1 //===- DWARFContext.cpp ---------------------------------------------------===// 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 #include "llvm/DebugInfo/DWARF/DWARFContext.h" 10 #include "llvm/ADT/STLExtras.h" 11 #include "llvm/ADT/SmallString.h" 12 #include "llvm/ADT/SmallVector.h" 13 #include "llvm/ADT/StringRef.h" 14 #include "llvm/ADT/StringSwitch.h" 15 #include "llvm/BinaryFormat/Dwarf.h" 16 #include "llvm/DebugInfo/DWARF/DWARFAcceleratorTable.h" 17 #include "llvm/DebugInfo/DWARF/DWARFCompileUnit.h" 18 #include "llvm/DebugInfo/DWARF/DWARFDebugAbbrev.h" 19 #include "llvm/DebugInfo/DWARF/DWARFDebugAddr.h" 20 #include "llvm/DebugInfo/DWARF/DWARFDebugArangeSet.h" 21 #include "llvm/DebugInfo/DWARF/DWARFDebugAranges.h" 22 #include "llvm/DebugInfo/DWARF/DWARFDebugFrame.h" 23 #include "llvm/DebugInfo/DWARF/DWARFDebugLine.h" 24 #include "llvm/DebugInfo/DWARF/DWARFDebugLoc.h" 25 #include "llvm/DebugInfo/DWARF/DWARFDebugMacro.h" 26 #include "llvm/DebugInfo/DWARF/DWARFDebugPubTable.h" 27 #include "llvm/DebugInfo/DWARF/DWARFDebugRangeList.h" 28 #include "llvm/DebugInfo/DWARF/DWARFDebugRnglists.h" 29 #include "llvm/DebugInfo/DWARF/DWARFDie.h" 30 #include "llvm/DebugInfo/DWARF/DWARFFormValue.h" 31 #include "llvm/DebugInfo/DWARF/DWARFGdbIndex.h" 32 #include "llvm/DebugInfo/DWARF/DWARFSection.h" 33 #include "llvm/DebugInfo/DWARF/DWARFUnitIndex.h" 34 #include "llvm/DebugInfo/DWARF/DWARFVerifier.h" 35 #include "llvm/MC/MCRegisterInfo.h" 36 #include "llvm/MC/TargetRegistry.h" 37 #include "llvm/Object/Decompressor.h" 38 #include "llvm/Object/MachO.h" 39 #include "llvm/Object/ObjectFile.h" 40 #include "llvm/Object/RelocationResolver.h" 41 #include "llvm/Support/Casting.h" 42 #include "llvm/Support/DataExtractor.h" 43 #include "llvm/Support/Error.h" 44 #include "llvm/Support/Format.h" 45 #include "llvm/Support/LEB128.h" 46 #include "llvm/Support/MemoryBuffer.h" 47 #include "llvm/Support/Path.h" 48 #include "llvm/Support/raw_ostream.h" 49 #include <algorithm> 50 #include <cstdint> 51 #include <deque> 52 #include <map> 53 #include <string> 54 #include <utility> 55 #include <vector> 56 57 using namespace llvm; 58 using namespace dwarf; 59 using namespace object; 60 61 #define DEBUG_TYPE "dwarf" 62 63 using DWARFLineTable = DWARFDebugLine::LineTable; 64 using FileLineInfoKind = DILineInfoSpecifier::FileLineInfoKind; 65 using FunctionNameKind = DILineInfoSpecifier::FunctionNameKind; 66 67 DWARFContext::DWARFContext(std::unique_ptr<const DWARFObject> DObj, 68 std::string DWPName, 69 std::function<void(Error)> RecoverableErrorHandler, 70 std::function<void(Error)> WarningHandler) 71 : DIContext(CK_DWARF), DWPName(std::move(DWPName)), 72 RecoverableErrorHandler(RecoverableErrorHandler), 73 WarningHandler(WarningHandler), DObj(std::move(DObj)) {} 74 75 DWARFContext::~DWARFContext() = default; 76 77 /// Dump the UUID load command. 78 static void dumpUUID(raw_ostream &OS, const ObjectFile &Obj) { 79 auto *MachO = dyn_cast<MachOObjectFile>(&Obj); 80 if (!MachO) 81 return; 82 for (auto LC : MachO->load_commands()) { 83 raw_ostream::uuid_t UUID; 84 if (LC.C.cmd == MachO::LC_UUID) { 85 if (LC.C.cmdsize < sizeof(UUID) + sizeof(LC.C)) { 86 OS << "error: UUID load command is too short.\n"; 87 return; 88 } 89 OS << "UUID: "; 90 memcpy(&UUID, LC.Ptr+sizeof(LC.C), sizeof(UUID)); 91 OS.write_uuid(UUID); 92 Triple T = MachO->getArchTriple(); 93 OS << " (" << T.getArchName() << ')'; 94 OS << ' ' << MachO->getFileName() << '\n'; 95 } 96 } 97 } 98 99 using ContributionCollection = 100 std::vector<Optional<StrOffsetsContributionDescriptor>>; 101 102 // Collect all the contributions to the string offsets table from all units, 103 // sort them by their starting offsets and remove duplicates. 104 static ContributionCollection 105 collectContributionData(DWARFContext::unit_iterator_range Units) { 106 ContributionCollection Contributions; 107 for (const auto &U : Units) 108 if (const auto &C = U->getStringOffsetsTableContribution()) 109 Contributions.push_back(C); 110 // Sort the contributions so that any invalid ones are placed at 111 // the start of the contributions vector. This way they are reported 112 // first. 113 llvm::sort(Contributions, 114 [](const Optional<StrOffsetsContributionDescriptor> &L, 115 const Optional<StrOffsetsContributionDescriptor> &R) { 116 if (L && R) 117 return L->Base < R->Base; 118 return R.hasValue(); 119 }); 120 121 // Uniquify contributions, as it is possible that units (specifically 122 // type units in dwo or dwp files) share contributions. We don't want 123 // to report them more than once. 124 Contributions.erase( 125 std::unique(Contributions.begin(), Contributions.end(), 126 [](const Optional<StrOffsetsContributionDescriptor> &L, 127 const Optional<StrOffsetsContributionDescriptor> &R) { 128 if (L && R) 129 return L->Base == R->Base && L->Size == R->Size; 130 return false; 131 }), 132 Contributions.end()); 133 return Contributions; 134 } 135 136 // Dump a DWARF string offsets section. This may be a DWARF v5 formatted 137 // string offsets section, where each compile or type unit contributes a 138 // number of entries (string offsets), with each contribution preceded by 139 // a header containing size and version number. Alternatively, it may be a 140 // monolithic series of string offsets, as generated by the pre-DWARF v5 141 // implementation of split DWARF; however, in that case we still need to 142 // collect contributions of units because the size of the offsets (4 or 8 143 // bytes) depends on the format of the referencing unit (DWARF32 or DWARF64). 144 static void dumpStringOffsetsSection(raw_ostream &OS, DIDumpOptions DumpOpts, 145 StringRef SectionName, 146 const DWARFObject &Obj, 147 const DWARFSection &StringOffsetsSection, 148 StringRef StringSection, 149 DWARFContext::unit_iterator_range Units, 150 bool LittleEndian) { 151 auto Contributions = collectContributionData(Units); 152 DWARFDataExtractor StrOffsetExt(Obj, StringOffsetsSection, LittleEndian, 0); 153 DataExtractor StrData(StringSection, LittleEndian, 0); 154 uint64_t SectionSize = StringOffsetsSection.Data.size(); 155 uint64_t Offset = 0; 156 for (auto &Contribution : Contributions) { 157 // Report an ill-formed contribution. 158 if (!Contribution) { 159 OS << "error: invalid contribution to string offsets table in section ." 160 << SectionName << ".\n"; 161 return; 162 } 163 164 dwarf::DwarfFormat Format = Contribution->getFormat(); 165 int OffsetDumpWidth = 2 * dwarf::getDwarfOffsetByteSize(Format); 166 uint16_t Version = Contribution->getVersion(); 167 uint64_t ContributionHeader = Contribution->Base; 168 // In DWARF v5 there is a contribution header that immediately precedes 169 // the string offsets base (the location we have previously retrieved from 170 // the CU DIE's DW_AT_str_offsets attribute). The header is located either 171 // 8 or 16 bytes before the base, depending on the contribution's format. 172 if (Version >= 5) 173 ContributionHeader -= Format == DWARF32 ? 8 : 16; 174 175 // Detect overlapping contributions. 176 if (Offset > ContributionHeader) { 177 DumpOpts.RecoverableErrorHandler(createStringError( 178 errc::invalid_argument, 179 "overlapping contributions to string offsets table in section .%s.", 180 SectionName.data())); 181 } 182 // Report a gap in the table. 183 if (Offset < ContributionHeader) { 184 OS << format("0x%8.8" PRIx64 ": Gap, length = ", Offset); 185 OS << (ContributionHeader - Offset) << "\n"; 186 } 187 OS << format("0x%8.8" PRIx64 ": ", ContributionHeader); 188 // In DWARF v5 the contribution size in the descriptor does not equal 189 // the originally encoded length (it does not contain the length of the 190 // version field and the padding, a total of 4 bytes). Add them back in 191 // for reporting. 192 OS << "Contribution size = " << (Contribution->Size + (Version < 5 ? 0 : 4)) 193 << ", Format = " << dwarf::FormatString(Format) 194 << ", Version = " << Version << "\n"; 195 196 Offset = Contribution->Base; 197 unsigned EntrySize = Contribution->getDwarfOffsetByteSize(); 198 while (Offset - Contribution->Base < Contribution->Size) { 199 OS << format("0x%8.8" PRIx64 ": ", Offset); 200 uint64_t StringOffset = 201 StrOffsetExt.getRelocatedValue(EntrySize, &Offset); 202 OS << format("%0*" PRIx64 " ", OffsetDumpWidth, StringOffset); 203 const char *S = StrData.getCStr(&StringOffset); 204 if (S) 205 OS << format("\"%s\"", S); 206 OS << "\n"; 207 } 208 } 209 // Report a gap at the end of the table. 210 if (Offset < SectionSize) { 211 OS << format("0x%8.8" PRIx64 ": Gap, length = ", Offset); 212 OS << (SectionSize - Offset) << "\n"; 213 } 214 } 215 216 // Dump the .debug_addr section. 217 static void dumpAddrSection(raw_ostream &OS, DWARFDataExtractor &AddrData, 218 DIDumpOptions DumpOpts, uint16_t Version, 219 uint8_t AddrSize) { 220 uint64_t Offset = 0; 221 while (AddrData.isValidOffset(Offset)) { 222 DWARFDebugAddrTable AddrTable; 223 uint64_t TableOffset = Offset; 224 if (Error Err = AddrTable.extract(AddrData, &Offset, Version, AddrSize, 225 DumpOpts.WarningHandler)) { 226 DumpOpts.RecoverableErrorHandler(std::move(Err)); 227 // Keep going after an error, if we can, assuming that the length field 228 // could be read. If it couldn't, stop reading the section. 229 if (auto TableLength = AddrTable.getFullLength()) { 230 Offset = TableOffset + *TableLength; 231 continue; 232 } 233 break; 234 } 235 AddrTable.dump(OS, DumpOpts); 236 } 237 } 238 239 // Dump the .debug_rnglists or .debug_rnglists.dwo section (DWARF v5). 240 static void dumpRnglistsSection( 241 raw_ostream &OS, DWARFDataExtractor &rnglistData, 242 llvm::function_ref<Optional<object::SectionedAddress>(uint32_t)> 243 LookupPooledAddress, 244 DIDumpOptions DumpOpts) { 245 uint64_t Offset = 0; 246 while (rnglistData.isValidOffset(Offset)) { 247 llvm::DWARFDebugRnglistTable Rnglists; 248 uint64_t TableOffset = Offset; 249 if (Error Err = Rnglists.extract(rnglistData, &Offset)) { 250 DumpOpts.RecoverableErrorHandler(std::move(Err)); 251 uint64_t Length = Rnglists.length(); 252 // Keep going after an error, if we can, assuming that the length field 253 // could be read. If it couldn't, stop reading the section. 254 if (Length == 0) 255 break; 256 Offset = TableOffset + Length; 257 } else { 258 Rnglists.dump(rnglistData, OS, LookupPooledAddress, DumpOpts); 259 } 260 } 261 } 262 263 std::unique_ptr<DWARFDebugMacro> 264 DWARFContext::parseMacroOrMacinfo(MacroSecType SectionType) { 265 auto Macro = std::make_unique<DWARFDebugMacro>(); 266 auto ParseAndDump = [&](DWARFDataExtractor &Data, bool IsMacro) { 267 if (Error Err = IsMacro ? Macro->parseMacro(SectionType == MacroSection 268 ? compile_units() 269 : dwo_compile_units(), 270 SectionType == MacroSection 271 ? getStringExtractor() 272 : getStringDWOExtractor(), 273 Data) 274 : Macro->parseMacinfo(Data)) { 275 RecoverableErrorHandler(std::move(Err)); 276 Macro = nullptr; 277 } 278 }; 279 switch (SectionType) { 280 case MacinfoSection: { 281 DWARFDataExtractor Data(DObj->getMacinfoSection(), isLittleEndian(), 0); 282 ParseAndDump(Data, /*IsMacro=*/false); 283 break; 284 } 285 case MacinfoDwoSection: { 286 DWARFDataExtractor Data(DObj->getMacinfoDWOSection(), isLittleEndian(), 0); 287 ParseAndDump(Data, /*IsMacro=*/false); 288 break; 289 } 290 case MacroSection: { 291 DWARFDataExtractor Data(*DObj, DObj->getMacroSection(), isLittleEndian(), 292 0); 293 ParseAndDump(Data, /*IsMacro=*/true); 294 break; 295 } 296 case MacroDwoSection: { 297 DWARFDataExtractor Data(DObj->getMacroDWOSection(), isLittleEndian(), 0); 298 ParseAndDump(Data, /*IsMacro=*/true); 299 break; 300 } 301 } 302 return Macro; 303 } 304 305 static void dumpLoclistsSection(raw_ostream &OS, DIDumpOptions DumpOpts, 306 DWARFDataExtractor Data, 307 const MCRegisterInfo *MRI, 308 const DWARFObject &Obj, 309 Optional<uint64_t> DumpOffset) { 310 uint64_t Offset = 0; 311 312 while (Data.isValidOffset(Offset)) { 313 DWARFListTableHeader Header(".debug_loclists", "locations"); 314 if (Error E = Header.extract(Data, &Offset)) { 315 DumpOpts.RecoverableErrorHandler(std::move(E)); 316 return; 317 } 318 319 Header.dump(Data, OS, DumpOpts); 320 321 uint64_t EndOffset = Header.length() + Header.getHeaderOffset(); 322 Data.setAddressSize(Header.getAddrSize()); 323 DWARFDebugLoclists Loc(Data, Header.getVersion()); 324 if (DumpOffset) { 325 if (DumpOffset >= Offset && DumpOffset < EndOffset) { 326 Offset = *DumpOffset; 327 Loc.dumpLocationList(&Offset, OS, /*BaseAddr=*/None, MRI, Obj, nullptr, 328 DumpOpts, /*Indent=*/0); 329 OS << "\n"; 330 return; 331 } 332 } else { 333 Loc.dumpRange(Offset, EndOffset - Offset, OS, MRI, Obj, DumpOpts); 334 } 335 Offset = EndOffset; 336 } 337 } 338 339 static void dumpPubTableSection(raw_ostream &OS, DIDumpOptions DumpOpts, 340 DWARFDataExtractor Data, bool GnuStyle) { 341 DWARFDebugPubTable Table; 342 Table.extract(Data, GnuStyle, DumpOpts.RecoverableErrorHandler); 343 Table.dump(OS); 344 } 345 346 void DWARFContext::dump( 347 raw_ostream &OS, DIDumpOptions DumpOpts, 348 std::array<Optional<uint64_t>, DIDT_ID_Count> DumpOffsets) { 349 uint64_t DumpType = DumpOpts.DumpType; 350 351 StringRef Extension = sys::path::extension(DObj->getFileName()); 352 bool IsDWO = (Extension == ".dwo") || (Extension == ".dwp"); 353 354 // Print UUID header. 355 const auto *ObjFile = DObj->getFile(); 356 if (DumpType & DIDT_UUID) 357 dumpUUID(OS, *ObjFile); 358 359 // Print a header for each explicitly-requested section. 360 // Otherwise just print one for non-empty sections. 361 // Only print empty .dwo section headers when dumping a .dwo file. 362 bool Explicit = DumpType != DIDT_All && !IsDWO; 363 bool ExplicitDWO = Explicit && IsDWO; 364 auto shouldDump = [&](bool Explicit, const char *Name, unsigned ID, 365 StringRef Section) -> Optional<uint64_t> * { 366 unsigned Mask = 1U << ID; 367 bool Should = (DumpType & Mask) && (Explicit || !Section.empty()); 368 if (!Should) 369 return nullptr; 370 OS << "\n" << Name << " contents:\n"; 371 return &DumpOffsets[ID]; 372 }; 373 374 // Dump individual sections. 375 if (shouldDump(Explicit, ".debug_abbrev", DIDT_ID_DebugAbbrev, 376 DObj->getAbbrevSection())) 377 getDebugAbbrev()->dump(OS); 378 if (shouldDump(ExplicitDWO, ".debug_abbrev.dwo", DIDT_ID_DebugAbbrev, 379 DObj->getAbbrevDWOSection())) 380 getDebugAbbrevDWO()->dump(OS); 381 382 auto dumpDebugInfo = [&](const char *Name, unit_iterator_range Units) { 383 OS << '\n' << Name << " contents:\n"; 384 if (auto DumpOffset = DumpOffsets[DIDT_ID_DebugInfo]) 385 for (const auto &U : Units) 386 U->getDIEForOffset(DumpOffset.getValue()) 387 .dump(OS, 0, DumpOpts.noImplicitRecursion()); 388 else 389 for (const auto &U : Units) 390 U->dump(OS, DumpOpts); 391 }; 392 if ((DumpType & DIDT_DebugInfo)) { 393 if (Explicit || getNumCompileUnits()) 394 dumpDebugInfo(".debug_info", info_section_units()); 395 if (ExplicitDWO || getNumDWOCompileUnits()) 396 dumpDebugInfo(".debug_info.dwo", dwo_info_section_units()); 397 } 398 399 auto dumpDebugType = [&](const char *Name, unit_iterator_range Units) { 400 OS << '\n' << Name << " contents:\n"; 401 for (const auto &U : Units) 402 if (auto DumpOffset = DumpOffsets[DIDT_ID_DebugTypes]) 403 U->getDIEForOffset(*DumpOffset) 404 .dump(OS, 0, DumpOpts.noImplicitRecursion()); 405 else 406 U->dump(OS, DumpOpts); 407 }; 408 if ((DumpType & DIDT_DebugTypes)) { 409 if (Explicit || getNumTypeUnits()) 410 dumpDebugType(".debug_types", types_section_units()); 411 if (ExplicitDWO || getNumDWOTypeUnits()) 412 dumpDebugType(".debug_types.dwo", dwo_types_section_units()); 413 } 414 415 DIDumpOptions LLDumpOpts = DumpOpts; 416 if (LLDumpOpts.Verbose) 417 LLDumpOpts.DisplayRawContents = true; 418 419 if (const auto *Off = shouldDump(Explicit, ".debug_loc", DIDT_ID_DebugLoc, 420 DObj->getLocSection().Data)) { 421 getDebugLoc()->dump(OS, getRegisterInfo(), *DObj, LLDumpOpts, *Off); 422 } 423 if (const auto *Off = 424 shouldDump(Explicit, ".debug_loclists", DIDT_ID_DebugLoclists, 425 DObj->getLoclistsSection().Data)) { 426 DWARFDataExtractor Data(*DObj, DObj->getLoclistsSection(), isLittleEndian(), 427 0); 428 dumpLoclistsSection(OS, LLDumpOpts, Data, getRegisterInfo(), *DObj, *Off); 429 } 430 if (const auto *Off = 431 shouldDump(ExplicitDWO, ".debug_loclists.dwo", DIDT_ID_DebugLoclists, 432 DObj->getLoclistsDWOSection().Data)) { 433 DWARFDataExtractor Data(*DObj, DObj->getLoclistsDWOSection(), 434 isLittleEndian(), 0); 435 dumpLoclistsSection(OS, LLDumpOpts, Data, getRegisterInfo(), *DObj, *Off); 436 } 437 438 if (const auto *Off = 439 shouldDump(ExplicitDWO, ".debug_loc.dwo", DIDT_ID_DebugLoc, 440 DObj->getLocDWOSection().Data)) { 441 DWARFDataExtractor Data(*DObj, DObj->getLocDWOSection(), isLittleEndian(), 442 4); 443 DWARFDebugLoclists Loc(Data, /*Version=*/4); 444 if (*Off) { 445 uint64_t Offset = **Off; 446 Loc.dumpLocationList(&Offset, OS, 447 /*BaseAddr=*/None, getRegisterInfo(), *DObj, nullptr, 448 LLDumpOpts, /*Indent=*/0); 449 OS << "\n"; 450 } else { 451 Loc.dumpRange(0, Data.getData().size(), OS, getRegisterInfo(), *DObj, 452 LLDumpOpts); 453 } 454 } 455 456 if (const Optional<uint64_t> *Off = 457 shouldDump(Explicit, ".debug_frame", DIDT_ID_DebugFrame, 458 DObj->getFrameSection().Data)) { 459 if (Expected<const DWARFDebugFrame *> DF = getDebugFrame()) 460 (*DF)->dump(OS, DumpOpts, getRegisterInfo(), *Off); 461 else 462 RecoverableErrorHandler(DF.takeError()); 463 } 464 465 if (const Optional<uint64_t> *Off = 466 shouldDump(Explicit, ".eh_frame", DIDT_ID_DebugFrame, 467 DObj->getEHFrameSection().Data)) { 468 if (Expected<const DWARFDebugFrame *> DF = getEHFrame()) 469 (*DF)->dump(OS, DumpOpts, getRegisterInfo(), *Off); 470 else 471 RecoverableErrorHandler(DF.takeError()); 472 } 473 474 if (shouldDump(Explicit, ".debug_macro", DIDT_ID_DebugMacro, 475 DObj->getMacroSection().Data)) { 476 if (auto Macro = getDebugMacro()) 477 Macro->dump(OS); 478 } 479 480 if (shouldDump(Explicit, ".debug_macro.dwo", DIDT_ID_DebugMacro, 481 DObj->getMacroDWOSection())) { 482 if (auto MacroDWO = getDebugMacroDWO()) 483 MacroDWO->dump(OS); 484 } 485 486 if (shouldDump(Explicit, ".debug_macinfo", DIDT_ID_DebugMacro, 487 DObj->getMacinfoSection())) { 488 if (auto Macinfo = getDebugMacinfo()) 489 Macinfo->dump(OS); 490 } 491 492 if (shouldDump(Explicit, ".debug_macinfo.dwo", DIDT_ID_DebugMacro, 493 DObj->getMacinfoDWOSection())) { 494 if (auto MacinfoDWO = getDebugMacinfoDWO()) 495 MacinfoDWO->dump(OS); 496 } 497 498 if (shouldDump(Explicit, ".debug_aranges", DIDT_ID_DebugAranges, 499 DObj->getArangesSection())) { 500 uint64_t offset = 0; 501 DWARFDataExtractor arangesData(DObj->getArangesSection(), isLittleEndian(), 502 0); 503 DWARFDebugArangeSet set; 504 while (arangesData.isValidOffset(offset)) { 505 if (Error E = 506 set.extract(arangesData, &offset, DumpOpts.WarningHandler)) { 507 RecoverableErrorHandler(std::move(E)); 508 break; 509 } 510 set.dump(OS); 511 } 512 } 513 514 auto DumpLineSection = [&](DWARFDebugLine::SectionParser Parser, 515 DIDumpOptions DumpOpts, 516 Optional<uint64_t> DumpOffset) { 517 while (!Parser.done()) { 518 if (DumpOffset && Parser.getOffset() != *DumpOffset) { 519 Parser.skip(DumpOpts.WarningHandler, DumpOpts.WarningHandler); 520 continue; 521 } 522 OS << "debug_line[" << format("0x%8.8" PRIx64, Parser.getOffset()) 523 << "]\n"; 524 Parser.parseNext(DumpOpts.WarningHandler, DumpOpts.WarningHandler, &OS, 525 DumpOpts.Verbose); 526 } 527 }; 528 529 auto DumpStrSection = [&](StringRef Section) { 530 DataExtractor StrData(Section, isLittleEndian(), 0); 531 uint64_t Offset = 0; 532 uint64_t StrOffset = 0; 533 while (StrData.isValidOffset(Offset)) { 534 Error Err = Error::success(); 535 const char *CStr = StrData.getCStr(&Offset, &Err); 536 if (Err) { 537 DumpOpts.WarningHandler(std::move(Err)); 538 return; 539 } 540 OS << format("0x%8.8" PRIx64 ": \"", StrOffset); 541 OS.write_escaped(CStr); 542 OS << "\"\n"; 543 StrOffset = Offset; 544 } 545 }; 546 547 if (const auto *Off = shouldDump(Explicit, ".debug_line", DIDT_ID_DebugLine, 548 DObj->getLineSection().Data)) { 549 DWARFDataExtractor LineData(*DObj, DObj->getLineSection(), isLittleEndian(), 550 0); 551 DWARFDebugLine::SectionParser Parser(LineData, *this, normal_units()); 552 DumpLineSection(Parser, DumpOpts, *Off); 553 } 554 555 if (const auto *Off = 556 shouldDump(ExplicitDWO, ".debug_line.dwo", DIDT_ID_DebugLine, 557 DObj->getLineDWOSection().Data)) { 558 DWARFDataExtractor LineData(*DObj, DObj->getLineDWOSection(), 559 isLittleEndian(), 0); 560 DWARFDebugLine::SectionParser Parser(LineData, *this, dwo_units()); 561 DumpLineSection(Parser, DumpOpts, *Off); 562 } 563 564 if (shouldDump(Explicit, ".debug_cu_index", DIDT_ID_DebugCUIndex, 565 DObj->getCUIndexSection())) { 566 getCUIndex().dump(OS); 567 } 568 569 if (shouldDump(Explicit, ".debug_tu_index", DIDT_ID_DebugTUIndex, 570 DObj->getTUIndexSection())) { 571 getTUIndex().dump(OS); 572 } 573 574 if (shouldDump(Explicit, ".debug_str", DIDT_ID_DebugStr, 575 DObj->getStrSection())) 576 DumpStrSection(DObj->getStrSection()); 577 578 if (shouldDump(ExplicitDWO, ".debug_str.dwo", DIDT_ID_DebugStr, 579 DObj->getStrDWOSection())) 580 DumpStrSection(DObj->getStrDWOSection()); 581 582 if (shouldDump(Explicit, ".debug_line_str", DIDT_ID_DebugLineStr, 583 DObj->getLineStrSection())) 584 DumpStrSection(DObj->getLineStrSection()); 585 586 if (shouldDump(Explicit, ".debug_addr", DIDT_ID_DebugAddr, 587 DObj->getAddrSection().Data)) { 588 DWARFDataExtractor AddrData(*DObj, DObj->getAddrSection(), 589 isLittleEndian(), 0); 590 dumpAddrSection(OS, AddrData, DumpOpts, getMaxVersion(), getCUAddrSize()); 591 } 592 593 if (shouldDump(Explicit, ".debug_ranges", DIDT_ID_DebugRanges, 594 DObj->getRangesSection().Data)) { 595 uint8_t savedAddressByteSize = getCUAddrSize(); 596 DWARFDataExtractor rangesData(*DObj, DObj->getRangesSection(), 597 isLittleEndian(), savedAddressByteSize); 598 uint64_t offset = 0; 599 DWARFDebugRangeList rangeList; 600 while (rangesData.isValidOffset(offset)) { 601 if (Error E = rangeList.extract(rangesData, &offset)) { 602 DumpOpts.RecoverableErrorHandler(std::move(E)); 603 break; 604 } 605 rangeList.dump(OS); 606 } 607 } 608 609 auto LookupPooledAddress = [&](uint32_t Index) -> Optional<SectionedAddress> { 610 const auto &CUs = compile_units(); 611 auto I = CUs.begin(); 612 if (I == CUs.end()) 613 return None; 614 return (*I)->getAddrOffsetSectionItem(Index); 615 }; 616 617 if (shouldDump(Explicit, ".debug_rnglists", DIDT_ID_DebugRnglists, 618 DObj->getRnglistsSection().Data)) { 619 DWARFDataExtractor RnglistData(*DObj, DObj->getRnglistsSection(), 620 isLittleEndian(), 0); 621 dumpRnglistsSection(OS, RnglistData, LookupPooledAddress, DumpOpts); 622 } 623 624 if (shouldDump(ExplicitDWO, ".debug_rnglists.dwo", DIDT_ID_DebugRnglists, 625 DObj->getRnglistsDWOSection().Data)) { 626 DWARFDataExtractor RnglistData(*DObj, DObj->getRnglistsDWOSection(), 627 isLittleEndian(), 0); 628 dumpRnglistsSection(OS, RnglistData, LookupPooledAddress, DumpOpts); 629 } 630 631 if (shouldDump(Explicit, ".debug_pubnames", DIDT_ID_DebugPubnames, 632 DObj->getPubnamesSection().Data)) { 633 DWARFDataExtractor PubTableData(*DObj, DObj->getPubnamesSection(), 634 isLittleEndian(), 0); 635 dumpPubTableSection(OS, DumpOpts, PubTableData, /*GnuStyle=*/false); 636 } 637 638 if (shouldDump(Explicit, ".debug_pubtypes", DIDT_ID_DebugPubtypes, 639 DObj->getPubtypesSection().Data)) { 640 DWARFDataExtractor PubTableData(*DObj, DObj->getPubtypesSection(), 641 isLittleEndian(), 0); 642 dumpPubTableSection(OS, DumpOpts, PubTableData, /*GnuStyle=*/false); 643 } 644 645 if (shouldDump(Explicit, ".debug_gnu_pubnames", DIDT_ID_DebugGnuPubnames, 646 DObj->getGnuPubnamesSection().Data)) { 647 DWARFDataExtractor PubTableData(*DObj, DObj->getGnuPubnamesSection(), 648 isLittleEndian(), 0); 649 dumpPubTableSection(OS, DumpOpts, PubTableData, /*GnuStyle=*/true); 650 } 651 652 if (shouldDump(Explicit, ".debug_gnu_pubtypes", DIDT_ID_DebugGnuPubtypes, 653 DObj->getGnuPubtypesSection().Data)) { 654 DWARFDataExtractor PubTableData(*DObj, DObj->getGnuPubtypesSection(), 655 isLittleEndian(), 0); 656 dumpPubTableSection(OS, DumpOpts, PubTableData, /*GnuStyle=*/true); 657 } 658 659 if (shouldDump(Explicit, ".debug_str_offsets", DIDT_ID_DebugStrOffsets, 660 DObj->getStrOffsetsSection().Data)) 661 dumpStringOffsetsSection( 662 OS, DumpOpts, "debug_str_offsets", *DObj, DObj->getStrOffsetsSection(), 663 DObj->getStrSection(), normal_units(), isLittleEndian()); 664 if (shouldDump(ExplicitDWO, ".debug_str_offsets.dwo", DIDT_ID_DebugStrOffsets, 665 DObj->getStrOffsetsDWOSection().Data)) 666 dumpStringOffsetsSection(OS, DumpOpts, "debug_str_offsets.dwo", *DObj, 667 DObj->getStrOffsetsDWOSection(), 668 DObj->getStrDWOSection(), dwo_units(), 669 isLittleEndian()); 670 671 if (shouldDump(Explicit, ".gdb_index", DIDT_ID_GdbIndex, 672 DObj->getGdbIndexSection())) { 673 getGdbIndex().dump(OS); 674 } 675 676 if (shouldDump(Explicit, ".apple_names", DIDT_ID_AppleNames, 677 DObj->getAppleNamesSection().Data)) 678 getAppleNames().dump(OS); 679 680 if (shouldDump(Explicit, ".apple_types", DIDT_ID_AppleTypes, 681 DObj->getAppleTypesSection().Data)) 682 getAppleTypes().dump(OS); 683 684 if (shouldDump(Explicit, ".apple_namespaces", DIDT_ID_AppleNamespaces, 685 DObj->getAppleNamespacesSection().Data)) 686 getAppleNamespaces().dump(OS); 687 688 if (shouldDump(Explicit, ".apple_objc", DIDT_ID_AppleObjC, 689 DObj->getAppleObjCSection().Data)) 690 getAppleObjC().dump(OS); 691 if (shouldDump(Explicit, ".debug_names", DIDT_ID_DebugNames, 692 DObj->getNamesSection().Data)) 693 getDebugNames().dump(OS); 694 } 695 696 DWARFTypeUnit *DWARFContext::getTypeUnitForHash(uint16_t Version, uint64_t Hash, 697 bool IsDWO) { 698 // FIXME: Check for/use the tu_index here, if there is one. 699 for (const auto &U : IsDWO ? dwo_units() : normal_units()) { 700 if (DWARFTypeUnit *TU = dyn_cast<DWARFTypeUnit>(U.get())) { 701 if (TU->getTypeHash() == Hash) 702 return TU; 703 } 704 } 705 return nullptr; 706 } 707 708 DWARFCompileUnit *DWARFContext::getDWOCompileUnitForHash(uint64_t Hash) { 709 parseDWOUnits(LazyParse); 710 711 if (const auto &CUI = getCUIndex()) { 712 if (const auto *R = CUI.getFromHash(Hash)) 713 return dyn_cast_or_null<DWARFCompileUnit>( 714 DWOUnits.getUnitForIndexEntry(*R)); 715 return nullptr; 716 } 717 718 // If there's no index, just search through the CUs in the DWO - there's 719 // probably only one unless this is something like LTO - though an in-process 720 // built/cached lookup table could be used in that case to improve repeated 721 // lookups of different CUs in the DWO. 722 for (const auto &DWOCU : dwo_compile_units()) { 723 // Might not have parsed DWO ID yet. 724 if (!DWOCU->getDWOId()) { 725 if (Optional<uint64_t> DWOId = 726 toUnsigned(DWOCU->getUnitDIE().find(DW_AT_GNU_dwo_id))) 727 DWOCU->setDWOId(*DWOId); 728 else 729 // No DWO ID? 730 continue; 731 } 732 if (DWOCU->getDWOId() == Hash) 733 return dyn_cast<DWARFCompileUnit>(DWOCU.get()); 734 } 735 return nullptr; 736 } 737 738 DWARFDie DWARFContext::getDIEForOffset(uint64_t Offset) { 739 parseNormalUnits(); 740 if (auto *CU = NormalUnits.getUnitForOffset(Offset)) 741 return CU->getDIEForOffset(Offset); 742 return DWARFDie(); 743 } 744 745 bool DWARFContext::verify(raw_ostream &OS, DIDumpOptions DumpOpts) { 746 bool Success = true; 747 DWARFVerifier verifier(OS, *this, DumpOpts); 748 749 Success &= verifier.handleDebugAbbrev(); 750 if (DumpOpts.DumpType & DIDT_DebugInfo) 751 Success &= verifier.handleDebugInfo(); 752 if (DumpOpts.DumpType & DIDT_DebugLine) 753 Success &= verifier.handleDebugLine(); 754 Success &= verifier.handleAccelTables(); 755 return Success; 756 } 757 758 const DWARFUnitIndex &DWARFContext::getCUIndex() { 759 if (CUIndex) 760 return *CUIndex; 761 762 DataExtractor CUIndexData(DObj->getCUIndexSection(), isLittleEndian(), 0); 763 764 CUIndex = std::make_unique<DWARFUnitIndex>(DW_SECT_INFO); 765 CUIndex->parse(CUIndexData); 766 return *CUIndex; 767 } 768 769 const DWARFUnitIndex &DWARFContext::getTUIndex() { 770 if (TUIndex) 771 return *TUIndex; 772 773 DataExtractor TUIndexData(DObj->getTUIndexSection(), isLittleEndian(), 0); 774 775 TUIndex = std::make_unique<DWARFUnitIndex>(DW_SECT_EXT_TYPES); 776 TUIndex->parse(TUIndexData); 777 return *TUIndex; 778 } 779 780 DWARFGdbIndex &DWARFContext::getGdbIndex() { 781 if (GdbIndex) 782 return *GdbIndex; 783 784 DataExtractor GdbIndexData(DObj->getGdbIndexSection(), true /*LE*/, 0); 785 GdbIndex = std::make_unique<DWARFGdbIndex>(); 786 GdbIndex->parse(GdbIndexData); 787 return *GdbIndex; 788 } 789 790 const DWARFDebugAbbrev *DWARFContext::getDebugAbbrev() { 791 if (Abbrev) 792 return Abbrev.get(); 793 794 DataExtractor abbrData(DObj->getAbbrevSection(), isLittleEndian(), 0); 795 796 Abbrev.reset(new DWARFDebugAbbrev()); 797 Abbrev->extract(abbrData); 798 return Abbrev.get(); 799 } 800 801 const DWARFDebugAbbrev *DWARFContext::getDebugAbbrevDWO() { 802 if (AbbrevDWO) 803 return AbbrevDWO.get(); 804 805 DataExtractor abbrData(DObj->getAbbrevDWOSection(), isLittleEndian(), 0); 806 AbbrevDWO.reset(new DWARFDebugAbbrev()); 807 AbbrevDWO->extract(abbrData); 808 return AbbrevDWO.get(); 809 } 810 811 const DWARFDebugLoc *DWARFContext::getDebugLoc() { 812 if (Loc) 813 return Loc.get(); 814 815 // Assume all units have the same address byte size. 816 auto LocData = 817 getNumCompileUnits() 818 ? DWARFDataExtractor(*DObj, DObj->getLocSection(), isLittleEndian(), 819 getUnitAtIndex(0)->getAddressByteSize()) 820 : DWARFDataExtractor("", isLittleEndian(), 0); 821 Loc.reset(new DWARFDebugLoc(std::move(LocData))); 822 return Loc.get(); 823 } 824 825 const DWARFDebugAranges *DWARFContext::getDebugAranges() { 826 if (Aranges) 827 return Aranges.get(); 828 829 Aranges.reset(new DWARFDebugAranges()); 830 Aranges->generate(this); 831 return Aranges.get(); 832 } 833 834 Expected<const DWARFDebugFrame *> DWARFContext::getDebugFrame() { 835 if (DebugFrame) 836 return DebugFrame.get(); 837 838 const DWARFSection &DS = DObj->getFrameSection(); 839 840 // There's a "bug" in the DWARFv3 standard with respect to the target address 841 // size within debug frame sections. While DWARF is supposed to be independent 842 // of its container, FDEs have fields with size being "target address size", 843 // which isn't specified in DWARF in general. It's only specified for CUs, but 844 // .eh_frame can appear without a .debug_info section. Follow the example of 845 // other tools (libdwarf) and extract this from the container (ObjectFile 846 // provides this information). This problem is fixed in DWARFv4 847 // See this dwarf-discuss discussion for more details: 848 // http://lists.dwarfstd.org/htdig.cgi/dwarf-discuss-dwarfstd.org/2011-December/001173.html 849 DWARFDataExtractor DebugFrameData(*DObj, DS, isLittleEndian(), 850 DObj->getAddressSize()); 851 auto DF = 852 std::make_unique<DWARFDebugFrame>(getArch(), /*IsEH=*/false, DS.Address); 853 if (Error E = DF->parse(DebugFrameData)) 854 return std::move(E); 855 856 DebugFrame.swap(DF); 857 return DebugFrame.get(); 858 } 859 860 Expected<const DWARFDebugFrame *> DWARFContext::getEHFrame() { 861 if (EHFrame) 862 return EHFrame.get(); 863 864 const DWARFSection &DS = DObj->getEHFrameSection(); 865 DWARFDataExtractor DebugFrameData(*DObj, DS, isLittleEndian(), 866 DObj->getAddressSize()); 867 868 auto DF = 869 std::make_unique<DWARFDebugFrame>(getArch(), /*IsEH=*/true, DS.Address); 870 if (Error E = DF->parse(DebugFrameData)) 871 return std::move(E); 872 DebugFrame.swap(DF); 873 return DebugFrame.get(); 874 } 875 876 const DWARFDebugMacro *DWARFContext::getDebugMacro() { 877 if (!Macro) 878 Macro = parseMacroOrMacinfo(MacroSection); 879 return Macro.get(); 880 } 881 882 const DWARFDebugMacro *DWARFContext::getDebugMacroDWO() { 883 if (!MacroDWO) 884 MacroDWO = parseMacroOrMacinfo(MacroDwoSection); 885 return MacroDWO.get(); 886 } 887 888 const DWARFDebugMacro *DWARFContext::getDebugMacinfo() { 889 if (!Macinfo) 890 Macinfo = parseMacroOrMacinfo(MacinfoSection); 891 return Macinfo.get(); 892 } 893 894 const DWARFDebugMacro *DWARFContext::getDebugMacinfoDWO() { 895 if (!MacinfoDWO) 896 MacinfoDWO = parseMacroOrMacinfo(MacinfoDwoSection); 897 return MacinfoDWO.get(); 898 } 899 900 template <typename T> 901 static T &getAccelTable(std::unique_ptr<T> &Cache, const DWARFObject &Obj, 902 const DWARFSection &Section, StringRef StringSection, 903 bool IsLittleEndian) { 904 if (Cache) 905 return *Cache; 906 DWARFDataExtractor AccelSection(Obj, Section, IsLittleEndian, 0); 907 DataExtractor StrData(StringSection, IsLittleEndian, 0); 908 Cache.reset(new T(AccelSection, StrData)); 909 if (Error E = Cache->extract()) 910 llvm::consumeError(std::move(E)); 911 return *Cache; 912 } 913 914 const DWARFDebugNames &DWARFContext::getDebugNames() { 915 return getAccelTable(Names, *DObj, DObj->getNamesSection(), 916 DObj->getStrSection(), isLittleEndian()); 917 } 918 919 const AppleAcceleratorTable &DWARFContext::getAppleNames() { 920 return getAccelTable(AppleNames, *DObj, DObj->getAppleNamesSection(), 921 DObj->getStrSection(), isLittleEndian()); 922 } 923 924 const AppleAcceleratorTable &DWARFContext::getAppleTypes() { 925 return getAccelTable(AppleTypes, *DObj, DObj->getAppleTypesSection(), 926 DObj->getStrSection(), isLittleEndian()); 927 } 928 929 const AppleAcceleratorTable &DWARFContext::getAppleNamespaces() { 930 return getAccelTable(AppleNamespaces, *DObj, 931 DObj->getAppleNamespacesSection(), 932 DObj->getStrSection(), isLittleEndian()); 933 } 934 935 const AppleAcceleratorTable &DWARFContext::getAppleObjC() { 936 return getAccelTable(AppleObjC, *DObj, DObj->getAppleObjCSection(), 937 DObj->getStrSection(), isLittleEndian()); 938 } 939 940 const DWARFDebugLine::LineTable * 941 DWARFContext::getLineTableForUnit(DWARFUnit *U) { 942 Expected<const DWARFDebugLine::LineTable *> ExpectedLineTable = 943 getLineTableForUnit(U, WarningHandler); 944 if (!ExpectedLineTable) { 945 WarningHandler(ExpectedLineTable.takeError()); 946 return nullptr; 947 } 948 return *ExpectedLineTable; 949 } 950 951 Expected<const DWARFDebugLine::LineTable *> DWARFContext::getLineTableForUnit( 952 DWARFUnit *U, function_ref<void(Error)> RecoverableErrorHandler) { 953 if (!Line) 954 Line.reset(new DWARFDebugLine); 955 956 auto UnitDIE = U->getUnitDIE(); 957 if (!UnitDIE) 958 return nullptr; 959 960 auto Offset = toSectionOffset(UnitDIE.find(DW_AT_stmt_list)); 961 if (!Offset) 962 return nullptr; // No line table for this compile unit. 963 964 uint64_t stmtOffset = *Offset + U->getLineTableOffset(); 965 // See if the line table is cached. 966 if (const DWARFLineTable *lt = Line->getLineTable(stmtOffset)) 967 return lt; 968 969 // Make sure the offset is good before we try to parse. 970 if (stmtOffset >= U->getLineSection().Data.size()) 971 return nullptr; 972 973 // We have to parse it first. 974 DWARFDataExtractor lineData(*DObj, U->getLineSection(), isLittleEndian(), 975 U->getAddressByteSize()); 976 return Line->getOrParseLineTable(lineData, stmtOffset, *this, U, 977 RecoverableErrorHandler); 978 } 979 980 void DWARFContext::parseNormalUnits() { 981 if (!NormalUnits.empty()) 982 return; 983 DObj->forEachInfoSections([&](const DWARFSection &S) { 984 NormalUnits.addUnitsForSection(*this, S, DW_SECT_INFO); 985 }); 986 NormalUnits.finishedInfoUnits(); 987 DObj->forEachTypesSections([&](const DWARFSection &S) { 988 NormalUnits.addUnitsForSection(*this, S, DW_SECT_EXT_TYPES); 989 }); 990 } 991 992 void DWARFContext::parseDWOUnits(bool Lazy) { 993 if (!DWOUnits.empty()) 994 return; 995 DObj->forEachInfoDWOSections([&](const DWARFSection &S) { 996 DWOUnits.addUnitsForDWOSection(*this, S, DW_SECT_INFO, Lazy); 997 }); 998 DWOUnits.finishedInfoUnits(); 999 DObj->forEachTypesDWOSections([&](const DWARFSection &S) { 1000 DWOUnits.addUnitsForDWOSection(*this, S, DW_SECT_EXT_TYPES, Lazy); 1001 }); 1002 } 1003 1004 DWARFCompileUnit *DWARFContext::getCompileUnitForOffset(uint64_t Offset) { 1005 parseNormalUnits(); 1006 return dyn_cast_or_null<DWARFCompileUnit>( 1007 NormalUnits.getUnitForOffset(Offset)); 1008 } 1009 1010 DWARFCompileUnit *DWARFContext::getCompileUnitForAddress(uint64_t Address) { 1011 // First, get the offset of the compile unit. 1012 uint64_t CUOffset = getDebugAranges()->findAddress(Address); 1013 // Retrieve the compile unit. 1014 return getCompileUnitForOffset(CUOffset); 1015 } 1016 1017 DWARFContext::DIEsForAddress DWARFContext::getDIEsForAddress(uint64_t Address) { 1018 DIEsForAddress Result; 1019 1020 DWARFCompileUnit *CU = getCompileUnitForAddress(Address); 1021 if (!CU) 1022 return Result; 1023 1024 Result.CompileUnit = CU; 1025 Result.FunctionDIE = CU->getSubroutineForAddress(Address); 1026 1027 std::vector<DWARFDie> Worklist; 1028 Worklist.push_back(Result.FunctionDIE); 1029 while (!Worklist.empty()) { 1030 DWARFDie DIE = Worklist.back(); 1031 Worklist.pop_back(); 1032 1033 if (!DIE.isValid()) 1034 continue; 1035 1036 if (DIE.getTag() == DW_TAG_lexical_block && 1037 DIE.addressRangeContainsAddress(Address)) { 1038 Result.BlockDIE = DIE; 1039 break; 1040 } 1041 1042 append_range(Worklist, DIE); 1043 } 1044 1045 return Result; 1046 } 1047 1048 /// TODO: change input parameter from "uint64_t Address" 1049 /// into "SectionedAddress Address" 1050 static bool getFunctionNameAndStartLineForAddress( 1051 DWARFCompileUnit *CU, uint64_t Address, FunctionNameKind Kind, 1052 DILineInfoSpecifier::FileLineInfoKind FileNameKind, 1053 std::string &FunctionName, std::string &StartFile, uint32_t &StartLine, 1054 Optional<uint64_t> &StartAddress) { 1055 // The address may correspond to instruction in some inlined function, 1056 // so we have to build the chain of inlined functions and take the 1057 // name of the topmost function in it. 1058 SmallVector<DWARFDie, 4> InlinedChain; 1059 CU->getInlinedChainForAddress(Address, InlinedChain); 1060 if (InlinedChain.empty()) 1061 return false; 1062 1063 const DWARFDie &DIE = InlinedChain[0]; 1064 bool FoundResult = false; 1065 const char *Name = nullptr; 1066 if (Kind != FunctionNameKind::None && (Name = DIE.getSubroutineName(Kind))) { 1067 FunctionName = Name; 1068 FoundResult = true; 1069 } 1070 std::string DeclFile = DIE.getDeclFile(FileNameKind); 1071 if (!DeclFile.empty()) { 1072 StartFile = DeclFile; 1073 FoundResult = true; 1074 } 1075 if (auto DeclLineResult = DIE.getDeclLine()) { 1076 StartLine = DeclLineResult; 1077 FoundResult = true; 1078 } 1079 if (auto LowPcAddr = toSectionedAddress(DIE.find(DW_AT_low_pc))) 1080 StartAddress = LowPcAddr->Address; 1081 return FoundResult; 1082 } 1083 1084 static Optional<uint64_t> getTypeSize(DWARFDie Type, uint64_t PointerSize) { 1085 if (auto SizeAttr = Type.find(DW_AT_byte_size)) 1086 if (Optional<uint64_t> Size = SizeAttr->getAsUnsignedConstant()) 1087 return Size; 1088 1089 switch (Type.getTag()) { 1090 case DW_TAG_pointer_type: 1091 case DW_TAG_reference_type: 1092 case DW_TAG_rvalue_reference_type: 1093 return PointerSize; 1094 case DW_TAG_ptr_to_member_type: { 1095 if (DWARFDie BaseType = Type.getAttributeValueAsReferencedDie(DW_AT_type)) 1096 if (BaseType.getTag() == DW_TAG_subroutine_type) 1097 return 2 * PointerSize; 1098 return PointerSize; 1099 } 1100 case DW_TAG_const_type: 1101 case DW_TAG_volatile_type: 1102 case DW_TAG_restrict_type: 1103 case DW_TAG_typedef: { 1104 if (DWARFDie BaseType = Type.getAttributeValueAsReferencedDie(DW_AT_type)) 1105 return getTypeSize(BaseType, PointerSize); 1106 break; 1107 } 1108 case DW_TAG_array_type: { 1109 DWARFDie BaseType = Type.getAttributeValueAsReferencedDie(DW_AT_type); 1110 if (!BaseType) 1111 return Optional<uint64_t>(); 1112 Optional<uint64_t> BaseSize = getTypeSize(BaseType, PointerSize); 1113 if (!BaseSize) 1114 return Optional<uint64_t>(); 1115 uint64_t Size = *BaseSize; 1116 for (DWARFDie Child : Type) { 1117 if (Child.getTag() != DW_TAG_subrange_type) 1118 continue; 1119 1120 if (auto ElemCountAttr = Child.find(DW_AT_count)) 1121 if (Optional<uint64_t> ElemCount = 1122 ElemCountAttr->getAsUnsignedConstant()) 1123 Size *= *ElemCount; 1124 if (auto UpperBoundAttr = Child.find(DW_AT_upper_bound)) 1125 if (Optional<int64_t> UpperBound = 1126 UpperBoundAttr->getAsSignedConstant()) { 1127 int64_t LowerBound = 0; 1128 if (auto LowerBoundAttr = Child.find(DW_AT_lower_bound)) 1129 LowerBound = LowerBoundAttr->getAsSignedConstant().getValueOr(0); 1130 Size *= *UpperBound - LowerBound + 1; 1131 } 1132 } 1133 return Size; 1134 } 1135 default: 1136 break; 1137 } 1138 return Optional<uint64_t>(); 1139 } 1140 1141 static Optional<int64_t> 1142 getExpressionFrameOffset(ArrayRef<uint8_t> Expr, 1143 Optional<unsigned> FrameBaseReg) { 1144 if (!Expr.empty() && 1145 (Expr[0] == DW_OP_fbreg || 1146 (FrameBaseReg && Expr[0] == DW_OP_breg0 + *FrameBaseReg))) { 1147 unsigned Count; 1148 int64_t Offset = decodeSLEB128(Expr.data() + 1, &Count, Expr.end()); 1149 // A single DW_OP_fbreg or DW_OP_breg. 1150 if (Expr.size() == Count + 1) 1151 return Offset; 1152 // Same + DW_OP_deref (Fortran arrays look like this). 1153 if (Expr.size() == Count + 2 && Expr[Count + 1] == DW_OP_deref) 1154 return Offset; 1155 // Fallthrough. Do not accept ex. (DW_OP_breg W29, DW_OP_stack_value) 1156 } 1157 return None; 1158 } 1159 1160 void DWARFContext::addLocalsForDie(DWARFCompileUnit *CU, DWARFDie Subprogram, 1161 DWARFDie Die, std::vector<DILocal> &Result) { 1162 if (Die.getTag() == DW_TAG_variable || 1163 Die.getTag() == DW_TAG_formal_parameter) { 1164 DILocal Local; 1165 if (const char *Name = Subprogram.getSubroutineName(DINameKind::ShortName)) 1166 Local.FunctionName = Name; 1167 1168 Optional<unsigned> FrameBaseReg; 1169 if (auto FrameBase = Subprogram.find(DW_AT_frame_base)) 1170 if (Optional<ArrayRef<uint8_t>> Expr = FrameBase->getAsBlock()) 1171 if (!Expr->empty() && (*Expr)[0] >= DW_OP_reg0 && 1172 (*Expr)[0] <= DW_OP_reg31) { 1173 FrameBaseReg = (*Expr)[0] - DW_OP_reg0; 1174 } 1175 1176 if (Expected<std::vector<DWARFLocationExpression>> Loc = 1177 Die.getLocations(DW_AT_location)) { 1178 for (const auto &Entry : *Loc) { 1179 if (Optional<int64_t> FrameOffset = 1180 getExpressionFrameOffset(Entry.Expr, FrameBaseReg)) { 1181 Local.FrameOffset = *FrameOffset; 1182 break; 1183 } 1184 } 1185 } else { 1186 // FIXME: missing DW_AT_location is OK here, but other errors should be 1187 // reported to the user. 1188 consumeError(Loc.takeError()); 1189 } 1190 1191 if (auto TagOffsetAttr = Die.find(DW_AT_LLVM_tag_offset)) 1192 Local.TagOffset = TagOffsetAttr->getAsUnsignedConstant(); 1193 1194 if (auto Origin = 1195 Die.getAttributeValueAsReferencedDie(DW_AT_abstract_origin)) 1196 Die = Origin; 1197 if (auto NameAttr = Die.find(DW_AT_name)) 1198 if (Optional<const char *> Name = NameAttr->getAsCString()) 1199 Local.Name = *Name; 1200 if (auto Type = Die.getAttributeValueAsReferencedDie(DW_AT_type)) 1201 Local.Size = getTypeSize(Type, getCUAddrSize()); 1202 if (auto DeclFileAttr = Die.find(DW_AT_decl_file)) { 1203 if (const auto *LT = CU->getContext().getLineTableForUnit(CU)) 1204 LT->getFileNameByIndex( 1205 DeclFileAttr->getAsUnsignedConstant().getValue(), 1206 CU->getCompilationDir(), 1207 DILineInfoSpecifier::FileLineInfoKind::AbsoluteFilePath, 1208 Local.DeclFile); 1209 } 1210 if (auto DeclLineAttr = Die.find(DW_AT_decl_line)) 1211 Local.DeclLine = DeclLineAttr->getAsUnsignedConstant().getValue(); 1212 1213 Result.push_back(Local); 1214 return; 1215 } 1216 1217 if (Die.getTag() == DW_TAG_inlined_subroutine) 1218 if (auto Origin = 1219 Die.getAttributeValueAsReferencedDie(DW_AT_abstract_origin)) 1220 Subprogram = Origin; 1221 1222 for (auto Child : Die) 1223 addLocalsForDie(CU, Subprogram, Child, Result); 1224 } 1225 1226 std::vector<DILocal> 1227 DWARFContext::getLocalsForAddress(object::SectionedAddress Address) { 1228 std::vector<DILocal> Result; 1229 DWARFCompileUnit *CU = getCompileUnitForAddress(Address.Address); 1230 if (!CU) 1231 return Result; 1232 1233 DWARFDie Subprogram = CU->getSubroutineForAddress(Address.Address); 1234 if (Subprogram.isValid()) 1235 addLocalsForDie(CU, Subprogram, Subprogram, Result); 1236 return Result; 1237 } 1238 1239 DILineInfo DWARFContext::getLineInfoForAddress(object::SectionedAddress Address, 1240 DILineInfoSpecifier Spec) { 1241 DILineInfo Result; 1242 1243 DWARFCompileUnit *CU = getCompileUnitForAddress(Address.Address); 1244 if (!CU) 1245 return Result; 1246 1247 getFunctionNameAndStartLineForAddress( 1248 CU, Address.Address, Spec.FNKind, Spec.FLIKind, Result.FunctionName, 1249 Result.StartFileName, Result.StartLine, Result.StartAddress); 1250 if (Spec.FLIKind != FileLineInfoKind::None) { 1251 if (const DWARFLineTable *LineTable = getLineTableForUnit(CU)) { 1252 LineTable->getFileLineInfoForAddress( 1253 {Address.Address, Address.SectionIndex}, CU->getCompilationDir(), 1254 Spec.FLIKind, Result); 1255 } 1256 } 1257 return Result; 1258 } 1259 1260 DILineInfoTable DWARFContext::getLineInfoForAddressRange( 1261 object::SectionedAddress Address, uint64_t Size, DILineInfoSpecifier Spec) { 1262 DILineInfoTable Lines; 1263 DWARFCompileUnit *CU = getCompileUnitForAddress(Address.Address); 1264 if (!CU) 1265 return Lines; 1266 1267 uint32_t StartLine = 0; 1268 std::string StartFileName; 1269 std::string FunctionName(DILineInfo::BadString); 1270 Optional<uint64_t> StartAddress; 1271 getFunctionNameAndStartLineForAddress(CU, Address.Address, Spec.FNKind, 1272 Spec.FLIKind, FunctionName, 1273 StartFileName, StartLine, StartAddress); 1274 1275 // If the Specifier says we don't need FileLineInfo, just 1276 // return the top-most function at the starting address. 1277 if (Spec.FLIKind == FileLineInfoKind::None) { 1278 DILineInfo Result; 1279 Result.FunctionName = FunctionName; 1280 Result.StartFileName = StartFileName; 1281 Result.StartLine = StartLine; 1282 Result.StartAddress = StartAddress; 1283 Lines.push_back(std::make_pair(Address.Address, Result)); 1284 return Lines; 1285 } 1286 1287 const DWARFLineTable *LineTable = getLineTableForUnit(CU); 1288 1289 // Get the index of row we're looking for in the line table. 1290 std::vector<uint32_t> RowVector; 1291 if (!LineTable->lookupAddressRange({Address.Address, Address.SectionIndex}, 1292 Size, RowVector)) { 1293 return Lines; 1294 } 1295 1296 for (uint32_t RowIndex : RowVector) { 1297 // Take file number and line/column from the row. 1298 const DWARFDebugLine::Row &Row = LineTable->Rows[RowIndex]; 1299 DILineInfo Result; 1300 LineTable->getFileNameByIndex(Row.File, CU->getCompilationDir(), 1301 Spec.FLIKind, Result.FileName); 1302 Result.FunctionName = FunctionName; 1303 Result.Line = Row.Line; 1304 Result.Column = Row.Column; 1305 Result.StartFileName = StartFileName; 1306 Result.StartLine = StartLine; 1307 Result.StartAddress = StartAddress; 1308 Lines.push_back(std::make_pair(Row.Address.Address, Result)); 1309 } 1310 1311 return Lines; 1312 } 1313 1314 DIInliningInfo 1315 DWARFContext::getInliningInfoForAddress(object::SectionedAddress Address, 1316 DILineInfoSpecifier Spec) { 1317 DIInliningInfo InliningInfo; 1318 1319 DWARFCompileUnit *CU = getCompileUnitForAddress(Address.Address); 1320 if (!CU) 1321 return InliningInfo; 1322 1323 const DWARFLineTable *LineTable = nullptr; 1324 SmallVector<DWARFDie, 4> InlinedChain; 1325 CU->getInlinedChainForAddress(Address.Address, InlinedChain); 1326 if (InlinedChain.size() == 0) { 1327 // If there is no DIE for address (e.g. it is in unavailable .dwo file), 1328 // try to at least get file/line info from symbol table. 1329 if (Spec.FLIKind != FileLineInfoKind::None) { 1330 DILineInfo Frame; 1331 LineTable = getLineTableForUnit(CU); 1332 if (LineTable && LineTable->getFileLineInfoForAddress( 1333 {Address.Address, Address.SectionIndex}, 1334 CU->getCompilationDir(), Spec.FLIKind, Frame)) 1335 InliningInfo.addFrame(Frame); 1336 } 1337 return InliningInfo; 1338 } 1339 1340 uint32_t CallFile = 0, CallLine = 0, CallColumn = 0, CallDiscriminator = 0; 1341 for (uint32_t i = 0, n = InlinedChain.size(); i != n; i++) { 1342 DWARFDie &FunctionDIE = InlinedChain[i]; 1343 DILineInfo Frame; 1344 // Get function name if necessary. 1345 if (const char *Name = FunctionDIE.getSubroutineName(Spec.FNKind)) 1346 Frame.FunctionName = Name; 1347 if (auto DeclLineResult = FunctionDIE.getDeclLine()) 1348 Frame.StartLine = DeclLineResult; 1349 Frame.StartFileName = FunctionDIE.getDeclFile(Spec.FLIKind); 1350 if (auto LowPcAddr = toSectionedAddress(FunctionDIE.find(DW_AT_low_pc))) 1351 Frame.StartAddress = LowPcAddr->Address; 1352 if (Spec.FLIKind != FileLineInfoKind::None) { 1353 if (i == 0) { 1354 // For the topmost frame, initialize the line table of this 1355 // compile unit and fetch file/line info from it. 1356 LineTable = getLineTableForUnit(CU); 1357 // For the topmost routine, get file/line info from line table. 1358 if (LineTable) 1359 LineTable->getFileLineInfoForAddress( 1360 {Address.Address, Address.SectionIndex}, CU->getCompilationDir(), 1361 Spec.FLIKind, Frame); 1362 } else { 1363 // Otherwise, use call file, call line and call column from 1364 // previous DIE in inlined chain. 1365 if (LineTable) 1366 LineTable->getFileNameByIndex(CallFile, CU->getCompilationDir(), 1367 Spec.FLIKind, Frame.FileName); 1368 Frame.Line = CallLine; 1369 Frame.Column = CallColumn; 1370 Frame.Discriminator = CallDiscriminator; 1371 } 1372 // Get call file/line/column of a current DIE. 1373 if (i + 1 < n) { 1374 FunctionDIE.getCallerFrame(CallFile, CallLine, CallColumn, 1375 CallDiscriminator); 1376 } 1377 } 1378 InliningInfo.addFrame(Frame); 1379 } 1380 return InliningInfo; 1381 } 1382 1383 std::shared_ptr<DWARFContext> 1384 DWARFContext::getDWOContext(StringRef AbsolutePath) { 1385 if (auto S = DWP.lock()) { 1386 DWARFContext *Ctxt = S->Context.get(); 1387 return std::shared_ptr<DWARFContext>(std::move(S), Ctxt); 1388 } 1389 1390 std::weak_ptr<DWOFile> *Entry = &DWOFiles[AbsolutePath]; 1391 1392 if (auto S = Entry->lock()) { 1393 DWARFContext *Ctxt = S->Context.get(); 1394 return std::shared_ptr<DWARFContext>(std::move(S), Ctxt); 1395 } 1396 1397 Expected<OwningBinary<ObjectFile>> Obj = [&] { 1398 if (!CheckedForDWP) { 1399 SmallString<128> DWPName; 1400 auto Obj = object::ObjectFile::createObjectFile( 1401 this->DWPName.empty() 1402 ? (DObj->getFileName() + ".dwp").toStringRef(DWPName) 1403 : StringRef(this->DWPName)); 1404 if (Obj) { 1405 Entry = &DWP; 1406 return Obj; 1407 } else { 1408 CheckedForDWP = true; 1409 // TODO: Should this error be handled (maybe in a high verbosity mode) 1410 // before falling back to .dwo files? 1411 consumeError(Obj.takeError()); 1412 } 1413 } 1414 1415 return object::ObjectFile::createObjectFile(AbsolutePath); 1416 }(); 1417 1418 if (!Obj) { 1419 // TODO: Actually report errors helpfully. 1420 consumeError(Obj.takeError()); 1421 return nullptr; 1422 } 1423 1424 auto S = std::make_shared<DWOFile>(); 1425 S->File = std::move(Obj.get()); 1426 S->Context = DWARFContext::create(*S->File.getBinary(), 1427 ProcessDebugRelocations::Ignore); 1428 *Entry = S; 1429 auto *Ctxt = S->Context.get(); 1430 return std::shared_ptr<DWARFContext>(std::move(S), Ctxt); 1431 } 1432 1433 static Error createError(const Twine &Reason, llvm::Error E) { 1434 return make_error<StringError>(Reason + toString(std::move(E)), 1435 inconvertibleErrorCode()); 1436 } 1437 1438 /// SymInfo contains information about symbol: it's address 1439 /// and section index which is -1LL for absolute symbols. 1440 struct SymInfo { 1441 uint64_t Address; 1442 uint64_t SectionIndex; 1443 }; 1444 1445 /// Returns the address of symbol relocation used against and a section index. 1446 /// Used for futher relocations computation. Symbol's section load address is 1447 static Expected<SymInfo> getSymbolInfo(const object::ObjectFile &Obj, 1448 const RelocationRef &Reloc, 1449 const LoadedObjectInfo *L, 1450 std::map<SymbolRef, SymInfo> &Cache) { 1451 SymInfo Ret = {0, (uint64_t)-1LL}; 1452 object::section_iterator RSec = Obj.section_end(); 1453 object::symbol_iterator Sym = Reloc.getSymbol(); 1454 1455 std::map<SymbolRef, SymInfo>::iterator CacheIt = Cache.end(); 1456 // First calculate the address of the symbol or section as it appears 1457 // in the object file 1458 if (Sym != Obj.symbol_end()) { 1459 bool New; 1460 std::tie(CacheIt, New) = Cache.insert({*Sym, {0, 0}}); 1461 if (!New) 1462 return CacheIt->second; 1463 1464 Expected<uint64_t> SymAddrOrErr = Sym->getAddress(); 1465 if (!SymAddrOrErr) 1466 return createError("failed to compute symbol address: ", 1467 SymAddrOrErr.takeError()); 1468 1469 // Also remember what section this symbol is in for later 1470 auto SectOrErr = Sym->getSection(); 1471 if (!SectOrErr) 1472 return createError("failed to get symbol section: ", 1473 SectOrErr.takeError()); 1474 1475 RSec = *SectOrErr; 1476 Ret.Address = *SymAddrOrErr; 1477 } else if (auto *MObj = dyn_cast<MachOObjectFile>(&Obj)) { 1478 RSec = MObj->getRelocationSection(Reloc.getRawDataRefImpl()); 1479 Ret.Address = RSec->getAddress(); 1480 } 1481 1482 if (RSec != Obj.section_end()) 1483 Ret.SectionIndex = RSec->getIndex(); 1484 1485 // If we are given load addresses for the sections, we need to adjust: 1486 // SymAddr = (Address of Symbol Or Section in File) - 1487 // (Address of Section in File) + 1488 // (Load Address of Section) 1489 // RSec is now either the section being targeted or the section 1490 // containing the symbol being targeted. In either case, 1491 // we need to perform the same computation. 1492 if (L && RSec != Obj.section_end()) 1493 if (uint64_t SectionLoadAddress = L->getSectionLoadAddress(*RSec)) 1494 Ret.Address += SectionLoadAddress - RSec->getAddress(); 1495 1496 if (CacheIt != Cache.end()) 1497 CacheIt->second = Ret; 1498 1499 return Ret; 1500 } 1501 1502 static bool isRelocScattered(const object::ObjectFile &Obj, 1503 const RelocationRef &Reloc) { 1504 const MachOObjectFile *MachObj = dyn_cast<MachOObjectFile>(&Obj); 1505 if (!MachObj) 1506 return false; 1507 // MachO also has relocations that point to sections and 1508 // scattered relocations. 1509 auto RelocInfo = MachObj->getRelocation(Reloc.getRawDataRefImpl()); 1510 return MachObj->isRelocationScattered(RelocInfo); 1511 } 1512 1513 namespace { 1514 struct DWARFSectionMap final : public DWARFSection { 1515 RelocAddrMap Relocs; 1516 }; 1517 1518 class DWARFObjInMemory final : public DWARFObject { 1519 bool IsLittleEndian; 1520 uint8_t AddressSize; 1521 StringRef FileName; 1522 const object::ObjectFile *Obj = nullptr; 1523 std::vector<SectionName> SectionNames; 1524 1525 using InfoSectionMap = MapVector<object::SectionRef, DWARFSectionMap, 1526 std::map<object::SectionRef, unsigned>>; 1527 1528 InfoSectionMap InfoSections; 1529 InfoSectionMap TypesSections; 1530 InfoSectionMap InfoDWOSections; 1531 InfoSectionMap TypesDWOSections; 1532 1533 DWARFSectionMap LocSection; 1534 DWARFSectionMap LoclistsSection; 1535 DWARFSectionMap LoclistsDWOSection; 1536 DWARFSectionMap LineSection; 1537 DWARFSectionMap RangesSection; 1538 DWARFSectionMap RnglistsSection; 1539 DWARFSectionMap StrOffsetsSection; 1540 DWARFSectionMap LineDWOSection; 1541 DWARFSectionMap FrameSection; 1542 DWARFSectionMap EHFrameSection; 1543 DWARFSectionMap LocDWOSection; 1544 DWARFSectionMap StrOffsetsDWOSection; 1545 DWARFSectionMap RangesDWOSection; 1546 DWARFSectionMap RnglistsDWOSection; 1547 DWARFSectionMap AddrSection; 1548 DWARFSectionMap AppleNamesSection; 1549 DWARFSectionMap AppleTypesSection; 1550 DWARFSectionMap AppleNamespacesSection; 1551 DWARFSectionMap AppleObjCSection; 1552 DWARFSectionMap NamesSection; 1553 DWARFSectionMap PubnamesSection; 1554 DWARFSectionMap PubtypesSection; 1555 DWARFSectionMap GnuPubnamesSection; 1556 DWARFSectionMap GnuPubtypesSection; 1557 DWARFSectionMap MacroSection; 1558 1559 DWARFSectionMap *mapNameToDWARFSection(StringRef Name) { 1560 return StringSwitch<DWARFSectionMap *>(Name) 1561 .Case("debug_loc", &LocSection) 1562 .Case("debug_loclists", &LoclistsSection) 1563 .Case("debug_loclists.dwo", &LoclistsDWOSection) 1564 .Case("debug_line", &LineSection) 1565 .Case("debug_frame", &FrameSection) 1566 .Case("eh_frame", &EHFrameSection) 1567 .Case("debug_str_offsets", &StrOffsetsSection) 1568 .Case("debug_ranges", &RangesSection) 1569 .Case("debug_rnglists", &RnglistsSection) 1570 .Case("debug_loc.dwo", &LocDWOSection) 1571 .Case("debug_line.dwo", &LineDWOSection) 1572 .Case("debug_names", &NamesSection) 1573 .Case("debug_rnglists.dwo", &RnglistsDWOSection) 1574 .Case("debug_str_offsets.dwo", &StrOffsetsDWOSection) 1575 .Case("debug_addr", &AddrSection) 1576 .Case("apple_names", &AppleNamesSection) 1577 .Case("debug_pubnames", &PubnamesSection) 1578 .Case("debug_pubtypes", &PubtypesSection) 1579 .Case("debug_gnu_pubnames", &GnuPubnamesSection) 1580 .Case("debug_gnu_pubtypes", &GnuPubtypesSection) 1581 .Case("apple_types", &AppleTypesSection) 1582 .Case("apple_namespaces", &AppleNamespacesSection) 1583 .Case("apple_namespac", &AppleNamespacesSection) 1584 .Case("apple_objc", &AppleObjCSection) 1585 .Case("debug_macro", &MacroSection) 1586 .Default(nullptr); 1587 } 1588 1589 StringRef AbbrevSection; 1590 StringRef ArangesSection; 1591 StringRef StrSection; 1592 StringRef MacinfoSection; 1593 StringRef MacinfoDWOSection; 1594 StringRef MacroDWOSection; 1595 StringRef AbbrevDWOSection; 1596 StringRef StrDWOSection; 1597 StringRef CUIndexSection; 1598 StringRef GdbIndexSection; 1599 StringRef TUIndexSection; 1600 StringRef LineStrSection; 1601 1602 // A deque holding section data whose iterators are not invalidated when 1603 // new decompressed sections are inserted at the end. 1604 std::deque<SmallString<0>> UncompressedSections; 1605 1606 StringRef *mapSectionToMember(StringRef Name) { 1607 if (DWARFSection *Sec = mapNameToDWARFSection(Name)) 1608 return &Sec->Data; 1609 return StringSwitch<StringRef *>(Name) 1610 .Case("debug_abbrev", &AbbrevSection) 1611 .Case("debug_aranges", &ArangesSection) 1612 .Case("debug_str", &StrSection) 1613 .Case("debug_macinfo", &MacinfoSection) 1614 .Case("debug_macinfo.dwo", &MacinfoDWOSection) 1615 .Case("debug_macro.dwo", &MacroDWOSection) 1616 .Case("debug_abbrev.dwo", &AbbrevDWOSection) 1617 .Case("debug_str.dwo", &StrDWOSection) 1618 .Case("debug_cu_index", &CUIndexSection) 1619 .Case("debug_tu_index", &TUIndexSection) 1620 .Case("gdb_index", &GdbIndexSection) 1621 .Case("debug_line_str", &LineStrSection) 1622 // Any more debug info sections go here. 1623 .Default(nullptr); 1624 } 1625 1626 /// If Sec is compressed section, decompresses and updates its contents 1627 /// provided by Data. Otherwise leaves it unchanged. 1628 Error maybeDecompress(const object::SectionRef &Sec, StringRef Name, 1629 StringRef &Data) { 1630 if (!Decompressor::isCompressed(Sec)) 1631 return Error::success(); 1632 1633 Expected<Decompressor> Decompressor = 1634 Decompressor::create(Name, Data, IsLittleEndian, AddressSize == 8); 1635 if (!Decompressor) 1636 return Decompressor.takeError(); 1637 1638 SmallString<0> Out; 1639 if (auto Err = Decompressor->resizeAndDecompress(Out)) 1640 return Err; 1641 1642 UncompressedSections.push_back(std::move(Out)); 1643 Data = UncompressedSections.back(); 1644 1645 return Error::success(); 1646 } 1647 1648 public: 1649 DWARFObjInMemory(const StringMap<std::unique_ptr<MemoryBuffer>> &Sections, 1650 uint8_t AddrSize, bool IsLittleEndian) 1651 : IsLittleEndian(IsLittleEndian) { 1652 for (const auto &SecIt : Sections) { 1653 if (StringRef *SectionData = mapSectionToMember(SecIt.first())) 1654 *SectionData = SecIt.second->getBuffer(); 1655 else if (SecIt.first() == "debug_info") 1656 // Find debug_info and debug_types data by section rather than name as 1657 // there are multiple, comdat grouped, of these sections. 1658 InfoSections[SectionRef()].Data = SecIt.second->getBuffer(); 1659 else if (SecIt.first() == "debug_info.dwo") 1660 InfoDWOSections[SectionRef()].Data = SecIt.second->getBuffer(); 1661 else if (SecIt.first() == "debug_types") 1662 TypesSections[SectionRef()].Data = SecIt.second->getBuffer(); 1663 else if (SecIt.first() == "debug_types.dwo") 1664 TypesDWOSections[SectionRef()].Data = SecIt.second->getBuffer(); 1665 } 1666 } 1667 DWARFObjInMemory(const object::ObjectFile &Obj, const LoadedObjectInfo *L, 1668 function_ref<void(Error)> HandleError, 1669 function_ref<void(Error)> HandleWarning, 1670 DWARFContext::ProcessDebugRelocations RelocAction) 1671 : IsLittleEndian(Obj.isLittleEndian()), 1672 AddressSize(Obj.getBytesInAddress()), FileName(Obj.getFileName()), 1673 Obj(&Obj) { 1674 1675 StringMap<unsigned> SectionAmountMap; 1676 for (const SectionRef &Section : Obj.sections()) { 1677 StringRef Name; 1678 if (auto NameOrErr = Section.getName()) 1679 Name = *NameOrErr; 1680 else 1681 consumeError(NameOrErr.takeError()); 1682 1683 ++SectionAmountMap[Name]; 1684 SectionNames.push_back({ Name, true }); 1685 1686 // Skip BSS and Virtual sections, they aren't interesting. 1687 if (Section.isBSS() || Section.isVirtual()) 1688 continue; 1689 1690 // Skip sections stripped by dsymutil. 1691 if (Section.isStripped()) 1692 continue; 1693 1694 StringRef Data; 1695 Expected<section_iterator> SecOrErr = Section.getRelocatedSection(); 1696 if (!SecOrErr) { 1697 HandleError(createError("failed to get relocated section: ", 1698 SecOrErr.takeError())); 1699 continue; 1700 } 1701 1702 // Try to obtain an already relocated version of this section. 1703 // Else use the unrelocated section from the object file. We'll have to 1704 // apply relocations ourselves later. 1705 section_iterator RelocatedSection = 1706 Obj.isRelocatableObject() ? *SecOrErr : Obj.section_end(); 1707 if (!L || !L->getLoadedSectionContents(*RelocatedSection, Data)) { 1708 Expected<StringRef> E = Section.getContents(); 1709 if (E) 1710 Data = *E; 1711 else 1712 // maybeDecompress below will error. 1713 consumeError(E.takeError()); 1714 } 1715 1716 if (auto Err = maybeDecompress(Section, Name, Data)) { 1717 HandleError(createError("failed to decompress '" + Name + "', ", 1718 std::move(Err))); 1719 continue; 1720 } 1721 1722 // Compressed sections names in GNU style starts from ".z", 1723 // at this point section is decompressed and we drop compression prefix. 1724 Name = Name.substr( 1725 Name.find_first_not_of("._z")); // Skip ".", "z" and "_" prefixes. 1726 1727 // Map platform specific debug section names to DWARF standard section 1728 // names. 1729 Name = Obj.mapDebugSectionName(Name); 1730 1731 if (StringRef *SectionData = mapSectionToMember(Name)) { 1732 *SectionData = Data; 1733 if (Name == "debug_ranges") { 1734 // FIXME: Use the other dwo range section when we emit it. 1735 RangesDWOSection.Data = Data; 1736 } else if (Name == "debug_frame" || Name == "eh_frame") { 1737 if (DWARFSection *S = mapNameToDWARFSection(Name)) 1738 S->Address = Section.getAddress(); 1739 } 1740 } else if (InfoSectionMap *Sections = 1741 StringSwitch<InfoSectionMap *>(Name) 1742 .Case("debug_info", &InfoSections) 1743 .Case("debug_info.dwo", &InfoDWOSections) 1744 .Case("debug_types", &TypesSections) 1745 .Case("debug_types.dwo", &TypesDWOSections) 1746 .Default(nullptr)) { 1747 // Find debug_info and debug_types data by section rather than name as 1748 // there are multiple, comdat grouped, of these sections. 1749 DWARFSectionMap &S = (*Sections)[Section]; 1750 S.Data = Data; 1751 } 1752 1753 if (RelocatedSection != Obj.section_end() && Name.contains(".dwo")) 1754 HandleWarning( 1755 createError("Unexpected relocations for dwo section " + Name)); 1756 1757 if (RelocatedSection == Obj.section_end() || 1758 (RelocAction == DWARFContext::ProcessDebugRelocations::Ignore)) 1759 continue; 1760 1761 StringRef RelSecName; 1762 if (auto NameOrErr = RelocatedSection->getName()) 1763 RelSecName = *NameOrErr; 1764 else 1765 consumeError(NameOrErr.takeError()); 1766 1767 // If the section we're relocating was relocated already by the JIT, 1768 // then we used the relocated version above, so we do not need to process 1769 // relocations for it now. 1770 StringRef RelSecData; 1771 if (L && L->getLoadedSectionContents(*RelocatedSection, RelSecData)) 1772 continue; 1773 1774 // In Mach-o files, the relocations do not need to be applied if 1775 // there is no load offset to apply. The value read at the 1776 // relocation point already factors in the section address 1777 // (actually applying the relocations will produce wrong results 1778 // as the section address will be added twice). 1779 if (!L && isa<MachOObjectFile>(&Obj)) 1780 continue; 1781 1782 RelSecName = RelSecName.substr( 1783 RelSecName.find_first_not_of("._z")); // Skip . and _ prefixes. 1784 1785 // TODO: Add support for relocations in other sections as needed. 1786 // Record relocations for the debug_info and debug_line sections. 1787 DWARFSectionMap *Sec = mapNameToDWARFSection(RelSecName); 1788 RelocAddrMap *Map = Sec ? &Sec->Relocs : nullptr; 1789 if (!Map) { 1790 // Find debug_info and debug_types relocs by section rather than name 1791 // as there are multiple, comdat grouped, of these sections. 1792 if (RelSecName == "debug_info") 1793 Map = &static_cast<DWARFSectionMap &>(InfoSections[*RelocatedSection]) 1794 .Relocs; 1795 else if (RelSecName == "debug_types") 1796 Map = 1797 &static_cast<DWARFSectionMap &>(TypesSections[*RelocatedSection]) 1798 .Relocs; 1799 else 1800 continue; 1801 } 1802 1803 if (Section.relocation_begin() == Section.relocation_end()) 1804 continue; 1805 1806 // Symbol to [address, section index] cache mapping. 1807 std::map<SymbolRef, SymInfo> AddrCache; 1808 SupportsRelocation Supports; 1809 RelocationResolver Resolver; 1810 std::tie(Supports, Resolver) = getRelocationResolver(Obj); 1811 for (const RelocationRef &Reloc : Section.relocations()) { 1812 // FIXME: it's not clear how to correctly handle scattered 1813 // relocations. 1814 if (isRelocScattered(Obj, Reloc)) 1815 continue; 1816 1817 Expected<SymInfo> SymInfoOrErr = 1818 getSymbolInfo(Obj, Reloc, L, AddrCache); 1819 if (!SymInfoOrErr) { 1820 HandleError(SymInfoOrErr.takeError()); 1821 continue; 1822 } 1823 1824 // Check if Resolver can handle this relocation type early so as not to 1825 // handle invalid cases in DWARFDataExtractor. 1826 // 1827 // TODO Don't store Resolver in every RelocAddrEntry. 1828 if (Supports && Supports(Reloc.getType())) { 1829 auto I = Map->try_emplace( 1830 Reloc.getOffset(), 1831 RelocAddrEntry{SymInfoOrErr->SectionIndex, Reloc, 1832 SymInfoOrErr->Address, 1833 Optional<object::RelocationRef>(), 0, Resolver}); 1834 // If we didn't successfully insert that's because we already had a 1835 // relocation for that offset. Store it as a second relocation in the 1836 // same RelocAddrEntry instead. 1837 if (!I.second) { 1838 RelocAddrEntry &entry = I.first->getSecond(); 1839 if (entry.Reloc2) { 1840 HandleError(createError( 1841 "At most two relocations per offset are supported")); 1842 } 1843 entry.Reloc2 = Reloc; 1844 entry.SymbolValue2 = SymInfoOrErr->Address; 1845 } 1846 } else { 1847 SmallString<32> Type; 1848 Reloc.getTypeName(Type); 1849 // FIXME: Support more relocations & change this to an error 1850 HandleWarning( 1851 createError("failed to compute relocation: " + Type + ", ", 1852 errorCodeToError(object_error::parse_failed))); 1853 } 1854 } 1855 } 1856 1857 for (SectionName &S : SectionNames) 1858 if (SectionAmountMap[S.Name] > 1) 1859 S.IsNameUnique = false; 1860 } 1861 1862 Optional<RelocAddrEntry> find(const DWARFSection &S, 1863 uint64_t Pos) const override { 1864 auto &Sec = static_cast<const DWARFSectionMap &>(S); 1865 RelocAddrMap::const_iterator AI = Sec.Relocs.find(Pos); 1866 if (AI == Sec.Relocs.end()) 1867 return None; 1868 return AI->second; 1869 } 1870 1871 const object::ObjectFile *getFile() const override { return Obj; } 1872 1873 ArrayRef<SectionName> getSectionNames() const override { 1874 return SectionNames; 1875 } 1876 1877 bool isLittleEndian() const override { return IsLittleEndian; } 1878 StringRef getAbbrevDWOSection() const override { return AbbrevDWOSection; } 1879 const DWARFSection &getLineDWOSection() const override { 1880 return LineDWOSection; 1881 } 1882 const DWARFSection &getLocDWOSection() const override { 1883 return LocDWOSection; 1884 } 1885 StringRef getStrDWOSection() const override { return StrDWOSection; } 1886 const DWARFSection &getStrOffsetsDWOSection() const override { 1887 return StrOffsetsDWOSection; 1888 } 1889 const DWARFSection &getRangesDWOSection() const override { 1890 return RangesDWOSection; 1891 } 1892 const DWARFSection &getRnglistsDWOSection() const override { 1893 return RnglistsDWOSection; 1894 } 1895 const DWARFSection &getLoclistsDWOSection() const override { 1896 return LoclistsDWOSection; 1897 } 1898 const DWARFSection &getAddrSection() const override { return AddrSection; } 1899 StringRef getCUIndexSection() const override { return CUIndexSection; } 1900 StringRef getGdbIndexSection() const override { return GdbIndexSection; } 1901 StringRef getTUIndexSection() const override { return TUIndexSection; } 1902 1903 // DWARF v5 1904 const DWARFSection &getStrOffsetsSection() const override { 1905 return StrOffsetsSection; 1906 } 1907 StringRef getLineStrSection() const override { return LineStrSection; } 1908 1909 // Sections for DWARF5 split dwarf proposal. 1910 void forEachInfoDWOSections( 1911 function_ref<void(const DWARFSection &)> F) const override { 1912 for (auto &P : InfoDWOSections) 1913 F(P.second); 1914 } 1915 void forEachTypesDWOSections( 1916 function_ref<void(const DWARFSection &)> F) const override { 1917 for (auto &P : TypesDWOSections) 1918 F(P.second); 1919 } 1920 1921 StringRef getAbbrevSection() const override { return AbbrevSection; } 1922 const DWARFSection &getLocSection() const override { return LocSection; } 1923 const DWARFSection &getLoclistsSection() const override { return LoclistsSection; } 1924 StringRef getArangesSection() const override { return ArangesSection; } 1925 const DWARFSection &getFrameSection() const override { 1926 return FrameSection; 1927 } 1928 const DWARFSection &getEHFrameSection() const override { 1929 return EHFrameSection; 1930 } 1931 const DWARFSection &getLineSection() const override { return LineSection; } 1932 StringRef getStrSection() const override { return StrSection; } 1933 const DWARFSection &getRangesSection() const override { return RangesSection; } 1934 const DWARFSection &getRnglistsSection() const override { 1935 return RnglistsSection; 1936 } 1937 const DWARFSection &getMacroSection() const override { return MacroSection; } 1938 StringRef getMacroDWOSection() const override { return MacroDWOSection; } 1939 StringRef getMacinfoSection() const override { return MacinfoSection; } 1940 StringRef getMacinfoDWOSection() const override { return MacinfoDWOSection; } 1941 const DWARFSection &getPubnamesSection() const override { return PubnamesSection; } 1942 const DWARFSection &getPubtypesSection() const override { return PubtypesSection; } 1943 const DWARFSection &getGnuPubnamesSection() const override { 1944 return GnuPubnamesSection; 1945 } 1946 const DWARFSection &getGnuPubtypesSection() const override { 1947 return GnuPubtypesSection; 1948 } 1949 const DWARFSection &getAppleNamesSection() const override { 1950 return AppleNamesSection; 1951 } 1952 const DWARFSection &getAppleTypesSection() const override { 1953 return AppleTypesSection; 1954 } 1955 const DWARFSection &getAppleNamespacesSection() const override { 1956 return AppleNamespacesSection; 1957 } 1958 const DWARFSection &getAppleObjCSection() const override { 1959 return AppleObjCSection; 1960 } 1961 const DWARFSection &getNamesSection() const override { 1962 return NamesSection; 1963 } 1964 1965 StringRef getFileName() const override { return FileName; } 1966 uint8_t getAddressSize() const override { return AddressSize; } 1967 void forEachInfoSections( 1968 function_ref<void(const DWARFSection &)> F) const override { 1969 for (auto &P : InfoSections) 1970 F(P.second); 1971 } 1972 void forEachTypesSections( 1973 function_ref<void(const DWARFSection &)> F) const override { 1974 for (auto &P : TypesSections) 1975 F(P.second); 1976 } 1977 }; 1978 } // namespace 1979 1980 std::unique_ptr<DWARFContext> 1981 DWARFContext::create(const object::ObjectFile &Obj, 1982 ProcessDebugRelocations RelocAction, 1983 const LoadedObjectInfo *L, std::string DWPName, 1984 std::function<void(Error)> RecoverableErrorHandler, 1985 std::function<void(Error)> WarningHandler) { 1986 auto DObj = std::make_unique<DWARFObjInMemory>( 1987 Obj, L, RecoverableErrorHandler, WarningHandler, RelocAction); 1988 return std::make_unique<DWARFContext>(std::move(DObj), std::move(DWPName), 1989 RecoverableErrorHandler, 1990 WarningHandler); 1991 } 1992 1993 std::unique_ptr<DWARFContext> 1994 DWARFContext::create(const StringMap<std::unique_ptr<MemoryBuffer>> &Sections, 1995 uint8_t AddrSize, bool isLittleEndian, 1996 std::function<void(Error)> RecoverableErrorHandler, 1997 std::function<void(Error)> WarningHandler) { 1998 auto DObj = 1999 std::make_unique<DWARFObjInMemory>(Sections, AddrSize, isLittleEndian); 2000 return std::make_unique<DWARFContext>( 2001 std::move(DObj), "", RecoverableErrorHandler, WarningHandler); 2002 } 2003 2004 Error DWARFContext::loadRegisterInfo(const object::ObjectFile &Obj) { 2005 // Detect the architecture from the object file. We usually don't need OS 2006 // info to lookup a target and create register info. 2007 Triple TT; 2008 TT.setArch(Triple::ArchType(Obj.getArch())); 2009 TT.setVendor(Triple::UnknownVendor); 2010 TT.setOS(Triple::UnknownOS); 2011 std::string TargetLookupError; 2012 const Target *TheTarget = 2013 TargetRegistry::lookupTarget(TT.str(), TargetLookupError); 2014 if (!TargetLookupError.empty()) 2015 return createStringError(errc::invalid_argument, 2016 TargetLookupError.c_str()); 2017 RegInfo.reset(TheTarget->createMCRegInfo(TT.str())); 2018 return Error::success(); 2019 } 2020 2021 uint8_t DWARFContext::getCUAddrSize() { 2022 // In theory, different compile units may have different address byte 2023 // sizes, but for simplicity we just use the address byte size of the 2024 // first compile unit. In practice the address size field is repeated across 2025 // various DWARF headers (at least in version 5) to make it easier to dump 2026 // them independently, not to enable varying the address size. 2027 auto CUs = compile_units(); 2028 return CUs.empty() ? 0 : (*CUs.begin())->getAddressByteSize(); 2029 } 2030