClRecover : Recover; 747 this->CompileKernel = ClEnableKasan.getNumOccurrences() > 0 ? 748 ClEnableKasan : CompileKernel; 749 } 750 751 bool runOnModule(Module &M) override; 752 StringRef getPassName() const override { return "AddressSanitizerModule"; } 753 754 private: 755 void initializeCallbacks(Module &M); 756 757 bool InstrumentGlobals(IRBuilder<> &IRB, Module &M, bool *CtorComdat); 758 void InstrumentGlobalsCOFF(IRBuilder<> &IRB, Module &M, 759 ArrayRef<GlobalVariable *> ExtendedGlobals, 760 ArrayRef<Constant *> MetadataInitializers); 761 void InstrumentGlobalsELF(IRBuilder<> &IRB, Module &M, 762 ArrayRef<GlobalVariable *> ExtendedGlobals, 763 ArrayRef<Constant *> MetadataInitializers, 764 const std::string &UniqueModuleId); 765 void InstrumentGlobalsMachO(IRBuilder<> &IRB, Module &M, 766 ArrayRef<GlobalVariable *> ExtendedGlobals, 767 ArrayRef<Constant *> MetadataInitializers); 768 void 769 InstrumentGlobalsWithMetadataArray(IRBuilder<> &IRB, Module &M, 770 ArrayRef<GlobalVariable *> ExtendedGlobals, 771 ArrayRef<Constant *> MetadataInitializers); 772 773 GlobalVariable *CreateMetadataGlobal(Module &M, Constant *Initializer, 774 StringRef OriginalName); 775 void SetComdatForGlobalMetadata(GlobalVariable *G, GlobalVariable *Metadata, 776 StringRef InternalSuffix); 777 IRBuilder<> CreateAsanModuleDtor(Module &M); 778 779 bool ShouldInstrumentGlobal(GlobalVariable *G); 780 bool ShouldUseMachOGlobalsSection() const; 781 StringRef getGlobalMetadataSection() const; 782 void poisonOneInitializer(Function &GlobalInit, GlobalValue *ModuleName); 783 void createInitializerPoisonCalls(Module &M, GlobalValue *ModuleName); 784 size_t MinRedzoneSizeForGlobal() const { 785 return RedzoneSizeForScale(Mapping.Scale); 786 } 787 int GetAsanVersion(const Module &M) const; 788 789 GlobalsMetadata GlobalsMD; 790 bool CompileKernel; 791 bool Recover; 792 bool UseGlobalsGC; 793 bool UseCtorComdat; 794 Type *IntptrTy; 795 LLVMContext *C; 796 Triple TargetTriple; 797 ShadowMapping Mapping; 798 Function *AsanPoisonGlobals; 799 Function *AsanUnpoisonGlobals; 800 Function *AsanRegisterGlobals; 801 Function *AsanUnregisterGlobals; 802 Function *AsanRegisterImageGlobals; 803 Function *AsanUnregisterImageGlobals; 804 Function *AsanRegisterElfGlobals; 805 Function *AsanUnregisterElfGlobals; 806 807 Function *AsanCtorFunction = nullptr; 808 Function *AsanDtorFunction = nullptr; 809 }; 810 811 // Stack poisoning does not play well with exception handling. 812 // When an exception is thrown, we essentially bypass the code 813 // that unpoisones the stack. This is why the run-time library has 814 // to intercept __cxa_throw (as well as longjmp, etc) and unpoison the entire 815 // stack in the interceptor. This however does not work inside the 816 // actual function which catches the exception. Most likely because the 817 // compiler hoists the load of the shadow value somewhere too high. 818 // This causes asan to report a non-existing bug on 453.povray. 819 // It sounds like an LLVM bug. 820 struct FunctionStackPoisoner : public InstVisitor<FunctionStackPoisoner> { 821 Function &F; 822 AddressSanitizer &ASan; 823 DIBuilder DIB; 824 LLVMContext *C; 825 Type *IntptrTy; 826 Type *IntptrPtrTy; 827 ShadowMapping Mapping; 828 829 SmallVector<AllocaInst *, 16> AllocaVec; 830 SmallVector<AllocaInst *, 16> StaticAllocasToMoveUp; 831 SmallVector<Instruction *, 8> RetVec; 832 unsigned StackAlignment; 833 834 Function *AsanStackMallocFunc[kMaxAsanStackMallocSizeClass + 1], 835 *AsanStackFreeFunc[kMaxAsanStackMallocSizeClass + 1]; 836 Function *AsanSetShadowFunc[0x100] = {}; 837 Function *AsanPoisonStackMemoryFunc, *AsanUnpoisonStackMemoryFunc; 838 Function *AsanAllocaPoisonFunc, *AsanAllocasUnpoisonFunc; 839 840 // Stores a place and arguments of poisoning/unpoisoning call for alloca. 841 struct AllocaPoisonCall { 842 IntrinsicInst *InsBefore; 843 AllocaInst *AI; 844 uint64_t Size; 845 bool DoPoison; 846 }; 847 SmallVector<AllocaPoisonCall, 8> DynamicAllocaPoisonCallVec; 848 SmallVector<AllocaPoisonCall, 8> StaticAllocaPoisonCallVec; 849 850 SmallVector<AllocaInst *, 1> DynamicAllocaVec; 851 SmallVector<IntrinsicInst *, 1> StackRestoreVec; 852 AllocaInst *DynamicAllocaLayout = nullptr; 853 IntrinsicInst *LocalEscapeCall = nullptr; 854 855 // Maps Value to an AllocaInst from which the Value is originated. 856 using AllocaForValueMapTy = DenseMap<Value *, AllocaInst *>; 857 AllocaForValueMapTy AllocaForValue; 858 859 bool HasNonEmptyInlineAsm = false; 860 bool HasReturnsTwiceCall = false; 861 std::unique_ptr<CallInst> EmptyInlineAsm; 862 863 FunctionStackPoisoner(Function &F, AddressSanitizer &ASan) 864 : F(F), 865 ASan(ASan), 866 DIB(*F.getParent(), /*AllowUnresolved*/ false), 867 C(ASan.C), 868 IntptrTy(ASan.IntptrTy), 869 IntptrPtrTy(PointerType::get(IntptrTy, 0)), 870 Mapping(ASan.Mapping), 871 StackAlignment(1 << Mapping.Scale), 872 EmptyInlineAsm(CallInst::Create(ASan.EmptyAsm)) {} 873 874 bool runOnFunction() { 875 if (!ClStack) return false; 876 877 if (ClRedzoneByvalArgs) 878 copyArgsPassedByValToAllocas(); 879 880 // Collect alloca, ret, lifetime instructions etc. 881 for (BasicBlock *BB : depth_first(&F.getEntryBlock())) visit(*BB); 882 883 if (AllocaVec.empty() && DynamicAllocaVec.empty()) return false; 884 885 initializeCallbacks(*F.getParent()); 886 887 processDynamicAllocas(); 888 processStaticAllocas(); 889 890 if (ClDebugStack) { 891 LLVM_DEBUG(dbgs() << F); 892 } 893 return true; 894 } 895 896 // Arguments marked with the "byval" attribute are implicitly copied without 897 // using an alloca instruction. To produce redzones for those arguments, we 898 // copy them a second time into memory allocated with an alloca instruction. 899 void copyArgsPassedByValToAllocas(); 900 901 // Finds all Alloca instructions and puts 902 // poisoned red zones around all of them. 903 // Then unpoison everything back before the function returns. 904 void processStaticAllocas(); 905 void processDynamicAllocas(); 906 907 void createDynamicAllocasInitStorage(); 908 909 // ----------------------- Visitors. 910 /// Collect all Ret instructions. 911 void visitReturnInst(ReturnInst &RI) { RetVec.push_back(&RI); } 912 913 /// Collect all Resume instructions. 914 void visitResumeInst(ResumeInst &RI) { RetVec.push_back(&RI); } 915 916 /// Collect all CatchReturnInst instructions. 917 void visitCleanupReturnInst(CleanupReturnInst &CRI) { RetVec.push_back(&CRI); } 918 919 void unpoisonDynamicAllocasBeforeInst(Instruction *InstBefore, 920 Value *SavedStack) { 921 IRBuilder<> IRB(InstBefore); 922 Value *DynamicAreaPtr = IRB.CreatePtrToInt(SavedStack, IntptrTy); 923 // When we insert _asan_allocas_unpoison before @llvm.stackrestore, we 924 // need to adjust extracted SP to compute the address of the most recent 925 // alloca. We have a special @llvm.get.dynamic.area.offset intrinsic for 926 // this purpose. 927 if (!isa<ReturnInst>(InstBefore)) { 928 Function *DynamicAreaOffsetFunc = Intrinsic::getDeclaration( 929 InstBefore->getModule(), Intrinsic::get_dynamic_area_offset, 930 {IntptrTy}); 931 932 Value *DynamicAreaOffset = IRB.CreateCall(DynamicAreaOffsetFunc, {}); 933 934 DynamicAreaPtr = IRB.CreateAdd(IRB.CreatePtrToInt(SavedStack, IntptrTy), 935 DynamicAreaOffset); 936 } 937 938 IRB.CreateCall(AsanAllocasUnpoisonFunc, 939 {IRB.CreateLoad(DynamicAllocaLayout), DynamicAreaPtr}); 940 } 941 942 // Unpoison dynamic allocas redzones. 943 void unpoisonDynamicAllocas() { 944 for (auto &Ret : RetVec) 945 unpoisonDynamicAllocasBeforeInst(Ret, DynamicAllocaLayout); 946 947 for (auto &StackRestoreInst : StackRestoreVec) 948 unpoisonDynamicAllocasBeforeInst(StackRestoreInst, 949 StackRestoreInst->getOperand(0)); 950 } 951 952 // Deploy and poison redzones around dynamic alloca call. To do this, we 953 // should replace this call with another one with changed parameters and 954 // replace all its uses with new address, so 955 // addr = alloca type, old_size, align 956 // is replaced by 957 // new_size = (old_size + additional_size) * sizeof(type) 958 // tmp = alloca i8, new_size, max(align, 32) 959 // addr = tmp + 32 (first 32 bytes are for the left redzone). 960 // Additional_size is added to make new memory allocation contain not only 961 // requested memory, but also left, partial and right redzones. 962 void handleDynamicAllocaCall(AllocaInst *AI); 963 964 /// Collect Alloca instructions we want (and can) handle. 965 void visitAllocaInst(AllocaInst &AI) { 966 if (!ASan.isInterestingAlloca(AI)) { 967 if (AI.isStaticAlloca()) { 968 // Skip over allocas that are present *before* the first instrumented 969 // alloca, we don't want to move those around. 970 if (AllocaVec.empty()) 971 return; 972 973 StaticAllocasToMoveUp.push_back(&AI); 974 } 975 return; 976 } 977 978 StackAlignment = std::max(StackAlignment, AI.getAlignment()); 979 if (!AI.isStaticAlloca()) 980 DynamicAllocaVec.push_back(&AI); 981 else 982 AllocaVec.push_back(&AI); 983 } 984 985 /// Collect lifetime intrinsic calls to check for use-after-scope 986 /// errors. 987 void visitIntrinsicInst(IntrinsicInst &II) { 988 Intrinsic::ID ID = II.getIntrinsicID(); 989 if (ID == Intrinsic::stackrestore) StackRestoreVec.push_back(&II); 990 if (ID == Intrinsic::localescape) LocalEscapeCall = &II; 991 if (!ASan.UseAfterScope) 992 return; 993 if (ID != Intrinsic::lifetime_start && ID != Intrinsic::lifetime_end) 994 return; 995 // Found lifetime intrinsic, add ASan instrumentation if necessary. 996 ConstantInt *Size = dyn_cast<ConstantInt>(II.getArgOperand(0)); 997 // If size argument is undefined, don't do anything. 998 if (Size->isMinusOne()) return; 999 // Check that size doesn't saturate uint64_t and can 1000 // be stored in IntptrTy. 1001 const uint64_t SizeValue = Size->getValue().getLimitedValue(); 1002 if (SizeValue == ~0ULL || 1003 !ConstantInt::isValueValidForType(IntptrTy, SizeValue)) 1004 return; 1005 // Find alloca instruction that corresponds to llvm.lifetime argument. 1006 AllocaInst *AI = findAllocaForValue(II.getArgOperand(1)); 1007 if (!AI || !ASan.isInterestingAlloca(*AI)) 1008 return; 1009 bool DoPoison = (ID == Intrinsic::lifetime_end); 1010 AllocaPoisonCall APC = {&II, AI, SizeValue, DoPoison}; 1011 if (AI->isStaticAlloca()) 1012 StaticAllocaPoisonCallVec.push_back(APC); 1013 else if (ClInstrumentDynamicAllocas) 1014 DynamicAllocaPoisonCallVec.push_back(APC); 1015 } 1016 1017 void visitCallSite(CallSite CS) { 1018 Instruction *I = CS.getInstruction(); 1019 if (CallInst *CI = dyn_cast<CallInst>(I)) { 1020 HasNonEmptyInlineAsm |= CI->isInlineAsm() && 1021 !CI->isIdenticalTo(EmptyInlineAsm.get()) && 1022 I != ASan.LocalDynamicShadow; 1023 HasReturnsTwiceCall |= CI->canReturnTwice(); 1024 } 1025 } 1026 1027 // ---------------------- Helpers. 1028 void initializeCallbacks(Module &M); 1029 1030 bool doesDominateAllExits(const Instruction *I) const { 1031 for (auto Ret : RetVec) { 1032 if (!ASan.getDominatorTree().dominates(I, Ret)) return false; 1033 } 1034 return true; 1035 } 1036 1037 /// Finds alloca where the value comes from. 1038 AllocaInst *findAllocaForValue(Value *V); 1039 1040 // Copies bytes from ShadowBytes into shadow memory for indexes where 1041 // ShadowMask is not zero. If ShadowMask[i] is zero, we assume that 1042 // ShadowBytes[i] is constantly zero and doesn't need to be overwritten. 1043 void copyToShadow(ArrayRef<uint8_t> ShadowMask, ArrayRef<uint8_t> ShadowBytes, 1044 IRBuilder<> &IRB, Value *ShadowBase); 1045 void copyToShadow(ArrayRef<uint8_t> ShadowMask, ArrayRef<uint8_t> ShadowBytes, 1046 size_t Begin, size_t End, IRBuilder<> &IRB, 1047 Value *ShadowBase); 1048 void copyToShadowInline(ArrayRef<uint8_t> ShadowMask, 1049 ArrayRef<uint8_t> ShadowBytes, size_t Begin, 1050 size_t End, IRBuilder<> &IRB, Value *ShadowBase); 1051 1052 void poisonAlloca(Value *V, uint64_t Size, IRBuilder<> &IRB, bool DoPoison); 1053 1054 Value *createAllocaForLayout(IRBuilder<> &IRB, const ASanStackFrameLayout &L, 1055 bool Dynamic); 1056 PHINode *createPHI(IRBuilder<> &IRB, Value *Cond, Value *ValueIfTrue, 1057 Instruction *ThenTerm, Value *ValueIfFalse); 1058 }; 1059 1060 } // end anonymous namespace 1061 1062 char AddressSanitizer::ID = 0; 1063 1064 INITIALIZE_PASS_BEGIN( 1065 AddressSanitizer, "asan", 1066 "AddressSanitizer: detects use-after-free and out-of-bounds bugs.", false, 1067 false) 1068 INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass) 1069 INITIALIZE_PASS_DEPENDENCY(TargetLibraryInfoWrapperPass) 1070 INITIALIZE_PASS_END( 1071 AddressSanitizer, "asan", 1072 "AddressSanitizer: detects use-after-free and out-of-bounds bugs.", false, 1073 false) 1074 1075 FunctionPass *llvm::createAddressSanitizerFunctionPass(bool CompileKernel, 1076 bool Recover, 1077 bool UseAfterScope) { 1078 assert(!CompileKernel || Recover); 1079 return new AddressSanitizer(CompileKernel, Recover, UseAfterScope); 1080 } 1081 1082 char AddressSanitizerModule::ID = 0; 1083 1084 INITIALIZE_PASS( 1085 AddressSanitizerModule, "asan-module", 1086 "AddressSanitizer: detects use-after-free and out-of-bounds bugs." 1087 "ModulePass", 1088 false, false) 1089 1090 ModulePass *llvm::createAddressSanitizerModulePass(bool CompileKernel, 1091 bool Recover, 1092 bool UseGlobalsGC) { 1093 assert(!CompileKernel || Recover); 1094 return new AddressSanitizerModule(CompileKernel, Recover, UseGlobalsGC); 1095 } 1096 1097 static size_t TypeSizeToSizeIndex(uint32_t TypeSize) { 1098 size_t Res = countTrailingZeros(TypeSize / 8); 1099 assert(Res < kNumberOfAccessSizes); 1100 return Res; 1101 } 1102 1103 /// Create a global describing a source location. 1104 static GlobalVariable *createPrivateGlobalForSourceLoc(Module &M, 1105 LocationMetadata MD) { 1106 Constant *LocData[] = { 1107 createPrivateGlobalForString(M, MD.Filename, true, kAsanGenPrefix), 1108 ConstantInt::get(Type::getInt32Ty(M.getContext()), MD.LineNo), 1109 ConstantInt::get(Type::getInt32Ty(M.getContext()), MD.ColumnNo), 1110 }; 1111 auto LocStruct = ConstantStruct::getAnon(LocData); 1112 auto GV = new GlobalVariable(M, LocStruct->getType(), true, 1113 GlobalValue::PrivateLinkage, LocStruct, 1114 kAsanGenPrefix); 1115 GV->setUnnamedAddr(GlobalValue::UnnamedAddr::Global); 1116 return GV; 1117 } 1118 1119 /// Check if \p G has been created by a trusted compiler pass. 1120 static bool GlobalWasGeneratedByCompiler(GlobalVariable *G) { 1121 // Do not instrument @llvm.global_ctors, @llvm.used, etc. 1122 if (G->getName().startswith("llvm.")) 1123 return true; 1124 1125 // Do not instrument asan globals. 1126 if (G->getName().startswith(kAsanGenPrefix) || 1127 G->getName().startswith(kSanCovGenPrefix) || 1128 G->getName().startswith(kODRGenPrefix)) 1129 return true; 1130 1131 // Do not instrument gcov counter arrays. 1132 if (G->getName() == "__llvm_gcov_ctr") 1133 return true; 1134 1135 return false; 1136 } 1137 1138 Value *AddressSanitizer::memToShadow(Value *Shadow, IRBuilder<> &IRB) { 1139 // Shadow >> scale 1140 Shadow = IRB.CreateLShr(Shadow, Mapping.Scale); 1141 if (Mapping.Offset == 0) return Shadow; 1142 // (Shadow >> scale) | offset 1143 Value *ShadowBase; 1144 if (LocalDynamicShadow) 1145 ShadowBase = LocalDynamicShadow; 1146 else 1147 ShadowBase = ConstantInt::get(IntptrTy, Mapping.Offset); 1148 if (Mapping.OrShadowOffset) 1149 return IRB.CreateOr(Shadow, ShadowBase); 1150 else 1151 return IRB.CreateAdd(Shadow, ShadowBase); 1152 } 1153 1154 // Instrument memset/memmove/memcpy 1155 void AddressSanitizer::instrumentMemIntrinsic(MemIntrinsic *MI) { 1156 IRBuilder<> IRB(MI); 1157 if (isa<MemTransferInst>(MI)) { 1158 IRB.CreateCall( 1159 isa<MemMoveInst>(MI) ? AsanMemmove : AsanMemcpy, 1160 {IRB.CreatePointerCast(MI->getOperand(0), IRB.getInt8PtrTy()), 1161 IRB.CreatePointerCast(MI->getOperand(1), IRB.getInt8PtrTy()), 1162 IRB.CreateIntCast(MI->getOperand(2), IntptrTy, false)}); 1163 } else if (isa<MemSetInst>(MI)) { 1164 IRB.CreateCall( 1165 AsanMemset, 1166 {IRB.CreatePointerCast(MI->getOperand(0), IRB.getInt8PtrTy()), 1167 IRB.CreateIntCast(MI->getOperand(1), IRB.getInt32Ty(), false), 1168 IRB.CreateIntCast(MI->getOperand(2), IntptrTy, false)}); 1169 } 1170 MI->eraseFromParent(); 1171 } 1172 1173 /// Check if we want (and can) handle this alloca. 1174 bool AddressSanitizer::isInterestingAlloca(const AllocaInst &AI) { 1175 auto PreviouslySeenAllocaInfo = ProcessedAllocas.find(&AI); 1176 1177 if (PreviouslySeenAllocaInfo != ProcessedAllocas.end()) 1178 return PreviouslySeenAllocaInfo->getSecond(); 1179 1180 bool IsInteresting = 1181 (AI.getAllocatedType()->isSized() && 1182 // alloca() may be called with 0 size, ignore it. 1183 ((!AI.isStaticAlloca()) || getAllocaSizeInBytes(AI) > 0) && 1184 // We are only interested in allocas not promotable to registers. 1185 // Promotable allocas are common under -O0. 1186 (!ClSkipPromotableAllocas || !isAllocaPromotable(&AI)) && 1187 // inalloca allocas are not treated as static, and we don't want 1188 // dynamic alloca instrumentation for them as well. 1189 !AI.isUsedWithInAlloca() && 1190 // swifterror allocas are register promoted by ISel 1191 !AI.isSwiftError()); 1192 1193 ProcessedAllocas[&AI] = IsInteresting; 1194 return IsInteresting; 1195 } 1196 1197 Value *AddressSanitizer::isInterestingMemoryAccess(Instruction *I, 1198 bool *IsWrite, 1199 uint64_t *TypeSize, 1200 unsigned *Alignment, 1201 Value **MaybeMask) { 1202 // Skip memory accesses inserted by another instrumentation. 1203 if (I->getMetadata("nosanitize")) return nullptr; 1204 1205 // Do not instrument the load fetching the dynamic shadow address. 1206 if (LocalDynamicShadow == I) 1207 return nullptr; 1208 1209 Value *PtrOperand = nullptr; 1210 const DataLayout &DL = I->getModule()->getDataLayout(); 1211 if (LoadInst *LI = dyn_cast<LoadInst>(I)) { 1212 if (!ClInstrumentReads) return nullptr; 1213 *IsWrite = false; 1214 *TypeSize = DL.getTypeStoreSizeInBits(LI->getType()); 1215 *Alignment = LI->getAlignment(); 1216 PtrOperand = LI->getPointerOperand(); 1217 } else if (StoreInst *SI = dyn_cast<StoreInst>(I)) { 1218 if (!ClInstrumentWrites) return nullptr; 1219 *IsWrite = true; 1220 *TypeSize = DL.getTypeStoreSizeInBits(SI->getValueOperand()->getType()); 1221 *Alignment = SI->getAlignment(); 1222 PtrOperand = SI->getPointerOperand(); 1223 } else if (AtomicRMWInst *RMW = dyn_cast<AtomicRMWInst>(I)) { 1224 if (!ClInstrumentAtomics) return nullptr; 1225 *IsWrite = true; 1226 *TypeSize = DL.getTypeStoreSizeInBits(RMW->getValOperand()->getType()); 1227 *Alignment = 0; 1228 PtrOperand = RMW->getPointerOperand(); 1229 } else if (AtomicCmpXchgInst *XCHG = dyn_cast<AtomicCmpXchgInst>(I)) { 1230 if (!ClInstrumentAtomics) return nullptr; 1231 *IsWrite = true; 1232 *TypeSize = DL.getTypeStoreSizeInBits(XCHG->getCompareOperand()->getType()); 1233 *Alignment = 0; 1234 PtrOperand = XCHG->getPointerOperand(); 1235 } else if (auto CI = dyn_cast<CallInst>(I)) { 1236 auto *F = dyn_cast<Function>(CI->getCalledValue()); 1237 if (F && (F->getName().startswith("llvm.masked.load.") || 1238 F->getName().startswith("llvm.masked.store."))) { 1239 unsigned OpOffset = 0; 1240 if (F->getName().startswith("llvm.masked.store.")) { 1241 if (!ClInstrumentWrites) 1242 return nullptr; 1243 // Masked store has an initial operand for the value. 1244 OpOffset = 1; 1245 *IsWrite = true; 1246 } else { 1247 if (!ClInstrumentReads) 1248 return nullptr; 1249 *IsWrite = false; 1250 } 1251 1252 auto BasePtr = CI->getOperand(0 + OpOffset); 1253 auto Ty = cast<PointerType>(BasePtr->getType())->getElementType(); 1254 *TypeSize = DL.getTypeStoreSizeInBits(Ty); 1255 if (auto AlignmentConstant = 1256 dyn_cast<ConstantInt>(CI->getOperand(1 + OpOffset))) 1257 *Alignment = (unsigned)AlignmentConstant->getZExtValue(); 1258 else 1259 *Alignment = 1; // No alignment guarantees. We probably got Undef 1260 if (MaybeMask) 1261 *MaybeMask = CI->getOperand(2 + OpOffset); 1262 PtrOperand = BasePtr; 1263 } 1264 } 1265 1266 if (PtrOperand) { 1267 // Do not instrument acesses from different address spaces; we cannot deal 1268 // with them. 1269 Type *PtrTy = cast<PointerType>(PtrOperand->getType()->getScalarType()); 1270 if (PtrTy->getPointerAddressSpace() != 0) 1271 return nullptr; 1272 1273 // Ignore swifterror addresses. 1274 // swifterror memory addresses are mem2reg promoted by instruction 1275 // selection. As such they cannot have regular uses like an instrumentation 1276 // function and it makes no sense to track them as memory. 1277 if (PtrOperand->isSwiftError()) 1278 return nullptr; 1279 } 1280 1281 // Treat memory accesses to promotable allocas as non-interesting since they 1282 // will not cause memory violations. This greatly speeds up the instrumented 1283 // executable at -O0. 1284 if (ClSkipPromotableAllocas) 1285 if (auto AI = dyn_cast_or_null<AllocaInst>(PtrOperand)) 1286 return isInterestingAlloca(*AI) ? AI : nullptr; 1287 1288 return PtrOperand; 1289 } 1290 1291 static bool isPointerOperand(Value *V) { 1292 return V->getType()->isPointerTy() || isa<PtrToIntInst>(V); 1293 } 1294 1295 // This is a rough heuristic; it may cause both false positives and 1296 // false negatives. The proper implementation requires cooperation with 1297 // the frontend. 1298 static bool isInterestingPointerComparisonOrSubtraction(Instruction *I) { 1299 if (ICmpInst *Cmp = dyn_cast<ICmpInst>(I)) { 1300 if (!Cmp->isRelational()) return false; 1301 } else if (BinaryOperator *BO = dyn_cast<BinaryOperator>(I)) { 1302 if (BO->getOpcode() != Instruction::Sub) return false; 1303 } else { 1304 return false; 1305 } 1306 return isPointerOperand(I->getOperand(0)) && 1307 isPointerOperand(I->getOperand(1)); 1308 } 1309 1310 bool AddressSanitizer::GlobalIsLinkerInitialized(GlobalVariable *G) { 1311 // If a global variable does not have dynamic initialization we don't 1312 // have to instrument it. However, if a global does not have initializer 1313 // at all, we assume it has dynamic initializer (in other TU). 1314 return G->hasInitializer() && !GlobalsMD.get(G).IsDynInit; 1315 } 1316 1317 void AddressSanitizer::instrumentPointerComparisonOrSubtraction( 1318 Instruction *I) { 1319 IRBuilder<> IRB(I); 1320 Function *F = isa<ICmpInst>(I) ? AsanPtrCmpFunction : AsanPtrSubFunction; 1321 Value *Param[2] = {I->getOperand(0), I->getOperand(1)}; 1322 for (Value *&i : Param) { 1323 if (i->getType()->isPointerTy()) 1324 i = IRB.CreatePointerCast(i, IntptrTy); 1325 } 1326 IRB.CreateCall(F, Param); 1327 } 1328 1329 static void doInstrumentAddress(AddressSanitizer *Pass, Instruction *I, 1330 Instruction *InsertBefore, Value *Addr, 1331 unsigned Alignment, unsigned Granularity, 1332 uint32_t TypeSize, bool IsWrite, 1333 Value *SizeArgument, bool UseCalls, 1334 uint32_t Exp) { 1335 // Instrument a 1-, 2-, 4-, 8-, or 16- byte access with one check 1336 // if the data is properly aligned. 1337 if ((TypeSize == 8 || TypeSize == 16 || TypeSize == 32 || TypeSize == 64 || 1338 TypeSize == 128) && 1339 (Alignment >= Granularity || Alignment == 0 || Alignment >= TypeSize / 8)) 1340 return Pass->instrumentAddress(I, InsertBefore, Addr, TypeSize, IsWrite, 1341 nullptr, UseCalls, Exp); 1342 Pass->instrumentUnusualSizeOrAlignment(I, InsertBefore, Addr, TypeSize, 1343 IsWrite, nullptr, UseCalls, Exp); 1344 } 1345 1346 static void instrumentMaskedLoadOrStore(AddressSanitizer *Pass, 1347 const DataLayout &DL, Type *IntptrTy, 1348 Value *Mask, Instruction *I, 1349 Value *Addr, unsigned Alignment, 1350 unsigned Granularity, uint32_t TypeSize, 1351 bool IsWrite, Value *SizeArgument, 1352 bool UseCalls, uint32_t Exp) { 1353 auto *VTy = cast<PointerType>(Addr->getType())->getElementType(); 1354 uint64_t ElemTypeSize = DL.getTypeStoreSizeInBits(VTy->getScalarType()); 1355 unsigned Num = VTy->getVectorNumElements(); 1356 auto Zero = ConstantInt::get(IntptrTy, 0); 1357 for (unsigned Idx = 0; Idx < Num; ++Idx) { 1358 Value *InstrumentedAddress = nullptr; 1359 Instruction *InsertBefore = I; 1360 if (auto *Vector = dyn_cast<ConstantVector>(Mask)) { 1361 // dyn_cast as we might get UndefValue 1362 if (auto *Masked = dyn_cast<ConstantInt>(Vector->getOperand(Idx))) { 1363 if (Masked->isZero()) 1364 // Mask is constant false, so no instrumentation needed. 1365 continue; 1366 // If we have a true or undef value, fall through to doInstrumentAddress 1367 // with InsertBefore == I 1368 } 1369 } else { 1370 IRBuilder<> IRB(I); 1371 Value *MaskElem = IRB.CreateExtractElement(Mask, Idx); 1372 Instruction *ThenTerm = SplitBlockAndInsertIfThen(MaskElem, I, false); 1373 InsertBefore = ThenTerm; 1374 } 1375 1376 IRBuilder<> IRB(InsertBefore); 1377 InstrumentedAddress = 1378 IRB.CreateGEP(Addr, {Zero, ConstantInt::get(IntptrTy, Idx)}); 1379 doInstrumentAddress(Pass, I, InsertBefore, InstrumentedAddress, Alignment, 1380 Granularity, ElemTypeSize, IsWrite, SizeArgument, 1381 UseCalls, Exp); 1382 } 1383 } 1384 1385 void AddressSanitizer::instrumentMop(ObjectSizeOffsetVisitor &ObjSizeVis, 1386 Instruction *I, bool UseCalls, 1387 const DataLayout &DL) { 1388 bool IsWrite = false; 1389 unsigned Alignment = 0; 1390 uint64_t TypeSize = 0; 1391 Value *MaybeMask = nullptr; 1392 Value *Addr = 1393 isInterestingMemoryAccess(I, &IsWrite, &TypeSize, &Alignment, &MaybeMask); 1394 assert(Addr); 1395 1396 // Optimization experiments. 1397 // The experiments can be used to evaluate potential optimizations that remove 1398 // instrumentation (assess false negatives). Instead of completely removing 1399 // some instrumentation, you set Exp to a non-zero value (mask of optimization 1400 // experiments that want to remove instrumentation of this instruction). 1401 // If Exp is non-zero, this pass will emit special calls into runtime 1402 // (e.g. __asan_report_exp_load1 instead of __asan_report_load1). These calls 1403 // make runtime terminate the program in a special way (with a different 1404 // exit status). Then you run the new compiler on a buggy corpus, collect 1405 // the special terminations (ideally, you don't see them at all -- no false 1406 // negatives) and make the decision on the optimization. 1407 uint32_t Exp = ClForceExperiment; 1408 1409 if (ClOpt && ClOptGlobals) { 1410 // If initialization order checking is disabled, a simple access to a 1411 // dynamically initialized global is always valid. 1412 GlobalVariable *G = dyn_cast<GlobalVariable>(GetUnderlyingObject(Addr, DL)); 1413 if (G && (!ClInitializers || GlobalIsLinkerInitialized(G)) && 1414 isSafeAccess(ObjSizeVis, Addr, TypeSize)) { 1415 NumOptimizedAccessesToGlobalVar++; 1416 return; 1417 } 1418 } 1419 1420 if (ClOpt && ClOptStack) { 1421 // A direct inbounds access to a stack variable is always valid. 1422 if (isa<AllocaInst>(GetUnderlyingObject(Addr, DL)) && 1423 isSafeAccess(ObjSizeVis, Addr, TypeSize)) { 1424 NumOptimizedAccessesToStackVar++; 1425 return; 1426 } 1427 } 1428 1429 if (IsWrite) 1430 NumInstrumentedWrites++; 1431 else 1432 NumInstrumentedReads++; 1433 1434 unsigned Granularity = 1 << Mapping.Scale; 1435 if (MaybeMask) { 1436 instrumentMaskedLoadOrStore(this, DL, IntptrTy, MaybeMask, I, Addr, 1437 Alignment, Granularity, TypeSize, IsWrite, 1438 nullptr, UseCalls, Exp); 1439 } else { 1440 doInstrumentAddress(this, I, I, Addr, Alignment, Granularity, TypeSize, 1441 IsWrite, nullptr, UseCalls, Exp); 1442 } 1443 } 1444 1445 Instruction *AddressSanitizer::generateCrashCode(Instruction *InsertBefore, 1446 Value *Addr, bool IsWrite, 1447 size_t AccessSizeIndex, 1448 Value *SizeArgument, 1449 uint32_t Exp) { 1450 IRBuilder<> IRB(InsertBefore); 1451 Value *ExpVal = Exp == 0 ? nullptr : ConstantInt::get(IRB.getInt32Ty(), Exp); 1452 CallInst *Call = nullptr; 1453 if (SizeArgument) { 1454 if (Exp == 0) 1455 Call = IRB.CreateCall(AsanErrorCallbackSized[IsWrite][0], 1456 {Addr, SizeArgument}); 1457 else 1458 Call = IRB.CreateCall(AsanErrorCallbackSized[IsWrite][1], 1459 {Addr, SizeArgument, ExpVal}); 1460 } else { 1461 if (Exp == 0) 1462 Call = 1463 IRB.CreateCall(AsanErrorCallback[IsWrite][0][AccessSizeIndex], Addr); 1464 else 1465 Call = IRB.CreateCall(AsanErrorCallback[IsWrite][1][AccessSizeIndex], 1466 {Addr, ExpVal}); 1467 } 1468 1469 // We don't do Call->setDoesNotReturn() because the BB already has 1470 // UnreachableInst at the end. 1471 // This EmptyAsm is required to avoid callback merge. 1472 IRB.CreateCall(EmptyAsm, {}); 1473 return Call; 1474 } 1475 1476 Value *AddressSanitizer::createSlowPathCmp(IRBuilder<> &IRB, Value *AddrLong, 1477 Value *ShadowValue, 1478 uint32_t TypeSize) { 1479 size_t Granularity = static_cast<size_t>(1) << Mapping.Scale; 1480 // Addr & (Granularity - 1) 1481 Value *LastAccessedByte = 1482 IRB.CreateAnd(AddrLong, ConstantInt::get(IntptrTy, Granularity - 1)); 1483 // (Addr & (Granularity - 1)) + size - 1 1484 if (TypeSize / 8 > 1) 1485 LastAccessedByte = IRB.CreateAdd( 1486 LastAccessedByte, ConstantInt::get(IntptrTy, TypeSize / 8 - 1)); 1487 // (uint8_t) ((Addr & (Granularity-1)) + size - 1) 1488 LastAccessedByte = 1489 IRB.CreateIntCast(LastAccessedByte, ShadowValue->getType(), false); 1490 // ((uint8_t) ((Addr & (Granularity-1)) + size - 1)) >= ShadowValue 1491 return IRB.CreateICmpSGE(LastAccessedByte, ShadowValue); 1492 } 1493 1494 void AddressSanitizer::instrumentAddress(Instruction *OrigIns, 1495 Instruction *InsertBefore, Value *Addr, 1496 uint32_t TypeSize, bool IsWrite, 1497 Value *SizeArgument, bool UseCalls, 1498 uint32_t Exp) { 1499 bool IsMyriad = TargetTriple.getVendor() == llvm::Triple::Myriad; 1500 1501 IRBuilder<> IRB(InsertBefore); 1502 Value *AddrLong = IRB.CreatePointerCast(Addr, IntptrTy); 1503 size_t AccessSizeIndex = TypeSizeToSizeIndex(TypeSize); 1504 1505 if (UseCalls) { 1506 if (Exp == 0) 1507 IRB.CreateCall(AsanMemoryAccessCallback[IsWrite][0][AccessSizeIndex], 1508 AddrLong); 1509 else 1510 IRB.CreateCall(AsanMemoryAccessCallback[IsWrite][1][AccessSizeIndex], 1511 {AddrLong, ConstantInt::get(IRB.getInt32Ty(), Exp)}); 1512 return; 1513 } 1514 1515 if (IsMyriad) { 1516 // Strip the cache bit and do range check. 1517 // AddrLong &= ~kMyriadCacheBitMask32 1518 AddrLong = IRB.CreateAnd(AddrLong, ~kMyriadCacheBitMask32); 1519 // Tag = AddrLong >> kMyriadTagShift 1520 Value *Tag = IRB.CreateLShr(AddrLong, kMyriadTagShift); 1521 // Tag == kMyriadDDRTag 1522 Value *TagCheck = 1523 IRB.CreateICmpEQ(Tag, ConstantInt::get(IntptrTy, kMyriadDDRTag)); 1524 1525 Instruction *TagCheckTerm = 1526 SplitBlockAndInsertIfThen(TagCheck, InsertBefore, false, 1527 MDBuilder(*C).createBranchWeights(1, 100000)); 1528 assert(cast<BranchInst>(TagCheckTerm)->isUnconditional()); 1529 IRB.SetInsertPoint(TagCheckTerm); 1530 InsertBefore = TagCheckTerm; 1531 } 1532 1533 Type *ShadowTy = 1534 IntegerType::get(*C, std::max(8U, TypeSize >> Mapping.Scale)); 1535 Type *ShadowPtrTy = PointerType::get(ShadowTy, 0); 1536 Value *ShadowPtr = memToShadow(AddrLong, IRB); 1537 Value *CmpVal = Constant::getNullValue(ShadowTy); 1538 Value *ShadowValue = 1539 IRB.CreateLoad(IRB.CreateIntToPtr(ShadowPtr, ShadowPtrTy)); 1540 1541 Value *Cmp = IRB.CreateICmpNE(ShadowValue, CmpVal); 1542 size_t Granularity = 1ULL << Mapping.Scale; 1543 Instruction *CrashTerm = nullptr; 1544 1545 if (ClAlwaysSlowPath || (TypeSize < 8 * Granularity)) { 1546 // We use branch weights for the slow path check, to indicate that the slow 1547 // path is rarely taken. This seems to be the case for SPEC benchmarks. 1548 Instruction *CheckTerm = SplitBlockAndInsertIfThen( 1549 Cmp, InsertBefore, false, MDBuilder(*C).createBranchWeights(1, 100000)); 1550 assert(cast<BranchInst>(CheckTerm)->isUnconditional()); 1551 BasicBlock *NextBB = CheckTerm->getSuccessor(0); 1552 IRB.SetInsertPoint(CheckTerm); 1553 Value *Cmp2 = createSlowPathCmp(IRB, AddrLong, ShadowValue, TypeSize); 1554 if (Recover) { 1555 CrashTerm = SplitBlockAndInsertIfThen(Cmp2, CheckTerm, false); 1556 } else { 1557 BasicBlock *CrashBlock = 1558 BasicBlock::Create(*C, "", NextBB->getParent(), NextBB); 1559 CrashTerm = new UnreachableInst(*C, CrashBlock); 1560 BranchInst *NewTerm = BranchInst::Create(CrashBlock, NextBB, Cmp2); 1561 ReplaceInstWithInst(CheckTerm, NewTerm); 1562 } 1563 } else { 1564 CrashTerm = SplitBlockAndInsertIfThen(Cmp, InsertBefore, !Recover); 1565 } 1566 1567 Instruction *Crash = generateCrashCode(CrashTerm, AddrLong, IsWrite, 1568 AccessSizeIndex, SizeArgument, Exp); 1569 Crash->setDebugLoc(OrigIns->getDebugLoc()); 1570 } 1571 1572 // Instrument unusual size or unusual alignment. 1573 // We can not do it with a single check, so we do 1-byte check for the first 1574 // and the last bytes. We call __asan_report_*_n(addr, real_size) to be able 1575 // to report the actual access size. 1576 void AddressSanitizer::instrumentUnusualSizeOrAlignment( 1577 Instruction *I, Instruction *InsertBefore, Value *Addr, uint32_t TypeSize, 1578 bool IsWrite, Value *SizeArgument, bool UseCalls, uint32_t Exp) { 1579 IRBuilder<> IRB(InsertBefore); 1580 Value *Size = ConstantInt::get(IntptrTy, TypeSize / 8); 1581 Value *AddrLong = IRB.CreatePointerCast(Addr, IntptrTy); 1582 if (UseCalls) { 1583 if (Exp == 0) 1584 IRB.CreateCall(AsanMemoryAccessCallbackSized[IsWrite][0], 1585 {AddrLong, Size}); 1586 else 1587 IRB.CreateCall(AsanMemoryAccessCallbackSized[IsWrite][1], 1588 {AddrLong, Size, ConstantInt::get(IRB.getInt32Ty(), Exp)}); 1589 } else { 1590 Value *LastByte = IRB.CreateIntToPtr( 1591 IRB.CreateAdd(AddrLong, ConstantInt::get(IntptrTy, TypeSize / 8 - 1)), 1592 Addr->getType()); 1593 instrumentAddress(I, InsertBefore, Addr, 8, IsWrite, Size, false, Exp); 1594 instrumentAddress(I, InsertBefore, LastByte, 8, IsWrite, Size, false, Exp); 1595 } 1596 } 1597 1598 void AddressSanitizerModule::poisonOneInitializer(Function &GlobalInit, 1599 GlobalValue *ModuleName) { 1600 // Set up the arguments to our poison/unpoison functions. 1601 IRBuilder<> IRB(&GlobalInit.front(), 1602 GlobalInit.front().getFirstInsertionPt()); 1603 1604 // Add a call to poison all external globals before the given function starts. 1605 Value *ModuleNameAddr = ConstantExpr::getPointerCast(ModuleName, IntptrTy); 1606 IRB.CreateCall(AsanPoisonGlobals, ModuleNameAddr); 1607 1608 // Add calls to unpoison all globals before each return instruction. 1609 for (auto &BB : GlobalInit.getBasicBlockList()) 1610 if (ReturnInst *RI = dyn_cast<ReturnInst>(BB.getTerminator())) 1611 CallInst::Create(AsanUnpoisonGlobals, "", RI); 1612 } 1613 1614 void AddressSanitizerModule::createInitializerPoisonCalls( 1615 Module &M, GlobalValue *ModuleName) { 1616 GlobalVariable *GV = M.getGlobalVariable("llvm.global_ctors"); 1617 if (!GV) 1618 return; 1619 1620 ConstantArray *CA = dyn_cast<ConstantArray>(GV->getInitializer()); 1621 if (!CA) 1622 return; 1623 1624 for (Use &OP : CA->operands()) { 1625 if (isa<ConstantAggregateZero>(OP)) continue; 1626 ConstantStruct *CS = cast<ConstantStruct>(OP); 1627 1628 // Must have a function or null ptr. 1629 if (Function *F = dyn_cast<Function>(CS->getOperand(1))) { 1630 if (F->getName() == kAsanModuleCtorName) continue; 1631 ConstantInt *Priority = dyn_cast<ConstantInt>(CS->getOperand(0)); 1632 // Don't instrument CTORs that will run before asan.module_ctor. 1633 if (Priority->getLimitedValue() <= kAsanCtorAndDtorPriority) continue; 1634 poisonOneInitializer(*F, ModuleName); 1635 } 1636 } 1637 } 1638 1639 bool AddressSanitizerModule::ShouldInstrumentGlobal(GlobalVariable *G) { 1640 Type *Ty = G->getValueType(); 1641 LLVM_DEBUG(dbgs() << "GLOBAL: " << *G << "\n"); 1642 1643 if (GlobalsMD.get(G).IsBlacklisted) return false; 1644 if (!Ty->isSized()) return false; 1645 if (!G->hasInitializer()) return false; 1646 if (GlobalWasGeneratedByCompiler(G)) return false; // Our own globals. 1647 // Two problems with thread-locals: 1648 // - The address of the main thread's copy can't be computed at link-time. 1649 // - Need to poison all copies, not just the main thread's one. 1650 if (G->isThreadLocal()) return false; 1651 // For now, just ignore this Global if the alignment is large. 1652 if (G->getAlignment() > MinRedzoneSizeForGlobal()) return false; 1653 1654 // For non-COFF targets, only instrument globals known to be defined by this 1655 // TU. 1656 // FIXME: We can instrument comdat globals on ELF if we are using the 1657 // GC-friendly metadata scheme. 1658 if (!TargetTriple.isOSBinFormatCOFF()) { 1659 if (!G->hasExactDefinition() || G->hasComdat()) 1660 return false; 1661 } else { 1662 // On COFF, don't instrument non-ODR linkages. 1663 if (G->isInterposable()) 1664 return false; 1665 } 1666 1667 // If a comdat is present, it must have a selection kind that implies ODR 1668 // semantics: no duplicates, any, or exact match. 1669 if (Comdat *C = G->getComdat()) { 1670 switch (C->getSelectionKind()) { 1671 case Comdat::Any: 1672 case Comdat::ExactMatch: 1673 case Comdat::NoDuplicates: 1674 break; 1675 case Comdat::Largest: 1676 case Comdat::SameSize: 1677 return false; 1678 } 1679 } 1680 1681 if (G->hasSection()) { 1682 StringRef Section = G->getSection(); 1683 1684 // Globals from llvm.metadata aren't emitted, do not instrument them. 1685 if (Section == "llvm.metadata") return false; 1686 // Do not instrument globals from special LLVM sections. 1687 if (Section.find("__llvm") != StringRef::npos || Section.find("__LLVM") != StringRef::npos) return false; 1688 1689 // Do not instrument function pointers to initialization and termination 1690 // routines: dynamic linker will not properly handle redzones. 1691 if (Section.startswith(".preinit_array") || 1692 Section.startswith(".init_array") || 1693 Section.startswith(".fini_array")) { 1694 return false; 1695 } 1696 1697 // On COFF, if the section name contains '$', it is highly likely that the 1698 // user is using section sorting to create an array of globals similar to 1699 // the way initialization callbacks are registered in .init_array and 1700 // .CRT$XCU. The ATL also registers things in .ATL$__[azm]. Adding redzones 1701 // to such globals is counterproductive, because the intent is that they 1702 // will form an array, and out-of-bounds accesses are expected. 1703 // See https://github.com/google/sanitizers/issues/305 1704 // and http://msdn.microsoft.com/en-US/en-en/library/bb918180(v=vs.120).aspx 1705 if (TargetTriple.isOSBinFormatCOFF() && Section.contains('$')) { 1706 LLVM_DEBUG(dbgs() << "Ignoring global in sorted section (contains '$'): " 1707 << *G << "\n"); 1708 return false; 1709 } 1710 1711 if (TargetTriple.isOSBinFormatMachO()) { 1712 StringRef ParsedSegment, ParsedSection; 1713 unsigned TAA = 0, StubSize = 0; 1714 bool TAAParsed; 1715 std::string ErrorCode = MCSectionMachO::ParseSectionSpecifier( 1716 Section, ParsedSegment, ParsedSection, TAA, TAAParsed, StubSize); 1717 assert(ErrorCode.empty() && "Invalid section specifier."); 1718 1719 // Ignore the globals from the __OBJC section. The ObjC runtime assumes 1720 // those conform to /usr/lib/objc/runtime.h, so we can't add redzones to 1721 // them. 1722 if (ParsedSegment == "__OBJC" || 1723 (ParsedSegment == "__DATA" && ParsedSection.startswith("__objc_"))) { 1724 LLVM_DEBUG(dbgs() << "Ignoring ObjC runtime global: " << *G << "\n"); 1725 return false; 1726 } 1727 // See https://github.com/google/sanitizers/issues/32 1728 // Constant CFString instances are compiled in the following way: 1729 // -- the string buffer is emitted into 1730 // __TEXT,__cstring,cstring_literals 1731 // -- the constant NSConstantString structure referencing that buffer 1732 // is placed into __DATA,__cfstring 1733 // Therefore there's no point in placing redzones into __DATA,__cfstring. 1734 // Moreover, it causes the linker to crash on OS X 10.7 1735 if (ParsedSegment == "__DATA" && ParsedSection == "__cfstring") { 1736 LLVM_DEBUG(dbgs() << "Ignoring CFString: " << *G << "\n"); 1737 return false; 1738 } 1739 // The linker merges the contents of cstring_literals and removes the 1740 // trailing zeroes. 1741 if (ParsedSegment == "__TEXT" && (TAA & MachO::S_CSTRING_LITERALS)) { 1742 LLVM_DEBUG(dbgs() << "Ignoring a cstring literal: " << *G << "\n"); 1743 return false; 1744 } 1745 } 1746 } 1747 1748 return true; 1749 } 1750 1751 // On Mach-O platforms, we emit global metadata in a separate section of the 1752 // binary in order to allow the linker to properly dead strip. This is only 1753 // supported on recent versions of ld64. 1754 bool AddressSanitizerModule::ShouldUseMachOGlobalsSection() const { 1755 if (!TargetTriple.isOSBinFormatMachO()) 1756 return false; 1757 1758 if (TargetTriple.isMacOSX() && !TargetTriple.isMacOSXVersionLT(10, 11)) 1759 return true; 1760 if (TargetTriple.isiOS() /* or tvOS */ && !TargetTriple.isOSVersionLT(9)) 1761 return true; 1762 if (TargetTriple.isWatchOS() && !TargetTriple.isOSVersionLT(2)) 1763 return true; 1764 1765 return false; 1766 } 1767 1768 StringRef AddressSanitizerModule::getGlobalMetadataSection() const { 1769 switch (TargetTriple.getObjectFormat()) { 1770 case Triple::COFF: return ".ASAN$GL"; 1771 case Triple::ELF: return "asan_globals"; 1772 case Triple::MachO: return "__DATA,__asan_globals,regular"; 1773 default: break; 1774 } 1775 llvm_unreachable("unsupported object format"); 1776 } 1777 1778 void AddressSanitizerModule::initializeCallbacks(Module &M) { 1779 IRBuilder<> IRB(*C); 1780 1781 // Declare our poisoning and unpoisoning functions. 1782 AsanPoisonGlobals = checkSanitizerInterfaceFunction(M.getOrInsertFunction( 1783 kAsanPoisonGlobalsName, IRB.getVoidTy(), IntptrTy)); 1784 AsanPoisonGlobals->setLinkage(Function::ExternalLinkage); 1785 AsanUnpoisonGlobals = checkSanitizerInterfaceFunction(M.getOrInsertFunction( 1786 kAsanUnpoisonGlobalsName, IRB.getVoidTy())); 1787 AsanUnpoisonGlobals->setLinkage(Function::ExternalLinkage); 1788 1789 // Declare functions that register/unregister globals. 1790 AsanRegisterGlobals = checkSanitizerInterfaceFunction(M.getOrInsertFunction( 1791 kAsanRegisterGlobalsName, IRB.getVoidTy(), IntptrTy, IntptrTy)); 1792 AsanRegisterGlobals->setLinkage(Function::ExternalLinkage); 1793 AsanUnregisterGlobals = checkSanitizerInterfaceFunction( 1794 M.getOrInsertFunction(kAsanUnregisterGlobalsName, IRB.getVoidTy(), 1795 IntptrTy, IntptrTy)); 1796 AsanUnregisterGlobals->setLinkage(Function::ExternalLinkage); 1797 1798 // Declare the functions that find globals in a shared object and then invoke 1799 // the (un)register function on them. 1800 AsanRegisterImageGlobals = 1801 checkSanitizerInterfaceFunction(M.getOrInsertFunction( 1802 kAsanRegisterImageGlobalsName, IRB.getVoidTy(), IntptrTy)); 1803 AsanRegisterImageGlobals->setLinkage(Function::ExternalLinkage); 1804 1805 AsanUnregisterImageGlobals = 1806 checkSanitizerInterfaceFunction(M.getOrInsertFunction( 1807 kAsanUnregisterImageGlobalsName, IRB.getVoidTy(), IntptrTy)); 1808 AsanUnregisterImageGlobals->setLinkage(Function::ExternalLinkage); 1809 1810 AsanRegisterElfGlobals = checkSanitizerInterfaceFunction( 1811 M.getOrInsertFunction(kAsanRegisterElfGlobalsName, IRB.getVoidTy(), 1812 IntptrTy, IntptrTy, IntptrTy)); 1813 AsanRegisterElfGlobals->setLinkage(Function::ExternalLinkage); 1814 1815 AsanUnregisterElfGlobals = checkSanitizerInterfaceFunction( 1816 M.getOrInsertFunction(kAsanUnregisterElfGlobalsName, IRB.getVoidTy(), 1817 IntptrTy, IntptrTy, IntptrTy)); 1818 AsanUnregisterElfGlobals->setLinkage(Function::ExternalLinkage); 1819 } 1820 1821 // Put the metadata and the instrumented global in the same group. This ensures 1822 // that the metadata is discarded if the instrumented global is discarded. 1823 void AddressSanitizerModule::SetComdatForGlobalMetadata( 1824 GlobalVariable *G, GlobalVariable *Metadata, StringRef InternalSuffix) { 1825 Module &M = *G->getParent(); 1826 Comdat *C = G->getComdat(); 1827 if (!C) { 1828 if (!G->hasName()) { 1829 // If G is unnamed, it must be internal. Give it an artificial name 1830 // so we can put it in a comdat. 1831 assert(G->hasLocalLinkage()); 1832 G->setName(Twine(kAsanGenPrefix) + "_anon_global"); 1833 } 1834 1835 if (!InternalSuffix.empty() && G->hasLocalLinkage()) { 1836 std::string Name = G->getName(); 1837 Name += InternalSuffix; 1838 C = M.getOrInsertComdat(Name); 1839 } else { 1840 C = M.getOrInsertComdat(G->getName()); 1841 } 1842 1843 // Make this IMAGE_COMDAT_SELECT_NODUPLICATES on COFF. Also upgrade private 1844 // linkage to internal linkage so that a symbol table entry is emitted. This 1845 // is necessary in order to create the comdat group. 1846 if (TargetTriple.isOSBinFormatCOFF()) { 1847 C->setSelectionKind(Comdat::NoDuplicates); 1848 if (G->hasPrivateLinkage()) 1849 G->setLinkage(GlobalValue::InternalLinkage); 1850 } 1851 G->setComdat(C); 1852 } 1853 1854 assert(G->hasComdat()); 1855 Metadata->setComdat(G->getComdat()); 1856 } 1857 1858 // Create a separate metadata global and put it in the appropriate ASan 1859 // global registration section. 1860 GlobalVariable * 1861 AddressSanitizerModule::CreateMetadataGlobal(Module &M, Constant *Initializer, 1862 StringRef OriginalName) { 1863 auto Linkage = TargetTriple.isOSBinFormatMachO() 1864 ? GlobalVariable::InternalLinkage 1865 : GlobalVariable::PrivateLinkage; 1866 GlobalVariable *Metadata = new GlobalVariable( 1867 M, Initializer->getType(), false, Linkage, Initializer, 1868 Twine("__asan_global_") + GlobalValue::dropLLVMManglingEscape(OriginalName)); 1869 Metadata->setSection(getGlobalMetadataSection()); 1870 return Metadata; 1871 } 1872 1873 IRBuilder<> AddressSanitizerModule::CreateAsanModuleDtor(Module &M) { 1874 AsanDtorFunction = 1875 Function::Create(FunctionType::get(Type::getVoidTy(*C), false), 1876 GlobalValue::InternalLinkage, kAsanModuleDtorName, &M); 1877 BasicBlock *AsanDtorBB = BasicBlock::Create(*C, "", AsanDtorFunction); 1878 1879 return IRBuilder<>(ReturnInst::Create(*C, AsanDtorBB)); 1880 } 1881 1882 void AddressSanitizerModule::InstrumentGlobalsCOFF( 1883 IRBuilder<> &IRB, Module &M, ArrayRef<GlobalVariable *> ExtendedGlobals, 1884 ArrayRef<Constant *> MetadataInitializers) { 1885 assert(ExtendedGlobals.size() == MetadataInitializers.size()); 1886 auto &DL = M.getDataLayout(); 1887 1888 for (size_t i = 0; i < ExtendedGlobals.size(); i++) { 1889 Constant *Initializer = MetadataInitializers[i]; 1890 GlobalVariable *G = ExtendedGlobals[i]; 1891 GlobalVariable *Metadata = 1892 CreateMetadataGlobal(M, Initializer, G->getName()); 1893 1894 // The MSVC linker always inserts padding when linking incrementally. We 1895 // cope with that by aligning each struct to its size, which must be a power 1896 // of two. 1897 unsigned SizeOfGlobalStruct = DL.getTypeAllocSize(Initializer->getType()); 1898 assert(isPowerOf2_32(SizeOfGlobalStruct) && 1899 "global metadata will not be padded appropriately"); 1900 Metadata->setAlignment(SizeOfGlobalStruct); 1901 1902 SetComdatForGlobalMetadata(G, Metadata, ""); 1903 } 1904 } 1905 1906 void AddressSanitizerModule::InstrumentGlobalsELF( 1907 IRBuilder<> &IRB, Module &M, ArrayRef<GlobalVariable *> ExtendedGlobals, 1908 ArrayRef<Constant *> MetadataInitializers, 1909 const std::string &UniqueModuleId) { 1910 assert(ExtendedGlobals.size() == MetadataInitializers.size()); 1911 1912 SmallVector<GlobalValue *, 16> MetadataGlobals(ExtendedGlobals.size()); 1913 for (size_t i = 0; i < ExtendedGlobals.size(); i++) { 1914 GlobalVariable *G = ExtendedGlobals[i]; 1915 GlobalVariable *Metadata = 1916 CreateMetadataGlobal(M, MetadataInitializers[i], G->getName()); 1917 MDNode *MD = MDNode::get(M.getContext(), ValueAsMetadata::get(G)); 1918 Metadata->setMetadata(LLVMContext::MD_associated, MD); 1919 MetadataGlobals[i] = Metadata; 1920 1921 SetComdatForGlobalMetadata(G, Metadata, UniqueModuleId); 1922 } 1923 1924 // Update llvm.compiler.used, adding the new metadata globals. This is 1925 // needed so that during LTO these variables stay alive. 1926 if (!MetadataGlobals.empty()) 1927 appendToCompilerUsed(M, MetadataGlobals); 1928 1929 // RegisteredFlag serves two purposes. First, we can pass it to dladdr() 1930 // to look up the loaded image that contains it. Second, we can store in it 1931 // whether registration has already occurred, to prevent duplicate 1932 // registration. 1933 // 1934 // Common linkage ensures that there is only one global per shared library. 1935 GlobalVariable *RegisteredFlag = new GlobalVariable( 1936 M, IntptrTy, false, GlobalVariable::CommonLinkage, 1937 ConstantInt::get(IntptrTy, 0), kAsanGlobalsRegisteredFlagName); 1938 RegisteredFlag->setVisibility(GlobalVariable::HiddenVisibility); 1939 1940 // Create start and stop symbols. 1941 GlobalVariable *StartELFMetadata = new GlobalVariable( 1942 M, IntptrTy, false, GlobalVariable::ExternalWeakLinkage, nullptr, 1943 "__start_" + getGlobalMetadataSection()); 1944 StartELFMetadata->setVisibility(GlobalVariable::HiddenVisibility); 1945 GlobalVariable *StopELFMetadata = new GlobalVariable( 1946 M, IntptrTy, false, GlobalVariable::ExternalWeakLinkage, nullptr, 1947 "__stop_" + getGlobalMetadataSection()); 1948 StopELFMetadata->setVisibility(GlobalVariable::HiddenVisibility); 1949 1950 // Create a call to register the globals with the runtime. 1951 IRB.CreateCall(AsanRegisterElfGlobals, 1952 {IRB.CreatePointerCast(RegisteredFlag, IntptrTy), 1953 IRB.CreatePointerCast(StartELFMetadata, IntptrTy), 1954 IRB.CreatePointerCast(StopELFMetadata, IntptrTy)}); 1955 1956 // We also need to unregister globals at the end, e.g., when a shared library 1957 // gets closed. 1958 IRBuilder<> IRB_Dtor = CreateAsanModuleDtor(M); 1959 IRB_Dtor.CreateCall(AsanUnregisterElfGlobals, 1960 {IRB.CreatePointerCast(RegisteredFlag, IntptrTy), 1961 IRB.CreatePointerCast(StartELFMetadata, IntptrTy), 1962 IRB.CreatePointerCast(StopELFMetadata, IntptrTy)}); 1963 } 1964 1965 void AddressSanitizerModule::InstrumentGlobalsMachO( 1966 IRBuilder<> &IRB, Module &M, ArrayRef<GlobalVariable *> ExtendedGlobals, 1967 ArrayRef<Constant *> MetadataInitializers) { 1968 assert(ExtendedGlobals.size() == MetadataInitializers.size()); 1969 1970 // On recent Mach-O platforms, use a structure which binds the liveness of 1971 // the global variable to the metadata struct. Keep the list of "Liveness" GV 1972 // created to be added to llvm.compiler.used 1973 StructType *LivenessTy = StructType::get(IntptrTy, IntptrTy); 1974 SmallVector<GlobalValue *, 16> LivenessGlobals(ExtendedGlobals.size()); 1975 1976 for (size_t i = 0; i < ExtendedGlobals.size(); i++) { 1977 Constant *Initializer = MetadataInitializers[i]; 1978 GlobalVariable *G = ExtendedGlobals[i]; 1979 GlobalVariable *Metadata = 1980 CreateMetadataGlobal(M, Initializer, G->getName()); 1981 1982 // On recent Mach-O platforms, we emit the global metadata in a way that 1983 // allows the linker to properly strip dead globals. 1984 auto LivenessBinder = 1985 ConstantStruct::get(LivenessTy, Initializer->getAggregateElement(0u), 1986 ConstantExpr::getPointerCast(Metadata, IntptrTy)); 1987 GlobalVariable *Liveness = new GlobalVariable( 1988 M, LivenessTy, false, GlobalVariable::InternalLinkage, LivenessBinder, 1989 Twine("__asan_binder_") + G->getName()); 1990 Liveness->setSection("__DATA,__asan_liveness,regular,live_support"); 1991 LivenessGlobals[i] = Liveness; 1992 } 1993 1994 // Update llvm.compiler.used, adding the new liveness globals. This is 1995 // needed so that during LTO these variables stay alive. The alternative 1996 // would be to have the linker handling the LTO symbols, but libLTO 1997 // current API does not expose access to the section for each symbol. 1998 if (!LivenessGlobals.empty()) 1999 appendToCompilerUsed(M, LivenessGlobals); 2000 2001 // RegisteredFlag serves two purposes. First, we can pass it to dladdr() 2002 // to look up the loaded image that contains it. Second, we can store in it 2003 // whether registration has already occurred, to prevent duplicate 2004 // registration. 2005 // 2006 // common linkage ensures that there is only one global per shared library. 2007 GlobalVariable *RegisteredFlag = new GlobalVariable( 2008 M, IntptrTy, false, GlobalVariable::CommonLinkage, 2009 ConstantInt::get(IntptrTy, 0), kAsanGlobalsRegisteredFlagName); 2010 RegisteredFlag->setVisibility(GlobalVariable::HiddenVisibility); 2011 2012 IRB.CreateCall(AsanRegisterImageGlobals, 2013 {IRB.CreatePointerCast(RegisteredFlag, IntptrTy)}); 2014 2015 // We also need to unregister globals at the end, e.g., when a shared library 2016 // gets closed. 2017 IRBuilder<> IRB_Dtor = CreateAsanModuleDtor(M); 2018 IRB_Dtor.CreateCall(AsanUnregisterImageGlobals, 2019 {IRB.CreatePointerCast(RegisteredFlag, IntptrTy)}); 2020 } 2021 2022 void AddressSanitizerModule::InstrumentGlobalsWithMetadataArray( 2023 IRBuilder<> &IRB, Module &M, ArrayRef<GlobalVariable *> ExtendedGlobals, 2024 ArrayRef<Constant *> MetadataInitializers) { 2025 assert(ExtendedGlobals.size() == MetadataInitializers.size()); 2026 unsigned N = ExtendedGlobals.size(); 2027 assert(N > 0); 2028 2029 // On platforms that don't have a custom metadata section, we emit an array 2030 // of global metadata structures. 2031 ArrayType *ArrayOfGlobalStructTy = 2032 ArrayType::get(MetadataInitializers[0]->getType(), N); 2033 auto AllGlobals = new GlobalVariable( 2034 M, ArrayOfGlobalStructTy, false, GlobalVariable::InternalLinkage, 2035 ConstantArray::get(ArrayOfGlobalStructTy, MetadataInitializers), ""); 2036 if (Mapping.Scale > 3) 2037 AllGlobals->setAlignment(1ULL << Mapping.Scale); 2038 2039 IRB.CreateCall(AsanRegisterGlobals, 2040 {IRB.CreatePointerCast(AllGlobals, IntptrTy), 2041 ConstantInt::get(IntptrTy, N)}); 2042 2043 // We also need to unregister globals at the end, e.g., when a shared library 2044 // gets closed. 2045 IRBuilder<> IRB_Dtor = CreateAsanModuleDtor(M); 2046 IRB_Dtor.CreateCall(AsanUnregisterGlobals, 2047 {IRB.CreatePointerCast(AllGlobals, IntptrTy), 2048 ConstantInt::get(IntptrTy, N)}); 2049 } 2050 2051 // This function replaces all global variables with new variables that have 2052 // trailing redzones. It also creates a function that poisons 2053 // redzones and inserts this function into llvm.global_ctors. 2054 // Sets *CtorComdat to true if the global registration code emitted into the 2055 // asan constructor is comdat-compatible. 2056 bool AddressSanitizerModule::InstrumentGlobals(IRBuilder<> &IRB, Module &M, bool *CtorComdat) { 2057 *CtorComdat = false; 2058 GlobalsMD.init(M); 2059 2060 SmallVector<GlobalVariable *, 16> GlobalsToChange; 2061 2062 for (auto &G : M.globals()) { 2063 if (ShouldInstrumentGlobal(&G)) GlobalsToChange.push_back(&G); 2064 } 2065 2066 size_t n = GlobalsToChange.size(); 2067 if (n == 0) { 2068 *CtorComdat = true; 2069 return false; 2070 } 2071 2072 auto &DL = M.getDataLayout(); 2073 2074 // A global is described by a structure 2075 // size_t beg; 2076 // size_t size; 2077 // size_t size_with_redzone; 2078 // const char *name; 2079 // const char *module_name; 2080 // size_t has_dynamic_init; 2081 // void *source_location; 2082 // size_t odr_indicator; 2083 // We initialize an array of such structures and pass it to a run-time call. 2084 StructType *GlobalStructTy = 2085 StructType::get(IntptrTy, IntptrTy, IntptrTy, IntptrTy, IntptrTy, 2086 IntptrTy, IntptrTy, IntptrTy); 2087 SmallVector<GlobalVariable *, 16> NewGlobals(n); 2088 SmallVector<Constant *, 16> Initializers(n); 2089 2090 bool HasDynamicallyInitializedGlobals = false; 2091 2092 // We shouldn't merge same module names, as this string serves as unique 2093 // module ID in runtime. 2094 GlobalVariable *ModuleName = createPrivateGlobalForString( 2095 M, M.getModuleIdentifier(), /*AllowMerging*/ false, kAsanGenPrefix); 2096 2097 for (size_t i = 0; i < n; i++) { 2098 static const uint64_t kMaxGlobalRedzone = 1 << 18; 2099 GlobalVariable *G = GlobalsToChange[i]; 2100 2101 auto MD = GlobalsMD.get(G); 2102 StringRef NameForGlobal = G->getName(); 2103 // Create string holding the global name (use global name from metadata 2104 // if it's available, otherwise just write the name of global variable). 2105 GlobalVariable *Name = createPrivateGlobalForString( 2106 M, MD.Name.empty() ? NameForGlobal : MD.Name, 2107 /*AllowMerging*/ true, kAsanGenPrefix); 2108 2109 Type *Ty = G->getValueType(); 2110 uint64_t SizeInBytes = DL.getTypeAllocSize(Ty); 2111 uint64_t MinRZ = MinRedzoneSizeForGlobal(); 2112 // MinRZ <= RZ <= kMaxGlobalRedzone 2113 // and trying to make RZ to be ~ 1/4 of SizeInBytes. 2114 uint64_t RZ = std::max( 2115 MinRZ, std::min(kMaxGlobalRedzone, (SizeInBytes / MinRZ / 4) * MinRZ)); 2116 uint64_t RightRedzoneSize = RZ; 2117 // Round up to MinRZ 2118 if (SizeInBytes % MinRZ) RightRedzoneSize += MinRZ - (SizeInBytes % MinRZ); 2119 assert(((RightRedzoneSize + SizeInBytes) % MinRZ) == 0); 2120 Type *RightRedZoneTy = ArrayType::get(IRB.getInt8Ty(), RightRedzoneSize); 2121 2122 StructType *NewTy = StructType::get(Ty, RightRedZoneTy); 2123 Constant *NewInitializer = ConstantStruct::get( 2124 NewTy, G->getInitializer(), Constant::getNullValue(RightRedZoneTy)); 2125 2126 // Create a new global variable with enough space for a redzone. 2127 GlobalValue::LinkageTypes Linkage = G->getLinkage(); 2128 if (G->isConstant() && Linkage == GlobalValue::PrivateLinkage) 2129 Linkage = GlobalValue::InternalLinkage; 2130 GlobalVariable *NewGlobal = 2131 new GlobalVariable(M, NewTy, G->isConstant(), Linkage, NewInitializer, 2132 "", G, G->getThreadLocalMode()); 2133 NewGlobal->copyAttributesFrom(G); 2134 NewGlobal->setComdat(G->getComdat()); 2135 NewGlobal->setAlignment(MinRZ); 2136 2137 // Move null-terminated C strings to "__asan_cstring" section on Darwin. 2138 if (TargetTriple.isOSBinFormatMachO() && !G->hasSection() && 2139 G->isConstant()) { 2140 auto Seq = dyn_cast<ConstantDataSequential>(G->getInitializer()); 2141 if (Seq && Seq->isCString()) 2142 NewGlobal->setSection("__TEXT,__asan_cstring,regular"); 2143 } 2144 2145 // Transfer the debug info. The payload starts at offset zero so we can 2146 // copy the debug info over as is. 2147 SmallVector<DIGlobalVariableExpression *, 1> GVs; 2148 G->getDebugInfo(GVs); 2149 for (auto *GV : GVs) 2150 NewGlobal->addDebugInfo(GV); 2151 2152 Value *Indices2[2]; 2153 Indices2[0] = IRB.getInt32(0); 2154 Indices2[1] = IRB.getInt32(0); 2155 2156 G->replaceAllUsesWith( 2157 ConstantExpr::getGetElementPtr(NewTy, NewGlobal, Indices2, true)); 2158 NewGlobal->takeName(G); 2159 G->eraseFromParent(); 2160 NewGlobals[i] = NewGlobal; 2161 2162 Constant *SourceLoc; 2163 if (!MD.SourceLoc.empty()) { 2164 auto SourceLocGlobal = createPrivateGlobalForSourceLoc(M, MD.SourceLoc); 2165 SourceLoc = ConstantExpr::getPointerCast(SourceLocGlobal, IntptrTy); 2166 } else { 2167 SourceLoc = ConstantInt::get(IntptrTy, 0); 2168 } 2169 2170 Constant *ODRIndicator = ConstantExpr::getNullValue(IRB.getInt8PtrTy()); 2171 GlobalValue *InstrumentedGlobal = NewGlobal; 2172 2173 bool CanUsePrivateAliases = 2174 TargetTriple.isOSBinFormatELF() || TargetTriple.isOSBinFormatMachO() || 2175 TargetTriple.isOSBinFormatWasm(); 2176 if (CanUsePrivateAliases && ClUsePrivateAliasForGlobals) { 2177 // Create local alias for NewGlobal to avoid crash on ODR between 2178 // instrumented and non-instrumented libraries. 2179 auto *GA = GlobalAlias::create(GlobalValue::InternalLinkage, 2180 NameForGlobal + M.getName(), NewGlobal); 2181 2182 // With local aliases, we need to provide another externally visible 2183 // symbol __odr_asan_XXX to detect ODR violation. 2184 auto *ODRIndicatorSym = 2185 new GlobalVariable(M, IRB.getInt8Ty(), false, Linkage, 2186 Constant::getNullValue(IRB.getInt8Ty()), 2187 kODRGenPrefix + NameForGlobal, nullptr, 2188 NewGlobal->getThreadLocalMode()); 2189 2190 // Set meaningful attributes for indicator symbol. 2191 ODRIndicatorSym->setVisibility(NewGlobal->getVisibility()); 2192 ODRIndicatorSym->setDLLStorageClass(NewGlobal->getDLLStorageClass()); 2193 ODRIndicatorSym->setAlignment(1); 2194 ODRIndicator = ODRIndicatorSym; 2195 InstrumentedGlobal = GA; 2196 } 2197 2198 Constant *Initializer = ConstantStruct::get( 2199 GlobalStructTy, 2200 ConstantExpr::getPointerCast(InstrumentedGlobal, IntptrTy), 2201 ConstantInt::get(IntptrTy, SizeInBytes), 2202 ConstantInt::get(IntptrTy, SizeInBytes + RightRedzoneSize), 2203 ConstantExpr::getPointerCast(Name, IntptrTy), 2204 ConstantExpr::getPointerCast(ModuleName, IntptrTy), 2205 ConstantInt::get(IntptrTy, MD.IsDynInit), SourceLoc, 2206 ConstantExpr::getPointerCast(ODRIndicator, IntptrTy)); 2207 2208 if (ClInitializers && MD.IsDynInit) HasDynamicallyInitializedGlobals = true; 2209 2210 LLVM_DEBUG(dbgs() << "NEW GLOBAL: " << *NewGlobal << "\n"); 2211 2212 Initializers[i] = Initializer; 2213 } 2214 2215 // Add instrumented globals to llvm.compiler.used list to avoid LTO from 2216 // ConstantMerge'ing them. 2217 SmallVector<GlobalValue *, 16> GlobalsToAddToUsedList; 2218 for (size_t i = 0; i < n; i++) { 2219 GlobalVariable *G = NewGlobals[i]; 2220 if (G->getName().empty()) continue; 2221 GlobalsToAddToUsedList.push_back(G); 2222 } 2223 appendToCompilerUsed(M, ArrayRef<GlobalValue *>(GlobalsToAddToUsedList)); 2224 2225 std::string ELFUniqueModuleId = 2226 (UseGlobalsGC && TargetTriple.isOSBinFormatELF()) ? getUniqueModuleId(&M) 2227 : ""; 2228 2229 if (!ELFUniqueModuleId.empty()) { 2230 InstrumentGlobalsELF(IRB, M, NewGlobals, Initializers, ELFUniqueModuleId); 2231 *CtorComdat = true; 2232 } else if (UseGlobalsGC && TargetTriple.isOSBinFormatCOFF()) { 2233 InstrumentGlobalsCOFF(IRB, M, NewGlobals, Initializers); 2234 } else if (UseGlobalsGC && ShouldUseMachOGlobalsSection()) { 2235 InstrumentGlobalsMachO(IRB, M, NewGlobals, Initializers); 2236 } else { 2237 InstrumentGlobalsWithMetadataArray(IRB, M, NewGlobals, Initializers); 2238 } 2239 2240 // Create calls for poisoning before initializers run and unpoisoning after. 2241 if (HasDynamicallyInitializedGlobals) 2242 createInitializerPoisonCalls(M, ModuleName); 2243 2244 LLVM_DEBUG(dbgs() << M); 2245 return true; 2246 } 2247 2248 int AddressSanitizerModule::GetAsanVersion(const Module &M) const { 2249 int LongSize = M.getDataLayout().getPointerSizeInBits(); 2250 bool isAndroid = Triple(M.getTargetTriple()).isAndroid(); 2251 int Version = 8; 2252 // 32-bit Android is one version ahead because of the switch to dynamic 2253 // shadow. 2254 Version += (LongSize == 32 && isAndroid); 2255 return Version; 2256 } 2257 2258 bool AddressSanitizerModule::runOnModule(Module &M) { 2259 C = &(M.getContext()); 2260 int LongSize = M.getDataLayout().getPointerSizeInBits(); 2261 IntptrTy = Type::getIntNTy(*C, LongSize); 2262 TargetTriple = Triple(M.getTargetTriple()); 2263 Mapping = getShadowMapping(TargetTriple, LongSize, CompileKernel); 2264 initializeCallbacks(M); 2265 2266 if (CompileKernel) 2267 return false; 2268 2269 // Create a module constructor. A destructor is created lazily because not all 2270 // platforms, and not all modules need it. 2271 std::string VersionCheckName = 2272 kAsanVersionCheckNamePrefix + std::to_string(GetAsanVersion(M)); 2273 std::tie(AsanCtorFunction, std::ignore) = createSanitizerCtorAndInitFunctions( 2274 M, kAsanModuleCtorName, kAsanInitName, /*InitArgTypes=*/{}, 2275 /*InitArgs=*/{}, VersionCheckName); 2276 2277 bool CtorComdat = true; 2278 bool Changed = false; 2279 // TODO(glider): temporarily disabled globals instrumentation for KASan. 2280 if (ClGlobals) { 2281 IRBuilder<> IRB(AsanCtorFunction->getEntryBlock().getTerminator()); 2282 Changed |= InstrumentGlobals(IRB, M, &CtorComdat); 2283 } 2284 2285 // Put the constructor and destructor in comdat if both 2286 // (1) global instrumentation is not TU-specific 2287 // (2) target is ELF. 2288 if (UseCtorComdat && TargetTriple.isOSBinFormatELF() && CtorComdat) { 2289 AsanCtorFunction->setComdat(M.getOrInsertComdat(kAsanModuleCtorName)); 2290 appendToGlobalCtors(M, AsanCtorFunction, kAsanCtorAndDtorPriority, 2291 AsanCtorFunction); 2292 if (AsanDtorFunction) { 2293 AsanDtorFunction->setComdat(M.getOrInsertComdat(kAsanModuleDtorName)); 2294 appendToGlobalDtors(M, AsanDtorFunction, kAsanCtorAndDtorPriority, 2295 AsanDtorFunction); 2296 } 2297 } else { 2298 appendToGlobalCtors(M, AsanCtorFunction, kAsanCtorAndDtorPriority); 2299 if (AsanDtorFunction) 2300 appendToGlobalDtors(M, AsanDtorFunction, kAsanCtorAndDtorPriority); 2301 } 2302 2303 return Changed; 2304 } 2305 2306 void AddressSanitizer::initializeCallbacks(Module &M) { 2307 IRBuilder<> IRB(*C); 2308 // Create __asan_report* callbacks. 2309 // IsWrite, TypeSize and Exp are encoded in the function name. 2310 for (int Exp = 0; Exp < 2; Exp++) { 2311 for (size_t AccessIsWrite = 0; AccessIsWrite <= 1; AccessIsWrite++) { 2312 const std::string TypeStr = AccessIsWrite ? "store" : "load"; 2313 const std::string ExpStr = Exp ? "exp_" : ""; 2314 const std::string EndingStr = Recover ? "_noabort" : ""; 2315 2316 SmallVector<Type *, 3> Args2 = {IntptrTy, IntptrTy}; 2317 SmallVector<Type *, 2> Args1{1, IntptrTy}; 2318 if (Exp) { 2319 Type *ExpType = Type::getInt32Ty(*C); 2320 Args2.push_back(ExpType); 2321 Args1.push_back(ExpType); 2322 } 2323 AsanErrorCallbackSized[AccessIsWrite][Exp] = 2324 checkSanitizerInterfaceFunction(M.getOrInsertFunction( 2325 kAsanReportErrorTemplate + ExpStr + TypeStr + "_n" + EndingStr, 2326 FunctionType::get(IRB.getVoidTy(), Args2, false))); 2327 2328 AsanMemoryAccessCallbackSized[AccessIsWrite][Exp] = 2329 checkSanitizerInterfaceFunction(M.getOrInsertFunction( 2330 ClMemoryAccessCallbackPrefix + ExpStr + TypeStr + "N" + EndingStr, 2331 FunctionType::get(IRB.getVoidTy(), Args2, false))); 2332 2333 for (size_t AccessSizeIndex = 0; AccessSizeIndex < kNumberOfAccessSizes; 2334 AccessSizeIndex++) { 2335 const std::string Suffix = TypeStr + itostr(1ULL << AccessSizeIndex); 2336 AsanErrorCallback[AccessIsWrite][Exp][AccessSizeIndex] = 2337 checkSanitizerInterfaceFunction(M.getOrInsertFunction( 2338 kAsanReportErrorTemplate + ExpStr + Suffix + EndingStr, 2339 FunctionType::get(IRB.getVoidTy(), Args1, false))); 2340 2341 AsanMemoryAccessCallback[AccessIsWrite][Exp][AccessSizeIndex] = 2342 checkSanitizerInterfaceFunction(M.getOrInsertFunction( 2343 ClMemoryAccessCallbackPrefix + ExpStr + Suffix + EndingStr, 2344 FunctionType::get(IRB.getVoidTy(), Args1, false))); 2345 } 2346 } 2347 } 2348 2349 const std::string MemIntrinCallbackPrefix = 2350 CompileKernel ? std::string("") : ClMemoryAccessCallbackPrefix; 2351 AsanMemmove = checkSanitizerInterfaceFunction(M.getOrInsertFunction( 2352 MemIntrinCallbackPrefix + "memmove", IRB.getInt8PtrTy(), 2353 IRB.getInt8PtrTy(), IRB.getInt8PtrTy(), IntptrTy)); 2354 AsanMemcpy = checkSanitizerInterfaceFunction(M.getOrInsertFunction( 2355 MemIntrinCallbackPrefix + "memcpy", IRB.getInt8PtrTy(), 2356 IRB.getInt8PtrTy(), IRB.getInt8PtrTy(), IntptrTy)); 2357 AsanMemset = checkSanitizerInterfaceFunction(M.getOrInsertFunction( 2358 MemIntrinCallbackPrefix + "memset", IRB.getInt8PtrTy(), 2359 IRB.getInt8PtrTy(), IRB.getInt32Ty(), IntptrTy)); 2360 2361 AsanHandleNoReturnFunc = checkSanitizerInterfaceFunction( 2362 M.getOrInsertFunction(kAsanHandleNoReturnName, IRB.getVoidTy())); 2363 2364 AsanPtrCmpFunction = checkSanitizerInterfaceFunction(M.getOrInsertFunction( 2365 kAsanPtrCmp, IRB.getVoidTy(), IntptrTy, IntptrTy)); 2366 AsanPtrSubFunction = checkSanitizerInterfaceFunction(M.getOrInsertFunction( 2367 kAsanPtrSub, IRB.getVoidTy(), IntptrTy, IntptrTy)); 2368 // We insert an empty inline asm after __asan_report* to avoid callback merge. 2369 EmptyAsm = InlineAsm::get(FunctionType::get(IRB.getVoidTy(), false), 2370 StringRef(""), StringRef(""), 2371 /*hasSideEffects=*/true); 2372 if (Mapping.InGlobal) 2373 AsanShadowGlobal = M.getOrInsertGlobal("__asan_shadow", 2374 ArrayType::get(IRB.getInt8Ty(), 0)); 2375 } 2376 2377 // virtual 2378 bool AddressSanitizer::doInitialization(Module &M) { 2379 // Initialize the private fields. No one has accessed them before. 2380 GlobalsMD.init(M); 2381 2382 C = &(M.getContext()); 2383 LongSize = M.getDataLayout().getPointerSizeInBits(); 2384 IntptrTy = Type::getIntNTy(*C, LongSize); 2385 TargetTriple = Triple(M.getTargetTriple()); 2386 2387 Mapping = getShadowMapping(TargetTriple, LongSize, CompileKernel); 2388 return true; 2389 } 2390 2391 bool AddressSanitizer::doFinalization(Module &M) { 2392 GlobalsMD.reset(); 2393 return false; 2394 } 2395 2396 bool AddressSanitizer::maybeInsertAsanInitAtFunctionEntry(Function &F) { 2397 // For each NSObject descendant having a +load method, this method is invoked 2398 // by the ObjC runtime before any of the static constructors is called. 2399 // Therefore we need to instrument such methods with a call to __asan_init 2400 // at the beginning in order to initialize our runtime before any access to 2401 // the shadow memory. 2402 // We cannot just ignore these methods, because they may call other 2403 // instrumented functions. 2404 if (F.getName().find(" load]") != std::string::npos) { 2405 Function *AsanInitFunction = 2406 declareSanitizerInitFunction(*F.getParent(), kAsanInitName, {}); 2407 IRBuilder<> IRB(&F.front(), F.front().begin()); 2408 IRB.CreateCall(AsanInitFunction, {}); 2409 return true; 2410 } 2411 return false; 2412 } 2413 2414 void AddressSanitizer::maybeInsertDynamicShadowAtFunctionEntry(Function &F) { 2415 // Generate code only when dynamic addressing is needed. 2416 if (Mapping.Offset != kDynamicShadowSentinel) 2417 return; 2418 2419 IRBuilder<> IRB(&F.front().front()); 2420 if (Mapping.InGlobal) { 2421 if (ClWithIfuncSuppressRemat) { 2422 // An empty inline asm with input reg == output reg. 2423 // An opaque pointer-to-int cast, basically. 2424 InlineAsm *Asm = InlineAsm::get( 2425 FunctionType::get(IntptrTy, {AsanShadowGlobal->getType()}, false), 2426 StringRef(""), StringRef("=r,0"), 2427 /*hasSideEffects=*/false); 2428 LocalDynamicShadow = 2429 IRB.CreateCall(Asm, {AsanShadowGlobal}, ".asan.shadow"); 2430 } else { 2431 LocalDynamicShadow = 2432 IRB.CreatePointerCast(AsanShadowGlobal, IntptrTy, ".asan.shadow"); 2433 } 2434 } else { 2435 Value *GlobalDynamicAddress = F.getParent()->getOrInsertGlobal( 2436 kAsanShadowMemoryDynamicAddress, IntptrTy); 2437 LocalDynamicShadow = IRB.CreateLoad(GlobalDynamicAddress); 2438 } 2439 } 2440 2441 void AddressSanitizer::markEscapedLocalAllocas(Function &F) { 2442 // Find the one possible call to llvm.localescape and pre-mark allocas passed 2443 // to it as uninteresting. This assumes we haven't started processing allocas 2444 // yet. This check is done up front because iterating the use list in 2445 // isInterestingAlloca would be algorithmically slower. 2446 assert(ProcessedAllocas.empty() && "must process localescape before allocas"); 2447 2448 // Try to get the declaration of llvm.localescape. If it's not in the module, 2449 // we can exit early. 2450 if (!F.getParent()->getFunction("llvm.localescape")) return; 2451 2452 // Look for a call to llvm.localescape call in the entry block. It can't be in 2453 // any other block. 2454 for (Instruction &I : F.getEntryBlock()) { 2455 IntrinsicInst *II = dyn_cast<IntrinsicInst>(&I); 2456 if (II && II->getIntrinsicID() == Intrinsic::localescape) { 2457 // We found a call. Mark all the allocas passed in as uninteresting. 2458 for (Value *Arg : II->arg_operands()) { 2459 AllocaInst *AI = dyn_cast<AllocaInst>(Arg->stripPointerCasts()); 2460 assert(AI && AI->isStaticAlloca() && 2461 "non-static alloca arg to localescape"); 2462 ProcessedAllocas[AI] = false; 2463 } 2464 break; 2465 } 2466 } 2467 } 2468 2469 bool AddressSanitizer::runOnFunction(Function &F) { 2470 if (F.getLinkage() == GlobalValue::AvailableExternallyLinkage) return false; 2471 if (!ClDebugFunc.empty() && ClDebugFunc == F.getName()) return false; 2472 if (F.getName().startswith("__asan_")) return false; 2473 2474 bool FunctionModified = false; 2475 2476 // If needed, insert __asan_init before checking for SanitizeAddress attr. 2477 // This function needs to be called even if the function body is not 2478 // instrumented. 2479 if (maybeInsertAsanInitAtFunctionEntry(F)) 2480 FunctionModified = true; 2481 2482 // Leave if the function doesn't need instrumentation. 2483 if (!F.hasFnAttribute(Attribute::SanitizeAddress)) return FunctionModified; 2484 2485 LLVM_DEBUG(dbgs() << "ASAN instrumenting:\n" << F << "\n"); 2486 2487 initializeCallbacks(*F.getParent()); 2488 DT = &getAnalysis<DominatorTreeWrapperPass>().getDomTree(); 2489 2490 FunctionStateRAII CleanupObj(this); 2491 2492 maybeInsertDynamicShadowAtFunctionEntry(F); 2493 2494 // We can't instrument allocas used with llvm.localescape. Only static allocas 2495 // can be passed to that intrinsic. 2496 markEscapedLocalAllocas(F); 2497 2498 // We want to instrument every address only once per basic block (unless there 2499 // are calls between uses). 2500 SmallPtrSet<Value *, 16> TempsToInstrument; 2501 SmallVector<Instruction *, 16> ToInstrument; 2502 SmallVector<Instruction *, 8> NoReturnCalls; 2503 SmallVector<BasicBlock *, 16> AllBlocks; 2504 SmallVector<Instruction *, 16> PointerComparisonsOrSubtracts; 2505 int NumAllocas = 0; 2506 bool IsWrite; 2507 unsigned Alignment; 2508 uint64_t TypeSize; 2509 const TargetLibraryInfo *TLI = 2510 &getAnalysis<TargetLibraryInfoWrapperPass>().getTLI(); 2511 2512 // Fill the set of memory operations to instrument. 2513 for (auto &BB : F) { 2514 AllBlocks.push_back(&BB); 2515 TempsToInstrument.clear(); 2516 int NumInsnsPerBB = 0; 2517 for (auto &Inst : BB) { 2518 if (LooksLikeCodeInBug11395(&Inst)) return false; 2519 Value *MaybeMask = nullptr; 2520 if (Value *Addr = isInterestingMemoryAccess(&Inst, &IsWrite, &TypeSize, 2521 &Alignment, &MaybeMask)) { 2522 if (ClOpt && ClOptSameTemp) { 2523 // If we have a mask, skip instrumentation if we've already 2524 // instrumented the full object. But don't add to TempsToInstrument 2525 // because we might get another load/store with a different mask. 2526 if (MaybeMask) { 2527 if (TempsToInstrument.count(Addr)) 2528 continue; // We've seen this (whole) temp in the current BB. 2529 } else { 2530 if (!TempsToInstrument.insert(Addr).second) 2531 continue; // We've seen this temp in the current BB. 2532 } 2533 } 2534 } else if (ClInvalidPointerPairs && 2535 isInterestingPointerComparisonOrSubtraction(&Inst)) { 2536 PointerComparisonsOrSubtracts.push_back(&Inst); 2537 continue; 2538 } else if (isa<MemIntrinsic>(Inst)) { 2539 // ok, take it. 2540 } else { 2541 if (isa<AllocaInst>(Inst)) NumAllocas++; 2542 CallSite CS(&Inst); 2543 if (CS) { 2544 // A call inside BB. 2545 TempsToInstrument.clear(); 2546 if (CS.doesNotReturn()) NoReturnCalls.push_back(CS.getInstruction()); 2547 } 2548 if (CallInst *CI = dyn_cast<CallInst>(&Inst)) 2549 maybeMarkSanitizerLibraryCallNoBuiltin(CI, TLI); 2550 continue; 2551 } 2552 ToInstrument.push_back(&Inst); 2553 NumInsnsPerBB++; 2554 if (NumInsnsPerBB >= ClMaxInsnsToInstrumentPerBB) break; 2555 } 2556 } 2557 2558 bool UseCalls = 2559 (ClInstrumentationWithCallsThreshold >= 0 && 2560 ToInstrument.size() > (unsigned)ClInstrumentationWithCallsThreshold); 2561 const DataLayout &DL = F.getParent()->getDataLayout(); 2562 ObjectSizeOpts ObjSizeOpts; 2563 ObjSizeOpts.RoundToAlign = true; 2564 ObjectSizeOffsetVisitor ObjSizeVis(DL, TLI, F.getContext(), ObjSizeOpts); 2565 2566 // Instrument. 2567 int NumInstrumented = 0; 2568 for (auto Inst : ToInstrument) { 2569 if (ClDebugMin < 0 || ClDebugMax < 0 || 2570 (NumInstrumented >= ClDebugMin && NumInstrumented <= ClDebugMax)) { 2571 if (isInterestingMemoryAccess(Inst, &IsWrite, &TypeSize, &Alignment)) 2572 instrumentMop(ObjSizeVis, Inst, UseCalls, 2573 F.getParent()->getDataLayout()); 2574 else 2575 instrumentMemIntrinsic(cast<MemIntrinsic>(Inst)); 2576 } 2577 NumInstrumented++; 2578 } 2579 2580 FunctionStackPoisoner FSP(F, *this); 2581 bool ChangedStack = FSP.runOnFunction(); 2582 2583 // We must unpoison the stack before every NoReturn call (throw, _exit, etc). 2584 // See e.g. https://github.com/google/sanitizers/issues/37 2585 for (auto CI : NoReturnCalls) { 2586 IRBuilder<> IRB(CI); 2587 IRB.CreateCall(AsanHandleNoReturnFunc, {}); 2588 } 2589 2590 for (auto Inst : PointerComparisonsOrSubtracts) { 2591 instrumentPointerComparisonOrSubtraction(Inst); 2592 NumInstrumented++; 2593 } 2594 2595 if (NumInstrumented > 0 || ChangedStack || !NoReturnCalls.empty()) 2596 FunctionModified = true; 2597 2598 LLVM_DEBUG(dbgs() << "ASAN done instrumenting: " << FunctionModified << " " 2599 << F << "\n"); 2600 2601 return FunctionModified; 2602 } 2603 2604 // Workaround for bug 11395: we don't want to instrument stack in functions 2605 // with large assembly blobs (32-bit only), otherwise reg alloc may crash. 2606 // FIXME: remove once the bug 11395 is fixed. 2607 bool AddressSanitizer::LooksLikeCodeInBug11395(Instruction *I) { 2608 if (LongSize != 32) return false; 2609 CallInst *CI = dyn_cast<CallInst>(I); 2610 if (!CI || !CI->isInlineAsm()) return false; 2611 if (CI->getNumArgOperands() <= 5) return false; 2612 // We have inline assembly with quite a few arguments. 2613 return true; 2614 } 2615 2616 void FunctionStackPoisoner::initializeCallbacks(Module &M) { 2617 IRBuilder<> IRB(*C); 2618 for (int i = 0; i <= kMaxAsanStackMallocSizeClass; i++) { 2619 std::string Suffix = itostr(i); 2620 AsanStackMallocFunc[i] = checkSanitizerInterfaceFunction( 2621 M.getOrInsertFunction(kAsanStackMallocNameTemplate + Suffix, IntptrTy, 2622 IntptrTy)); 2623 AsanStackFreeFunc[i] = checkSanitizerInterfaceFunction( 2624 M.getOrInsertFunction(kAsanStackFreeNameTemplate + Suffix, 2625 IRB.getVoidTy(), IntptrTy, IntptrTy)); 2626 } 2627 if (ASan.UseAfterScope) { 2628 AsanPoisonStackMemoryFunc = checkSanitizerInterfaceFunction( 2629 M.getOrInsertFunction(kAsanPoisonStackMemoryName, IRB.getVoidTy(), 2630 IntptrTy, IntptrTy)); 2631 AsanUnpoisonStackMemoryFunc = checkSanitizerInterfaceFunction( 2632 M.getOrInsertFunction(kAsanUnpoisonStackMemoryName, IRB.getVoidTy(), 2633 IntptrTy, IntptrTy)); 2634 } 2635 2636 for (size_t Val : {0x00, 0xf1, 0xf2, 0xf3, 0xf5, 0xf8}) { 2637 std::ostringstream Name; 2638 Name << kAsanSetShadowPrefix; 2639 Name << std::setw(2) << std::setfill('0') << std::hex << Val; 2640 AsanSetShadowFunc[Val] = 2641 checkSanitizerInterfaceFunction(M.getOrInsertFunction( 2642 Name.str(), IRB.getVoidTy(), IntptrTy, IntptrTy)); 2643 } 2644 2645 AsanAllocaPoisonFunc = checkSanitizerInterfaceFunction(M.getOrInsertFunction( 2646 kAsanAllocaPoison, IRB.getVoidTy(), IntptrTy, IntptrTy)); 2647 AsanAllocasUnpoisonFunc = 2648 checkSanitizerInterfaceFunction(M.getOrInsertFunction( 2649 kAsanAllocasUnpoison, IRB.getVoidTy(), IntptrTy, IntptrTy)); 2650 } 2651 2652 void FunctionStackPoisoner::copyToShadowInline(ArrayRef<uint8_t> ShadowMask, 2653 ArrayRef<uint8_t> ShadowBytes, 2654 size_t Begin, size_t End, 2655 IRBuilder<> &IRB, 2656 Value *ShadowBase) { 2657 if (Begin >= End) 2658 return; 2659 2660 const size_t LargestStoreSizeInBytes = 2661 std::min<size_t>(sizeof(uint64_t), ASan.LongSize / 8); 2662 2663 const bool IsLittleEndian = F.getParent()->getDataLayout().isLittleEndian(); 2664 2665 // Poison given range in shadow using larges store size with out leading and 2666 // trailing zeros in ShadowMask. Zeros never change, so they need neither 2667 // poisoning nor up-poisoning. Still we don't mind if some of them get into a 2668 // middle of a store. 2669 for (size_t i = Begin; i < End;) { 2670 if (!ShadowMask[i]) { 2671 assert(!ShadowBytes[i]); 2672 ++i; 2673 continue; 2674 } 2675 2676 size_t StoreSizeInBytes = LargestStoreSizeInBytes; 2677 // Fit store size into the range. 2678 while (StoreSizeInBytes > End - i) 2679 StoreSizeInBytes /= 2; 2680 2681 // Minimize store size by trimming trailing zeros. 2682 for (size_t j = StoreSizeInBytes - 1; j && !ShadowMask[i + j]; --j) { 2683 while (j <= StoreSizeInBytes / 2) 2684 StoreSizeInBytes /= 2; 2685 } 2686 2687 uint64_t Val = 0; 2688 for (size_t j = 0; j < StoreSizeInBytes; j++) { 2689 if (IsLittleEndian) 2690 Val |= (uint64_t)ShadowBytes[i + j] << (8 * j); 2691 else 2692 Val = (Val << 8) | ShadowBytes[i + j]; 2693 } 2694 2695 Value *Ptr = IRB.CreateAdd(ShadowBase, ConstantInt::get(IntptrTy, i)); 2696 Value *Poison = IRB.getIntN(StoreSizeInBytes * 8, Val); 2697 IRB.CreateAlignedStore( 2698 Poison, IRB.CreateIntToPtr(Ptr, Poison->getType()->getPointerTo()), 1); 2699 2700 i += StoreSizeInBytes; 2701 } 2702 } 2703 2704 void FunctionStackPoisoner::copyToShadow(ArrayRef<uint8_t> ShadowMask, 2705 ArrayRef<uint8_t> ShadowBytes, 2706 IRBuilder<> &IRB, Value *ShadowBase) { 2707 copyToShadow(ShadowMask, ShadowBytes, 0, ShadowMask.size(), IRB, ShadowBase); 2708 } 2709 2710 void FunctionStackPoisoner::copyToShadow(ArrayRef<uint8_t> ShadowMask, 2711 ArrayRef<uint8_t> ShadowBytes, 2712 size_t Begin, size_t End, 2713 IRBuilder<> &IRB, Value *ShadowBase) { 2714 assert(ShadowMask.size() == ShadowBytes.size()); 2715 size_t Done = Begin; 2716 for (size_t i = Begin, j = Begin + 1; i < End; i = j++) { 2717 if (!ShadowMask[i]) { 2718 assert(!ShadowBytes[i]); 2719 continue; 2720 } 2721 uint8_t Val = ShadowBytes[i]; 2722 if (!AsanSetShadowFunc[Val]) 2723 continue; 2724 2725 // Skip same values. 2726 for (; j < End && ShadowMask[j] && Val == ShadowBytes[j]; ++j) { 2727 } 2728 2729 if (j - i >= ClMaxInlinePoisoningSize) { 2730 copyToShadowInline(ShadowMask, ShadowBytes, Done, i, IRB, ShadowBase); 2731 IRB.CreateCall(AsanSetShadowFunc[Val], 2732 {IRB.CreateAdd(ShadowBase, ConstantInt::get(IntptrTy, i)), 2733 ConstantInt::get(IntptrTy, j - i)}); 2734 Done = j; 2735 } 2736 } 2737 2738 copyToShadowInline(ShadowMask, ShadowBytes, Done, End, IRB, ShadowBase); 2739 } 2740 2741 // Fake stack allocator (asan_fake_stack.h) has 11 size classes 2742 // for every power of 2 from kMinStackMallocSize to kMaxAsanStackMallocSizeClass 2743 static int StackMallocSizeClass(uint64_t LocalStackSize) { 2744 assert(LocalStackSize <= kMaxStackMallocSize); 2745 uint64_t MaxSize = kMinStackMallocSize; 2746 for (int i = 0;; i++, MaxSize *= 2) 2747 if (LocalStackSize <= MaxSize) return i; 2748 llvm_unreachable("impossible LocalStackSize"); 2749 } 2750 2751 void FunctionStackPoisoner::copyArgsPassedByValToAllocas() { 2752 Instruction *CopyInsertPoint = &F.front().front(); 2753 if (CopyInsertPoint == ASan.LocalDynamicShadow) { 2754 // Insert after the dynamic shadow location is determined 2755 CopyInsertPoint = CopyInsertPoint->getNextNode(); 2756 assert(CopyInsertPoint); 2757 } 2758 IRBuilder<> IRB(CopyInsertPoint); 2759 const DataLayout &DL = F.getParent()->getDataLayout(); 2760 for (Argument &Arg : F.args()) { 2761 if (Arg.hasByValAttr()) { 2762 Type *Ty = Arg.getType()->getPointerElementType(); 2763 unsigned Align = Arg.getParamAlignment(); 2764 if (Align == 0) Align = DL.getABITypeAlignment(Ty); 2765 2766 AllocaInst *AI = IRB.CreateAlloca( 2767 Ty, nullptr, 2768 (Arg.hasName() ? Arg.getName() : "Arg" + Twine(Arg.getArgNo())) + 2769 ".byval"); 2770 AI->setAlignment(Align); 2771 Arg.replaceAllUsesWith(AI); 2772 2773 uint64_t AllocSize = DL.getTypeAllocSize(Ty); 2774 IRB.CreateMemCpy(AI, Align, &Arg, Align, AllocSize); 2775 } 2776 } 2777 } 2778 2779 PHINode *FunctionStackPoisoner::createPHI(IRBuilder<> &IRB, Value *Cond, 2780 Value *ValueIfTrue, 2781 Instruction *ThenTerm, 2782 Value *ValueIfFalse) { 2783 PHINode *PHI = IRB.CreatePHI(IntptrTy, 2); 2784 BasicBlock *CondBlock = cast<Instruction>(Cond)->getParent(); 2785 PHI->addIncoming(ValueIfFalse, CondBlock); 2786 BasicBlock *ThenBlock = ThenTerm->getParent(); 2787 PHI->addIncoming(ValueIfTrue, ThenBlock); 2788 return PHI; 2789 } 2790 2791 Value *FunctionStackPoisoner::createAllocaForLayout( 2792 IRBuilder<> &IRB, const ASanStackFrameLayout &L, bool Dynamic) { 2793 AllocaInst *Alloca; 2794 if (Dynamic) { 2795 Alloca = IRB.CreateAlloca(IRB.getInt8Ty(), 2796 ConstantInt::get(IRB.getInt64Ty(), L.FrameSize), 2797 "MyAlloca"); 2798 } else { 2799 Alloca = IRB.CreateAlloca(ArrayType::get(IRB.getInt8Ty(), L.FrameSize), 2800 nullptr, "MyAlloca"); 2801 assert(Alloca->isStaticAlloca()); 2802 } 2803 assert((ClRealignStack & (ClRealignStack - 1)) == 0); 2804 size_t FrameAlignment = std::max(L.FrameAlignment, (size_t)ClRealignStack); 2805 Alloca->setAlignment(FrameAlignment); 2806 return IRB.CreatePointerCast(Alloca, IntptrTy); 2807 } 2808 2809 void FunctionStackPoisoner::createDynamicAllocasInitStorage() { 2810 BasicBlock &FirstBB = *F.begin(); 2811 IRBuilder<> IRB(dyn_cast<Instruction>(FirstBB.begin())); 2812 DynamicAllocaLayout = IRB.CreateAlloca(IntptrTy, nullptr); 2813 IRB.CreateStore(Constant::getNullValue(IntptrTy), DynamicAllocaLayout); 2814 DynamicAllocaLayout->setAlignment(32); 2815 } 2816 2817 void FunctionStackPoisoner::processDynamicAllocas() { 2818 if (!ClInstrumentDynamicAllocas || DynamicAllocaVec.empty()) { 2819 assert(DynamicAllocaPoisonCallVec.empty()); 2820 return; 2821 } 2822 2823 // Insert poison calls for lifetime intrinsics for dynamic allocas. 2824 for (const auto &APC : DynamicAllocaPoisonCallVec) { 2825 assert(APC.InsBefore); 2826 assert(APC.AI); 2827 assert(ASan.isInterestingAlloca(*APC.AI)); 2828 assert(!APC.AI->isStaticAlloca()); 2829 2830 IRBuilder<> IRB(APC.InsBefore); 2831 poisonAlloca(APC.AI, APC.Size, IRB, APC.DoPoison); 2832 // Dynamic allocas will be unpoisoned unconditionally below in 2833 // unpoisonDynamicAllocas. 2834 // Flag that we need unpoison static allocas. 2835 } 2836 2837 // Handle dynamic allocas. 2838 createDynamicAllocasInitStorage(); 2839 for (auto &AI : DynamicAllocaVec) 2840 handleDynamicAllocaCall(AI); 2841 unpoisonDynamicAllocas(); 2842 } 2843 2844 void FunctionStackPoisoner::processStaticAllocas() { 2845 if (AllocaVec.empty()) { 2846 assert(StaticAllocaPoisonCallVec.empty()); 2847 return; 2848 } 2849 2850 int StackMallocIdx = -1; 2851 DebugLoc EntryDebugLocation; 2852 if (auto SP = F.getSubprogram()) 2853 EntryDebugLocation = DebugLoc::get(SP->getScopeLine(), 0, SP); 2854 2855 Instruction *InsBefore = AllocaVec[0]; 2856 IRBuilder<> IRB(InsBefore); 2857 IRB.SetCurrentDebugLocation(EntryDebugLocation); 2858 2859 // Make sure non-instrumented allocas stay in the entry block. Otherwise, 2860 // debug info is broken, because only entry-block allocas are treated as 2861 // regular stack slots. 2862 auto InsBeforeB = InsBefore->getParent(); 2863 assert(InsBeforeB == &F.getEntryBlock()); 2864 for (auto *AI : StaticAllocasToMoveUp) 2865 if (AI->getParent() == InsBeforeB) 2866 AI->moveBefore(InsBefore); 2867 2868 // If we have a call to llvm.localescape, keep it in the entry block. 2869 if (LocalEscapeCall) LocalEscapeCall->moveBefore(InsBefore); 2870 2871 SmallVector<ASanStackVariableDescription, 16> SVD; 2872 SVD.reserve(AllocaVec.size()); 2873 for (AllocaInst *AI : AllocaVec) { 2874 ASanStackVariableDescription D = {AI->getName().data(), 2875 ASan.getAllocaSizeInBytes(*AI), 2876 0, 2877 AI->getAlignment(), 2878 AI, 2879 0, 2880 0}; 2881 SVD.push_back(D); 2882 } 2883 2884 // Minimal header size (left redzone) is 4 pointers, 2885 // i.e. 32 bytes on 64-bit platforms and 16 bytes in 32-bit platforms. 2886 size_t Granularity = 1ULL << Mapping.Scale; 2887 size_t MinHeaderSize = std::max((size_t)ASan.LongSize / 2, Granularity); 2888 const ASanStackFrameLayout &L = 2889 ComputeASanStackFrameLayout(SVD, Granularity, MinHeaderSize); 2890 2891 // Build AllocaToSVDMap for ASanStackVariableDescription lookup. 2892 DenseMap<const AllocaInst *, ASanStackVariableDescription *> AllocaToSVDMap; 2893 for (auto &Desc : SVD) 2894 AllocaToSVDMap[Desc.AI] = &Desc; 2895 2896 // Update SVD with information from lifetime intrinsics. 2897 for (const auto &APC : StaticAllocaPoisonCallVec) { 2898 assert(APC.InsBefore); 2899 assert(APC.AI); 2900 assert(ASan.isInterestingAlloca(*APC.AI)); 2901 assert(APC.AI->isStaticAlloca()); 2902 2903 ASanStackVariableDescription &Desc = *AllocaToSVDMap[APC.AI]; 2904 Desc.LifetimeSize = Desc.Size; 2905 if (const DILocation *FnLoc = EntryDebugLocation.get()) { 2906 if (const DILocation *LifetimeLoc = APC.InsBefore->getDebugLoc().get()) { 2907 if (LifetimeLoc->getFile() == FnLoc->getFile()) 2908 if (unsigned Line = LifetimeLoc->getLine()) 2909 Desc.Line = std::min(Desc.Line ? Desc.Line : Line, Line); 2910 } 2911 } 2912 } 2913 2914 auto DescriptionString = ComputeASanStackFrameDescription(SVD); 2915 LLVM_DEBUG(dbgs() << DescriptionString << " --- " << L.FrameSize << "\n"); 2916 uint64_t LocalStackSize = L.FrameSize; 2917 bool DoStackMalloc = ClUseAfterReturn && !ASan.CompileKernel && 2918 LocalStackSize <= kMaxStackMallocSize; 2919 bool DoDynamicAlloca = ClDynamicAllocaStack; 2920 // Don't do dynamic alloca or stack malloc if: 2921 // 1) There is inline asm: too often it makes assumptions on which registers 2922 // are available. 2923 // 2) There is a returns_twice call (typically setjmp), which is 2924 // optimization-hostile, and doesn't play well with introduced indirect 2925 // register-relative calculation of local variable addresses. 2926 DoDynamicAlloca &= !HasNonEmptyInlineAsm && !HasReturnsTwiceCall; 2927 DoStackMalloc &= !HasNonEmptyInlineAsm && !HasReturnsTwiceCall; 2928 2929 Value *StaticAlloca = 2930 DoDynamicAlloca ? nullptr : createAllocaForLayout(IRB, L, false); 2931 2932 Value *FakeStack; 2933 Value *LocalStackBase; 2934 Value *LocalStackBaseAlloca; 2935 bool Deref; 2936 2937 if (DoStackMalloc) { 2938 LocalStackBaseAlloca = 2939 IRB.CreateAlloca(IntptrTy, nullptr, "asan_local_stack_base"); 2940 // void *FakeStack = __asan_option_detect_stack_use_after_return 2941 // ? __asan_stack_malloc_N(LocalStackSize) 2942 // : nullptr; 2943 // void *LocalStackBase = (FakeStack) ? FakeStack : alloca(LocalStackSize); 2944 Constant *OptionDetectUseAfterReturn = F.getParent()->getOrInsertGlobal( 2945 kAsanOptionDetectUseAfterReturn, IRB.getInt32Ty()); 2946 Value *UseAfterReturnIsEnabled = 2947 IRB.CreateICmpNE(IRB.CreateLoad(OptionDetectUseAfterReturn), 2948 Constant::getNullValue(IRB.getInt32Ty())); 2949 Instruction *Term = 2950 SplitBlockAndInsertIfThen(UseAfterReturnIsEnabled, InsBefore, false); 2951 IRBuilder<> IRBIf(Term); 2952 IRBIf.SetCurrentDebugLocation(EntryDebugLocation); 2953 StackMallocIdx = StackMallocSizeClass(LocalStackSize); 2954 assert(StackMallocIdx <= kMaxAsanStackMallocSizeClass); 2955 Value *FakeStackValue = 2956 IRBIf.CreateCall(AsanStackMallocFunc[StackMallocIdx], 2957 ConstantInt::get(IntptrTy, LocalStackSize)); 2958 IRB.SetInsertPoint(InsBefore); 2959 IRB.SetCurrentDebugLocation(EntryDebugLocation); 2960 FakeStack = createPHI(IRB, UseAfterReturnIsEnabled, FakeStackValue, Term, 2961 ConstantInt::get(IntptrTy, 0)); 2962 2963 Value *NoFakeStack = 2964 IRB.CreateICmpEQ(FakeStack, Constant::getNullValue(IntptrTy)); 2965 Term = SplitBlockAndInsertIfThen(NoFakeStack, InsBefore, false); 2966 IRBIf.SetInsertPoint(Term); 2967 IRBIf.SetCurrentDebugLocation(EntryDebugLocation); 2968 Value *AllocaValue = 2969 DoDynamicAlloca ? createAllocaForLayout(IRBIf, L, true) : StaticAlloca; 2970 2971 IRB.SetInsertPoint(InsBefore); 2972 IRB.SetCurrentDebugLocation(EntryDebugLocation); 2973 LocalStackBase = createPHI(IRB, NoFakeStack, AllocaValue, Term, FakeStack); 2974 IRB.SetCurrentDebugLocation(EntryDebugLocation); 2975 IRB.CreateStore(LocalStackBase, LocalStackBaseAlloca); 2976 Deref = true; 2977 } else { 2978 // void *FakeStack = nullptr; 2979 // void *LocalStackBase = alloca(LocalStackSize); 2980 FakeStack = ConstantInt::get(IntptrTy, 0); 2981 LocalStackBase = 2982 DoDynamicAlloca ? createAllocaForLayout(IRB, L, true) : StaticAlloca; 2983 LocalStackBaseAlloca = LocalStackBase; 2984 Deref = false; 2985 } 2986 2987 // Replace Alloca instructions with base+offset. 2988 for (const auto &Desc : SVD) { 2989 AllocaInst *AI = Desc.AI; 2990 replaceDbgDeclareForAlloca(AI, LocalStackBaseAlloca, DIB, Deref, 2991 Desc.Offset, DIExpression::NoDeref); 2992 Value *NewAllocaPtr = IRB.CreateIntToPtr( 2993 IRB.CreateAdd(LocalStackBase, ConstantInt::get(IntptrTy, Desc.Offset)), 2994 AI->getType()); 2995 AI->replaceAllUsesWith(NewAllocaPtr); 2996 } 2997 2998 // The left-most redzone has enough space for at least 4 pointers. 2999 // Write the Magic value to redzone[0]. 3000 Value *BasePlus0 = IRB.CreateIntToPtr(LocalStackBase, IntptrPtrTy); 3001 IRB.CreateStore(ConstantInt::get(IntptrTy, kCurrentStackFrameMagic), 3002 BasePlus0); 3003 // Write the frame description constant to redzone[1]. 3004 Value *BasePlus1 = IRB.CreateIntToPtr( 3005 IRB.CreateAdd(LocalStackBase, 3006 ConstantInt::get(IntptrTy, ASan.LongSize / 8)), 3007 IntptrPtrTy); 3008 GlobalVariable *StackDescriptionGlobal = 3009 createPrivateGlobalForString(*F.getParent(), DescriptionString, 3010 /*AllowMerging*/ true, kAsanGenPrefix); 3011 Value *Description = IRB.CreatePointerCast(StackDescriptionGlobal, IntptrTy); 3012 IRB.CreateStore(Description, BasePlus1); 3013 // Write the PC to redzone[2]. 3014 Value *BasePlus2 = IRB.CreateIntToPtr( 3015 IRB.CreateAdd(LocalStackBase, 3016 ConstantInt::get(IntptrTy, 2 * ASan.LongSize / 8)), 3017 IntptrPtrTy); 3018 IRB.CreateStore(IRB.CreatePointerCast(&F, IntptrTy), BasePlus2); 3019 3020 const auto &ShadowAfterScope = GetShadowBytesAfterScope(SVD, L); 3021 3022 // Poison the stack red zones at the entry. 3023 Value *ShadowBase = ASan.memToShadow(LocalStackBase, IRB); 3024 // As mask we must use most poisoned case: red zones and after scope. 3025 // As bytes we can use either the same or just red zones only. 3026 copyToShadow(ShadowAfterScope, ShadowAfterScope, IRB, ShadowBase); 3027 3028 if (!StaticAllocaPoisonCallVec.empty()) { 3029 const auto &ShadowInScope = GetShadowBytes(SVD, L); 3030 3031 // Poison static allocas near lifetime intrinsics. 3032 for (const auto &APC : StaticAllocaPoisonCallVec) { 3033 const ASanStackVariableDescription &Desc = *AllocaToSVDMap[APC.AI]; 3034 assert(Desc.Offset % L.Granularity == 0); 3035 size_t Begin = Desc.Offset / L.Granularity; 3036 size_t End = Begin + (APC.Size + L.Granularity - 1) / L.Granularity; 3037 3038 IRBuilder<> IRB(APC.InsBefore); 3039 copyToShadow(ShadowAfterScope, 3040 APC.DoPoison ? ShadowAfterScope : ShadowInScope, Begin, End, 3041 IRB, ShadowBase); 3042 } 3043 } 3044 3045 SmallVector<uint8_t, 64> ShadowClean(ShadowAfterScope.size(), 0); 3046 SmallVector<uint8_t, 64> ShadowAfterReturn; 3047 3048 // (Un)poison the stack before all ret instructions. 3049 for (auto Ret : RetVec) { 3050 IRBuilder<> IRBRet(Ret); 3051 // Mark the current frame as retired. 3052 IRBRet.CreateStore(ConstantInt::get(IntptrTy, kRetiredStackFrameMagic), 3053 BasePlus0); 3054 if (DoStackMalloc) { 3055 assert(StackMallocIdx >= 0); 3056 // if FakeStack != 0 // LocalStackBase == FakeStack 3057 // // In use-after-return mode, poison the whole stack frame. 3058 // if StackMallocIdx <= 4 3059 // // For small sizes inline the whole thing: 3060 // memset(ShadowBase, kAsanStackAfterReturnMagic, ShadowSize); 3061 // **SavedFlagPtr(FakeStack) = 0 3062 // else 3063 // __asan_stack_free_N(FakeStack, LocalStackSize) 3064 // else 3065 // <This is not a fake stack; unpoison the redzones> 3066 Value *Cmp = 3067 IRBRet.CreateICmpNE(FakeStack, Constant::getNullValue(IntptrTy)); 3068 Instruction *ThenTerm, *ElseTerm; 3069 SplitBlockAndInsertIfThenElse(Cmp, Ret, &ThenTerm, &ElseTerm); 3070 3071 IRBuilder<> IRBPoison(ThenTerm); 3072 if (StackMallocIdx <= 4) { 3073 int ClassSize = kMinStackMallocSize << StackMallocIdx; 3074 ShadowAfterReturn.resize(ClassSize / L.Granularity, 3075 kAsanStackUseAfterReturnMagic); 3076 copyToShadow(ShadowAfterReturn, ShadowAfterReturn, IRBPoison, 3077 ShadowBase); 3078 Value *SavedFlagPtrPtr = IRBPoison.CreateAdd( 3079 FakeStack, 3080 ConstantInt::get(IntptrTy, ClassSize - ASan.LongSize / 8)); 3081 Value *SavedFlagPtr = IRBPoison.CreateLoad( 3082 IRBPoison.CreateIntToPtr(SavedFlagPtrPtr, IntptrPtrTy)); 3083 IRBPoison.CreateStore( 3084 Constant::getNullValue(IRBPoison.getInt8Ty()), 3085 IRBPoison.CreateIntToPtr(SavedFlagPtr, IRBPoison.getInt8PtrTy())); 3086 } else { 3087 // For larger frames call __asan_stack_free_*. 3088 IRBPoison.CreateCall( 3089 AsanStackFreeFunc[StackMallocIdx], 3090 {FakeStack, ConstantInt::get(IntptrTy, LocalStackSize)}); 3091 } 3092 3093 IRBuilder<> IRBElse(ElseTerm); 3094 copyToShadow(ShadowAfterScope, ShadowClean, IRBElse, ShadowBase); 3095 } else { 3096 copyToShadow(ShadowAfterScope, ShadowClean, IRBRet, ShadowBase); 3097 } 3098 } 3099 3100 // We are done. Remove the old unused alloca instructions. 3101 for (auto AI : AllocaVec) AI->eraseFromParent(); 3102 } 3103 3104 void FunctionStackPoisoner::poisonAlloca(Value *V, uint64_t Size, 3105 IRBuilder<> &IRB, bool DoPoison) { 3106 // For now just insert the call to ASan runtime. 3107 Value *AddrArg = IRB.CreatePointerCast(V, IntptrTy); 3108 Value *SizeArg = ConstantInt::get(IntptrTy, Size); 3109 IRB.CreateCall( 3110 DoPoison ? AsanPoisonStackMemoryFunc : AsanUnpoisonStackMemoryFunc, 3111 {AddrArg, SizeArg}); 3112 } 3113 3114 // Handling llvm.lifetime intrinsics for a given %alloca: 3115 // (1) collect all llvm.lifetime.xxx(%size, %value) describing the alloca. 3116 // (2) if %size is constant, poison memory for llvm.lifetime.end (to detect 3117 // invalid accesses) and unpoison it for llvm.lifetime.start (the memory 3118 // could be poisoned by previous llvm.lifetime.end instruction, as the 3119 // variable may go in and out of scope several times, e.g. in loops). 3120 // (3) if we poisoned at least one %alloca in a function, 3121 // unpoison the whole stack frame at function exit. 3122 3123 AllocaInst *FunctionStackPoisoner::findAllocaForValue(Value *V) { 3124 if (AllocaInst *AI = dyn_cast<AllocaInst>(V)) 3125 // We're interested only in allocas we can handle. 3126 return ASan.isInterestingAlloca(*AI) ? AI : nullptr; 3127 // See if we've already calculated (or started to calculate) alloca for a 3128 // given value. 3129 AllocaForValueMapTy::iterator I = AllocaForValue.find(V); 3130 if (I != AllocaForValue.end()) return I->second; 3131 // Store 0 while we're calculating alloca for value V to avoid 3132 // infinite recursion if the value references itself. 3133 AllocaForValue[V] = nullptr; 3134 AllocaInst *Res = nullptr; 3135 if (CastInst *CI = dyn_cast<CastInst>(V)) 3136 Res = findAllocaForValue(CI->getOperand(0)); 3137 else if (PHINode *PN = dyn_cast<PHINode>(V)) { 3138 for (Value *IncValue : PN->incoming_values()) { 3139 // Allow self-referencing phi-nodes. 3140 if (IncValue == PN) continue; 3141 AllocaInst *IncValueAI = findAllocaForValue(IncValue); 3142 // AI for incoming values should exist and should all be equal. 3143 if (IncValueAI == nullptr || (Res != nullptr && IncValueAI != Res)) 3144 return nullptr; 3145 Res = IncValueAI; 3146 } 3147 } else if (GetElementPtrInst *EP = dyn_cast<GetElementPtrInst>(V)) { 3148 Res = findAllocaForValue(EP->getPointerOperand()); 3149 } else { 3150 LLVM_DEBUG(dbgs() << "Alloca search canceled on unknown instruction: " << *V 3151 << "\n"); 3152 } 3153 if (Res) AllocaForValue[V] = Res; 3154 return Res; 3155 } 3156 3157 void FunctionStackPoisoner::handleDynamicAllocaCall(AllocaInst *AI) { 3158 IRBuilder<> IRB(AI); 3159 3160 const unsigned Align = std::max(kAllocaRzSize, AI->getAlignment()); 3161 const uint64_t AllocaRedzoneMask = kAllocaRzSize - 1; 3162 3163 Value *Zero = Constant::getNullValue(IntptrTy); 3164 Value *AllocaRzSize = ConstantInt::get(IntptrTy, kAllocaRzSize); 3165 Value *AllocaRzMask = ConstantInt::get(IntptrTy, AllocaRedzoneMask); 3166 3167 // Since we need to extend alloca with additional memory to locate 3168 // redzones, and OldSize is number of allocated blocks with 3169 // ElementSize size, get allocated memory size in bytes by 3170 // OldSize * ElementSize. 3171 const unsigned ElementSize = 3172 F.getParent()->getDataLayout().getTypeAllocSize(AI->getAllocatedType()); 3173 Value *OldSize = 3174 IRB.CreateMul(IRB.CreateIntCast(AI->getArraySize(), IntptrTy, false), 3175 ConstantInt::get(IntptrTy, ElementSize)); 3176 3177 // PartialSize = OldSize % 32 3178 Value *PartialSize = IRB.CreateAnd(OldSize, AllocaRzMask); 3179 3180 // Misalign = kAllocaRzSize - PartialSize; 3181 Value *Misalign = IRB.CreateSub(AllocaRzSize, PartialSize); 3182 3183 // PartialPadding = Misalign != kAllocaRzSize ? Misalign : 0; 3184 Value *Cond = IRB.CreateICmpNE(Misalign, AllocaRzSize); 3185 Value *PartialPadding = IRB.CreateSelect(Cond, Misalign, Zero); 3186 3187 // AdditionalChunkSize = Align + PartialPadding + kAllocaRzSize 3188 // Align is added to locate left redzone, PartialPadding for possible 3189 // partial redzone and kAllocaRzSize for right redzone respectively. 3190 Value *AdditionalChunkSize = IRB.CreateAdd( 3191 ConstantInt::get(IntptrTy, Align + kAllocaRzSize), PartialPadding); 3192 3193 Value *NewSize = IRB.CreateAdd(OldSize, AdditionalChunkSize); 3194 3195 // Insert new alloca with new NewSize and Align params. 3196 AllocaInst *NewAlloca = IRB.CreateAlloca(IRB.getInt8Ty(), NewSize); 3197 NewAlloca->setAlignment(Align); 3198 3199 // NewAddress = Address + Align 3200 Value *NewAddress = IRB.CreateAdd(IRB.CreatePtrToInt(NewAlloca, IntptrTy), 3201 ConstantInt::get(IntptrTy, Align)); 3202 3203 // Insert __asan_alloca_poison call for new created alloca. 3204 IRB.CreateCall(AsanAllocaPoisonFunc, {NewAddress, OldSize}); 3205 3206 // Store the last alloca's address to DynamicAllocaLayout. We'll need this 3207 // for unpoisoning stuff. 3208 IRB.CreateStore(IRB.CreatePtrToInt(NewAlloca, IntptrTy), DynamicAllocaLayout); 3209 3210 Value *NewAddressPtr = IRB.CreateIntToPtr(NewAddress, AI->getType()); 3211 3212 // Replace all uses of AddessReturnedByAlloca with NewAddressPtr. 3213 AI->replaceAllUsesWith(NewAddressPtr); 3214 3215 // We are done. Erase old alloca from parent. 3216 AI->eraseFromParent(); 3217 } 3218 3219 // isSafeAccess returns true if Addr is always inbounds with respect to its 3220 // base object. For example, it is a field access or an array access with 3221 // constant inbounds index. 3222 bool AddressSanitizer::isSafeAccess(ObjectSizeOffsetVisitor &ObjSizeVis, 3223 Value *Addr, uint64_t TypeSize) const { 3224 SizeOffsetType SizeOffset = ObjSizeVis.compute(Addr); 3225 if (!ObjSizeVis.bothKnown(SizeOffset)) return false; 3226 uint64_t Size = SizeOffset.first.getZExtValue(); 3227 int64_t Offset = SizeOffset.second.getSExtValue(); 3228 // Three checks are required to ensure safety: 3229 // . Offset >= 0 (since the offset is given from the base ptr) 3230 // . Size >= Offset (unsigned) 3231 // . Size - Offset >= NeededSize (unsigned) 3232 return Offset >= 0 && Size >= uint64_t(Offset) && 3233 Size - uint64_t(Offset) >= TypeSize / 8; 3234 } 3235