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