1 //===- FuzzerTracePC.cpp - PC tracing--------------------------------------===// 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 // Trace PCs. 10 // This module implements __sanitizer_cov_trace_pc_guard[_init], 11 // the callback required for -fsanitize-coverage=trace-pc-guard instrumentation. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "FuzzerTracePC.h" 16 #include "FuzzerCorpus.h" 17 #include "FuzzerDefs.h" 18 #include "FuzzerDictionary.h" 19 #include "FuzzerExtFunctions.h" 20 #include "FuzzerIO.h" 21 #include "FuzzerUtil.h" 22 #include "FuzzerValueBitMap.h" 23 #include <set> 24 25 // The coverage counters and PCs. 26 // These are declared as global variables named "__sancov_*" to simplify 27 // experiments with inlined instrumentation. 28 alignas(64) ATTRIBUTE_INTERFACE 29 uint8_t __sancov_trace_pc_guard_8bit_counters[fuzzer::TracePC::kNumPCs]; 30 31 ATTRIBUTE_INTERFACE 32 uintptr_t __sancov_trace_pc_pcs[fuzzer::TracePC::kNumPCs]; 33 34 // Used by -fsanitize-coverage=stack-depth to track stack depth 35 ATTRIBUTE_INTERFACE __attribute__((tls_model("initial-exec"))) 36 thread_local uintptr_t __sancov_lowest_stack; 37 38 namespace fuzzer { 39 40 TracePC TPC; 41 42 uint8_t *TracePC::Counters() const { 43 return __sancov_trace_pc_guard_8bit_counters; 44 } 45 46 uintptr_t *TracePC::PCs() const { 47 return __sancov_trace_pc_pcs; 48 } 49 50 size_t TracePC::GetTotalPCCoverage() { 51 if (ObservedPCs.size()) 52 return ObservedPCs.size(); 53 size_t Res = 0; 54 for (size_t i = 1, N = GetNumPCs(); i < N; i++) 55 if (PCs()[i]) 56 Res++; 57 return Res; 58 } 59 60 template<class CallBack> 61 void TracePC::IterateInline8bitCounters(CallBack CB) const { 62 if (NumInline8bitCounters && NumInline8bitCounters == NumPCsInPCTables) { 63 size_t CounterIdx = 0; 64 for (size_t i = 0; i < NumModulesWithInline8bitCounters; i++) { 65 uint8_t *Beg = ModuleCounters[i].Start; 66 size_t Size = ModuleCounters[i].Stop - Beg; 67 assert(Size == (size_t)(ModulePCTable[i].Stop - ModulePCTable[i].Start)); 68 for (size_t j = 0; j < Size; j++, CounterIdx++) 69 CB(i, j, CounterIdx); 70 } 71 } 72 } 73 74 // Initializes unstable counters by copying Inline8bitCounters to unstable 75 // counters. 76 void TracePC::InitializeUnstableCounters() { 77 IterateInline8bitCounters([&](int i, int j, int UnstableIdx) { 78 UnstableCounters[UnstableIdx].Counter = ModuleCounters[i].Start[j]; 79 }); 80 } 81 82 // Compares the current counters with counters from previous runs 83 // and records differences as unstable edges. 84 bool TracePC::UpdateUnstableCounters(int UnstableMode) { 85 bool Updated = false; 86 IterateInline8bitCounters([&](int i, int j, int UnstableIdx) { 87 if (ModuleCounters[i].Start[j] != UnstableCounters[UnstableIdx].Counter) { 88 Updated = true; 89 UnstableCounters[UnstableIdx].IsUnstable = true; 90 if (UnstableMode == ZeroUnstable) 91 UnstableCounters[UnstableIdx].Counter = 0; 92 else if (UnstableMode == MinUnstable) 93 UnstableCounters[UnstableIdx].Counter = std::min( 94 ModuleCounters[i].Start[j], UnstableCounters[UnstableIdx].Counter); 95 } 96 }); 97 return Updated; 98 } 99 100 // Updates and applies unstable counters to ModuleCounters in single iteration 101 void TracePC::UpdateAndApplyUnstableCounters(int UnstableMode) { 102 IterateInline8bitCounters([&](int i, int j, int UnstableIdx) { 103 if (ModuleCounters[i].Start[j] != UnstableCounters[UnstableIdx].Counter) { 104 UnstableCounters[UnstableIdx].IsUnstable = true; 105 if (UnstableMode == ZeroUnstable) 106 ModuleCounters[i].Start[j] = 0; 107 else if (UnstableMode == MinUnstable) 108 ModuleCounters[i].Start[j] = std::min( 109 ModuleCounters[i].Start[j], UnstableCounters[UnstableIdx].Counter); 110 } 111 }); 112 } 113 114 void TracePC::HandleInline8bitCountersInit(uint8_t *Start, uint8_t *Stop) { 115 if (Start == Stop) return; 116 if (NumModulesWithInline8bitCounters && 117 ModuleCounters[NumModulesWithInline8bitCounters-1].Start == Start) return; 118 assert(NumModulesWithInline8bitCounters < 119 sizeof(ModuleCounters) / sizeof(ModuleCounters[0])); 120 ModuleCounters[NumModulesWithInline8bitCounters++] = {Start, Stop}; 121 NumInline8bitCounters += Stop - Start; 122 } 123 124 void TracePC::HandlePCsInit(const uintptr_t *Start, const uintptr_t *Stop) { 125 const PCTableEntry *B = reinterpret_cast<const PCTableEntry *>(Start); 126 const PCTableEntry *E = reinterpret_cast<const PCTableEntry *>(Stop); 127 if (NumPCTables && ModulePCTable[NumPCTables - 1].Start == B) return; 128 assert(NumPCTables < sizeof(ModulePCTable) / sizeof(ModulePCTable[0])); 129 ModulePCTable[NumPCTables++] = {B, E}; 130 NumPCsInPCTables += E - B; 131 } 132 133 void TracePC::HandleInit(uint32_t *Start, uint32_t *Stop) { 134 if (Start == Stop || *Start) return; 135 assert(NumModules < sizeof(Modules) / sizeof(Modules[0])); 136 for (uint32_t *P = Start; P < Stop; P++) { 137 NumGuards++; 138 if (NumGuards == kNumPCs) { 139 RawPrint( 140 "WARNING: The binary has too many instrumented PCs.\n" 141 " You may want to reduce the size of the binary\n" 142 " for more efficient fuzzing and precise coverage data\n"); 143 } 144 *P = NumGuards % kNumPCs; 145 } 146 Modules[NumModules].Start = Start; 147 Modules[NumModules].Stop = Stop; 148 NumModules++; 149 } 150 151 void TracePC::PrintModuleInfo() { 152 if (NumGuards) { 153 Printf("INFO: Loaded %zd modules (%zd guards): ", NumModules, NumGuards); 154 for (size_t i = 0; i < NumModules; i++) 155 Printf("%zd [%p, %p), ", Modules[i].Stop - Modules[i].Start, 156 Modules[i].Start, Modules[i].Stop); 157 Printf("\n"); 158 } 159 if (NumModulesWithInline8bitCounters) { 160 Printf("INFO: Loaded %zd modules (%zd inline 8-bit counters): ", 161 NumModulesWithInline8bitCounters, NumInline8bitCounters); 162 for (size_t i = 0; i < NumModulesWithInline8bitCounters; i++) 163 Printf("%zd [%p, %p), ", ModuleCounters[i].Stop - ModuleCounters[i].Start, 164 ModuleCounters[i].Start, ModuleCounters[i].Stop); 165 Printf("\n"); 166 } 167 if (NumPCTables) { 168 Printf("INFO: Loaded %zd PC tables (%zd PCs): ", NumPCTables, 169 NumPCsInPCTables); 170 for (size_t i = 0; i < NumPCTables; i++) { 171 Printf("%zd [%p,%p), ", ModulePCTable[i].Stop - ModulePCTable[i].Start, 172 ModulePCTable[i].Start, ModulePCTable[i].Stop); 173 } 174 Printf("\n"); 175 176 if ((NumGuards && NumGuards != NumPCsInPCTables) || 177 (NumInline8bitCounters && NumInline8bitCounters != NumPCsInPCTables)) { 178 Printf("ERROR: The size of coverage PC tables does not match the\n" 179 "number of instrumented PCs. This might be a compiler bug,\n" 180 "please contact the libFuzzer developers.\n" 181 "Also check https://bugs.llvm.org/show_bug.cgi?id=34636\n" 182 "for possible workarounds (tl;dr: don't use the old GNU ld)\n"); 183 _Exit(1); 184 } 185 } 186 if (size_t NumExtraCounters = ExtraCountersEnd() - ExtraCountersBegin()) 187 Printf("INFO: %zd Extra Counters\n", NumExtraCounters); 188 } 189 190 ATTRIBUTE_NO_SANITIZE_ALL 191 void TracePC::HandleCallerCallee(uintptr_t Caller, uintptr_t Callee) { 192 const uintptr_t kBits = 12; 193 const uintptr_t kMask = (1 << kBits) - 1; 194 uintptr_t Idx = (Caller & kMask) | ((Callee & kMask) << kBits); 195 ValueProfileMap.AddValueModPrime(Idx); 196 } 197 198 void TracePC::UpdateObservedPCs() { 199 Vector<uintptr_t> CoveredFuncs; 200 auto ObservePC = [&](uintptr_t PC) { 201 if (ObservedPCs.insert(PC).second && DoPrintNewPCs) { 202 PrintPC("\tNEW_PC: %p %F %L", "\tNEW_PC: %p", PC + 1); 203 Printf("\n"); 204 } 205 }; 206 207 auto Observe = [&](const PCTableEntry &TE) { 208 if (TE.PCFlags & 1) 209 if (++ObservedFuncs[TE.PC] == 1 && NumPrintNewFuncs) 210 CoveredFuncs.push_back(TE.PC); 211 ObservePC(TE.PC); 212 }; 213 214 if (NumPCsInPCTables) { 215 if (NumInline8bitCounters == NumPCsInPCTables) { 216 IterateInline8bitCounters([&](int i, int j, int CounterIdx) { 217 if (ModuleCounters[i].Start[j]) 218 Observe(ModulePCTable[i].Start[j]); 219 }); 220 } else if (NumGuards == NumPCsInPCTables) { 221 size_t GuardIdx = 1; 222 for (size_t i = 0; i < NumModules; i++) { 223 uint32_t *Beg = Modules[i].Start; 224 size_t Size = Modules[i].Stop - Beg; 225 assert(Size == 226 (size_t)(ModulePCTable[i].Stop - ModulePCTable[i].Start)); 227 for (size_t j = 0; j < Size; j++, GuardIdx++) 228 if (Counters()[GuardIdx]) 229 Observe(ModulePCTable[i].Start[j]); 230 } 231 } 232 } 233 234 for (size_t i = 0, N = Min(CoveredFuncs.size(), NumPrintNewFuncs); i < N; 235 i++) { 236 Printf("\tNEW_FUNC[%zd/%zd]: ", i + 1, CoveredFuncs.size()); 237 PrintPC("%p %F %L", "%p", CoveredFuncs[i] + 1); 238 Printf("\n"); 239 } 240 } 241 242 inline ALWAYS_INLINE uintptr_t GetPreviousInstructionPc(uintptr_t PC) { 243 // TODO: this implementation is x86 only. 244 // see sanitizer_common GetPreviousInstructionPc for full implementation. 245 return PC - 1; 246 } 247 248 inline ALWAYS_INLINE uintptr_t GetNextInstructionPc(uintptr_t PC) { 249 // TODO: this implementation is x86 only. 250 // see sanitizer_common GetPreviousInstructionPc for full implementation. 251 return PC + 1; 252 } 253 254 static std::string GetModuleName(uintptr_t PC) { 255 char ModulePathRaw[4096] = ""; // What's PATH_MAX in portable C++? 256 void *OffsetRaw = nullptr; 257 if (!EF->__sanitizer_get_module_and_offset_for_pc( 258 reinterpret_cast<void *>(PC), ModulePathRaw, 259 sizeof(ModulePathRaw), &OffsetRaw)) 260 return ""; 261 return ModulePathRaw; 262 } 263 264 template<class CallBack> 265 void TracePC::IterateCoveredFunctions(CallBack CB) { 266 for (size_t i = 0; i < NumPCTables; i++) { 267 auto &M = ModulePCTable[i]; 268 assert(M.Start < M.Stop); 269 auto ModuleName = GetModuleName(M.Start->PC); 270 for (auto NextFE = M.Start; NextFE < M.Stop; ) { 271 auto FE = NextFE; 272 assert((FE->PCFlags & 1) && "Not a function entry point"); 273 do { 274 NextFE++; 275 } while (NextFE < M.Stop && !(NextFE->PCFlags & 1)); 276 if (ObservedFuncs.count(FE->PC)) 277 CB(FE, NextFE, ObservedFuncs[FE->PC]); 278 } 279 } 280 } 281 282 void TracePC::SetFocusFunction(const std::string &FuncName) { 283 // This function should be called once. 284 assert(FocusFunction.first > NumModulesWithInline8bitCounters); 285 if (FuncName.empty()) 286 return; 287 for (size_t M = 0; M < NumModulesWithInline8bitCounters; M++) { 288 auto &PCTE = ModulePCTable[M]; 289 size_t N = PCTE.Stop - PCTE.Start; 290 for (size_t I = 0; I < N; I++) { 291 if (!(PCTE.Start[I].PCFlags & 1)) continue; // not a function entry. 292 auto Name = DescribePC("%F", GetNextInstructionPc(PCTE.Start[I].PC)); 293 if (Name[0] == 'i' && Name[1] == 'n' && Name[2] == ' ') 294 Name = Name.substr(3, std::string::npos); 295 if (FuncName != Name) continue; 296 Printf("INFO: Focus function is set to '%s'\n", Name.c_str()); 297 FocusFunction = {M, I}; 298 return; 299 } 300 } 301 } 302 303 bool TracePC::ObservedFocusFunction() { 304 size_t I = FocusFunction.first; 305 size_t J = FocusFunction.second; 306 if (I >= NumModulesWithInline8bitCounters) 307 return false; 308 auto &MC = ModuleCounters[I]; 309 size_t Size = MC.Stop - MC.Start; 310 if (J >= Size) 311 return false; 312 return MC.Start[J] != 0; 313 } 314 315 void TracePC::PrintCoverage() { 316 if (!EF->__sanitizer_symbolize_pc || 317 !EF->__sanitizer_get_module_and_offset_for_pc) { 318 Printf("INFO: __sanitizer_symbolize_pc or " 319 "__sanitizer_get_module_and_offset_for_pc is not available," 320 " not printing coverage\n"); 321 return; 322 } 323 Printf("COVERAGE:\n"); 324 auto CoveredFunctionCallback = [&](const PCTableEntry *First, 325 const PCTableEntry *Last, 326 uintptr_t Counter) { 327 assert(First < Last); 328 auto VisualizePC = GetNextInstructionPc(First->PC); 329 std::string FileStr = DescribePC("%s", VisualizePC); 330 if (!IsInterestingCoverageFile(FileStr)) 331 return; 332 std::string FunctionStr = DescribePC("%F", VisualizePC); 333 if (FunctionStr.find("in ") == 0) 334 FunctionStr = FunctionStr.substr(3); 335 std::string LineStr = DescribePC("%l", VisualizePC); 336 size_t Line = std::stoul(LineStr); 337 size_t NumEdges = Last - First; 338 Vector<uintptr_t> UncoveredPCs; 339 for (auto TE = First; TE < Last; TE++) 340 if (!ObservedPCs.count(TE->PC)) 341 UncoveredPCs.push_back(TE->PC); 342 Printf("COVERED_FUNC: hits: %zd", Counter); 343 Printf(" edges: %zd/%zd", NumEdges - UncoveredPCs.size(), NumEdges); 344 Printf(" %s %s:%zd\n", FunctionStr.c_str(), FileStr.c_str(), Line); 345 for (auto PC: UncoveredPCs) 346 Printf(" UNCOVERED_PC: %s\n", 347 DescribePC("%s:%l", GetNextInstructionPc(PC)).c_str()); 348 }; 349 350 IterateCoveredFunctions(CoveredFunctionCallback); 351 } 352 353 void TracePC::DumpCoverage() { 354 if (EF->__sanitizer_dump_coverage) { 355 Vector<uintptr_t> PCsCopy(GetNumPCs()); 356 for (size_t i = 0; i < GetNumPCs(); i++) 357 PCsCopy[i] = PCs()[i] ? GetPreviousInstructionPc(PCs()[i]) : 0; 358 EF->__sanitizer_dump_coverage(PCsCopy.data(), PCsCopy.size()); 359 } 360 } 361 362 void TracePC::PrintUnstableStats() { 363 size_t count = 0; 364 Printf("UNSTABLE_FUNCTIONS:\n"); 365 IterateInline8bitCounters([&](int i, int j, int UnstableIdx) { 366 const PCTableEntry &TE = ModulePCTable[i].Start[j]; 367 if (UnstableCounters[UnstableIdx].IsUnstable) { 368 count++; 369 if (ObservedFuncs.count(TE.PC)) { 370 auto VisualizePC = GetNextInstructionPc(TE.PC); 371 std::string FunctionStr = DescribePC("%F", VisualizePC); 372 if (FunctionStr.find("in ") == 0) 373 FunctionStr = FunctionStr.substr(3); 374 Printf("%s\n", FunctionStr.c_str()); 375 } 376 } 377 }); 378 379 Printf("stat::stability_rate: %.2f\n", 380 100 - static_cast<float>(count * 100) / NumInline8bitCounters); 381 } 382 383 // Value profile. 384 // We keep track of various values that affect control flow. 385 // These values are inserted into a bit-set-based hash map. 386 // Every new bit in the map is treated as a new coverage. 387 // 388 // For memcmp/strcmp/etc the interesting value is the length of the common 389 // prefix of the parameters. 390 // For cmp instructions the interesting value is a XOR of the parameters. 391 // The interesting value is mixed up with the PC and is then added to the map. 392 393 ATTRIBUTE_NO_SANITIZE_ALL 394 void TracePC::AddValueForMemcmp(void *caller_pc, const void *s1, const void *s2, 395 size_t n, bool StopAtZero) { 396 if (!n) return; 397 size_t Len = std::min(n, Word::GetMaxSize()); 398 const uint8_t *A1 = reinterpret_cast<const uint8_t *>(s1); 399 const uint8_t *A2 = reinterpret_cast<const uint8_t *>(s2); 400 uint8_t B1[Word::kMaxSize]; 401 uint8_t B2[Word::kMaxSize]; 402 // Copy the data into locals in this non-msan-instrumented function 403 // to avoid msan complaining further. 404 size_t Hash = 0; // Compute some simple hash of both strings. 405 for (size_t i = 0; i < Len; i++) { 406 B1[i] = A1[i]; 407 B2[i] = A2[i]; 408 size_t T = B1[i]; 409 Hash ^= (T << 8) | B2[i]; 410 } 411 size_t I = 0; 412 for (; I < Len; I++) 413 if (B1[I] != B2[I] || (StopAtZero && B1[I] == 0)) 414 break; 415 size_t PC = reinterpret_cast<size_t>(caller_pc); 416 size_t Idx = (PC & 4095) | (I << 12); 417 ValueProfileMap.AddValue(Idx); 418 TORCW.Insert(Idx ^ Hash, Word(B1, Len), Word(B2, Len)); 419 } 420 421 template <class T> 422 ATTRIBUTE_TARGET_POPCNT ALWAYS_INLINE 423 ATTRIBUTE_NO_SANITIZE_ALL 424 void TracePC::HandleCmp(uintptr_t PC, T Arg1, T Arg2) { 425 uint64_t ArgXor = Arg1 ^ Arg2; 426 if (sizeof(T) == 4) 427 TORC4.Insert(ArgXor, Arg1, Arg2); 428 else if (sizeof(T) == 8) 429 TORC8.Insert(ArgXor, Arg1, Arg2); 430 uint64_t HammingDistance = __builtin_popcountll(ArgXor); // [0,64] 431 uint64_t AbsoluteDistance = 432 (Arg1 == Arg2 ? 0 : __builtin_clzll(Arg1 - Arg2) + 1); 433 ValueProfileMap.AddValue(PC * 128 + HammingDistance); 434 ValueProfileMap.AddValue(PC * 128 + 64 + AbsoluteDistance); 435 } 436 437 static size_t InternalStrnlen(const char *S, size_t MaxLen) { 438 size_t Len = 0; 439 for (; Len < MaxLen && S[Len]; Len++) {} 440 return Len; 441 } 442 443 // Finds min of (strlen(S1), strlen(S2)). 444 // Needed bacause one of these strings may actually be non-zero terminated. 445 static size_t InternalStrnlen2(const char *S1, const char *S2) { 446 size_t Len = 0; 447 for (; S1[Len] && S2[Len]; Len++) {} 448 return Len; 449 } 450 451 void TracePC::ClearInlineCounters() { 452 for (size_t i = 0; i < NumModulesWithInline8bitCounters; i++) { 453 uint8_t *Beg = ModuleCounters[i].Start; 454 size_t Size = ModuleCounters[i].Stop - Beg; 455 memset(Beg, 0, Size); 456 } 457 } 458 459 ATTRIBUTE_NO_SANITIZE_ALL 460 void TracePC::RecordInitialStack() { 461 int stack; 462 __sancov_lowest_stack = InitialStack = reinterpret_cast<uintptr_t>(&stack); 463 } 464 465 uintptr_t TracePC::GetMaxStackOffset() const { 466 return InitialStack - __sancov_lowest_stack; // Stack grows down 467 } 468 469 } // namespace fuzzer 470 471 extern "C" { 472 ATTRIBUTE_INTERFACE 473 ATTRIBUTE_NO_SANITIZE_ALL 474 void __sanitizer_cov_trace_pc_guard(uint32_t *Guard) { 475 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 476 uint32_t Idx = *Guard; 477 __sancov_trace_pc_pcs[Idx] = PC; 478 __sancov_trace_pc_guard_8bit_counters[Idx]++; 479 } 480 481 // Best-effort support for -fsanitize-coverage=trace-pc, which is available 482 // in both Clang and GCC. 483 ATTRIBUTE_INTERFACE 484 ATTRIBUTE_NO_SANITIZE_ALL 485 void __sanitizer_cov_trace_pc() { 486 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 487 uintptr_t Idx = PC & (((uintptr_t)1 << fuzzer::TracePC::kTracePcBits) - 1); 488 __sancov_trace_pc_pcs[Idx] = PC; 489 __sancov_trace_pc_guard_8bit_counters[Idx]++; 490 } 491 492 ATTRIBUTE_INTERFACE 493 void __sanitizer_cov_trace_pc_guard_init(uint32_t *Start, uint32_t *Stop) { 494 fuzzer::TPC.HandleInit(Start, Stop); 495 } 496 497 ATTRIBUTE_INTERFACE 498 void __sanitizer_cov_8bit_counters_init(uint8_t *Start, uint8_t *Stop) { 499 fuzzer::TPC.HandleInline8bitCountersInit(Start, Stop); 500 } 501 502 ATTRIBUTE_INTERFACE 503 void __sanitizer_cov_pcs_init(const uintptr_t *pcs_beg, 504 const uintptr_t *pcs_end) { 505 fuzzer::TPC.HandlePCsInit(pcs_beg, pcs_end); 506 } 507 508 ATTRIBUTE_INTERFACE 509 ATTRIBUTE_NO_SANITIZE_ALL 510 void __sanitizer_cov_trace_pc_indir(uintptr_t Callee) { 511 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 512 fuzzer::TPC.HandleCallerCallee(PC, Callee); 513 } 514 515 ATTRIBUTE_INTERFACE 516 ATTRIBUTE_NO_SANITIZE_ALL 517 ATTRIBUTE_TARGET_POPCNT 518 void __sanitizer_cov_trace_cmp8(uint64_t Arg1, uint64_t Arg2) { 519 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 520 fuzzer::TPC.HandleCmp(PC, Arg1, Arg2); 521 } 522 523 ATTRIBUTE_INTERFACE 524 ATTRIBUTE_NO_SANITIZE_ALL 525 ATTRIBUTE_TARGET_POPCNT 526 // Now the __sanitizer_cov_trace_const_cmp[1248] callbacks just mimic 527 // the behaviour of __sanitizer_cov_trace_cmp[1248] ones. This, however, 528 // should be changed later to make full use of instrumentation. 529 void __sanitizer_cov_trace_const_cmp8(uint64_t Arg1, uint64_t Arg2) { 530 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 531 fuzzer::TPC.HandleCmp(PC, Arg1, Arg2); 532 } 533 534 ATTRIBUTE_INTERFACE 535 ATTRIBUTE_NO_SANITIZE_ALL 536 ATTRIBUTE_TARGET_POPCNT 537 void __sanitizer_cov_trace_cmp4(uint32_t Arg1, uint32_t Arg2) { 538 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 539 fuzzer::TPC.HandleCmp(PC, Arg1, Arg2); 540 } 541 542 ATTRIBUTE_INTERFACE 543 ATTRIBUTE_NO_SANITIZE_ALL 544 ATTRIBUTE_TARGET_POPCNT 545 void __sanitizer_cov_trace_const_cmp4(uint32_t Arg1, uint32_t Arg2) { 546 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 547 fuzzer::TPC.HandleCmp(PC, Arg1, Arg2); 548 } 549 550 ATTRIBUTE_INTERFACE 551 ATTRIBUTE_NO_SANITIZE_ALL 552 ATTRIBUTE_TARGET_POPCNT 553 void __sanitizer_cov_trace_cmp2(uint16_t Arg1, uint16_t Arg2) { 554 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 555 fuzzer::TPC.HandleCmp(PC, Arg1, Arg2); 556 } 557 558 ATTRIBUTE_INTERFACE 559 ATTRIBUTE_NO_SANITIZE_ALL 560 ATTRIBUTE_TARGET_POPCNT 561 void __sanitizer_cov_trace_const_cmp2(uint16_t Arg1, uint16_t Arg2) { 562 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 563 fuzzer::TPC.HandleCmp(PC, Arg1, Arg2); 564 } 565 566 ATTRIBUTE_INTERFACE 567 ATTRIBUTE_NO_SANITIZE_ALL 568 ATTRIBUTE_TARGET_POPCNT 569 void __sanitizer_cov_trace_cmp1(uint8_t Arg1, uint8_t Arg2) { 570 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 571 fuzzer::TPC.HandleCmp(PC, Arg1, Arg2); 572 } 573 574 ATTRIBUTE_INTERFACE 575 ATTRIBUTE_NO_SANITIZE_ALL 576 ATTRIBUTE_TARGET_POPCNT 577 void __sanitizer_cov_trace_const_cmp1(uint8_t Arg1, uint8_t Arg2) { 578 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 579 fuzzer::TPC.HandleCmp(PC, Arg1, Arg2); 580 } 581 582 ATTRIBUTE_INTERFACE 583 ATTRIBUTE_NO_SANITIZE_ALL 584 ATTRIBUTE_TARGET_POPCNT 585 void __sanitizer_cov_trace_switch(uint64_t Val, uint64_t *Cases) { 586 uint64_t N = Cases[0]; 587 uint64_t ValSizeInBits = Cases[1]; 588 uint64_t *Vals = Cases + 2; 589 // Skip the most common and the most boring case. 590 if (Vals[N - 1] < 256 && Val < 256) 591 return; 592 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 593 size_t i; 594 uint64_t Token = 0; 595 for (i = 0; i < N; i++) { 596 Token = Val ^ Vals[i]; 597 if (Val < Vals[i]) 598 break; 599 } 600 601 if (ValSizeInBits == 16) 602 fuzzer::TPC.HandleCmp(PC + i, static_cast<uint16_t>(Token), (uint16_t)(0)); 603 else if (ValSizeInBits == 32) 604 fuzzer::TPC.HandleCmp(PC + i, static_cast<uint32_t>(Token), (uint32_t)(0)); 605 else 606 fuzzer::TPC.HandleCmp(PC + i, Token, (uint64_t)(0)); 607 } 608 609 ATTRIBUTE_INTERFACE 610 ATTRIBUTE_NO_SANITIZE_ALL 611 ATTRIBUTE_TARGET_POPCNT 612 void __sanitizer_cov_trace_div4(uint32_t Val) { 613 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 614 fuzzer::TPC.HandleCmp(PC, Val, (uint32_t)0); 615 } 616 617 ATTRIBUTE_INTERFACE 618 ATTRIBUTE_NO_SANITIZE_ALL 619 ATTRIBUTE_TARGET_POPCNT 620 void __sanitizer_cov_trace_div8(uint64_t Val) { 621 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 622 fuzzer::TPC.HandleCmp(PC, Val, (uint64_t)0); 623 } 624 625 ATTRIBUTE_INTERFACE 626 ATTRIBUTE_NO_SANITIZE_ALL 627 ATTRIBUTE_TARGET_POPCNT 628 void __sanitizer_cov_trace_gep(uintptr_t Idx) { 629 uintptr_t PC = reinterpret_cast<uintptr_t>(__builtin_return_address(0)); 630 fuzzer::TPC.HandleCmp(PC, Idx, (uintptr_t)0); 631 } 632 633 ATTRIBUTE_INTERFACE ATTRIBUTE_NO_SANITIZE_MEMORY 634 void __sanitizer_weak_hook_memcmp(void *caller_pc, const void *s1, 635 const void *s2, size_t n, int result) { 636 if (!fuzzer::RunningUserCallback) return; 637 if (result == 0) return; // No reason to mutate. 638 if (n <= 1) return; // Not interesting. 639 fuzzer::TPC.AddValueForMemcmp(caller_pc, s1, s2, n, /*StopAtZero*/false); 640 } 641 642 ATTRIBUTE_INTERFACE ATTRIBUTE_NO_SANITIZE_MEMORY 643 void __sanitizer_weak_hook_strncmp(void *caller_pc, const char *s1, 644 const char *s2, size_t n, int result) { 645 if (!fuzzer::RunningUserCallback) return; 646 if (result == 0) return; // No reason to mutate. 647 size_t Len1 = fuzzer::InternalStrnlen(s1, n); 648 size_t Len2 = fuzzer::InternalStrnlen(s2, n); 649 n = std::min(n, Len1); 650 n = std::min(n, Len2); 651 if (n <= 1) return; // Not interesting. 652 fuzzer::TPC.AddValueForMemcmp(caller_pc, s1, s2, n, /*StopAtZero*/true); 653 } 654 655 ATTRIBUTE_INTERFACE ATTRIBUTE_NO_SANITIZE_MEMORY 656 void __sanitizer_weak_hook_strcmp(void *caller_pc, const char *s1, 657 const char *s2, int result) { 658 if (!fuzzer::RunningUserCallback) return; 659 if (result == 0) return; // No reason to mutate. 660 size_t N = fuzzer::InternalStrnlen2(s1, s2); 661 if (N <= 1) return; // Not interesting. 662 fuzzer::TPC.AddValueForMemcmp(caller_pc, s1, s2, N, /*StopAtZero*/true); 663 } 664 665 ATTRIBUTE_INTERFACE ATTRIBUTE_NO_SANITIZE_MEMORY 666 void __sanitizer_weak_hook_strncasecmp(void *called_pc, const char *s1, 667 const char *s2, size_t n, int result) { 668 if (!fuzzer::RunningUserCallback) return; 669 return __sanitizer_weak_hook_strncmp(called_pc, s1, s2, n, result); 670 } 671 672 ATTRIBUTE_INTERFACE ATTRIBUTE_NO_SANITIZE_MEMORY 673 void __sanitizer_weak_hook_strcasecmp(void *called_pc, const char *s1, 674 const char *s2, int result) { 675 if (!fuzzer::RunningUserCallback) return; 676 return __sanitizer_weak_hook_strcmp(called_pc, s1, s2, result); 677 } 678 679 ATTRIBUTE_INTERFACE ATTRIBUTE_NO_SANITIZE_MEMORY 680 void __sanitizer_weak_hook_strstr(void *called_pc, const char *s1, 681 const char *s2, char *result) { 682 if (!fuzzer::RunningUserCallback) return; 683 fuzzer::TPC.MMT.Add(reinterpret_cast<const uint8_t *>(s2), strlen(s2)); 684 } 685 686 ATTRIBUTE_INTERFACE ATTRIBUTE_NO_SANITIZE_MEMORY 687 void __sanitizer_weak_hook_strcasestr(void *called_pc, const char *s1, 688 const char *s2, char *result) { 689 if (!fuzzer::RunningUserCallback) return; 690 fuzzer::TPC.MMT.Add(reinterpret_cast<const uint8_t *>(s2), strlen(s2)); 691 } 692 693 ATTRIBUTE_INTERFACE ATTRIBUTE_NO_SANITIZE_MEMORY 694 void __sanitizer_weak_hook_memmem(void *called_pc, const void *s1, size_t len1, 695 const void *s2, size_t len2, void *result) { 696 if (!fuzzer::RunningUserCallback) return; 697 fuzzer::TPC.MMT.Add(reinterpret_cast<const uint8_t *>(s2), len2); 698 } 699 } // extern "C" 700