1 //===- InstrProf.cpp - Instrumented profiling format support --------------===//
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 contains support for clang's instrumentation based PGO and
11 // coverage.
12 //
13 //===----------------------------------------------------------------------===//
14 
15 #include "llvm/ADT/ArrayRef.h"
16 #include "llvm/ADT/SmallString.h"
17 #include "llvm/ADT/SmallVector.h"
18 #include "llvm/ADT/StringExtras.h"
19 #include "llvm/ADT/StringRef.h"
20 #include "llvm/ADT/Triple.h"
21 #include "llvm/IR/Constant.h"
22 #include "llvm/IR/Constants.h"
23 #include "llvm/IR/Function.h"
24 #include "llvm/IR/GlobalValue.h"
25 #include "llvm/IR/GlobalVariable.h"
26 #include "llvm/IR/Instruction.h"
27 #include "llvm/IR/LLVMContext.h"
28 #include "llvm/IR/MDBuilder.h"
29 #include "llvm/IR/Metadata.h"
30 #include "llvm/IR/Module.h"
31 #include "llvm/IR/Type.h"
32 #include "llvm/ProfileData/InstrProf.h"
33 #include "llvm/Support/Casting.h"
34 #include "llvm/Support/CommandLine.h"
35 #include "llvm/Support/Compiler.h"
36 #include "llvm/Support/Compression.h"
37 #include "llvm/Support/Endian.h"
38 #include "llvm/Support/Error.h"
39 #include "llvm/Support/ErrorHandling.h"
40 #include "llvm/Support/LEB128.h"
41 #include "llvm/Support/ManagedStatic.h"
42 #include "llvm/Support/MathExtras.h"
43 #include "llvm/Support/Path.h"
44 #include "llvm/Support/SwapByteOrder.h"
45 #include <algorithm>
46 #include <cassert>
47 #include <cstddef>
48 #include <cstring>
49 #include <cstdint>
50 #include <memory>
51 #include <string>
52 #include <system_error>
53 #include <utility>
54 #include <vector>
55 
56 using namespace llvm;
57 
58 static cl::opt<bool> StaticFuncFullModulePrefix(
59     "static-func-full-module-prefix", cl::init(true),
60     cl::desc("Use full module build paths in the profile counter names for "
61              "static functions."));
62 
63 // This option is tailored to users that have different top-level directory in
64 // profile-gen and profile-use compilation. Users need to specific the number
65 // of levels to strip. A value larger than the number of directories in the
66 // source file will strip all the directory names and only leave the basename.
67 //
68 // Note current ThinLTO module importing for the indirect-calls assumes
69 // the source directory name not being stripped. A non-zero option value here
70 // can potentially prevent some inter-module indirect-call-promotions.
71 static cl::opt<unsigned> StaticFuncStripDirNamePrefix(
72     "static-func-strip-dirname-prefix", cl::init(0),
73     cl::desc("Strip specified level of directory name from source path in "
74              "the profile counter name for static functions."));
75 
76 static std::string getInstrProfErrString(instrprof_error Err) {
77   switch (Err) {
78   case instrprof_error::success:
79     return "Success";
80   case instrprof_error::eof:
81     return "End of File";
82   case instrprof_error::unrecognized_format:
83     return "Unrecognized instrumentation profile encoding format";
84   case instrprof_error::bad_magic:
85     return "Invalid instrumentation profile data (bad magic)";
86   case instrprof_error::bad_header:
87     return "Invalid instrumentation profile data (file header is corrupt)";
88   case instrprof_error::unsupported_version:
89     return "Unsupported instrumentation profile format version";
90   case instrprof_error::unsupported_hash_type:
91     return "Unsupported instrumentation profile hash type";
92   case instrprof_error::too_large:
93     return "Too much profile data";
94   case instrprof_error::truncated:
95     return "Truncated profile data";
96   case instrprof_error::malformed:
97     return "Malformed instrumentation profile data";
98   case instrprof_error::unknown_function:
99     return "No profile data available for function";
100   case instrprof_error::hash_mismatch:
101     return "Function control flow change detected (hash mismatch)";
102   case instrprof_error::count_mismatch:
103     return "Function basic block count change detected (counter mismatch)";
104   case instrprof_error::counter_overflow:
105     return "Counter overflow";
106   case instrprof_error::value_site_count_mismatch:
107     return "Function value site count change detected (counter mismatch)";
108   case instrprof_error::compress_failed:
109     return "Failed to compress data (zlib)";
110   case instrprof_error::uncompress_failed:
111     return "Failed to uncompress data (zlib)";
112   case instrprof_error::empty_raw_profile:
113     return "Empty raw profile file";
114   }
115   llvm_unreachable("A value of instrprof_error has no message.");
116 }
117 
118 namespace {
119 
120 // FIXME: This class is only here to support the transition to llvm::Error. It
121 // will be removed once this transition is complete. Clients should prefer to
122 // deal with the Error value directly, rather than converting to error_code.
123 class InstrProfErrorCategoryType : public std::error_category {
124   const char *name() const noexcept override { return "llvm.instrprof"; }
125 
126   std::string message(int IE) const override {
127     return getInstrProfErrString(static_cast<instrprof_error>(IE));
128   }
129 };
130 
131 } // end anonymous namespace
132 
133 static ManagedStatic<InstrProfErrorCategoryType> ErrorCategory;
134 
135 const std::error_category &llvm::instrprof_category() {
136   return *ErrorCategory;
137 }
138 
139 namespace llvm {
140 
141 void SoftInstrProfErrors::addError(instrprof_error IE) {
142   if (IE == instrprof_error::success)
143     return;
144 
145   if (FirstError == instrprof_error::success)
146     FirstError = IE;
147 
148   switch (IE) {
149   case instrprof_error::hash_mismatch:
150     ++NumHashMismatches;
151     break;
152   case instrprof_error::count_mismatch:
153     ++NumCountMismatches;
154     break;
155   case instrprof_error::counter_overflow:
156     ++NumCounterOverflows;
157     break;
158   case instrprof_error::value_site_count_mismatch:
159     ++NumValueSiteCountMismatches;
160     break;
161   default:
162     llvm_unreachable("Not a soft error");
163   }
164 }
165 
166 std::string InstrProfError::message() const {
167   return getInstrProfErrString(Err);
168 }
169 
170 char InstrProfError::ID = 0;
171 
172 std::string getPGOFuncName(StringRef RawFuncName,
173                            GlobalValue::LinkageTypes Linkage,
174                            StringRef FileName,
175                            uint64_t Version LLVM_ATTRIBUTE_UNUSED) {
176   return GlobalValue::getGlobalIdentifier(RawFuncName, Linkage, FileName);
177 }
178 
179 // Strip NumPrefix level of directory name from PathNameStr. If the number of
180 // directory separators is less than NumPrefix, strip all the directories and
181 // leave base file name only.
182 static StringRef stripDirPrefix(StringRef PathNameStr, uint32_t NumPrefix) {
183   uint32_t Count = NumPrefix;
184   uint32_t Pos = 0, LastPos = 0;
185   for (auto & CI : PathNameStr) {
186     ++Pos;
187     if (llvm::sys::path::is_separator(CI)) {
188       LastPos = Pos;
189       --Count;
190     }
191     if (Count == 0)
192       break;
193   }
194   return PathNameStr.substr(LastPos);
195 }
196 
197 // Return the PGOFuncName. This function has some special handling when called
198 // in LTO optimization. The following only applies when calling in LTO passes
199 // (when \c InLTO is true): LTO's internalization privatizes many global linkage
200 // symbols. This happens after value profile annotation, but those internal
201 // linkage functions should not have a source prefix.
202 // Additionally, for ThinLTO mode, exported internal functions are promoted
203 // and renamed. We need to ensure that the original internal PGO name is
204 // used when computing the GUID that is compared against the profiled GUIDs.
205 // To differentiate compiler generated internal symbols from original ones,
206 // PGOFuncName meta data are created and attached to the original internal
207 // symbols in the value profile annotation step
208 // (PGOUseFunc::annotateIndirectCallSites). If a symbol does not have the meta
209 // data, its original linkage must be non-internal.
210 std::string getPGOFuncName(const Function &F, bool InLTO, uint64_t Version) {
211   if (!InLTO) {
212     StringRef FileName = (StaticFuncFullModulePrefix
213                               ? F.getParent()->getName()
214                               : sys::path::filename(F.getParent()->getName()));
215     if (StaticFuncFullModulePrefix && StaticFuncStripDirNamePrefix != 0)
216       FileName = stripDirPrefix(FileName, StaticFuncStripDirNamePrefix);
217     return getPGOFuncName(F.getName(), F.getLinkage(), FileName, Version);
218   }
219 
220   // In LTO mode (when InLTO is true), first check if there is a meta data.
221   if (MDNode *MD = getPGOFuncNameMetadata(F)) {
222     StringRef S = cast<MDString>(MD->getOperand(0))->getString();
223     return S.str();
224   }
225 
226   // If there is no meta data, the function must be a global before the value
227   // profile annotation pass. Its current linkage may be internal if it is
228   // internalized in LTO mode.
229   return getPGOFuncName(F.getName(), GlobalValue::ExternalLinkage, "");
230 }
231 
232 StringRef getFuncNameWithoutPrefix(StringRef PGOFuncName, StringRef FileName) {
233   if (FileName.empty())
234     return PGOFuncName;
235   // Drop the file name including ':'. See also getPGOFuncName.
236   if (PGOFuncName.startswith(FileName))
237     PGOFuncName = PGOFuncName.drop_front(FileName.size() + 1);
238   return PGOFuncName;
239 }
240 
241 // \p FuncName is the string used as profile lookup key for the function. A
242 // symbol is created to hold the name. Return the legalized symbol name.
243 std::string getPGOFuncNameVarName(StringRef FuncName,
244                                   GlobalValue::LinkageTypes Linkage) {
245   std::string VarName = getInstrProfNameVarPrefix();
246   VarName += FuncName;
247 
248   if (!GlobalValue::isLocalLinkage(Linkage))
249     return VarName;
250 
251   // Now fix up illegal chars in local VarName that may upset the assembler.
252   const char *InvalidChars = "-:<>/\"'";
253   size_t found = VarName.find_first_of(InvalidChars);
254   while (found != std::string::npos) {
255     VarName[found] = '_';
256     found = VarName.find_first_of(InvalidChars, found + 1);
257   }
258   return VarName;
259 }
260 
261 GlobalVariable *createPGOFuncNameVar(Module &M,
262                                      GlobalValue::LinkageTypes Linkage,
263                                      StringRef PGOFuncName) {
264   // We generally want to match the function's linkage, but available_externally
265   // and extern_weak both have the wrong semantics, and anything that doesn't
266   // need to link across compilation units doesn't need to be visible at all.
267   if (Linkage == GlobalValue::ExternalWeakLinkage)
268     Linkage = GlobalValue::LinkOnceAnyLinkage;
269   else if (Linkage == GlobalValue::AvailableExternallyLinkage)
270     Linkage = GlobalValue::LinkOnceODRLinkage;
271   else if (Linkage == GlobalValue::InternalLinkage ||
272            Linkage == GlobalValue::ExternalLinkage)
273     Linkage = GlobalValue::PrivateLinkage;
274 
275   auto *Value =
276       ConstantDataArray::getString(M.getContext(), PGOFuncName, false);
277   auto FuncNameVar =
278       new GlobalVariable(M, Value->getType(), true, Linkage, Value,
279                          getPGOFuncNameVarName(PGOFuncName, Linkage));
280 
281   // Hide the symbol so that we correctly get a copy for each executable.
282   if (!GlobalValue::isLocalLinkage(FuncNameVar->getLinkage()))
283     FuncNameVar->setVisibility(GlobalValue::HiddenVisibility);
284 
285   return FuncNameVar;
286 }
287 
288 GlobalVariable *createPGOFuncNameVar(Function &F, StringRef PGOFuncName) {
289   return createPGOFuncNameVar(*F.getParent(), F.getLinkage(), PGOFuncName);
290 }
291 
292 void InstrProfSymtab::create(Module &M, bool InLTO) {
293   for (Function &F : M) {
294     // Function may not have a name: like using asm("") to overwrite the name.
295     // Ignore in this case.
296     if (!F.hasName())
297       continue;
298     const std::string &PGOFuncName = getPGOFuncName(F, InLTO);
299     addFuncName(PGOFuncName);
300     MD5FuncMap.emplace_back(Function::getGUID(PGOFuncName), &F);
301     // In ThinLTO, local function may have been promoted to global and have
302     // suffix added to the function name. We need to add the stripped function
303     // name to the symbol table so that we can find a match from profile.
304     if (InLTO) {
305       auto pos = PGOFuncName.find('.');
306       if (pos != std::string::npos) {
307         const std::string &OtherFuncName = PGOFuncName.substr(0, pos);
308         addFuncName(OtherFuncName);
309         MD5FuncMap.emplace_back(Function::getGUID(OtherFuncName), &F);
310       }
311     }
312   }
313 
314   finalizeSymtab();
315 }
316 
317 Error collectPGOFuncNameStrings(const std::vector<std::string> &NameStrs,
318                                 bool doCompression, std::string &Result) {
319   assert(!NameStrs.empty() && "No name data to emit");
320 
321   uint8_t Header[16], *P = Header;
322   std::string UncompressedNameStrings =
323       join(NameStrs.begin(), NameStrs.end(), getInstrProfNameSeparator());
324 
325   assert(StringRef(UncompressedNameStrings)
326                  .count(getInstrProfNameSeparator()) == (NameStrs.size() - 1) &&
327          "PGO name is invalid (contains separator token)");
328 
329   unsigned EncLen = encodeULEB128(UncompressedNameStrings.length(), P);
330   P += EncLen;
331 
332   auto WriteStringToResult = [&](size_t CompressedLen, StringRef InputStr) {
333     EncLen = encodeULEB128(CompressedLen, P);
334     P += EncLen;
335     char *HeaderStr = reinterpret_cast<char *>(&Header[0]);
336     unsigned HeaderLen = P - &Header[0];
337     Result.append(HeaderStr, HeaderLen);
338     Result += InputStr;
339     return Error::success();
340   };
341 
342   if (!doCompression) {
343     return WriteStringToResult(0, UncompressedNameStrings);
344   }
345 
346   SmallString<128> CompressedNameStrings;
347   Error E = zlib::compress(StringRef(UncompressedNameStrings),
348                            CompressedNameStrings, zlib::BestSizeCompression);
349   if (E) {
350     consumeError(std::move(E));
351     return make_error<InstrProfError>(instrprof_error::compress_failed);
352   }
353 
354   return WriteStringToResult(CompressedNameStrings.size(),
355                              CompressedNameStrings);
356 }
357 
358 StringRef getPGOFuncNameVarInitializer(GlobalVariable *NameVar) {
359   auto *Arr = cast<ConstantDataArray>(NameVar->getInitializer());
360   StringRef NameStr =
361       Arr->isCString() ? Arr->getAsCString() : Arr->getAsString();
362   return NameStr;
363 }
364 
365 Error collectPGOFuncNameStrings(const std::vector<GlobalVariable *> &NameVars,
366                                 std::string &Result, bool doCompression) {
367   std::vector<std::string> NameStrs;
368   for (auto *NameVar : NameVars) {
369     NameStrs.push_back(getPGOFuncNameVarInitializer(NameVar));
370   }
371   return collectPGOFuncNameStrings(
372       NameStrs, zlib::isAvailable() && doCompression, Result);
373 }
374 
375 Error readPGOFuncNameStrings(StringRef NameStrings, InstrProfSymtab &Symtab) {
376   const uint8_t *P = reinterpret_cast<const uint8_t *>(NameStrings.data());
377   const uint8_t *EndP = reinterpret_cast<const uint8_t *>(NameStrings.data() +
378                                                           NameStrings.size());
379   while (P < EndP) {
380     uint32_t N;
381     uint64_t UncompressedSize = decodeULEB128(P, &N);
382     P += N;
383     uint64_t CompressedSize = decodeULEB128(P, &N);
384     P += N;
385     bool isCompressed = (CompressedSize != 0);
386     SmallString<128> UncompressedNameStrings;
387     StringRef NameStrings;
388     if (isCompressed) {
389       StringRef CompressedNameStrings(reinterpret_cast<const char *>(P),
390                                       CompressedSize);
391       if (Error E =
392               zlib::uncompress(CompressedNameStrings, UncompressedNameStrings,
393                                UncompressedSize)) {
394         consumeError(std::move(E));
395         return make_error<InstrProfError>(instrprof_error::uncompress_failed);
396       }
397       P += CompressedSize;
398       NameStrings = StringRef(UncompressedNameStrings.data(),
399                               UncompressedNameStrings.size());
400     } else {
401       NameStrings =
402           StringRef(reinterpret_cast<const char *>(P), UncompressedSize);
403       P += UncompressedSize;
404     }
405     // Now parse the name strings.
406     SmallVector<StringRef, 0> Names;
407     NameStrings.split(Names, getInstrProfNameSeparator());
408     for (StringRef &Name : Names)
409       Symtab.addFuncName(Name);
410 
411     while (P < EndP && *P == 0)
412       P++;
413   }
414   Symtab.finalizeSymtab();
415   return Error::success();
416 }
417 
418 void InstrProfValueSiteRecord::merge(SoftInstrProfErrors &SIPE,
419                                      InstrProfValueSiteRecord &Input,
420                                      uint64_t Weight) {
421   this->sortByTargetValues();
422   Input.sortByTargetValues();
423   auto I = ValueData.begin();
424   auto IE = ValueData.end();
425   for (auto J = Input.ValueData.begin(), JE = Input.ValueData.end(); J != JE;
426        ++J) {
427     while (I != IE && I->Value < J->Value)
428       ++I;
429     if (I != IE && I->Value == J->Value) {
430       bool Overflowed;
431       I->Count = SaturatingMultiplyAdd(J->Count, Weight, I->Count, &Overflowed);
432       if (Overflowed)
433         SIPE.addError(instrprof_error::counter_overflow);
434       ++I;
435       continue;
436     }
437     ValueData.insert(I, *J);
438   }
439 }
440 
441 void InstrProfValueSiteRecord::scale(SoftInstrProfErrors &SIPE,
442                                      uint64_t Weight) {
443   for (auto I = ValueData.begin(), IE = ValueData.end(); I != IE; ++I) {
444     bool Overflowed;
445     I->Count = SaturatingMultiply(I->Count, Weight, &Overflowed);
446     if (Overflowed)
447       SIPE.addError(instrprof_error::counter_overflow);
448   }
449 }
450 
451 // Merge Value Profile data from Src record to this record for ValueKind.
452 // Scale merged value counts by \p Weight.
453 void InstrProfRecord::mergeValueProfData(uint32_t ValueKind,
454                                          InstrProfRecord &Src,
455                                          uint64_t Weight) {
456   uint32_t ThisNumValueSites = getNumValueSites(ValueKind);
457   uint32_t OtherNumValueSites = Src.getNumValueSites(ValueKind);
458   if (ThisNumValueSites != OtherNumValueSites) {
459     SIPE.addError(instrprof_error::value_site_count_mismatch);
460     return;
461   }
462   std::vector<InstrProfValueSiteRecord> &ThisSiteRecords =
463       getValueSitesForKind(ValueKind);
464   std::vector<InstrProfValueSiteRecord> &OtherSiteRecords =
465       Src.getValueSitesForKind(ValueKind);
466   for (uint32_t I = 0; I < ThisNumValueSites; I++)
467     ThisSiteRecords[I].merge(SIPE, OtherSiteRecords[I], Weight);
468 }
469 
470 void InstrProfRecord::merge(InstrProfRecord &Other, uint64_t Weight) {
471   // If the number of counters doesn't match we either have bad data
472   // or a hash collision.
473   if (Counts.size() != Other.Counts.size()) {
474     SIPE.addError(instrprof_error::count_mismatch);
475     return;
476   }
477 
478   for (size_t I = 0, E = Other.Counts.size(); I < E; ++I) {
479     bool Overflowed;
480     Counts[I] =
481         SaturatingMultiplyAdd(Other.Counts[I], Weight, Counts[I], &Overflowed);
482     if (Overflowed)
483       SIPE.addError(instrprof_error::counter_overflow);
484   }
485 
486   for (uint32_t Kind = IPVK_First; Kind <= IPVK_Last; ++Kind)
487     mergeValueProfData(Kind, Other, Weight);
488 }
489 
490 void InstrProfRecord::scaleValueProfData(uint32_t ValueKind, uint64_t Weight) {
491   uint32_t ThisNumValueSites = getNumValueSites(ValueKind);
492   std::vector<InstrProfValueSiteRecord> &ThisSiteRecords =
493       getValueSitesForKind(ValueKind);
494   for (uint32_t I = 0; I < ThisNumValueSites; I++)
495     ThisSiteRecords[I].scale(SIPE, Weight);
496 }
497 
498 void InstrProfRecord::scale(uint64_t Weight) {
499   for (auto &Count : this->Counts) {
500     bool Overflowed;
501     Count = SaturatingMultiply(Count, Weight, &Overflowed);
502     if (Overflowed)
503       SIPE.addError(instrprof_error::counter_overflow);
504   }
505   for (uint32_t Kind = IPVK_First; Kind <= IPVK_Last; ++Kind)
506     scaleValueProfData(Kind, Weight);
507 }
508 
509 // Map indirect call target name hash to name string.
510 uint64_t InstrProfRecord::remapValue(uint64_t Value, uint32_t ValueKind,
511                                      ValueMapType *ValueMap) {
512   if (!ValueMap)
513     return Value;
514   switch (ValueKind) {
515   case IPVK_IndirectCallTarget: {
516     auto Result =
517         std::lower_bound(ValueMap->begin(), ValueMap->end(), Value,
518                          [](const std::pair<uint64_t, uint64_t> &LHS,
519                             uint64_t RHS) { return LHS.first < RHS; });
520    // Raw function pointer collected by value profiler may be from
521    // external functions that are not instrumented. They won't have
522    // mapping data to be used by the deserializer. Force the value to
523    // be 0 in this case.
524     if (Result != ValueMap->end() && Result->first == Value)
525       Value = (uint64_t)Result->second;
526     else
527       Value = 0;
528     break;
529   }
530   }
531   return Value;
532 }
533 
534 void InstrProfRecord::addValueData(uint32_t ValueKind, uint32_t Site,
535                                    InstrProfValueData *VData, uint32_t N,
536                                    ValueMapType *ValueMap) {
537   for (uint32_t I = 0; I < N; I++) {
538     VData[I].Value = remapValue(VData[I].Value, ValueKind, ValueMap);
539   }
540   std::vector<InstrProfValueSiteRecord> &ValueSites =
541       getValueSitesForKind(ValueKind);
542   if (N == 0)
543     ValueSites.emplace_back();
544   else
545     ValueSites.emplace_back(VData, VData + N);
546 }
547 
548 #define INSTR_PROF_COMMON_API_IMPL
549 #include "llvm/ProfileData/InstrProfData.inc"
550 
551 /*!
552  * \brief ValueProfRecordClosure Interface implementation for  InstrProfRecord
553  *  class. These C wrappers are used as adaptors so that C++ code can be
554  *  invoked as callbacks.
555  */
556 uint32_t getNumValueKindsInstrProf(const void *Record) {
557   return reinterpret_cast<const InstrProfRecord *>(Record)->getNumValueKinds();
558 }
559 
560 uint32_t getNumValueSitesInstrProf(const void *Record, uint32_t VKind) {
561   return reinterpret_cast<const InstrProfRecord *>(Record)
562       ->getNumValueSites(VKind);
563 }
564 
565 uint32_t getNumValueDataInstrProf(const void *Record, uint32_t VKind) {
566   return reinterpret_cast<const InstrProfRecord *>(Record)
567       ->getNumValueData(VKind);
568 }
569 
570 uint32_t getNumValueDataForSiteInstrProf(const void *R, uint32_t VK,
571                                          uint32_t S) {
572   return reinterpret_cast<const InstrProfRecord *>(R)
573       ->getNumValueDataForSite(VK, S);
574 }
575 
576 void getValueForSiteInstrProf(const void *R, InstrProfValueData *Dst,
577                               uint32_t K, uint32_t S) {
578   reinterpret_cast<const InstrProfRecord *>(R)->getValueForSite(Dst, K, S);
579 }
580 
581 ValueProfData *allocValueProfDataInstrProf(size_t TotalSizeInBytes) {
582   ValueProfData *VD =
583       (ValueProfData *)(new (::operator new(TotalSizeInBytes)) ValueProfData());
584   memset(VD, 0, TotalSizeInBytes);
585   return VD;
586 }
587 
588 static ValueProfRecordClosure InstrProfRecordClosure = {
589     nullptr,
590     getNumValueKindsInstrProf,
591     getNumValueSitesInstrProf,
592     getNumValueDataInstrProf,
593     getNumValueDataForSiteInstrProf,
594     nullptr,
595     getValueForSiteInstrProf,
596     allocValueProfDataInstrProf};
597 
598 // Wrapper implementation using the closure mechanism.
599 uint32_t ValueProfData::getSize(const InstrProfRecord &Record) {
600   InstrProfRecordClosure.Record = &Record;
601   return getValueProfDataSize(&InstrProfRecordClosure);
602 }
603 
604 // Wrapper implementation using the closure mechanism.
605 std::unique_ptr<ValueProfData>
606 ValueProfData::serializeFrom(const InstrProfRecord &Record) {
607   InstrProfRecordClosure.Record = &Record;
608 
609   std::unique_ptr<ValueProfData> VPD(
610       serializeValueProfDataFrom(&InstrProfRecordClosure, nullptr));
611   return VPD;
612 }
613 
614 void ValueProfRecord::deserializeTo(InstrProfRecord &Record,
615                                     InstrProfRecord::ValueMapType *VMap) {
616   Record.reserveSites(Kind, NumValueSites);
617 
618   InstrProfValueData *ValueData = getValueProfRecordValueData(this);
619   for (uint64_t VSite = 0; VSite < NumValueSites; ++VSite) {
620     uint8_t ValueDataCount = this->SiteCountArray[VSite];
621     Record.addValueData(Kind, VSite, ValueData, ValueDataCount, VMap);
622     ValueData += ValueDataCount;
623   }
624 }
625 
626 // For writing/serializing,  Old is the host endianness, and  New is
627 // byte order intended on disk. For Reading/deserialization, Old
628 // is the on-disk source endianness, and New is the host endianness.
629 void ValueProfRecord::swapBytes(support::endianness Old,
630                                 support::endianness New) {
631   using namespace support;
632 
633   if (Old == New)
634     return;
635 
636   if (getHostEndianness() != Old) {
637     sys::swapByteOrder<uint32_t>(NumValueSites);
638     sys::swapByteOrder<uint32_t>(Kind);
639   }
640   uint32_t ND = getValueProfRecordNumValueData(this);
641   InstrProfValueData *VD = getValueProfRecordValueData(this);
642 
643   // No need to swap byte array: SiteCountArrray.
644   for (uint32_t I = 0; I < ND; I++) {
645     sys::swapByteOrder<uint64_t>(VD[I].Value);
646     sys::swapByteOrder<uint64_t>(VD[I].Count);
647   }
648   if (getHostEndianness() == Old) {
649     sys::swapByteOrder<uint32_t>(NumValueSites);
650     sys::swapByteOrder<uint32_t>(Kind);
651   }
652 }
653 
654 void ValueProfData::deserializeTo(InstrProfRecord &Record,
655                                   InstrProfRecord::ValueMapType *VMap) {
656   if (NumValueKinds == 0)
657     return;
658 
659   ValueProfRecord *VR = getFirstValueProfRecord(this);
660   for (uint32_t K = 0; K < NumValueKinds; K++) {
661     VR->deserializeTo(Record, VMap);
662     VR = getValueProfRecordNext(VR);
663   }
664 }
665 
666 template <class T>
667 static T swapToHostOrder(const unsigned char *&D, support::endianness Orig) {
668   using namespace support;
669 
670   if (Orig == little)
671     return endian::readNext<T, little, unaligned>(D);
672   else
673     return endian::readNext<T, big, unaligned>(D);
674 }
675 
676 static std::unique_ptr<ValueProfData> allocValueProfData(uint32_t TotalSize) {
677   return std::unique_ptr<ValueProfData>(new (::operator new(TotalSize))
678                                             ValueProfData());
679 }
680 
681 Error ValueProfData::checkIntegrity() {
682   if (NumValueKinds > IPVK_Last + 1)
683     return make_error<InstrProfError>(instrprof_error::malformed);
684   // Total size needs to be mulltiple of quadword size.
685   if (TotalSize % sizeof(uint64_t))
686     return make_error<InstrProfError>(instrprof_error::malformed);
687 
688   ValueProfRecord *VR = getFirstValueProfRecord(this);
689   for (uint32_t K = 0; K < this->NumValueKinds; K++) {
690     if (VR->Kind > IPVK_Last)
691       return make_error<InstrProfError>(instrprof_error::malformed);
692     VR = getValueProfRecordNext(VR);
693     if ((char *)VR - (char *)this > (ptrdiff_t)TotalSize)
694       return make_error<InstrProfError>(instrprof_error::malformed);
695   }
696   return Error::success();
697 }
698 
699 Expected<std::unique_ptr<ValueProfData>>
700 ValueProfData::getValueProfData(const unsigned char *D,
701                                 const unsigned char *const BufferEnd,
702                                 support::endianness Endianness) {
703   using namespace support;
704 
705   if (D + sizeof(ValueProfData) > BufferEnd)
706     return make_error<InstrProfError>(instrprof_error::truncated);
707 
708   const unsigned char *Header = D;
709   uint32_t TotalSize = swapToHostOrder<uint32_t>(Header, Endianness);
710   if (D + TotalSize > BufferEnd)
711     return make_error<InstrProfError>(instrprof_error::too_large);
712 
713   std::unique_ptr<ValueProfData> VPD = allocValueProfData(TotalSize);
714   memcpy(VPD.get(), D, TotalSize);
715   // Byte swap.
716   VPD->swapBytesToHost(Endianness);
717 
718   Error E = VPD->checkIntegrity();
719   if (E)
720     return std::move(E);
721 
722   return std::move(VPD);
723 }
724 
725 void ValueProfData::swapBytesToHost(support::endianness Endianness) {
726   using namespace support;
727 
728   if (Endianness == getHostEndianness())
729     return;
730 
731   sys::swapByteOrder<uint32_t>(TotalSize);
732   sys::swapByteOrder<uint32_t>(NumValueKinds);
733 
734   ValueProfRecord *VR = getFirstValueProfRecord(this);
735   for (uint32_t K = 0; K < NumValueKinds; K++) {
736     VR->swapBytes(Endianness, getHostEndianness());
737     VR = getValueProfRecordNext(VR);
738   }
739 }
740 
741 void ValueProfData::swapBytesFromHost(support::endianness Endianness) {
742   using namespace support;
743 
744   if (Endianness == getHostEndianness())
745     return;
746 
747   ValueProfRecord *VR = getFirstValueProfRecord(this);
748   for (uint32_t K = 0; K < NumValueKinds; K++) {
749     ValueProfRecord *NVR = getValueProfRecordNext(VR);
750     VR->swapBytes(getHostEndianness(), Endianness);
751     VR = NVR;
752   }
753   sys::swapByteOrder<uint32_t>(TotalSize);
754   sys::swapByteOrder<uint32_t>(NumValueKinds);
755 }
756 
757 void annotateValueSite(Module &M, Instruction &Inst,
758                        const InstrProfRecord &InstrProfR,
759                        InstrProfValueKind ValueKind, uint32_t SiteIdx,
760                        uint32_t MaxMDCount) {
761   uint32_t NV = InstrProfR.getNumValueDataForSite(ValueKind, SiteIdx);
762   if (!NV)
763     return;
764 
765   uint64_t Sum = 0;
766   std::unique_ptr<InstrProfValueData[]> VD =
767       InstrProfR.getValueForSite(ValueKind, SiteIdx, &Sum);
768 
769   ArrayRef<InstrProfValueData> VDs(VD.get(), NV);
770   annotateValueSite(M, Inst, VDs, Sum, ValueKind, MaxMDCount);
771 }
772 
773 void annotateValueSite(Module &M, Instruction &Inst,
774                        ArrayRef<InstrProfValueData> VDs,
775                        uint64_t Sum, InstrProfValueKind ValueKind,
776                        uint32_t MaxMDCount) {
777   LLVMContext &Ctx = M.getContext();
778   MDBuilder MDHelper(Ctx);
779   SmallVector<Metadata *, 3> Vals;
780   // Tag
781   Vals.push_back(MDHelper.createString("VP"));
782   // Value Kind
783   Vals.push_back(MDHelper.createConstant(
784       ConstantInt::get(Type::getInt32Ty(Ctx), ValueKind)));
785   // Total Count
786   Vals.push_back(
787       MDHelper.createConstant(ConstantInt::get(Type::getInt64Ty(Ctx), Sum)));
788 
789   // Value Profile Data
790   uint32_t MDCount = MaxMDCount;
791   for (auto &VD : VDs) {
792     Vals.push_back(MDHelper.createConstant(
793         ConstantInt::get(Type::getInt64Ty(Ctx), VD.Value)));
794     Vals.push_back(MDHelper.createConstant(
795         ConstantInt::get(Type::getInt64Ty(Ctx), VD.Count)));
796     if (--MDCount == 0)
797       break;
798   }
799   Inst.setMetadata(LLVMContext::MD_prof, MDNode::get(Ctx, Vals));
800 }
801 
802 bool getValueProfDataFromInst(const Instruction &Inst,
803                               InstrProfValueKind ValueKind,
804                               uint32_t MaxNumValueData,
805                               InstrProfValueData ValueData[],
806                               uint32_t &ActualNumValueData, uint64_t &TotalC) {
807   MDNode *MD = Inst.getMetadata(LLVMContext::MD_prof);
808   if (!MD)
809     return false;
810 
811   unsigned NOps = MD->getNumOperands();
812 
813   if (NOps < 5)
814     return false;
815 
816   // Operand 0 is a string tag "VP":
817   MDString *Tag = cast<MDString>(MD->getOperand(0));
818   if (!Tag)
819     return false;
820 
821   if (!Tag->getString().equals("VP"))
822     return false;
823 
824   // Now check kind:
825   ConstantInt *KindInt = mdconst::dyn_extract<ConstantInt>(MD->getOperand(1));
826   if (!KindInt)
827     return false;
828   if (KindInt->getZExtValue() != ValueKind)
829     return false;
830 
831   // Get total count
832   ConstantInt *TotalCInt = mdconst::dyn_extract<ConstantInt>(MD->getOperand(2));
833   if (!TotalCInt)
834     return false;
835   TotalC = TotalCInt->getZExtValue();
836 
837   ActualNumValueData = 0;
838 
839   for (unsigned I = 3; I < NOps; I += 2) {
840     if (ActualNumValueData >= MaxNumValueData)
841       break;
842     ConstantInt *Value = mdconst::dyn_extract<ConstantInt>(MD->getOperand(I));
843     ConstantInt *Count =
844         mdconst::dyn_extract<ConstantInt>(MD->getOperand(I + 1));
845     if (!Value || !Count)
846       return false;
847     ValueData[ActualNumValueData].Value = Value->getZExtValue();
848     ValueData[ActualNumValueData].Count = Count->getZExtValue();
849     ActualNumValueData++;
850   }
851   return true;
852 }
853 
854 MDNode *getPGOFuncNameMetadata(const Function &F) {
855   return F.getMetadata(getPGOFuncNameMetadataName());
856 }
857 
858 void createPGOFuncNameMetadata(Function &F, StringRef PGOFuncName) {
859   // Only for internal linkage functions.
860   if (PGOFuncName == F.getName())
861       return;
862   // Don't create duplicated meta-data.
863   if (getPGOFuncNameMetadata(F))
864     return;
865   LLVMContext &C = F.getContext();
866   MDNode *N = MDNode::get(C, MDString::get(C, PGOFuncName));
867   F.setMetadata(getPGOFuncNameMetadataName(), N);
868 }
869 
870 bool needsComdatForCounter(const Function &F, const Module &M) {
871   if (F.hasComdat())
872     return true;
873 
874   Triple TT(M.getTargetTriple());
875   if (!TT.isOSBinFormatELF() && !TT.isOSBinFormatWasm())
876     return false;
877 
878   // See createPGOFuncNameVar for more details. To avoid link errors, profile
879   // counters for function with available_externally linkage needs to be changed
880   // to linkonce linkage. On ELF based systems, this leads to weak symbols to be
881   // created. Without using comdat, duplicate entries won't be removed by the
882   // linker leading to increased data segement size and raw profile size. Even
883   // worse, since the referenced counter from profile per-function data object
884   // will be resolved to the common strong definition, the profile counts for
885   // available_externally functions will end up being duplicated in raw profile
886   // data. This can result in distorted profile as the counts of those dups
887   // will be accumulated by the profile merger.
888   GlobalValue::LinkageTypes Linkage = F.getLinkage();
889   if (Linkage != GlobalValue::ExternalWeakLinkage &&
890       Linkage != GlobalValue::AvailableExternallyLinkage)
891     return false;
892 
893   return true;
894 }
895 
896 // Check if INSTR_PROF_RAW_VERSION_VAR is defined.
897 bool isIRPGOFlagSet(const Module *M) {
898   auto IRInstrVar =
899       M->getNamedGlobal(INSTR_PROF_QUOTE(INSTR_PROF_RAW_VERSION_VAR));
900   if (!IRInstrVar || IRInstrVar->isDeclaration() ||
901       IRInstrVar->hasLocalLinkage())
902     return false;
903 
904   // Check if the flag is set.
905   if (!IRInstrVar->hasInitializer())
906     return false;
907 
908   const Constant *InitVal = IRInstrVar->getInitializer();
909   if (!InitVal)
910     return false;
911 
912   return (dyn_cast<ConstantInt>(InitVal)->getZExtValue() &
913           VARIANT_MASK_IR_PROF) != 0;
914 }
915 
916 // Check if we can safely rename this Comdat function.
917 bool canRenameComdatFunc(const Function &F, bool CheckAddressTaken) {
918   if (F.getName().empty())
919     return false;
920   if (!needsComdatForCounter(F, *(F.getParent())))
921     return false;
922   // Unsafe to rename the address-taken function (which can be used in
923   // function comparison).
924   if (CheckAddressTaken && F.hasAddressTaken())
925     return false;
926   // Only safe to do if this function may be discarded if it is not used
927   // in the compilation unit.
928   if (!GlobalValue::isDiscardableIfUnused(F.getLinkage()))
929     return false;
930 
931   // For AvailableExternallyLinkage functions.
932   if (!F.hasComdat()) {
933     assert(F.getLinkage() == GlobalValue::AvailableExternallyLinkage);
934     return true;
935   }
936   return true;
937 }
938 
939 } // end namespace llvm
940