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