1 //===- SampleProfReader.cpp - Read LLVM sample profile data ---------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements the class that reads LLVM sample profiles. It 10 // supports three file formats: text, binary and gcov. 11 // 12 // The textual representation is useful for debugging and testing purposes. The 13 // binary representation is more compact, resulting in smaller file sizes. 14 // 15 // The gcov encoding is the one generated by GCC's AutoFDO profile creation 16 // tool (https://github.com/google/autofdo) 17 // 18 // All three encodings can be used interchangeably as an input sample profile. 19 // 20 //===----------------------------------------------------------------------===// 21 22 #include "llvm/ProfileData/SampleProfReader.h" 23 #include "llvm/ADT/DenseMap.h" 24 #include "llvm/ADT/STLExtras.h" 25 #include "llvm/ADT/StringRef.h" 26 #include "llvm/IR/ProfileSummary.h" 27 #include "llvm/ProfileData/ProfileCommon.h" 28 #include "llvm/ProfileData/SampleProf.h" 29 #include "llvm/Support/Compression.h" 30 #include "llvm/Support/ErrorOr.h" 31 #include "llvm/Support/LEB128.h" 32 #include "llvm/Support/LineIterator.h" 33 #include "llvm/Support/MD5.h" 34 #include "llvm/Support/MemoryBuffer.h" 35 #include "llvm/Support/raw_ostream.h" 36 #include <algorithm> 37 #include <cstddef> 38 #include <cstdint> 39 #include <limits> 40 #include <memory> 41 #include <system_error> 42 #include <vector> 43 44 using namespace llvm; 45 using namespace sampleprof; 46 47 /// Dump the function profile for \p FName. 48 /// 49 /// \param FName Name of the function to print. 50 /// \param OS Stream to emit the output to. 51 void SampleProfileReader::dumpFunctionProfile(StringRef FName, 52 raw_ostream &OS) { 53 OS << "Function: " << FName << ": " << Profiles[FName]; 54 } 55 56 /// Dump all the function profiles found on stream \p OS. 57 void SampleProfileReader::dump(raw_ostream &OS) { 58 for (const auto &I : Profiles) 59 dumpFunctionProfile(I.getKey(), OS); 60 } 61 62 /// Parse \p Input as function head. 63 /// 64 /// Parse one line of \p Input, and update function name in \p FName, 65 /// function's total sample count in \p NumSamples, function's entry 66 /// count in \p NumHeadSamples. 67 /// 68 /// \returns true if parsing is successful. 69 static bool ParseHead(const StringRef &Input, StringRef &FName, 70 uint64_t &NumSamples, uint64_t &NumHeadSamples) { 71 if (Input[0] == ' ') 72 return false; 73 size_t n2 = Input.rfind(':'); 74 size_t n1 = Input.rfind(':', n2 - 1); 75 FName = Input.substr(0, n1); 76 if (Input.substr(n1 + 1, n2 - n1 - 1).getAsInteger(10, NumSamples)) 77 return false; 78 if (Input.substr(n2 + 1).getAsInteger(10, NumHeadSamples)) 79 return false; 80 return true; 81 } 82 83 /// Returns true if line offset \p L is legal (only has 16 bits). 84 static bool isOffsetLegal(unsigned L) { return (L & 0xffff) == L; } 85 86 /// Parse \p Input as line sample. 87 /// 88 /// \param Input input line. 89 /// \param IsCallsite true if the line represents an inlined callsite. 90 /// \param Depth the depth of the inline stack. 91 /// \param NumSamples total samples of the line/inlined callsite. 92 /// \param LineOffset line offset to the start of the function. 93 /// \param Discriminator discriminator of the line. 94 /// \param TargetCountMap map from indirect call target to count. 95 /// 96 /// returns true if parsing is successful. 97 static bool ParseLine(const StringRef &Input, bool &IsCallsite, uint32_t &Depth, 98 uint64_t &NumSamples, uint32_t &LineOffset, 99 uint32_t &Discriminator, StringRef &CalleeName, 100 DenseMap<StringRef, uint64_t> &TargetCountMap) { 101 for (Depth = 0; Input[Depth] == ' '; Depth++) 102 ; 103 if (Depth == 0) 104 return false; 105 106 size_t n1 = Input.find(':'); 107 StringRef Loc = Input.substr(Depth, n1 - Depth); 108 size_t n2 = Loc.find('.'); 109 if (n2 == StringRef::npos) { 110 if (Loc.getAsInteger(10, LineOffset) || !isOffsetLegal(LineOffset)) 111 return false; 112 Discriminator = 0; 113 } else { 114 if (Loc.substr(0, n2).getAsInteger(10, LineOffset)) 115 return false; 116 if (Loc.substr(n2 + 1).getAsInteger(10, Discriminator)) 117 return false; 118 } 119 120 StringRef Rest = Input.substr(n1 + 2); 121 if (Rest[0] >= '0' && Rest[0] <= '9') { 122 IsCallsite = false; 123 size_t n3 = Rest.find(' '); 124 if (n3 == StringRef::npos) { 125 if (Rest.getAsInteger(10, NumSamples)) 126 return false; 127 } else { 128 if (Rest.substr(0, n3).getAsInteger(10, NumSamples)) 129 return false; 130 } 131 // Find call targets and their sample counts. 132 // Note: In some cases, there are symbols in the profile which are not 133 // mangled. To accommodate such cases, use colon + integer pairs as the 134 // anchor points. 135 // An example: 136 // _M_construct<char *>:1000 string_view<std::allocator<char> >:437 137 // ":1000" and ":437" are used as anchor points so the string above will 138 // be interpreted as 139 // target: _M_construct<char *> 140 // count: 1000 141 // target: string_view<std::allocator<char> > 142 // count: 437 143 while (n3 != StringRef::npos) { 144 n3 += Rest.substr(n3).find_first_not_of(' '); 145 Rest = Rest.substr(n3); 146 n3 = Rest.find_first_of(':'); 147 if (n3 == StringRef::npos || n3 == 0) 148 return false; 149 150 StringRef Target; 151 uint64_t count, n4; 152 while (true) { 153 // Get the segment after the current colon. 154 StringRef AfterColon = Rest.substr(n3 + 1); 155 // Get the target symbol before the current colon. 156 Target = Rest.substr(0, n3); 157 // Check if the word after the current colon is an integer. 158 n4 = AfterColon.find_first_of(' '); 159 n4 = (n4 != StringRef::npos) ? n3 + n4 + 1 : Rest.size(); 160 StringRef WordAfterColon = Rest.substr(n3 + 1, n4 - n3 - 1); 161 if (!WordAfterColon.getAsInteger(10, count)) 162 break; 163 164 // Try to find the next colon. 165 uint64_t n5 = AfterColon.find_first_of(':'); 166 if (n5 == StringRef::npos) 167 return false; 168 n3 += n5 + 1; 169 } 170 171 // An anchor point is found. Save the {target, count} pair 172 TargetCountMap[Target] = count; 173 if (n4 == Rest.size()) 174 break; 175 // Change n3 to the next blank space after colon + integer pair. 176 n3 = n4; 177 } 178 } else { 179 IsCallsite = true; 180 size_t n3 = Rest.find_last_of(':'); 181 CalleeName = Rest.substr(0, n3); 182 if (Rest.substr(n3 + 1).getAsInteger(10, NumSamples)) 183 return false; 184 } 185 return true; 186 } 187 188 /// Load samples from a text file. 189 /// 190 /// See the documentation at the top of the file for an explanation of 191 /// the expected format. 192 /// 193 /// \returns true if the file was loaded successfully, false otherwise. 194 std::error_code SampleProfileReaderText::read() { 195 line_iterator LineIt(*Buffer, /*SkipBlanks=*/true, '#'); 196 sampleprof_error Result = sampleprof_error::success; 197 198 InlineCallStack InlineStack; 199 200 for (; !LineIt.is_at_eof(); ++LineIt) { 201 if ((*LineIt)[(*LineIt).find_first_not_of(' ')] == '#') 202 continue; 203 // Read the header of each function. 204 // 205 // Note that for function identifiers we are actually expecting 206 // mangled names, but we may not always get them. This happens when 207 // the compiler decides not to emit the function (e.g., it was inlined 208 // and removed). In this case, the binary will not have the linkage 209 // name for the function, so the profiler will emit the function's 210 // unmangled name, which may contain characters like ':' and '>' in its 211 // name (member functions, templates, etc). 212 // 213 // The only requirement we place on the identifier, then, is that it 214 // should not begin with a number. 215 if ((*LineIt)[0] != ' ') { 216 uint64_t NumSamples, NumHeadSamples; 217 StringRef FName; 218 if (!ParseHead(*LineIt, FName, NumSamples, NumHeadSamples)) { 219 reportError(LineIt.line_number(), 220 "Expected 'mangled_name:NUM:NUM', found " + *LineIt); 221 return sampleprof_error::malformed; 222 } 223 Profiles[FName] = FunctionSamples(); 224 FunctionSamples &FProfile = Profiles[FName]; 225 FProfile.setName(FName); 226 MergeResult(Result, FProfile.addTotalSamples(NumSamples)); 227 MergeResult(Result, FProfile.addHeadSamples(NumHeadSamples)); 228 InlineStack.clear(); 229 InlineStack.push_back(&FProfile); 230 } else { 231 uint64_t NumSamples; 232 StringRef FName; 233 DenseMap<StringRef, uint64_t> TargetCountMap; 234 bool IsCallsite; 235 uint32_t Depth, LineOffset, Discriminator; 236 if (!ParseLine(*LineIt, IsCallsite, Depth, NumSamples, LineOffset, 237 Discriminator, FName, TargetCountMap)) { 238 reportError(LineIt.line_number(), 239 "Expected 'NUM[.NUM]: NUM[ mangled_name:NUM]*', found " + 240 *LineIt); 241 return sampleprof_error::malformed; 242 } 243 if (IsCallsite) { 244 while (InlineStack.size() > Depth) { 245 InlineStack.pop_back(); 246 } 247 FunctionSamples &FSamples = InlineStack.back()->functionSamplesAt( 248 LineLocation(LineOffset, Discriminator))[FName]; 249 FSamples.setName(FName); 250 MergeResult(Result, FSamples.addTotalSamples(NumSamples)); 251 InlineStack.push_back(&FSamples); 252 } else { 253 while (InlineStack.size() > Depth) { 254 InlineStack.pop_back(); 255 } 256 FunctionSamples &FProfile = *InlineStack.back(); 257 for (const auto &name_count : TargetCountMap) { 258 MergeResult(Result, FProfile.addCalledTargetSamples( 259 LineOffset, Discriminator, name_count.first, 260 name_count.second)); 261 } 262 MergeResult(Result, FProfile.addBodySamples(LineOffset, Discriminator, 263 NumSamples)); 264 } 265 } 266 } 267 if (Result == sampleprof_error::success) 268 computeSummary(); 269 270 return Result; 271 } 272 273 bool SampleProfileReaderText::hasFormat(const MemoryBuffer &Buffer) { 274 bool result = false; 275 276 // Check that the first non-comment line is a valid function header. 277 line_iterator LineIt(Buffer, /*SkipBlanks=*/true, '#'); 278 if (!LineIt.is_at_eof()) { 279 if ((*LineIt)[0] != ' ') { 280 uint64_t NumSamples, NumHeadSamples; 281 StringRef FName; 282 result = ParseHead(*LineIt, FName, NumSamples, NumHeadSamples); 283 } 284 } 285 286 return result; 287 } 288 289 template <typename T> ErrorOr<T> SampleProfileReaderBinary::readNumber() { 290 unsigned NumBytesRead = 0; 291 std::error_code EC; 292 uint64_t Val = decodeULEB128(Data, &NumBytesRead); 293 294 if (Val > std::numeric_limits<T>::max()) 295 EC = sampleprof_error::malformed; 296 else if (Data + NumBytesRead > End) 297 EC = sampleprof_error::truncated; 298 else 299 EC = sampleprof_error::success; 300 301 if (EC) { 302 reportError(0, EC.message()); 303 return EC; 304 } 305 306 Data += NumBytesRead; 307 return static_cast<T>(Val); 308 } 309 310 ErrorOr<StringRef> SampleProfileReaderBinary::readString() { 311 std::error_code EC; 312 StringRef Str(reinterpret_cast<const char *>(Data)); 313 if (Data + Str.size() + 1 > End) { 314 EC = sampleprof_error::truncated; 315 reportError(0, EC.message()); 316 return EC; 317 } 318 319 Data += Str.size() + 1; 320 return Str; 321 } 322 323 template <typename T> 324 ErrorOr<T> SampleProfileReaderBinary::readUnencodedNumber() { 325 std::error_code EC; 326 327 if (Data + sizeof(T) > End) { 328 EC = sampleprof_error::truncated; 329 reportError(0, EC.message()); 330 return EC; 331 } 332 333 using namespace support; 334 T Val = endian::readNext<T, little, unaligned>(Data); 335 return Val; 336 } 337 338 template <typename T> 339 inline ErrorOr<uint32_t> SampleProfileReaderBinary::readStringIndex(T &Table) { 340 std::error_code EC; 341 auto Idx = readNumber<uint32_t>(); 342 if (std::error_code EC = Idx.getError()) 343 return EC; 344 if (*Idx >= Table.size()) 345 return sampleprof_error::truncated_name_table; 346 return *Idx; 347 } 348 349 ErrorOr<StringRef> SampleProfileReaderBinary::readStringFromTable() { 350 auto Idx = readStringIndex(NameTable); 351 if (std::error_code EC = Idx.getError()) 352 return EC; 353 354 return NameTable[*Idx]; 355 } 356 357 ErrorOr<StringRef> SampleProfileReaderCompactBinary::readStringFromTable() { 358 auto Idx = readStringIndex(NameTable); 359 if (std::error_code EC = Idx.getError()) 360 return EC; 361 362 return StringRef(NameTable[*Idx]); 363 } 364 365 std::error_code 366 SampleProfileReaderBinary::readProfile(FunctionSamples &FProfile) { 367 auto NumSamples = readNumber<uint64_t>(); 368 if (std::error_code EC = NumSamples.getError()) 369 return EC; 370 FProfile.addTotalSamples(*NumSamples); 371 372 // Read the samples in the body. 373 auto NumRecords = readNumber<uint32_t>(); 374 if (std::error_code EC = NumRecords.getError()) 375 return EC; 376 377 for (uint32_t I = 0; I < *NumRecords; ++I) { 378 auto LineOffset = readNumber<uint64_t>(); 379 if (std::error_code EC = LineOffset.getError()) 380 return EC; 381 382 if (!isOffsetLegal(*LineOffset)) { 383 return std::error_code(); 384 } 385 386 auto Discriminator = readNumber<uint64_t>(); 387 if (std::error_code EC = Discriminator.getError()) 388 return EC; 389 390 auto NumSamples = readNumber<uint64_t>(); 391 if (std::error_code EC = NumSamples.getError()) 392 return EC; 393 394 auto NumCalls = readNumber<uint32_t>(); 395 if (std::error_code EC = NumCalls.getError()) 396 return EC; 397 398 for (uint32_t J = 0; J < *NumCalls; ++J) { 399 auto CalledFunction(readStringFromTable()); 400 if (std::error_code EC = CalledFunction.getError()) 401 return EC; 402 403 auto CalledFunctionSamples = readNumber<uint64_t>(); 404 if (std::error_code EC = CalledFunctionSamples.getError()) 405 return EC; 406 407 FProfile.addCalledTargetSamples(*LineOffset, *Discriminator, 408 *CalledFunction, *CalledFunctionSamples); 409 } 410 411 FProfile.addBodySamples(*LineOffset, *Discriminator, *NumSamples); 412 } 413 414 // Read all the samples for inlined function calls. 415 auto NumCallsites = readNumber<uint32_t>(); 416 if (std::error_code EC = NumCallsites.getError()) 417 return EC; 418 419 for (uint32_t J = 0; J < *NumCallsites; ++J) { 420 auto LineOffset = readNumber<uint64_t>(); 421 if (std::error_code EC = LineOffset.getError()) 422 return EC; 423 424 auto Discriminator = readNumber<uint64_t>(); 425 if (std::error_code EC = Discriminator.getError()) 426 return EC; 427 428 auto FName(readStringFromTable()); 429 if (std::error_code EC = FName.getError()) 430 return EC; 431 432 FunctionSamples &CalleeProfile = FProfile.functionSamplesAt( 433 LineLocation(*LineOffset, *Discriminator))[*FName]; 434 CalleeProfile.setName(*FName); 435 if (std::error_code EC = readProfile(CalleeProfile)) 436 return EC; 437 } 438 439 return sampleprof_error::success; 440 } 441 442 std::error_code SampleProfileReaderBinary::readFuncProfile() { 443 auto NumHeadSamples = readNumber<uint64_t>(); 444 if (std::error_code EC = NumHeadSamples.getError()) 445 return EC; 446 447 auto FName(readStringFromTable()); 448 if (std::error_code EC = FName.getError()) 449 return EC; 450 451 Profiles[*FName] = FunctionSamples(); 452 FunctionSamples &FProfile = Profiles[*FName]; 453 FProfile.setName(*FName); 454 455 FProfile.addHeadSamples(*NumHeadSamples); 456 457 if (std::error_code EC = readProfile(FProfile)) 458 return EC; 459 return sampleprof_error::success; 460 } 461 462 std::error_code SampleProfileReaderBinary::read() { 463 while (!at_eof()) { 464 if (std::error_code EC = readFuncProfile()) 465 return EC; 466 } 467 468 return sampleprof_error::success; 469 } 470 471 std::error_code 472 SampleProfileReaderExtBinary::readOneSection(const uint8_t *Start, 473 uint64_t Size, SecType Type) { 474 Data = Start; 475 End = Start + Size; 476 switch (Type) { 477 case SecProfSummary: 478 if (std::error_code EC = readSummary()) 479 return EC; 480 break; 481 case SecNameTable: 482 if (std::error_code EC = readNameTable()) 483 return EC; 484 break; 485 case SecLBRProfile: 486 while (Data < Start + Size) { 487 if (std::error_code EC = readFuncProfile()) 488 return EC; 489 } 490 break; 491 case SecProfileSymbolList: 492 if (std::error_code EC = readProfileSymbolList(Size)) 493 return EC; 494 break; 495 default: 496 break; 497 } 498 return sampleprof_error::success; 499 } 500 501 std::error_code 502 SampleProfileReaderExtBinary::readProfileSymbolList(uint64_t Size) { 503 if (!ProfSymList) 504 ProfSymList = std::make_unique<ProfileSymbolList>(); 505 506 if (std::error_code EC = ProfSymList->read(Data, Size)) 507 return EC; 508 509 Data = Data + Size; 510 return sampleprof_error::success; 511 } 512 513 std::error_code SampleProfileReaderExtBinaryBase::decompressSection( 514 const uint8_t *SecStart, const uint64_t SecSize, 515 const uint8_t *&DecompressBuf, uint64_t &DecompressBufSize) { 516 Data = SecStart; 517 End = SecStart + SecSize; 518 auto DecompressSize = readNumber<uint64_t>(); 519 if (std::error_code EC = DecompressSize.getError()) 520 return EC; 521 DecompressBufSize = *DecompressSize; 522 523 auto CompressSize = readNumber<uint64_t>(); 524 if (std::error_code EC = CompressSize.getError()) 525 return EC; 526 527 if (!llvm::zlib::isAvailable()) 528 return sampleprof_error::zlib_unavailable; 529 530 StringRef CompressedStrings(reinterpret_cast<const char *>(Data), 531 *CompressSize); 532 char *Buffer = Allocator.Allocate<char>(DecompressBufSize); 533 size_t UCSize = DecompressBufSize; 534 llvm::Error E = 535 zlib::uncompress(CompressedStrings, Buffer, UCSize); 536 if (E) 537 return sampleprof_error::uncompress_failed; 538 DecompressBuf = reinterpret_cast<const uint8_t *>(Buffer); 539 return sampleprof_error::success; 540 } 541 542 std::error_code SampleProfileReaderExtBinaryBase::read() { 543 const uint8_t *BufStart = 544 reinterpret_cast<const uint8_t *>(Buffer->getBufferStart()); 545 546 for (auto &Entry : SecHdrTable) { 547 // Skip empty section. 548 if (!Entry.Size) 549 continue; 550 551 const uint8_t *SecStart = BufStart + Entry.Offset; 552 uint64_t SecSize = Entry.Size; 553 554 // If the section is compressed, decompress it into a buffer 555 // DecompressBuf before reading the actual data. The pointee of 556 // 'Data' will be changed to buffer hold by DecompressBuf 557 // temporarily when reading the actual data. 558 bool isCompressed = hasSecFlag(Entry, SecFlagCompress); 559 if (isCompressed) { 560 const uint8_t *DecompressBuf; 561 uint64_t DecompressBufSize; 562 if (std::error_code EC = decompressSection( 563 SecStart, SecSize, DecompressBuf, DecompressBufSize)) 564 return EC; 565 SecStart = DecompressBuf; 566 SecSize = DecompressBufSize; 567 } 568 569 if (std::error_code EC = readOneSection(SecStart, SecSize, Entry.Type)) 570 return EC; 571 if (Data != SecStart + SecSize) 572 return sampleprof_error::malformed; 573 574 // Change the pointee of 'Data' from DecompressBuf to original Buffer. 575 if (isCompressed) { 576 Data = BufStart + Entry.Offset; 577 End = BufStart + Buffer->getBufferSize(); 578 } 579 } 580 581 return sampleprof_error::success; 582 } 583 584 std::error_code SampleProfileReaderCompactBinary::read() { 585 std::vector<uint64_t> OffsetsToUse; 586 if (UseAllFuncs) { 587 for (auto FuncEntry : FuncOffsetTable) { 588 OffsetsToUse.push_back(FuncEntry.second); 589 } 590 } 591 else { 592 for (auto Name : FuncsToUse) { 593 auto GUID = std::to_string(MD5Hash(Name)); 594 auto iter = FuncOffsetTable.find(StringRef(GUID)); 595 if (iter == FuncOffsetTable.end()) 596 continue; 597 OffsetsToUse.push_back(iter->second); 598 } 599 } 600 601 for (auto Offset : OffsetsToUse) { 602 const uint8_t *SavedData = Data; 603 Data = reinterpret_cast<const uint8_t *>(Buffer->getBufferStart()) + 604 Offset; 605 if (std::error_code EC = readFuncProfile()) 606 return EC; 607 Data = SavedData; 608 } 609 return sampleprof_error::success; 610 } 611 612 std::error_code SampleProfileReaderRawBinary::verifySPMagic(uint64_t Magic) { 613 if (Magic == SPMagic()) 614 return sampleprof_error::success; 615 return sampleprof_error::bad_magic; 616 } 617 618 std::error_code SampleProfileReaderExtBinary::verifySPMagic(uint64_t Magic) { 619 if (Magic == SPMagic(SPF_Ext_Binary)) 620 return sampleprof_error::success; 621 return sampleprof_error::bad_magic; 622 } 623 624 std::error_code 625 SampleProfileReaderCompactBinary::verifySPMagic(uint64_t Magic) { 626 if (Magic == SPMagic(SPF_Compact_Binary)) 627 return sampleprof_error::success; 628 return sampleprof_error::bad_magic; 629 } 630 631 std::error_code SampleProfileReaderBinary::readNameTable() { 632 auto Size = readNumber<uint32_t>(); 633 if (std::error_code EC = Size.getError()) 634 return EC; 635 NameTable.reserve(*Size); 636 for (uint32_t I = 0; I < *Size; ++I) { 637 auto Name(readString()); 638 if (std::error_code EC = Name.getError()) 639 return EC; 640 NameTable.push_back(*Name); 641 } 642 643 return sampleprof_error::success; 644 } 645 646 std::error_code SampleProfileReaderCompactBinary::readNameTable() { 647 auto Size = readNumber<uint64_t>(); 648 if (std::error_code EC = Size.getError()) 649 return EC; 650 NameTable.reserve(*Size); 651 for (uint32_t I = 0; I < *Size; ++I) { 652 auto FID = readNumber<uint64_t>(); 653 if (std::error_code EC = FID.getError()) 654 return EC; 655 NameTable.push_back(std::to_string(*FID)); 656 } 657 return sampleprof_error::success; 658 } 659 660 std::error_code SampleProfileReaderExtBinaryBase::readSecHdrTableEntry() { 661 SecHdrTableEntry Entry; 662 auto Type = readUnencodedNumber<uint64_t>(); 663 if (std::error_code EC = Type.getError()) 664 return EC; 665 Entry.Type = static_cast<SecType>(*Type); 666 667 auto Flags = readUnencodedNumber<uint64_t>(); 668 if (std::error_code EC = Flags.getError()) 669 return EC; 670 Entry.Flags = *Flags; 671 672 auto Offset = readUnencodedNumber<uint64_t>(); 673 if (std::error_code EC = Offset.getError()) 674 return EC; 675 Entry.Offset = *Offset; 676 677 auto Size = readUnencodedNumber<uint64_t>(); 678 if (std::error_code EC = Size.getError()) 679 return EC; 680 Entry.Size = *Size; 681 682 SecHdrTable.push_back(std::move(Entry)); 683 return sampleprof_error::success; 684 } 685 686 std::error_code SampleProfileReaderExtBinaryBase::readSecHdrTable() { 687 auto EntryNum = readUnencodedNumber<uint64_t>(); 688 if (std::error_code EC = EntryNum.getError()) 689 return EC; 690 691 for (uint32_t i = 0; i < (*EntryNum); i++) 692 if (std::error_code EC = readSecHdrTableEntry()) 693 return EC; 694 695 return sampleprof_error::success; 696 } 697 698 std::error_code SampleProfileReaderExtBinaryBase::readHeader() { 699 const uint8_t *BufStart = 700 reinterpret_cast<const uint8_t *>(Buffer->getBufferStart()); 701 Data = BufStart; 702 End = BufStart + Buffer->getBufferSize(); 703 704 if (std::error_code EC = readMagicIdent()) 705 return EC; 706 707 if (std::error_code EC = readSecHdrTable()) 708 return EC; 709 710 return sampleprof_error::success; 711 } 712 713 uint64_t SampleProfileReaderExtBinaryBase::getSectionSize(SecType Type) { 714 for (auto &Entry : SecHdrTable) { 715 if (Entry.Type == Type) 716 return Entry.Size; 717 } 718 return 0; 719 } 720 721 uint64_t SampleProfileReaderExtBinaryBase::getFileSize() { 722 auto &LastEntry = SecHdrTable.back(); 723 return LastEntry.Offset + LastEntry.Size; 724 } 725 726 bool SampleProfileReaderExtBinaryBase::dumpSectionInfo(raw_ostream &OS) { 727 uint64_t TotalSecsSize = 0; 728 for (auto &Entry : SecHdrTable) { 729 OS << getSecName(Entry.Type) << " - Offset: " << Entry.Offset 730 << ", Size: " << Entry.Size << "\n"; 731 TotalSecsSize += getSectionSize(Entry.Type); 732 } 733 uint64_t HeaderSize = SecHdrTable.front().Offset; 734 assert(HeaderSize + TotalSecsSize == getFileSize() && 735 "Size of 'header + sections' doesn't match the total size of profile"); 736 737 OS << "Header Size: " << HeaderSize << "\n"; 738 OS << "Total Sections Size: " << TotalSecsSize << "\n"; 739 OS << "File Size: " << getFileSize() << "\n"; 740 return true; 741 } 742 743 std::error_code SampleProfileReaderBinary::readMagicIdent() { 744 // Read and check the magic identifier. 745 auto Magic = readNumber<uint64_t>(); 746 if (std::error_code EC = Magic.getError()) 747 return EC; 748 else if (std::error_code EC = verifySPMagic(*Magic)) 749 return EC; 750 751 // Read the version number. 752 auto Version = readNumber<uint64_t>(); 753 if (std::error_code EC = Version.getError()) 754 return EC; 755 else if (*Version != SPVersion()) 756 return sampleprof_error::unsupported_version; 757 758 return sampleprof_error::success; 759 } 760 761 std::error_code SampleProfileReaderBinary::readHeader() { 762 Data = reinterpret_cast<const uint8_t *>(Buffer->getBufferStart()); 763 End = Data + Buffer->getBufferSize(); 764 765 if (std::error_code EC = readMagicIdent()) 766 return EC; 767 768 if (std::error_code EC = readSummary()) 769 return EC; 770 771 if (std::error_code EC = readNameTable()) 772 return EC; 773 return sampleprof_error::success; 774 } 775 776 std::error_code SampleProfileReaderCompactBinary::readHeader() { 777 SampleProfileReaderBinary::readHeader(); 778 if (std::error_code EC = readFuncOffsetTable()) 779 return EC; 780 return sampleprof_error::success; 781 } 782 783 std::error_code SampleProfileReaderCompactBinary::readFuncOffsetTable() { 784 auto TableOffset = readUnencodedNumber<uint64_t>(); 785 if (std::error_code EC = TableOffset.getError()) 786 return EC; 787 788 const uint8_t *SavedData = Data; 789 const uint8_t *TableStart = 790 reinterpret_cast<const uint8_t *>(Buffer->getBufferStart()) + 791 *TableOffset; 792 Data = TableStart; 793 794 auto Size = readNumber<uint64_t>(); 795 if (std::error_code EC = Size.getError()) 796 return EC; 797 798 FuncOffsetTable.reserve(*Size); 799 for (uint32_t I = 0; I < *Size; ++I) { 800 auto FName(readStringFromTable()); 801 if (std::error_code EC = FName.getError()) 802 return EC; 803 804 auto Offset = readNumber<uint64_t>(); 805 if (std::error_code EC = Offset.getError()) 806 return EC; 807 808 FuncOffsetTable[*FName] = *Offset; 809 } 810 End = TableStart; 811 Data = SavedData; 812 return sampleprof_error::success; 813 } 814 815 void SampleProfileReaderCompactBinary::collectFuncsToUse(const Module &M) { 816 UseAllFuncs = false; 817 FuncsToUse.clear(); 818 for (auto &F : M) { 819 StringRef CanonName = FunctionSamples::getCanonicalFnName(F); 820 FuncsToUse.insert(CanonName); 821 } 822 } 823 824 std::error_code SampleProfileReaderBinary::readSummaryEntry( 825 std::vector<ProfileSummaryEntry> &Entries) { 826 auto Cutoff = readNumber<uint64_t>(); 827 if (std::error_code EC = Cutoff.getError()) 828 return EC; 829 830 auto MinBlockCount = readNumber<uint64_t>(); 831 if (std::error_code EC = MinBlockCount.getError()) 832 return EC; 833 834 auto NumBlocks = readNumber<uint64_t>(); 835 if (std::error_code EC = NumBlocks.getError()) 836 return EC; 837 838 Entries.emplace_back(*Cutoff, *MinBlockCount, *NumBlocks); 839 return sampleprof_error::success; 840 } 841 842 std::error_code SampleProfileReaderBinary::readSummary() { 843 auto TotalCount = readNumber<uint64_t>(); 844 if (std::error_code EC = TotalCount.getError()) 845 return EC; 846 847 auto MaxBlockCount = readNumber<uint64_t>(); 848 if (std::error_code EC = MaxBlockCount.getError()) 849 return EC; 850 851 auto MaxFunctionCount = readNumber<uint64_t>(); 852 if (std::error_code EC = MaxFunctionCount.getError()) 853 return EC; 854 855 auto NumBlocks = readNumber<uint64_t>(); 856 if (std::error_code EC = NumBlocks.getError()) 857 return EC; 858 859 auto NumFunctions = readNumber<uint64_t>(); 860 if (std::error_code EC = NumFunctions.getError()) 861 return EC; 862 863 auto NumSummaryEntries = readNumber<uint64_t>(); 864 if (std::error_code EC = NumSummaryEntries.getError()) 865 return EC; 866 867 std::vector<ProfileSummaryEntry> Entries; 868 for (unsigned i = 0; i < *NumSummaryEntries; i++) { 869 std::error_code EC = readSummaryEntry(Entries); 870 if (EC != sampleprof_error::success) 871 return EC; 872 } 873 Summary = std::make_unique<ProfileSummary>( 874 ProfileSummary::PSK_Sample, Entries, *TotalCount, *MaxBlockCount, 0, 875 *MaxFunctionCount, *NumBlocks, *NumFunctions); 876 877 return sampleprof_error::success; 878 } 879 880 bool SampleProfileReaderRawBinary::hasFormat(const MemoryBuffer &Buffer) { 881 const uint8_t *Data = 882 reinterpret_cast<const uint8_t *>(Buffer.getBufferStart()); 883 uint64_t Magic = decodeULEB128(Data); 884 return Magic == SPMagic(); 885 } 886 887 bool SampleProfileReaderExtBinary::hasFormat(const MemoryBuffer &Buffer) { 888 const uint8_t *Data = 889 reinterpret_cast<const uint8_t *>(Buffer.getBufferStart()); 890 uint64_t Magic = decodeULEB128(Data); 891 return Magic == SPMagic(SPF_Ext_Binary); 892 } 893 894 bool SampleProfileReaderCompactBinary::hasFormat(const MemoryBuffer &Buffer) { 895 const uint8_t *Data = 896 reinterpret_cast<const uint8_t *>(Buffer.getBufferStart()); 897 uint64_t Magic = decodeULEB128(Data); 898 return Magic == SPMagic(SPF_Compact_Binary); 899 } 900 901 std::error_code SampleProfileReaderGCC::skipNextWord() { 902 uint32_t dummy; 903 if (!GcovBuffer.readInt(dummy)) 904 return sampleprof_error::truncated; 905 return sampleprof_error::success; 906 } 907 908 template <typename T> ErrorOr<T> SampleProfileReaderGCC::readNumber() { 909 if (sizeof(T) <= sizeof(uint32_t)) { 910 uint32_t Val; 911 if (GcovBuffer.readInt(Val) && Val <= std::numeric_limits<T>::max()) 912 return static_cast<T>(Val); 913 } else if (sizeof(T) <= sizeof(uint64_t)) { 914 uint64_t Val; 915 if (GcovBuffer.readInt64(Val) && Val <= std::numeric_limits<T>::max()) 916 return static_cast<T>(Val); 917 } 918 919 std::error_code EC = sampleprof_error::malformed; 920 reportError(0, EC.message()); 921 return EC; 922 } 923 924 ErrorOr<StringRef> SampleProfileReaderGCC::readString() { 925 StringRef Str; 926 if (!GcovBuffer.readString(Str)) 927 return sampleprof_error::truncated; 928 return Str; 929 } 930 931 std::error_code SampleProfileReaderGCC::readHeader() { 932 // Read the magic identifier. 933 if (!GcovBuffer.readGCDAFormat()) 934 return sampleprof_error::unrecognized_format; 935 936 // Read the version number. Note - the GCC reader does not validate this 937 // version, but the profile creator generates v704. 938 GCOV::GCOVVersion version; 939 if (!GcovBuffer.readGCOVVersion(version)) 940 return sampleprof_error::unrecognized_format; 941 942 if (version != GCOV::V704) 943 return sampleprof_error::unsupported_version; 944 945 // Skip the empty integer. 946 if (std::error_code EC = skipNextWord()) 947 return EC; 948 949 return sampleprof_error::success; 950 } 951 952 std::error_code SampleProfileReaderGCC::readSectionTag(uint32_t Expected) { 953 uint32_t Tag; 954 if (!GcovBuffer.readInt(Tag)) 955 return sampleprof_error::truncated; 956 957 if (Tag != Expected) 958 return sampleprof_error::malformed; 959 960 if (std::error_code EC = skipNextWord()) 961 return EC; 962 963 return sampleprof_error::success; 964 } 965 966 std::error_code SampleProfileReaderGCC::readNameTable() { 967 if (std::error_code EC = readSectionTag(GCOVTagAFDOFileNames)) 968 return EC; 969 970 uint32_t Size; 971 if (!GcovBuffer.readInt(Size)) 972 return sampleprof_error::truncated; 973 974 for (uint32_t I = 0; I < Size; ++I) { 975 StringRef Str; 976 if (!GcovBuffer.readString(Str)) 977 return sampleprof_error::truncated; 978 Names.push_back(Str); 979 } 980 981 return sampleprof_error::success; 982 } 983 984 std::error_code SampleProfileReaderGCC::readFunctionProfiles() { 985 if (std::error_code EC = readSectionTag(GCOVTagAFDOFunction)) 986 return EC; 987 988 uint32_t NumFunctions; 989 if (!GcovBuffer.readInt(NumFunctions)) 990 return sampleprof_error::truncated; 991 992 InlineCallStack Stack; 993 for (uint32_t I = 0; I < NumFunctions; ++I) 994 if (std::error_code EC = readOneFunctionProfile(Stack, true, 0)) 995 return EC; 996 997 computeSummary(); 998 return sampleprof_error::success; 999 } 1000 1001 std::error_code SampleProfileReaderGCC::readOneFunctionProfile( 1002 const InlineCallStack &InlineStack, bool Update, uint32_t Offset) { 1003 uint64_t HeadCount = 0; 1004 if (InlineStack.size() == 0) 1005 if (!GcovBuffer.readInt64(HeadCount)) 1006 return sampleprof_error::truncated; 1007 1008 uint32_t NameIdx; 1009 if (!GcovBuffer.readInt(NameIdx)) 1010 return sampleprof_error::truncated; 1011 1012 StringRef Name(Names[NameIdx]); 1013 1014 uint32_t NumPosCounts; 1015 if (!GcovBuffer.readInt(NumPosCounts)) 1016 return sampleprof_error::truncated; 1017 1018 uint32_t NumCallsites; 1019 if (!GcovBuffer.readInt(NumCallsites)) 1020 return sampleprof_error::truncated; 1021 1022 FunctionSamples *FProfile = nullptr; 1023 if (InlineStack.size() == 0) { 1024 // If this is a top function that we have already processed, do not 1025 // update its profile again. This happens in the presence of 1026 // function aliases. Since these aliases share the same function 1027 // body, there will be identical replicated profiles for the 1028 // original function. In this case, we simply not bother updating 1029 // the profile of the original function. 1030 FProfile = &Profiles[Name]; 1031 FProfile->addHeadSamples(HeadCount); 1032 if (FProfile->getTotalSamples() > 0) 1033 Update = false; 1034 } else { 1035 // Otherwise, we are reading an inlined instance. The top of the 1036 // inline stack contains the profile of the caller. Insert this 1037 // callee in the caller's CallsiteMap. 1038 FunctionSamples *CallerProfile = InlineStack.front(); 1039 uint32_t LineOffset = Offset >> 16; 1040 uint32_t Discriminator = Offset & 0xffff; 1041 FProfile = &CallerProfile->functionSamplesAt( 1042 LineLocation(LineOffset, Discriminator))[Name]; 1043 } 1044 FProfile->setName(Name); 1045 1046 for (uint32_t I = 0; I < NumPosCounts; ++I) { 1047 uint32_t Offset; 1048 if (!GcovBuffer.readInt(Offset)) 1049 return sampleprof_error::truncated; 1050 1051 uint32_t NumTargets; 1052 if (!GcovBuffer.readInt(NumTargets)) 1053 return sampleprof_error::truncated; 1054 1055 uint64_t Count; 1056 if (!GcovBuffer.readInt64(Count)) 1057 return sampleprof_error::truncated; 1058 1059 // The line location is encoded in the offset as: 1060 // high 16 bits: line offset to the start of the function. 1061 // low 16 bits: discriminator. 1062 uint32_t LineOffset = Offset >> 16; 1063 uint32_t Discriminator = Offset & 0xffff; 1064 1065 InlineCallStack NewStack; 1066 NewStack.push_back(FProfile); 1067 NewStack.insert(NewStack.end(), InlineStack.begin(), InlineStack.end()); 1068 if (Update) { 1069 // Walk up the inline stack, adding the samples on this line to 1070 // the total sample count of the callers in the chain. 1071 for (auto CallerProfile : NewStack) 1072 CallerProfile->addTotalSamples(Count); 1073 1074 // Update the body samples for the current profile. 1075 FProfile->addBodySamples(LineOffset, Discriminator, Count); 1076 } 1077 1078 // Process the list of functions called at an indirect call site. 1079 // These are all the targets that a function pointer (or virtual 1080 // function) resolved at runtime. 1081 for (uint32_t J = 0; J < NumTargets; J++) { 1082 uint32_t HistVal; 1083 if (!GcovBuffer.readInt(HistVal)) 1084 return sampleprof_error::truncated; 1085 1086 if (HistVal != HIST_TYPE_INDIR_CALL_TOPN) 1087 return sampleprof_error::malformed; 1088 1089 uint64_t TargetIdx; 1090 if (!GcovBuffer.readInt64(TargetIdx)) 1091 return sampleprof_error::truncated; 1092 StringRef TargetName(Names[TargetIdx]); 1093 1094 uint64_t TargetCount; 1095 if (!GcovBuffer.readInt64(TargetCount)) 1096 return sampleprof_error::truncated; 1097 1098 if (Update) 1099 FProfile->addCalledTargetSamples(LineOffset, Discriminator, 1100 TargetName, TargetCount); 1101 } 1102 } 1103 1104 // Process all the inlined callers into the current function. These 1105 // are all the callsites that were inlined into this function. 1106 for (uint32_t I = 0; I < NumCallsites; I++) { 1107 // The offset is encoded as: 1108 // high 16 bits: line offset to the start of the function. 1109 // low 16 bits: discriminator. 1110 uint32_t Offset; 1111 if (!GcovBuffer.readInt(Offset)) 1112 return sampleprof_error::truncated; 1113 InlineCallStack NewStack; 1114 NewStack.push_back(FProfile); 1115 NewStack.insert(NewStack.end(), InlineStack.begin(), InlineStack.end()); 1116 if (std::error_code EC = readOneFunctionProfile(NewStack, Update, Offset)) 1117 return EC; 1118 } 1119 1120 return sampleprof_error::success; 1121 } 1122 1123 /// Read a GCC AutoFDO profile. 1124 /// 1125 /// This format is generated by the Linux Perf conversion tool at 1126 /// https://github.com/google/autofdo. 1127 std::error_code SampleProfileReaderGCC::read() { 1128 // Read the string table. 1129 if (std::error_code EC = readNameTable()) 1130 return EC; 1131 1132 // Read the source profile. 1133 if (std::error_code EC = readFunctionProfiles()) 1134 return EC; 1135 1136 return sampleprof_error::success; 1137 } 1138 1139 bool SampleProfileReaderGCC::hasFormat(const MemoryBuffer &Buffer) { 1140 StringRef Magic(reinterpret_cast<const char *>(Buffer.getBufferStart())); 1141 return Magic == "adcg*704"; 1142 } 1143 1144 std::error_code SampleProfileReaderItaniumRemapper::read() { 1145 // If the underlying data is in compact format, we can't remap it because 1146 // we don't know what the original function names were. 1147 if (getFormat() == SPF_Compact_Binary) { 1148 Ctx.diagnose(DiagnosticInfoSampleProfile( 1149 Buffer->getBufferIdentifier(), 1150 "Profile data remapping cannot be applied to profile data " 1151 "in compact format (original mangled names are not available).", 1152 DS_Warning)); 1153 return sampleprof_error::success; 1154 } 1155 1156 if (Error E = Remappings.read(*Buffer)) { 1157 handleAllErrors( 1158 std::move(E), [&](const SymbolRemappingParseError &ParseError) { 1159 reportError(ParseError.getLineNum(), ParseError.getMessage()); 1160 }); 1161 return sampleprof_error::malformed; 1162 } 1163 1164 for (auto &Sample : getProfiles()) 1165 if (auto Key = Remappings.insert(Sample.first())) 1166 SampleMap.insert({Key, &Sample.second}); 1167 1168 return sampleprof_error::success; 1169 } 1170 1171 FunctionSamples * 1172 SampleProfileReaderItaniumRemapper::getSamplesFor(StringRef Fname) { 1173 if (auto Key = Remappings.lookup(Fname)) 1174 return SampleMap.lookup(Key); 1175 return SampleProfileReader::getSamplesFor(Fname); 1176 } 1177 1178 /// Prepare a memory buffer for the contents of \p Filename. 1179 /// 1180 /// \returns an error code indicating the status of the buffer. 1181 static ErrorOr<std::unique_ptr<MemoryBuffer>> 1182 setupMemoryBuffer(const Twine &Filename) { 1183 auto BufferOrErr = MemoryBuffer::getFileOrSTDIN(Filename); 1184 if (std::error_code EC = BufferOrErr.getError()) 1185 return EC; 1186 auto Buffer = std::move(BufferOrErr.get()); 1187 1188 // Sanity check the file. 1189 if (uint64_t(Buffer->getBufferSize()) > std::numeric_limits<uint32_t>::max()) 1190 return sampleprof_error::too_large; 1191 1192 return std::move(Buffer); 1193 } 1194 1195 /// Create a sample profile reader based on the format of the input file. 1196 /// 1197 /// \param Filename The file to open. 1198 /// 1199 /// \param C The LLVM context to use to emit diagnostics. 1200 /// 1201 /// \returns an error code indicating the status of the created reader. 1202 ErrorOr<std::unique_ptr<SampleProfileReader>> 1203 SampleProfileReader::create(const Twine &Filename, LLVMContext &C) { 1204 auto BufferOrError = setupMemoryBuffer(Filename); 1205 if (std::error_code EC = BufferOrError.getError()) 1206 return EC; 1207 return create(BufferOrError.get(), C); 1208 } 1209 1210 /// Create a sample profile remapper from the given input, to remap the 1211 /// function names in the given profile data. 1212 /// 1213 /// \param Filename The file to open. 1214 /// 1215 /// \param C The LLVM context to use to emit diagnostics. 1216 /// 1217 /// \param Underlying The underlying profile data reader to remap. 1218 /// 1219 /// \returns an error code indicating the status of the created reader. 1220 ErrorOr<std::unique_ptr<SampleProfileReader>> 1221 SampleProfileReaderItaniumRemapper::create( 1222 const Twine &Filename, LLVMContext &C, 1223 std::unique_ptr<SampleProfileReader> Underlying) { 1224 auto BufferOrError = setupMemoryBuffer(Filename); 1225 if (std::error_code EC = BufferOrError.getError()) 1226 return EC; 1227 return std::make_unique<SampleProfileReaderItaniumRemapper>( 1228 std::move(BufferOrError.get()), C, std::move(Underlying)); 1229 } 1230 1231 /// Create a sample profile reader based on the format of the input data. 1232 /// 1233 /// \param B The memory buffer to create the reader from (assumes ownership). 1234 /// 1235 /// \param C The LLVM context to use to emit diagnostics. 1236 /// 1237 /// \returns an error code indicating the status of the created reader. 1238 ErrorOr<std::unique_ptr<SampleProfileReader>> 1239 SampleProfileReader::create(std::unique_ptr<MemoryBuffer> &B, LLVMContext &C) { 1240 std::unique_ptr<SampleProfileReader> Reader; 1241 if (SampleProfileReaderRawBinary::hasFormat(*B)) 1242 Reader.reset(new SampleProfileReaderRawBinary(std::move(B), C)); 1243 else if (SampleProfileReaderExtBinary::hasFormat(*B)) 1244 Reader.reset(new SampleProfileReaderExtBinary(std::move(B), C)); 1245 else if (SampleProfileReaderCompactBinary::hasFormat(*B)) 1246 Reader.reset(new SampleProfileReaderCompactBinary(std::move(B), C)); 1247 else if (SampleProfileReaderGCC::hasFormat(*B)) 1248 Reader.reset(new SampleProfileReaderGCC(std::move(B), C)); 1249 else if (SampleProfileReaderText::hasFormat(*B)) 1250 Reader.reset(new SampleProfileReaderText(std::move(B), C)); 1251 else 1252 return sampleprof_error::unrecognized_format; 1253 1254 FunctionSamples::Format = Reader->getFormat(); 1255 if (std::error_code EC = Reader->readHeader()) { 1256 return EC; 1257 } 1258 1259 return std::move(Reader); 1260 } 1261 1262 // For text and GCC file formats, we compute the summary after reading the 1263 // profile. Binary format has the profile summary in its header. 1264 void SampleProfileReader::computeSummary() { 1265 SampleProfileSummaryBuilder Builder(ProfileSummaryBuilder::DefaultCutoffs); 1266 for (const auto &I : Profiles) { 1267 const FunctionSamples &Profile = I.second; 1268 Builder.addRecord(Profile); 1269 } 1270 Summary = Builder.getSummary(); 1271 } 1272