1 //===-- MachODump.cpp - Object file dumping utility for llvm --------------===// 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 MachO-specific dumper for llvm-objdump. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "MachODump.h" 14 15 #include "ObjdumpOptID.h" 16 #include "llvm-objdump.h" 17 #include "llvm-c/Disassembler.h" 18 #include "llvm/ADT/STLExtras.h" 19 #include "llvm/ADT/StringExtras.h" 20 #include "llvm/ADT/Triple.h" 21 #include "llvm/BinaryFormat/MachO.h" 22 #include "llvm/Config/config.h" 23 #include "llvm/DebugInfo/DIContext.h" 24 #include "llvm/DebugInfo/DWARF/DWARFContext.h" 25 #include "llvm/Demangle/Demangle.h" 26 #include "llvm/MC/MCAsmInfo.h" 27 #include "llvm/MC/MCContext.h" 28 #include "llvm/MC/MCDisassembler/MCDisassembler.h" 29 #include "llvm/MC/MCInst.h" 30 #include "llvm/MC/MCInstPrinter.h" 31 #include "llvm/MC/MCInstrDesc.h" 32 #include "llvm/MC/MCInstrInfo.h" 33 #include "llvm/MC/MCRegisterInfo.h" 34 #include "llvm/MC/MCSubtargetInfo.h" 35 #include "llvm/MC/MCTargetOptions.h" 36 #include "llvm/MC/TargetRegistry.h" 37 #include "llvm/Object/MachO.h" 38 #include "llvm/Object/MachOUniversal.h" 39 #include "llvm/Option/ArgList.h" 40 #include "llvm/Support/Casting.h" 41 #include "llvm/Support/Debug.h" 42 #include "llvm/Support/Endian.h" 43 #include "llvm/Support/Format.h" 44 #include "llvm/Support/FormattedStream.h" 45 #include "llvm/Support/GraphWriter.h" 46 #include "llvm/Support/LEB128.h" 47 #include "llvm/Support/MemoryBuffer.h" 48 #include "llvm/Support/TargetSelect.h" 49 #include "llvm/Support/ToolOutputFile.h" 50 #include "llvm/Support/WithColor.h" 51 #include "llvm/Support/raw_ostream.h" 52 #include <algorithm> 53 #include <cstring> 54 #include <system_error> 55 56 #ifdef LLVM_HAVE_LIBXAR 57 extern "C" { 58 #include <xar/xar.h> 59 } 60 #endif 61 62 using namespace llvm; 63 using namespace llvm::object; 64 using namespace llvm::objdump; 65 66 bool objdump::FirstPrivateHeader; 67 bool objdump::ExportsTrie; 68 bool objdump::Rebase; 69 bool objdump::Rpaths; 70 bool objdump::Bind; 71 bool objdump::LazyBind; 72 bool objdump::WeakBind; 73 static bool UseDbg; 74 static std::string DSYMFile; 75 bool objdump::FullLeadingAddr; 76 bool objdump::LeadingHeaders; 77 bool objdump::UniversalHeaders; 78 static bool ArchiveMemberOffsets; 79 bool objdump::IndirectSymbols; 80 bool objdump::DataInCode; 81 bool objdump::FunctionStarts; 82 bool objdump::LinkOptHints; 83 bool objdump::InfoPlist; 84 bool objdump::DyldInfo; 85 bool objdump::DylibsUsed; 86 bool objdump::DylibId; 87 bool objdump::Verbose; 88 bool objdump::ObjcMetaData; 89 std::string objdump::DisSymName; 90 bool objdump::SymbolicOperands; 91 static std::vector<std::string> ArchFlags; 92 93 static bool ArchAll = false; 94 static std::string ThumbTripleName; 95 96 void objdump::parseMachOOptions(const llvm::opt::InputArgList &InputArgs) { 97 FirstPrivateHeader = InputArgs.hasArg(OBJDUMP_private_header); 98 ExportsTrie = InputArgs.hasArg(OBJDUMP_exports_trie); 99 Rebase = InputArgs.hasArg(OBJDUMP_rebase); 100 Rpaths = InputArgs.hasArg(OBJDUMP_rpaths); 101 Bind = InputArgs.hasArg(OBJDUMP_bind); 102 LazyBind = InputArgs.hasArg(OBJDUMP_lazy_bind); 103 WeakBind = InputArgs.hasArg(OBJDUMP_weak_bind); 104 UseDbg = InputArgs.hasArg(OBJDUMP_g); 105 DSYMFile = InputArgs.getLastArgValue(OBJDUMP_dsym_EQ).str(); 106 FullLeadingAddr = InputArgs.hasArg(OBJDUMP_full_leading_addr); 107 LeadingHeaders = !InputArgs.hasArg(OBJDUMP_no_leading_headers); 108 UniversalHeaders = InputArgs.hasArg(OBJDUMP_universal_headers); 109 ArchiveMemberOffsets = InputArgs.hasArg(OBJDUMP_archive_member_offsets); 110 IndirectSymbols = InputArgs.hasArg(OBJDUMP_indirect_symbols); 111 DataInCode = InputArgs.hasArg(OBJDUMP_data_in_code); 112 FunctionStarts = InputArgs.hasArg(OBJDUMP_function_starts); 113 LinkOptHints = InputArgs.hasArg(OBJDUMP_link_opt_hints); 114 InfoPlist = InputArgs.hasArg(OBJDUMP_info_plist); 115 DyldInfo = InputArgs.hasArg(OBJDUMP_dyld_info); 116 DylibsUsed = InputArgs.hasArg(OBJDUMP_dylibs_used); 117 DylibId = InputArgs.hasArg(OBJDUMP_dylib_id); 118 Verbose = !InputArgs.hasArg(OBJDUMP_non_verbose); 119 ObjcMetaData = InputArgs.hasArg(OBJDUMP_objc_meta_data); 120 DisSymName = InputArgs.getLastArgValue(OBJDUMP_dis_symname).str(); 121 SymbolicOperands = !InputArgs.hasArg(OBJDUMP_no_symbolic_operands); 122 ArchFlags = InputArgs.getAllArgValues(OBJDUMP_arch_EQ); 123 } 124 125 static const Target *GetTarget(const MachOObjectFile *MachOObj, 126 const char **McpuDefault, 127 const Target **ThumbTarget) { 128 // Figure out the target triple. 129 Triple TT(TripleName); 130 if (TripleName.empty()) { 131 TT = MachOObj->getArchTriple(McpuDefault); 132 TripleName = TT.str(); 133 } 134 135 if (TT.getArch() == Triple::arm) { 136 // We've inferred a 32-bit ARM target from the object file. All MachO CPUs 137 // that support ARM are also capable of Thumb mode. 138 Triple ThumbTriple = TT; 139 std::string ThumbName = (Twine("thumb") + TT.getArchName().substr(3)).str(); 140 ThumbTriple.setArchName(ThumbName); 141 ThumbTripleName = ThumbTriple.str(); 142 } 143 144 // Get the target specific parser. 145 std::string Error; 146 const Target *TheTarget = TargetRegistry::lookupTarget(TripleName, Error); 147 if (TheTarget && ThumbTripleName.empty()) 148 return TheTarget; 149 150 *ThumbTarget = TargetRegistry::lookupTarget(ThumbTripleName, Error); 151 if (*ThumbTarget) 152 return TheTarget; 153 154 WithColor::error(errs(), "llvm-objdump") << "unable to get target for '"; 155 if (!TheTarget) 156 errs() << TripleName; 157 else 158 errs() << ThumbTripleName; 159 errs() << "', see --version and --triple.\n"; 160 return nullptr; 161 } 162 163 namespace { 164 struct SymbolSorter { 165 bool operator()(const SymbolRef &A, const SymbolRef &B) { 166 Expected<SymbolRef::Type> ATypeOrErr = A.getType(); 167 if (!ATypeOrErr) 168 reportError(ATypeOrErr.takeError(), A.getObject()->getFileName()); 169 SymbolRef::Type AType = *ATypeOrErr; 170 Expected<SymbolRef::Type> BTypeOrErr = B.getType(); 171 if (!BTypeOrErr) 172 reportError(BTypeOrErr.takeError(), B.getObject()->getFileName()); 173 SymbolRef::Type BType = *BTypeOrErr; 174 uint64_t AAddr = 175 (AType != SymbolRef::ST_Function) ? 0 : cantFail(A.getValue()); 176 uint64_t BAddr = 177 (BType != SymbolRef::ST_Function) ? 0 : cantFail(B.getValue()); 178 return AAddr < BAddr; 179 } 180 }; 181 } // namespace 182 183 // Types for the storted data in code table that is built before disassembly 184 // and the predicate function to sort them. 185 typedef std::pair<uint64_t, DiceRef> DiceTableEntry; 186 typedef std::vector<DiceTableEntry> DiceTable; 187 typedef DiceTable::iterator dice_table_iterator; 188 189 #ifdef LLVM_HAVE_LIBXAR 190 namespace { 191 struct ScopedXarFile { 192 xar_t xar; 193 ScopedXarFile(const char *filename, int32_t flags) { 194 #pragma clang diagnostic push 195 #pragma clang diagnostic ignored "-Wdeprecated-declarations" 196 xar = xar_open(filename, flags); 197 #pragma clang diagnostic pop 198 } 199 ~ScopedXarFile() { 200 if (xar) 201 xar_close(xar); 202 } 203 ScopedXarFile(const ScopedXarFile &) = delete; 204 ScopedXarFile &operator=(const ScopedXarFile &) = delete; 205 operator xar_t() { return xar; } 206 }; 207 208 struct ScopedXarIter { 209 xar_iter_t iter; 210 ScopedXarIter() : iter(xar_iter_new()) {} 211 ~ScopedXarIter() { 212 if (iter) 213 xar_iter_free(iter); 214 } 215 ScopedXarIter(const ScopedXarIter &) = delete; 216 ScopedXarIter &operator=(const ScopedXarIter &) = delete; 217 operator xar_iter_t() { return iter; } 218 }; 219 } // namespace 220 #endif // defined(LLVM_HAVE_LIBXAR) 221 222 // This is used to search for a data in code table entry for the PC being 223 // disassembled. The j parameter has the PC in j.first. A single data in code 224 // table entry can cover many bytes for each of its Kind's. So if the offset, 225 // aka the i.first value, of the data in code table entry plus its Length 226 // covers the PC being searched for this will return true. If not it will 227 // return false. 228 static bool compareDiceTableEntries(const DiceTableEntry &i, 229 const DiceTableEntry &j) { 230 uint16_t Length; 231 i.second.getLength(Length); 232 233 return j.first >= i.first && j.first < i.first + Length; 234 } 235 236 static uint64_t DumpDataInCode(const uint8_t *bytes, uint64_t Length, 237 unsigned short Kind) { 238 uint32_t Value, Size = 1; 239 240 switch (Kind) { 241 default: 242 case MachO::DICE_KIND_DATA: 243 if (Length >= 4) { 244 if (ShowRawInsn) 245 dumpBytes(makeArrayRef(bytes, 4), outs()); 246 Value = bytes[3] << 24 | bytes[2] << 16 | bytes[1] << 8 | bytes[0]; 247 outs() << "\t.long " << Value; 248 Size = 4; 249 } else if (Length >= 2) { 250 if (ShowRawInsn) 251 dumpBytes(makeArrayRef(bytes, 2), outs()); 252 Value = bytes[1] << 8 | bytes[0]; 253 outs() << "\t.short " << Value; 254 Size = 2; 255 } else { 256 if (ShowRawInsn) 257 dumpBytes(makeArrayRef(bytes, 2), outs()); 258 Value = bytes[0]; 259 outs() << "\t.byte " << Value; 260 Size = 1; 261 } 262 if (Kind == MachO::DICE_KIND_DATA) 263 outs() << "\t@ KIND_DATA\n"; 264 else 265 outs() << "\t@ data in code kind = " << Kind << "\n"; 266 break; 267 case MachO::DICE_KIND_JUMP_TABLE8: 268 if (ShowRawInsn) 269 dumpBytes(makeArrayRef(bytes, 1), outs()); 270 Value = bytes[0]; 271 outs() << "\t.byte " << format("%3u", Value) << "\t@ KIND_JUMP_TABLE8\n"; 272 Size = 1; 273 break; 274 case MachO::DICE_KIND_JUMP_TABLE16: 275 if (ShowRawInsn) 276 dumpBytes(makeArrayRef(bytes, 2), outs()); 277 Value = bytes[1] << 8 | bytes[0]; 278 outs() << "\t.short " << format("%5u", Value & 0xffff) 279 << "\t@ KIND_JUMP_TABLE16\n"; 280 Size = 2; 281 break; 282 case MachO::DICE_KIND_JUMP_TABLE32: 283 case MachO::DICE_KIND_ABS_JUMP_TABLE32: 284 if (ShowRawInsn) 285 dumpBytes(makeArrayRef(bytes, 4), outs()); 286 Value = bytes[3] << 24 | bytes[2] << 16 | bytes[1] << 8 | bytes[0]; 287 outs() << "\t.long " << Value; 288 if (Kind == MachO::DICE_KIND_JUMP_TABLE32) 289 outs() << "\t@ KIND_JUMP_TABLE32\n"; 290 else 291 outs() << "\t@ KIND_ABS_JUMP_TABLE32\n"; 292 Size = 4; 293 break; 294 } 295 return Size; 296 } 297 298 static void getSectionsAndSymbols(MachOObjectFile *MachOObj, 299 std::vector<SectionRef> &Sections, 300 std::vector<SymbolRef> &Symbols, 301 SmallVectorImpl<uint64_t> &FoundFns, 302 uint64_t &BaseSegmentAddress) { 303 const StringRef FileName = MachOObj->getFileName(); 304 for (const SymbolRef &Symbol : MachOObj->symbols()) { 305 StringRef SymName = unwrapOrError(Symbol.getName(), FileName); 306 if (!SymName.startswith("ltmp")) 307 Symbols.push_back(Symbol); 308 } 309 310 append_range(Sections, MachOObj->sections()); 311 312 bool BaseSegmentAddressSet = false; 313 for (const auto &Command : MachOObj->load_commands()) { 314 if (Command.C.cmd == MachO::LC_FUNCTION_STARTS) { 315 // We found a function starts segment, parse the addresses for later 316 // consumption. 317 MachO::linkedit_data_command LLC = 318 MachOObj->getLinkeditDataLoadCommand(Command); 319 320 MachOObj->ReadULEB128s(LLC.dataoff, FoundFns); 321 } else if (Command.C.cmd == MachO::LC_SEGMENT) { 322 MachO::segment_command SLC = MachOObj->getSegmentLoadCommand(Command); 323 StringRef SegName = SLC.segname; 324 if (!BaseSegmentAddressSet && SegName != "__PAGEZERO") { 325 BaseSegmentAddressSet = true; 326 BaseSegmentAddress = SLC.vmaddr; 327 } 328 } else if (Command.C.cmd == MachO::LC_SEGMENT_64) { 329 MachO::segment_command_64 SLC = MachOObj->getSegment64LoadCommand(Command); 330 StringRef SegName = SLC.segname; 331 if (!BaseSegmentAddressSet && SegName != "__PAGEZERO") { 332 BaseSegmentAddressSet = true; 333 BaseSegmentAddress = SLC.vmaddr; 334 } 335 } 336 } 337 } 338 339 static bool DumpAndSkipDataInCode(uint64_t PC, const uint8_t *bytes, 340 DiceTable &Dices, uint64_t &InstSize) { 341 // Check the data in code table here to see if this is data not an 342 // instruction to be disassembled. 343 DiceTable Dice; 344 Dice.push_back(std::make_pair(PC, DiceRef())); 345 dice_table_iterator DTI = 346 std::search(Dices.begin(), Dices.end(), Dice.begin(), Dice.end(), 347 compareDiceTableEntries); 348 if (DTI != Dices.end()) { 349 uint16_t Length; 350 DTI->second.getLength(Length); 351 uint16_t Kind; 352 DTI->second.getKind(Kind); 353 InstSize = DumpDataInCode(bytes, Length, Kind); 354 if ((Kind == MachO::DICE_KIND_JUMP_TABLE8) && 355 (PC == (DTI->first + Length - 1)) && (Length & 1)) 356 InstSize++; 357 return true; 358 } 359 return false; 360 } 361 362 static void printRelocationTargetName(const MachOObjectFile *O, 363 const MachO::any_relocation_info &RE, 364 raw_string_ostream &Fmt) { 365 // Target of a scattered relocation is an address. In the interest of 366 // generating pretty output, scan through the symbol table looking for a 367 // symbol that aligns with that address. If we find one, print it. 368 // Otherwise, we just print the hex address of the target. 369 const StringRef FileName = O->getFileName(); 370 if (O->isRelocationScattered(RE)) { 371 uint32_t Val = O->getPlainRelocationSymbolNum(RE); 372 373 for (const SymbolRef &Symbol : O->symbols()) { 374 uint64_t Addr = unwrapOrError(Symbol.getAddress(), FileName); 375 if (Addr != Val) 376 continue; 377 Fmt << unwrapOrError(Symbol.getName(), FileName); 378 return; 379 } 380 381 // If we couldn't find a symbol that this relocation refers to, try 382 // to find a section beginning instead. 383 for (const SectionRef &Section : ToolSectionFilter(*O)) { 384 uint64_t Addr = Section.getAddress(); 385 if (Addr != Val) 386 continue; 387 StringRef NameOrErr = unwrapOrError(Section.getName(), O->getFileName()); 388 Fmt << NameOrErr; 389 return; 390 } 391 392 Fmt << format("0x%x", Val); 393 return; 394 } 395 396 StringRef S; 397 bool isExtern = O->getPlainRelocationExternal(RE); 398 uint64_t Val = O->getPlainRelocationSymbolNum(RE); 399 400 if (O->getAnyRelocationType(RE) == MachO::ARM64_RELOC_ADDEND && 401 (O->getArch() == Triple::aarch64 || O->getArch() == Triple::aarch64_be)) { 402 Fmt << format("0x%0" PRIx64, Val); 403 return; 404 } 405 406 if (isExtern) { 407 symbol_iterator SI = O->symbol_begin(); 408 std::advance(SI, Val); 409 S = unwrapOrError(SI->getName(), FileName); 410 } else { 411 section_iterator SI = O->section_begin(); 412 // Adjust for the fact that sections are 1-indexed. 413 if (Val == 0) { 414 Fmt << "0 (?,?)"; 415 return; 416 } 417 uint32_t I = Val - 1; 418 while (I != 0 && SI != O->section_end()) { 419 --I; 420 std::advance(SI, 1); 421 } 422 if (SI == O->section_end()) { 423 Fmt << Val << " (?,?)"; 424 } else { 425 if (Expected<StringRef> NameOrErr = SI->getName()) 426 S = *NameOrErr; 427 else 428 consumeError(NameOrErr.takeError()); 429 } 430 } 431 432 Fmt << S; 433 } 434 435 Error objdump::getMachORelocationValueString(const MachOObjectFile *Obj, 436 const RelocationRef &RelRef, 437 SmallVectorImpl<char> &Result) { 438 DataRefImpl Rel = RelRef.getRawDataRefImpl(); 439 MachO::any_relocation_info RE = Obj->getRelocation(Rel); 440 441 unsigned Arch = Obj->getArch(); 442 443 std::string FmtBuf; 444 raw_string_ostream Fmt(FmtBuf); 445 unsigned Type = Obj->getAnyRelocationType(RE); 446 bool IsPCRel = Obj->getAnyRelocationPCRel(RE); 447 448 // Determine any addends that should be displayed with the relocation. 449 // These require decoding the relocation type, which is triple-specific. 450 451 // X86_64 has entirely custom relocation types. 452 if (Arch == Triple::x86_64) { 453 switch (Type) { 454 case MachO::X86_64_RELOC_GOT_LOAD: 455 case MachO::X86_64_RELOC_GOT: { 456 printRelocationTargetName(Obj, RE, Fmt); 457 Fmt << "@GOT"; 458 if (IsPCRel) 459 Fmt << "PCREL"; 460 break; 461 } 462 case MachO::X86_64_RELOC_SUBTRACTOR: { 463 DataRefImpl RelNext = Rel; 464 Obj->moveRelocationNext(RelNext); 465 MachO::any_relocation_info RENext = Obj->getRelocation(RelNext); 466 467 // X86_64_RELOC_SUBTRACTOR must be followed by a relocation of type 468 // X86_64_RELOC_UNSIGNED. 469 // NOTE: Scattered relocations don't exist on x86_64. 470 unsigned RType = Obj->getAnyRelocationType(RENext); 471 if (RType != MachO::X86_64_RELOC_UNSIGNED) 472 reportError(Obj->getFileName(), "Expected X86_64_RELOC_UNSIGNED after " 473 "X86_64_RELOC_SUBTRACTOR."); 474 475 // The X86_64_RELOC_UNSIGNED contains the minuend symbol; 476 // X86_64_RELOC_SUBTRACTOR contains the subtrahend. 477 printRelocationTargetName(Obj, RENext, Fmt); 478 Fmt << "-"; 479 printRelocationTargetName(Obj, RE, Fmt); 480 break; 481 } 482 case MachO::X86_64_RELOC_TLV: 483 printRelocationTargetName(Obj, RE, Fmt); 484 Fmt << "@TLV"; 485 if (IsPCRel) 486 Fmt << "P"; 487 break; 488 case MachO::X86_64_RELOC_SIGNED_1: 489 printRelocationTargetName(Obj, RE, Fmt); 490 Fmt << "-1"; 491 break; 492 case MachO::X86_64_RELOC_SIGNED_2: 493 printRelocationTargetName(Obj, RE, Fmt); 494 Fmt << "-2"; 495 break; 496 case MachO::X86_64_RELOC_SIGNED_4: 497 printRelocationTargetName(Obj, RE, Fmt); 498 Fmt << "-4"; 499 break; 500 default: 501 printRelocationTargetName(Obj, RE, Fmt); 502 break; 503 } 504 // X86 and ARM share some relocation types in common. 505 } else if (Arch == Triple::x86 || Arch == Triple::arm || 506 Arch == Triple::ppc) { 507 // Generic relocation types... 508 switch (Type) { 509 case MachO::GENERIC_RELOC_PAIR: // prints no info 510 return Error::success(); 511 case MachO::GENERIC_RELOC_SECTDIFF: { 512 DataRefImpl RelNext = Rel; 513 Obj->moveRelocationNext(RelNext); 514 MachO::any_relocation_info RENext = Obj->getRelocation(RelNext); 515 516 // X86 sect diff's must be followed by a relocation of type 517 // GENERIC_RELOC_PAIR. 518 unsigned RType = Obj->getAnyRelocationType(RENext); 519 520 if (RType != MachO::GENERIC_RELOC_PAIR) 521 reportError(Obj->getFileName(), "Expected GENERIC_RELOC_PAIR after " 522 "GENERIC_RELOC_SECTDIFF."); 523 524 printRelocationTargetName(Obj, RE, Fmt); 525 Fmt << "-"; 526 printRelocationTargetName(Obj, RENext, Fmt); 527 break; 528 } 529 } 530 531 if (Arch == Triple::x86 || Arch == Triple::ppc) { 532 switch (Type) { 533 case MachO::GENERIC_RELOC_LOCAL_SECTDIFF: { 534 DataRefImpl RelNext = Rel; 535 Obj->moveRelocationNext(RelNext); 536 MachO::any_relocation_info RENext = Obj->getRelocation(RelNext); 537 538 // X86 sect diff's must be followed by a relocation of type 539 // GENERIC_RELOC_PAIR. 540 unsigned RType = Obj->getAnyRelocationType(RENext); 541 if (RType != MachO::GENERIC_RELOC_PAIR) 542 reportError(Obj->getFileName(), "Expected GENERIC_RELOC_PAIR after " 543 "GENERIC_RELOC_LOCAL_SECTDIFF."); 544 545 printRelocationTargetName(Obj, RE, Fmt); 546 Fmt << "-"; 547 printRelocationTargetName(Obj, RENext, Fmt); 548 break; 549 } 550 case MachO::GENERIC_RELOC_TLV: { 551 printRelocationTargetName(Obj, RE, Fmt); 552 Fmt << "@TLV"; 553 if (IsPCRel) 554 Fmt << "P"; 555 break; 556 } 557 default: 558 printRelocationTargetName(Obj, RE, Fmt); 559 } 560 } else { // ARM-specific relocations 561 switch (Type) { 562 case MachO::ARM_RELOC_HALF: 563 case MachO::ARM_RELOC_HALF_SECTDIFF: { 564 // Half relocations steal a bit from the length field to encode 565 // whether this is an upper16 or a lower16 relocation. 566 bool isUpper = (Obj->getAnyRelocationLength(RE) & 0x1) == 1; 567 568 if (isUpper) 569 Fmt << ":upper16:("; 570 else 571 Fmt << ":lower16:("; 572 printRelocationTargetName(Obj, RE, Fmt); 573 574 DataRefImpl RelNext = Rel; 575 Obj->moveRelocationNext(RelNext); 576 MachO::any_relocation_info RENext = Obj->getRelocation(RelNext); 577 578 // ARM half relocs must be followed by a relocation of type 579 // ARM_RELOC_PAIR. 580 unsigned RType = Obj->getAnyRelocationType(RENext); 581 if (RType != MachO::ARM_RELOC_PAIR) 582 reportError(Obj->getFileName(), "Expected ARM_RELOC_PAIR after " 583 "ARM_RELOC_HALF"); 584 585 // NOTE: The half of the target virtual address is stashed in the 586 // address field of the secondary relocation, but we can't reverse 587 // engineer the constant offset from it without decoding the movw/movt 588 // instruction to find the other half in its immediate field. 589 590 // ARM_RELOC_HALF_SECTDIFF encodes the second section in the 591 // symbol/section pointer of the follow-on relocation. 592 if (Type == MachO::ARM_RELOC_HALF_SECTDIFF) { 593 Fmt << "-"; 594 printRelocationTargetName(Obj, RENext, Fmt); 595 } 596 597 Fmt << ")"; 598 break; 599 } 600 default: { 601 printRelocationTargetName(Obj, RE, Fmt); 602 } 603 } 604 } 605 } else 606 printRelocationTargetName(Obj, RE, Fmt); 607 608 Fmt.flush(); 609 Result.append(FmtBuf.begin(), FmtBuf.end()); 610 return Error::success(); 611 } 612 613 static void PrintIndirectSymbolTable(MachOObjectFile *O, bool verbose, 614 uint32_t n, uint32_t count, 615 uint32_t stride, uint64_t addr) { 616 MachO::dysymtab_command Dysymtab = O->getDysymtabLoadCommand(); 617 uint32_t nindirectsyms = Dysymtab.nindirectsyms; 618 if (n > nindirectsyms) 619 outs() << " (entries start past the end of the indirect symbol " 620 "table) (reserved1 field greater than the table size)"; 621 else if (n + count > nindirectsyms) 622 outs() << " (entries extends past the end of the indirect symbol " 623 "table)"; 624 outs() << "\n"; 625 uint32_t cputype = O->getHeader().cputype; 626 if (cputype & MachO::CPU_ARCH_ABI64) 627 outs() << "address index"; 628 else 629 outs() << "address index"; 630 if (verbose) 631 outs() << " name\n"; 632 else 633 outs() << "\n"; 634 for (uint32_t j = 0; j < count && n + j < nindirectsyms; j++) { 635 if (cputype & MachO::CPU_ARCH_ABI64) 636 outs() << format("0x%016" PRIx64, addr + j * stride) << " "; 637 else 638 outs() << format("0x%08" PRIx32, (uint32_t)addr + j * stride) << " "; 639 MachO::dysymtab_command Dysymtab = O->getDysymtabLoadCommand(); 640 uint32_t indirect_symbol = O->getIndirectSymbolTableEntry(Dysymtab, n + j); 641 if (indirect_symbol == MachO::INDIRECT_SYMBOL_LOCAL) { 642 outs() << "LOCAL\n"; 643 continue; 644 } 645 if (indirect_symbol == 646 (MachO::INDIRECT_SYMBOL_LOCAL | MachO::INDIRECT_SYMBOL_ABS)) { 647 outs() << "LOCAL ABSOLUTE\n"; 648 continue; 649 } 650 if (indirect_symbol == MachO::INDIRECT_SYMBOL_ABS) { 651 outs() << "ABSOLUTE\n"; 652 continue; 653 } 654 outs() << format("%5u ", indirect_symbol); 655 if (verbose) { 656 MachO::symtab_command Symtab = O->getSymtabLoadCommand(); 657 if (indirect_symbol < Symtab.nsyms) { 658 symbol_iterator Sym = O->getSymbolByIndex(indirect_symbol); 659 SymbolRef Symbol = *Sym; 660 outs() << unwrapOrError(Symbol.getName(), O->getFileName()); 661 } else { 662 outs() << "?"; 663 } 664 } 665 outs() << "\n"; 666 } 667 } 668 669 static void PrintIndirectSymbols(MachOObjectFile *O, bool verbose) { 670 for (const auto &Load : O->load_commands()) { 671 if (Load.C.cmd == MachO::LC_SEGMENT_64) { 672 MachO::segment_command_64 Seg = O->getSegment64LoadCommand(Load); 673 for (unsigned J = 0; J < Seg.nsects; ++J) { 674 MachO::section_64 Sec = O->getSection64(Load, J); 675 uint32_t section_type = Sec.flags & MachO::SECTION_TYPE; 676 if (section_type == MachO::S_NON_LAZY_SYMBOL_POINTERS || 677 section_type == MachO::S_LAZY_SYMBOL_POINTERS || 678 section_type == MachO::S_LAZY_DYLIB_SYMBOL_POINTERS || 679 section_type == MachO::S_THREAD_LOCAL_VARIABLE_POINTERS || 680 section_type == MachO::S_SYMBOL_STUBS) { 681 uint32_t stride; 682 if (section_type == MachO::S_SYMBOL_STUBS) 683 stride = Sec.reserved2; 684 else 685 stride = 8; 686 if (stride == 0) { 687 outs() << "Can't print indirect symbols for (" << Sec.segname << "," 688 << Sec.sectname << ") " 689 << "(size of stubs in reserved2 field is zero)\n"; 690 continue; 691 } 692 uint32_t count = Sec.size / stride; 693 outs() << "Indirect symbols for (" << Sec.segname << "," 694 << Sec.sectname << ") " << count << " entries"; 695 uint32_t n = Sec.reserved1; 696 PrintIndirectSymbolTable(O, verbose, n, count, stride, Sec.addr); 697 } 698 } 699 } else if (Load.C.cmd == MachO::LC_SEGMENT) { 700 MachO::segment_command Seg = O->getSegmentLoadCommand(Load); 701 for (unsigned J = 0; J < Seg.nsects; ++J) { 702 MachO::section Sec = O->getSection(Load, J); 703 uint32_t section_type = Sec.flags & MachO::SECTION_TYPE; 704 if (section_type == MachO::S_NON_LAZY_SYMBOL_POINTERS || 705 section_type == MachO::S_LAZY_SYMBOL_POINTERS || 706 section_type == MachO::S_LAZY_DYLIB_SYMBOL_POINTERS || 707 section_type == MachO::S_THREAD_LOCAL_VARIABLE_POINTERS || 708 section_type == MachO::S_SYMBOL_STUBS) { 709 uint32_t stride; 710 if (section_type == MachO::S_SYMBOL_STUBS) 711 stride = Sec.reserved2; 712 else 713 stride = 4; 714 if (stride == 0) { 715 outs() << "Can't print indirect symbols for (" << Sec.segname << "," 716 << Sec.sectname << ") " 717 << "(size of stubs in reserved2 field is zero)\n"; 718 continue; 719 } 720 uint32_t count = Sec.size / stride; 721 outs() << "Indirect symbols for (" << Sec.segname << "," 722 << Sec.sectname << ") " << count << " entries"; 723 uint32_t n = Sec.reserved1; 724 PrintIndirectSymbolTable(O, verbose, n, count, stride, Sec.addr); 725 } 726 } 727 } 728 } 729 } 730 731 static void PrintRType(const uint64_t cputype, const unsigned r_type) { 732 static char const *generic_r_types[] = { 733 "VANILLA ", "PAIR ", "SECTDIF ", "PBLAPTR ", "LOCSDIF ", "TLV ", 734 " 6 (?) ", " 7 (?) ", " 8 (?) ", " 9 (?) ", " 10 (?) ", " 11 (?) ", 735 " 12 (?) ", " 13 (?) ", " 14 (?) ", " 15 (?) " 736 }; 737 static char const *x86_64_r_types[] = { 738 "UNSIGND ", "SIGNED ", "BRANCH ", "GOT_LD ", "GOT ", "SUB ", 739 "SIGNED1 ", "SIGNED2 ", "SIGNED4 ", "TLV ", " 10 (?) ", " 11 (?) ", 740 " 12 (?) ", " 13 (?) ", " 14 (?) ", " 15 (?) " 741 }; 742 static char const *arm_r_types[] = { 743 "VANILLA ", "PAIR ", "SECTDIFF", "LOCSDIF ", "PBLAPTR ", 744 "BR24 ", "T_BR22 ", "T_BR32 ", "HALF ", "HALFDIF ", 745 " 10 (?) ", " 11 (?) ", " 12 (?) ", " 13 (?) ", " 14 (?) ", " 15 (?) " 746 }; 747 static char const *arm64_r_types[] = { 748 "UNSIGND ", "SUB ", "BR26 ", "PAGE21 ", "PAGOF12 ", 749 "GOTLDP ", "GOTLDPOF", "PTRTGOT ", "TLVLDP ", "TLVLDPOF", 750 "ADDEND ", " 11 (?) ", " 12 (?) ", " 13 (?) ", " 14 (?) ", " 15 (?) " 751 }; 752 753 if (r_type > 0xf){ 754 outs() << format("%-7u", r_type) << " "; 755 return; 756 } 757 switch (cputype) { 758 case MachO::CPU_TYPE_I386: 759 outs() << generic_r_types[r_type]; 760 break; 761 case MachO::CPU_TYPE_X86_64: 762 outs() << x86_64_r_types[r_type]; 763 break; 764 case MachO::CPU_TYPE_ARM: 765 outs() << arm_r_types[r_type]; 766 break; 767 case MachO::CPU_TYPE_ARM64: 768 case MachO::CPU_TYPE_ARM64_32: 769 outs() << arm64_r_types[r_type]; 770 break; 771 default: 772 outs() << format("%-7u ", r_type); 773 } 774 } 775 776 static void PrintRLength(const uint64_t cputype, const unsigned r_type, 777 const unsigned r_length, const bool previous_arm_half){ 778 if (cputype == MachO::CPU_TYPE_ARM && 779 (r_type == MachO::ARM_RELOC_HALF || 780 r_type == MachO::ARM_RELOC_HALF_SECTDIFF || previous_arm_half == true)) { 781 if ((r_length & 0x1) == 0) 782 outs() << "lo/"; 783 else 784 outs() << "hi/"; 785 if ((r_length & 0x1) == 0) 786 outs() << "arm "; 787 else 788 outs() << "thm "; 789 } else { 790 switch (r_length) { 791 case 0: 792 outs() << "byte "; 793 break; 794 case 1: 795 outs() << "word "; 796 break; 797 case 2: 798 outs() << "long "; 799 break; 800 case 3: 801 if (cputype == MachO::CPU_TYPE_X86_64) 802 outs() << "quad "; 803 else 804 outs() << format("?(%2d) ", r_length); 805 break; 806 default: 807 outs() << format("?(%2d) ", r_length); 808 } 809 } 810 } 811 812 static void PrintRelocationEntries(const MachOObjectFile *O, 813 const relocation_iterator Begin, 814 const relocation_iterator End, 815 const uint64_t cputype, 816 const bool verbose) { 817 const MachO::symtab_command Symtab = O->getSymtabLoadCommand(); 818 bool previous_arm_half = false; 819 bool previous_sectdiff = false; 820 uint32_t sectdiff_r_type = 0; 821 822 for (relocation_iterator Reloc = Begin; Reloc != End; ++Reloc) { 823 const DataRefImpl Rel = Reloc->getRawDataRefImpl(); 824 const MachO::any_relocation_info RE = O->getRelocation(Rel); 825 const unsigned r_type = O->getAnyRelocationType(RE); 826 const bool r_scattered = O->isRelocationScattered(RE); 827 const unsigned r_pcrel = O->getAnyRelocationPCRel(RE); 828 const unsigned r_length = O->getAnyRelocationLength(RE); 829 const unsigned r_address = O->getAnyRelocationAddress(RE); 830 const bool r_extern = (r_scattered ? false : 831 O->getPlainRelocationExternal(RE)); 832 const uint32_t r_value = (r_scattered ? 833 O->getScatteredRelocationValue(RE) : 0); 834 const unsigned r_symbolnum = (r_scattered ? 0 : 835 O->getPlainRelocationSymbolNum(RE)); 836 837 if (r_scattered && cputype != MachO::CPU_TYPE_X86_64) { 838 if (verbose) { 839 // scattered: address 840 if ((cputype == MachO::CPU_TYPE_I386 && 841 r_type == MachO::GENERIC_RELOC_PAIR) || 842 (cputype == MachO::CPU_TYPE_ARM && r_type == MachO::ARM_RELOC_PAIR)) 843 outs() << " "; 844 else 845 outs() << format("%08x ", (unsigned int)r_address); 846 847 // scattered: pcrel 848 if (r_pcrel) 849 outs() << "True "; 850 else 851 outs() << "False "; 852 853 // scattered: length 854 PrintRLength(cputype, r_type, r_length, previous_arm_half); 855 856 // scattered: extern & type 857 outs() << "n/a "; 858 PrintRType(cputype, r_type); 859 860 // scattered: scattered & value 861 outs() << format("True 0x%08x", (unsigned int)r_value); 862 if (previous_sectdiff == false) { 863 if ((cputype == MachO::CPU_TYPE_ARM && 864 r_type == MachO::ARM_RELOC_PAIR)) 865 outs() << format(" half = 0x%04x ", (unsigned int)r_address); 866 } else if (cputype == MachO::CPU_TYPE_ARM && 867 sectdiff_r_type == MachO::ARM_RELOC_HALF_SECTDIFF) 868 outs() << format(" other_half = 0x%04x ", (unsigned int)r_address); 869 if ((cputype == MachO::CPU_TYPE_I386 && 870 (r_type == MachO::GENERIC_RELOC_SECTDIFF || 871 r_type == MachO::GENERIC_RELOC_LOCAL_SECTDIFF)) || 872 (cputype == MachO::CPU_TYPE_ARM && 873 (sectdiff_r_type == MachO::ARM_RELOC_SECTDIFF || 874 sectdiff_r_type == MachO::ARM_RELOC_LOCAL_SECTDIFF || 875 sectdiff_r_type == MachO::ARM_RELOC_HALF_SECTDIFF))) { 876 previous_sectdiff = true; 877 sectdiff_r_type = r_type; 878 } else { 879 previous_sectdiff = false; 880 sectdiff_r_type = 0; 881 } 882 if (cputype == MachO::CPU_TYPE_ARM && 883 (r_type == MachO::ARM_RELOC_HALF || 884 r_type == MachO::ARM_RELOC_HALF_SECTDIFF)) 885 previous_arm_half = true; 886 else 887 previous_arm_half = false; 888 outs() << "\n"; 889 } 890 else { 891 // scattered: address pcrel length extern type scattered value 892 outs() << format("%08x %1d %-2d n/a %-7d 1 0x%08x\n", 893 (unsigned int)r_address, r_pcrel, r_length, r_type, 894 (unsigned int)r_value); 895 } 896 } 897 else { 898 if (verbose) { 899 // plain: address 900 if (cputype == MachO::CPU_TYPE_ARM && r_type == MachO::ARM_RELOC_PAIR) 901 outs() << " "; 902 else 903 outs() << format("%08x ", (unsigned int)r_address); 904 905 // plain: pcrel 906 if (r_pcrel) 907 outs() << "True "; 908 else 909 outs() << "False "; 910 911 // plain: length 912 PrintRLength(cputype, r_type, r_length, previous_arm_half); 913 914 if (r_extern) { 915 // plain: extern & type & scattered 916 outs() << "True "; 917 PrintRType(cputype, r_type); 918 outs() << "False "; 919 920 // plain: symbolnum/value 921 if (r_symbolnum > Symtab.nsyms) 922 outs() << format("?(%d)\n", r_symbolnum); 923 else { 924 SymbolRef Symbol = *O->getSymbolByIndex(r_symbolnum); 925 Expected<StringRef> SymNameNext = Symbol.getName(); 926 const char *name = nullptr; 927 if (SymNameNext) 928 name = SymNameNext->data(); 929 if (name == nullptr) 930 outs() << format("?(%d)\n", r_symbolnum); 931 else 932 outs() << name << "\n"; 933 } 934 } 935 else { 936 // plain: extern & type & scattered 937 outs() << "False "; 938 PrintRType(cputype, r_type); 939 outs() << "False "; 940 941 // plain: symbolnum/value 942 if (cputype == MachO::CPU_TYPE_ARM && r_type == MachO::ARM_RELOC_PAIR) 943 outs() << format("other_half = 0x%04x\n", (unsigned int)r_address); 944 else if ((cputype == MachO::CPU_TYPE_ARM64 || 945 cputype == MachO::CPU_TYPE_ARM64_32) && 946 r_type == MachO::ARM64_RELOC_ADDEND) 947 outs() << format("addend = 0x%06x\n", (unsigned int)r_symbolnum); 948 else { 949 outs() << format("%d ", r_symbolnum); 950 if (r_symbolnum == MachO::R_ABS) 951 outs() << "R_ABS\n"; 952 else { 953 // in this case, r_symbolnum is actually a 1-based section number 954 uint32_t nsects = O->section_end()->getRawDataRefImpl().d.a; 955 if (r_symbolnum > 0 && r_symbolnum <= nsects) { 956 object::DataRefImpl DRI; 957 DRI.d.a = r_symbolnum-1; 958 StringRef SegName = O->getSectionFinalSegmentName(DRI); 959 if (Expected<StringRef> NameOrErr = O->getSectionName(DRI)) 960 outs() << "(" << SegName << "," << *NameOrErr << ")\n"; 961 else 962 outs() << "(?,?)\n"; 963 } 964 else { 965 outs() << "(?,?)\n"; 966 } 967 } 968 } 969 } 970 if (cputype == MachO::CPU_TYPE_ARM && 971 (r_type == MachO::ARM_RELOC_HALF || 972 r_type == MachO::ARM_RELOC_HALF_SECTDIFF)) 973 previous_arm_half = true; 974 else 975 previous_arm_half = false; 976 } 977 else { 978 // plain: address pcrel length extern type scattered symbolnum/section 979 outs() << format("%08x %1d %-2d %1d %-7d 0 %d\n", 980 (unsigned int)r_address, r_pcrel, r_length, r_extern, 981 r_type, r_symbolnum); 982 } 983 } 984 } 985 } 986 987 static void PrintRelocations(const MachOObjectFile *O, const bool verbose) { 988 const uint64_t cputype = O->getHeader().cputype; 989 const MachO::dysymtab_command Dysymtab = O->getDysymtabLoadCommand(); 990 if (Dysymtab.nextrel != 0) { 991 outs() << "External relocation information " << Dysymtab.nextrel 992 << " entries"; 993 outs() << "\naddress pcrel length extern type scattered " 994 "symbolnum/value\n"; 995 PrintRelocationEntries(O, O->extrel_begin(), O->extrel_end(), cputype, 996 verbose); 997 } 998 if (Dysymtab.nlocrel != 0) { 999 outs() << format("Local relocation information %u entries", 1000 Dysymtab.nlocrel); 1001 outs() << "\naddress pcrel length extern type scattered " 1002 "symbolnum/value\n"; 1003 PrintRelocationEntries(O, O->locrel_begin(), O->locrel_end(), cputype, 1004 verbose); 1005 } 1006 for (const auto &Load : O->load_commands()) { 1007 if (Load.C.cmd == MachO::LC_SEGMENT_64) { 1008 const MachO::segment_command_64 Seg = O->getSegment64LoadCommand(Load); 1009 for (unsigned J = 0; J < Seg.nsects; ++J) { 1010 const MachO::section_64 Sec = O->getSection64(Load, J); 1011 if (Sec.nreloc != 0) { 1012 DataRefImpl DRI; 1013 DRI.d.a = J; 1014 const StringRef SegName = O->getSectionFinalSegmentName(DRI); 1015 if (Expected<StringRef> NameOrErr = O->getSectionName(DRI)) 1016 outs() << "Relocation information (" << SegName << "," << *NameOrErr 1017 << format(") %u entries", Sec.nreloc); 1018 else 1019 outs() << "Relocation information (" << SegName << ",?) " 1020 << format("%u entries", Sec.nreloc); 1021 outs() << "\naddress pcrel length extern type scattered " 1022 "symbolnum/value\n"; 1023 PrintRelocationEntries(O, O->section_rel_begin(DRI), 1024 O->section_rel_end(DRI), cputype, verbose); 1025 } 1026 } 1027 } else if (Load.C.cmd == MachO::LC_SEGMENT) { 1028 const MachO::segment_command Seg = O->getSegmentLoadCommand(Load); 1029 for (unsigned J = 0; J < Seg.nsects; ++J) { 1030 const MachO::section Sec = O->getSection(Load, J); 1031 if (Sec.nreloc != 0) { 1032 DataRefImpl DRI; 1033 DRI.d.a = J; 1034 const StringRef SegName = O->getSectionFinalSegmentName(DRI); 1035 if (Expected<StringRef> NameOrErr = O->getSectionName(DRI)) 1036 outs() << "Relocation information (" << SegName << "," << *NameOrErr 1037 << format(") %u entries", Sec.nreloc); 1038 else 1039 outs() << "Relocation information (" << SegName << ",?) " 1040 << format("%u entries", Sec.nreloc); 1041 outs() << "\naddress pcrel length extern type scattered " 1042 "symbolnum/value\n"; 1043 PrintRelocationEntries(O, O->section_rel_begin(DRI), 1044 O->section_rel_end(DRI), cputype, verbose); 1045 } 1046 } 1047 } 1048 } 1049 } 1050 1051 static void PrintFunctionStarts(MachOObjectFile *O) { 1052 uint64_t BaseSegmentAddress = 0; 1053 for (const MachOObjectFile::LoadCommandInfo &Command : O->load_commands()) { 1054 if (Command.C.cmd == MachO::LC_SEGMENT) { 1055 MachO::segment_command SLC = O->getSegmentLoadCommand(Command); 1056 if (StringRef(SLC.segname) == "__TEXT") { 1057 BaseSegmentAddress = SLC.vmaddr; 1058 break; 1059 } 1060 } else if (Command.C.cmd == MachO::LC_SEGMENT_64) { 1061 MachO::segment_command_64 SLC = O->getSegment64LoadCommand(Command); 1062 if (StringRef(SLC.segname) == "__TEXT") { 1063 BaseSegmentAddress = SLC.vmaddr; 1064 break; 1065 } 1066 } 1067 } 1068 1069 SmallVector<uint64_t, 8> FunctionStarts; 1070 for (const MachOObjectFile::LoadCommandInfo &LC : O->load_commands()) { 1071 if (LC.C.cmd == MachO::LC_FUNCTION_STARTS) { 1072 MachO::linkedit_data_command FunctionStartsLC = 1073 O->getLinkeditDataLoadCommand(LC); 1074 O->ReadULEB128s(FunctionStartsLC.dataoff, FunctionStarts); 1075 break; 1076 } 1077 } 1078 1079 for (uint64_t S : FunctionStarts) { 1080 uint64_t Addr = BaseSegmentAddress + S; 1081 if (O->is64Bit()) 1082 outs() << format("%016" PRIx64, Addr) << "\n"; 1083 else 1084 outs() << format("%08" PRIx32, static_cast<uint32_t>(Addr)) << "\n"; 1085 } 1086 } 1087 1088 static void PrintDataInCodeTable(MachOObjectFile *O, bool verbose) { 1089 MachO::linkedit_data_command DIC = O->getDataInCodeLoadCommand(); 1090 uint32_t nentries = DIC.datasize / sizeof(struct MachO::data_in_code_entry); 1091 outs() << "Data in code table (" << nentries << " entries)\n"; 1092 outs() << "offset length kind\n"; 1093 for (dice_iterator DI = O->begin_dices(), DE = O->end_dices(); DI != DE; 1094 ++DI) { 1095 uint32_t Offset; 1096 DI->getOffset(Offset); 1097 outs() << format("0x%08" PRIx32, Offset) << " "; 1098 uint16_t Length; 1099 DI->getLength(Length); 1100 outs() << format("%6u", Length) << " "; 1101 uint16_t Kind; 1102 DI->getKind(Kind); 1103 if (verbose) { 1104 switch (Kind) { 1105 case MachO::DICE_KIND_DATA: 1106 outs() << "DATA"; 1107 break; 1108 case MachO::DICE_KIND_JUMP_TABLE8: 1109 outs() << "JUMP_TABLE8"; 1110 break; 1111 case MachO::DICE_KIND_JUMP_TABLE16: 1112 outs() << "JUMP_TABLE16"; 1113 break; 1114 case MachO::DICE_KIND_JUMP_TABLE32: 1115 outs() << "JUMP_TABLE32"; 1116 break; 1117 case MachO::DICE_KIND_ABS_JUMP_TABLE32: 1118 outs() << "ABS_JUMP_TABLE32"; 1119 break; 1120 default: 1121 outs() << format("0x%04" PRIx32, Kind); 1122 break; 1123 } 1124 } else 1125 outs() << format("0x%04" PRIx32, Kind); 1126 outs() << "\n"; 1127 } 1128 } 1129 1130 static void PrintLinkOptHints(MachOObjectFile *O) { 1131 MachO::linkedit_data_command LohLC = O->getLinkOptHintsLoadCommand(); 1132 const char *loh = O->getData().substr(LohLC.dataoff, 1).data(); 1133 uint32_t nloh = LohLC.datasize; 1134 outs() << "Linker optimiztion hints (" << nloh << " total bytes)\n"; 1135 for (uint32_t i = 0; i < nloh;) { 1136 unsigned n; 1137 uint64_t identifier = decodeULEB128((const uint8_t *)(loh + i), &n); 1138 i += n; 1139 outs() << " identifier " << identifier << " "; 1140 if (i >= nloh) 1141 return; 1142 switch (identifier) { 1143 case 1: 1144 outs() << "AdrpAdrp\n"; 1145 break; 1146 case 2: 1147 outs() << "AdrpLdr\n"; 1148 break; 1149 case 3: 1150 outs() << "AdrpAddLdr\n"; 1151 break; 1152 case 4: 1153 outs() << "AdrpLdrGotLdr\n"; 1154 break; 1155 case 5: 1156 outs() << "AdrpAddStr\n"; 1157 break; 1158 case 6: 1159 outs() << "AdrpLdrGotStr\n"; 1160 break; 1161 case 7: 1162 outs() << "AdrpAdd\n"; 1163 break; 1164 case 8: 1165 outs() << "AdrpLdrGot\n"; 1166 break; 1167 default: 1168 outs() << "Unknown identifier value\n"; 1169 break; 1170 } 1171 uint64_t narguments = decodeULEB128((const uint8_t *)(loh + i), &n); 1172 i += n; 1173 outs() << " narguments " << narguments << "\n"; 1174 if (i >= nloh) 1175 return; 1176 1177 for (uint32_t j = 0; j < narguments; j++) { 1178 uint64_t value = decodeULEB128((const uint8_t *)(loh + i), &n); 1179 i += n; 1180 outs() << "\tvalue " << format("0x%" PRIx64, value) << "\n"; 1181 if (i >= nloh) 1182 return; 1183 } 1184 } 1185 } 1186 1187 static void printMachOChainedFixups(object::MachOObjectFile *Obj) { 1188 Error Err = Error::success(); 1189 for (const object::MachOChainedFixupEntry &Entry : Obj->fixupTable(Err)) { 1190 (void)Entry; 1191 } 1192 if (Err) 1193 reportError(std::move(Err), Obj->getFileName()); 1194 } 1195 1196 static void PrintDyldInfo(MachOObjectFile *O) { 1197 outs() << "dyld information:" << '\n'; 1198 printMachOChainedFixups(O); 1199 } 1200 1201 static void PrintDylibs(MachOObjectFile *O, bool JustId) { 1202 unsigned Index = 0; 1203 for (const auto &Load : O->load_commands()) { 1204 if ((JustId && Load.C.cmd == MachO::LC_ID_DYLIB) || 1205 (!JustId && (Load.C.cmd == MachO::LC_ID_DYLIB || 1206 Load.C.cmd == MachO::LC_LOAD_DYLIB || 1207 Load.C.cmd == MachO::LC_LOAD_WEAK_DYLIB || 1208 Load.C.cmd == MachO::LC_REEXPORT_DYLIB || 1209 Load.C.cmd == MachO::LC_LAZY_LOAD_DYLIB || 1210 Load.C.cmd == MachO::LC_LOAD_UPWARD_DYLIB))) { 1211 MachO::dylib_command dl = O->getDylibIDLoadCommand(Load); 1212 if (dl.dylib.name < dl.cmdsize) { 1213 const char *p = (const char *)(Load.Ptr) + dl.dylib.name; 1214 if (JustId) 1215 outs() << p << "\n"; 1216 else { 1217 outs() << "\t" << p; 1218 outs() << " (compatibility version " 1219 << ((dl.dylib.compatibility_version >> 16) & 0xffff) << "." 1220 << ((dl.dylib.compatibility_version >> 8) & 0xff) << "." 1221 << (dl.dylib.compatibility_version & 0xff) << ","; 1222 outs() << " current version " 1223 << ((dl.dylib.current_version >> 16) & 0xffff) << "." 1224 << ((dl.dylib.current_version >> 8) & 0xff) << "." 1225 << (dl.dylib.current_version & 0xff); 1226 if (Load.C.cmd == MachO::LC_LOAD_WEAK_DYLIB) 1227 outs() << ", weak"; 1228 if (Load.C.cmd == MachO::LC_REEXPORT_DYLIB) 1229 outs() << ", reexport"; 1230 if (Load.C.cmd == MachO::LC_LOAD_UPWARD_DYLIB) 1231 outs() << ", upward"; 1232 if (Load.C.cmd == MachO::LC_LAZY_LOAD_DYLIB) 1233 outs() << ", lazy"; 1234 outs() << ")\n"; 1235 } 1236 } else { 1237 outs() << "\tBad offset (" << dl.dylib.name << ") for name of "; 1238 if (Load.C.cmd == MachO::LC_ID_DYLIB) 1239 outs() << "LC_ID_DYLIB "; 1240 else if (Load.C.cmd == MachO::LC_LOAD_DYLIB) 1241 outs() << "LC_LOAD_DYLIB "; 1242 else if (Load.C.cmd == MachO::LC_LOAD_WEAK_DYLIB) 1243 outs() << "LC_LOAD_WEAK_DYLIB "; 1244 else if (Load.C.cmd == MachO::LC_LAZY_LOAD_DYLIB) 1245 outs() << "LC_LAZY_LOAD_DYLIB "; 1246 else if (Load.C.cmd == MachO::LC_REEXPORT_DYLIB) 1247 outs() << "LC_REEXPORT_DYLIB "; 1248 else if (Load.C.cmd == MachO::LC_LOAD_UPWARD_DYLIB) 1249 outs() << "LC_LOAD_UPWARD_DYLIB "; 1250 else 1251 outs() << "LC_??? "; 1252 outs() << "command " << Index++ << "\n"; 1253 } 1254 } 1255 } 1256 } 1257 1258 static void printRpaths(MachOObjectFile *O) { 1259 for (const auto &Command : O->load_commands()) { 1260 if (Command.C.cmd == MachO::LC_RPATH) { 1261 auto Rpath = O->getRpathCommand(Command); 1262 const char *P = (const char *)(Command.Ptr) + Rpath.path; 1263 outs() << P << "\n"; 1264 } 1265 } 1266 } 1267 1268 typedef DenseMap<uint64_t, StringRef> SymbolAddressMap; 1269 1270 static void CreateSymbolAddressMap(MachOObjectFile *O, 1271 SymbolAddressMap *AddrMap) { 1272 // Create a map of symbol addresses to symbol names. 1273 const StringRef FileName = O->getFileName(); 1274 for (const SymbolRef &Symbol : O->symbols()) { 1275 SymbolRef::Type ST = unwrapOrError(Symbol.getType(), FileName); 1276 if (ST == SymbolRef::ST_Function || ST == SymbolRef::ST_Data || 1277 ST == SymbolRef::ST_Other) { 1278 uint64_t Address = cantFail(Symbol.getValue()); 1279 StringRef SymName = unwrapOrError(Symbol.getName(), FileName); 1280 if (!SymName.startswith(".objc")) 1281 (*AddrMap)[Address] = SymName; 1282 } 1283 } 1284 } 1285 1286 // GuessSymbolName is passed the address of what might be a symbol and a 1287 // pointer to the SymbolAddressMap. It returns the name of a symbol 1288 // with that address or nullptr if no symbol is found with that address. 1289 static const char *GuessSymbolName(uint64_t value, SymbolAddressMap *AddrMap) { 1290 const char *SymbolName = nullptr; 1291 // A DenseMap can't lookup up some values. 1292 if (value != 0xffffffffffffffffULL && value != 0xfffffffffffffffeULL) { 1293 StringRef name = AddrMap->lookup(value); 1294 if (!name.empty()) 1295 SymbolName = name.data(); 1296 } 1297 return SymbolName; 1298 } 1299 1300 static void DumpCstringChar(const char c) { 1301 char p[2]; 1302 p[0] = c; 1303 p[1] = '\0'; 1304 outs().write_escaped(p); 1305 } 1306 1307 static void DumpCstringSection(MachOObjectFile *O, const char *sect, 1308 uint32_t sect_size, uint64_t sect_addr, 1309 bool print_addresses) { 1310 for (uint32_t i = 0; i < sect_size; i++) { 1311 if (print_addresses) { 1312 if (O->is64Bit()) 1313 outs() << format("%016" PRIx64, sect_addr + i) << " "; 1314 else 1315 outs() << format("%08" PRIx64, sect_addr + i) << " "; 1316 } 1317 for (; i < sect_size && sect[i] != '\0'; i++) 1318 DumpCstringChar(sect[i]); 1319 if (i < sect_size && sect[i] == '\0') 1320 outs() << "\n"; 1321 } 1322 } 1323 1324 static void DumpLiteral4(uint32_t l, float f) { 1325 outs() << format("0x%08" PRIx32, l); 1326 if ((l & 0x7f800000) != 0x7f800000) 1327 outs() << format(" (%.16e)\n", f); 1328 else { 1329 if (l == 0x7f800000) 1330 outs() << " (+Infinity)\n"; 1331 else if (l == 0xff800000) 1332 outs() << " (-Infinity)\n"; 1333 else if ((l & 0x00400000) == 0x00400000) 1334 outs() << " (non-signaling Not-a-Number)\n"; 1335 else 1336 outs() << " (signaling Not-a-Number)\n"; 1337 } 1338 } 1339 1340 static void DumpLiteral4Section(MachOObjectFile *O, const char *sect, 1341 uint32_t sect_size, uint64_t sect_addr, 1342 bool print_addresses) { 1343 for (uint32_t i = 0; i < sect_size; i += sizeof(float)) { 1344 if (print_addresses) { 1345 if (O->is64Bit()) 1346 outs() << format("%016" PRIx64, sect_addr + i) << " "; 1347 else 1348 outs() << format("%08" PRIx64, sect_addr + i) << " "; 1349 } 1350 float f; 1351 memcpy(&f, sect + i, sizeof(float)); 1352 if (O->isLittleEndian() != sys::IsLittleEndianHost) 1353 sys::swapByteOrder(f); 1354 uint32_t l; 1355 memcpy(&l, sect + i, sizeof(uint32_t)); 1356 if (O->isLittleEndian() != sys::IsLittleEndianHost) 1357 sys::swapByteOrder(l); 1358 DumpLiteral4(l, f); 1359 } 1360 } 1361 1362 static void DumpLiteral8(MachOObjectFile *O, uint32_t l0, uint32_t l1, 1363 double d) { 1364 outs() << format("0x%08" PRIx32, l0) << " " << format("0x%08" PRIx32, l1); 1365 uint32_t Hi, Lo; 1366 Hi = (O->isLittleEndian()) ? l1 : l0; 1367 Lo = (O->isLittleEndian()) ? l0 : l1; 1368 1369 // Hi is the high word, so this is equivalent to if(isfinite(d)) 1370 if ((Hi & 0x7ff00000) != 0x7ff00000) 1371 outs() << format(" (%.16e)\n", d); 1372 else { 1373 if (Hi == 0x7ff00000 && Lo == 0) 1374 outs() << " (+Infinity)\n"; 1375 else if (Hi == 0xfff00000 && Lo == 0) 1376 outs() << " (-Infinity)\n"; 1377 else if ((Hi & 0x00080000) == 0x00080000) 1378 outs() << " (non-signaling Not-a-Number)\n"; 1379 else 1380 outs() << " (signaling Not-a-Number)\n"; 1381 } 1382 } 1383 1384 static void DumpLiteral8Section(MachOObjectFile *O, const char *sect, 1385 uint32_t sect_size, uint64_t sect_addr, 1386 bool print_addresses) { 1387 for (uint32_t i = 0; i < sect_size; i += sizeof(double)) { 1388 if (print_addresses) { 1389 if (O->is64Bit()) 1390 outs() << format("%016" PRIx64, sect_addr + i) << " "; 1391 else 1392 outs() << format("%08" PRIx64, sect_addr + i) << " "; 1393 } 1394 double d; 1395 memcpy(&d, sect + i, sizeof(double)); 1396 if (O->isLittleEndian() != sys::IsLittleEndianHost) 1397 sys::swapByteOrder(d); 1398 uint32_t l0, l1; 1399 memcpy(&l0, sect + i, sizeof(uint32_t)); 1400 memcpy(&l1, sect + i + sizeof(uint32_t), sizeof(uint32_t)); 1401 if (O->isLittleEndian() != sys::IsLittleEndianHost) { 1402 sys::swapByteOrder(l0); 1403 sys::swapByteOrder(l1); 1404 } 1405 DumpLiteral8(O, l0, l1, d); 1406 } 1407 } 1408 1409 static void DumpLiteral16(uint32_t l0, uint32_t l1, uint32_t l2, uint32_t l3) { 1410 outs() << format("0x%08" PRIx32, l0) << " "; 1411 outs() << format("0x%08" PRIx32, l1) << " "; 1412 outs() << format("0x%08" PRIx32, l2) << " "; 1413 outs() << format("0x%08" PRIx32, l3) << "\n"; 1414 } 1415 1416 static void DumpLiteral16Section(MachOObjectFile *O, const char *sect, 1417 uint32_t sect_size, uint64_t sect_addr, 1418 bool print_addresses) { 1419 for (uint32_t i = 0; i < sect_size; i += 16) { 1420 if (print_addresses) { 1421 if (O->is64Bit()) 1422 outs() << format("%016" PRIx64, sect_addr + i) << " "; 1423 else 1424 outs() << format("%08" PRIx64, sect_addr + i) << " "; 1425 } 1426 uint32_t l0, l1, l2, l3; 1427 memcpy(&l0, sect + i, sizeof(uint32_t)); 1428 memcpy(&l1, sect + i + sizeof(uint32_t), sizeof(uint32_t)); 1429 memcpy(&l2, sect + i + 2 * sizeof(uint32_t), sizeof(uint32_t)); 1430 memcpy(&l3, sect + i + 3 * sizeof(uint32_t), sizeof(uint32_t)); 1431 if (O->isLittleEndian() != sys::IsLittleEndianHost) { 1432 sys::swapByteOrder(l0); 1433 sys::swapByteOrder(l1); 1434 sys::swapByteOrder(l2); 1435 sys::swapByteOrder(l3); 1436 } 1437 DumpLiteral16(l0, l1, l2, l3); 1438 } 1439 } 1440 1441 static void DumpLiteralPointerSection(MachOObjectFile *O, 1442 const SectionRef &Section, 1443 const char *sect, uint32_t sect_size, 1444 uint64_t sect_addr, 1445 bool print_addresses) { 1446 // Collect the literal sections in this Mach-O file. 1447 std::vector<SectionRef> LiteralSections; 1448 for (const SectionRef &Section : O->sections()) { 1449 DataRefImpl Ref = Section.getRawDataRefImpl(); 1450 uint32_t section_type; 1451 if (O->is64Bit()) { 1452 const MachO::section_64 Sec = O->getSection64(Ref); 1453 section_type = Sec.flags & MachO::SECTION_TYPE; 1454 } else { 1455 const MachO::section Sec = O->getSection(Ref); 1456 section_type = Sec.flags & MachO::SECTION_TYPE; 1457 } 1458 if (section_type == MachO::S_CSTRING_LITERALS || 1459 section_type == MachO::S_4BYTE_LITERALS || 1460 section_type == MachO::S_8BYTE_LITERALS || 1461 section_type == MachO::S_16BYTE_LITERALS) 1462 LiteralSections.push_back(Section); 1463 } 1464 1465 // Set the size of the literal pointer. 1466 uint32_t lp_size = O->is64Bit() ? 8 : 4; 1467 1468 // Collect the external relocation symbols for the literal pointers. 1469 std::vector<std::pair<uint64_t, SymbolRef>> Relocs; 1470 for (const RelocationRef &Reloc : Section.relocations()) { 1471 DataRefImpl Rel; 1472 MachO::any_relocation_info RE; 1473 bool isExtern = false; 1474 Rel = Reloc.getRawDataRefImpl(); 1475 RE = O->getRelocation(Rel); 1476 isExtern = O->getPlainRelocationExternal(RE); 1477 if (isExtern) { 1478 uint64_t RelocOffset = Reloc.getOffset(); 1479 symbol_iterator RelocSym = Reloc.getSymbol(); 1480 Relocs.push_back(std::make_pair(RelocOffset, *RelocSym)); 1481 } 1482 } 1483 array_pod_sort(Relocs.begin(), Relocs.end()); 1484 1485 // Dump each literal pointer. 1486 for (uint32_t i = 0; i < sect_size; i += lp_size) { 1487 if (print_addresses) { 1488 if (O->is64Bit()) 1489 outs() << format("%016" PRIx64, sect_addr + i) << " "; 1490 else 1491 outs() << format("%08" PRIx64, sect_addr + i) << " "; 1492 } 1493 uint64_t lp; 1494 if (O->is64Bit()) { 1495 memcpy(&lp, sect + i, sizeof(uint64_t)); 1496 if (O->isLittleEndian() != sys::IsLittleEndianHost) 1497 sys::swapByteOrder(lp); 1498 } else { 1499 uint32_t li; 1500 memcpy(&li, sect + i, sizeof(uint32_t)); 1501 if (O->isLittleEndian() != sys::IsLittleEndianHost) 1502 sys::swapByteOrder(li); 1503 lp = li; 1504 } 1505 1506 // First look for an external relocation entry for this literal pointer. 1507 auto Reloc = find_if(Relocs, [&](const std::pair<uint64_t, SymbolRef> &P) { 1508 return P.first == i; 1509 }); 1510 if (Reloc != Relocs.end()) { 1511 symbol_iterator RelocSym = Reloc->second; 1512 StringRef SymName = unwrapOrError(RelocSym->getName(), O->getFileName()); 1513 outs() << "external relocation entry for symbol:" << SymName << "\n"; 1514 continue; 1515 } 1516 1517 // For local references see what the section the literal pointer points to. 1518 auto Sect = find_if(LiteralSections, [&](const SectionRef &R) { 1519 return lp >= R.getAddress() && lp < R.getAddress() + R.getSize(); 1520 }); 1521 if (Sect == LiteralSections.end()) { 1522 outs() << format("0x%" PRIx64, lp) << " (not in a literal section)\n"; 1523 continue; 1524 } 1525 1526 uint64_t SectAddress = Sect->getAddress(); 1527 uint64_t SectSize = Sect->getSize(); 1528 1529 StringRef SectName; 1530 Expected<StringRef> SectNameOrErr = Sect->getName(); 1531 if (SectNameOrErr) 1532 SectName = *SectNameOrErr; 1533 else 1534 consumeError(SectNameOrErr.takeError()); 1535 1536 DataRefImpl Ref = Sect->getRawDataRefImpl(); 1537 StringRef SegmentName = O->getSectionFinalSegmentName(Ref); 1538 outs() << SegmentName << ":" << SectName << ":"; 1539 1540 uint32_t section_type; 1541 if (O->is64Bit()) { 1542 const MachO::section_64 Sec = O->getSection64(Ref); 1543 section_type = Sec.flags & MachO::SECTION_TYPE; 1544 } else { 1545 const MachO::section Sec = O->getSection(Ref); 1546 section_type = Sec.flags & MachO::SECTION_TYPE; 1547 } 1548 1549 StringRef BytesStr = unwrapOrError(Sect->getContents(), O->getFileName()); 1550 1551 const char *Contents = reinterpret_cast<const char *>(BytesStr.data()); 1552 1553 switch (section_type) { 1554 case MachO::S_CSTRING_LITERALS: 1555 for (uint64_t i = lp - SectAddress; i < SectSize && Contents[i] != '\0'; 1556 i++) { 1557 DumpCstringChar(Contents[i]); 1558 } 1559 outs() << "\n"; 1560 break; 1561 case MachO::S_4BYTE_LITERALS: 1562 float f; 1563 memcpy(&f, Contents + (lp - SectAddress), sizeof(float)); 1564 uint32_t l; 1565 memcpy(&l, Contents + (lp - SectAddress), sizeof(uint32_t)); 1566 if (O->isLittleEndian() != sys::IsLittleEndianHost) { 1567 sys::swapByteOrder(f); 1568 sys::swapByteOrder(l); 1569 } 1570 DumpLiteral4(l, f); 1571 break; 1572 case MachO::S_8BYTE_LITERALS: { 1573 double d; 1574 memcpy(&d, Contents + (lp - SectAddress), sizeof(double)); 1575 uint32_t l0, l1; 1576 memcpy(&l0, Contents + (lp - SectAddress), sizeof(uint32_t)); 1577 memcpy(&l1, Contents + (lp - SectAddress) + sizeof(uint32_t), 1578 sizeof(uint32_t)); 1579 if (O->isLittleEndian() != sys::IsLittleEndianHost) { 1580 sys::swapByteOrder(f); 1581 sys::swapByteOrder(l0); 1582 sys::swapByteOrder(l1); 1583 } 1584 DumpLiteral8(O, l0, l1, d); 1585 break; 1586 } 1587 case MachO::S_16BYTE_LITERALS: { 1588 uint32_t l0, l1, l2, l3; 1589 memcpy(&l0, Contents + (lp - SectAddress), sizeof(uint32_t)); 1590 memcpy(&l1, Contents + (lp - SectAddress) + sizeof(uint32_t), 1591 sizeof(uint32_t)); 1592 memcpy(&l2, Contents + (lp - SectAddress) + 2 * sizeof(uint32_t), 1593 sizeof(uint32_t)); 1594 memcpy(&l3, Contents + (lp - SectAddress) + 3 * sizeof(uint32_t), 1595 sizeof(uint32_t)); 1596 if (O->isLittleEndian() != sys::IsLittleEndianHost) { 1597 sys::swapByteOrder(l0); 1598 sys::swapByteOrder(l1); 1599 sys::swapByteOrder(l2); 1600 sys::swapByteOrder(l3); 1601 } 1602 DumpLiteral16(l0, l1, l2, l3); 1603 break; 1604 } 1605 } 1606 } 1607 } 1608 1609 static void DumpInitTermPointerSection(MachOObjectFile *O, 1610 const SectionRef &Section, 1611 const char *sect, 1612 uint32_t sect_size, uint64_t sect_addr, 1613 SymbolAddressMap *AddrMap, 1614 bool verbose) { 1615 uint32_t stride; 1616 stride = (O->is64Bit()) ? sizeof(uint64_t) : sizeof(uint32_t); 1617 1618 // Collect the external relocation symbols for the pointers. 1619 std::vector<std::pair<uint64_t, SymbolRef>> Relocs; 1620 for (const RelocationRef &Reloc : Section.relocations()) { 1621 DataRefImpl Rel; 1622 MachO::any_relocation_info RE; 1623 bool isExtern = false; 1624 Rel = Reloc.getRawDataRefImpl(); 1625 RE = O->getRelocation(Rel); 1626 isExtern = O->getPlainRelocationExternal(RE); 1627 if (isExtern) { 1628 uint64_t RelocOffset = Reloc.getOffset(); 1629 symbol_iterator RelocSym = Reloc.getSymbol(); 1630 Relocs.push_back(std::make_pair(RelocOffset, *RelocSym)); 1631 } 1632 } 1633 array_pod_sort(Relocs.begin(), Relocs.end()); 1634 1635 for (uint32_t i = 0; i < sect_size; i += stride) { 1636 const char *SymbolName = nullptr; 1637 uint64_t p; 1638 if (O->is64Bit()) { 1639 outs() << format("0x%016" PRIx64, sect_addr + i * stride) << " "; 1640 uint64_t pointer_value; 1641 memcpy(&pointer_value, sect + i, stride); 1642 if (O->isLittleEndian() != sys::IsLittleEndianHost) 1643 sys::swapByteOrder(pointer_value); 1644 outs() << format("0x%016" PRIx64, pointer_value); 1645 p = pointer_value; 1646 } else { 1647 outs() << format("0x%08" PRIx64, sect_addr + i * stride) << " "; 1648 uint32_t pointer_value; 1649 memcpy(&pointer_value, sect + i, stride); 1650 if (O->isLittleEndian() != sys::IsLittleEndianHost) 1651 sys::swapByteOrder(pointer_value); 1652 outs() << format("0x%08" PRIx32, pointer_value); 1653 p = pointer_value; 1654 } 1655 if (verbose) { 1656 // First look for an external relocation entry for this pointer. 1657 auto Reloc = find_if(Relocs, [&](const std::pair<uint64_t, SymbolRef> &P) { 1658 return P.first == i; 1659 }); 1660 if (Reloc != Relocs.end()) { 1661 symbol_iterator RelocSym = Reloc->second; 1662 outs() << " " << unwrapOrError(RelocSym->getName(), O->getFileName()); 1663 } else { 1664 SymbolName = GuessSymbolName(p, AddrMap); 1665 if (SymbolName) 1666 outs() << " " << SymbolName; 1667 } 1668 } 1669 outs() << "\n"; 1670 } 1671 } 1672 1673 static void DumpRawSectionContents(MachOObjectFile *O, const char *sect, 1674 uint32_t size, uint64_t addr) { 1675 uint32_t cputype = O->getHeader().cputype; 1676 if (cputype == MachO::CPU_TYPE_I386 || cputype == MachO::CPU_TYPE_X86_64) { 1677 uint32_t j; 1678 for (uint32_t i = 0; i < size; i += j, addr += j) { 1679 if (O->is64Bit()) 1680 outs() << format("%016" PRIx64, addr) << "\t"; 1681 else 1682 outs() << format("%08" PRIx64, addr) << "\t"; 1683 for (j = 0; j < 16 && i + j < size; j++) { 1684 uint8_t byte_word = *(sect + i + j); 1685 outs() << format("%02" PRIx32, (uint32_t)byte_word) << " "; 1686 } 1687 outs() << "\n"; 1688 } 1689 } else { 1690 uint32_t j; 1691 for (uint32_t i = 0; i < size; i += j, addr += j) { 1692 if (O->is64Bit()) 1693 outs() << format("%016" PRIx64, addr) << "\t"; 1694 else 1695 outs() << format("%08" PRIx64, addr) << "\t"; 1696 for (j = 0; j < 4 * sizeof(int32_t) && i + j < size; 1697 j += sizeof(int32_t)) { 1698 if (i + j + sizeof(int32_t) <= size) { 1699 uint32_t long_word; 1700 memcpy(&long_word, sect + i + j, sizeof(int32_t)); 1701 if (O->isLittleEndian() != sys::IsLittleEndianHost) 1702 sys::swapByteOrder(long_word); 1703 outs() << format("%08" PRIx32, long_word) << " "; 1704 } else { 1705 for (uint32_t k = 0; i + j + k < size; k++) { 1706 uint8_t byte_word = *(sect + i + j + k); 1707 outs() << format("%02" PRIx32, (uint32_t)byte_word) << " "; 1708 } 1709 } 1710 } 1711 outs() << "\n"; 1712 } 1713 } 1714 } 1715 1716 static void DisassembleMachO(StringRef Filename, MachOObjectFile *MachOOF, 1717 StringRef DisSegName, StringRef DisSectName); 1718 static void DumpProtocolSection(MachOObjectFile *O, const char *sect, 1719 uint32_t size, uint32_t addr); 1720 #ifdef LLVM_HAVE_LIBXAR 1721 static void DumpBitcodeSection(MachOObjectFile *O, const char *sect, 1722 uint32_t size, bool verbose, 1723 bool PrintXarHeader, bool PrintXarFileHeaders, 1724 std::string XarMemberName); 1725 #endif // defined(LLVM_HAVE_LIBXAR) 1726 1727 static void DumpSectionContents(StringRef Filename, MachOObjectFile *O, 1728 bool verbose) { 1729 SymbolAddressMap AddrMap; 1730 if (verbose) 1731 CreateSymbolAddressMap(O, &AddrMap); 1732 1733 for (unsigned i = 0; i < FilterSections.size(); ++i) { 1734 StringRef DumpSection = FilterSections[i]; 1735 std::pair<StringRef, StringRef> DumpSegSectName; 1736 DumpSegSectName = DumpSection.split(','); 1737 StringRef DumpSegName, DumpSectName; 1738 if (!DumpSegSectName.second.empty()) { 1739 DumpSegName = DumpSegSectName.first; 1740 DumpSectName = DumpSegSectName.second; 1741 } else { 1742 DumpSegName = ""; 1743 DumpSectName = DumpSegSectName.first; 1744 } 1745 for (const SectionRef &Section : O->sections()) { 1746 StringRef SectName; 1747 Expected<StringRef> SecNameOrErr = Section.getName(); 1748 if (SecNameOrErr) 1749 SectName = *SecNameOrErr; 1750 else 1751 consumeError(SecNameOrErr.takeError()); 1752 1753 if (!DumpSection.empty()) 1754 FoundSectionSet.insert(DumpSection); 1755 1756 DataRefImpl Ref = Section.getRawDataRefImpl(); 1757 StringRef SegName = O->getSectionFinalSegmentName(Ref); 1758 if ((DumpSegName.empty() || SegName == DumpSegName) && 1759 (SectName == DumpSectName)) { 1760 1761 uint32_t section_flags; 1762 if (O->is64Bit()) { 1763 const MachO::section_64 Sec = O->getSection64(Ref); 1764 section_flags = Sec.flags; 1765 1766 } else { 1767 const MachO::section Sec = O->getSection(Ref); 1768 section_flags = Sec.flags; 1769 } 1770 uint32_t section_type = section_flags & MachO::SECTION_TYPE; 1771 1772 StringRef BytesStr = 1773 unwrapOrError(Section.getContents(), O->getFileName()); 1774 const char *sect = reinterpret_cast<const char *>(BytesStr.data()); 1775 uint32_t sect_size = BytesStr.size(); 1776 uint64_t sect_addr = Section.getAddress(); 1777 1778 if (LeadingHeaders) 1779 outs() << "Contents of (" << SegName << "," << SectName 1780 << ") section\n"; 1781 1782 if (verbose) { 1783 if ((section_flags & MachO::S_ATTR_PURE_INSTRUCTIONS) || 1784 (section_flags & MachO::S_ATTR_SOME_INSTRUCTIONS)) { 1785 DisassembleMachO(Filename, O, SegName, SectName); 1786 continue; 1787 } 1788 if (SegName == "__TEXT" && SectName == "__info_plist") { 1789 outs() << sect; 1790 continue; 1791 } 1792 if (SegName == "__OBJC" && SectName == "__protocol") { 1793 DumpProtocolSection(O, sect, sect_size, sect_addr); 1794 continue; 1795 } 1796 #ifdef LLVM_HAVE_LIBXAR 1797 if (SegName == "__LLVM" && SectName == "__bundle") { 1798 DumpBitcodeSection(O, sect, sect_size, verbose, SymbolicOperands, 1799 ArchiveHeaders, ""); 1800 continue; 1801 } 1802 #endif // defined(LLVM_HAVE_LIBXAR) 1803 switch (section_type) { 1804 case MachO::S_REGULAR: 1805 DumpRawSectionContents(O, sect, sect_size, sect_addr); 1806 break; 1807 case MachO::S_ZEROFILL: 1808 outs() << "zerofill section and has no contents in the file\n"; 1809 break; 1810 case MachO::S_CSTRING_LITERALS: 1811 DumpCstringSection(O, sect, sect_size, sect_addr, LeadingAddr); 1812 break; 1813 case MachO::S_4BYTE_LITERALS: 1814 DumpLiteral4Section(O, sect, sect_size, sect_addr, LeadingAddr); 1815 break; 1816 case MachO::S_8BYTE_LITERALS: 1817 DumpLiteral8Section(O, sect, sect_size, sect_addr, LeadingAddr); 1818 break; 1819 case MachO::S_16BYTE_LITERALS: 1820 DumpLiteral16Section(O, sect, sect_size, sect_addr, LeadingAddr); 1821 break; 1822 case MachO::S_LITERAL_POINTERS: 1823 DumpLiteralPointerSection(O, Section, sect, sect_size, sect_addr, 1824 LeadingAddr); 1825 break; 1826 case MachO::S_MOD_INIT_FUNC_POINTERS: 1827 case MachO::S_MOD_TERM_FUNC_POINTERS: 1828 DumpInitTermPointerSection(O, Section, sect, sect_size, sect_addr, 1829 &AddrMap, verbose); 1830 break; 1831 default: 1832 outs() << "Unknown section type (" 1833 << format("0x%08" PRIx32, section_type) << ")\n"; 1834 DumpRawSectionContents(O, sect, sect_size, sect_addr); 1835 break; 1836 } 1837 } else { 1838 if (section_type == MachO::S_ZEROFILL) 1839 outs() << "zerofill section and has no contents in the file\n"; 1840 else 1841 DumpRawSectionContents(O, sect, sect_size, sect_addr); 1842 } 1843 } 1844 } 1845 } 1846 } 1847 1848 static void DumpInfoPlistSectionContents(StringRef Filename, 1849 MachOObjectFile *O) { 1850 for (const SectionRef &Section : O->sections()) { 1851 StringRef SectName; 1852 Expected<StringRef> SecNameOrErr = Section.getName(); 1853 if (SecNameOrErr) 1854 SectName = *SecNameOrErr; 1855 else 1856 consumeError(SecNameOrErr.takeError()); 1857 1858 DataRefImpl Ref = Section.getRawDataRefImpl(); 1859 StringRef SegName = O->getSectionFinalSegmentName(Ref); 1860 if (SegName == "__TEXT" && SectName == "__info_plist") { 1861 if (LeadingHeaders) 1862 outs() << "Contents of (" << SegName << "," << SectName << ") section\n"; 1863 StringRef BytesStr = 1864 unwrapOrError(Section.getContents(), O->getFileName()); 1865 const char *sect = reinterpret_cast<const char *>(BytesStr.data()); 1866 outs() << format("%.*s", BytesStr.size(), sect) << "\n"; 1867 return; 1868 } 1869 } 1870 } 1871 1872 // checkMachOAndArchFlags() checks to see if the ObjectFile is a Mach-O file 1873 // and if it is and there is a list of architecture flags is specified then 1874 // check to make sure this Mach-O file is one of those architectures or all 1875 // architectures were specified. If not then an error is generated and this 1876 // routine returns false. Else it returns true. 1877 static bool checkMachOAndArchFlags(ObjectFile *O, StringRef Filename) { 1878 auto *MachO = dyn_cast<MachOObjectFile>(O); 1879 1880 if (!MachO || ArchAll || ArchFlags.empty()) 1881 return true; 1882 1883 MachO::mach_header H; 1884 MachO::mach_header_64 H_64; 1885 Triple T; 1886 const char *McpuDefault, *ArchFlag; 1887 if (MachO->is64Bit()) { 1888 H_64 = MachO->MachOObjectFile::getHeader64(); 1889 T = MachOObjectFile::getArchTriple(H_64.cputype, H_64.cpusubtype, 1890 &McpuDefault, &ArchFlag); 1891 } else { 1892 H = MachO->MachOObjectFile::getHeader(); 1893 T = MachOObjectFile::getArchTriple(H.cputype, H.cpusubtype, 1894 &McpuDefault, &ArchFlag); 1895 } 1896 const std::string ArchFlagName(ArchFlag); 1897 if (!llvm::is_contained(ArchFlags, ArchFlagName)) { 1898 WithColor::error(errs(), "llvm-objdump") 1899 << Filename << ": no architecture specified.\n"; 1900 return false; 1901 } 1902 return true; 1903 } 1904 1905 static void printObjcMetaData(MachOObjectFile *O, bool verbose); 1906 1907 // ProcessMachO() is passed a single opened Mach-O file, which may be an 1908 // archive member and or in a slice of a universal file. It prints the 1909 // the file name and header info and then processes it according to the 1910 // command line options. 1911 static void ProcessMachO(StringRef Name, MachOObjectFile *MachOOF, 1912 StringRef ArchiveMemberName = StringRef(), 1913 StringRef ArchitectureName = StringRef()) { 1914 // If we are doing some processing here on the Mach-O file print the header 1915 // info. And don't print it otherwise like in the case of printing the 1916 // UniversalHeaders or ArchiveHeaders. 1917 if (Disassemble || Relocations || PrivateHeaders || ExportsTrie || Rebase || 1918 Bind || SymbolTable || LazyBind || WeakBind || IndirectSymbols || 1919 DataInCode || FunctionStarts || LinkOptHints || DyldInfo || DylibsUsed || 1920 DylibId || Rpaths || ObjcMetaData || (!FilterSections.empty())) { 1921 if (LeadingHeaders) { 1922 outs() << Name; 1923 if (!ArchiveMemberName.empty()) 1924 outs() << '(' << ArchiveMemberName << ')'; 1925 if (!ArchitectureName.empty()) 1926 outs() << " (architecture " << ArchitectureName << ")"; 1927 outs() << ":\n"; 1928 } 1929 } 1930 // To use the report_error() form with an ArchiveName and FileName set 1931 // these up based on what is passed for Name and ArchiveMemberName. 1932 StringRef ArchiveName; 1933 StringRef FileName; 1934 if (!ArchiveMemberName.empty()) { 1935 ArchiveName = Name; 1936 FileName = ArchiveMemberName; 1937 } else { 1938 ArchiveName = StringRef(); 1939 FileName = Name; 1940 } 1941 1942 // If we need the symbol table to do the operation then check it here to 1943 // produce a good error message as to where the Mach-O file comes from in 1944 // the error message. 1945 if (Disassemble || IndirectSymbols || !FilterSections.empty() || UnwindInfo) 1946 if (Error Err = MachOOF->checkSymbolTable()) 1947 reportError(std::move(Err), FileName, ArchiveName, ArchitectureName); 1948 1949 if (DisassembleAll) { 1950 for (const SectionRef &Section : MachOOF->sections()) { 1951 StringRef SectName; 1952 if (Expected<StringRef> NameOrErr = Section.getName()) 1953 SectName = *NameOrErr; 1954 else 1955 consumeError(NameOrErr.takeError()); 1956 1957 if (SectName.equals("__text")) { 1958 DataRefImpl Ref = Section.getRawDataRefImpl(); 1959 StringRef SegName = MachOOF->getSectionFinalSegmentName(Ref); 1960 DisassembleMachO(FileName, MachOOF, SegName, SectName); 1961 } 1962 } 1963 } 1964 else if (Disassemble) { 1965 if (MachOOF->getHeader().filetype == MachO::MH_KEXT_BUNDLE && 1966 MachOOF->getHeader().cputype == MachO::CPU_TYPE_ARM64) 1967 DisassembleMachO(FileName, MachOOF, "__TEXT_EXEC", "__text"); 1968 else 1969 DisassembleMachO(FileName, MachOOF, "__TEXT", "__text"); 1970 } 1971 if (IndirectSymbols) 1972 PrintIndirectSymbols(MachOOF, Verbose); 1973 if (DataInCode) 1974 PrintDataInCodeTable(MachOOF, Verbose); 1975 if (FunctionStarts) 1976 PrintFunctionStarts(MachOOF); 1977 if (LinkOptHints) 1978 PrintLinkOptHints(MachOOF); 1979 if (Relocations) 1980 PrintRelocations(MachOOF, Verbose); 1981 if (SectionHeaders) 1982 printSectionHeaders(*MachOOF); 1983 if (SectionContents) 1984 printSectionContents(MachOOF); 1985 if (!FilterSections.empty()) 1986 DumpSectionContents(FileName, MachOOF, Verbose); 1987 if (InfoPlist) 1988 DumpInfoPlistSectionContents(FileName, MachOOF); 1989 if (DyldInfo) 1990 PrintDyldInfo(MachOOF); 1991 if (DylibsUsed) 1992 PrintDylibs(MachOOF, false); 1993 if (DylibId) 1994 PrintDylibs(MachOOF, true); 1995 if (SymbolTable) 1996 printSymbolTable(*MachOOF, ArchiveName, ArchitectureName); 1997 if (UnwindInfo) 1998 printMachOUnwindInfo(MachOOF); 1999 if (PrivateHeaders) { 2000 printMachOFileHeader(MachOOF); 2001 printMachOLoadCommands(MachOOF); 2002 } 2003 if (FirstPrivateHeader) 2004 printMachOFileHeader(MachOOF); 2005 if (ObjcMetaData) 2006 printObjcMetaData(MachOOF, Verbose); 2007 if (ExportsTrie) 2008 printExportsTrie(MachOOF); 2009 if (Rebase) 2010 printRebaseTable(MachOOF); 2011 if (Rpaths) 2012 printRpaths(MachOOF); 2013 if (Bind) 2014 printBindTable(MachOOF); 2015 if (LazyBind) 2016 printLazyBindTable(MachOOF); 2017 if (WeakBind) 2018 printWeakBindTable(MachOOF); 2019 2020 if (DwarfDumpType != DIDT_Null) { 2021 std::unique_ptr<DIContext> DICtx = DWARFContext::create(*MachOOF); 2022 // Dump the complete DWARF structure. 2023 DIDumpOptions DumpOpts; 2024 DumpOpts.DumpType = DwarfDumpType; 2025 DICtx->dump(outs(), DumpOpts); 2026 } 2027 } 2028 2029 // printUnknownCPUType() helps print_fat_headers for unknown CPU's. 2030 static void printUnknownCPUType(uint32_t cputype, uint32_t cpusubtype) { 2031 outs() << " cputype (" << cputype << ")\n"; 2032 outs() << " cpusubtype (" << cpusubtype << ")\n"; 2033 } 2034 2035 // printCPUType() helps print_fat_headers by printing the cputype and 2036 // pusubtype (symbolically for the one's it knows about). 2037 static void printCPUType(uint32_t cputype, uint32_t cpusubtype) { 2038 switch (cputype) { 2039 case MachO::CPU_TYPE_I386: 2040 switch (cpusubtype) { 2041 case MachO::CPU_SUBTYPE_I386_ALL: 2042 outs() << " cputype CPU_TYPE_I386\n"; 2043 outs() << " cpusubtype CPU_SUBTYPE_I386_ALL\n"; 2044 break; 2045 default: 2046 printUnknownCPUType(cputype, cpusubtype); 2047 break; 2048 } 2049 break; 2050 case MachO::CPU_TYPE_X86_64: 2051 switch (cpusubtype) { 2052 case MachO::CPU_SUBTYPE_X86_64_ALL: 2053 outs() << " cputype CPU_TYPE_X86_64\n"; 2054 outs() << " cpusubtype CPU_SUBTYPE_X86_64_ALL\n"; 2055 break; 2056 case MachO::CPU_SUBTYPE_X86_64_H: 2057 outs() << " cputype CPU_TYPE_X86_64\n"; 2058 outs() << " cpusubtype CPU_SUBTYPE_X86_64_H\n"; 2059 break; 2060 default: 2061 printUnknownCPUType(cputype, cpusubtype); 2062 break; 2063 } 2064 break; 2065 case MachO::CPU_TYPE_ARM: 2066 switch (cpusubtype) { 2067 case MachO::CPU_SUBTYPE_ARM_ALL: 2068 outs() << " cputype CPU_TYPE_ARM\n"; 2069 outs() << " cpusubtype CPU_SUBTYPE_ARM_ALL\n"; 2070 break; 2071 case MachO::CPU_SUBTYPE_ARM_V4T: 2072 outs() << " cputype CPU_TYPE_ARM\n"; 2073 outs() << " cpusubtype CPU_SUBTYPE_ARM_V4T\n"; 2074 break; 2075 case MachO::CPU_SUBTYPE_ARM_V5TEJ: 2076 outs() << " cputype CPU_TYPE_ARM\n"; 2077 outs() << " cpusubtype CPU_SUBTYPE_ARM_V5TEJ\n"; 2078 break; 2079 case MachO::CPU_SUBTYPE_ARM_XSCALE: 2080 outs() << " cputype CPU_TYPE_ARM\n"; 2081 outs() << " cpusubtype CPU_SUBTYPE_ARM_XSCALE\n"; 2082 break; 2083 case MachO::CPU_SUBTYPE_ARM_V6: 2084 outs() << " cputype CPU_TYPE_ARM\n"; 2085 outs() << " cpusubtype CPU_SUBTYPE_ARM_V6\n"; 2086 break; 2087 case MachO::CPU_SUBTYPE_ARM_V6M: 2088 outs() << " cputype CPU_TYPE_ARM\n"; 2089 outs() << " cpusubtype CPU_SUBTYPE_ARM_V6M\n"; 2090 break; 2091 case MachO::CPU_SUBTYPE_ARM_V7: 2092 outs() << " cputype CPU_TYPE_ARM\n"; 2093 outs() << " cpusubtype CPU_SUBTYPE_ARM_V7\n"; 2094 break; 2095 case MachO::CPU_SUBTYPE_ARM_V7EM: 2096 outs() << " cputype CPU_TYPE_ARM\n"; 2097 outs() << " cpusubtype CPU_SUBTYPE_ARM_V7EM\n"; 2098 break; 2099 case MachO::CPU_SUBTYPE_ARM_V7K: 2100 outs() << " cputype CPU_TYPE_ARM\n"; 2101 outs() << " cpusubtype CPU_SUBTYPE_ARM_V7K\n"; 2102 break; 2103 case MachO::CPU_SUBTYPE_ARM_V7M: 2104 outs() << " cputype CPU_TYPE_ARM\n"; 2105 outs() << " cpusubtype CPU_SUBTYPE_ARM_V7M\n"; 2106 break; 2107 case MachO::CPU_SUBTYPE_ARM_V7S: 2108 outs() << " cputype CPU_TYPE_ARM\n"; 2109 outs() << " cpusubtype CPU_SUBTYPE_ARM_V7S\n"; 2110 break; 2111 default: 2112 printUnknownCPUType(cputype, cpusubtype); 2113 break; 2114 } 2115 break; 2116 case MachO::CPU_TYPE_ARM64: 2117 switch (cpusubtype & ~MachO::CPU_SUBTYPE_MASK) { 2118 case MachO::CPU_SUBTYPE_ARM64_ALL: 2119 outs() << " cputype CPU_TYPE_ARM64\n"; 2120 outs() << " cpusubtype CPU_SUBTYPE_ARM64_ALL\n"; 2121 break; 2122 case MachO::CPU_SUBTYPE_ARM64_V8: 2123 outs() << " cputype CPU_TYPE_ARM64\n"; 2124 outs() << " cpusubtype CPU_SUBTYPE_ARM64_V8\n"; 2125 break; 2126 case MachO::CPU_SUBTYPE_ARM64E: 2127 outs() << " cputype CPU_TYPE_ARM64\n"; 2128 outs() << " cpusubtype CPU_SUBTYPE_ARM64E\n"; 2129 break; 2130 default: 2131 printUnknownCPUType(cputype, cpusubtype); 2132 break; 2133 } 2134 break; 2135 case MachO::CPU_TYPE_ARM64_32: 2136 switch (cpusubtype & ~MachO::CPU_SUBTYPE_MASK) { 2137 case MachO::CPU_SUBTYPE_ARM64_32_V8: 2138 outs() << " cputype CPU_TYPE_ARM64_32\n"; 2139 outs() << " cpusubtype CPU_SUBTYPE_ARM64_32_V8\n"; 2140 break; 2141 default: 2142 printUnknownCPUType(cputype, cpusubtype); 2143 break; 2144 } 2145 break; 2146 default: 2147 printUnknownCPUType(cputype, cpusubtype); 2148 break; 2149 } 2150 } 2151 2152 static void printMachOUniversalHeaders(const object::MachOUniversalBinary *UB, 2153 bool verbose) { 2154 outs() << "Fat headers\n"; 2155 if (verbose) { 2156 if (UB->getMagic() == MachO::FAT_MAGIC) 2157 outs() << "fat_magic FAT_MAGIC\n"; 2158 else // UB->getMagic() == MachO::FAT_MAGIC_64 2159 outs() << "fat_magic FAT_MAGIC_64\n"; 2160 } else 2161 outs() << "fat_magic " << format("0x%" PRIx32, MachO::FAT_MAGIC) << "\n"; 2162 2163 uint32_t nfat_arch = UB->getNumberOfObjects(); 2164 StringRef Buf = UB->getData(); 2165 uint64_t size = Buf.size(); 2166 uint64_t big_size = sizeof(struct MachO::fat_header) + 2167 nfat_arch * sizeof(struct MachO::fat_arch); 2168 outs() << "nfat_arch " << UB->getNumberOfObjects(); 2169 if (nfat_arch == 0) 2170 outs() << " (malformed, contains zero architecture types)\n"; 2171 else if (big_size > size) 2172 outs() << " (malformed, architectures past end of file)\n"; 2173 else 2174 outs() << "\n"; 2175 2176 for (uint32_t i = 0; i < nfat_arch; ++i) { 2177 MachOUniversalBinary::ObjectForArch OFA(UB, i); 2178 uint32_t cputype = OFA.getCPUType(); 2179 uint32_t cpusubtype = OFA.getCPUSubType(); 2180 outs() << "architecture "; 2181 for (uint32_t j = 0; i != 0 && j <= i - 1; j++) { 2182 MachOUniversalBinary::ObjectForArch other_OFA(UB, j); 2183 uint32_t other_cputype = other_OFA.getCPUType(); 2184 uint32_t other_cpusubtype = other_OFA.getCPUSubType(); 2185 if (cputype != 0 && cpusubtype != 0 && cputype == other_cputype && 2186 (cpusubtype & ~MachO::CPU_SUBTYPE_MASK) == 2187 (other_cpusubtype & ~MachO::CPU_SUBTYPE_MASK)) { 2188 outs() << "(illegal duplicate architecture) "; 2189 break; 2190 } 2191 } 2192 if (verbose) { 2193 outs() << OFA.getArchFlagName() << "\n"; 2194 printCPUType(cputype, cpusubtype & ~MachO::CPU_SUBTYPE_MASK); 2195 } else { 2196 outs() << i << "\n"; 2197 outs() << " cputype " << cputype << "\n"; 2198 outs() << " cpusubtype " << (cpusubtype & ~MachO::CPU_SUBTYPE_MASK) 2199 << "\n"; 2200 } 2201 if (verbose && 2202 (cpusubtype & MachO::CPU_SUBTYPE_MASK) == MachO::CPU_SUBTYPE_LIB64) 2203 outs() << " capabilities CPU_SUBTYPE_LIB64\n"; 2204 else 2205 outs() << " capabilities " 2206 << format("0x%" PRIx32, 2207 (cpusubtype & MachO::CPU_SUBTYPE_MASK) >> 24) << "\n"; 2208 outs() << " offset " << OFA.getOffset(); 2209 if (OFA.getOffset() > size) 2210 outs() << " (past end of file)"; 2211 if (OFA.getOffset() % (1ull << OFA.getAlign()) != 0) 2212 outs() << " (not aligned on it's alignment (2^" << OFA.getAlign() << ")"; 2213 outs() << "\n"; 2214 outs() << " size " << OFA.getSize(); 2215 big_size = OFA.getOffset() + OFA.getSize(); 2216 if (big_size > size) 2217 outs() << " (past end of file)"; 2218 outs() << "\n"; 2219 outs() << " align 2^" << OFA.getAlign() << " (" << (1 << OFA.getAlign()) 2220 << ")\n"; 2221 } 2222 } 2223 2224 static void printArchiveChild(StringRef Filename, const Archive::Child &C, 2225 size_t ChildIndex, bool verbose, 2226 bool print_offset, 2227 StringRef ArchitectureName = StringRef()) { 2228 if (print_offset) 2229 outs() << C.getChildOffset() << "\t"; 2230 sys::fs::perms Mode = 2231 unwrapOrError(C.getAccessMode(), getFileNameForError(C, ChildIndex), 2232 Filename, ArchitectureName); 2233 if (verbose) { 2234 // FIXME: this first dash, "-", is for (Mode & S_IFMT) == S_IFREG. 2235 // But there is nothing in sys::fs::perms for S_IFMT or S_IFREG. 2236 outs() << "-"; 2237 outs() << ((Mode & sys::fs::owner_read) ? "r" : "-"); 2238 outs() << ((Mode & sys::fs::owner_write) ? "w" : "-"); 2239 outs() << ((Mode & sys::fs::owner_exe) ? "x" : "-"); 2240 outs() << ((Mode & sys::fs::group_read) ? "r" : "-"); 2241 outs() << ((Mode & sys::fs::group_write) ? "w" : "-"); 2242 outs() << ((Mode & sys::fs::group_exe) ? "x" : "-"); 2243 outs() << ((Mode & sys::fs::others_read) ? "r" : "-"); 2244 outs() << ((Mode & sys::fs::others_write) ? "w" : "-"); 2245 outs() << ((Mode & sys::fs::others_exe) ? "x" : "-"); 2246 } else { 2247 outs() << format("0%o ", Mode); 2248 } 2249 2250 outs() << format("%3d/%-3d %5" PRId64 " ", 2251 unwrapOrError(C.getUID(), getFileNameForError(C, ChildIndex), 2252 Filename, ArchitectureName), 2253 unwrapOrError(C.getGID(), getFileNameForError(C, ChildIndex), 2254 Filename, ArchitectureName), 2255 unwrapOrError(C.getRawSize(), 2256 getFileNameForError(C, ChildIndex), Filename, 2257 ArchitectureName)); 2258 2259 StringRef RawLastModified = C.getRawLastModified(); 2260 if (verbose) { 2261 unsigned Seconds; 2262 if (RawLastModified.getAsInteger(10, Seconds)) 2263 outs() << "(date: \"" << RawLastModified 2264 << "\" contains non-decimal chars) "; 2265 else { 2266 // Since cime(3) returns a 26 character string of the form: 2267 // "Sun Sep 16 01:03:52 1973\n\0" 2268 // just print 24 characters. 2269 time_t t = Seconds; 2270 outs() << format("%.24s ", ctime(&t)); 2271 } 2272 } else { 2273 outs() << RawLastModified << " "; 2274 } 2275 2276 if (verbose) { 2277 Expected<StringRef> NameOrErr = C.getName(); 2278 if (!NameOrErr) { 2279 consumeError(NameOrErr.takeError()); 2280 outs() << unwrapOrError(C.getRawName(), 2281 getFileNameForError(C, ChildIndex), Filename, 2282 ArchitectureName) 2283 << "\n"; 2284 } else { 2285 StringRef Name = NameOrErr.get(); 2286 outs() << Name << "\n"; 2287 } 2288 } else { 2289 outs() << unwrapOrError(C.getRawName(), getFileNameForError(C, ChildIndex), 2290 Filename, ArchitectureName) 2291 << "\n"; 2292 } 2293 } 2294 2295 static void printArchiveHeaders(StringRef Filename, Archive *A, bool verbose, 2296 bool print_offset, 2297 StringRef ArchitectureName = StringRef()) { 2298 Error Err = Error::success(); 2299 size_t I = 0; 2300 for (const auto &C : A->children(Err, false)) 2301 printArchiveChild(Filename, C, I++, verbose, print_offset, 2302 ArchitectureName); 2303 2304 if (Err) 2305 reportError(std::move(Err), Filename, "", ArchitectureName); 2306 } 2307 2308 static bool ValidateArchFlags() { 2309 // Check for -arch all and verifiy the -arch flags are valid. 2310 for (unsigned i = 0; i < ArchFlags.size(); ++i) { 2311 if (ArchFlags[i] == "all") { 2312 ArchAll = true; 2313 } else { 2314 if (!MachOObjectFile::isValidArch(ArchFlags[i])) { 2315 WithColor::error(errs(), "llvm-objdump") 2316 << "unknown architecture named '" + ArchFlags[i] + 2317 "'for the -arch option\n"; 2318 return false; 2319 } 2320 } 2321 } 2322 return true; 2323 } 2324 2325 // ParseInputMachO() parses the named Mach-O file in Filename and handles the 2326 // -arch flags selecting just those slices as specified by them and also parses 2327 // archive files. Then for each individual Mach-O file ProcessMachO() is 2328 // called to process the file based on the command line options. 2329 void objdump::parseInputMachO(StringRef Filename) { 2330 if (!ValidateArchFlags()) 2331 return; 2332 2333 // Attempt to open the binary. 2334 Expected<OwningBinary<Binary>> BinaryOrErr = createBinary(Filename); 2335 if (!BinaryOrErr) { 2336 if (Error E = isNotObjectErrorInvalidFileType(BinaryOrErr.takeError())) 2337 reportError(std::move(E), Filename); 2338 else 2339 outs() << Filename << ": is not an object file\n"; 2340 return; 2341 } 2342 Binary &Bin = *BinaryOrErr.get().getBinary(); 2343 2344 if (Archive *A = dyn_cast<Archive>(&Bin)) { 2345 outs() << "Archive : " << Filename << "\n"; 2346 if (ArchiveHeaders) 2347 printArchiveHeaders(Filename, A, Verbose, ArchiveMemberOffsets); 2348 2349 Error Err = Error::success(); 2350 unsigned I = -1; 2351 for (auto &C : A->children(Err)) { 2352 ++I; 2353 Expected<std::unique_ptr<Binary>> ChildOrErr = C.getAsBinary(); 2354 if (!ChildOrErr) { 2355 if (Error E = isNotObjectErrorInvalidFileType(ChildOrErr.takeError())) 2356 reportError(std::move(E), getFileNameForError(C, I), Filename); 2357 continue; 2358 } 2359 if (MachOObjectFile *O = dyn_cast<MachOObjectFile>(&*ChildOrErr.get())) { 2360 if (!checkMachOAndArchFlags(O, Filename)) 2361 return; 2362 ProcessMachO(Filename, O, O->getFileName()); 2363 } 2364 } 2365 if (Err) 2366 reportError(std::move(Err), Filename); 2367 return; 2368 } 2369 if (MachOUniversalBinary *UB = dyn_cast<MachOUniversalBinary>(&Bin)) { 2370 parseInputMachO(UB); 2371 return; 2372 } 2373 if (ObjectFile *O = dyn_cast<ObjectFile>(&Bin)) { 2374 if (!checkMachOAndArchFlags(O, Filename)) 2375 return; 2376 if (MachOObjectFile *MachOOF = dyn_cast<MachOObjectFile>(&*O)) 2377 ProcessMachO(Filename, MachOOF); 2378 else 2379 WithColor::error(errs(), "llvm-objdump") 2380 << Filename << "': " 2381 << "object is not a Mach-O file type.\n"; 2382 return; 2383 } 2384 llvm_unreachable("Input object can't be invalid at this point"); 2385 } 2386 2387 void objdump::parseInputMachO(MachOUniversalBinary *UB) { 2388 if (!ValidateArchFlags()) 2389 return; 2390 2391 auto Filename = UB->getFileName(); 2392 2393 if (UniversalHeaders) 2394 printMachOUniversalHeaders(UB, Verbose); 2395 2396 // If we have a list of architecture flags specified dump only those. 2397 if (!ArchAll && !ArchFlags.empty()) { 2398 // Look for a slice in the universal binary that matches each ArchFlag. 2399 bool ArchFound; 2400 for (unsigned i = 0; i < ArchFlags.size(); ++i) { 2401 ArchFound = false; 2402 for (MachOUniversalBinary::object_iterator I = UB->begin_objects(), 2403 E = UB->end_objects(); 2404 I != E; ++I) { 2405 if (ArchFlags[i] == I->getArchFlagName()) { 2406 ArchFound = true; 2407 Expected<std::unique_ptr<ObjectFile>> ObjOrErr = 2408 I->getAsObjectFile(); 2409 std::string ArchitectureName; 2410 if (ArchFlags.size() > 1) 2411 ArchitectureName = I->getArchFlagName(); 2412 if (ObjOrErr) { 2413 ObjectFile &O = *ObjOrErr.get(); 2414 if (MachOObjectFile *MachOOF = dyn_cast<MachOObjectFile>(&O)) 2415 ProcessMachO(Filename, MachOOF, "", ArchitectureName); 2416 } else if (Error E = isNotObjectErrorInvalidFileType( 2417 ObjOrErr.takeError())) { 2418 reportError(std::move(E), "", Filename, ArchitectureName); 2419 continue; 2420 } else if (Expected<std::unique_ptr<Archive>> AOrErr = 2421 I->getAsArchive()) { 2422 std::unique_ptr<Archive> &A = *AOrErr; 2423 outs() << "Archive : " << Filename; 2424 if (!ArchitectureName.empty()) 2425 outs() << " (architecture " << ArchitectureName << ")"; 2426 outs() << "\n"; 2427 if (ArchiveHeaders) 2428 printArchiveHeaders(Filename, A.get(), Verbose, 2429 ArchiveMemberOffsets, ArchitectureName); 2430 Error Err = Error::success(); 2431 unsigned I = -1; 2432 for (auto &C : A->children(Err)) { 2433 ++I; 2434 Expected<std::unique_ptr<Binary>> ChildOrErr = C.getAsBinary(); 2435 if (!ChildOrErr) { 2436 if (Error E = 2437 isNotObjectErrorInvalidFileType(ChildOrErr.takeError())) 2438 reportError(std::move(E), getFileNameForError(C, I), Filename, 2439 ArchitectureName); 2440 continue; 2441 } 2442 if (MachOObjectFile *O = 2443 dyn_cast<MachOObjectFile>(&*ChildOrErr.get())) 2444 ProcessMachO(Filename, O, O->getFileName(), ArchitectureName); 2445 } 2446 if (Err) 2447 reportError(std::move(Err), Filename); 2448 } else { 2449 consumeError(AOrErr.takeError()); 2450 reportError(Filename, 2451 "Mach-O universal file for architecture " + 2452 StringRef(I->getArchFlagName()) + 2453 " is not a Mach-O file or an archive file"); 2454 } 2455 } 2456 } 2457 if (!ArchFound) { 2458 WithColor::error(errs(), "llvm-objdump") 2459 << "file: " + Filename + " does not contain " 2460 << "architecture: " + ArchFlags[i] + "\n"; 2461 return; 2462 } 2463 } 2464 return; 2465 } 2466 // No architecture flags were specified so if this contains a slice that 2467 // matches the host architecture dump only that. 2468 if (!ArchAll) { 2469 for (MachOUniversalBinary::object_iterator I = UB->begin_objects(), 2470 E = UB->end_objects(); 2471 I != E; ++I) { 2472 if (MachOObjectFile::getHostArch().getArchName() == 2473 I->getArchFlagName()) { 2474 Expected<std::unique_ptr<ObjectFile>> ObjOrErr = I->getAsObjectFile(); 2475 std::string ArchiveName; 2476 ArchiveName.clear(); 2477 if (ObjOrErr) { 2478 ObjectFile &O = *ObjOrErr.get(); 2479 if (MachOObjectFile *MachOOF = dyn_cast<MachOObjectFile>(&O)) 2480 ProcessMachO(Filename, MachOOF); 2481 } else if (Error E = 2482 isNotObjectErrorInvalidFileType(ObjOrErr.takeError())) { 2483 reportError(std::move(E), Filename); 2484 } else if (Expected<std::unique_ptr<Archive>> AOrErr = 2485 I->getAsArchive()) { 2486 std::unique_ptr<Archive> &A = *AOrErr; 2487 outs() << "Archive : " << Filename << "\n"; 2488 if (ArchiveHeaders) 2489 printArchiveHeaders(Filename, A.get(), Verbose, 2490 ArchiveMemberOffsets); 2491 Error Err = Error::success(); 2492 unsigned I = -1; 2493 for (auto &C : A->children(Err)) { 2494 ++I; 2495 Expected<std::unique_ptr<Binary>> ChildOrErr = C.getAsBinary(); 2496 if (!ChildOrErr) { 2497 if (Error E = 2498 isNotObjectErrorInvalidFileType(ChildOrErr.takeError())) 2499 reportError(std::move(E), getFileNameForError(C, I), Filename); 2500 continue; 2501 } 2502 if (MachOObjectFile *O = 2503 dyn_cast<MachOObjectFile>(&*ChildOrErr.get())) 2504 ProcessMachO(Filename, O, O->getFileName()); 2505 } 2506 if (Err) 2507 reportError(std::move(Err), Filename); 2508 } else { 2509 consumeError(AOrErr.takeError()); 2510 reportError(Filename, "Mach-O universal file for architecture " + 2511 StringRef(I->getArchFlagName()) + 2512 " is not a Mach-O file or an archive file"); 2513 } 2514 return; 2515 } 2516 } 2517 } 2518 // Either all architectures have been specified or none have been specified 2519 // and this does not contain the host architecture so dump all the slices. 2520 bool moreThanOneArch = UB->getNumberOfObjects() > 1; 2521 for (MachOUniversalBinary::object_iterator I = UB->begin_objects(), 2522 E = UB->end_objects(); 2523 I != E; ++I) { 2524 Expected<std::unique_ptr<ObjectFile>> ObjOrErr = I->getAsObjectFile(); 2525 std::string ArchitectureName; 2526 if (moreThanOneArch) 2527 ArchitectureName = I->getArchFlagName(); 2528 if (ObjOrErr) { 2529 ObjectFile &Obj = *ObjOrErr.get(); 2530 if (MachOObjectFile *MachOOF = dyn_cast<MachOObjectFile>(&Obj)) 2531 ProcessMachO(Filename, MachOOF, "", ArchitectureName); 2532 } else if (Error E = 2533 isNotObjectErrorInvalidFileType(ObjOrErr.takeError())) { 2534 reportError(std::move(E), Filename, "", ArchitectureName); 2535 } else if (Expected<std::unique_ptr<Archive>> AOrErr = I->getAsArchive()) { 2536 std::unique_ptr<Archive> &A = *AOrErr; 2537 outs() << "Archive : " << Filename; 2538 if (!ArchitectureName.empty()) 2539 outs() << " (architecture " << ArchitectureName << ")"; 2540 outs() << "\n"; 2541 if (ArchiveHeaders) 2542 printArchiveHeaders(Filename, A.get(), Verbose, ArchiveMemberOffsets, 2543 ArchitectureName); 2544 Error Err = Error::success(); 2545 unsigned I = -1; 2546 for (auto &C : A->children(Err)) { 2547 ++I; 2548 Expected<std::unique_ptr<Binary>> ChildOrErr = C.getAsBinary(); 2549 if (!ChildOrErr) { 2550 if (Error E = isNotObjectErrorInvalidFileType(ChildOrErr.takeError())) 2551 reportError(std::move(E), getFileNameForError(C, I), Filename, 2552 ArchitectureName); 2553 continue; 2554 } 2555 if (MachOObjectFile *O = 2556 dyn_cast<MachOObjectFile>(&*ChildOrErr.get())) { 2557 if (MachOObjectFile *MachOOF = dyn_cast<MachOObjectFile>(O)) 2558 ProcessMachO(Filename, MachOOF, MachOOF->getFileName(), 2559 ArchitectureName); 2560 } 2561 } 2562 if (Err) 2563 reportError(std::move(Err), Filename); 2564 } else { 2565 consumeError(AOrErr.takeError()); 2566 reportError(Filename, "Mach-O universal file for architecture " + 2567 StringRef(I->getArchFlagName()) + 2568 " is not a Mach-O file or an archive file"); 2569 } 2570 } 2571 } 2572 2573 namespace { 2574 // The block of info used by the Symbolizer call backs. 2575 struct DisassembleInfo { 2576 DisassembleInfo(MachOObjectFile *O, SymbolAddressMap *AddrMap, 2577 std::vector<SectionRef> *Sections, bool verbose) 2578 : verbose(verbose), O(O), AddrMap(AddrMap), Sections(Sections) {} 2579 bool verbose; 2580 MachOObjectFile *O; 2581 SectionRef S; 2582 SymbolAddressMap *AddrMap; 2583 std::vector<SectionRef> *Sections; 2584 const char *class_name = nullptr; 2585 const char *selector_name = nullptr; 2586 std::unique_ptr<char[]> method = nullptr; 2587 char *demangled_name = nullptr; 2588 uint64_t adrp_addr = 0; 2589 uint32_t adrp_inst = 0; 2590 std::unique_ptr<SymbolAddressMap> bindtable; 2591 uint32_t depth = 0; 2592 }; 2593 } // namespace 2594 2595 // SymbolizerGetOpInfo() is the operand information call back function. 2596 // This is called to get the symbolic information for operand(s) of an 2597 // instruction when it is being done. This routine does this from 2598 // the relocation information, symbol table, etc. That block of information 2599 // is a pointer to the struct DisassembleInfo that was passed when the 2600 // disassembler context was created and passed to back to here when 2601 // called back by the disassembler for instruction operands that could have 2602 // relocation information. The address of the instruction containing operand is 2603 // at the Pc parameter. The immediate value the operand has is passed in 2604 // op_info->Value and is at Offset past the start of the instruction and has a 2605 // byte Size of 1, 2 or 4. The symbolc information is returned in TagBuf is the 2606 // LLVMOpInfo1 struct defined in the header "llvm-c/Disassembler.h" as symbol 2607 // names and addends of the symbolic expression to add for the operand. The 2608 // value of TagType is currently 1 (for the LLVMOpInfo1 struct). If symbolic 2609 // information is returned then this function returns 1 else it returns 0. 2610 static int SymbolizerGetOpInfo(void *DisInfo, uint64_t Pc, uint64_t Offset, 2611 uint64_t OpSize, uint64_t InstSize, int TagType, 2612 void *TagBuf) { 2613 struct DisassembleInfo *info = (struct DisassembleInfo *)DisInfo; 2614 struct LLVMOpInfo1 *op_info = (struct LLVMOpInfo1 *)TagBuf; 2615 uint64_t value = op_info->Value; 2616 2617 // Make sure all fields returned are zero if we don't set them. 2618 memset((void *)op_info, '\0', sizeof(struct LLVMOpInfo1)); 2619 op_info->Value = value; 2620 2621 // If the TagType is not the value 1 which it code knows about or if no 2622 // verbose symbolic information is wanted then just return 0, indicating no 2623 // information is being returned. 2624 if (TagType != 1 || !info->verbose) 2625 return 0; 2626 2627 unsigned int Arch = info->O->getArch(); 2628 if (Arch == Triple::x86) { 2629 if (OpSize != 1 && OpSize != 2 && OpSize != 4 && OpSize != 0) 2630 return 0; 2631 if (info->O->getHeader().filetype != MachO::MH_OBJECT) { 2632 // TODO: 2633 // Search the external relocation entries of a fully linked image 2634 // (if any) for an entry that matches this segment offset. 2635 // uint32_t seg_offset = (Pc + Offset); 2636 return 0; 2637 } 2638 // In MH_OBJECT filetypes search the section's relocation entries (if any) 2639 // for an entry for this section offset. 2640 uint32_t sect_addr = info->S.getAddress(); 2641 uint32_t sect_offset = (Pc + Offset) - sect_addr; 2642 bool reloc_found = false; 2643 DataRefImpl Rel; 2644 MachO::any_relocation_info RE; 2645 bool isExtern = false; 2646 SymbolRef Symbol; 2647 bool r_scattered = false; 2648 uint32_t r_value, pair_r_value, r_type; 2649 for (const RelocationRef &Reloc : info->S.relocations()) { 2650 uint64_t RelocOffset = Reloc.getOffset(); 2651 if (RelocOffset == sect_offset) { 2652 Rel = Reloc.getRawDataRefImpl(); 2653 RE = info->O->getRelocation(Rel); 2654 r_type = info->O->getAnyRelocationType(RE); 2655 r_scattered = info->O->isRelocationScattered(RE); 2656 if (r_scattered) { 2657 r_value = info->O->getScatteredRelocationValue(RE); 2658 if (r_type == MachO::GENERIC_RELOC_SECTDIFF || 2659 r_type == MachO::GENERIC_RELOC_LOCAL_SECTDIFF) { 2660 DataRefImpl RelNext = Rel; 2661 info->O->moveRelocationNext(RelNext); 2662 MachO::any_relocation_info RENext; 2663 RENext = info->O->getRelocation(RelNext); 2664 if (info->O->isRelocationScattered(RENext)) 2665 pair_r_value = info->O->getScatteredRelocationValue(RENext); 2666 else 2667 return 0; 2668 } 2669 } else { 2670 isExtern = info->O->getPlainRelocationExternal(RE); 2671 if (isExtern) { 2672 symbol_iterator RelocSym = Reloc.getSymbol(); 2673 Symbol = *RelocSym; 2674 } 2675 } 2676 reloc_found = true; 2677 break; 2678 } 2679 } 2680 if (reloc_found && isExtern) { 2681 op_info->AddSymbol.Present = 1; 2682 op_info->AddSymbol.Name = 2683 unwrapOrError(Symbol.getName(), info->O->getFileName()).data(); 2684 // For i386 extern relocation entries the value in the instruction is 2685 // the offset from the symbol, and value is already set in op_info->Value. 2686 return 1; 2687 } 2688 if (reloc_found && (r_type == MachO::GENERIC_RELOC_SECTDIFF || 2689 r_type == MachO::GENERIC_RELOC_LOCAL_SECTDIFF)) { 2690 const char *add = GuessSymbolName(r_value, info->AddrMap); 2691 const char *sub = GuessSymbolName(pair_r_value, info->AddrMap); 2692 uint32_t offset = value - (r_value - pair_r_value); 2693 op_info->AddSymbol.Present = 1; 2694 if (add != nullptr) 2695 op_info->AddSymbol.Name = add; 2696 else 2697 op_info->AddSymbol.Value = r_value; 2698 op_info->SubtractSymbol.Present = 1; 2699 if (sub != nullptr) 2700 op_info->SubtractSymbol.Name = sub; 2701 else 2702 op_info->SubtractSymbol.Value = pair_r_value; 2703 op_info->Value = offset; 2704 return 1; 2705 } 2706 return 0; 2707 } 2708 if (Arch == Triple::x86_64) { 2709 if (OpSize != 1 && OpSize != 2 && OpSize != 4 && OpSize != 0) 2710 return 0; 2711 // For non MH_OBJECT types, like MH_KEXT_BUNDLE, Search the external 2712 // relocation entries of a linked image (if any) for an entry that matches 2713 // this segment offset. 2714 if (info->O->getHeader().filetype != MachO::MH_OBJECT) { 2715 uint64_t seg_offset = Pc + Offset; 2716 bool reloc_found = false; 2717 DataRefImpl Rel; 2718 MachO::any_relocation_info RE; 2719 bool isExtern = false; 2720 SymbolRef Symbol; 2721 for (const RelocationRef &Reloc : info->O->external_relocations()) { 2722 uint64_t RelocOffset = Reloc.getOffset(); 2723 if (RelocOffset == seg_offset) { 2724 Rel = Reloc.getRawDataRefImpl(); 2725 RE = info->O->getRelocation(Rel); 2726 // external relocation entries should always be external. 2727 isExtern = info->O->getPlainRelocationExternal(RE); 2728 if (isExtern) { 2729 symbol_iterator RelocSym = Reloc.getSymbol(); 2730 Symbol = *RelocSym; 2731 } 2732 reloc_found = true; 2733 break; 2734 } 2735 } 2736 if (reloc_found && isExtern) { 2737 // The Value passed in will be adjusted by the Pc if the instruction 2738 // adds the Pc. But for x86_64 external relocation entries the Value 2739 // is the offset from the external symbol. 2740 if (info->O->getAnyRelocationPCRel(RE)) 2741 op_info->Value -= Pc + InstSize; 2742 const char *name = 2743 unwrapOrError(Symbol.getName(), info->O->getFileName()).data(); 2744 op_info->AddSymbol.Present = 1; 2745 op_info->AddSymbol.Name = name; 2746 return 1; 2747 } 2748 return 0; 2749 } 2750 // In MH_OBJECT filetypes search the section's relocation entries (if any) 2751 // for an entry for this section offset. 2752 uint64_t sect_addr = info->S.getAddress(); 2753 uint64_t sect_offset = (Pc + Offset) - sect_addr; 2754 bool reloc_found = false; 2755 DataRefImpl Rel; 2756 MachO::any_relocation_info RE; 2757 bool isExtern = false; 2758 SymbolRef Symbol; 2759 for (const RelocationRef &Reloc : info->S.relocations()) { 2760 uint64_t RelocOffset = Reloc.getOffset(); 2761 if (RelocOffset == sect_offset) { 2762 Rel = Reloc.getRawDataRefImpl(); 2763 RE = info->O->getRelocation(Rel); 2764 // NOTE: Scattered relocations don't exist on x86_64. 2765 isExtern = info->O->getPlainRelocationExternal(RE); 2766 if (isExtern) { 2767 symbol_iterator RelocSym = Reloc.getSymbol(); 2768 Symbol = *RelocSym; 2769 } 2770 reloc_found = true; 2771 break; 2772 } 2773 } 2774 if (reloc_found && isExtern) { 2775 // The Value passed in will be adjusted by the Pc if the instruction 2776 // adds the Pc. But for x86_64 external relocation entries the Value 2777 // is the offset from the external symbol. 2778 if (info->O->getAnyRelocationPCRel(RE)) 2779 op_info->Value -= Pc + InstSize; 2780 const char *name = 2781 unwrapOrError(Symbol.getName(), info->O->getFileName()).data(); 2782 unsigned Type = info->O->getAnyRelocationType(RE); 2783 if (Type == MachO::X86_64_RELOC_SUBTRACTOR) { 2784 DataRefImpl RelNext = Rel; 2785 info->O->moveRelocationNext(RelNext); 2786 MachO::any_relocation_info RENext = info->O->getRelocation(RelNext); 2787 unsigned TypeNext = info->O->getAnyRelocationType(RENext); 2788 bool isExternNext = info->O->getPlainRelocationExternal(RENext); 2789 unsigned SymbolNum = info->O->getPlainRelocationSymbolNum(RENext); 2790 if (TypeNext == MachO::X86_64_RELOC_UNSIGNED && isExternNext) { 2791 op_info->SubtractSymbol.Present = 1; 2792 op_info->SubtractSymbol.Name = name; 2793 symbol_iterator RelocSymNext = info->O->getSymbolByIndex(SymbolNum); 2794 Symbol = *RelocSymNext; 2795 name = unwrapOrError(Symbol.getName(), info->O->getFileName()).data(); 2796 } 2797 } 2798 // TODO: add the VariantKinds to op_info->VariantKind for relocation types 2799 // like: X86_64_RELOC_TLV, X86_64_RELOC_GOT_LOAD and X86_64_RELOC_GOT. 2800 op_info->AddSymbol.Present = 1; 2801 op_info->AddSymbol.Name = name; 2802 return 1; 2803 } 2804 return 0; 2805 } 2806 if (Arch == Triple::arm) { 2807 if (Offset != 0 || (InstSize != 4 && InstSize != 2)) 2808 return 0; 2809 if (info->O->getHeader().filetype != MachO::MH_OBJECT) { 2810 // TODO: 2811 // Search the external relocation entries of a fully linked image 2812 // (if any) for an entry that matches this segment offset. 2813 // uint32_t seg_offset = (Pc + Offset); 2814 return 0; 2815 } 2816 // In MH_OBJECT filetypes search the section's relocation entries (if any) 2817 // for an entry for this section offset. 2818 uint32_t sect_addr = info->S.getAddress(); 2819 uint32_t sect_offset = (Pc + Offset) - sect_addr; 2820 DataRefImpl Rel; 2821 MachO::any_relocation_info RE; 2822 bool isExtern = false; 2823 SymbolRef Symbol; 2824 bool r_scattered = false; 2825 uint32_t r_value, pair_r_value, r_type, r_length, other_half; 2826 auto Reloc = 2827 find_if(info->S.relocations(), [&](const RelocationRef &Reloc) { 2828 uint64_t RelocOffset = Reloc.getOffset(); 2829 return RelocOffset == sect_offset; 2830 }); 2831 2832 if (Reloc == info->S.relocations().end()) 2833 return 0; 2834 2835 Rel = Reloc->getRawDataRefImpl(); 2836 RE = info->O->getRelocation(Rel); 2837 r_length = info->O->getAnyRelocationLength(RE); 2838 r_scattered = info->O->isRelocationScattered(RE); 2839 if (r_scattered) { 2840 r_value = info->O->getScatteredRelocationValue(RE); 2841 r_type = info->O->getScatteredRelocationType(RE); 2842 } else { 2843 r_type = info->O->getAnyRelocationType(RE); 2844 isExtern = info->O->getPlainRelocationExternal(RE); 2845 if (isExtern) { 2846 symbol_iterator RelocSym = Reloc->getSymbol(); 2847 Symbol = *RelocSym; 2848 } 2849 } 2850 if (r_type == MachO::ARM_RELOC_HALF || 2851 r_type == MachO::ARM_RELOC_SECTDIFF || 2852 r_type == MachO::ARM_RELOC_LOCAL_SECTDIFF || 2853 r_type == MachO::ARM_RELOC_HALF_SECTDIFF) { 2854 DataRefImpl RelNext = Rel; 2855 info->O->moveRelocationNext(RelNext); 2856 MachO::any_relocation_info RENext; 2857 RENext = info->O->getRelocation(RelNext); 2858 other_half = info->O->getAnyRelocationAddress(RENext) & 0xffff; 2859 if (info->O->isRelocationScattered(RENext)) 2860 pair_r_value = info->O->getScatteredRelocationValue(RENext); 2861 } 2862 2863 if (isExtern) { 2864 const char *name = 2865 unwrapOrError(Symbol.getName(), info->O->getFileName()).data(); 2866 op_info->AddSymbol.Present = 1; 2867 op_info->AddSymbol.Name = name; 2868 switch (r_type) { 2869 case MachO::ARM_RELOC_HALF: 2870 if ((r_length & 0x1) == 1) { 2871 op_info->Value = value << 16 | other_half; 2872 op_info->VariantKind = LLVMDisassembler_VariantKind_ARM_HI16; 2873 } else { 2874 op_info->Value = other_half << 16 | value; 2875 op_info->VariantKind = LLVMDisassembler_VariantKind_ARM_LO16; 2876 } 2877 break; 2878 default: 2879 break; 2880 } 2881 return 1; 2882 } 2883 // If we have a branch that is not an external relocation entry then 2884 // return 0 so the code in tryAddingSymbolicOperand() can use the 2885 // SymbolLookUp call back with the branch target address to look up the 2886 // symbol and possibility add an annotation for a symbol stub. 2887 if (isExtern == 0 && (r_type == MachO::ARM_RELOC_BR24 || 2888 r_type == MachO::ARM_THUMB_RELOC_BR22)) 2889 return 0; 2890 2891 uint32_t offset = 0; 2892 if (r_type == MachO::ARM_RELOC_HALF || 2893 r_type == MachO::ARM_RELOC_HALF_SECTDIFF) { 2894 if ((r_length & 0x1) == 1) 2895 value = value << 16 | other_half; 2896 else 2897 value = other_half << 16 | value; 2898 } 2899 if (r_scattered && (r_type != MachO::ARM_RELOC_HALF && 2900 r_type != MachO::ARM_RELOC_HALF_SECTDIFF)) { 2901 offset = value - r_value; 2902 value = r_value; 2903 } 2904 2905 if (r_type == MachO::ARM_RELOC_HALF_SECTDIFF) { 2906 if ((r_length & 0x1) == 1) 2907 op_info->VariantKind = LLVMDisassembler_VariantKind_ARM_HI16; 2908 else 2909 op_info->VariantKind = LLVMDisassembler_VariantKind_ARM_LO16; 2910 const char *add = GuessSymbolName(r_value, info->AddrMap); 2911 const char *sub = GuessSymbolName(pair_r_value, info->AddrMap); 2912 int32_t offset = value - (r_value - pair_r_value); 2913 op_info->AddSymbol.Present = 1; 2914 if (add != nullptr) 2915 op_info->AddSymbol.Name = add; 2916 else 2917 op_info->AddSymbol.Value = r_value; 2918 op_info->SubtractSymbol.Present = 1; 2919 if (sub != nullptr) 2920 op_info->SubtractSymbol.Name = sub; 2921 else 2922 op_info->SubtractSymbol.Value = pair_r_value; 2923 op_info->Value = offset; 2924 return 1; 2925 } 2926 2927 op_info->AddSymbol.Present = 1; 2928 op_info->Value = offset; 2929 if (r_type == MachO::ARM_RELOC_HALF) { 2930 if ((r_length & 0x1) == 1) 2931 op_info->VariantKind = LLVMDisassembler_VariantKind_ARM_HI16; 2932 else 2933 op_info->VariantKind = LLVMDisassembler_VariantKind_ARM_LO16; 2934 } 2935 const char *add = GuessSymbolName(value, info->AddrMap); 2936 if (add != nullptr) { 2937 op_info->AddSymbol.Name = add; 2938 return 1; 2939 } 2940 op_info->AddSymbol.Value = value; 2941 return 1; 2942 } 2943 if (Arch == Triple::aarch64) { 2944 if (Offset != 0 || InstSize != 4) 2945 return 0; 2946 if (info->O->getHeader().filetype != MachO::MH_OBJECT) { 2947 // TODO: 2948 // Search the external relocation entries of a fully linked image 2949 // (if any) for an entry that matches this segment offset. 2950 // uint64_t seg_offset = (Pc + Offset); 2951 return 0; 2952 } 2953 // In MH_OBJECT filetypes search the section's relocation entries (if any) 2954 // for an entry for this section offset. 2955 uint64_t sect_addr = info->S.getAddress(); 2956 uint64_t sect_offset = (Pc + Offset) - sect_addr; 2957 auto Reloc = 2958 find_if(info->S.relocations(), [&](const RelocationRef &Reloc) { 2959 uint64_t RelocOffset = Reloc.getOffset(); 2960 return RelocOffset == sect_offset; 2961 }); 2962 2963 if (Reloc == info->S.relocations().end()) 2964 return 0; 2965 2966 DataRefImpl Rel = Reloc->getRawDataRefImpl(); 2967 MachO::any_relocation_info RE = info->O->getRelocation(Rel); 2968 uint32_t r_type = info->O->getAnyRelocationType(RE); 2969 if (r_type == MachO::ARM64_RELOC_ADDEND) { 2970 DataRefImpl RelNext = Rel; 2971 info->O->moveRelocationNext(RelNext); 2972 MachO::any_relocation_info RENext = info->O->getRelocation(RelNext); 2973 if (value == 0) { 2974 value = info->O->getPlainRelocationSymbolNum(RENext); 2975 op_info->Value = value; 2976 } 2977 } 2978 // NOTE: Scattered relocations don't exist on arm64. 2979 if (!info->O->getPlainRelocationExternal(RE)) 2980 return 0; 2981 const char *name = 2982 unwrapOrError(Reloc->getSymbol()->getName(), info->O->getFileName()) 2983 .data(); 2984 op_info->AddSymbol.Present = 1; 2985 op_info->AddSymbol.Name = name; 2986 2987 switch (r_type) { 2988 case MachO::ARM64_RELOC_PAGE21: 2989 /* @page */ 2990 op_info->VariantKind = LLVMDisassembler_VariantKind_ARM64_PAGE; 2991 break; 2992 case MachO::ARM64_RELOC_PAGEOFF12: 2993 /* @pageoff */ 2994 op_info->VariantKind = LLVMDisassembler_VariantKind_ARM64_PAGEOFF; 2995 break; 2996 case MachO::ARM64_RELOC_GOT_LOAD_PAGE21: 2997 /* @gotpage */ 2998 op_info->VariantKind = LLVMDisassembler_VariantKind_ARM64_GOTPAGE; 2999 break; 3000 case MachO::ARM64_RELOC_GOT_LOAD_PAGEOFF12: 3001 /* @gotpageoff */ 3002 op_info->VariantKind = LLVMDisassembler_VariantKind_ARM64_GOTPAGEOFF; 3003 break; 3004 case MachO::ARM64_RELOC_TLVP_LOAD_PAGE21: 3005 /* @tvlppage is not implemented in llvm-mc */ 3006 op_info->VariantKind = LLVMDisassembler_VariantKind_ARM64_TLVP; 3007 break; 3008 case MachO::ARM64_RELOC_TLVP_LOAD_PAGEOFF12: 3009 /* @tvlppageoff is not implemented in llvm-mc */ 3010 op_info->VariantKind = LLVMDisassembler_VariantKind_ARM64_TLVOFF; 3011 break; 3012 default: 3013 case MachO::ARM64_RELOC_BRANCH26: 3014 op_info->VariantKind = LLVMDisassembler_VariantKind_None; 3015 break; 3016 } 3017 return 1; 3018 } 3019 return 0; 3020 } 3021 3022 // GuessCstringPointer is passed the address of what might be a pointer to a 3023 // literal string in a cstring section. If that address is in a cstring section 3024 // it returns a pointer to that string. Else it returns nullptr. 3025 static const char *GuessCstringPointer(uint64_t ReferenceValue, 3026 struct DisassembleInfo *info) { 3027 for (const auto &Load : info->O->load_commands()) { 3028 if (Load.C.cmd == MachO::LC_SEGMENT_64) { 3029 MachO::segment_command_64 Seg = info->O->getSegment64LoadCommand(Load); 3030 for (unsigned J = 0; J < Seg.nsects; ++J) { 3031 MachO::section_64 Sec = info->O->getSection64(Load, J); 3032 uint32_t section_type = Sec.flags & MachO::SECTION_TYPE; 3033 if (section_type == MachO::S_CSTRING_LITERALS && 3034 ReferenceValue >= Sec.addr && 3035 ReferenceValue < Sec.addr + Sec.size) { 3036 uint64_t sect_offset = ReferenceValue - Sec.addr; 3037 uint64_t object_offset = Sec.offset + sect_offset; 3038 StringRef MachOContents = info->O->getData(); 3039 uint64_t object_size = MachOContents.size(); 3040 const char *object_addr = (const char *)MachOContents.data(); 3041 if (object_offset < object_size) { 3042 const char *name = object_addr + object_offset; 3043 return name; 3044 } else { 3045 return nullptr; 3046 } 3047 } 3048 } 3049 } else if (Load.C.cmd == MachO::LC_SEGMENT) { 3050 MachO::segment_command Seg = info->O->getSegmentLoadCommand(Load); 3051 for (unsigned J = 0; J < Seg.nsects; ++J) { 3052 MachO::section Sec = info->O->getSection(Load, J); 3053 uint32_t section_type = Sec.flags & MachO::SECTION_TYPE; 3054 if (section_type == MachO::S_CSTRING_LITERALS && 3055 ReferenceValue >= Sec.addr && 3056 ReferenceValue < Sec.addr + Sec.size) { 3057 uint64_t sect_offset = ReferenceValue - Sec.addr; 3058 uint64_t object_offset = Sec.offset + sect_offset; 3059 StringRef MachOContents = info->O->getData(); 3060 uint64_t object_size = MachOContents.size(); 3061 const char *object_addr = (const char *)MachOContents.data(); 3062 if (object_offset < object_size) { 3063 const char *name = object_addr + object_offset; 3064 return name; 3065 } else { 3066 return nullptr; 3067 } 3068 } 3069 } 3070 } 3071 } 3072 return nullptr; 3073 } 3074 3075 // GuessIndirectSymbol returns the name of the indirect symbol for the 3076 // ReferenceValue passed in or nullptr. This is used when ReferenceValue maybe 3077 // an address of a symbol stub or a lazy or non-lazy pointer to associate the 3078 // symbol name being referenced by the stub or pointer. 3079 static const char *GuessIndirectSymbol(uint64_t ReferenceValue, 3080 struct DisassembleInfo *info) { 3081 MachO::dysymtab_command Dysymtab = info->O->getDysymtabLoadCommand(); 3082 MachO::symtab_command Symtab = info->O->getSymtabLoadCommand(); 3083 for (const auto &Load : info->O->load_commands()) { 3084 if (Load.C.cmd == MachO::LC_SEGMENT_64) { 3085 MachO::segment_command_64 Seg = info->O->getSegment64LoadCommand(Load); 3086 for (unsigned J = 0; J < Seg.nsects; ++J) { 3087 MachO::section_64 Sec = info->O->getSection64(Load, J); 3088 uint32_t section_type = Sec.flags & MachO::SECTION_TYPE; 3089 if ((section_type == MachO::S_NON_LAZY_SYMBOL_POINTERS || 3090 section_type == MachO::S_LAZY_SYMBOL_POINTERS || 3091 section_type == MachO::S_LAZY_DYLIB_SYMBOL_POINTERS || 3092 section_type == MachO::S_THREAD_LOCAL_VARIABLE_POINTERS || 3093 section_type == MachO::S_SYMBOL_STUBS) && 3094 ReferenceValue >= Sec.addr && 3095 ReferenceValue < Sec.addr + Sec.size) { 3096 uint32_t stride; 3097 if (section_type == MachO::S_SYMBOL_STUBS) 3098 stride = Sec.reserved2; 3099 else 3100 stride = 8; 3101 if (stride == 0) 3102 return nullptr; 3103 uint32_t index = Sec.reserved1 + (ReferenceValue - Sec.addr) / stride; 3104 if (index < Dysymtab.nindirectsyms) { 3105 uint32_t indirect_symbol = 3106 info->O->getIndirectSymbolTableEntry(Dysymtab, index); 3107 if (indirect_symbol < Symtab.nsyms) { 3108 symbol_iterator Sym = info->O->getSymbolByIndex(indirect_symbol); 3109 return unwrapOrError(Sym->getName(), info->O->getFileName()) 3110 .data(); 3111 } 3112 } 3113 } 3114 } 3115 } else if (Load.C.cmd == MachO::LC_SEGMENT) { 3116 MachO::segment_command Seg = info->O->getSegmentLoadCommand(Load); 3117 for (unsigned J = 0; J < Seg.nsects; ++J) { 3118 MachO::section Sec = info->O->getSection(Load, J); 3119 uint32_t section_type = Sec.flags & MachO::SECTION_TYPE; 3120 if ((section_type == MachO::S_NON_LAZY_SYMBOL_POINTERS || 3121 section_type == MachO::S_LAZY_SYMBOL_POINTERS || 3122 section_type == MachO::S_LAZY_DYLIB_SYMBOL_POINTERS || 3123 section_type == MachO::S_THREAD_LOCAL_VARIABLE_POINTERS || 3124 section_type == MachO::S_SYMBOL_STUBS) && 3125 ReferenceValue >= Sec.addr && 3126 ReferenceValue < Sec.addr + Sec.size) { 3127 uint32_t stride; 3128 if (section_type == MachO::S_SYMBOL_STUBS) 3129 stride = Sec.reserved2; 3130 else 3131 stride = 4; 3132 if (stride == 0) 3133 return nullptr; 3134 uint32_t index = Sec.reserved1 + (ReferenceValue - Sec.addr) / stride; 3135 if (index < Dysymtab.nindirectsyms) { 3136 uint32_t indirect_symbol = 3137 info->O->getIndirectSymbolTableEntry(Dysymtab, index); 3138 if (indirect_symbol < Symtab.nsyms) { 3139 symbol_iterator Sym = info->O->getSymbolByIndex(indirect_symbol); 3140 return unwrapOrError(Sym->getName(), info->O->getFileName()) 3141 .data(); 3142 } 3143 } 3144 } 3145 } 3146 } 3147 } 3148 return nullptr; 3149 } 3150 3151 // method_reference() is called passing it the ReferenceName that might be 3152 // a reference it to an Objective-C method call. If so then it allocates and 3153 // assembles a method call string with the values last seen and saved in 3154 // the DisassembleInfo's class_name and selector_name fields. This is saved 3155 // into the method field of the info and any previous string is free'ed. 3156 // Then the class_name field in the info is set to nullptr. The method call 3157 // string is set into ReferenceName and ReferenceType is set to 3158 // LLVMDisassembler_ReferenceType_Out_Objc_Message. If this not a method call 3159 // then both ReferenceType and ReferenceName are left unchanged. 3160 static void method_reference(struct DisassembleInfo *info, 3161 uint64_t *ReferenceType, 3162 const char **ReferenceName) { 3163 unsigned int Arch = info->O->getArch(); 3164 if (*ReferenceName != nullptr) { 3165 if (strcmp(*ReferenceName, "_objc_msgSend") == 0) { 3166 if (info->selector_name != nullptr) { 3167 if (info->class_name != nullptr) { 3168 info->method = std::make_unique<char[]>( 3169 5 + strlen(info->class_name) + strlen(info->selector_name)); 3170 char *method = info->method.get(); 3171 if (method != nullptr) { 3172 strcpy(method, "+["); 3173 strcat(method, info->class_name); 3174 strcat(method, " "); 3175 strcat(method, info->selector_name); 3176 strcat(method, "]"); 3177 *ReferenceName = method; 3178 *ReferenceType = LLVMDisassembler_ReferenceType_Out_Objc_Message; 3179 } 3180 } else { 3181 info->method = 3182 std::make_unique<char[]>(9 + strlen(info->selector_name)); 3183 char *method = info->method.get(); 3184 if (method != nullptr) { 3185 if (Arch == Triple::x86_64) 3186 strcpy(method, "-[%rdi "); 3187 else if (Arch == Triple::aarch64) 3188 strcpy(method, "-[x0 "); 3189 else 3190 strcpy(method, "-[r? "); 3191 strcat(method, info->selector_name); 3192 strcat(method, "]"); 3193 *ReferenceName = method; 3194 *ReferenceType = LLVMDisassembler_ReferenceType_Out_Objc_Message; 3195 } 3196 } 3197 info->class_name = nullptr; 3198 } 3199 } else if (strcmp(*ReferenceName, "_objc_msgSendSuper2") == 0) { 3200 if (info->selector_name != nullptr) { 3201 info->method = 3202 std::make_unique<char[]>(17 + strlen(info->selector_name)); 3203 char *method = info->method.get(); 3204 if (method != nullptr) { 3205 if (Arch == Triple::x86_64) 3206 strcpy(method, "-[[%rdi super] "); 3207 else if (Arch == Triple::aarch64) 3208 strcpy(method, "-[[x0 super] "); 3209 else 3210 strcpy(method, "-[[r? super] "); 3211 strcat(method, info->selector_name); 3212 strcat(method, "]"); 3213 *ReferenceName = method; 3214 *ReferenceType = LLVMDisassembler_ReferenceType_Out_Objc_Message; 3215 } 3216 info->class_name = nullptr; 3217 } 3218 } 3219 } 3220 } 3221 3222 // GuessPointerPointer() is passed the address of what might be a pointer to 3223 // a reference to an Objective-C class, selector, message ref or cfstring. 3224 // If so the value of the pointer is returned and one of the booleans are set 3225 // to true. If not zero is returned and all the booleans are set to false. 3226 static uint64_t GuessPointerPointer(uint64_t ReferenceValue, 3227 struct DisassembleInfo *info, 3228 bool &classref, bool &selref, bool &msgref, 3229 bool &cfstring) { 3230 classref = false; 3231 selref = false; 3232 msgref = false; 3233 cfstring = false; 3234 for (const auto &Load : info->O->load_commands()) { 3235 if (Load.C.cmd == MachO::LC_SEGMENT_64) { 3236 MachO::segment_command_64 Seg = info->O->getSegment64LoadCommand(Load); 3237 for (unsigned J = 0; J < Seg.nsects; ++J) { 3238 MachO::section_64 Sec = info->O->getSection64(Load, J); 3239 if ((strncmp(Sec.sectname, "__objc_selrefs", 16) == 0 || 3240 strncmp(Sec.sectname, "__objc_classrefs", 16) == 0 || 3241 strncmp(Sec.sectname, "__objc_superrefs", 16) == 0 || 3242 strncmp(Sec.sectname, "__objc_msgrefs", 16) == 0 || 3243 strncmp(Sec.sectname, "__cfstring", 16) == 0) && 3244 ReferenceValue >= Sec.addr && 3245 ReferenceValue < Sec.addr + Sec.size) { 3246 uint64_t sect_offset = ReferenceValue - Sec.addr; 3247 uint64_t object_offset = Sec.offset + sect_offset; 3248 StringRef MachOContents = info->O->getData(); 3249 uint64_t object_size = MachOContents.size(); 3250 const char *object_addr = (const char *)MachOContents.data(); 3251 if (object_offset < object_size) { 3252 uint64_t pointer_value; 3253 memcpy(&pointer_value, object_addr + object_offset, 3254 sizeof(uint64_t)); 3255 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 3256 sys::swapByteOrder(pointer_value); 3257 if (strncmp(Sec.sectname, "__objc_selrefs", 16) == 0) 3258 selref = true; 3259 else if (strncmp(Sec.sectname, "__objc_classrefs", 16) == 0 || 3260 strncmp(Sec.sectname, "__objc_superrefs", 16) == 0) 3261 classref = true; 3262 else if (strncmp(Sec.sectname, "__objc_msgrefs", 16) == 0 && 3263 ReferenceValue + 8 < Sec.addr + Sec.size) { 3264 msgref = true; 3265 memcpy(&pointer_value, object_addr + object_offset + 8, 3266 sizeof(uint64_t)); 3267 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 3268 sys::swapByteOrder(pointer_value); 3269 } else if (strncmp(Sec.sectname, "__cfstring", 16) == 0) 3270 cfstring = true; 3271 return pointer_value; 3272 } else { 3273 return 0; 3274 } 3275 } 3276 } 3277 } 3278 // TODO: Look for LC_SEGMENT for 32-bit Mach-O files. 3279 } 3280 return 0; 3281 } 3282 3283 // get_pointer_64 returns a pointer to the bytes in the object file at the 3284 // Address from a section in the Mach-O file. And indirectly returns the 3285 // offset into the section, number of bytes left in the section past the offset 3286 // and which section is was being referenced. If the Address is not in a 3287 // section nullptr is returned. 3288 static const char *get_pointer_64(uint64_t Address, uint32_t &offset, 3289 uint32_t &left, SectionRef &S, 3290 DisassembleInfo *info, 3291 bool objc_only = false) { 3292 offset = 0; 3293 left = 0; 3294 S = SectionRef(); 3295 for (unsigned SectIdx = 0; SectIdx != info->Sections->size(); SectIdx++) { 3296 uint64_t SectAddress = ((*(info->Sections))[SectIdx]).getAddress(); 3297 uint64_t SectSize = ((*(info->Sections))[SectIdx]).getSize(); 3298 if (SectSize == 0) 3299 continue; 3300 if (objc_only) { 3301 StringRef SectName; 3302 Expected<StringRef> SecNameOrErr = 3303 ((*(info->Sections))[SectIdx]).getName(); 3304 if (SecNameOrErr) 3305 SectName = *SecNameOrErr; 3306 else 3307 consumeError(SecNameOrErr.takeError()); 3308 3309 DataRefImpl Ref = ((*(info->Sections))[SectIdx]).getRawDataRefImpl(); 3310 StringRef SegName = info->O->getSectionFinalSegmentName(Ref); 3311 if (SegName != "__OBJC" && SectName != "__cstring") 3312 continue; 3313 } 3314 if (Address >= SectAddress && Address < SectAddress + SectSize) { 3315 S = (*(info->Sections))[SectIdx]; 3316 offset = Address - SectAddress; 3317 left = SectSize - offset; 3318 StringRef SectContents = unwrapOrError( 3319 ((*(info->Sections))[SectIdx]).getContents(), info->O->getFileName()); 3320 return SectContents.data() + offset; 3321 } 3322 } 3323 return nullptr; 3324 } 3325 3326 static const char *get_pointer_32(uint32_t Address, uint32_t &offset, 3327 uint32_t &left, SectionRef &S, 3328 DisassembleInfo *info, 3329 bool objc_only = false) { 3330 return get_pointer_64(Address, offset, left, S, info, objc_only); 3331 } 3332 3333 // get_symbol_64() returns the name of a symbol (or nullptr) and the address of 3334 // the symbol indirectly through n_value. Based on the relocation information 3335 // for the specified section offset in the specified section reference. 3336 // If no relocation information is found and a non-zero ReferenceValue for the 3337 // symbol is passed, look up that address in the info's AddrMap. 3338 static const char *get_symbol_64(uint32_t sect_offset, SectionRef S, 3339 DisassembleInfo *info, uint64_t &n_value, 3340 uint64_t ReferenceValue = 0) { 3341 n_value = 0; 3342 if (!info->verbose) 3343 return nullptr; 3344 3345 // See if there is an external relocation entry at the sect_offset. 3346 bool reloc_found = false; 3347 DataRefImpl Rel; 3348 MachO::any_relocation_info RE; 3349 bool isExtern = false; 3350 SymbolRef Symbol; 3351 for (const RelocationRef &Reloc : S.relocations()) { 3352 uint64_t RelocOffset = Reloc.getOffset(); 3353 if (RelocOffset == sect_offset) { 3354 Rel = Reloc.getRawDataRefImpl(); 3355 RE = info->O->getRelocation(Rel); 3356 if (info->O->isRelocationScattered(RE)) 3357 continue; 3358 isExtern = info->O->getPlainRelocationExternal(RE); 3359 if (isExtern) { 3360 symbol_iterator RelocSym = Reloc.getSymbol(); 3361 Symbol = *RelocSym; 3362 } 3363 reloc_found = true; 3364 break; 3365 } 3366 } 3367 // If there is an external relocation entry for a symbol in this section 3368 // at this section_offset then use that symbol's value for the n_value 3369 // and return its name. 3370 const char *SymbolName = nullptr; 3371 if (reloc_found && isExtern) { 3372 n_value = cantFail(Symbol.getValue()); 3373 StringRef Name = unwrapOrError(Symbol.getName(), info->O->getFileName()); 3374 if (!Name.empty()) { 3375 SymbolName = Name.data(); 3376 return SymbolName; 3377 } 3378 } 3379 3380 // TODO: For fully linked images, look through the external relocation 3381 // entries off the dynamic symtab command. For these the r_offset is from the 3382 // start of the first writeable segment in the Mach-O file. So the offset 3383 // to this section from that segment is passed to this routine by the caller, 3384 // as the database_offset. Which is the difference of the section's starting 3385 // address and the first writable segment. 3386 // 3387 // NOTE: need add passing the database_offset to this routine. 3388 3389 // We did not find an external relocation entry so look up the ReferenceValue 3390 // as an address of a symbol and if found return that symbol's name. 3391 SymbolName = GuessSymbolName(ReferenceValue, info->AddrMap); 3392 3393 return SymbolName; 3394 } 3395 3396 static const char *get_symbol_32(uint32_t sect_offset, SectionRef S, 3397 DisassembleInfo *info, 3398 uint32_t ReferenceValue) { 3399 uint64_t n_value64; 3400 return get_symbol_64(sect_offset, S, info, n_value64, ReferenceValue); 3401 } 3402 3403 namespace { 3404 3405 // These are structs in the Objective-C meta data and read to produce the 3406 // comments for disassembly. While these are part of the ABI they are no 3407 // public defintions. So the are here not in include/llvm/BinaryFormat/MachO.h 3408 // . 3409 3410 // The cfstring object in a 64-bit Mach-O file. 3411 struct cfstring64_t { 3412 uint64_t isa; // class64_t * (64-bit pointer) 3413 uint64_t flags; // flag bits 3414 uint64_t characters; // char * (64-bit pointer) 3415 uint64_t length; // number of non-NULL characters in above 3416 }; 3417 3418 // The class object in a 64-bit Mach-O file. 3419 struct class64_t { 3420 uint64_t isa; // class64_t * (64-bit pointer) 3421 uint64_t superclass; // class64_t * (64-bit pointer) 3422 uint64_t cache; // Cache (64-bit pointer) 3423 uint64_t vtable; // IMP * (64-bit pointer) 3424 uint64_t data; // class_ro64_t * (64-bit pointer) 3425 }; 3426 3427 struct class32_t { 3428 uint32_t isa; /* class32_t * (32-bit pointer) */ 3429 uint32_t superclass; /* class32_t * (32-bit pointer) */ 3430 uint32_t cache; /* Cache (32-bit pointer) */ 3431 uint32_t vtable; /* IMP * (32-bit pointer) */ 3432 uint32_t data; /* class_ro32_t * (32-bit pointer) */ 3433 }; 3434 3435 struct class_ro64_t { 3436 uint32_t flags; 3437 uint32_t instanceStart; 3438 uint32_t instanceSize; 3439 uint32_t reserved; 3440 uint64_t ivarLayout; // const uint8_t * (64-bit pointer) 3441 uint64_t name; // const char * (64-bit pointer) 3442 uint64_t baseMethods; // const method_list_t * (64-bit pointer) 3443 uint64_t baseProtocols; // const protocol_list_t * (64-bit pointer) 3444 uint64_t ivars; // const ivar_list_t * (64-bit pointer) 3445 uint64_t weakIvarLayout; // const uint8_t * (64-bit pointer) 3446 uint64_t baseProperties; // const struct objc_property_list (64-bit pointer) 3447 }; 3448 3449 struct class_ro32_t { 3450 uint32_t flags; 3451 uint32_t instanceStart; 3452 uint32_t instanceSize; 3453 uint32_t ivarLayout; /* const uint8_t * (32-bit pointer) */ 3454 uint32_t name; /* const char * (32-bit pointer) */ 3455 uint32_t baseMethods; /* const method_list_t * (32-bit pointer) */ 3456 uint32_t baseProtocols; /* const protocol_list_t * (32-bit pointer) */ 3457 uint32_t ivars; /* const ivar_list_t * (32-bit pointer) */ 3458 uint32_t weakIvarLayout; /* const uint8_t * (32-bit pointer) */ 3459 uint32_t baseProperties; /* const struct objc_property_list * 3460 (32-bit pointer) */ 3461 }; 3462 3463 /* Values for class_ro{64,32}_t->flags */ 3464 #define RO_META (1 << 0) 3465 #define RO_ROOT (1 << 1) 3466 #define RO_HAS_CXX_STRUCTORS (1 << 2) 3467 3468 struct method_list64_t { 3469 uint32_t entsize; 3470 uint32_t count; 3471 /* struct method64_t first; These structures follow inline */ 3472 }; 3473 3474 struct method_list32_t { 3475 uint32_t entsize; 3476 uint32_t count; 3477 /* struct method32_t first; These structures follow inline */ 3478 }; 3479 3480 struct method64_t { 3481 uint64_t name; /* SEL (64-bit pointer) */ 3482 uint64_t types; /* const char * (64-bit pointer) */ 3483 uint64_t imp; /* IMP (64-bit pointer) */ 3484 }; 3485 3486 struct method32_t { 3487 uint32_t name; /* SEL (32-bit pointer) */ 3488 uint32_t types; /* const char * (32-bit pointer) */ 3489 uint32_t imp; /* IMP (32-bit pointer) */ 3490 }; 3491 3492 struct protocol_list64_t { 3493 uint64_t count; /* uintptr_t (a 64-bit value) */ 3494 /* struct protocol64_t * list[0]; These pointers follow inline */ 3495 }; 3496 3497 struct protocol_list32_t { 3498 uint32_t count; /* uintptr_t (a 32-bit value) */ 3499 /* struct protocol32_t * list[0]; These pointers follow inline */ 3500 }; 3501 3502 struct protocol64_t { 3503 uint64_t isa; /* id * (64-bit pointer) */ 3504 uint64_t name; /* const char * (64-bit pointer) */ 3505 uint64_t protocols; /* struct protocol_list64_t * 3506 (64-bit pointer) */ 3507 uint64_t instanceMethods; /* method_list_t * (64-bit pointer) */ 3508 uint64_t classMethods; /* method_list_t * (64-bit pointer) */ 3509 uint64_t optionalInstanceMethods; /* method_list_t * (64-bit pointer) */ 3510 uint64_t optionalClassMethods; /* method_list_t * (64-bit pointer) */ 3511 uint64_t instanceProperties; /* struct objc_property_list * 3512 (64-bit pointer) */ 3513 }; 3514 3515 struct protocol32_t { 3516 uint32_t isa; /* id * (32-bit pointer) */ 3517 uint32_t name; /* const char * (32-bit pointer) */ 3518 uint32_t protocols; /* struct protocol_list_t * 3519 (32-bit pointer) */ 3520 uint32_t instanceMethods; /* method_list_t * (32-bit pointer) */ 3521 uint32_t classMethods; /* method_list_t * (32-bit pointer) */ 3522 uint32_t optionalInstanceMethods; /* method_list_t * (32-bit pointer) */ 3523 uint32_t optionalClassMethods; /* method_list_t * (32-bit pointer) */ 3524 uint32_t instanceProperties; /* struct objc_property_list * 3525 (32-bit pointer) */ 3526 }; 3527 3528 struct ivar_list64_t { 3529 uint32_t entsize; 3530 uint32_t count; 3531 /* struct ivar64_t first; These structures follow inline */ 3532 }; 3533 3534 struct ivar_list32_t { 3535 uint32_t entsize; 3536 uint32_t count; 3537 /* struct ivar32_t first; These structures follow inline */ 3538 }; 3539 3540 struct ivar64_t { 3541 uint64_t offset; /* uintptr_t * (64-bit pointer) */ 3542 uint64_t name; /* const char * (64-bit pointer) */ 3543 uint64_t type; /* const char * (64-bit pointer) */ 3544 uint32_t alignment; 3545 uint32_t size; 3546 }; 3547 3548 struct ivar32_t { 3549 uint32_t offset; /* uintptr_t * (32-bit pointer) */ 3550 uint32_t name; /* const char * (32-bit pointer) */ 3551 uint32_t type; /* const char * (32-bit pointer) */ 3552 uint32_t alignment; 3553 uint32_t size; 3554 }; 3555 3556 struct objc_property_list64 { 3557 uint32_t entsize; 3558 uint32_t count; 3559 /* struct objc_property64 first; These structures follow inline */ 3560 }; 3561 3562 struct objc_property_list32 { 3563 uint32_t entsize; 3564 uint32_t count; 3565 /* struct objc_property32 first; These structures follow inline */ 3566 }; 3567 3568 struct objc_property64 { 3569 uint64_t name; /* const char * (64-bit pointer) */ 3570 uint64_t attributes; /* const char * (64-bit pointer) */ 3571 }; 3572 3573 struct objc_property32 { 3574 uint32_t name; /* const char * (32-bit pointer) */ 3575 uint32_t attributes; /* const char * (32-bit pointer) */ 3576 }; 3577 3578 struct category64_t { 3579 uint64_t name; /* const char * (64-bit pointer) */ 3580 uint64_t cls; /* struct class_t * (64-bit pointer) */ 3581 uint64_t instanceMethods; /* struct method_list_t * (64-bit pointer) */ 3582 uint64_t classMethods; /* struct method_list_t * (64-bit pointer) */ 3583 uint64_t protocols; /* struct protocol_list_t * (64-bit pointer) */ 3584 uint64_t instanceProperties; /* struct objc_property_list * 3585 (64-bit pointer) */ 3586 }; 3587 3588 struct category32_t { 3589 uint32_t name; /* const char * (32-bit pointer) */ 3590 uint32_t cls; /* struct class_t * (32-bit pointer) */ 3591 uint32_t instanceMethods; /* struct method_list_t * (32-bit pointer) */ 3592 uint32_t classMethods; /* struct method_list_t * (32-bit pointer) */ 3593 uint32_t protocols; /* struct protocol_list_t * (32-bit pointer) */ 3594 uint32_t instanceProperties; /* struct objc_property_list * 3595 (32-bit pointer) */ 3596 }; 3597 3598 struct objc_image_info64 { 3599 uint32_t version; 3600 uint32_t flags; 3601 }; 3602 struct objc_image_info32 { 3603 uint32_t version; 3604 uint32_t flags; 3605 }; 3606 struct imageInfo_t { 3607 uint32_t version; 3608 uint32_t flags; 3609 }; 3610 /* masks for objc_image_info.flags */ 3611 #define OBJC_IMAGE_IS_REPLACEMENT (1 << 0) 3612 #define OBJC_IMAGE_SUPPORTS_GC (1 << 1) 3613 #define OBJC_IMAGE_IS_SIMULATED (1 << 5) 3614 #define OBJC_IMAGE_HAS_CATEGORY_CLASS_PROPERTIES (1 << 6) 3615 3616 struct message_ref64 { 3617 uint64_t imp; /* IMP (64-bit pointer) */ 3618 uint64_t sel; /* SEL (64-bit pointer) */ 3619 }; 3620 3621 struct message_ref32 { 3622 uint32_t imp; /* IMP (32-bit pointer) */ 3623 uint32_t sel; /* SEL (32-bit pointer) */ 3624 }; 3625 3626 // Objective-C 1 (32-bit only) meta data structs. 3627 3628 struct objc_module_t { 3629 uint32_t version; 3630 uint32_t size; 3631 uint32_t name; /* char * (32-bit pointer) */ 3632 uint32_t symtab; /* struct objc_symtab * (32-bit pointer) */ 3633 }; 3634 3635 struct objc_symtab_t { 3636 uint32_t sel_ref_cnt; 3637 uint32_t refs; /* SEL * (32-bit pointer) */ 3638 uint16_t cls_def_cnt; 3639 uint16_t cat_def_cnt; 3640 // uint32_t defs[1]; /* void * (32-bit pointer) variable size */ 3641 }; 3642 3643 struct objc_class_t { 3644 uint32_t isa; /* struct objc_class * (32-bit pointer) */ 3645 uint32_t super_class; /* struct objc_class * (32-bit pointer) */ 3646 uint32_t name; /* const char * (32-bit pointer) */ 3647 int32_t version; 3648 int32_t info; 3649 int32_t instance_size; 3650 uint32_t ivars; /* struct objc_ivar_list * (32-bit pointer) */ 3651 uint32_t methodLists; /* struct objc_method_list ** (32-bit pointer) */ 3652 uint32_t cache; /* struct objc_cache * (32-bit pointer) */ 3653 uint32_t protocols; /* struct objc_protocol_list * (32-bit pointer) */ 3654 }; 3655 3656 #define CLS_GETINFO(cls, infomask) ((cls)->info & (infomask)) 3657 // class is not a metaclass 3658 #define CLS_CLASS 0x1 3659 // class is a metaclass 3660 #define CLS_META 0x2 3661 3662 struct objc_category_t { 3663 uint32_t category_name; /* char * (32-bit pointer) */ 3664 uint32_t class_name; /* char * (32-bit pointer) */ 3665 uint32_t instance_methods; /* struct objc_method_list * (32-bit pointer) */ 3666 uint32_t class_methods; /* struct objc_method_list * (32-bit pointer) */ 3667 uint32_t protocols; /* struct objc_protocol_list * (32-bit ptr) */ 3668 }; 3669 3670 struct objc_ivar_t { 3671 uint32_t ivar_name; /* char * (32-bit pointer) */ 3672 uint32_t ivar_type; /* char * (32-bit pointer) */ 3673 int32_t ivar_offset; 3674 }; 3675 3676 struct objc_ivar_list_t { 3677 int32_t ivar_count; 3678 // struct objc_ivar_t ivar_list[1]; /* variable length structure */ 3679 }; 3680 3681 struct objc_method_list_t { 3682 uint32_t obsolete; /* struct objc_method_list * (32-bit pointer) */ 3683 int32_t method_count; 3684 // struct objc_method_t method_list[1]; /* variable length structure */ 3685 }; 3686 3687 struct objc_method_t { 3688 uint32_t method_name; /* SEL, aka struct objc_selector * (32-bit pointer) */ 3689 uint32_t method_types; /* char * (32-bit pointer) */ 3690 uint32_t method_imp; /* IMP, aka function pointer, (*IMP)(id, SEL, ...) 3691 (32-bit pointer) */ 3692 }; 3693 3694 struct objc_protocol_list_t { 3695 uint32_t next; /* struct objc_protocol_list * (32-bit pointer) */ 3696 int32_t count; 3697 // uint32_t list[1]; /* Protocol *, aka struct objc_protocol_t * 3698 // (32-bit pointer) */ 3699 }; 3700 3701 struct objc_protocol_t { 3702 uint32_t isa; /* struct objc_class * (32-bit pointer) */ 3703 uint32_t protocol_name; /* char * (32-bit pointer) */ 3704 uint32_t protocol_list; /* struct objc_protocol_list * (32-bit pointer) */ 3705 uint32_t instance_methods; /* struct objc_method_description_list * 3706 (32-bit pointer) */ 3707 uint32_t class_methods; /* struct objc_method_description_list * 3708 (32-bit pointer) */ 3709 }; 3710 3711 struct objc_method_description_list_t { 3712 int32_t count; 3713 // struct objc_method_description_t list[1]; 3714 }; 3715 3716 struct objc_method_description_t { 3717 uint32_t name; /* SEL, aka struct objc_selector * (32-bit pointer) */ 3718 uint32_t types; /* char * (32-bit pointer) */ 3719 }; 3720 3721 inline void swapStruct(struct cfstring64_t &cfs) { 3722 sys::swapByteOrder(cfs.isa); 3723 sys::swapByteOrder(cfs.flags); 3724 sys::swapByteOrder(cfs.characters); 3725 sys::swapByteOrder(cfs.length); 3726 } 3727 3728 inline void swapStruct(struct class64_t &c) { 3729 sys::swapByteOrder(c.isa); 3730 sys::swapByteOrder(c.superclass); 3731 sys::swapByteOrder(c.cache); 3732 sys::swapByteOrder(c.vtable); 3733 sys::swapByteOrder(c.data); 3734 } 3735 3736 inline void swapStruct(struct class32_t &c) { 3737 sys::swapByteOrder(c.isa); 3738 sys::swapByteOrder(c.superclass); 3739 sys::swapByteOrder(c.cache); 3740 sys::swapByteOrder(c.vtable); 3741 sys::swapByteOrder(c.data); 3742 } 3743 3744 inline void swapStruct(struct class_ro64_t &cro) { 3745 sys::swapByteOrder(cro.flags); 3746 sys::swapByteOrder(cro.instanceStart); 3747 sys::swapByteOrder(cro.instanceSize); 3748 sys::swapByteOrder(cro.reserved); 3749 sys::swapByteOrder(cro.ivarLayout); 3750 sys::swapByteOrder(cro.name); 3751 sys::swapByteOrder(cro.baseMethods); 3752 sys::swapByteOrder(cro.baseProtocols); 3753 sys::swapByteOrder(cro.ivars); 3754 sys::swapByteOrder(cro.weakIvarLayout); 3755 sys::swapByteOrder(cro.baseProperties); 3756 } 3757 3758 inline void swapStruct(struct class_ro32_t &cro) { 3759 sys::swapByteOrder(cro.flags); 3760 sys::swapByteOrder(cro.instanceStart); 3761 sys::swapByteOrder(cro.instanceSize); 3762 sys::swapByteOrder(cro.ivarLayout); 3763 sys::swapByteOrder(cro.name); 3764 sys::swapByteOrder(cro.baseMethods); 3765 sys::swapByteOrder(cro.baseProtocols); 3766 sys::swapByteOrder(cro.ivars); 3767 sys::swapByteOrder(cro.weakIvarLayout); 3768 sys::swapByteOrder(cro.baseProperties); 3769 } 3770 3771 inline void swapStruct(struct method_list64_t &ml) { 3772 sys::swapByteOrder(ml.entsize); 3773 sys::swapByteOrder(ml.count); 3774 } 3775 3776 inline void swapStruct(struct method_list32_t &ml) { 3777 sys::swapByteOrder(ml.entsize); 3778 sys::swapByteOrder(ml.count); 3779 } 3780 3781 inline void swapStruct(struct method64_t &m) { 3782 sys::swapByteOrder(m.name); 3783 sys::swapByteOrder(m.types); 3784 sys::swapByteOrder(m.imp); 3785 } 3786 3787 inline void swapStruct(struct method32_t &m) { 3788 sys::swapByteOrder(m.name); 3789 sys::swapByteOrder(m.types); 3790 sys::swapByteOrder(m.imp); 3791 } 3792 3793 inline void swapStruct(struct protocol_list64_t &pl) { 3794 sys::swapByteOrder(pl.count); 3795 } 3796 3797 inline void swapStruct(struct protocol_list32_t &pl) { 3798 sys::swapByteOrder(pl.count); 3799 } 3800 3801 inline void swapStruct(struct protocol64_t &p) { 3802 sys::swapByteOrder(p.isa); 3803 sys::swapByteOrder(p.name); 3804 sys::swapByteOrder(p.protocols); 3805 sys::swapByteOrder(p.instanceMethods); 3806 sys::swapByteOrder(p.classMethods); 3807 sys::swapByteOrder(p.optionalInstanceMethods); 3808 sys::swapByteOrder(p.optionalClassMethods); 3809 sys::swapByteOrder(p.instanceProperties); 3810 } 3811 3812 inline void swapStruct(struct protocol32_t &p) { 3813 sys::swapByteOrder(p.isa); 3814 sys::swapByteOrder(p.name); 3815 sys::swapByteOrder(p.protocols); 3816 sys::swapByteOrder(p.instanceMethods); 3817 sys::swapByteOrder(p.classMethods); 3818 sys::swapByteOrder(p.optionalInstanceMethods); 3819 sys::swapByteOrder(p.optionalClassMethods); 3820 sys::swapByteOrder(p.instanceProperties); 3821 } 3822 3823 inline void swapStruct(struct ivar_list64_t &il) { 3824 sys::swapByteOrder(il.entsize); 3825 sys::swapByteOrder(il.count); 3826 } 3827 3828 inline void swapStruct(struct ivar_list32_t &il) { 3829 sys::swapByteOrder(il.entsize); 3830 sys::swapByteOrder(il.count); 3831 } 3832 3833 inline void swapStruct(struct ivar64_t &i) { 3834 sys::swapByteOrder(i.offset); 3835 sys::swapByteOrder(i.name); 3836 sys::swapByteOrder(i.type); 3837 sys::swapByteOrder(i.alignment); 3838 sys::swapByteOrder(i.size); 3839 } 3840 3841 inline void swapStruct(struct ivar32_t &i) { 3842 sys::swapByteOrder(i.offset); 3843 sys::swapByteOrder(i.name); 3844 sys::swapByteOrder(i.type); 3845 sys::swapByteOrder(i.alignment); 3846 sys::swapByteOrder(i.size); 3847 } 3848 3849 inline void swapStruct(struct objc_property_list64 &pl) { 3850 sys::swapByteOrder(pl.entsize); 3851 sys::swapByteOrder(pl.count); 3852 } 3853 3854 inline void swapStruct(struct objc_property_list32 &pl) { 3855 sys::swapByteOrder(pl.entsize); 3856 sys::swapByteOrder(pl.count); 3857 } 3858 3859 inline void swapStruct(struct objc_property64 &op) { 3860 sys::swapByteOrder(op.name); 3861 sys::swapByteOrder(op.attributes); 3862 } 3863 3864 inline void swapStruct(struct objc_property32 &op) { 3865 sys::swapByteOrder(op.name); 3866 sys::swapByteOrder(op.attributes); 3867 } 3868 3869 inline void swapStruct(struct category64_t &c) { 3870 sys::swapByteOrder(c.name); 3871 sys::swapByteOrder(c.cls); 3872 sys::swapByteOrder(c.instanceMethods); 3873 sys::swapByteOrder(c.classMethods); 3874 sys::swapByteOrder(c.protocols); 3875 sys::swapByteOrder(c.instanceProperties); 3876 } 3877 3878 inline void swapStruct(struct category32_t &c) { 3879 sys::swapByteOrder(c.name); 3880 sys::swapByteOrder(c.cls); 3881 sys::swapByteOrder(c.instanceMethods); 3882 sys::swapByteOrder(c.classMethods); 3883 sys::swapByteOrder(c.protocols); 3884 sys::swapByteOrder(c.instanceProperties); 3885 } 3886 3887 inline void swapStruct(struct objc_image_info64 &o) { 3888 sys::swapByteOrder(o.version); 3889 sys::swapByteOrder(o.flags); 3890 } 3891 3892 inline void swapStruct(struct objc_image_info32 &o) { 3893 sys::swapByteOrder(o.version); 3894 sys::swapByteOrder(o.flags); 3895 } 3896 3897 inline void swapStruct(struct imageInfo_t &o) { 3898 sys::swapByteOrder(o.version); 3899 sys::swapByteOrder(o.flags); 3900 } 3901 3902 inline void swapStruct(struct message_ref64 &mr) { 3903 sys::swapByteOrder(mr.imp); 3904 sys::swapByteOrder(mr.sel); 3905 } 3906 3907 inline void swapStruct(struct message_ref32 &mr) { 3908 sys::swapByteOrder(mr.imp); 3909 sys::swapByteOrder(mr.sel); 3910 } 3911 3912 inline void swapStruct(struct objc_module_t &module) { 3913 sys::swapByteOrder(module.version); 3914 sys::swapByteOrder(module.size); 3915 sys::swapByteOrder(module.name); 3916 sys::swapByteOrder(module.symtab); 3917 } 3918 3919 inline void swapStruct(struct objc_symtab_t &symtab) { 3920 sys::swapByteOrder(symtab.sel_ref_cnt); 3921 sys::swapByteOrder(symtab.refs); 3922 sys::swapByteOrder(symtab.cls_def_cnt); 3923 sys::swapByteOrder(symtab.cat_def_cnt); 3924 } 3925 3926 inline void swapStruct(struct objc_class_t &objc_class) { 3927 sys::swapByteOrder(objc_class.isa); 3928 sys::swapByteOrder(objc_class.super_class); 3929 sys::swapByteOrder(objc_class.name); 3930 sys::swapByteOrder(objc_class.version); 3931 sys::swapByteOrder(objc_class.info); 3932 sys::swapByteOrder(objc_class.instance_size); 3933 sys::swapByteOrder(objc_class.ivars); 3934 sys::swapByteOrder(objc_class.methodLists); 3935 sys::swapByteOrder(objc_class.cache); 3936 sys::swapByteOrder(objc_class.protocols); 3937 } 3938 3939 inline void swapStruct(struct objc_category_t &objc_category) { 3940 sys::swapByteOrder(objc_category.category_name); 3941 sys::swapByteOrder(objc_category.class_name); 3942 sys::swapByteOrder(objc_category.instance_methods); 3943 sys::swapByteOrder(objc_category.class_methods); 3944 sys::swapByteOrder(objc_category.protocols); 3945 } 3946 3947 inline void swapStruct(struct objc_ivar_list_t &objc_ivar_list) { 3948 sys::swapByteOrder(objc_ivar_list.ivar_count); 3949 } 3950 3951 inline void swapStruct(struct objc_ivar_t &objc_ivar) { 3952 sys::swapByteOrder(objc_ivar.ivar_name); 3953 sys::swapByteOrder(objc_ivar.ivar_type); 3954 sys::swapByteOrder(objc_ivar.ivar_offset); 3955 } 3956 3957 inline void swapStruct(struct objc_method_list_t &method_list) { 3958 sys::swapByteOrder(method_list.obsolete); 3959 sys::swapByteOrder(method_list.method_count); 3960 } 3961 3962 inline void swapStruct(struct objc_method_t &method) { 3963 sys::swapByteOrder(method.method_name); 3964 sys::swapByteOrder(method.method_types); 3965 sys::swapByteOrder(method.method_imp); 3966 } 3967 3968 inline void swapStruct(struct objc_protocol_list_t &protocol_list) { 3969 sys::swapByteOrder(protocol_list.next); 3970 sys::swapByteOrder(protocol_list.count); 3971 } 3972 3973 inline void swapStruct(struct objc_protocol_t &protocol) { 3974 sys::swapByteOrder(protocol.isa); 3975 sys::swapByteOrder(protocol.protocol_name); 3976 sys::swapByteOrder(protocol.protocol_list); 3977 sys::swapByteOrder(protocol.instance_methods); 3978 sys::swapByteOrder(protocol.class_methods); 3979 } 3980 3981 inline void swapStruct(struct objc_method_description_list_t &mdl) { 3982 sys::swapByteOrder(mdl.count); 3983 } 3984 3985 inline void swapStruct(struct objc_method_description_t &md) { 3986 sys::swapByteOrder(md.name); 3987 sys::swapByteOrder(md.types); 3988 } 3989 3990 } // namespace 3991 3992 static const char *get_dyld_bind_info_symbolname(uint64_t ReferenceValue, 3993 struct DisassembleInfo *info); 3994 3995 // get_objc2_64bit_class_name() is used for disassembly and is passed a pointer 3996 // to an Objective-C class and returns the class name. It is also passed the 3997 // address of the pointer, so when the pointer is zero as it can be in an .o 3998 // file, that is used to look for an external relocation entry with a symbol 3999 // name. 4000 static const char *get_objc2_64bit_class_name(uint64_t pointer_value, 4001 uint64_t ReferenceValue, 4002 struct DisassembleInfo *info) { 4003 const char *r; 4004 uint32_t offset, left; 4005 SectionRef S; 4006 4007 // The pointer_value can be 0 in an object file and have a relocation 4008 // entry for the class symbol at the ReferenceValue (the address of the 4009 // pointer). 4010 if (pointer_value == 0) { 4011 r = get_pointer_64(ReferenceValue, offset, left, S, info); 4012 if (r == nullptr || left < sizeof(uint64_t)) 4013 return nullptr; 4014 uint64_t n_value; 4015 const char *symbol_name = get_symbol_64(offset, S, info, n_value); 4016 if (symbol_name == nullptr) 4017 return nullptr; 4018 const char *class_name = strrchr(symbol_name, '$'); 4019 if (class_name != nullptr && class_name[1] == '_' && class_name[2] != '\0') 4020 return class_name + 2; 4021 else 4022 return nullptr; 4023 } 4024 4025 // The case were the pointer_value is non-zero and points to a class defined 4026 // in this Mach-O file. 4027 r = get_pointer_64(pointer_value, offset, left, S, info); 4028 if (r == nullptr || left < sizeof(struct class64_t)) 4029 return nullptr; 4030 struct class64_t c; 4031 memcpy(&c, r, sizeof(struct class64_t)); 4032 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4033 swapStruct(c); 4034 if (c.data == 0) 4035 return nullptr; 4036 r = get_pointer_64(c.data, offset, left, S, info); 4037 if (r == nullptr || left < sizeof(struct class_ro64_t)) 4038 return nullptr; 4039 struct class_ro64_t cro; 4040 memcpy(&cro, r, sizeof(struct class_ro64_t)); 4041 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4042 swapStruct(cro); 4043 if (cro.name == 0) 4044 return nullptr; 4045 const char *name = get_pointer_64(cro.name, offset, left, S, info); 4046 return name; 4047 } 4048 4049 // get_objc2_64bit_cfstring_name is used for disassembly and is passed a 4050 // pointer to a cfstring and returns its name or nullptr. 4051 static const char *get_objc2_64bit_cfstring_name(uint64_t ReferenceValue, 4052 struct DisassembleInfo *info) { 4053 const char *r, *name; 4054 uint32_t offset, left; 4055 SectionRef S; 4056 struct cfstring64_t cfs; 4057 uint64_t cfs_characters; 4058 4059 r = get_pointer_64(ReferenceValue, offset, left, S, info); 4060 if (r == nullptr || left < sizeof(struct cfstring64_t)) 4061 return nullptr; 4062 memcpy(&cfs, r, sizeof(struct cfstring64_t)); 4063 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4064 swapStruct(cfs); 4065 if (cfs.characters == 0) { 4066 uint64_t n_value; 4067 const char *symbol_name = get_symbol_64( 4068 offset + offsetof(struct cfstring64_t, characters), S, info, n_value); 4069 if (symbol_name == nullptr) 4070 return nullptr; 4071 cfs_characters = n_value; 4072 } else 4073 cfs_characters = cfs.characters; 4074 name = get_pointer_64(cfs_characters, offset, left, S, info); 4075 4076 return name; 4077 } 4078 4079 // get_objc2_64bit_selref() is used for disassembly and is passed a the address 4080 // of a pointer to an Objective-C selector reference when the pointer value is 4081 // zero as in a .o file and is likely to have a external relocation entry with 4082 // who's symbol's n_value is the real pointer to the selector name. If that is 4083 // the case the real pointer to the selector name is returned else 0 is 4084 // returned 4085 static uint64_t get_objc2_64bit_selref(uint64_t ReferenceValue, 4086 struct DisassembleInfo *info) { 4087 uint32_t offset, left; 4088 SectionRef S; 4089 4090 const char *r = get_pointer_64(ReferenceValue, offset, left, S, info); 4091 if (r == nullptr || left < sizeof(uint64_t)) 4092 return 0; 4093 uint64_t n_value; 4094 const char *symbol_name = get_symbol_64(offset, S, info, n_value); 4095 if (symbol_name == nullptr) 4096 return 0; 4097 return n_value; 4098 } 4099 4100 static const SectionRef get_section(MachOObjectFile *O, const char *segname, 4101 const char *sectname) { 4102 for (const SectionRef &Section : O->sections()) { 4103 StringRef SectName; 4104 Expected<StringRef> SecNameOrErr = Section.getName(); 4105 if (SecNameOrErr) 4106 SectName = *SecNameOrErr; 4107 else 4108 consumeError(SecNameOrErr.takeError()); 4109 4110 DataRefImpl Ref = Section.getRawDataRefImpl(); 4111 StringRef SegName = O->getSectionFinalSegmentName(Ref); 4112 if (SegName == segname && SectName == sectname) 4113 return Section; 4114 } 4115 return SectionRef(); 4116 } 4117 4118 static void 4119 walk_pointer_list_64(const char *listname, const SectionRef S, 4120 MachOObjectFile *O, struct DisassembleInfo *info, 4121 void (*func)(uint64_t, struct DisassembleInfo *info)) { 4122 if (S == SectionRef()) 4123 return; 4124 4125 StringRef SectName; 4126 Expected<StringRef> SecNameOrErr = S.getName(); 4127 if (SecNameOrErr) 4128 SectName = *SecNameOrErr; 4129 else 4130 consumeError(SecNameOrErr.takeError()); 4131 4132 DataRefImpl Ref = S.getRawDataRefImpl(); 4133 StringRef SegName = O->getSectionFinalSegmentName(Ref); 4134 outs() << "Contents of (" << SegName << "," << SectName << ") section\n"; 4135 4136 StringRef BytesStr = unwrapOrError(S.getContents(), O->getFileName()); 4137 const char *Contents = reinterpret_cast<const char *>(BytesStr.data()); 4138 4139 for (uint32_t i = 0; i < S.getSize(); i += sizeof(uint64_t)) { 4140 uint32_t left = S.getSize() - i; 4141 uint32_t size = left < sizeof(uint64_t) ? left : sizeof(uint64_t); 4142 uint64_t p = 0; 4143 memcpy(&p, Contents + i, size); 4144 if (i + sizeof(uint64_t) > S.getSize()) 4145 outs() << listname << " list pointer extends past end of (" << SegName 4146 << "," << SectName << ") section\n"; 4147 outs() << format("%016" PRIx64, S.getAddress() + i) << " "; 4148 4149 if (O->isLittleEndian() != sys::IsLittleEndianHost) 4150 sys::swapByteOrder(p); 4151 4152 uint64_t n_value = 0; 4153 const char *name = get_symbol_64(i, S, info, n_value, p); 4154 if (name == nullptr) 4155 name = get_dyld_bind_info_symbolname(S.getAddress() + i, info); 4156 4157 if (n_value != 0) { 4158 outs() << format("0x%" PRIx64, n_value); 4159 if (p != 0) 4160 outs() << " + " << format("0x%" PRIx64, p); 4161 } else 4162 outs() << format("0x%" PRIx64, p); 4163 if (name != nullptr) 4164 outs() << " " << name; 4165 outs() << "\n"; 4166 4167 p += n_value; 4168 if (func) 4169 func(p, info); 4170 } 4171 } 4172 4173 static void 4174 walk_pointer_list_32(const char *listname, const SectionRef S, 4175 MachOObjectFile *O, struct DisassembleInfo *info, 4176 void (*func)(uint32_t, struct DisassembleInfo *info)) { 4177 if (S == SectionRef()) 4178 return; 4179 4180 StringRef SectName = unwrapOrError(S.getName(), O->getFileName()); 4181 DataRefImpl Ref = S.getRawDataRefImpl(); 4182 StringRef SegName = O->getSectionFinalSegmentName(Ref); 4183 outs() << "Contents of (" << SegName << "," << SectName << ") section\n"; 4184 4185 StringRef BytesStr = unwrapOrError(S.getContents(), O->getFileName()); 4186 const char *Contents = reinterpret_cast<const char *>(BytesStr.data()); 4187 4188 for (uint32_t i = 0; i < S.getSize(); i += sizeof(uint32_t)) { 4189 uint32_t left = S.getSize() - i; 4190 uint32_t size = left < sizeof(uint32_t) ? left : sizeof(uint32_t); 4191 uint32_t p = 0; 4192 memcpy(&p, Contents + i, size); 4193 if (i + sizeof(uint32_t) > S.getSize()) 4194 outs() << listname << " list pointer extends past end of (" << SegName 4195 << "," << SectName << ") section\n"; 4196 uint32_t Address = S.getAddress() + i; 4197 outs() << format("%08" PRIx32, Address) << " "; 4198 4199 if (O->isLittleEndian() != sys::IsLittleEndianHost) 4200 sys::swapByteOrder(p); 4201 outs() << format("0x%" PRIx32, p); 4202 4203 const char *name = get_symbol_32(i, S, info, p); 4204 if (name != nullptr) 4205 outs() << " " << name; 4206 outs() << "\n"; 4207 4208 if (func) 4209 func(p, info); 4210 } 4211 } 4212 4213 static void print_layout_map(const char *layout_map, uint32_t left) { 4214 if (layout_map == nullptr) 4215 return; 4216 outs() << " layout map: "; 4217 do { 4218 outs() << format("0x%02" PRIx32, (*layout_map) & 0xff) << " "; 4219 left--; 4220 layout_map++; 4221 } while (*layout_map != '\0' && left != 0); 4222 outs() << "\n"; 4223 } 4224 4225 static void print_layout_map64(uint64_t p, struct DisassembleInfo *info) { 4226 uint32_t offset, left; 4227 SectionRef S; 4228 const char *layout_map; 4229 4230 if (p == 0) 4231 return; 4232 layout_map = get_pointer_64(p, offset, left, S, info); 4233 print_layout_map(layout_map, left); 4234 } 4235 4236 static void print_layout_map32(uint32_t p, struct DisassembleInfo *info) { 4237 uint32_t offset, left; 4238 SectionRef S; 4239 const char *layout_map; 4240 4241 if (p == 0) 4242 return; 4243 layout_map = get_pointer_32(p, offset, left, S, info); 4244 print_layout_map(layout_map, left); 4245 } 4246 4247 static void print_method_list64_t(uint64_t p, struct DisassembleInfo *info, 4248 const char *indent) { 4249 struct method_list64_t ml; 4250 struct method64_t m; 4251 const char *r; 4252 uint32_t offset, xoffset, left, i; 4253 SectionRef S, xS; 4254 const char *name, *sym_name; 4255 uint64_t n_value; 4256 4257 r = get_pointer_64(p, offset, left, S, info); 4258 if (r == nullptr) 4259 return; 4260 memset(&ml, '\0', sizeof(struct method_list64_t)); 4261 if (left < sizeof(struct method_list64_t)) { 4262 memcpy(&ml, r, left); 4263 outs() << " (method_list_t entends past the end of the section)\n"; 4264 } else 4265 memcpy(&ml, r, sizeof(struct method_list64_t)); 4266 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4267 swapStruct(ml); 4268 outs() << indent << "\t\t entsize " << ml.entsize << "\n"; 4269 outs() << indent << "\t\t count " << ml.count << "\n"; 4270 4271 p += sizeof(struct method_list64_t); 4272 offset += sizeof(struct method_list64_t); 4273 for (i = 0; i < ml.count; i++) { 4274 r = get_pointer_64(p, offset, left, S, info); 4275 if (r == nullptr) 4276 return; 4277 memset(&m, '\0', sizeof(struct method64_t)); 4278 if (left < sizeof(struct method64_t)) { 4279 memcpy(&m, r, left); 4280 outs() << indent << " (method_t extends past the end of the section)\n"; 4281 } else 4282 memcpy(&m, r, sizeof(struct method64_t)); 4283 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4284 swapStruct(m); 4285 4286 outs() << indent << "\t\t name "; 4287 sym_name = get_symbol_64(offset + offsetof(struct method64_t, name), S, 4288 info, n_value, m.name); 4289 if (n_value != 0) { 4290 if (info->verbose && sym_name != nullptr) 4291 outs() << sym_name; 4292 else 4293 outs() << format("0x%" PRIx64, n_value); 4294 if (m.name != 0) 4295 outs() << " + " << format("0x%" PRIx64, m.name); 4296 } else 4297 outs() << format("0x%" PRIx64, m.name); 4298 name = get_pointer_64(m.name + n_value, xoffset, left, xS, info); 4299 if (name != nullptr) 4300 outs() << format(" %.*s", left, name); 4301 outs() << "\n"; 4302 4303 outs() << indent << "\t\t types "; 4304 sym_name = get_symbol_64(offset + offsetof(struct method64_t, types), S, 4305 info, n_value, m.types); 4306 if (n_value != 0) { 4307 if (info->verbose && sym_name != nullptr) 4308 outs() << sym_name; 4309 else 4310 outs() << format("0x%" PRIx64, n_value); 4311 if (m.types != 0) 4312 outs() << " + " << format("0x%" PRIx64, m.types); 4313 } else 4314 outs() << format("0x%" PRIx64, m.types); 4315 name = get_pointer_64(m.types + n_value, xoffset, left, xS, info); 4316 if (name != nullptr) 4317 outs() << format(" %.*s", left, name); 4318 outs() << "\n"; 4319 4320 outs() << indent << "\t\t imp "; 4321 name = get_symbol_64(offset + offsetof(struct method64_t, imp), S, info, 4322 n_value, m.imp); 4323 if (info->verbose && name == nullptr) { 4324 if (n_value != 0) { 4325 outs() << format("0x%" PRIx64, n_value) << " "; 4326 if (m.imp != 0) 4327 outs() << "+ " << format("0x%" PRIx64, m.imp) << " "; 4328 } else 4329 outs() << format("0x%" PRIx64, m.imp) << " "; 4330 } 4331 if (name != nullptr) 4332 outs() << name; 4333 outs() << "\n"; 4334 4335 p += sizeof(struct method64_t); 4336 offset += sizeof(struct method64_t); 4337 } 4338 } 4339 4340 static void print_method_list32_t(uint64_t p, struct DisassembleInfo *info, 4341 const char *indent) { 4342 struct method_list32_t ml; 4343 struct method32_t m; 4344 const char *r, *name; 4345 uint32_t offset, xoffset, left, i; 4346 SectionRef S, xS; 4347 4348 r = get_pointer_32(p, offset, left, S, info); 4349 if (r == nullptr) 4350 return; 4351 memset(&ml, '\0', sizeof(struct method_list32_t)); 4352 if (left < sizeof(struct method_list32_t)) { 4353 memcpy(&ml, r, left); 4354 outs() << " (method_list_t entends past the end of the section)\n"; 4355 } else 4356 memcpy(&ml, r, sizeof(struct method_list32_t)); 4357 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4358 swapStruct(ml); 4359 outs() << indent << "\t\t entsize " << ml.entsize << "\n"; 4360 outs() << indent << "\t\t count " << ml.count << "\n"; 4361 4362 p += sizeof(struct method_list32_t); 4363 offset += sizeof(struct method_list32_t); 4364 for (i = 0; i < ml.count; i++) { 4365 r = get_pointer_32(p, offset, left, S, info); 4366 if (r == nullptr) 4367 return; 4368 memset(&m, '\0', sizeof(struct method32_t)); 4369 if (left < sizeof(struct method32_t)) { 4370 memcpy(&ml, r, left); 4371 outs() << indent << " (method_t entends past the end of the section)\n"; 4372 } else 4373 memcpy(&m, r, sizeof(struct method32_t)); 4374 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4375 swapStruct(m); 4376 4377 outs() << indent << "\t\t name " << format("0x%" PRIx32, m.name); 4378 name = get_pointer_32(m.name, xoffset, left, xS, info); 4379 if (name != nullptr) 4380 outs() << format(" %.*s", left, name); 4381 outs() << "\n"; 4382 4383 outs() << indent << "\t\t types " << format("0x%" PRIx32, m.types); 4384 name = get_pointer_32(m.types, xoffset, left, xS, info); 4385 if (name != nullptr) 4386 outs() << format(" %.*s", left, name); 4387 outs() << "\n"; 4388 4389 outs() << indent << "\t\t imp " << format("0x%" PRIx32, m.imp); 4390 name = get_symbol_32(offset + offsetof(struct method32_t, imp), S, info, 4391 m.imp); 4392 if (name != nullptr) 4393 outs() << " " << name; 4394 outs() << "\n"; 4395 4396 p += sizeof(struct method32_t); 4397 offset += sizeof(struct method32_t); 4398 } 4399 } 4400 4401 static bool print_method_list(uint32_t p, struct DisassembleInfo *info) { 4402 uint32_t offset, left, xleft; 4403 SectionRef S; 4404 struct objc_method_list_t method_list; 4405 struct objc_method_t method; 4406 const char *r, *methods, *name, *SymbolName; 4407 int32_t i; 4408 4409 r = get_pointer_32(p, offset, left, S, info, true); 4410 if (r == nullptr) 4411 return true; 4412 4413 outs() << "\n"; 4414 if (left > sizeof(struct objc_method_list_t)) { 4415 memcpy(&method_list, r, sizeof(struct objc_method_list_t)); 4416 } else { 4417 outs() << "\t\t objc_method_list extends past end of the section\n"; 4418 memset(&method_list, '\0', sizeof(struct objc_method_list_t)); 4419 memcpy(&method_list, r, left); 4420 } 4421 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4422 swapStruct(method_list); 4423 4424 outs() << "\t\t obsolete " 4425 << format("0x%08" PRIx32, method_list.obsolete) << "\n"; 4426 outs() << "\t\t method_count " << method_list.method_count << "\n"; 4427 4428 methods = r + sizeof(struct objc_method_list_t); 4429 for (i = 0; i < method_list.method_count; i++) { 4430 if ((i + 1) * sizeof(struct objc_method_t) > left) { 4431 outs() << "\t\t remaining method's extend past the of the section\n"; 4432 break; 4433 } 4434 memcpy(&method, methods + i * sizeof(struct objc_method_t), 4435 sizeof(struct objc_method_t)); 4436 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4437 swapStruct(method); 4438 4439 outs() << "\t\t method_name " 4440 << format("0x%08" PRIx32, method.method_name); 4441 if (info->verbose) { 4442 name = get_pointer_32(method.method_name, offset, xleft, S, info, true); 4443 if (name != nullptr) 4444 outs() << format(" %.*s", xleft, name); 4445 else 4446 outs() << " (not in an __OBJC section)"; 4447 } 4448 outs() << "\n"; 4449 4450 outs() << "\t\t method_types " 4451 << format("0x%08" PRIx32, method.method_types); 4452 if (info->verbose) { 4453 name = get_pointer_32(method.method_types, offset, xleft, S, info, true); 4454 if (name != nullptr) 4455 outs() << format(" %.*s", xleft, name); 4456 else 4457 outs() << " (not in an __OBJC section)"; 4458 } 4459 outs() << "\n"; 4460 4461 outs() << "\t\t method_imp " 4462 << format("0x%08" PRIx32, method.method_imp) << " "; 4463 if (info->verbose) { 4464 SymbolName = GuessSymbolName(method.method_imp, info->AddrMap); 4465 if (SymbolName != nullptr) 4466 outs() << SymbolName; 4467 } 4468 outs() << "\n"; 4469 } 4470 return false; 4471 } 4472 4473 static void print_protocol_list64_t(uint64_t p, struct DisassembleInfo *info) { 4474 struct protocol_list64_t pl; 4475 uint64_t q, n_value; 4476 struct protocol64_t pc; 4477 const char *r; 4478 uint32_t offset, xoffset, left, i; 4479 SectionRef S, xS; 4480 const char *name, *sym_name; 4481 4482 r = get_pointer_64(p, offset, left, S, info); 4483 if (r == nullptr) 4484 return; 4485 memset(&pl, '\0', sizeof(struct protocol_list64_t)); 4486 if (left < sizeof(struct protocol_list64_t)) { 4487 memcpy(&pl, r, left); 4488 outs() << " (protocol_list_t entends past the end of the section)\n"; 4489 } else 4490 memcpy(&pl, r, sizeof(struct protocol_list64_t)); 4491 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4492 swapStruct(pl); 4493 outs() << " count " << pl.count << "\n"; 4494 4495 p += sizeof(struct protocol_list64_t); 4496 offset += sizeof(struct protocol_list64_t); 4497 for (i = 0; i < pl.count; i++) { 4498 r = get_pointer_64(p, offset, left, S, info); 4499 if (r == nullptr) 4500 return; 4501 q = 0; 4502 if (left < sizeof(uint64_t)) { 4503 memcpy(&q, r, left); 4504 outs() << " (protocol_t * entends past the end of the section)\n"; 4505 } else 4506 memcpy(&q, r, sizeof(uint64_t)); 4507 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4508 sys::swapByteOrder(q); 4509 4510 outs() << "\t\t list[" << i << "] "; 4511 sym_name = get_symbol_64(offset, S, info, n_value, q); 4512 if (n_value != 0) { 4513 if (info->verbose && sym_name != nullptr) 4514 outs() << sym_name; 4515 else 4516 outs() << format("0x%" PRIx64, n_value); 4517 if (q != 0) 4518 outs() << " + " << format("0x%" PRIx64, q); 4519 } else 4520 outs() << format("0x%" PRIx64, q); 4521 outs() << " (struct protocol_t *)\n"; 4522 4523 r = get_pointer_64(q + n_value, offset, left, S, info); 4524 if (r == nullptr) 4525 return; 4526 memset(&pc, '\0', sizeof(struct protocol64_t)); 4527 if (left < sizeof(struct protocol64_t)) { 4528 memcpy(&pc, r, left); 4529 outs() << " (protocol_t entends past the end of the section)\n"; 4530 } else 4531 memcpy(&pc, r, sizeof(struct protocol64_t)); 4532 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4533 swapStruct(pc); 4534 4535 outs() << "\t\t\t isa " << format("0x%" PRIx64, pc.isa) << "\n"; 4536 4537 outs() << "\t\t\t name "; 4538 sym_name = get_symbol_64(offset + offsetof(struct protocol64_t, name), S, 4539 info, n_value, pc.name); 4540 if (n_value != 0) { 4541 if (info->verbose && sym_name != nullptr) 4542 outs() << sym_name; 4543 else 4544 outs() << format("0x%" PRIx64, n_value); 4545 if (pc.name != 0) 4546 outs() << " + " << format("0x%" PRIx64, pc.name); 4547 } else 4548 outs() << format("0x%" PRIx64, pc.name); 4549 name = get_pointer_64(pc.name + n_value, xoffset, left, xS, info); 4550 if (name != nullptr) 4551 outs() << format(" %.*s", left, name); 4552 outs() << "\n"; 4553 4554 outs() << "\t\t\tprotocols " << format("0x%" PRIx64, pc.protocols) << "\n"; 4555 4556 outs() << "\t\t instanceMethods "; 4557 sym_name = 4558 get_symbol_64(offset + offsetof(struct protocol64_t, instanceMethods), 4559 S, info, n_value, pc.instanceMethods); 4560 if (n_value != 0) { 4561 if (info->verbose && sym_name != nullptr) 4562 outs() << sym_name; 4563 else 4564 outs() << format("0x%" PRIx64, n_value); 4565 if (pc.instanceMethods != 0) 4566 outs() << " + " << format("0x%" PRIx64, pc.instanceMethods); 4567 } else 4568 outs() << format("0x%" PRIx64, pc.instanceMethods); 4569 outs() << " (struct method_list_t *)\n"; 4570 if (pc.instanceMethods + n_value != 0) 4571 print_method_list64_t(pc.instanceMethods + n_value, info, "\t"); 4572 4573 outs() << "\t\t classMethods "; 4574 sym_name = 4575 get_symbol_64(offset + offsetof(struct protocol64_t, classMethods), S, 4576 info, n_value, pc.classMethods); 4577 if (n_value != 0) { 4578 if (info->verbose && sym_name != nullptr) 4579 outs() << sym_name; 4580 else 4581 outs() << format("0x%" PRIx64, n_value); 4582 if (pc.classMethods != 0) 4583 outs() << " + " << format("0x%" PRIx64, pc.classMethods); 4584 } else 4585 outs() << format("0x%" PRIx64, pc.classMethods); 4586 outs() << " (struct method_list_t *)\n"; 4587 if (pc.classMethods + n_value != 0) 4588 print_method_list64_t(pc.classMethods + n_value, info, "\t"); 4589 4590 outs() << "\t optionalInstanceMethods " 4591 << format("0x%" PRIx64, pc.optionalInstanceMethods) << "\n"; 4592 outs() << "\t optionalClassMethods " 4593 << format("0x%" PRIx64, pc.optionalClassMethods) << "\n"; 4594 outs() << "\t instanceProperties " 4595 << format("0x%" PRIx64, pc.instanceProperties) << "\n"; 4596 4597 p += sizeof(uint64_t); 4598 offset += sizeof(uint64_t); 4599 } 4600 } 4601 4602 static void print_protocol_list32_t(uint32_t p, struct DisassembleInfo *info) { 4603 struct protocol_list32_t pl; 4604 uint32_t q; 4605 struct protocol32_t pc; 4606 const char *r; 4607 uint32_t offset, xoffset, left, i; 4608 SectionRef S, xS; 4609 const char *name; 4610 4611 r = get_pointer_32(p, offset, left, S, info); 4612 if (r == nullptr) 4613 return; 4614 memset(&pl, '\0', sizeof(struct protocol_list32_t)); 4615 if (left < sizeof(struct protocol_list32_t)) { 4616 memcpy(&pl, r, left); 4617 outs() << " (protocol_list_t entends past the end of the section)\n"; 4618 } else 4619 memcpy(&pl, r, sizeof(struct protocol_list32_t)); 4620 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4621 swapStruct(pl); 4622 outs() << " count " << pl.count << "\n"; 4623 4624 p += sizeof(struct protocol_list32_t); 4625 offset += sizeof(struct protocol_list32_t); 4626 for (i = 0; i < pl.count; i++) { 4627 r = get_pointer_32(p, offset, left, S, info); 4628 if (r == nullptr) 4629 return; 4630 q = 0; 4631 if (left < sizeof(uint32_t)) { 4632 memcpy(&q, r, left); 4633 outs() << " (protocol_t * entends past the end of the section)\n"; 4634 } else 4635 memcpy(&q, r, sizeof(uint32_t)); 4636 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4637 sys::swapByteOrder(q); 4638 outs() << "\t\t list[" << i << "] " << format("0x%" PRIx32, q) 4639 << " (struct protocol_t *)\n"; 4640 r = get_pointer_32(q, offset, left, S, info); 4641 if (r == nullptr) 4642 return; 4643 memset(&pc, '\0', sizeof(struct protocol32_t)); 4644 if (left < sizeof(struct protocol32_t)) { 4645 memcpy(&pc, r, left); 4646 outs() << " (protocol_t entends past the end of the section)\n"; 4647 } else 4648 memcpy(&pc, r, sizeof(struct protocol32_t)); 4649 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4650 swapStruct(pc); 4651 outs() << "\t\t\t isa " << format("0x%" PRIx32, pc.isa) << "\n"; 4652 outs() << "\t\t\t name " << format("0x%" PRIx32, pc.name); 4653 name = get_pointer_32(pc.name, xoffset, left, xS, info); 4654 if (name != nullptr) 4655 outs() << format(" %.*s", left, name); 4656 outs() << "\n"; 4657 outs() << "\t\t\tprotocols " << format("0x%" PRIx32, pc.protocols) << "\n"; 4658 outs() << "\t\t instanceMethods " 4659 << format("0x%" PRIx32, pc.instanceMethods) 4660 << " (struct method_list_t *)\n"; 4661 if (pc.instanceMethods != 0) 4662 print_method_list32_t(pc.instanceMethods, info, "\t"); 4663 outs() << "\t\t classMethods " << format("0x%" PRIx32, pc.classMethods) 4664 << " (struct method_list_t *)\n"; 4665 if (pc.classMethods != 0) 4666 print_method_list32_t(pc.classMethods, info, "\t"); 4667 outs() << "\t optionalInstanceMethods " 4668 << format("0x%" PRIx32, pc.optionalInstanceMethods) << "\n"; 4669 outs() << "\t optionalClassMethods " 4670 << format("0x%" PRIx32, pc.optionalClassMethods) << "\n"; 4671 outs() << "\t instanceProperties " 4672 << format("0x%" PRIx32, pc.instanceProperties) << "\n"; 4673 p += sizeof(uint32_t); 4674 offset += sizeof(uint32_t); 4675 } 4676 } 4677 4678 static void print_indent(uint32_t indent) { 4679 for (uint32_t i = 0; i < indent;) { 4680 if (indent - i >= 8) { 4681 outs() << "\t"; 4682 i += 8; 4683 } else { 4684 for (uint32_t j = i; j < indent; j++) 4685 outs() << " "; 4686 return; 4687 } 4688 } 4689 } 4690 4691 static bool print_method_description_list(uint32_t p, uint32_t indent, 4692 struct DisassembleInfo *info) { 4693 uint32_t offset, left, xleft; 4694 SectionRef S; 4695 struct objc_method_description_list_t mdl; 4696 struct objc_method_description_t md; 4697 const char *r, *list, *name; 4698 int32_t i; 4699 4700 r = get_pointer_32(p, offset, left, S, info, true); 4701 if (r == nullptr) 4702 return true; 4703 4704 outs() << "\n"; 4705 if (left > sizeof(struct objc_method_description_list_t)) { 4706 memcpy(&mdl, r, sizeof(struct objc_method_description_list_t)); 4707 } else { 4708 print_indent(indent); 4709 outs() << " objc_method_description_list extends past end of the section\n"; 4710 memset(&mdl, '\0', sizeof(struct objc_method_description_list_t)); 4711 memcpy(&mdl, r, left); 4712 } 4713 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4714 swapStruct(mdl); 4715 4716 print_indent(indent); 4717 outs() << " count " << mdl.count << "\n"; 4718 4719 list = r + sizeof(struct objc_method_description_list_t); 4720 for (i = 0; i < mdl.count; i++) { 4721 if ((i + 1) * sizeof(struct objc_method_description_t) > left) { 4722 print_indent(indent); 4723 outs() << " remaining list entries extend past the of the section\n"; 4724 break; 4725 } 4726 print_indent(indent); 4727 outs() << " list[" << i << "]\n"; 4728 memcpy(&md, list + i * sizeof(struct objc_method_description_t), 4729 sizeof(struct objc_method_description_t)); 4730 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4731 swapStruct(md); 4732 4733 print_indent(indent); 4734 outs() << " name " << format("0x%08" PRIx32, md.name); 4735 if (info->verbose) { 4736 name = get_pointer_32(md.name, offset, xleft, S, info, true); 4737 if (name != nullptr) 4738 outs() << format(" %.*s", xleft, name); 4739 else 4740 outs() << " (not in an __OBJC section)"; 4741 } 4742 outs() << "\n"; 4743 4744 print_indent(indent); 4745 outs() << " types " << format("0x%08" PRIx32, md.types); 4746 if (info->verbose) { 4747 name = get_pointer_32(md.types, offset, xleft, S, info, true); 4748 if (name != nullptr) 4749 outs() << format(" %.*s", xleft, name); 4750 else 4751 outs() << " (not in an __OBJC section)"; 4752 } 4753 outs() << "\n"; 4754 } 4755 return false; 4756 } 4757 4758 static bool print_protocol_list(uint32_t p, uint32_t indent, 4759 struct DisassembleInfo *info); 4760 4761 static bool print_protocol(uint32_t p, uint32_t indent, 4762 struct DisassembleInfo *info) { 4763 uint32_t offset, left; 4764 SectionRef S; 4765 struct objc_protocol_t protocol; 4766 const char *r, *name; 4767 4768 r = get_pointer_32(p, offset, left, S, info, true); 4769 if (r == nullptr) 4770 return true; 4771 4772 outs() << "\n"; 4773 if (left >= sizeof(struct objc_protocol_t)) { 4774 memcpy(&protocol, r, sizeof(struct objc_protocol_t)); 4775 } else { 4776 print_indent(indent); 4777 outs() << " Protocol extends past end of the section\n"; 4778 memset(&protocol, '\0', sizeof(struct objc_protocol_t)); 4779 memcpy(&protocol, r, left); 4780 } 4781 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4782 swapStruct(protocol); 4783 4784 print_indent(indent); 4785 outs() << " isa " << format("0x%08" PRIx32, protocol.isa) 4786 << "\n"; 4787 4788 print_indent(indent); 4789 outs() << " protocol_name " 4790 << format("0x%08" PRIx32, protocol.protocol_name); 4791 if (info->verbose) { 4792 name = get_pointer_32(protocol.protocol_name, offset, left, S, info, true); 4793 if (name != nullptr) 4794 outs() << format(" %.*s", left, name); 4795 else 4796 outs() << " (not in an __OBJC section)"; 4797 } 4798 outs() << "\n"; 4799 4800 print_indent(indent); 4801 outs() << " protocol_list " 4802 << format("0x%08" PRIx32, protocol.protocol_list); 4803 if (print_protocol_list(protocol.protocol_list, indent + 4, info)) 4804 outs() << " (not in an __OBJC section)\n"; 4805 4806 print_indent(indent); 4807 outs() << " instance_methods " 4808 << format("0x%08" PRIx32, protocol.instance_methods); 4809 if (print_method_description_list(protocol.instance_methods, indent, info)) 4810 outs() << " (not in an __OBJC section)\n"; 4811 4812 print_indent(indent); 4813 outs() << " class_methods " 4814 << format("0x%08" PRIx32, protocol.class_methods); 4815 if (print_method_description_list(protocol.class_methods, indent, info)) 4816 outs() << " (not in an __OBJC section)\n"; 4817 4818 return false; 4819 } 4820 4821 static bool print_protocol_list(uint32_t p, uint32_t indent, 4822 struct DisassembleInfo *info) { 4823 uint32_t offset, left, l; 4824 SectionRef S; 4825 struct objc_protocol_list_t protocol_list; 4826 const char *r, *list; 4827 int32_t i; 4828 4829 r = get_pointer_32(p, offset, left, S, info, true); 4830 if (r == nullptr) 4831 return true; 4832 4833 outs() << "\n"; 4834 if (left > sizeof(struct objc_protocol_list_t)) { 4835 memcpy(&protocol_list, r, sizeof(struct objc_protocol_list_t)); 4836 } else { 4837 outs() << "\t\t objc_protocol_list_t extends past end of the section\n"; 4838 memset(&protocol_list, '\0', sizeof(struct objc_protocol_list_t)); 4839 memcpy(&protocol_list, r, left); 4840 } 4841 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4842 swapStruct(protocol_list); 4843 4844 print_indent(indent); 4845 outs() << " next " << format("0x%08" PRIx32, protocol_list.next) 4846 << "\n"; 4847 print_indent(indent); 4848 outs() << " count " << protocol_list.count << "\n"; 4849 4850 list = r + sizeof(struct objc_protocol_list_t); 4851 for (i = 0; i < protocol_list.count; i++) { 4852 if ((i + 1) * sizeof(uint32_t) > left) { 4853 outs() << "\t\t remaining list entries extend past the of the section\n"; 4854 break; 4855 } 4856 memcpy(&l, list + i * sizeof(uint32_t), sizeof(uint32_t)); 4857 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4858 sys::swapByteOrder(l); 4859 4860 print_indent(indent); 4861 outs() << " list[" << i << "] " << format("0x%08" PRIx32, l); 4862 if (print_protocol(l, indent, info)) 4863 outs() << "(not in an __OBJC section)\n"; 4864 } 4865 return false; 4866 } 4867 4868 static void print_ivar_list64_t(uint64_t p, struct DisassembleInfo *info) { 4869 struct ivar_list64_t il; 4870 struct ivar64_t i; 4871 const char *r; 4872 uint32_t offset, xoffset, left, j; 4873 SectionRef S, xS; 4874 const char *name, *sym_name, *ivar_offset_p; 4875 uint64_t ivar_offset, n_value; 4876 4877 r = get_pointer_64(p, offset, left, S, info); 4878 if (r == nullptr) 4879 return; 4880 memset(&il, '\0', sizeof(struct ivar_list64_t)); 4881 if (left < sizeof(struct ivar_list64_t)) { 4882 memcpy(&il, r, left); 4883 outs() << " (ivar_list_t entends past the end of the section)\n"; 4884 } else 4885 memcpy(&il, r, sizeof(struct ivar_list64_t)); 4886 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4887 swapStruct(il); 4888 outs() << " entsize " << il.entsize << "\n"; 4889 outs() << " count " << il.count << "\n"; 4890 4891 p += sizeof(struct ivar_list64_t); 4892 offset += sizeof(struct ivar_list64_t); 4893 for (j = 0; j < il.count; j++) { 4894 r = get_pointer_64(p, offset, left, S, info); 4895 if (r == nullptr) 4896 return; 4897 memset(&i, '\0', sizeof(struct ivar64_t)); 4898 if (left < sizeof(struct ivar64_t)) { 4899 memcpy(&i, r, left); 4900 outs() << " (ivar_t entends past the end of the section)\n"; 4901 } else 4902 memcpy(&i, r, sizeof(struct ivar64_t)); 4903 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4904 swapStruct(i); 4905 4906 outs() << "\t\t\t offset "; 4907 sym_name = get_symbol_64(offset + offsetof(struct ivar64_t, offset), S, 4908 info, n_value, i.offset); 4909 if (n_value != 0) { 4910 if (info->verbose && sym_name != nullptr) 4911 outs() << sym_name; 4912 else 4913 outs() << format("0x%" PRIx64, n_value); 4914 if (i.offset != 0) 4915 outs() << " + " << format("0x%" PRIx64, i.offset); 4916 } else 4917 outs() << format("0x%" PRIx64, i.offset); 4918 ivar_offset_p = get_pointer_64(i.offset + n_value, xoffset, left, xS, info); 4919 if (ivar_offset_p != nullptr && left >= sizeof(*ivar_offset_p)) { 4920 memcpy(&ivar_offset, ivar_offset_p, sizeof(ivar_offset)); 4921 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4922 sys::swapByteOrder(ivar_offset); 4923 outs() << " " << ivar_offset << "\n"; 4924 } else 4925 outs() << "\n"; 4926 4927 outs() << "\t\t\t name "; 4928 sym_name = get_symbol_64(offset + offsetof(struct ivar64_t, name), S, info, 4929 n_value, i.name); 4930 if (n_value != 0) { 4931 if (info->verbose && sym_name != nullptr) 4932 outs() << sym_name; 4933 else 4934 outs() << format("0x%" PRIx64, n_value); 4935 if (i.name != 0) 4936 outs() << " + " << format("0x%" PRIx64, i.name); 4937 } else 4938 outs() << format("0x%" PRIx64, i.name); 4939 name = get_pointer_64(i.name + n_value, xoffset, left, xS, info); 4940 if (name != nullptr) 4941 outs() << format(" %.*s", left, name); 4942 outs() << "\n"; 4943 4944 outs() << "\t\t\t type "; 4945 sym_name = get_symbol_64(offset + offsetof(struct ivar64_t, type), S, info, 4946 n_value, i.name); 4947 name = get_pointer_64(i.type + n_value, xoffset, left, xS, info); 4948 if (n_value != 0) { 4949 if (info->verbose && sym_name != nullptr) 4950 outs() << sym_name; 4951 else 4952 outs() << format("0x%" PRIx64, n_value); 4953 if (i.type != 0) 4954 outs() << " + " << format("0x%" PRIx64, i.type); 4955 } else 4956 outs() << format("0x%" PRIx64, i.type); 4957 if (name != nullptr) 4958 outs() << format(" %.*s", left, name); 4959 outs() << "\n"; 4960 4961 outs() << "\t\t\talignment " << i.alignment << "\n"; 4962 outs() << "\t\t\t size " << i.size << "\n"; 4963 4964 p += sizeof(struct ivar64_t); 4965 offset += sizeof(struct ivar64_t); 4966 } 4967 } 4968 4969 static void print_ivar_list32_t(uint32_t p, struct DisassembleInfo *info) { 4970 struct ivar_list32_t il; 4971 struct ivar32_t i; 4972 const char *r; 4973 uint32_t offset, xoffset, left, j; 4974 SectionRef S, xS; 4975 const char *name, *ivar_offset_p; 4976 uint32_t ivar_offset; 4977 4978 r = get_pointer_32(p, offset, left, S, info); 4979 if (r == nullptr) 4980 return; 4981 memset(&il, '\0', sizeof(struct ivar_list32_t)); 4982 if (left < sizeof(struct ivar_list32_t)) { 4983 memcpy(&il, r, left); 4984 outs() << " (ivar_list_t entends past the end of the section)\n"; 4985 } else 4986 memcpy(&il, r, sizeof(struct ivar_list32_t)); 4987 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 4988 swapStruct(il); 4989 outs() << " entsize " << il.entsize << "\n"; 4990 outs() << " count " << il.count << "\n"; 4991 4992 p += sizeof(struct ivar_list32_t); 4993 offset += sizeof(struct ivar_list32_t); 4994 for (j = 0; j < il.count; j++) { 4995 r = get_pointer_32(p, offset, left, S, info); 4996 if (r == nullptr) 4997 return; 4998 memset(&i, '\0', sizeof(struct ivar32_t)); 4999 if (left < sizeof(struct ivar32_t)) { 5000 memcpy(&i, r, left); 5001 outs() << " (ivar_t entends past the end of the section)\n"; 5002 } else 5003 memcpy(&i, r, sizeof(struct ivar32_t)); 5004 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5005 swapStruct(i); 5006 5007 outs() << "\t\t\t offset " << format("0x%" PRIx32, i.offset); 5008 ivar_offset_p = get_pointer_32(i.offset, xoffset, left, xS, info); 5009 if (ivar_offset_p != nullptr && left >= sizeof(*ivar_offset_p)) { 5010 memcpy(&ivar_offset, ivar_offset_p, sizeof(ivar_offset)); 5011 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5012 sys::swapByteOrder(ivar_offset); 5013 outs() << " " << ivar_offset << "\n"; 5014 } else 5015 outs() << "\n"; 5016 5017 outs() << "\t\t\t name " << format("0x%" PRIx32, i.name); 5018 name = get_pointer_32(i.name, xoffset, left, xS, info); 5019 if (name != nullptr) 5020 outs() << format(" %.*s", left, name); 5021 outs() << "\n"; 5022 5023 outs() << "\t\t\t type " << format("0x%" PRIx32, i.type); 5024 name = get_pointer_32(i.type, xoffset, left, xS, info); 5025 if (name != nullptr) 5026 outs() << format(" %.*s", left, name); 5027 outs() << "\n"; 5028 5029 outs() << "\t\t\talignment " << i.alignment << "\n"; 5030 outs() << "\t\t\t size " << i.size << "\n"; 5031 5032 p += sizeof(struct ivar32_t); 5033 offset += sizeof(struct ivar32_t); 5034 } 5035 } 5036 5037 static void print_objc_property_list64(uint64_t p, 5038 struct DisassembleInfo *info) { 5039 struct objc_property_list64 opl; 5040 struct objc_property64 op; 5041 const char *r; 5042 uint32_t offset, xoffset, left, j; 5043 SectionRef S, xS; 5044 const char *name, *sym_name; 5045 uint64_t n_value; 5046 5047 r = get_pointer_64(p, offset, left, S, info); 5048 if (r == nullptr) 5049 return; 5050 memset(&opl, '\0', sizeof(struct objc_property_list64)); 5051 if (left < sizeof(struct objc_property_list64)) { 5052 memcpy(&opl, r, left); 5053 outs() << " (objc_property_list entends past the end of the section)\n"; 5054 } else 5055 memcpy(&opl, r, sizeof(struct objc_property_list64)); 5056 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5057 swapStruct(opl); 5058 outs() << " entsize " << opl.entsize << "\n"; 5059 outs() << " count " << opl.count << "\n"; 5060 5061 p += sizeof(struct objc_property_list64); 5062 offset += sizeof(struct objc_property_list64); 5063 for (j = 0; j < opl.count; j++) { 5064 r = get_pointer_64(p, offset, left, S, info); 5065 if (r == nullptr) 5066 return; 5067 memset(&op, '\0', sizeof(struct objc_property64)); 5068 if (left < sizeof(struct objc_property64)) { 5069 memcpy(&op, r, left); 5070 outs() << " (objc_property entends past the end of the section)\n"; 5071 } else 5072 memcpy(&op, r, sizeof(struct objc_property64)); 5073 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5074 swapStruct(op); 5075 5076 outs() << "\t\t\t name "; 5077 sym_name = get_symbol_64(offset + offsetof(struct objc_property64, name), S, 5078 info, n_value, op.name); 5079 if (n_value != 0) { 5080 if (info->verbose && sym_name != nullptr) 5081 outs() << sym_name; 5082 else 5083 outs() << format("0x%" PRIx64, n_value); 5084 if (op.name != 0) 5085 outs() << " + " << format("0x%" PRIx64, op.name); 5086 } else 5087 outs() << format("0x%" PRIx64, op.name); 5088 name = get_pointer_64(op.name + n_value, xoffset, left, xS, info); 5089 if (name != nullptr) 5090 outs() << format(" %.*s", left, name); 5091 outs() << "\n"; 5092 5093 outs() << "\t\t\tattributes "; 5094 sym_name = 5095 get_symbol_64(offset + offsetof(struct objc_property64, attributes), S, 5096 info, n_value, op.attributes); 5097 if (n_value != 0) { 5098 if (info->verbose && sym_name != nullptr) 5099 outs() << sym_name; 5100 else 5101 outs() << format("0x%" PRIx64, n_value); 5102 if (op.attributes != 0) 5103 outs() << " + " << format("0x%" PRIx64, op.attributes); 5104 } else 5105 outs() << format("0x%" PRIx64, op.attributes); 5106 name = get_pointer_64(op.attributes + n_value, xoffset, left, xS, info); 5107 if (name != nullptr) 5108 outs() << format(" %.*s", left, name); 5109 outs() << "\n"; 5110 5111 p += sizeof(struct objc_property64); 5112 offset += sizeof(struct objc_property64); 5113 } 5114 } 5115 5116 static void print_objc_property_list32(uint32_t p, 5117 struct DisassembleInfo *info) { 5118 struct objc_property_list32 opl; 5119 struct objc_property32 op; 5120 const char *r; 5121 uint32_t offset, xoffset, left, j; 5122 SectionRef S, xS; 5123 const char *name; 5124 5125 r = get_pointer_32(p, offset, left, S, info); 5126 if (r == nullptr) 5127 return; 5128 memset(&opl, '\0', sizeof(struct objc_property_list32)); 5129 if (left < sizeof(struct objc_property_list32)) { 5130 memcpy(&opl, r, left); 5131 outs() << " (objc_property_list entends past the end of the section)\n"; 5132 } else 5133 memcpy(&opl, r, sizeof(struct objc_property_list32)); 5134 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5135 swapStruct(opl); 5136 outs() << " entsize " << opl.entsize << "\n"; 5137 outs() << " count " << opl.count << "\n"; 5138 5139 p += sizeof(struct objc_property_list32); 5140 offset += sizeof(struct objc_property_list32); 5141 for (j = 0; j < opl.count; j++) { 5142 r = get_pointer_32(p, offset, left, S, info); 5143 if (r == nullptr) 5144 return; 5145 memset(&op, '\0', sizeof(struct objc_property32)); 5146 if (left < sizeof(struct objc_property32)) { 5147 memcpy(&op, r, left); 5148 outs() << " (objc_property entends past the end of the section)\n"; 5149 } else 5150 memcpy(&op, r, sizeof(struct objc_property32)); 5151 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5152 swapStruct(op); 5153 5154 outs() << "\t\t\t name " << format("0x%" PRIx32, op.name); 5155 name = get_pointer_32(op.name, xoffset, left, xS, info); 5156 if (name != nullptr) 5157 outs() << format(" %.*s", left, name); 5158 outs() << "\n"; 5159 5160 outs() << "\t\t\tattributes " << format("0x%" PRIx32, op.attributes); 5161 name = get_pointer_32(op.attributes, xoffset, left, xS, info); 5162 if (name != nullptr) 5163 outs() << format(" %.*s", left, name); 5164 outs() << "\n"; 5165 5166 p += sizeof(struct objc_property32); 5167 offset += sizeof(struct objc_property32); 5168 } 5169 } 5170 5171 static bool print_class_ro64_t(uint64_t p, struct DisassembleInfo *info, 5172 bool &is_meta_class) { 5173 struct class_ro64_t cro; 5174 const char *r; 5175 uint32_t offset, xoffset, left; 5176 SectionRef S, xS; 5177 const char *name, *sym_name; 5178 uint64_t n_value; 5179 5180 r = get_pointer_64(p, offset, left, S, info); 5181 if (r == nullptr || left < sizeof(struct class_ro64_t)) 5182 return false; 5183 memcpy(&cro, r, sizeof(struct class_ro64_t)); 5184 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5185 swapStruct(cro); 5186 outs() << " flags " << format("0x%" PRIx32, cro.flags); 5187 if (cro.flags & RO_META) 5188 outs() << " RO_META"; 5189 if (cro.flags & RO_ROOT) 5190 outs() << " RO_ROOT"; 5191 if (cro.flags & RO_HAS_CXX_STRUCTORS) 5192 outs() << " RO_HAS_CXX_STRUCTORS"; 5193 outs() << "\n"; 5194 outs() << " instanceStart " << cro.instanceStart << "\n"; 5195 outs() << " instanceSize " << cro.instanceSize << "\n"; 5196 outs() << " reserved " << format("0x%" PRIx32, cro.reserved) 5197 << "\n"; 5198 outs() << " ivarLayout " << format("0x%" PRIx64, cro.ivarLayout) 5199 << "\n"; 5200 print_layout_map64(cro.ivarLayout, info); 5201 5202 outs() << " name "; 5203 sym_name = get_symbol_64(offset + offsetof(struct class_ro64_t, name), S, 5204 info, n_value, cro.name); 5205 if (n_value != 0) { 5206 if (info->verbose && sym_name != nullptr) 5207 outs() << sym_name; 5208 else 5209 outs() << format("0x%" PRIx64, n_value); 5210 if (cro.name != 0) 5211 outs() << " + " << format("0x%" PRIx64, cro.name); 5212 } else 5213 outs() << format("0x%" PRIx64, cro.name); 5214 name = get_pointer_64(cro.name + n_value, xoffset, left, xS, info); 5215 if (name != nullptr) 5216 outs() << format(" %.*s", left, name); 5217 outs() << "\n"; 5218 5219 outs() << " baseMethods "; 5220 sym_name = get_symbol_64(offset + offsetof(struct class_ro64_t, baseMethods), 5221 S, info, n_value, cro.baseMethods); 5222 if (n_value != 0) { 5223 if (info->verbose && sym_name != nullptr) 5224 outs() << sym_name; 5225 else 5226 outs() << format("0x%" PRIx64, n_value); 5227 if (cro.baseMethods != 0) 5228 outs() << " + " << format("0x%" PRIx64, cro.baseMethods); 5229 } else 5230 outs() << format("0x%" PRIx64, cro.baseMethods); 5231 outs() << " (struct method_list_t *)\n"; 5232 if (cro.baseMethods + n_value != 0) 5233 print_method_list64_t(cro.baseMethods + n_value, info, ""); 5234 5235 outs() << " baseProtocols "; 5236 sym_name = 5237 get_symbol_64(offset + offsetof(struct class_ro64_t, baseProtocols), S, 5238 info, n_value, cro.baseProtocols); 5239 if (n_value != 0) { 5240 if (info->verbose && sym_name != nullptr) 5241 outs() << sym_name; 5242 else 5243 outs() << format("0x%" PRIx64, n_value); 5244 if (cro.baseProtocols != 0) 5245 outs() << " + " << format("0x%" PRIx64, cro.baseProtocols); 5246 } else 5247 outs() << format("0x%" PRIx64, cro.baseProtocols); 5248 outs() << "\n"; 5249 if (cro.baseProtocols + n_value != 0) 5250 print_protocol_list64_t(cro.baseProtocols + n_value, info); 5251 5252 outs() << " ivars "; 5253 sym_name = get_symbol_64(offset + offsetof(struct class_ro64_t, ivars), S, 5254 info, n_value, cro.ivars); 5255 if (n_value != 0) { 5256 if (info->verbose && sym_name != nullptr) 5257 outs() << sym_name; 5258 else 5259 outs() << format("0x%" PRIx64, n_value); 5260 if (cro.ivars != 0) 5261 outs() << " + " << format("0x%" PRIx64, cro.ivars); 5262 } else 5263 outs() << format("0x%" PRIx64, cro.ivars); 5264 outs() << "\n"; 5265 if (cro.ivars + n_value != 0) 5266 print_ivar_list64_t(cro.ivars + n_value, info); 5267 5268 outs() << " weakIvarLayout "; 5269 sym_name = 5270 get_symbol_64(offset + offsetof(struct class_ro64_t, weakIvarLayout), S, 5271 info, n_value, cro.weakIvarLayout); 5272 if (n_value != 0) { 5273 if (info->verbose && sym_name != nullptr) 5274 outs() << sym_name; 5275 else 5276 outs() << format("0x%" PRIx64, n_value); 5277 if (cro.weakIvarLayout != 0) 5278 outs() << " + " << format("0x%" PRIx64, cro.weakIvarLayout); 5279 } else 5280 outs() << format("0x%" PRIx64, cro.weakIvarLayout); 5281 outs() << "\n"; 5282 print_layout_map64(cro.weakIvarLayout + n_value, info); 5283 5284 outs() << " baseProperties "; 5285 sym_name = 5286 get_symbol_64(offset + offsetof(struct class_ro64_t, baseProperties), S, 5287 info, n_value, cro.baseProperties); 5288 if (n_value != 0) { 5289 if (info->verbose && sym_name != nullptr) 5290 outs() << sym_name; 5291 else 5292 outs() << format("0x%" PRIx64, n_value); 5293 if (cro.baseProperties != 0) 5294 outs() << " + " << format("0x%" PRIx64, cro.baseProperties); 5295 } else 5296 outs() << format("0x%" PRIx64, cro.baseProperties); 5297 outs() << "\n"; 5298 if (cro.baseProperties + n_value != 0) 5299 print_objc_property_list64(cro.baseProperties + n_value, info); 5300 5301 is_meta_class = (cro.flags & RO_META) != 0; 5302 return true; 5303 } 5304 5305 static bool print_class_ro32_t(uint32_t p, struct DisassembleInfo *info, 5306 bool &is_meta_class) { 5307 struct class_ro32_t cro; 5308 const char *r; 5309 uint32_t offset, xoffset, left; 5310 SectionRef S, xS; 5311 const char *name; 5312 5313 r = get_pointer_32(p, offset, left, S, info); 5314 if (r == nullptr) 5315 return false; 5316 memset(&cro, '\0', sizeof(struct class_ro32_t)); 5317 if (left < sizeof(struct class_ro32_t)) { 5318 memcpy(&cro, r, left); 5319 outs() << " (class_ro_t entends past the end of the section)\n"; 5320 } else 5321 memcpy(&cro, r, sizeof(struct class_ro32_t)); 5322 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5323 swapStruct(cro); 5324 outs() << " flags " << format("0x%" PRIx32, cro.flags); 5325 if (cro.flags & RO_META) 5326 outs() << " RO_META"; 5327 if (cro.flags & RO_ROOT) 5328 outs() << " RO_ROOT"; 5329 if (cro.flags & RO_HAS_CXX_STRUCTORS) 5330 outs() << " RO_HAS_CXX_STRUCTORS"; 5331 outs() << "\n"; 5332 outs() << " instanceStart " << cro.instanceStart << "\n"; 5333 outs() << " instanceSize " << cro.instanceSize << "\n"; 5334 outs() << " ivarLayout " << format("0x%" PRIx32, cro.ivarLayout) 5335 << "\n"; 5336 print_layout_map32(cro.ivarLayout, info); 5337 5338 outs() << " name " << format("0x%" PRIx32, cro.name); 5339 name = get_pointer_32(cro.name, xoffset, left, xS, info); 5340 if (name != nullptr) 5341 outs() << format(" %.*s", left, name); 5342 outs() << "\n"; 5343 5344 outs() << " baseMethods " 5345 << format("0x%" PRIx32, cro.baseMethods) 5346 << " (struct method_list_t *)\n"; 5347 if (cro.baseMethods != 0) 5348 print_method_list32_t(cro.baseMethods, info, ""); 5349 5350 outs() << " baseProtocols " 5351 << format("0x%" PRIx32, cro.baseProtocols) << "\n"; 5352 if (cro.baseProtocols != 0) 5353 print_protocol_list32_t(cro.baseProtocols, info); 5354 outs() << " ivars " << format("0x%" PRIx32, cro.ivars) 5355 << "\n"; 5356 if (cro.ivars != 0) 5357 print_ivar_list32_t(cro.ivars, info); 5358 outs() << " weakIvarLayout " 5359 << format("0x%" PRIx32, cro.weakIvarLayout) << "\n"; 5360 print_layout_map32(cro.weakIvarLayout, info); 5361 outs() << " baseProperties " 5362 << format("0x%" PRIx32, cro.baseProperties) << "\n"; 5363 if (cro.baseProperties != 0) 5364 print_objc_property_list32(cro.baseProperties, info); 5365 is_meta_class = (cro.flags & RO_META) != 0; 5366 return true; 5367 } 5368 5369 static void print_class64_t(uint64_t p, struct DisassembleInfo *info) { 5370 struct class64_t c; 5371 const char *r; 5372 uint32_t offset, left; 5373 SectionRef S; 5374 const char *name; 5375 uint64_t isa_n_value, n_value; 5376 5377 r = get_pointer_64(p, offset, left, S, info); 5378 if (r == nullptr || left < sizeof(struct class64_t)) 5379 return; 5380 memcpy(&c, r, sizeof(struct class64_t)); 5381 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5382 swapStruct(c); 5383 5384 outs() << " isa " << format("0x%" PRIx64, c.isa); 5385 name = get_symbol_64(offset + offsetof(struct class64_t, isa), S, info, 5386 isa_n_value, c.isa); 5387 if (name != nullptr) 5388 outs() << " " << name; 5389 outs() << "\n"; 5390 5391 outs() << " superclass " << format("0x%" PRIx64, c.superclass); 5392 name = get_symbol_64(offset + offsetof(struct class64_t, superclass), S, info, 5393 n_value, c.superclass); 5394 if (name != nullptr) 5395 outs() << " " << name; 5396 else { 5397 name = get_dyld_bind_info_symbolname(S.getAddress() + 5398 offset + offsetof(struct class64_t, superclass), info); 5399 if (name != nullptr) 5400 outs() << " " << name; 5401 } 5402 outs() << "\n"; 5403 5404 outs() << " cache " << format("0x%" PRIx64, c.cache); 5405 name = get_symbol_64(offset + offsetof(struct class64_t, cache), S, info, 5406 n_value, c.cache); 5407 if (name != nullptr) 5408 outs() << " " << name; 5409 outs() << "\n"; 5410 5411 outs() << " vtable " << format("0x%" PRIx64, c.vtable); 5412 name = get_symbol_64(offset + offsetof(struct class64_t, vtable), S, info, 5413 n_value, c.vtable); 5414 if (name != nullptr) 5415 outs() << " " << name; 5416 outs() << "\n"; 5417 5418 name = get_symbol_64(offset + offsetof(struct class64_t, data), S, info, 5419 n_value, c.data); 5420 outs() << " data "; 5421 if (n_value != 0) { 5422 if (info->verbose && name != nullptr) 5423 outs() << name; 5424 else 5425 outs() << format("0x%" PRIx64, n_value); 5426 if (c.data != 0) 5427 outs() << " + " << format("0x%" PRIx64, c.data); 5428 } else 5429 outs() << format("0x%" PRIx64, c.data); 5430 outs() << " (struct class_ro_t *)"; 5431 5432 // This is a Swift class if some of the low bits of the pointer are set. 5433 if ((c.data + n_value) & 0x7) 5434 outs() << " Swift class"; 5435 outs() << "\n"; 5436 bool is_meta_class; 5437 if (!print_class_ro64_t((c.data + n_value) & ~0x7, info, is_meta_class)) 5438 return; 5439 5440 if (!is_meta_class && 5441 c.isa + isa_n_value != p && 5442 c.isa + isa_n_value != 0 && 5443 info->depth < 100) { 5444 info->depth++; 5445 outs() << "Meta Class\n"; 5446 print_class64_t(c.isa + isa_n_value, info); 5447 } 5448 } 5449 5450 static void print_class32_t(uint32_t p, struct DisassembleInfo *info) { 5451 struct class32_t c; 5452 const char *r; 5453 uint32_t offset, left; 5454 SectionRef S; 5455 const char *name; 5456 5457 r = get_pointer_32(p, offset, left, S, info); 5458 if (r == nullptr) 5459 return; 5460 memset(&c, '\0', sizeof(struct class32_t)); 5461 if (left < sizeof(struct class32_t)) { 5462 memcpy(&c, r, left); 5463 outs() << " (class_t entends past the end of the section)\n"; 5464 } else 5465 memcpy(&c, r, sizeof(struct class32_t)); 5466 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5467 swapStruct(c); 5468 5469 outs() << " isa " << format("0x%" PRIx32, c.isa); 5470 name = 5471 get_symbol_32(offset + offsetof(struct class32_t, isa), S, info, c.isa); 5472 if (name != nullptr) 5473 outs() << " " << name; 5474 outs() << "\n"; 5475 5476 outs() << " superclass " << format("0x%" PRIx32, c.superclass); 5477 name = get_symbol_32(offset + offsetof(struct class32_t, superclass), S, info, 5478 c.superclass); 5479 if (name != nullptr) 5480 outs() << " " << name; 5481 outs() << "\n"; 5482 5483 outs() << " cache " << format("0x%" PRIx32, c.cache); 5484 name = get_symbol_32(offset + offsetof(struct class32_t, cache), S, info, 5485 c.cache); 5486 if (name != nullptr) 5487 outs() << " " << name; 5488 outs() << "\n"; 5489 5490 outs() << " vtable " << format("0x%" PRIx32, c.vtable); 5491 name = get_symbol_32(offset + offsetof(struct class32_t, vtable), S, info, 5492 c.vtable); 5493 if (name != nullptr) 5494 outs() << " " << name; 5495 outs() << "\n"; 5496 5497 name = 5498 get_symbol_32(offset + offsetof(struct class32_t, data), S, info, c.data); 5499 outs() << " data " << format("0x%" PRIx32, c.data) 5500 << " (struct class_ro_t *)"; 5501 5502 // This is a Swift class if some of the low bits of the pointer are set. 5503 if (c.data & 0x3) 5504 outs() << " Swift class"; 5505 outs() << "\n"; 5506 bool is_meta_class; 5507 if (!print_class_ro32_t(c.data & ~0x3, info, is_meta_class)) 5508 return; 5509 5510 if (!is_meta_class) { 5511 outs() << "Meta Class\n"; 5512 print_class32_t(c.isa, info); 5513 } 5514 } 5515 5516 static void print_objc_class_t(struct objc_class_t *objc_class, 5517 struct DisassembleInfo *info) { 5518 uint32_t offset, left, xleft; 5519 const char *name, *p, *ivar_list; 5520 SectionRef S; 5521 int32_t i; 5522 struct objc_ivar_list_t objc_ivar_list; 5523 struct objc_ivar_t ivar; 5524 5525 outs() << "\t\t isa " << format("0x%08" PRIx32, objc_class->isa); 5526 if (info->verbose && CLS_GETINFO(objc_class, CLS_META)) { 5527 name = get_pointer_32(objc_class->isa, offset, left, S, info, true); 5528 if (name != nullptr) 5529 outs() << format(" %.*s", left, name); 5530 else 5531 outs() << " (not in an __OBJC section)"; 5532 } 5533 outs() << "\n"; 5534 5535 outs() << "\t super_class " 5536 << format("0x%08" PRIx32, objc_class->super_class); 5537 if (info->verbose) { 5538 name = get_pointer_32(objc_class->super_class, offset, left, S, info, true); 5539 if (name != nullptr) 5540 outs() << format(" %.*s", left, name); 5541 else 5542 outs() << " (not in an __OBJC section)"; 5543 } 5544 outs() << "\n"; 5545 5546 outs() << "\t\t name " << format("0x%08" PRIx32, objc_class->name); 5547 if (info->verbose) { 5548 name = get_pointer_32(objc_class->name, offset, left, S, info, true); 5549 if (name != nullptr) 5550 outs() << format(" %.*s", left, name); 5551 else 5552 outs() << " (not in an __OBJC section)"; 5553 } 5554 outs() << "\n"; 5555 5556 outs() << "\t\t version " << format("0x%08" PRIx32, objc_class->version) 5557 << "\n"; 5558 5559 outs() << "\t\t info " << format("0x%08" PRIx32, objc_class->info); 5560 if (info->verbose) { 5561 if (CLS_GETINFO(objc_class, CLS_CLASS)) 5562 outs() << " CLS_CLASS"; 5563 else if (CLS_GETINFO(objc_class, CLS_META)) 5564 outs() << " CLS_META"; 5565 } 5566 outs() << "\n"; 5567 5568 outs() << "\t instance_size " 5569 << format("0x%08" PRIx32, objc_class->instance_size) << "\n"; 5570 5571 p = get_pointer_32(objc_class->ivars, offset, left, S, info, true); 5572 outs() << "\t\t ivars " << format("0x%08" PRIx32, objc_class->ivars); 5573 if (p != nullptr) { 5574 if (left > sizeof(struct objc_ivar_list_t)) { 5575 outs() << "\n"; 5576 memcpy(&objc_ivar_list, p, sizeof(struct objc_ivar_list_t)); 5577 } else { 5578 outs() << " (entends past the end of the section)\n"; 5579 memset(&objc_ivar_list, '\0', sizeof(struct objc_ivar_list_t)); 5580 memcpy(&objc_ivar_list, p, left); 5581 } 5582 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5583 swapStruct(objc_ivar_list); 5584 outs() << "\t\t ivar_count " << objc_ivar_list.ivar_count << "\n"; 5585 ivar_list = p + sizeof(struct objc_ivar_list_t); 5586 for (i = 0; i < objc_ivar_list.ivar_count; i++) { 5587 if ((i + 1) * sizeof(struct objc_ivar_t) > left) { 5588 outs() << "\t\t remaining ivar's extend past the of the section\n"; 5589 break; 5590 } 5591 memcpy(&ivar, ivar_list + i * sizeof(struct objc_ivar_t), 5592 sizeof(struct objc_ivar_t)); 5593 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5594 swapStruct(ivar); 5595 5596 outs() << "\t\t\tivar_name " << format("0x%08" PRIx32, ivar.ivar_name); 5597 if (info->verbose) { 5598 name = get_pointer_32(ivar.ivar_name, offset, xleft, S, info, true); 5599 if (name != nullptr) 5600 outs() << format(" %.*s", xleft, name); 5601 else 5602 outs() << " (not in an __OBJC section)"; 5603 } 5604 outs() << "\n"; 5605 5606 outs() << "\t\t\tivar_type " << format("0x%08" PRIx32, ivar.ivar_type); 5607 if (info->verbose) { 5608 name = get_pointer_32(ivar.ivar_type, offset, xleft, S, info, true); 5609 if (name != nullptr) 5610 outs() << format(" %.*s", xleft, name); 5611 else 5612 outs() << " (not in an __OBJC section)"; 5613 } 5614 outs() << "\n"; 5615 5616 outs() << "\t\t ivar_offset " 5617 << format("0x%08" PRIx32, ivar.ivar_offset) << "\n"; 5618 } 5619 } else { 5620 outs() << " (not in an __OBJC section)\n"; 5621 } 5622 5623 outs() << "\t\t methods " << format("0x%08" PRIx32, objc_class->methodLists); 5624 if (print_method_list(objc_class->methodLists, info)) 5625 outs() << " (not in an __OBJC section)\n"; 5626 5627 outs() << "\t\t cache " << format("0x%08" PRIx32, objc_class->cache) 5628 << "\n"; 5629 5630 outs() << "\t\tprotocols " << format("0x%08" PRIx32, objc_class->protocols); 5631 if (print_protocol_list(objc_class->protocols, 16, info)) 5632 outs() << " (not in an __OBJC section)\n"; 5633 } 5634 5635 static void print_objc_objc_category_t(struct objc_category_t *objc_category, 5636 struct DisassembleInfo *info) { 5637 uint32_t offset, left; 5638 const char *name; 5639 SectionRef S; 5640 5641 outs() << "\t category name " 5642 << format("0x%08" PRIx32, objc_category->category_name); 5643 if (info->verbose) { 5644 name = get_pointer_32(objc_category->category_name, offset, left, S, info, 5645 true); 5646 if (name != nullptr) 5647 outs() << format(" %.*s", left, name); 5648 else 5649 outs() << " (not in an __OBJC section)"; 5650 } 5651 outs() << "\n"; 5652 5653 outs() << "\t\t class name " 5654 << format("0x%08" PRIx32, objc_category->class_name); 5655 if (info->verbose) { 5656 name = 5657 get_pointer_32(objc_category->class_name, offset, left, S, info, true); 5658 if (name != nullptr) 5659 outs() << format(" %.*s", left, name); 5660 else 5661 outs() << " (not in an __OBJC section)"; 5662 } 5663 outs() << "\n"; 5664 5665 outs() << "\t instance methods " 5666 << format("0x%08" PRIx32, objc_category->instance_methods); 5667 if (print_method_list(objc_category->instance_methods, info)) 5668 outs() << " (not in an __OBJC section)\n"; 5669 5670 outs() << "\t class methods " 5671 << format("0x%08" PRIx32, objc_category->class_methods); 5672 if (print_method_list(objc_category->class_methods, info)) 5673 outs() << " (not in an __OBJC section)\n"; 5674 } 5675 5676 static void print_category64_t(uint64_t p, struct DisassembleInfo *info) { 5677 struct category64_t c; 5678 const char *r; 5679 uint32_t offset, xoffset, left; 5680 SectionRef S, xS; 5681 const char *name, *sym_name; 5682 uint64_t n_value; 5683 5684 r = get_pointer_64(p, offset, left, S, info); 5685 if (r == nullptr) 5686 return; 5687 memset(&c, '\0', sizeof(struct category64_t)); 5688 if (left < sizeof(struct category64_t)) { 5689 memcpy(&c, r, left); 5690 outs() << " (category_t entends past the end of the section)\n"; 5691 } else 5692 memcpy(&c, r, sizeof(struct category64_t)); 5693 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5694 swapStruct(c); 5695 5696 outs() << " name "; 5697 sym_name = get_symbol_64(offset + offsetof(struct category64_t, name), S, 5698 info, n_value, c.name); 5699 if (n_value != 0) { 5700 if (info->verbose && sym_name != nullptr) 5701 outs() << sym_name; 5702 else 5703 outs() << format("0x%" PRIx64, n_value); 5704 if (c.name != 0) 5705 outs() << " + " << format("0x%" PRIx64, c.name); 5706 } else 5707 outs() << format("0x%" PRIx64, c.name); 5708 name = get_pointer_64(c.name + n_value, xoffset, left, xS, info); 5709 if (name != nullptr) 5710 outs() << format(" %.*s", left, name); 5711 outs() << "\n"; 5712 5713 outs() << " cls "; 5714 sym_name = get_symbol_64(offset + offsetof(struct category64_t, cls), S, info, 5715 n_value, c.cls); 5716 if (n_value != 0) { 5717 if (info->verbose && sym_name != nullptr) 5718 outs() << sym_name; 5719 else 5720 outs() << format("0x%" PRIx64, n_value); 5721 if (c.cls != 0) 5722 outs() << " + " << format("0x%" PRIx64, c.cls); 5723 } else 5724 outs() << format("0x%" PRIx64, c.cls); 5725 outs() << "\n"; 5726 if (c.cls + n_value != 0) 5727 print_class64_t(c.cls + n_value, info); 5728 5729 outs() << " instanceMethods "; 5730 sym_name = 5731 get_symbol_64(offset + offsetof(struct category64_t, instanceMethods), S, 5732 info, n_value, c.instanceMethods); 5733 if (n_value != 0) { 5734 if (info->verbose && sym_name != nullptr) 5735 outs() << sym_name; 5736 else 5737 outs() << format("0x%" PRIx64, n_value); 5738 if (c.instanceMethods != 0) 5739 outs() << " + " << format("0x%" PRIx64, c.instanceMethods); 5740 } else 5741 outs() << format("0x%" PRIx64, c.instanceMethods); 5742 outs() << "\n"; 5743 if (c.instanceMethods + n_value != 0) 5744 print_method_list64_t(c.instanceMethods + n_value, info, ""); 5745 5746 outs() << " classMethods "; 5747 sym_name = get_symbol_64(offset + offsetof(struct category64_t, classMethods), 5748 S, info, n_value, c.classMethods); 5749 if (n_value != 0) { 5750 if (info->verbose && sym_name != nullptr) 5751 outs() << sym_name; 5752 else 5753 outs() << format("0x%" PRIx64, n_value); 5754 if (c.classMethods != 0) 5755 outs() << " + " << format("0x%" PRIx64, c.classMethods); 5756 } else 5757 outs() << format("0x%" PRIx64, c.classMethods); 5758 outs() << "\n"; 5759 if (c.classMethods + n_value != 0) 5760 print_method_list64_t(c.classMethods + n_value, info, ""); 5761 5762 outs() << " protocols "; 5763 sym_name = get_symbol_64(offset + offsetof(struct category64_t, protocols), S, 5764 info, n_value, c.protocols); 5765 if (n_value != 0) { 5766 if (info->verbose && sym_name != nullptr) 5767 outs() << sym_name; 5768 else 5769 outs() << format("0x%" PRIx64, n_value); 5770 if (c.protocols != 0) 5771 outs() << " + " << format("0x%" PRIx64, c.protocols); 5772 } else 5773 outs() << format("0x%" PRIx64, c.protocols); 5774 outs() << "\n"; 5775 if (c.protocols + n_value != 0) 5776 print_protocol_list64_t(c.protocols + n_value, info); 5777 5778 outs() << "instanceProperties "; 5779 sym_name = 5780 get_symbol_64(offset + offsetof(struct category64_t, instanceProperties), 5781 S, info, n_value, c.instanceProperties); 5782 if (n_value != 0) { 5783 if (info->verbose && sym_name != nullptr) 5784 outs() << sym_name; 5785 else 5786 outs() << format("0x%" PRIx64, n_value); 5787 if (c.instanceProperties != 0) 5788 outs() << " + " << format("0x%" PRIx64, c.instanceProperties); 5789 } else 5790 outs() << format("0x%" PRIx64, c.instanceProperties); 5791 outs() << "\n"; 5792 if (c.instanceProperties + n_value != 0) 5793 print_objc_property_list64(c.instanceProperties + n_value, info); 5794 } 5795 5796 static void print_category32_t(uint32_t p, struct DisassembleInfo *info) { 5797 struct category32_t c; 5798 const char *r; 5799 uint32_t offset, left; 5800 SectionRef S, xS; 5801 const char *name; 5802 5803 r = get_pointer_32(p, offset, left, S, info); 5804 if (r == nullptr) 5805 return; 5806 memset(&c, '\0', sizeof(struct category32_t)); 5807 if (left < sizeof(struct category32_t)) { 5808 memcpy(&c, r, left); 5809 outs() << " (category_t entends past the end of the section)\n"; 5810 } else 5811 memcpy(&c, r, sizeof(struct category32_t)); 5812 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5813 swapStruct(c); 5814 5815 outs() << " name " << format("0x%" PRIx32, c.name); 5816 name = get_symbol_32(offset + offsetof(struct category32_t, name), S, info, 5817 c.name); 5818 if (name) 5819 outs() << " " << name; 5820 outs() << "\n"; 5821 5822 outs() << " cls " << format("0x%" PRIx32, c.cls) << "\n"; 5823 if (c.cls != 0) 5824 print_class32_t(c.cls, info); 5825 outs() << " instanceMethods " << format("0x%" PRIx32, c.instanceMethods) 5826 << "\n"; 5827 if (c.instanceMethods != 0) 5828 print_method_list32_t(c.instanceMethods, info, ""); 5829 outs() << " classMethods " << format("0x%" PRIx32, c.classMethods) 5830 << "\n"; 5831 if (c.classMethods != 0) 5832 print_method_list32_t(c.classMethods, info, ""); 5833 outs() << " protocols " << format("0x%" PRIx32, c.protocols) << "\n"; 5834 if (c.protocols != 0) 5835 print_protocol_list32_t(c.protocols, info); 5836 outs() << "instanceProperties " << format("0x%" PRIx32, c.instanceProperties) 5837 << "\n"; 5838 if (c.instanceProperties != 0) 5839 print_objc_property_list32(c.instanceProperties, info); 5840 } 5841 5842 static void print_message_refs64(SectionRef S, struct DisassembleInfo *info) { 5843 uint32_t i, left, offset, xoffset; 5844 uint64_t p, n_value; 5845 struct message_ref64 mr; 5846 const char *name, *sym_name; 5847 const char *r; 5848 SectionRef xS; 5849 5850 if (S == SectionRef()) 5851 return; 5852 5853 StringRef SectName; 5854 Expected<StringRef> SecNameOrErr = S.getName(); 5855 if (SecNameOrErr) 5856 SectName = *SecNameOrErr; 5857 else 5858 consumeError(SecNameOrErr.takeError()); 5859 5860 DataRefImpl Ref = S.getRawDataRefImpl(); 5861 StringRef SegName = info->O->getSectionFinalSegmentName(Ref); 5862 outs() << "Contents of (" << SegName << "," << SectName << ") section\n"; 5863 offset = 0; 5864 for (i = 0; i < S.getSize(); i += sizeof(struct message_ref64)) { 5865 p = S.getAddress() + i; 5866 r = get_pointer_64(p, offset, left, S, info); 5867 if (r == nullptr) 5868 return; 5869 memset(&mr, '\0', sizeof(struct message_ref64)); 5870 if (left < sizeof(struct message_ref64)) { 5871 memcpy(&mr, r, left); 5872 outs() << " (message_ref entends past the end of the section)\n"; 5873 } else 5874 memcpy(&mr, r, sizeof(struct message_ref64)); 5875 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5876 swapStruct(mr); 5877 5878 outs() << " imp "; 5879 name = get_symbol_64(offset + offsetof(struct message_ref64, imp), S, info, 5880 n_value, mr.imp); 5881 if (n_value != 0) { 5882 outs() << format("0x%" PRIx64, n_value) << " "; 5883 if (mr.imp != 0) 5884 outs() << "+ " << format("0x%" PRIx64, mr.imp) << " "; 5885 } else 5886 outs() << format("0x%" PRIx64, mr.imp) << " "; 5887 if (name != nullptr) 5888 outs() << " " << name; 5889 outs() << "\n"; 5890 5891 outs() << " sel "; 5892 sym_name = get_symbol_64(offset + offsetof(struct message_ref64, sel), S, 5893 info, n_value, mr.sel); 5894 if (n_value != 0) { 5895 if (info->verbose && sym_name != nullptr) 5896 outs() << sym_name; 5897 else 5898 outs() << format("0x%" PRIx64, n_value); 5899 if (mr.sel != 0) 5900 outs() << " + " << format("0x%" PRIx64, mr.sel); 5901 } else 5902 outs() << format("0x%" PRIx64, mr.sel); 5903 name = get_pointer_64(mr.sel + n_value, xoffset, left, xS, info); 5904 if (name != nullptr) 5905 outs() << format(" %.*s", left, name); 5906 outs() << "\n"; 5907 5908 offset += sizeof(struct message_ref64); 5909 } 5910 } 5911 5912 static void print_message_refs32(SectionRef S, struct DisassembleInfo *info) { 5913 uint32_t i, left, offset, xoffset, p; 5914 struct message_ref32 mr; 5915 const char *name, *r; 5916 SectionRef xS; 5917 5918 if (S == SectionRef()) 5919 return; 5920 5921 StringRef SectName; 5922 Expected<StringRef> SecNameOrErr = S.getName(); 5923 if (SecNameOrErr) 5924 SectName = *SecNameOrErr; 5925 else 5926 consumeError(SecNameOrErr.takeError()); 5927 5928 DataRefImpl Ref = S.getRawDataRefImpl(); 5929 StringRef SegName = info->O->getSectionFinalSegmentName(Ref); 5930 outs() << "Contents of (" << SegName << "," << SectName << ") section\n"; 5931 offset = 0; 5932 for (i = 0; i < S.getSize(); i += sizeof(struct message_ref64)) { 5933 p = S.getAddress() + i; 5934 r = get_pointer_32(p, offset, left, S, info); 5935 if (r == nullptr) 5936 return; 5937 memset(&mr, '\0', sizeof(struct message_ref32)); 5938 if (left < sizeof(struct message_ref32)) { 5939 memcpy(&mr, r, left); 5940 outs() << " (message_ref entends past the end of the section)\n"; 5941 } else 5942 memcpy(&mr, r, sizeof(struct message_ref32)); 5943 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5944 swapStruct(mr); 5945 5946 outs() << " imp " << format("0x%" PRIx32, mr.imp); 5947 name = get_symbol_32(offset + offsetof(struct message_ref32, imp), S, info, 5948 mr.imp); 5949 if (name != nullptr) 5950 outs() << " " << name; 5951 outs() << "\n"; 5952 5953 outs() << " sel " << format("0x%" PRIx32, mr.sel); 5954 name = get_pointer_32(mr.sel, xoffset, left, xS, info); 5955 if (name != nullptr) 5956 outs() << " " << name; 5957 outs() << "\n"; 5958 5959 offset += sizeof(struct message_ref32); 5960 } 5961 } 5962 5963 static void print_image_info64(SectionRef S, struct DisassembleInfo *info) { 5964 uint32_t left, offset, swift_version; 5965 uint64_t p; 5966 struct objc_image_info64 o; 5967 const char *r; 5968 5969 if (S == SectionRef()) 5970 return; 5971 5972 StringRef SectName; 5973 Expected<StringRef> SecNameOrErr = S.getName(); 5974 if (SecNameOrErr) 5975 SectName = *SecNameOrErr; 5976 else 5977 consumeError(SecNameOrErr.takeError()); 5978 5979 DataRefImpl Ref = S.getRawDataRefImpl(); 5980 StringRef SegName = info->O->getSectionFinalSegmentName(Ref); 5981 outs() << "Contents of (" << SegName << "," << SectName << ") section\n"; 5982 p = S.getAddress(); 5983 r = get_pointer_64(p, offset, left, S, info); 5984 if (r == nullptr) 5985 return; 5986 memset(&o, '\0', sizeof(struct objc_image_info64)); 5987 if (left < sizeof(struct objc_image_info64)) { 5988 memcpy(&o, r, left); 5989 outs() << " (objc_image_info entends past the end of the section)\n"; 5990 } else 5991 memcpy(&o, r, sizeof(struct objc_image_info64)); 5992 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 5993 swapStruct(o); 5994 outs() << " version " << o.version << "\n"; 5995 outs() << " flags " << format("0x%" PRIx32, o.flags); 5996 if (o.flags & OBJC_IMAGE_IS_REPLACEMENT) 5997 outs() << " OBJC_IMAGE_IS_REPLACEMENT"; 5998 if (o.flags & OBJC_IMAGE_SUPPORTS_GC) 5999 outs() << " OBJC_IMAGE_SUPPORTS_GC"; 6000 if (o.flags & OBJC_IMAGE_IS_SIMULATED) 6001 outs() << " OBJC_IMAGE_IS_SIMULATED"; 6002 if (o.flags & OBJC_IMAGE_HAS_CATEGORY_CLASS_PROPERTIES) 6003 outs() << " OBJC_IMAGE_HAS_CATEGORY_CLASS_PROPERTIES"; 6004 swift_version = (o.flags >> 8) & 0xff; 6005 if (swift_version != 0) { 6006 if (swift_version == 1) 6007 outs() << " Swift 1.0"; 6008 else if (swift_version == 2) 6009 outs() << " Swift 1.1"; 6010 else if(swift_version == 3) 6011 outs() << " Swift 2.0"; 6012 else if(swift_version == 4) 6013 outs() << " Swift 3.0"; 6014 else if(swift_version == 5) 6015 outs() << " Swift 4.0"; 6016 else if(swift_version == 6) 6017 outs() << " Swift 4.1/Swift 4.2"; 6018 else if(swift_version == 7) 6019 outs() << " Swift 5 or later"; 6020 else 6021 outs() << " unknown future Swift version (" << swift_version << ")"; 6022 } 6023 outs() << "\n"; 6024 } 6025 6026 static void print_image_info32(SectionRef S, struct DisassembleInfo *info) { 6027 uint32_t left, offset, swift_version, p; 6028 struct objc_image_info32 o; 6029 const char *r; 6030 6031 if (S == SectionRef()) 6032 return; 6033 6034 StringRef SectName; 6035 Expected<StringRef> SecNameOrErr = S.getName(); 6036 if (SecNameOrErr) 6037 SectName = *SecNameOrErr; 6038 else 6039 consumeError(SecNameOrErr.takeError()); 6040 6041 DataRefImpl Ref = S.getRawDataRefImpl(); 6042 StringRef SegName = info->O->getSectionFinalSegmentName(Ref); 6043 outs() << "Contents of (" << SegName << "," << SectName << ") section\n"; 6044 p = S.getAddress(); 6045 r = get_pointer_32(p, offset, left, S, info); 6046 if (r == nullptr) 6047 return; 6048 memset(&o, '\0', sizeof(struct objc_image_info32)); 6049 if (left < sizeof(struct objc_image_info32)) { 6050 memcpy(&o, r, left); 6051 outs() << " (objc_image_info entends past the end of the section)\n"; 6052 } else 6053 memcpy(&o, r, sizeof(struct objc_image_info32)); 6054 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 6055 swapStruct(o); 6056 outs() << " version " << o.version << "\n"; 6057 outs() << " flags " << format("0x%" PRIx32, o.flags); 6058 if (o.flags & OBJC_IMAGE_IS_REPLACEMENT) 6059 outs() << " OBJC_IMAGE_IS_REPLACEMENT"; 6060 if (o.flags & OBJC_IMAGE_SUPPORTS_GC) 6061 outs() << " OBJC_IMAGE_SUPPORTS_GC"; 6062 swift_version = (o.flags >> 8) & 0xff; 6063 if (swift_version != 0) { 6064 if (swift_version == 1) 6065 outs() << " Swift 1.0"; 6066 else if (swift_version == 2) 6067 outs() << " Swift 1.1"; 6068 else if(swift_version == 3) 6069 outs() << " Swift 2.0"; 6070 else if(swift_version == 4) 6071 outs() << " Swift 3.0"; 6072 else if(swift_version == 5) 6073 outs() << " Swift 4.0"; 6074 else if(swift_version == 6) 6075 outs() << " Swift 4.1/Swift 4.2"; 6076 else if(swift_version == 7) 6077 outs() << " Swift 5 or later"; 6078 else 6079 outs() << " unknown future Swift version (" << swift_version << ")"; 6080 } 6081 outs() << "\n"; 6082 } 6083 6084 static void print_image_info(SectionRef S, struct DisassembleInfo *info) { 6085 uint32_t left, offset, p; 6086 struct imageInfo_t o; 6087 const char *r; 6088 6089 StringRef SectName; 6090 Expected<StringRef> SecNameOrErr = S.getName(); 6091 if (SecNameOrErr) 6092 SectName = *SecNameOrErr; 6093 else 6094 consumeError(SecNameOrErr.takeError()); 6095 6096 DataRefImpl Ref = S.getRawDataRefImpl(); 6097 StringRef SegName = info->O->getSectionFinalSegmentName(Ref); 6098 outs() << "Contents of (" << SegName << "," << SectName << ") section\n"; 6099 p = S.getAddress(); 6100 r = get_pointer_32(p, offset, left, S, info); 6101 if (r == nullptr) 6102 return; 6103 memset(&o, '\0', sizeof(struct imageInfo_t)); 6104 if (left < sizeof(struct imageInfo_t)) { 6105 memcpy(&o, r, left); 6106 outs() << " (imageInfo entends past the end of the section)\n"; 6107 } else 6108 memcpy(&o, r, sizeof(struct imageInfo_t)); 6109 if (info->O->isLittleEndian() != sys::IsLittleEndianHost) 6110 swapStruct(o); 6111 outs() << " version " << o.version << "\n"; 6112 outs() << " flags " << format("0x%" PRIx32, o.flags); 6113 if (o.flags & 0x1) 6114 outs() << " F&C"; 6115 if (o.flags & 0x2) 6116 outs() << " GC"; 6117 if (o.flags & 0x4) 6118 outs() << " GC-only"; 6119 else 6120 outs() << " RR"; 6121 outs() << "\n"; 6122 } 6123 6124 static void printObjc2_64bit_MetaData(MachOObjectFile *O, bool verbose) { 6125 SymbolAddressMap AddrMap; 6126 if (verbose) 6127 CreateSymbolAddressMap(O, &AddrMap); 6128 6129 std::vector<SectionRef> Sections; 6130 append_range(Sections, O->sections()); 6131 6132 struct DisassembleInfo info(O, &AddrMap, &Sections, verbose); 6133 6134 SectionRef CL = get_section(O, "__OBJC2", "__class_list"); 6135 if (CL == SectionRef()) 6136 CL = get_section(O, "__DATA", "__objc_classlist"); 6137 if (CL == SectionRef()) 6138 CL = get_section(O, "__DATA_CONST", "__objc_classlist"); 6139 if (CL == SectionRef()) 6140 CL = get_section(O, "__DATA_DIRTY", "__objc_classlist"); 6141 info.S = CL; 6142 walk_pointer_list_64("class", CL, O, &info, print_class64_t); 6143 6144 SectionRef CR = get_section(O, "__OBJC2", "__class_refs"); 6145 if (CR == SectionRef()) 6146 CR = get_section(O, "__DATA", "__objc_classrefs"); 6147 if (CR == SectionRef()) 6148 CR = get_section(O, "__DATA_CONST", "__objc_classrefs"); 6149 if (CR == SectionRef()) 6150 CR = get_section(O, "__DATA_DIRTY", "__objc_classrefs"); 6151 info.S = CR; 6152 walk_pointer_list_64("class refs", CR, O, &info, nullptr); 6153 6154 SectionRef SR = get_section(O, "__OBJC2", "__super_refs"); 6155 if (SR == SectionRef()) 6156 SR = get_section(O, "__DATA", "__objc_superrefs"); 6157 if (SR == SectionRef()) 6158 SR = get_section(O, "__DATA_CONST", "__objc_superrefs"); 6159 if (SR == SectionRef()) 6160 SR = get_section(O, "__DATA_DIRTY", "__objc_superrefs"); 6161 info.S = SR; 6162 walk_pointer_list_64("super refs", SR, O, &info, nullptr); 6163 6164 SectionRef CA = get_section(O, "__OBJC2", "__category_list"); 6165 if (CA == SectionRef()) 6166 CA = get_section(O, "__DATA", "__objc_catlist"); 6167 if (CA == SectionRef()) 6168 CA = get_section(O, "__DATA_CONST", "__objc_catlist"); 6169 if (CA == SectionRef()) 6170 CA = get_section(O, "__DATA_DIRTY", "__objc_catlist"); 6171 info.S = CA; 6172 walk_pointer_list_64("category", CA, O, &info, print_category64_t); 6173 6174 SectionRef PL = get_section(O, "__OBJC2", "__protocol_list"); 6175 if (PL == SectionRef()) 6176 PL = get_section(O, "__DATA", "__objc_protolist"); 6177 if (PL == SectionRef()) 6178 PL = get_section(O, "__DATA_CONST", "__objc_protolist"); 6179 if (PL == SectionRef()) 6180 PL = get_section(O, "__DATA_DIRTY", "__objc_protolist"); 6181 info.S = PL; 6182 walk_pointer_list_64("protocol", PL, O, &info, nullptr); 6183 6184 SectionRef MR = get_section(O, "__OBJC2", "__message_refs"); 6185 if (MR == SectionRef()) 6186 MR = get_section(O, "__DATA", "__objc_msgrefs"); 6187 if (MR == SectionRef()) 6188 MR = get_section(O, "__DATA_CONST", "__objc_msgrefs"); 6189 if (MR == SectionRef()) 6190 MR = get_section(O, "__DATA_DIRTY", "__objc_msgrefs"); 6191 info.S = MR; 6192 print_message_refs64(MR, &info); 6193 6194 SectionRef II = get_section(O, "__OBJC2", "__image_info"); 6195 if (II == SectionRef()) 6196 II = get_section(O, "__DATA", "__objc_imageinfo"); 6197 if (II == SectionRef()) 6198 II = get_section(O, "__DATA_CONST", "__objc_imageinfo"); 6199 if (II == SectionRef()) 6200 II = get_section(O, "__DATA_DIRTY", "__objc_imageinfo"); 6201 info.S = II; 6202 print_image_info64(II, &info); 6203 } 6204 6205 static void printObjc2_32bit_MetaData(MachOObjectFile *O, bool verbose) { 6206 SymbolAddressMap AddrMap; 6207 if (verbose) 6208 CreateSymbolAddressMap(O, &AddrMap); 6209 6210 std::vector<SectionRef> Sections; 6211 append_range(Sections, O->sections()); 6212 6213 struct DisassembleInfo info(O, &AddrMap, &Sections, verbose); 6214 6215 SectionRef CL = get_section(O, "__OBJC2", "__class_list"); 6216 if (CL == SectionRef()) 6217 CL = get_section(O, "__DATA", "__objc_classlist"); 6218 if (CL == SectionRef()) 6219 CL = get_section(O, "__DATA_CONST", "__objc_classlist"); 6220 if (CL == SectionRef()) 6221 CL = get_section(O, "__DATA_DIRTY", "__objc_classlist"); 6222 info.S = CL; 6223 walk_pointer_list_32("class", CL, O, &info, print_class32_t); 6224 6225 SectionRef CR = get_section(O, "__OBJC2", "__class_refs"); 6226 if (CR == SectionRef()) 6227 CR = get_section(O, "__DATA", "__objc_classrefs"); 6228 if (CR == SectionRef()) 6229 CR = get_section(O, "__DATA_CONST", "__objc_classrefs"); 6230 if (CR == SectionRef()) 6231 CR = get_section(O, "__DATA_DIRTY", "__objc_classrefs"); 6232 info.S = CR; 6233 walk_pointer_list_32("class refs", CR, O, &info, nullptr); 6234 6235 SectionRef SR = get_section(O, "__OBJC2", "__super_refs"); 6236 if (SR == SectionRef()) 6237 SR = get_section(O, "__DATA", "__objc_superrefs"); 6238 if (SR == SectionRef()) 6239 SR = get_section(O, "__DATA_CONST", "__objc_superrefs"); 6240 if (SR == SectionRef()) 6241 SR = get_section(O, "__DATA_DIRTY", "__objc_superrefs"); 6242 info.S = SR; 6243 walk_pointer_list_32("super refs", SR, O, &info, nullptr); 6244 6245 SectionRef CA = get_section(O, "__OBJC2", "__category_list"); 6246 if (CA == SectionRef()) 6247 CA = get_section(O, "__DATA", "__objc_catlist"); 6248 if (CA == SectionRef()) 6249 CA = get_section(O, "__DATA_CONST", "__objc_catlist"); 6250 if (CA == SectionRef()) 6251 CA = get_section(O, "__DATA_DIRTY", "__objc_catlist"); 6252 info.S = CA; 6253 walk_pointer_list_32("category", CA, O, &info, print_category32_t); 6254 6255 SectionRef PL = get_section(O, "__OBJC2", "__protocol_list"); 6256 if (PL == SectionRef()) 6257 PL = get_section(O, "__DATA", "__objc_protolist"); 6258 if (PL == SectionRef()) 6259 PL = get_section(O, "__DATA_CONST", "__objc_protolist"); 6260 if (PL == SectionRef()) 6261 PL = get_section(O, "__DATA_DIRTY", "__objc_protolist"); 6262 info.S = PL; 6263 walk_pointer_list_32("protocol", PL, O, &info, nullptr); 6264 6265 SectionRef MR = get_section(O, "__OBJC2", "__message_refs"); 6266 if (MR == SectionRef()) 6267 MR = get_section(O, "__DATA", "__objc_msgrefs"); 6268 if (MR == SectionRef()) 6269 MR = get_section(O, "__DATA_CONST", "__objc_msgrefs"); 6270 if (MR == SectionRef()) 6271 MR = get_section(O, "__DATA_DIRTY", "__objc_msgrefs"); 6272 info.S = MR; 6273 print_message_refs32(MR, &info); 6274 6275 SectionRef II = get_section(O, "__OBJC2", "__image_info"); 6276 if (II == SectionRef()) 6277 II = get_section(O, "__DATA", "__objc_imageinfo"); 6278 if (II == SectionRef()) 6279 II = get_section(O, "__DATA_CONST", "__objc_imageinfo"); 6280 if (II == SectionRef()) 6281 II = get_section(O, "__DATA_DIRTY", "__objc_imageinfo"); 6282 info.S = II; 6283 print_image_info32(II, &info); 6284 } 6285 6286 static bool printObjc1_32bit_MetaData(MachOObjectFile *O, bool verbose) { 6287 uint32_t i, j, p, offset, xoffset, left, defs_left, def; 6288 const char *r, *name, *defs; 6289 struct objc_module_t module; 6290 SectionRef S, xS; 6291 struct objc_symtab_t symtab; 6292 struct objc_class_t objc_class; 6293 struct objc_category_t objc_category; 6294 6295 outs() << "Objective-C segment\n"; 6296 S = get_section(O, "__OBJC", "__module_info"); 6297 if (S == SectionRef()) 6298 return false; 6299 6300 SymbolAddressMap AddrMap; 6301 if (verbose) 6302 CreateSymbolAddressMap(O, &AddrMap); 6303 6304 std::vector<SectionRef> Sections; 6305 append_range(Sections, O->sections()); 6306 6307 struct DisassembleInfo info(O, &AddrMap, &Sections, verbose); 6308 6309 for (i = 0; i < S.getSize(); i += sizeof(struct objc_module_t)) { 6310 p = S.getAddress() + i; 6311 r = get_pointer_32(p, offset, left, S, &info, true); 6312 if (r == nullptr) 6313 return true; 6314 memset(&module, '\0', sizeof(struct objc_module_t)); 6315 if (left < sizeof(struct objc_module_t)) { 6316 memcpy(&module, r, left); 6317 outs() << " (module extends past end of __module_info section)\n"; 6318 } else 6319 memcpy(&module, r, sizeof(struct objc_module_t)); 6320 if (O->isLittleEndian() != sys::IsLittleEndianHost) 6321 swapStruct(module); 6322 6323 outs() << "Module " << format("0x%" PRIx32, p) << "\n"; 6324 outs() << " version " << module.version << "\n"; 6325 outs() << " size " << module.size << "\n"; 6326 outs() << " name "; 6327 name = get_pointer_32(module.name, xoffset, left, xS, &info, true); 6328 if (name != nullptr) 6329 outs() << format("%.*s", left, name); 6330 else 6331 outs() << format("0x%08" PRIx32, module.name) 6332 << "(not in an __OBJC section)"; 6333 outs() << "\n"; 6334 6335 r = get_pointer_32(module.symtab, xoffset, left, xS, &info, true); 6336 if (module.symtab == 0 || r == nullptr) { 6337 outs() << " symtab " << format("0x%08" PRIx32, module.symtab) 6338 << " (not in an __OBJC section)\n"; 6339 continue; 6340 } 6341 outs() << " symtab " << format("0x%08" PRIx32, module.symtab) << "\n"; 6342 memset(&symtab, '\0', sizeof(struct objc_symtab_t)); 6343 defs_left = 0; 6344 defs = nullptr; 6345 if (left < sizeof(struct objc_symtab_t)) { 6346 memcpy(&symtab, r, left); 6347 outs() << "\tsymtab extends past end of an __OBJC section)\n"; 6348 } else { 6349 memcpy(&symtab, r, sizeof(struct objc_symtab_t)); 6350 if (left > sizeof(struct objc_symtab_t)) { 6351 defs_left = left - sizeof(struct objc_symtab_t); 6352 defs = r + sizeof(struct objc_symtab_t); 6353 } 6354 } 6355 if (O->isLittleEndian() != sys::IsLittleEndianHost) 6356 swapStruct(symtab); 6357 6358 outs() << "\tsel_ref_cnt " << symtab.sel_ref_cnt << "\n"; 6359 r = get_pointer_32(symtab.refs, xoffset, left, xS, &info, true); 6360 outs() << "\trefs " << format("0x%08" PRIx32, symtab.refs); 6361 if (r == nullptr) 6362 outs() << " (not in an __OBJC section)"; 6363 outs() << "\n"; 6364 outs() << "\tcls_def_cnt " << symtab.cls_def_cnt << "\n"; 6365 outs() << "\tcat_def_cnt " << symtab.cat_def_cnt << "\n"; 6366 if (symtab.cls_def_cnt > 0) 6367 outs() << "\tClass Definitions\n"; 6368 for (j = 0; j < symtab.cls_def_cnt; j++) { 6369 if ((j + 1) * sizeof(uint32_t) > defs_left) { 6370 outs() << "\t(remaining class defs entries entends past the end of the " 6371 << "section)\n"; 6372 break; 6373 } 6374 memcpy(&def, defs + j * sizeof(uint32_t), sizeof(uint32_t)); 6375 if (O->isLittleEndian() != sys::IsLittleEndianHost) 6376 sys::swapByteOrder(def); 6377 6378 r = get_pointer_32(def, xoffset, left, xS, &info, true); 6379 outs() << "\tdefs[" << j << "] " << format("0x%08" PRIx32, def); 6380 if (r != nullptr) { 6381 if (left > sizeof(struct objc_class_t)) { 6382 outs() << "\n"; 6383 memcpy(&objc_class, r, sizeof(struct objc_class_t)); 6384 } else { 6385 outs() << " (entends past the end of the section)\n"; 6386 memset(&objc_class, '\0', sizeof(struct objc_class_t)); 6387 memcpy(&objc_class, r, left); 6388 } 6389 if (O->isLittleEndian() != sys::IsLittleEndianHost) 6390 swapStruct(objc_class); 6391 print_objc_class_t(&objc_class, &info); 6392 } else { 6393 outs() << "(not in an __OBJC section)\n"; 6394 } 6395 6396 if (CLS_GETINFO(&objc_class, CLS_CLASS)) { 6397 outs() << "\tMeta Class"; 6398 r = get_pointer_32(objc_class.isa, xoffset, left, xS, &info, true); 6399 if (r != nullptr) { 6400 if (left > sizeof(struct objc_class_t)) { 6401 outs() << "\n"; 6402 memcpy(&objc_class, r, sizeof(struct objc_class_t)); 6403 } else { 6404 outs() << " (entends past the end of the section)\n"; 6405 memset(&objc_class, '\0', sizeof(struct objc_class_t)); 6406 memcpy(&objc_class, r, left); 6407 } 6408 if (O->isLittleEndian() != sys::IsLittleEndianHost) 6409 swapStruct(objc_class); 6410 print_objc_class_t(&objc_class, &info); 6411 } else { 6412 outs() << "(not in an __OBJC section)\n"; 6413 } 6414 } 6415 } 6416 if (symtab.cat_def_cnt > 0) 6417 outs() << "\tCategory Definitions\n"; 6418 for (j = 0; j < symtab.cat_def_cnt; j++) { 6419 if ((j + symtab.cls_def_cnt + 1) * sizeof(uint32_t) > defs_left) { 6420 outs() << "\t(remaining category defs entries entends past the end of " 6421 << "the section)\n"; 6422 break; 6423 } 6424 memcpy(&def, defs + (j + symtab.cls_def_cnt) * sizeof(uint32_t), 6425 sizeof(uint32_t)); 6426 if (O->isLittleEndian() != sys::IsLittleEndianHost) 6427 sys::swapByteOrder(def); 6428 6429 r = get_pointer_32(def, xoffset, left, xS, &info, true); 6430 outs() << "\tdefs[" << j + symtab.cls_def_cnt << "] " 6431 << format("0x%08" PRIx32, def); 6432 if (r != nullptr) { 6433 if (left > sizeof(struct objc_category_t)) { 6434 outs() << "\n"; 6435 memcpy(&objc_category, r, sizeof(struct objc_category_t)); 6436 } else { 6437 outs() << " (entends past the end of the section)\n"; 6438 memset(&objc_category, '\0', sizeof(struct objc_category_t)); 6439 memcpy(&objc_category, r, left); 6440 } 6441 if (O->isLittleEndian() != sys::IsLittleEndianHost) 6442 swapStruct(objc_category); 6443 print_objc_objc_category_t(&objc_category, &info); 6444 } else { 6445 outs() << "(not in an __OBJC section)\n"; 6446 } 6447 } 6448 } 6449 const SectionRef II = get_section(O, "__OBJC", "__image_info"); 6450 if (II != SectionRef()) 6451 print_image_info(II, &info); 6452 6453 return true; 6454 } 6455 6456 static void DumpProtocolSection(MachOObjectFile *O, const char *sect, 6457 uint32_t size, uint32_t addr) { 6458 SymbolAddressMap AddrMap; 6459 CreateSymbolAddressMap(O, &AddrMap); 6460 6461 std::vector<SectionRef> Sections; 6462 append_range(Sections, O->sections()); 6463 6464 struct DisassembleInfo info(O, &AddrMap, &Sections, true); 6465 6466 const char *p; 6467 struct objc_protocol_t protocol; 6468 uint32_t left, paddr; 6469 for (p = sect; p < sect + size; p += sizeof(struct objc_protocol_t)) { 6470 memset(&protocol, '\0', sizeof(struct objc_protocol_t)); 6471 left = size - (p - sect); 6472 if (left < sizeof(struct objc_protocol_t)) { 6473 outs() << "Protocol extends past end of __protocol section\n"; 6474 memcpy(&protocol, p, left); 6475 } else 6476 memcpy(&protocol, p, sizeof(struct objc_protocol_t)); 6477 if (O->isLittleEndian() != sys::IsLittleEndianHost) 6478 swapStruct(protocol); 6479 paddr = addr + (p - sect); 6480 outs() << "Protocol " << format("0x%" PRIx32, paddr); 6481 if (print_protocol(paddr, 0, &info)) 6482 outs() << "(not in an __OBJC section)\n"; 6483 } 6484 } 6485 6486 #ifdef LLVM_HAVE_LIBXAR 6487 static inline void swapStruct(struct xar_header &xar) { 6488 sys::swapByteOrder(xar.magic); 6489 sys::swapByteOrder(xar.size); 6490 sys::swapByteOrder(xar.version); 6491 sys::swapByteOrder(xar.toc_length_compressed); 6492 sys::swapByteOrder(xar.toc_length_uncompressed); 6493 sys::swapByteOrder(xar.cksum_alg); 6494 } 6495 6496 static void PrintModeVerbose(uint32_t mode) { 6497 switch(mode & S_IFMT){ 6498 case S_IFDIR: 6499 outs() << "d"; 6500 break; 6501 case S_IFCHR: 6502 outs() << "c"; 6503 break; 6504 case S_IFBLK: 6505 outs() << "b"; 6506 break; 6507 case S_IFREG: 6508 outs() << "-"; 6509 break; 6510 case S_IFLNK: 6511 outs() << "l"; 6512 break; 6513 case S_IFSOCK: 6514 outs() << "s"; 6515 break; 6516 default: 6517 outs() << "?"; 6518 break; 6519 } 6520 6521 /* owner permissions */ 6522 if(mode & S_IREAD) 6523 outs() << "r"; 6524 else 6525 outs() << "-"; 6526 if(mode & S_IWRITE) 6527 outs() << "w"; 6528 else 6529 outs() << "-"; 6530 if(mode & S_ISUID) 6531 outs() << "s"; 6532 else if(mode & S_IEXEC) 6533 outs() << "x"; 6534 else 6535 outs() << "-"; 6536 6537 /* group permissions */ 6538 if(mode & (S_IREAD >> 3)) 6539 outs() << "r"; 6540 else 6541 outs() << "-"; 6542 if(mode & (S_IWRITE >> 3)) 6543 outs() << "w"; 6544 else 6545 outs() << "-"; 6546 if(mode & S_ISGID) 6547 outs() << "s"; 6548 else if(mode & (S_IEXEC >> 3)) 6549 outs() << "x"; 6550 else 6551 outs() << "-"; 6552 6553 /* other permissions */ 6554 if(mode & (S_IREAD >> 6)) 6555 outs() << "r"; 6556 else 6557 outs() << "-"; 6558 if(mode & (S_IWRITE >> 6)) 6559 outs() << "w"; 6560 else 6561 outs() << "-"; 6562 if(mode & S_ISVTX) 6563 outs() << "t"; 6564 else if(mode & (S_IEXEC >> 6)) 6565 outs() << "x"; 6566 else 6567 outs() << "-"; 6568 } 6569 6570 static void PrintXarFilesSummary(const char *XarFilename, xar_t xar) { 6571 xar_file_t xf; 6572 const char *key, *type, *mode, *user, *group, *size, *mtime, *name, *m; 6573 char *endp; 6574 uint32_t mode_value; 6575 6576 ScopedXarIter xi; 6577 if (!xi) { 6578 WithColor::error(errs(), "llvm-objdump") 6579 << "can't obtain an xar iterator for xar archive " << XarFilename 6580 << "\n"; 6581 return; 6582 } 6583 6584 // Go through the xar's files. 6585 for (xf = xar_file_first(xar, xi); xf; xf = xar_file_next(xi)) { 6586 ScopedXarIter xp; 6587 if(!xp){ 6588 WithColor::error(errs(), "llvm-objdump") 6589 << "can't obtain an xar iterator for xar archive " << XarFilename 6590 << "\n"; 6591 return; 6592 } 6593 type = nullptr; 6594 mode = nullptr; 6595 user = nullptr; 6596 group = nullptr; 6597 size = nullptr; 6598 mtime = nullptr; 6599 name = nullptr; 6600 for(key = xar_prop_first(xf, xp); key; key = xar_prop_next(xp)){ 6601 const char *val = nullptr; 6602 xar_prop_get(xf, key, &val); 6603 #if 0 // Useful for debugging. 6604 outs() << "key: " << key << " value: " << val << "\n"; 6605 #endif 6606 if(strcmp(key, "type") == 0) 6607 type = val; 6608 if(strcmp(key, "mode") == 0) 6609 mode = val; 6610 if(strcmp(key, "user") == 0) 6611 user = val; 6612 if(strcmp(key, "group") == 0) 6613 group = val; 6614 if(strcmp(key, "data/size") == 0) 6615 size = val; 6616 if(strcmp(key, "mtime") == 0) 6617 mtime = val; 6618 if(strcmp(key, "name") == 0) 6619 name = val; 6620 } 6621 if(mode != nullptr){ 6622 mode_value = strtoul(mode, &endp, 8); 6623 if(*endp != '\0') 6624 outs() << "(mode: \"" << mode << "\" contains non-octal chars) "; 6625 if(strcmp(type, "file") == 0) 6626 mode_value |= S_IFREG; 6627 PrintModeVerbose(mode_value); 6628 outs() << " "; 6629 } 6630 if(user != nullptr) 6631 outs() << format("%10s/", user); 6632 if(group != nullptr) 6633 outs() << format("%-10s ", group); 6634 if(size != nullptr) 6635 outs() << format("%7s ", size); 6636 if(mtime != nullptr){ 6637 for(m = mtime; *m != 'T' && *m != '\0'; m++) 6638 outs() << *m; 6639 if(*m == 'T') 6640 m++; 6641 outs() << " "; 6642 for( ; *m != 'Z' && *m != '\0'; m++) 6643 outs() << *m; 6644 outs() << " "; 6645 } 6646 if(name != nullptr) 6647 outs() << name; 6648 outs() << "\n"; 6649 } 6650 } 6651 6652 static void DumpBitcodeSection(MachOObjectFile *O, const char *sect, 6653 uint32_t size, bool verbose, 6654 bool PrintXarHeader, bool PrintXarFileHeaders, 6655 std::string XarMemberName) { 6656 if(size < sizeof(struct xar_header)) { 6657 outs() << "size of (__LLVM,__bundle) section too small (smaller than size " 6658 "of struct xar_header)\n"; 6659 return; 6660 } 6661 struct xar_header XarHeader; 6662 memcpy(&XarHeader, sect, sizeof(struct xar_header)); 6663 if (sys::IsLittleEndianHost) 6664 swapStruct(XarHeader); 6665 if (PrintXarHeader) { 6666 if (!XarMemberName.empty()) 6667 outs() << "In xar member " << XarMemberName << ": "; 6668 else 6669 outs() << "For (__LLVM,__bundle) section: "; 6670 outs() << "xar header\n"; 6671 if (XarHeader.magic == XAR_HEADER_MAGIC) 6672 outs() << " magic XAR_HEADER_MAGIC\n"; 6673 else 6674 outs() << " magic " 6675 << format_hex(XarHeader.magic, 10, true) 6676 << " (not XAR_HEADER_MAGIC)\n"; 6677 outs() << " size " << XarHeader.size << "\n"; 6678 outs() << " version " << XarHeader.version << "\n"; 6679 outs() << " toc_length_compressed " << XarHeader.toc_length_compressed 6680 << "\n"; 6681 outs() << "toc_length_uncompressed " << XarHeader.toc_length_uncompressed 6682 << "\n"; 6683 outs() << " cksum_alg "; 6684 switch (XarHeader.cksum_alg) { 6685 case XAR_CKSUM_NONE: 6686 outs() << "XAR_CKSUM_NONE\n"; 6687 break; 6688 case XAR_CKSUM_SHA1: 6689 outs() << "XAR_CKSUM_SHA1\n"; 6690 break; 6691 case XAR_CKSUM_MD5: 6692 outs() << "XAR_CKSUM_MD5\n"; 6693 break; 6694 #ifdef XAR_CKSUM_SHA256 6695 case XAR_CKSUM_SHA256: 6696 outs() << "XAR_CKSUM_SHA256\n"; 6697 break; 6698 #endif 6699 #ifdef XAR_CKSUM_SHA512 6700 case XAR_CKSUM_SHA512: 6701 outs() << "XAR_CKSUM_SHA512\n"; 6702 break; 6703 #endif 6704 default: 6705 outs() << XarHeader.cksum_alg << "\n"; 6706 } 6707 } 6708 6709 SmallString<128> XarFilename; 6710 int FD; 6711 std::error_code XarEC = 6712 sys::fs::createTemporaryFile("llvm-objdump", "xar", FD, XarFilename); 6713 if (XarEC) { 6714 WithColor::error(errs(), "llvm-objdump") << XarEC.message() << "\n"; 6715 return; 6716 } 6717 ToolOutputFile XarFile(XarFilename, FD); 6718 raw_fd_ostream &XarOut = XarFile.os(); 6719 StringRef XarContents(sect, size); 6720 XarOut << XarContents; 6721 XarOut.close(); 6722 if (XarOut.has_error()) 6723 return; 6724 6725 ScopedXarFile xar(XarFilename.c_str(), READ); 6726 if (!xar) { 6727 WithColor::error(errs(), "llvm-objdump") 6728 << "can't create temporary xar archive " << XarFilename << "\n"; 6729 return; 6730 } 6731 6732 SmallString<128> TocFilename; 6733 std::error_code TocEC = 6734 sys::fs::createTemporaryFile("llvm-objdump", "toc", TocFilename); 6735 if (TocEC) { 6736 WithColor::error(errs(), "llvm-objdump") << TocEC.message() << "\n"; 6737 return; 6738 } 6739 xar_serialize(xar, TocFilename.c_str()); 6740 6741 if (PrintXarFileHeaders) { 6742 if (!XarMemberName.empty()) 6743 outs() << "In xar member " << XarMemberName << ": "; 6744 else 6745 outs() << "For (__LLVM,__bundle) section: "; 6746 outs() << "xar archive files:\n"; 6747 PrintXarFilesSummary(XarFilename.c_str(), xar); 6748 } 6749 6750 ErrorOr<std::unique_ptr<MemoryBuffer>> FileOrErr = 6751 MemoryBuffer::getFileOrSTDIN(TocFilename.c_str()); 6752 if (std::error_code EC = FileOrErr.getError()) { 6753 WithColor::error(errs(), "llvm-objdump") << EC.message() << "\n"; 6754 return; 6755 } 6756 std::unique_ptr<MemoryBuffer> &Buffer = FileOrErr.get(); 6757 6758 if (!XarMemberName.empty()) 6759 outs() << "In xar member " << XarMemberName << ": "; 6760 else 6761 outs() << "For (__LLVM,__bundle) section: "; 6762 outs() << "xar table of contents:\n"; 6763 outs() << Buffer->getBuffer() << "\n"; 6764 6765 // TODO: Go through the xar's files. 6766 ScopedXarIter xi; 6767 if(!xi){ 6768 WithColor::error(errs(), "llvm-objdump") 6769 << "can't obtain an xar iterator for xar archive " 6770 << XarFilename.c_str() << "\n"; 6771 return; 6772 } 6773 for(xar_file_t xf = xar_file_first(xar, xi); xf; xf = xar_file_next(xi)){ 6774 const char *key; 6775 const char *member_name, *member_type, *member_size_string; 6776 size_t member_size; 6777 6778 ScopedXarIter xp; 6779 if(!xp){ 6780 WithColor::error(errs(), "llvm-objdump") 6781 << "can't obtain an xar iterator for xar archive " 6782 << XarFilename.c_str() << "\n"; 6783 return; 6784 } 6785 member_name = NULL; 6786 member_type = NULL; 6787 member_size_string = NULL; 6788 for(key = xar_prop_first(xf, xp); key; key = xar_prop_next(xp)){ 6789 const char *val = nullptr; 6790 xar_prop_get(xf, key, &val); 6791 #if 0 // Useful for debugging. 6792 outs() << "key: " << key << " value: " << val << "\n"; 6793 #endif 6794 if (strcmp(key, "name") == 0) 6795 member_name = val; 6796 if (strcmp(key, "type") == 0) 6797 member_type = val; 6798 if (strcmp(key, "data/size") == 0) 6799 member_size_string = val; 6800 } 6801 /* 6802 * If we find a file with a name, date/size and type properties 6803 * and with the type being "file" see if that is a xar file. 6804 */ 6805 if (member_name != NULL && member_type != NULL && 6806 strcmp(member_type, "file") == 0 && 6807 member_size_string != NULL){ 6808 // Extract the file into a buffer. 6809 char *endptr; 6810 member_size = strtoul(member_size_string, &endptr, 10); 6811 if (*endptr == '\0' && member_size != 0) { 6812 char *buffer; 6813 if (xar_extract_tobuffersz(xar, xf, &buffer, &member_size) == 0) { 6814 #if 0 // Useful for debugging. 6815 outs() << "xar member: " << member_name << " extracted\n"; 6816 #endif 6817 // Set the XarMemberName we want to see printed in the header. 6818 std::string OldXarMemberName; 6819 // If XarMemberName is already set this is nested. So 6820 // save the old name and create the nested name. 6821 if (!XarMemberName.empty()) { 6822 OldXarMemberName = XarMemberName; 6823 XarMemberName = 6824 (Twine("[") + XarMemberName + "]" + member_name).str(); 6825 } else { 6826 OldXarMemberName = ""; 6827 XarMemberName = member_name; 6828 } 6829 // See if this is could be a xar file (nested). 6830 if (member_size >= sizeof(struct xar_header)) { 6831 #if 0 // Useful for debugging. 6832 outs() << "could be a xar file: " << member_name << "\n"; 6833 #endif 6834 memcpy((char *)&XarHeader, buffer, sizeof(struct xar_header)); 6835 if (sys::IsLittleEndianHost) 6836 swapStruct(XarHeader); 6837 if (XarHeader.magic == XAR_HEADER_MAGIC) 6838 DumpBitcodeSection(O, buffer, member_size, verbose, 6839 PrintXarHeader, PrintXarFileHeaders, 6840 XarMemberName); 6841 } 6842 XarMemberName = OldXarMemberName; 6843 delete buffer; 6844 } 6845 } 6846 } 6847 } 6848 } 6849 #endif // defined(LLVM_HAVE_LIBXAR) 6850 6851 static void printObjcMetaData(MachOObjectFile *O, bool verbose) { 6852 if (O->is64Bit()) 6853 printObjc2_64bit_MetaData(O, verbose); 6854 else { 6855 MachO::mach_header H; 6856 H = O->getHeader(); 6857 if (H.cputype == MachO::CPU_TYPE_ARM) 6858 printObjc2_32bit_MetaData(O, verbose); 6859 else { 6860 // This is the 32-bit non-arm cputype case. Which is normally 6861 // the first Objective-C ABI. But it may be the case of a 6862 // binary for the iOS simulator which is the second Objective-C 6863 // ABI. In that case printObjc1_32bit_MetaData() will determine that 6864 // and return false. 6865 if (!printObjc1_32bit_MetaData(O, verbose)) 6866 printObjc2_32bit_MetaData(O, verbose); 6867 } 6868 } 6869 } 6870 6871 // GuessLiteralPointer returns a string which for the item in the Mach-O file 6872 // for the address passed in as ReferenceValue for printing as a comment with 6873 // the instruction and also returns the corresponding type of that item 6874 // indirectly through ReferenceType. 6875 // 6876 // If ReferenceValue is an address of literal cstring then a pointer to the 6877 // cstring is returned and ReferenceType is set to 6878 // LLVMDisassembler_ReferenceType_Out_LitPool_CstrAddr . 6879 // 6880 // If ReferenceValue is an address of an Objective-C CFString, Selector ref or 6881 // Class ref that name is returned and the ReferenceType is set accordingly. 6882 // 6883 // Lastly, literals which are Symbol address in a literal pool are looked for 6884 // and if found the symbol name is returned and ReferenceType is set to 6885 // LLVMDisassembler_ReferenceType_Out_LitPool_SymAddr . 6886 // 6887 // If there is no item in the Mach-O file for the address passed in as 6888 // ReferenceValue nullptr is returned and ReferenceType is unchanged. 6889 static const char *GuessLiteralPointer(uint64_t ReferenceValue, 6890 uint64_t ReferencePC, 6891 uint64_t *ReferenceType, 6892 struct DisassembleInfo *info) { 6893 // First see if there is an external relocation entry at the ReferencePC. 6894 if (info->O->getHeader().filetype == MachO::MH_OBJECT) { 6895 uint64_t sect_addr = info->S.getAddress(); 6896 uint64_t sect_offset = ReferencePC - sect_addr; 6897 bool reloc_found = false; 6898 DataRefImpl Rel; 6899 MachO::any_relocation_info RE; 6900 bool isExtern = false; 6901 SymbolRef Symbol; 6902 for (const RelocationRef &Reloc : info->S.relocations()) { 6903 uint64_t RelocOffset = Reloc.getOffset(); 6904 if (RelocOffset == sect_offset) { 6905 Rel = Reloc.getRawDataRefImpl(); 6906 RE = info->O->getRelocation(Rel); 6907 if (info->O->isRelocationScattered(RE)) 6908 continue; 6909 isExtern = info->O->getPlainRelocationExternal(RE); 6910 if (isExtern) { 6911 symbol_iterator RelocSym = Reloc.getSymbol(); 6912 Symbol = *RelocSym; 6913 } 6914 reloc_found = true; 6915 break; 6916 } 6917 } 6918 // If there is an external relocation entry for a symbol in a section 6919 // then used that symbol's value for the value of the reference. 6920 if (reloc_found && isExtern) { 6921 if (info->O->getAnyRelocationPCRel(RE)) { 6922 unsigned Type = info->O->getAnyRelocationType(RE); 6923 if (Type == MachO::X86_64_RELOC_SIGNED) { 6924 ReferenceValue = cantFail(Symbol.getValue()); 6925 } 6926 } 6927 } 6928 } 6929 6930 // Look for literals such as Objective-C CFStrings refs, Selector refs, 6931 // Message refs and Class refs. 6932 bool classref, selref, msgref, cfstring; 6933 uint64_t pointer_value = GuessPointerPointer(ReferenceValue, info, classref, 6934 selref, msgref, cfstring); 6935 if (classref && pointer_value == 0) { 6936 // Note the ReferenceValue is a pointer into the __objc_classrefs section. 6937 // And the pointer_value in that section is typically zero as it will be 6938 // set by dyld as part of the "bind information". 6939 const char *name = get_dyld_bind_info_symbolname(ReferenceValue, info); 6940 if (name != nullptr) { 6941 *ReferenceType = LLVMDisassembler_ReferenceType_Out_Objc_Class_Ref; 6942 const char *class_name = strrchr(name, '$'); 6943 if (class_name != nullptr && class_name[1] == '_' && 6944 class_name[2] != '\0') { 6945 info->class_name = class_name + 2; 6946 return name; 6947 } 6948 } 6949 } 6950 6951 if (classref) { 6952 *ReferenceType = LLVMDisassembler_ReferenceType_Out_Objc_Class_Ref; 6953 const char *name = 6954 get_objc2_64bit_class_name(pointer_value, ReferenceValue, info); 6955 if (name != nullptr) 6956 info->class_name = name; 6957 else 6958 name = "bad class ref"; 6959 return name; 6960 } 6961 6962 if (cfstring) { 6963 *ReferenceType = LLVMDisassembler_ReferenceType_Out_Objc_CFString_Ref; 6964 const char *name = get_objc2_64bit_cfstring_name(ReferenceValue, info); 6965 return name; 6966 } 6967 6968 if (selref && pointer_value == 0) 6969 pointer_value = get_objc2_64bit_selref(ReferenceValue, info); 6970 6971 if (pointer_value != 0) 6972 ReferenceValue = pointer_value; 6973 6974 const char *name = GuessCstringPointer(ReferenceValue, info); 6975 if (name) { 6976 if (pointer_value != 0 && selref) { 6977 *ReferenceType = LLVMDisassembler_ReferenceType_Out_Objc_Selector_Ref; 6978 info->selector_name = name; 6979 } else if (pointer_value != 0 && msgref) { 6980 info->class_name = nullptr; 6981 *ReferenceType = LLVMDisassembler_ReferenceType_Out_Objc_Message_Ref; 6982 info->selector_name = name; 6983 } else 6984 *ReferenceType = LLVMDisassembler_ReferenceType_Out_LitPool_CstrAddr; 6985 return name; 6986 } 6987 6988 // Lastly look for an indirect symbol with this ReferenceValue which is in 6989 // a literal pool. If found return that symbol name. 6990 name = GuessIndirectSymbol(ReferenceValue, info); 6991 if (name) { 6992 *ReferenceType = LLVMDisassembler_ReferenceType_Out_LitPool_SymAddr; 6993 return name; 6994 } 6995 6996 return nullptr; 6997 } 6998 6999 // SymbolizerSymbolLookUp is the symbol lookup function passed when creating 7000 // the Symbolizer. It looks up the ReferenceValue using the info passed via the 7001 // pointer to the struct DisassembleInfo that was passed when MCSymbolizer 7002 // is created and returns the symbol name that matches the ReferenceValue or 7003 // nullptr if none. The ReferenceType is passed in for the IN type of 7004 // reference the instruction is making from the values in defined in the header 7005 // "llvm-c/Disassembler.h". On return the ReferenceType can set to a specific 7006 // Out type and the ReferenceName will also be set which is added as a comment 7007 // to the disassembled instruction. 7008 // 7009 // If the symbol name is a C++ mangled name then the demangled name is 7010 // returned through ReferenceName and ReferenceType is set to 7011 // LLVMDisassembler_ReferenceType_DeMangled_Name . 7012 // 7013 // When this is called to get a symbol name for a branch target then the 7014 // ReferenceType will be LLVMDisassembler_ReferenceType_In_Branch and then 7015 // SymbolValue will be looked for in the indirect symbol table to determine if 7016 // it is an address for a symbol stub. If so then the symbol name for that 7017 // stub is returned indirectly through ReferenceName and then ReferenceType is 7018 // set to LLVMDisassembler_ReferenceType_Out_SymbolStub. 7019 // 7020 // When this is called with an value loaded via a PC relative load then 7021 // ReferenceType will be LLVMDisassembler_ReferenceType_In_PCrel_Load then the 7022 // SymbolValue is checked to be an address of literal pointer, symbol pointer, 7023 // or an Objective-C meta data reference. If so the output ReferenceType is 7024 // set to correspond to that as well as setting the ReferenceName. 7025 static const char *SymbolizerSymbolLookUp(void *DisInfo, 7026 uint64_t ReferenceValue, 7027 uint64_t *ReferenceType, 7028 uint64_t ReferencePC, 7029 const char **ReferenceName) { 7030 struct DisassembleInfo *info = (struct DisassembleInfo *)DisInfo; 7031 // If no verbose symbolic information is wanted then just return nullptr. 7032 if (!info->verbose) { 7033 *ReferenceName = nullptr; 7034 *ReferenceType = LLVMDisassembler_ReferenceType_InOut_None; 7035 return nullptr; 7036 } 7037 7038 const char *SymbolName = GuessSymbolName(ReferenceValue, info->AddrMap); 7039 7040 if (*ReferenceType == LLVMDisassembler_ReferenceType_In_Branch) { 7041 *ReferenceName = GuessIndirectSymbol(ReferenceValue, info); 7042 if (*ReferenceName != nullptr) { 7043 method_reference(info, ReferenceType, ReferenceName); 7044 if (*ReferenceType != LLVMDisassembler_ReferenceType_Out_Objc_Message) 7045 *ReferenceType = LLVMDisassembler_ReferenceType_Out_SymbolStub; 7046 } else if (SymbolName != nullptr && strncmp(SymbolName, "__Z", 3) == 0) { 7047 if (info->demangled_name != nullptr) 7048 free(info->demangled_name); 7049 int status; 7050 info->demangled_name = 7051 itaniumDemangle(SymbolName + 1, nullptr, nullptr, &status); 7052 if (info->demangled_name != nullptr) { 7053 *ReferenceName = info->demangled_name; 7054 *ReferenceType = LLVMDisassembler_ReferenceType_DeMangled_Name; 7055 } else 7056 *ReferenceType = LLVMDisassembler_ReferenceType_InOut_None; 7057 } else 7058 *ReferenceType = LLVMDisassembler_ReferenceType_InOut_None; 7059 } else if (*ReferenceType == LLVMDisassembler_ReferenceType_In_PCrel_Load) { 7060 *ReferenceName = 7061 GuessLiteralPointer(ReferenceValue, ReferencePC, ReferenceType, info); 7062 if (*ReferenceName) 7063 method_reference(info, ReferenceType, ReferenceName); 7064 else 7065 *ReferenceType = LLVMDisassembler_ReferenceType_InOut_None; 7066 // If this is arm64 and the reference is an adrp instruction save the 7067 // instruction, passed in ReferenceValue and the address of the instruction 7068 // for use later if we see and add immediate instruction. 7069 } else if (info->O->getArch() == Triple::aarch64 && 7070 *ReferenceType == LLVMDisassembler_ReferenceType_In_ARM64_ADRP) { 7071 info->adrp_inst = ReferenceValue; 7072 info->adrp_addr = ReferencePC; 7073 SymbolName = nullptr; 7074 *ReferenceName = nullptr; 7075 *ReferenceType = LLVMDisassembler_ReferenceType_InOut_None; 7076 // If this is arm64 and reference is an add immediate instruction and we 7077 // have 7078 // seen an adrp instruction just before it and the adrp's Xd register 7079 // matches 7080 // this add's Xn register reconstruct the value being referenced and look to 7081 // see if it is a literal pointer. Note the add immediate instruction is 7082 // passed in ReferenceValue. 7083 } else if (info->O->getArch() == Triple::aarch64 && 7084 *ReferenceType == LLVMDisassembler_ReferenceType_In_ARM64_ADDXri && 7085 ReferencePC - 4 == info->adrp_addr && 7086 (info->adrp_inst & 0x9f000000) == 0x90000000 && 7087 (info->adrp_inst & 0x1f) == ((ReferenceValue >> 5) & 0x1f)) { 7088 uint32_t addxri_inst; 7089 uint64_t adrp_imm, addxri_imm; 7090 7091 adrp_imm = 7092 ((info->adrp_inst & 0x00ffffe0) >> 3) | ((info->adrp_inst >> 29) & 0x3); 7093 if (info->adrp_inst & 0x0200000) 7094 adrp_imm |= 0xfffffffffc000000LL; 7095 7096 addxri_inst = ReferenceValue; 7097 addxri_imm = (addxri_inst >> 10) & 0xfff; 7098 if (((addxri_inst >> 22) & 0x3) == 1) 7099 addxri_imm <<= 12; 7100 7101 ReferenceValue = (info->adrp_addr & 0xfffffffffffff000LL) + 7102 (adrp_imm << 12) + addxri_imm; 7103 7104 *ReferenceName = 7105 GuessLiteralPointer(ReferenceValue, ReferencePC, ReferenceType, info); 7106 if (*ReferenceName == nullptr) 7107 *ReferenceType = LLVMDisassembler_ReferenceType_InOut_None; 7108 // If this is arm64 and the reference is a load register instruction and we 7109 // have seen an adrp instruction just before it and the adrp's Xd register 7110 // matches this add's Xn register reconstruct the value being referenced and 7111 // look to see if it is a literal pointer. Note the load register 7112 // instruction is passed in ReferenceValue. 7113 } else if (info->O->getArch() == Triple::aarch64 && 7114 *ReferenceType == LLVMDisassembler_ReferenceType_In_ARM64_LDRXui && 7115 ReferencePC - 4 == info->adrp_addr && 7116 (info->adrp_inst & 0x9f000000) == 0x90000000 && 7117 (info->adrp_inst & 0x1f) == ((ReferenceValue >> 5) & 0x1f)) { 7118 uint32_t ldrxui_inst; 7119 uint64_t adrp_imm, ldrxui_imm; 7120 7121 adrp_imm = 7122 ((info->adrp_inst & 0x00ffffe0) >> 3) | ((info->adrp_inst >> 29) & 0x3); 7123 if (info->adrp_inst & 0x0200000) 7124 adrp_imm |= 0xfffffffffc000000LL; 7125 7126 ldrxui_inst = ReferenceValue; 7127 ldrxui_imm = (ldrxui_inst >> 10) & 0xfff; 7128 7129 ReferenceValue = (info->adrp_addr & 0xfffffffffffff000LL) + 7130 (adrp_imm << 12) + (ldrxui_imm << 3); 7131 7132 *ReferenceName = 7133 GuessLiteralPointer(ReferenceValue, ReferencePC, ReferenceType, info); 7134 if (*ReferenceName == nullptr) 7135 *ReferenceType = LLVMDisassembler_ReferenceType_InOut_None; 7136 } 7137 // If this arm64 and is an load register (PC-relative) instruction the 7138 // ReferenceValue is the PC plus the immediate value. 7139 else if (info->O->getArch() == Triple::aarch64 && 7140 (*ReferenceType == LLVMDisassembler_ReferenceType_In_ARM64_LDRXl || 7141 *ReferenceType == LLVMDisassembler_ReferenceType_In_ARM64_ADR)) { 7142 *ReferenceName = 7143 GuessLiteralPointer(ReferenceValue, ReferencePC, ReferenceType, info); 7144 if (*ReferenceName == nullptr) 7145 *ReferenceType = LLVMDisassembler_ReferenceType_InOut_None; 7146 } else if (SymbolName != nullptr && strncmp(SymbolName, "__Z", 3) == 0) { 7147 if (info->demangled_name != nullptr) 7148 free(info->demangled_name); 7149 int status; 7150 info->demangled_name = 7151 itaniumDemangle(SymbolName + 1, nullptr, nullptr, &status); 7152 if (info->demangled_name != nullptr) { 7153 *ReferenceName = info->demangled_name; 7154 *ReferenceType = LLVMDisassembler_ReferenceType_DeMangled_Name; 7155 } 7156 } 7157 else { 7158 *ReferenceName = nullptr; 7159 *ReferenceType = LLVMDisassembler_ReferenceType_InOut_None; 7160 } 7161 7162 return SymbolName; 7163 } 7164 7165 /// Emits the comments that are stored in the CommentStream. 7166 /// Each comment in the CommentStream must end with a newline. 7167 static void emitComments(raw_svector_ostream &CommentStream, 7168 SmallString<128> &CommentsToEmit, 7169 formatted_raw_ostream &FormattedOS, 7170 const MCAsmInfo &MAI) { 7171 // Flush the stream before taking its content. 7172 StringRef Comments = CommentsToEmit.str(); 7173 // Get the default information for printing a comment. 7174 StringRef CommentBegin = MAI.getCommentString(); 7175 unsigned CommentColumn = MAI.getCommentColumn(); 7176 ListSeparator LS("\n"); 7177 while (!Comments.empty()) { 7178 FormattedOS << LS; 7179 // Emit a line of comments. 7180 FormattedOS.PadToColumn(CommentColumn); 7181 size_t Position = Comments.find('\n'); 7182 FormattedOS << CommentBegin << ' ' << Comments.substr(0, Position); 7183 // Move after the newline character. 7184 Comments = Comments.substr(Position + 1); 7185 } 7186 FormattedOS.flush(); 7187 7188 // Tell the comment stream that the vector changed underneath it. 7189 CommentsToEmit.clear(); 7190 } 7191 7192 static void DisassembleMachO(StringRef Filename, MachOObjectFile *MachOOF, 7193 StringRef DisSegName, StringRef DisSectName) { 7194 const char *McpuDefault = nullptr; 7195 const Target *ThumbTarget = nullptr; 7196 const Target *TheTarget = GetTarget(MachOOF, &McpuDefault, &ThumbTarget); 7197 if (!TheTarget) { 7198 // GetTarget prints out stuff. 7199 return; 7200 } 7201 std::string MachOMCPU; 7202 if (MCPU.empty() && McpuDefault) 7203 MachOMCPU = McpuDefault; 7204 else 7205 MachOMCPU = MCPU; 7206 7207 #define CHECK_TARGET_INFO_CREATION(NAME) \ 7208 do { \ 7209 if (!NAME) { \ 7210 WithColor::error(errs(), "llvm-objdump") \ 7211 << "couldn't initialize disassembler for target " << TripleName \ 7212 << '\n'; \ 7213 return; \ 7214 } \ 7215 } while (false) 7216 #define CHECK_THUMB_TARGET_INFO_CREATION(NAME) \ 7217 do { \ 7218 if (!NAME) { \ 7219 WithColor::error(errs(), "llvm-objdump") \ 7220 << "couldn't initialize disassembler for target " << ThumbTripleName \ 7221 << '\n'; \ 7222 return; \ 7223 } \ 7224 } while (false) 7225 7226 std::unique_ptr<const MCInstrInfo> InstrInfo(TheTarget->createMCInstrInfo()); 7227 CHECK_TARGET_INFO_CREATION(InstrInfo); 7228 std::unique_ptr<const MCInstrInfo> ThumbInstrInfo; 7229 if (ThumbTarget) { 7230 ThumbInstrInfo.reset(ThumbTarget->createMCInstrInfo()); 7231 CHECK_THUMB_TARGET_INFO_CREATION(ThumbInstrInfo); 7232 } 7233 7234 // Package up features to be passed to target/subtarget 7235 std::string FeaturesStr; 7236 if (!MAttrs.empty()) { 7237 SubtargetFeatures Features; 7238 for (unsigned i = 0; i != MAttrs.size(); ++i) 7239 Features.AddFeature(MAttrs[i]); 7240 FeaturesStr = Features.getString(); 7241 } 7242 7243 MCTargetOptions MCOptions; 7244 // Set up disassembler. 7245 std::unique_ptr<const MCRegisterInfo> MRI( 7246 TheTarget->createMCRegInfo(TripleName)); 7247 CHECK_TARGET_INFO_CREATION(MRI); 7248 std::unique_ptr<const MCAsmInfo> AsmInfo( 7249 TheTarget->createMCAsmInfo(*MRI, TripleName, MCOptions)); 7250 CHECK_TARGET_INFO_CREATION(AsmInfo); 7251 std::unique_ptr<const MCSubtargetInfo> STI( 7252 TheTarget->createMCSubtargetInfo(TripleName, MachOMCPU, FeaturesStr)); 7253 CHECK_TARGET_INFO_CREATION(STI); 7254 MCContext Ctx(Triple(TripleName), AsmInfo.get(), MRI.get(), STI.get()); 7255 std::unique_ptr<MCDisassembler> DisAsm( 7256 TheTarget->createMCDisassembler(*STI, Ctx)); 7257 CHECK_TARGET_INFO_CREATION(DisAsm); 7258 std::unique_ptr<MCSymbolizer> Symbolizer; 7259 struct DisassembleInfo SymbolizerInfo(nullptr, nullptr, nullptr, false); 7260 std::unique_ptr<MCRelocationInfo> RelInfo( 7261 TheTarget->createMCRelocationInfo(TripleName, Ctx)); 7262 if (RelInfo) { 7263 Symbolizer.reset(TheTarget->createMCSymbolizer( 7264 TripleName, SymbolizerGetOpInfo, SymbolizerSymbolLookUp, 7265 &SymbolizerInfo, &Ctx, std::move(RelInfo))); 7266 DisAsm->setSymbolizer(std::move(Symbolizer)); 7267 } 7268 int AsmPrinterVariant = AsmInfo->getAssemblerDialect(); 7269 std::unique_ptr<MCInstPrinter> IP(TheTarget->createMCInstPrinter( 7270 Triple(TripleName), AsmPrinterVariant, *AsmInfo, *InstrInfo, *MRI)); 7271 CHECK_TARGET_INFO_CREATION(IP); 7272 // Set the display preference for hex vs. decimal immediates. 7273 IP->setPrintImmHex(PrintImmHex); 7274 // Comment stream and backing vector. 7275 SmallString<128> CommentsToEmit; 7276 raw_svector_ostream CommentStream(CommentsToEmit); 7277 // FIXME: Setting the CommentStream in the InstPrinter is problematic in that 7278 // if it is done then arm64 comments for string literals don't get printed 7279 // and some constant get printed instead and not setting it causes intel 7280 // (32-bit and 64-bit) comments printed with different spacing before the 7281 // comment causing different diffs with the 'C' disassembler library API. 7282 // IP->setCommentStream(CommentStream); 7283 7284 // Set up separate thumb disassembler if needed. 7285 std::unique_ptr<const MCRegisterInfo> ThumbMRI; 7286 std::unique_ptr<const MCAsmInfo> ThumbAsmInfo; 7287 std::unique_ptr<const MCSubtargetInfo> ThumbSTI; 7288 std::unique_ptr<MCDisassembler> ThumbDisAsm; 7289 std::unique_ptr<MCInstPrinter> ThumbIP; 7290 std::unique_ptr<MCContext> ThumbCtx; 7291 std::unique_ptr<MCSymbolizer> ThumbSymbolizer; 7292 struct DisassembleInfo ThumbSymbolizerInfo(nullptr, nullptr, nullptr, false); 7293 std::unique_ptr<MCRelocationInfo> ThumbRelInfo; 7294 if (ThumbTarget) { 7295 ThumbMRI.reset(ThumbTarget->createMCRegInfo(ThumbTripleName)); 7296 CHECK_THUMB_TARGET_INFO_CREATION(ThumbMRI); 7297 ThumbAsmInfo.reset( 7298 ThumbTarget->createMCAsmInfo(*ThumbMRI, ThumbTripleName, MCOptions)); 7299 CHECK_THUMB_TARGET_INFO_CREATION(ThumbAsmInfo); 7300 ThumbSTI.reset( 7301 ThumbTarget->createMCSubtargetInfo(ThumbTripleName, MachOMCPU, 7302 FeaturesStr)); 7303 CHECK_THUMB_TARGET_INFO_CREATION(ThumbSTI); 7304 ThumbCtx.reset(new MCContext(Triple(ThumbTripleName), ThumbAsmInfo.get(), 7305 ThumbMRI.get(), ThumbSTI.get())); 7306 ThumbDisAsm.reset(ThumbTarget->createMCDisassembler(*ThumbSTI, *ThumbCtx)); 7307 CHECK_THUMB_TARGET_INFO_CREATION(ThumbDisAsm); 7308 MCContext *PtrThumbCtx = ThumbCtx.get(); 7309 ThumbRelInfo.reset( 7310 ThumbTarget->createMCRelocationInfo(ThumbTripleName, *PtrThumbCtx)); 7311 if (ThumbRelInfo) { 7312 ThumbSymbolizer.reset(ThumbTarget->createMCSymbolizer( 7313 ThumbTripleName, SymbolizerGetOpInfo, SymbolizerSymbolLookUp, 7314 &ThumbSymbolizerInfo, PtrThumbCtx, std::move(ThumbRelInfo))); 7315 ThumbDisAsm->setSymbolizer(std::move(ThumbSymbolizer)); 7316 } 7317 int ThumbAsmPrinterVariant = ThumbAsmInfo->getAssemblerDialect(); 7318 ThumbIP.reset(ThumbTarget->createMCInstPrinter( 7319 Triple(ThumbTripleName), ThumbAsmPrinterVariant, *ThumbAsmInfo, 7320 *ThumbInstrInfo, *ThumbMRI)); 7321 CHECK_THUMB_TARGET_INFO_CREATION(ThumbIP); 7322 // Set the display preference for hex vs. decimal immediates. 7323 ThumbIP->setPrintImmHex(PrintImmHex); 7324 } 7325 7326 #undef CHECK_TARGET_INFO_CREATION 7327 #undef CHECK_THUMB_TARGET_INFO_CREATION 7328 7329 MachO::mach_header Header = MachOOF->getHeader(); 7330 7331 // FIXME: Using the -cfg command line option, this code used to be able to 7332 // annotate relocations with the referenced symbol's name, and if this was 7333 // inside a __[cf]string section, the data it points to. This is now replaced 7334 // by the upcoming MCSymbolizer, which needs the appropriate setup done above. 7335 std::vector<SectionRef> Sections; 7336 std::vector<SymbolRef> Symbols; 7337 SmallVector<uint64_t, 8> FoundFns; 7338 uint64_t BaseSegmentAddress = 0; 7339 7340 getSectionsAndSymbols(MachOOF, Sections, Symbols, FoundFns, 7341 BaseSegmentAddress); 7342 7343 // Sort the symbols by address, just in case they didn't come in that way. 7344 llvm::stable_sort(Symbols, SymbolSorter()); 7345 7346 // Build a data in code table that is sorted on by the address of each entry. 7347 uint64_t BaseAddress = 0; 7348 if (Header.filetype == MachO::MH_OBJECT) 7349 BaseAddress = Sections[0].getAddress(); 7350 else 7351 BaseAddress = BaseSegmentAddress; 7352 DiceTable Dices; 7353 for (dice_iterator DI = MachOOF->begin_dices(), DE = MachOOF->end_dices(); 7354 DI != DE; ++DI) { 7355 uint32_t Offset; 7356 DI->getOffset(Offset); 7357 Dices.push_back(std::make_pair(BaseAddress + Offset, *DI)); 7358 } 7359 array_pod_sort(Dices.begin(), Dices.end()); 7360 7361 // Try to find debug info and set up the DIContext for it. 7362 std::unique_ptr<DIContext> diContext; 7363 std::unique_ptr<Binary> DSYMBinary; 7364 std::unique_ptr<MemoryBuffer> DSYMBuf; 7365 if (UseDbg) { 7366 ObjectFile *DbgObj = MachOOF; 7367 7368 // A separate DSym file path was specified, parse it as a macho file, 7369 // get the sections and supply it to the section name parsing machinery. 7370 if (!DSYMFile.empty()) { 7371 std::string DSYMPath(DSYMFile); 7372 7373 // If DSYMPath is a .dSYM directory, append the Mach-O file. 7374 if (llvm::sys::fs::is_directory(DSYMPath) && 7375 llvm::sys::path::extension(DSYMPath) == ".dSYM") { 7376 SmallString<128> ShortName(llvm::sys::path::filename(DSYMPath)); 7377 llvm::sys::path::replace_extension(ShortName, ""); 7378 SmallString<1024> FullPath(DSYMPath); 7379 llvm::sys::path::append(FullPath, "Contents", "Resources", "DWARF", 7380 ShortName); 7381 DSYMPath = std::string(FullPath.str()); 7382 } 7383 7384 // Load the file. 7385 ErrorOr<std::unique_ptr<MemoryBuffer>> BufOrErr = 7386 MemoryBuffer::getFileOrSTDIN(DSYMPath); 7387 if (std::error_code EC = BufOrErr.getError()) { 7388 reportError(errorCodeToError(EC), DSYMPath); 7389 return; 7390 } 7391 7392 // We need to keep the file alive, because we're replacing DbgObj with it. 7393 DSYMBuf = std::move(BufOrErr.get()); 7394 7395 Expected<std::unique_ptr<Binary>> BinaryOrErr = 7396 createBinary(DSYMBuf.get()->getMemBufferRef()); 7397 if (!BinaryOrErr) { 7398 reportError(BinaryOrErr.takeError(), DSYMPath); 7399 return; 7400 } 7401 7402 // We need to keep the Binary alive with the buffer 7403 DSYMBinary = std::move(BinaryOrErr.get()); 7404 if (ObjectFile *O = dyn_cast<ObjectFile>(DSYMBinary.get())) { 7405 // this is a Mach-O object file, use it 7406 if (MachOObjectFile *MachDSYM = dyn_cast<MachOObjectFile>(&*O)) { 7407 DbgObj = MachDSYM; 7408 } 7409 else { 7410 WithColor::error(errs(), "llvm-objdump") 7411 << DSYMPath << " is not a Mach-O file type.\n"; 7412 return; 7413 } 7414 } 7415 else if (auto UB = dyn_cast<MachOUniversalBinary>(DSYMBinary.get())){ 7416 // this is a Universal Binary, find a Mach-O for this architecture 7417 uint32_t CPUType, CPUSubType; 7418 const char *ArchFlag; 7419 if (MachOOF->is64Bit()) { 7420 const MachO::mach_header_64 H_64 = MachOOF->getHeader64(); 7421 CPUType = H_64.cputype; 7422 CPUSubType = H_64.cpusubtype; 7423 } else { 7424 const MachO::mach_header H = MachOOF->getHeader(); 7425 CPUType = H.cputype; 7426 CPUSubType = H.cpusubtype; 7427 } 7428 Triple T = MachOObjectFile::getArchTriple(CPUType, CPUSubType, nullptr, 7429 &ArchFlag); 7430 Expected<std::unique_ptr<MachOObjectFile>> MachDSYM = 7431 UB->getMachOObjectForArch(ArchFlag); 7432 if (!MachDSYM) { 7433 reportError(MachDSYM.takeError(), DSYMPath); 7434 return; 7435 } 7436 7437 // We need to keep the Binary alive with the buffer 7438 DbgObj = &*MachDSYM.get(); 7439 DSYMBinary = std::move(*MachDSYM); 7440 } 7441 else { 7442 WithColor::error(errs(), "llvm-objdump") 7443 << DSYMPath << " is not a Mach-O or Universal file type.\n"; 7444 return; 7445 } 7446 } 7447 7448 // Setup the DIContext 7449 diContext = DWARFContext::create(*DbgObj); 7450 } 7451 7452 if (FilterSections.empty()) 7453 outs() << "(" << DisSegName << "," << DisSectName << ") section\n"; 7454 7455 for (unsigned SectIdx = 0; SectIdx != Sections.size(); SectIdx++) { 7456 Expected<StringRef> SecNameOrErr = Sections[SectIdx].getName(); 7457 if (!SecNameOrErr) { 7458 consumeError(SecNameOrErr.takeError()); 7459 continue; 7460 } 7461 if (*SecNameOrErr != DisSectName) 7462 continue; 7463 7464 DataRefImpl DR = Sections[SectIdx].getRawDataRefImpl(); 7465 7466 StringRef SegmentName = MachOOF->getSectionFinalSegmentName(DR); 7467 if (SegmentName != DisSegName) 7468 continue; 7469 7470 StringRef BytesStr = 7471 unwrapOrError(Sections[SectIdx].getContents(), Filename); 7472 ArrayRef<uint8_t> Bytes = arrayRefFromStringRef(BytesStr); 7473 uint64_t SectAddress = Sections[SectIdx].getAddress(); 7474 7475 bool symbolTableWorked = false; 7476 7477 // Create a map of symbol addresses to symbol names for use by 7478 // the SymbolizerSymbolLookUp() routine. 7479 SymbolAddressMap AddrMap; 7480 bool DisSymNameFound = false; 7481 for (const SymbolRef &Symbol : MachOOF->symbols()) { 7482 SymbolRef::Type ST = 7483 unwrapOrError(Symbol.getType(), MachOOF->getFileName()); 7484 if (ST == SymbolRef::ST_Function || ST == SymbolRef::ST_Data || 7485 ST == SymbolRef::ST_Other) { 7486 uint64_t Address = cantFail(Symbol.getValue()); 7487 StringRef SymName = 7488 unwrapOrError(Symbol.getName(), MachOOF->getFileName()); 7489 AddrMap[Address] = SymName; 7490 if (!DisSymName.empty() && DisSymName == SymName) 7491 DisSymNameFound = true; 7492 } 7493 } 7494 if (!DisSymName.empty() && !DisSymNameFound) { 7495 outs() << "Can't find -dis-symname: " << DisSymName << "\n"; 7496 return; 7497 } 7498 // Set up the block of info used by the Symbolizer call backs. 7499 SymbolizerInfo.verbose = SymbolicOperands; 7500 SymbolizerInfo.O = MachOOF; 7501 SymbolizerInfo.S = Sections[SectIdx]; 7502 SymbolizerInfo.AddrMap = &AddrMap; 7503 SymbolizerInfo.Sections = &Sections; 7504 // Same for the ThumbSymbolizer 7505 ThumbSymbolizerInfo.verbose = SymbolicOperands; 7506 ThumbSymbolizerInfo.O = MachOOF; 7507 ThumbSymbolizerInfo.S = Sections[SectIdx]; 7508 ThumbSymbolizerInfo.AddrMap = &AddrMap; 7509 ThumbSymbolizerInfo.Sections = &Sections; 7510 7511 unsigned int Arch = MachOOF->getArch(); 7512 7513 // Skip all symbols if this is a stubs file. 7514 if (Bytes.empty()) 7515 return; 7516 7517 // If the section has symbols but no symbol at the start of the section 7518 // these are used to make sure the bytes before the first symbol are 7519 // disassembled. 7520 bool FirstSymbol = true; 7521 bool FirstSymbolAtSectionStart = true; 7522 7523 // Disassemble symbol by symbol. 7524 for (unsigned SymIdx = 0; SymIdx != Symbols.size(); SymIdx++) { 7525 StringRef SymName = 7526 unwrapOrError(Symbols[SymIdx].getName(), MachOOF->getFileName()); 7527 SymbolRef::Type ST = 7528 unwrapOrError(Symbols[SymIdx].getType(), MachOOF->getFileName()); 7529 if (ST != SymbolRef::ST_Function && ST != SymbolRef::ST_Data) 7530 continue; 7531 7532 // Make sure the symbol is defined in this section. 7533 bool containsSym = Sections[SectIdx].containsSymbol(Symbols[SymIdx]); 7534 if (!containsSym) { 7535 if (!DisSymName.empty() && DisSymName == SymName) { 7536 outs() << "-dis-symname: " << DisSymName << " not in the section\n"; 7537 return; 7538 } 7539 continue; 7540 } 7541 // The __mh_execute_header is special and we need to deal with that fact 7542 // this symbol is before the start of the (__TEXT,__text) section and at the 7543 // address of the start of the __TEXT segment. This is because this symbol 7544 // is an N_SECT symbol in the (__TEXT,__text) but its address is before the 7545 // start of the section in a standard MH_EXECUTE filetype. 7546 if (!DisSymName.empty() && DisSymName == "__mh_execute_header") { 7547 outs() << "-dis-symname: __mh_execute_header not in any section\n"; 7548 return; 7549 } 7550 // When this code is trying to disassemble a symbol at a time and in the 7551 // case there is only the __mh_execute_header symbol left as in a stripped 7552 // executable, we need to deal with this by ignoring this symbol so the 7553 // whole section is disassembled and this symbol is then not displayed. 7554 if (SymName == "__mh_execute_header" || SymName == "__mh_dylib_header" || 7555 SymName == "__mh_bundle_header" || SymName == "__mh_object_header" || 7556 SymName == "__mh_preload_header" || SymName == "__mh_dylinker_header") 7557 continue; 7558 7559 // If we are only disassembling one symbol see if this is that symbol. 7560 if (!DisSymName.empty() && DisSymName != SymName) 7561 continue; 7562 7563 // Start at the address of the symbol relative to the section's address. 7564 uint64_t SectSize = Sections[SectIdx].getSize(); 7565 uint64_t Start = cantFail(Symbols[SymIdx].getValue()); 7566 uint64_t SectionAddress = Sections[SectIdx].getAddress(); 7567 Start -= SectionAddress; 7568 7569 if (Start > SectSize) { 7570 outs() << "section data ends, " << SymName 7571 << " lies outside valid range\n"; 7572 return; 7573 } 7574 7575 // Stop disassembling either at the beginning of the next symbol or at 7576 // the end of the section. 7577 bool containsNextSym = false; 7578 uint64_t NextSym = 0; 7579 uint64_t NextSymIdx = SymIdx + 1; 7580 while (Symbols.size() > NextSymIdx) { 7581 SymbolRef::Type NextSymType = unwrapOrError( 7582 Symbols[NextSymIdx].getType(), MachOOF->getFileName()); 7583 if (NextSymType == SymbolRef::ST_Function) { 7584 containsNextSym = 7585 Sections[SectIdx].containsSymbol(Symbols[NextSymIdx]); 7586 NextSym = cantFail(Symbols[NextSymIdx].getValue()); 7587 NextSym -= SectionAddress; 7588 break; 7589 } 7590 ++NextSymIdx; 7591 } 7592 7593 uint64_t End = containsNextSym ? std::min(NextSym, SectSize) : SectSize; 7594 uint64_t Size; 7595 7596 symbolTableWorked = true; 7597 7598 DataRefImpl Symb = Symbols[SymIdx].getRawDataRefImpl(); 7599 uint32_t SymbolFlags = cantFail(MachOOF->getSymbolFlags(Symb)); 7600 bool IsThumb = SymbolFlags & SymbolRef::SF_Thumb; 7601 7602 // We only need the dedicated Thumb target if there's a real choice 7603 // (i.e. we're not targeting M-class) and the function is Thumb. 7604 bool UseThumbTarget = IsThumb && ThumbTarget; 7605 7606 // If we are not specifying a symbol to start disassembly with and this 7607 // is the first symbol in the section but not at the start of the section 7608 // then move the disassembly index to the start of the section and 7609 // don't print the symbol name just yet. This is so the bytes before the 7610 // first symbol are disassembled. 7611 uint64_t SymbolStart = Start; 7612 if (DisSymName.empty() && FirstSymbol && Start != 0) { 7613 FirstSymbolAtSectionStart = false; 7614 Start = 0; 7615 } 7616 else 7617 outs() << SymName << ":\n"; 7618 7619 DILineInfo lastLine; 7620 for (uint64_t Index = Start; Index < End; Index += Size) { 7621 MCInst Inst; 7622 7623 // If this is the first symbol in the section and it was not at the 7624 // start of the section, see if we are at its Index now and if so print 7625 // the symbol name. 7626 if (FirstSymbol && !FirstSymbolAtSectionStart && Index == SymbolStart) 7627 outs() << SymName << ":\n"; 7628 7629 uint64_t PC = SectAddress + Index; 7630 if (LeadingAddr) { 7631 if (FullLeadingAddr) { 7632 if (MachOOF->is64Bit()) 7633 outs() << format("%016" PRIx64, PC); 7634 else 7635 outs() << format("%08" PRIx64, PC); 7636 } else { 7637 outs() << format("%8" PRIx64 ":", PC); 7638 } 7639 } 7640 if (ShowRawInsn || Arch == Triple::arm) 7641 outs() << "\t"; 7642 7643 if (DumpAndSkipDataInCode(PC, Bytes.data() + Index, Dices, Size)) 7644 continue; 7645 7646 SmallVector<char, 64> AnnotationsBytes; 7647 raw_svector_ostream Annotations(AnnotationsBytes); 7648 7649 bool gotInst; 7650 if (UseThumbTarget) 7651 gotInst = ThumbDisAsm->getInstruction(Inst, Size, Bytes.slice(Index), 7652 PC, Annotations); 7653 else 7654 gotInst = DisAsm->getInstruction(Inst, Size, Bytes.slice(Index), PC, 7655 Annotations); 7656 if (gotInst) { 7657 if (ShowRawInsn || Arch == Triple::arm) { 7658 dumpBytes(makeArrayRef(Bytes.data() + Index, Size), outs()); 7659 } 7660 formatted_raw_ostream FormattedOS(outs()); 7661 StringRef AnnotationsStr = Annotations.str(); 7662 if (UseThumbTarget) 7663 ThumbIP->printInst(&Inst, PC, AnnotationsStr, *ThumbSTI, 7664 FormattedOS); 7665 else 7666 IP->printInst(&Inst, PC, AnnotationsStr, *STI, FormattedOS); 7667 emitComments(CommentStream, CommentsToEmit, FormattedOS, *AsmInfo); 7668 7669 // Print debug info. 7670 if (diContext) { 7671 DILineInfo dli = diContext->getLineInfoForAddress({PC, SectIdx}); 7672 // Print valid line info if it changed. 7673 if (dli != lastLine && dli.Line != 0) 7674 outs() << "\t## " << dli.FileName << ':' << dli.Line << ':' 7675 << dli.Column; 7676 lastLine = dli; 7677 } 7678 outs() << "\n"; 7679 } else { 7680 if (MachOOF->getArchTriple().isX86()) { 7681 outs() << format("\t.byte 0x%02x #bad opcode\n", 7682 *(Bytes.data() + Index) & 0xff); 7683 Size = 1; // skip exactly one illegible byte and move on. 7684 } else if (Arch == Triple::aarch64 || 7685 (Arch == Triple::arm && !IsThumb)) { 7686 uint32_t opcode = (*(Bytes.data() + Index) & 0xff) | 7687 (*(Bytes.data() + Index + 1) & 0xff) << 8 | 7688 (*(Bytes.data() + Index + 2) & 0xff) << 16 | 7689 (*(Bytes.data() + Index + 3) & 0xff) << 24; 7690 outs() << format("\t.long\t0x%08x\n", opcode); 7691 Size = 4; 7692 } else if (Arch == Triple::arm) { 7693 assert(IsThumb && "ARM mode should have been dealt with above"); 7694 uint32_t opcode = (*(Bytes.data() + Index) & 0xff) | 7695 (*(Bytes.data() + Index + 1) & 0xff) << 8; 7696 outs() << format("\t.short\t0x%04x\n", opcode); 7697 Size = 2; 7698 } else{ 7699 WithColor::warning(errs(), "llvm-objdump") 7700 << "invalid instruction encoding\n"; 7701 if (Size == 0) 7702 Size = 1; // skip illegible bytes 7703 } 7704 } 7705 } 7706 // Now that we are done disassembled the first symbol set the bool that 7707 // were doing this to false. 7708 FirstSymbol = false; 7709 } 7710 if (!symbolTableWorked) { 7711 // Reading the symbol table didn't work, disassemble the whole section. 7712 uint64_t SectAddress = Sections[SectIdx].getAddress(); 7713 uint64_t SectSize = Sections[SectIdx].getSize(); 7714 uint64_t InstSize; 7715 for (uint64_t Index = 0; Index < SectSize; Index += InstSize) { 7716 MCInst Inst; 7717 7718 uint64_t PC = SectAddress + Index; 7719 7720 if (DumpAndSkipDataInCode(PC, Bytes.data() + Index, Dices, InstSize)) 7721 continue; 7722 7723 SmallVector<char, 64> AnnotationsBytes; 7724 raw_svector_ostream Annotations(AnnotationsBytes); 7725 if (DisAsm->getInstruction(Inst, InstSize, Bytes.slice(Index), PC, 7726 Annotations)) { 7727 if (LeadingAddr) { 7728 if (FullLeadingAddr) { 7729 if (MachOOF->is64Bit()) 7730 outs() << format("%016" PRIx64, PC); 7731 else 7732 outs() << format("%08" PRIx64, PC); 7733 } else { 7734 outs() << format("%8" PRIx64 ":", PC); 7735 } 7736 } 7737 if (ShowRawInsn || Arch == Triple::arm) { 7738 outs() << "\t"; 7739 dumpBytes(makeArrayRef(Bytes.data() + Index, InstSize), outs()); 7740 } 7741 StringRef AnnotationsStr = Annotations.str(); 7742 IP->printInst(&Inst, PC, AnnotationsStr, *STI, outs()); 7743 outs() << "\n"; 7744 } else { 7745 if (MachOOF->getArchTriple().isX86()) { 7746 outs() << format("\t.byte 0x%02x #bad opcode\n", 7747 *(Bytes.data() + Index) & 0xff); 7748 InstSize = 1; // skip exactly one illegible byte and move on. 7749 } else { 7750 WithColor::warning(errs(), "llvm-objdump") 7751 << "invalid instruction encoding\n"; 7752 if (InstSize == 0) 7753 InstSize = 1; // skip illegible bytes 7754 } 7755 } 7756 } 7757 } 7758 // The TripleName's need to be reset if we are called again for a different 7759 // architecture. 7760 TripleName = ""; 7761 ThumbTripleName = ""; 7762 7763 if (SymbolizerInfo.demangled_name != nullptr) 7764 free(SymbolizerInfo.demangled_name); 7765 if (ThumbSymbolizerInfo.demangled_name != nullptr) 7766 free(ThumbSymbolizerInfo.demangled_name); 7767 } 7768 } 7769 7770 //===----------------------------------------------------------------------===// 7771 // __compact_unwind section dumping 7772 //===----------------------------------------------------------------------===// 7773 7774 namespace { 7775 7776 template <typename T> 7777 static uint64_t read(StringRef Contents, ptrdiff_t Offset) { 7778 using llvm::support::little; 7779 using llvm::support::unaligned; 7780 7781 if (Offset + sizeof(T) > Contents.size()) { 7782 outs() << "warning: attempt to read past end of buffer\n"; 7783 return T(); 7784 } 7785 7786 uint64_t Val = 7787 support::endian::read<T, little, unaligned>(Contents.data() + Offset); 7788 return Val; 7789 } 7790 7791 template <typename T> 7792 static uint64_t readNext(StringRef Contents, ptrdiff_t &Offset) { 7793 T Val = read<T>(Contents, Offset); 7794 Offset += sizeof(T); 7795 return Val; 7796 } 7797 7798 struct CompactUnwindEntry { 7799 uint32_t OffsetInSection; 7800 7801 uint64_t FunctionAddr; 7802 uint32_t Length; 7803 uint32_t CompactEncoding; 7804 uint64_t PersonalityAddr; 7805 uint64_t LSDAAddr; 7806 7807 RelocationRef FunctionReloc; 7808 RelocationRef PersonalityReloc; 7809 RelocationRef LSDAReloc; 7810 7811 CompactUnwindEntry(StringRef Contents, unsigned Offset, bool Is64) 7812 : OffsetInSection(Offset) { 7813 if (Is64) 7814 read<uint64_t>(Contents, Offset); 7815 else 7816 read<uint32_t>(Contents, Offset); 7817 } 7818 7819 private: 7820 template <typename UIntPtr> void read(StringRef Contents, ptrdiff_t Offset) { 7821 FunctionAddr = readNext<UIntPtr>(Contents, Offset); 7822 Length = readNext<uint32_t>(Contents, Offset); 7823 CompactEncoding = readNext<uint32_t>(Contents, Offset); 7824 PersonalityAddr = readNext<UIntPtr>(Contents, Offset); 7825 LSDAAddr = readNext<UIntPtr>(Contents, Offset); 7826 } 7827 }; 7828 } 7829 7830 /// Given a relocation from __compact_unwind, consisting of the RelocationRef 7831 /// and data being relocated, determine the best base Name and Addend to use for 7832 /// display purposes. 7833 /// 7834 /// 1. An Extern relocation will directly reference a symbol (and the data is 7835 /// then already an addend), so use that. 7836 /// 2. Otherwise the data is an offset in the object file's layout; try to find 7837 // a symbol before it in the same section, and use the offset from there. 7838 /// 3. Finally, if all that fails, fall back to an offset from the start of the 7839 /// referenced section. 7840 static void findUnwindRelocNameAddend(const MachOObjectFile *Obj, 7841 std::map<uint64_t, SymbolRef> &Symbols, 7842 const RelocationRef &Reloc, uint64_t Addr, 7843 StringRef &Name, uint64_t &Addend) { 7844 if (Reloc.getSymbol() != Obj->symbol_end()) { 7845 Name = unwrapOrError(Reloc.getSymbol()->getName(), Obj->getFileName()); 7846 Addend = Addr; 7847 return; 7848 } 7849 7850 auto RE = Obj->getRelocation(Reloc.getRawDataRefImpl()); 7851 SectionRef RelocSection = Obj->getAnyRelocationSection(RE); 7852 7853 uint64_t SectionAddr = RelocSection.getAddress(); 7854 7855 auto Sym = Symbols.upper_bound(Addr); 7856 if (Sym == Symbols.begin()) { 7857 // The first symbol in the object is after this reference, the best we can 7858 // do is section-relative notation. 7859 if (Expected<StringRef> NameOrErr = RelocSection.getName()) 7860 Name = *NameOrErr; 7861 else 7862 consumeError(NameOrErr.takeError()); 7863 7864 Addend = Addr - SectionAddr; 7865 return; 7866 } 7867 7868 // Go back one so that SymbolAddress <= Addr. 7869 --Sym; 7870 7871 section_iterator SymSection = 7872 unwrapOrError(Sym->second.getSection(), Obj->getFileName()); 7873 if (RelocSection == *SymSection) { 7874 // There's a valid symbol in the same section before this reference. 7875 Name = unwrapOrError(Sym->second.getName(), Obj->getFileName()); 7876 Addend = Addr - Sym->first; 7877 return; 7878 } 7879 7880 // There is a symbol before this reference, but it's in a different 7881 // section. Probably not helpful to mention it, so use the section name. 7882 if (Expected<StringRef> NameOrErr = RelocSection.getName()) 7883 Name = *NameOrErr; 7884 else 7885 consumeError(NameOrErr.takeError()); 7886 7887 Addend = Addr - SectionAddr; 7888 } 7889 7890 static void printUnwindRelocDest(const MachOObjectFile *Obj, 7891 std::map<uint64_t, SymbolRef> &Symbols, 7892 const RelocationRef &Reloc, uint64_t Addr) { 7893 StringRef Name; 7894 uint64_t Addend; 7895 7896 if (!Reloc.getObject()) 7897 return; 7898 7899 findUnwindRelocNameAddend(Obj, Symbols, Reloc, Addr, Name, Addend); 7900 7901 outs() << Name; 7902 if (Addend) 7903 outs() << " + " << format("0x%" PRIx64, Addend); 7904 } 7905 7906 static void 7907 printMachOCompactUnwindSection(const MachOObjectFile *Obj, 7908 std::map<uint64_t, SymbolRef> &Symbols, 7909 const SectionRef &CompactUnwind) { 7910 7911 if (!Obj->isLittleEndian()) { 7912 outs() << "Skipping big-endian __compact_unwind section\n"; 7913 return; 7914 } 7915 7916 bool Is64 = Obj->is64Bit(); 7917 uint32_t PointerSize = Is64 ? sizeof(uint64_t) : sizeof(uint32_t); 7918 uint32_t EntrySize = 3 * PointerSize + 2 * sizeof(uint32_t); 7919 7920 StringRef Contents = 7921 unwrapOrError(CompactUnwind.getContents(), Obj->getFileName()); 7922 SmallVector<CompactUnwindEntry, 4> CompactUnwinds; 7923 7924 // First populate the initial raw offsets, encodings and so on from the entry. 7925 for (unsigned Offset = 0; Offset < Contents.size(); Offset += EntrySize) { 7926 CompactUnwindEntry Entry(Contents, Offset, Is64); 7927 CompactUnwinds.push_back(Entry); 7928 } 7929 7930 // Next we need to look at the relocations to find out what objects are 7931 // actually being referred to. 7932 for (const RelocationRef &Reloc : CompactUnwind.relocations()) { 7933 uint64_t RelocAddress = Reloc.getOffset(); 7934 7935 uint32_t EntryIdx = RelocAddress / EntrySize; 7936 uint32_t OffsetInEntry = RelocAddress - EntryIdx * EntrySize; 7937 CompactUnwindEntry &Entry = CompactUnwinds[EntryIdx]; 7938 7939 if (OffsetInEntry == 0) 7940 Entry.FunctionReloc = Reloc; 7941 else if (OffsetInEntry == PointerSize + 2 * sizeof(uint32_t)) 7942 Entry.PersonalityReloc = Reloc; 7943 else if (OffsetInEntry == 2 * PointerSize + 2 * sizeof(uint32_t)) 7944 Entry.LSDAReloc = Reloc; 7945 else { 7946 outs() << "Invalid relocation in __compact_unwind section\n"; 7947 return; 7948 } 7949 } 7950 7951 // Finally, we're ready to print the data we've gathered. 7952 outs() << "Contents of __compact_unwind section:\n"; 7953 for (auto &Entry : CompactUnwinds) { 7954 outs() << " Entry at offset " 7955 << format("0x%" PRIx32, Entry.OffsetInSection) << ":\n"; 7956 7957 // 1. Start of the region this entry applies to. 7958 outs() << " start: " << format("0x%" PRIx64, 7959 Entry.FunctionAddr) << ' '; 7960 printUnwindRelocDest(Obj, Symbols, Entry.FunctionReloc, Entry.FunctionAddr); 7961 outs() << '\n'; 7962 7963 // 2. Length of the region this entry applies to. 7964 outs() << " length: " << format("0x%" PRIx32, Entry.Length) 7965 << '\n'; 7966 // 3. The 32-bit compact encoding. 7967 outs() << " compact encoding: " 7968 << format("0x%08" PRIx32, Entry.CompactEncoding) << '\n'; 7969 7970 // 4. The personality function, if present. 7971 if (Entry.PersonalityReloc.getObject()) { 7972 outs() << " personality function: " 7973 << format("0x%" PRIx64, Entry.PersonalityAddr) << ' '; 7974 printUnwindRelocDest(Obj, Symbols, Entry.PersonalityReloc, 7975 Entry.PersonalityAddr); 7976 outs() << '\n'; 7977 } 7978 7979 // 5. This entry's language-specific data area. 7980 if (Entry.LSDAReloc.getObject()) { 7981 outs() << " LSDA: " << format("0x%" PRIx64, 7982 Entry.LSDAAddr) << ' '; 7983 printUnwindRelocDest(Obj, Symbols, Entry.LSDAReloc, Entry.LSDAAddr); 7984 outs() << '\n'; 7985 } 7986 } 7987 } 7988 7989 //===----------------------------------------------------------------------===// 7990 // __unwind_info section dumping 7991 //===----------------------------------------------------------------------===// 7992 7993 static void printRegularSecondLevelUnwindPage(StringRef PageData) { 7994 ptrdiff_t Pos = 0; 7995 uint32_t Kind = readNext<uint32_t>(PageData, Pos); 7996 (void)Kind; 7997 assert(Kind == 2 && "kind for a regular 2nd level index should be 2"); 7998 7999 uint16_t EntriesStart = readNext<uint16_t>(PageData, Pos); 8000 uint16_t NumEntries = readNext<uint16_t>(PageData, Pos); 8001 8002 Pos = EntriesStart; 8003 for (unsigned i = 0; i < NumEntries; ++i) { 8004 uint32_t FunctionOffset = readNext<uint32_t>(PageData, Pos); 8005 uint32_t Encoding = readNext<uint32_t>(PageData, Pos); 8006 8007 outs() << " [" << i << "]: " 8008 << "function offset=" << format("0x%08" PRIx32, FunctionOffset) 8009 << ", " 8010 << "encoding=" << format("0x%08" PRIx32, Encoding) << '\n'; 8011 } 8012 } 8013 8014 static void printCompressedSecondLevelUnwindPage( 8015 StringRef PageData, uint32_t FunctionBase, 8016 const SmallVectorImpl<uint32_t> &CommonEncodings) { 8017 ptrdiff_t Pos = 0; 8018 uint32_t Kind = readNext<uint32_t>(PageData, Pos); 8019 (void)Kind; 8020 assert(Kind == 3 && "kind for a compressed 2nd level index should be 3"); 8021 8022 uint32_t NumCommonEncodings = CommonEncodings.size(); 8023 uint16_t EntriesStart = readNext<uint16_t>(PageData, Pos); 8024 uint16_t NumEntries = readNext<uint16_t>(PageData, Pos); 8025 8026 uint16_t PageEncodingsStart = readNext<uint16_t>(PageData, Pos); 8027 uint16_t NumPageEncodings = readNext<uint16_t>(PageData, Pos); 8028 SmallVector<uint32_t, 64> PageEncodings; 8029 if (NumPageEncodings) { 8030 outs() << " Page encodings: (count = " << NumPageEncodings << ")\n"; 8031 Pos = PageEncodingsStart; 8032 for (unsigned i = 0; i < NumPageEncodings; ++i) { 8033 uint32_t Encoding = readNext<uint32_t>(PageData, Pos); 8034 PageEncodings.push_back(Encoding); 8035 outs() << " encoding[" << (i + NumCommonEncodings) 8036 << "]: " << format("0x%08" PRIx32, Encoding) << '\n'; 8037 } 8038 } 8039 8040 Pos = EntriesStart; 8041 for (unsigned i = 0; i < NumEntries; ++i) { 8042 uint32_t Entry = readNext<uint32_t>(PageData, Pos); 8043 uint32_t FunctionOffset = FunctionBase + (Entry & 0xffffff); 8044 uint32_t EncodingIdx = Entry >> 24; 8045 8046 uint32_t Encoding; 8047 if (EncodingIdx < NumCommonEncodings) 8048 Encoding = CommonEncodings[EncodingIdx]; 8049 else 8050 Encoding = PageEncodings[EncodingIdx - NumCommonEncodings]; 8051 8052 outs() << " [" << i << "]: " 8053 << "function offset=" << format("0x%08" PRIx32, FunctionOffset) 8054 << ", " 8055 << "encoding[" << EncodingIdx 8056 << "]=" << format("0x%08" PRIx32, Encoding) << '\n'; 8057 } 8058 } 8059 8060 static void printMachOUnwindInfoSection(const MachOObjectFile *Obj, 8061 std::map<uint64_t, SymbolRef> &Symbols, 8062 const SectionRef &UnwindInfo) { 8063 8064 if (!Obj->isLittleEndian()) { 8065 outs() << "Skipping big-endian __unwind_info section\n"; 8066 return; 8067 } 8068 8069 outs() << "Contents of __unwind_info section:\n"; 8070 8071 StringRef Contents = 8072 unwrapOrError(UnwindInfo.getContents(), Obj->getFileName()); 8073 ptrdiff_t Pos = 0; 8074 8075 //===---------------------------------- 8076 // Section header 8077 //===---------------------------------- 8078 8079 uint32_t Version = readNext<uint32_t>(Contents, Pos); 8080 outs() << " Version: " 8081 << format("0x%" PRIx32, Version) << '\n'; 8082 if (Version != 1) { 8083 outs() << " Skipping section with unknown version\n"; 8084 return; 8085 } 8086 8087 uint32_t CommonEncodingsStart = readNext<uint32_t>(Contents, Pos); 8088 outs() << " Common encodings array section offset: " 8089 << format("0x%" PRIx32, CommonEncodingsStart) << '\n'; 8090 uint32_t NumCommonEncodings = readNext<uint32_t>(Contents, Pos); 8091 outs() << " Number of common encodings in array: " 8092 << format("0x%" PRIx32, NumCommonEncodings) << '\n'; 8093 8094 uint32_t PersonalitiesStart = readNext<uint32_t>(Contents, Pos); 8095 outs() << " Personality function array section offset: " 8096 << format("0x%" PRIx32, PersonalitiesStart) << '\n'; 8097 uint32_t NumPersonalities = readNext<uint32_t>(Contents, Pos); 8098 outs() << " Number of personality functions in array: " 8099 << format("0x%" PRIx32, NumPersonalities) << '\n'; 8100 8101 uint32_t IndicesStart = readNext<uint32_t>(Contents, Pos); 8102 outs() << " Index array section offset: " 8103 << format("0x%" PRIx32, IndicesStart) << '\n'; 8104 uint32_t NumIndices = readNext<uint32_t>(Contents, Pos); 8105 outs() << " Number of indices in array: " 8106 << format("0x%" PRIx32, NumIndices) << '\n'; 8107 8108 //===---------------------------------- 8109 // A shared list of common encodings 8110 //===---------------------------------- 8111 8112 // These occupy indices in the range [0, N] whenever an encoding is referenced 8113 // from a compressed 2nd level index table. In practice the linker only 8114 // creates ~128 of these, so that indices are available to embed encodings in 8115 // the 2nd level index. 8116 8117 SmallVector<uint32_t, 64> CommonEncodings; 8118 outs() << " Common encodings: (count = " << NumCommonEncodings << ")\n"; 8119 Pos = CommonEncodingsStart; 8120 for (unsigned i = 0; i < NumCommonEncodings; ++i) { 8121 uint32_t Encoding = readNext<uint32_t>(Contents, Pos); 8122 CommonEncodings.push_back(Encoding); 8123 8124 outs() << " encoding[" << i << "]: " << format("0x%08" PRIx32, Encoding) 8125 << '\n'; 8126 } 8127 8128 //===---------------------------------- 8129 // Personality functions used in this executable 8130 //===---------------------------------- 8131 8132 // There should be only a handful of these (one per source language, 8133 // roughly). Particularly since they only get 2 bits in the compact encoding. 8134 8135 outs() << " Personality functions: (count = " << NumPersonalities << ")\n"; 8136 Pos = PersonalitiesStart; 8137 for (unsigned i = 0; i < NumPersonalities; ++i) { 8138 uint32_t PersonalityFn = readNext<uint32_t>(Contents, Pos); 8139 outs() << " personality[" << i + 1 8140 << "]: " << format("0x%08" PRIx32, PersonalityFn) << '\n'; 8141 } 8142 8143 //===---------------------------------- 8144 // The level 1 index entries 8145 //===---------------------------------- 8146 8147 // These specify an approximate place to start searching for the more detailed 8148 // information, sorted by PC. 8149 8150 struct IndexEntry { 8151 uint32_t FunctionOffset; 8152 uint32_t SecondLevelPageStart; 8153 uint32_t LSDAStart; 8154 }; 8155 8156 SmallVector<IndexEntry, 4> IndexEntries; 8157 8158 outs() << " Top level indices: (count = " << NumIndices << ")\n"; 8159 Pos = IndicesStart; 8160 for (unsigned i = 0; i < NumIndices; ++i) { 8161 IndexEntry Entry; 8162 8163 Entry.FunctionOffset = readNext<uint32_t>(Contents, Pos); 8164 Entry.SecondLevelPageStart = readNext<uint32_t>(Contents, Pos); 8165 Entry.LSDAStart = readNext<uint32_t>(Contents, Pos); 8166 IndexEntries.push_back(Entry); 8167 8168 outs() << " [" << i << "]: " 8169 << "function offset=" << format("0x%08" PRIx32, Entry.FunctionOffset) 8170 << ", " 8171 << "2nd level page offset=" 8172 << format("0x%08" PRIx32, Entry.SecondLevelPageStart) << ", " 8173 << "LSDA offset=" << format("0x%08" PRIx32, Entry.LSDAStart) << '\n'; 8174 } 8175 8176 //===---------------------------------- 8177 // Next come the LSDA tables 8178 //===---------------------------------- 8179 8180 // The LSDA layout is rather implicit: it's a contiguous array of entries from 8181 // the first top-level index's LSDAOffset to the last (sentinel). 8182 8183 outs() << " LSDA descriptors:\n"; 8184 Pos = IndexEntries[0].LSDAStart; 8185 const uint32_t LSDASize = 2 * sizeof(uint32_t); 8186 int NumLSDAs = 8187 (IndexEntries.back().LSDAStart - IndexEntries[0].LSDAStart) / LSDASize; 8188 8189 for (int i = 0; i < NumLSDAs; ++i) { 8190 uint32_t FunctionOffset = readNext<uint32_t>(Contents, Pos); 8191 uint32_t LSDAOffset = readNext<uint32_t>(Contents, Pos); 8192 outs() << " [" << i << "]: " 8193 << "function offset=" << format("0x%08" PRIx32, FunctionOffset) 8194 << ", " 8195 << "LSDA offset=" << format("0x%08" PRIx32, LSDAOffset) << '\n'; 8196 } 8197 8198 //===---------------------------------- 8199 // Finally, the 2nd level indices 8200 //===---------------------------------- 8201 8202 // Generally these are 4K in size, and have 2 possible forms: 8203 // + Regular stores up to 511 entries with disparate encodings 8204 // + Compressed stores up to 1021 entries if few enough compact encoding 8205 // values are used. 8206 outs() << " Second level indices:\n"; 8207 for (unsigned i = 0; i < IndexEntries.size() - 1; ++i) { 8208 // The final sentinel top-level index has no associated 2nd level page 8209 if (IndexEntries[i].SecondLevelPageStart == 0) 8210 break; 8211 8212 outs() << " Second level index[" << i << "]: " 8213 << "offset in section=" 8214 << format("0x%08" PRIx32, IndexEntries[i].SecondLevelPageStart) 8215 << ", " 8216 << "base function offset=" 8217 << format("0x%08" PRIx32, IndexEntries[i].FunctionOffset) << '\n'; 8218 8219 Pos = IndexEntries[i].SecondLevelPageStart; 8220 if (Pos + sizeof(uint32_t) > Contents.size()) { 8221 outs() << "warning: invalid offset for second level page: " << Pos << '\n'; 8222 continue; 8223 } 8224 8225 uint32_t Kind = 8226 *reinterpret_cast<const support::ulittle32_t *>(Contents.data() + Pos); 8227 if (Kind == 2) 8228 printRegularSecondLevelUnwindPage(Contents.substr(Pos, 4096)); 8229 else if (Kind == 3) 8230 printCompressedSecondLevelUnwindPage(Contents.substr(Pos, 4096), 8231 IndexEntries[i].FunctionOffset, 8232 CommonEncodings); 8233 else 8234 outs() << " Skipping 2nd level page with unknown kind " << Kind 8235 << '\n'; 8236 } 8237 } 8238 8239 void objdump::printMachOUnwindInfo(const MachOObjectFile *Obj) { 8240 std::map<uint64_t, SymbolRef> Symbols; 8241 for (const SymbolRef &SymRef : Obj->symbols()) { 8242 // Discard any undefined or absolute symbols. They're not going to take part 8243 // in the convenience lookup for unwind info and just take up resources. 8244 auto SectOrErr = SymRef.getSection(); 8245 if (!SectOrErr) { 8246 // TODO: Actually report errors helpfully. 8247 consumeError(SectOrErr.takeError()); 8248 continue; 8249 } 8250 section_iterator Section = *SectOrErr; 8251 if (Section == Obj->section_end()) 8252 continue; 8253 8254 uint64_t Addr = cantFail(SymRef.getValue()); 8255 Symbols.insert(std::make_pair(Addr, SymRef)); 8256 } 8257 8258 for (const SectionRef &Section : Obj->sections()) { 8259 StringRef SectName; 8260 if (Expected<StringRef> NameOrErr = Section.getName()) 8261 SectName = *NameOrErr; 8262 else 8263 consumeError(NameOrErr.takeError()); 8264 8265 if (SectName == "__compact_unwind") 8266 printMachOCompactUnwindSection(Obj, Symbols, Section); 8267 else if (SectName == "__unwind_info") 8268 printMachOUnwindInfoSection(Obj, Symbols, Section); 8269 } 8270 } 8271 8272 static void PrintMachHeader(uint32_t magic, uint32_t cputype, 8273 uint32_t cpusubtype, uint32_t filetype, 8274 uint32_t ncmds, uint32_t sizeofcmds, uint32_t flags, 8275 bool verbose) { 8276 outs() << "Mach header\n"; 8277 outs() << " magic cputype cpusubtype caps filetype ncmds " 8278 "sizeofcmds flags\n"; 8279 if (verbose) { 8280 if (magic == MachO::MH_MAGIC) 8281 outs() << " MH_MAGIC"; 8282 else if (magic == MachO::MH_MAGIC_64) 8283 outs() << "MH_MAGIC_64"; 8284 else 8285 outs() << format(" 0x%08" PRIx32, magic); 8286 switch (cputype) { 8287 case MachO::CPU_TYPE_I386: 8288 outs() << " I386"; 8289 switch (cpusubtype & ~MachO::CPU_SUBTYPE_MASK) { 8290 case MachO::CPU_SUBTYPE_I386_ALL: 8291 outs() << " ALL"; 8292 break; 8293 default: 8294 outs() << format(" %10d", cpusubtype & ~MachO::CPU_SUBTYPE_MASK); 8295 break; 8296 } 8297 break; 8298 case MachO::CPU_TYPE_X86_64: 8299 outs() << " X86_64"; 8300 switch (cpusubtype & ~MachO::CPU_SUBTYPE_MASK) { 8301 case MachO::CPU_SUBTYPE_X86_64_ALL: 8302 outs() << " ALL"; 8303 break; 8304 case MachO::CPU_SUBTYPE_X86_64_H: 8305 outs() << " Haswell"; 8306 break; 8307 default: 8308 outs() << format(" %10d", cpusubtype & ~MachO::CPU_SUBTYPE_MASK); 8309 break; 8310 } 8311 break; 8312 case MachO::CPU_TYPE_ARM: 8313 outs() << " ARM"; 8314 switch (cpusubtype & ~MachO::CPU_SUBTYPE_MASK) { 8315 case MachO::CPU_SUBTYPE_ARM_ALL: 8316 outs() << " ALL"; 8317 break; 8318 case MachO::CPU_SUBTYPE_ARM_V4T: 8319 outs() << " V4T"; 8320 break; 8321 case MachO::CPU_SUBTYPE_ARM_V5TEJ: 8322 outs() << " V5TEJ"; 8323 break; 8324 case MachO::CPU_SUBTYPE_ARM_XSCALE: 8325 outs() << " XSCALE"; 8326 break; 8327 case MachO::CPU_SUBTYPE_ARM_V6: 8328 outs() << " V6"; 8329 break; 8330 case MachO::CPU_SUBTYPE_ARM_V6M: 8331 outs() << " V6M"; 8332 break; 8333 case MachO::CPU_SUBTYPE_ARM_V7: 8334 outs() << " V7"; 8335 break; 8336 case MachO::CPU_SUBTYPE_ARM_V7EM: 8337 outs() << " V7EM"; 8338 break; 8339 case MachO::CPU_SUBTYPE_ARM_V7K: 8340 outs() << " V7K"; 8341 break; 8342 case MachO::CPU_SUBTYPE_ARM_V7M: 8343 outs() << " V7M"; 8344 break; 8345 case MachO::CPU_SUBTYPE_ARM_V7S: 8346 outs() << " V7S"; 8347 break; 8348 default: 8349 outs() << format(" %10d", cpusubtype & ~MachO::CPU_SUBTYPE_MASK); 8350 break; 8351 } 8352 break; 8353 case MachO::CPU_TYPE_ARM64: 8354 outs() << " ARM64"; 8355 switch (cpusubtype & ~MachO::CPU_SUBTYPE_MASK) { 8356 case MachO::CPU_SUBTYPE_ARM64_ALL: 8357 outs() << " ALL"; 8358 break; 8359 case MachO::CPU_SUBTYPE_ARM64_V8: 8360 outs() << " V8"; 8361 break; 8362 case MachO::CPU_SUBTYPE_ARM64E: 8363 outs() << " E"; 8364 break; 8365 default: 8366 outs() << format(" %10d", cpusubtype & ~MachO::CPU_SUBTYPE_MASK); 8367 break; 8368 } 8369 break; 8370 case MachO::CPU_TYPE_ARM64_32: 8371 outs() << " ARM64_32"; 8372 switch (cpusubtype & ~MachO::CPU_SUBTYPE_MASK) { 8373 case MachO::CPU_SUBTYPE_ARM64_32_V8: 8374 outs() << " V8"; 8375 break; 8376 default: 8377 outs() << format(" %10d", cpusubtype & ~MachO::CPU_SUBTYPE_MASK); 8378 break; 8379 } 8380 break; 8381 case MachO::CPU_TYPE_POWERPC: 8382 outs() << " PPC"; 8383 switch (cpusubtype & ~MachO::CPU_SUBTYPE_MASK) { 8384 case MachO::CPU_SUBTYPE_POWERPC_ALL: 8385 outs() << " ALL"; 8386 break; 8387 default: 8388 outs() << format(" %10d", cpusubtype & ~MachO::CPU_SUBTYPE_MASK); 8389 break; 8390 } 8391 break; 8392 case MachO::CPU_TYPE_POWERPC64: 8393 outs() << " PPC64"; 8394 switch (cpusubtype & ~MachO::CPU_SUBTYPE_MASK) { 8395 case MachO::CPU_SUBTYPE_POWERPC_ALL: 8396 outs() << " ALL"; 8397 break; 8398 default: 8399 outs() << format(" %10d", cpusubtype & ~MachO::CPU_SUBTYPE_MASK); 8400 break; 8401 } 8402 break; 8403 default: 8404 outs() << format(" %7d", cputype); 8405 outs() << format(" %10d", cpusubtype & ~MachO::CPU_SUBTYPE_MASK); 8406 break; 8407 } 8408 if ((cpusubtype & MachO::CPU_SUBTYPE_MASK) == MachO::CPU_SUBTYPE_LIB64) { 8409 outs() << " LIB64"; 8410 } else { 8411 outs() << format(" 0x%02" PRIx32, 8412 (cpusubtype & MachO::CPU_SUBTYPE_MASK) >> 24); 8413 } 8414 switch (filetype) { 8415 case MachO::MH_OBJECT: 8416 outs() << " OBJECT"; 8417 break; 8418 case MachO::MH_EXECUTE: 8419 outs() << " EXECUTE"; 8420 break; 8421 case MachO::MH_FVMLIB: 8422 outs() << " FVMLIB"; 8423 break; 8424 case MachO::MH_CORE: 8425 outs() << " CORE"; 8426 break; 8427 case MachO::MH_PRELOAD: 8428 outs() << " PRELOAD"; 8429 break; 8430 case MachO::MH_DYLIB: 8431 outs() << " DYLIB"; 8432 break; 8433 case MachO::MH_DYLIB_STUB: 8434 outs() << " DYLIB_STUB"; 8435 break; 8436 case MachO::MH_DYLINKER: 8437 outs() << " DYLINKER"; 8438 break; 8439 case MachO::MH_BUNDLE: 8440 outs() << " BUNDLE"; 8441 break; 8442 case MachO::MH_DSYM: 8443 outs() << " DSYM"; 8444 break; 8445 case MachO::MH_KEXT_BUNDLE: 8446 outs() << " KEXTBUNDLE"; 8447 break; 8448 default: 8449 outs() << format(" %10u", filetype); 8450 break; 8451 } 8452 outs() << format(" %5u", ncmds); 8453 outs() << format(" %10u", sizeofcmds); 8454 uint32_t f = flags; 8455 if (f & MachO::MH_NOUNDEFS) { 8456 outs() << " NOUNDEFS"; 8457 f &= ~MachO::MH_NOUNDEFS; 8458 } 8459 if (f & MachO::MH_INCRLINK) { 8460 outs() << " INCRLINK"; 8461 f &= ~MachO::MH_INCRLINK; 8462 } 8463 if (f & MachO::MH_DYLDLINK) { 8464 outs() << " DYLDLINK"; 8465 f &= ~MachO::MH_DYLDLINK; 8466 } 8467 if (f & MachO::MH_BINDATLOAD) { 8468 outs() << " BINDATLOAD"; 8469 f &= ~MachO::MH_BINDATLOAD; 8470 } 8471 if (f & MachO::MH_PREBOUND) { 8472 outs() << " PREBOUND"; 8473 f &= ~MachO::MH_PREBOUND; 8474 } 8475 if (f & MachO::MH_SPLIT_SEGS) { 8476 outs() << " SPLIT_SEGS"; 8477 f &= ~MachO::MH_SPLIT_SEGS; 8478 } 8479 if (f & MachO::MH_LAZY_INIT) { 8480 outs() << " LAZY_INIT"; 8481 f &= ~MachO::MH_LAZY_INIT; 8482 } 8483 if (f & MachO::MH_TWOLEVEL) { 8484 outs() << " TWOLEVEL"; 8485 f &= ~MachO::MH_TWOLEVEL; 8486 } 8487 if (f & MachO::MH_FORCE_FLAT) { 8488 outs() << " FORCE_FLAT"; 8489 f &= ~MachO::MH_FORCE_FLAT; 8490 } 8491 if (f & MachO::MH_NOMULTIDEFS) { 8492 outs() << " NOMULTIDEFS"; 8493 f &= ~MachO::MH_NOMULTIDEFS; 8494 } 8495 if (f & MachO::MH_NOFIXPREBINDING) { 8496 outs() << " NOFIXPREBINDING"; 8497 f &= ~MachO::MH_NOFIXPREBINDING; 8498 } 8499 if (f & MachO::MH_PREBINDABLE) { 8500 outs() << " PREBINDABLE"; 8501 f &= ~MachO::MH_PREBINDABLE; 8502 } 8503 if (f & MachO::MH_ALLMODSBOUND) { 8504 outs() << " ALLMODSBOUND"; 8505 f &= ~MachO::MH_ALLMODSBOUND; 8506 } 8507 if (f & MachO::MH_SUBSECTIONS_VIA_SYMBOLS) { 8508 outs() << " SUBSECTIONS_VIA_SYMBOLS"; 8509 f &= ~MachO::MH_SUBSECTIONS_VIA_SYMBOLS; 8510 } 8511 if (f & MachO::MH_CANONICAL) { 8512 outs() << " CANONICAL"; 8513 f &= ~MachO::MH_CANONICAL; 8514 } 8515 if (f & MachO::MH_WEAK_DEFINES) { 8516 outs() << " WEAK_DEFINES"; 8517 f &= ~MachO::MH_WEAK_DEFINES; 8518 } 8519 if (f & MachO::MH_BINDS_TO_WEAK) { 8520 outs() << " BINDS_TO_WEAK"; 8521 f &= ~MachO::MH_BINDS_TO_WEAK; 8522 } 8523 if (f & MachO::MH_ALLOW_STACK_EXECUTION) { 8524 outs() << " ALLOW_STACK_EXECUTION"; 8525 f &= ~MachO::MH_ALLOW_STACK_EXECUTION; 8526 } 8527 if (f & MachO::MH_DEAD_STRIPPABLE_DYLIB) { 8528 outs() << " DEAD_STRIPPABLE_DYLIB"; 8529 f &= ~MachO::MH_DEAD_STRIPPABLE_DYLIB; 8530 } 8531 if (f & MachO::MH_PIE) { 8532 outs() << " PIE"; 8533 f &= ~MachO::MH_PIE; 8534 } 8535 if (f & MachO::MH_NO_REEXPORTED_DYLIBS) { 8536 outs() << " NO_REEXPORTED_DYLIBS"; 8537 f &= ~MachO::MH_NO_REEXPORTED_DYLIBS; 8538 } 8539 if (f & MachO::MH_HAS_TLV_DESCRIPTORS) { 8540 outs() << " MH_HAS_TLV_DESCRIPTORS"; 8541 f &= ~MachO::MH_HAS_TLV_DESCRIPTORS; 8542 } 8543 if (f & MachO::MH_NO_HEAP_EXECUTION) { 8544 outs() << " MH_NO_HEAP_EXECUTION"; 8545 f &= ~MachO::MH_NO_HEAP_EXECUTION; 8546 } 8547 if (f & MachO::MH_APP_EXTENSION_SAFE) { 8548 outs() << " APP_EXTENSION_SAFE"; 8549 f &= ~MachO::MH_APP_EXTENSION_SAFE; 8550 } 8551 if (f & MachO::MH_NLIST_OUTOFSYNC_WITH_DYLDINFO) { 8552 outs() << " NLIST_OUTOFSYNC_WITH_DYLDINFO"; 8553 f &= ~MachO::MH_NLIST_OUTOFSYNC_WITH_DYLDINFO; 8554 } 8555 if (f != 0 || flags == 0) 8556 outs() << format(" 0x%08" PRIx32, f); 8557 } else { 8558 outs() << format(" 0x%08" PRIx32, magic); 8559 outs() << format(" %7d", cputype); 8560 outs() << format(" %10d", cpusubtype & ~MachO::CPU_SUBTYPE_MASK); 8561 outs() << format(" 0x%02" PRIx32, 8562 (cpusubtype & MachO::CPU_SUBTYPE_MASK) >> 24); 8563 outs() << format(" %10u", filetype); 8564 outs() << format(" %5u", ncmds); 8565 outs() << format(" %10u", sizeofcmds); 8566 outs() << format(" 0x%08" PRIx32, flags); 8567 } 8568 outs() << "\n"; 8569 } 8570 8571 static void PrintSegmentCommand(uint32_t cmd, uint32_t cmdsize, 8572 StringRef SegName, uint64_t vmaddr, 8573 uint64_t vmsize, uint64_t fileoff, 8574 uint64_t filesize, uint32_t maxprot, 8575 uint32_t initprot, uint32_t nsects, 8576 uint32_t flags, uint32_t object_size, 8577 bool verbose) { 8578 uint64_t expected_cmdsize; 8579 if (cmd == MachO::LC_SEGMENT) { 8580 outs() << " cmd LC_SEGMENT\n"; 8581 expected_cmdsize = nsects; 8582 expected_cmdsize *= sizeof(struct MachO::section); 8583 expected_cmdsize += sizeof(struct MachO::segment_command); 8584 } else { 8585 outs() << " cmd LC_SEGMENT_64\n"; 8586 expected_cmdsize = nsects; 8587 expected_cmdsize *= sizeof(struct MachO::section_64); 8588 expected_cmdsize += sizeof(struct MachO::segment_command_64); 8589 } 8590 outs() << " cmdsize " << cmdsize; 8591 if (cmdsize != expected_cmdsize) 8592 outs() << " Inconsistent size\n"; 8593 else 8594 outs() << "\n"; 8595 outs() << " segname " << SegName << "\n"; 8596 if (cmd == MachO::LC_SEGMENT_64) { 8597 outs() << " vmaddr " << format("0x%016" PRIx64, vmaddr) << "\n"; 8598 outs() << " vmsize " << format("0x%016" PRIx64, vmsize) << "\n"; 8599 } else { 8600 outs() << " vmaddr " << format("0x%08" PRIx64, vmaddr) << "\n"; 8601 outs() << " vmsize " << format("0x%08" PRIx64, vmsize) << "\n"; 8602 } 8603 outs() << " fileoff " << fileoff; 8604 if (fileoff > object_size) 8605 outs() << " (past end of file)\n"; 8606 else 8607 outs() << "\n"; 8608 outs() << " filesize " << filesize; 8609 if (fileoff + filesize > object_size) 8610 outs() << " (past end of file)\n"; 8611 else 8612 outs() << "\n"; 8613 if (verbose) { 8614 if ((maxprot & 8615 ~(MachO::VM_PROT_READ | MachO::VM_PROT_WRITE | 8616 MachO::VM_PROT_EXECUTE)) != 0) 8617 outs() << " maxprot ?" << format("0x%08" PRIx32, maxprot) << "\n"; 8618 else { 8619 outs() << " maxprot "; 8620 outs() << ((maxprot & MachO::VM_PROT_READ) ? "r" : "-"); 8621 outs() << ((maxprot & MachO::VM_PROT_WRITE) ? "w" : "-"); 8622 outs() << ((maxprot & MachO::VM_PROT_EXECUTE) ? "x\n" : "-\n"); 8623 } 8624 if ((initprot & 8625 ~(MachO::VM_PROT_READ | MachO::VM_PROT_WRITE | 8626 MachO::VM_PROT_EXECUTE)) != 0) 8627 outs() << " initprot ?" << format("0x%08" PRIx32, initprot) << "\n"; 8628 else { 8629 outs() << " initprot "; 8630 outs() << ((initprot & MachO::VM_PROT_READ) ? "r" : "-"); 8631 outs() << ((initprot & MachO::VM_PROT_WRITE) ? "w" : "-"); 8632 outs() << ((initprot & MachO::VM_PROT_EXECUTE) ? "x\n" : "-\n"); 8633 } 8634 } else { 8635 outs() << " maxprot " << format("0x%08" PRIx32, maxprot) << "\n"; 8636 outs() << " initprot " << format("0x%08" PRIx32, initprot) << "\n"; 8637 } 8638 outs() << " nsects " << nsects << "\n"; 8639 if (verbose) { 8640 outs() << " flags"; 8641 if (flags == 0) 8642 outs() << " (none)\n"; 8643 else { 8644 if (flags & MachO::SG_HIGHVM) { 8645 outs() << " HIGHVM"; 8646 flags &= ~MachO::SG_HIGHVM; 8647 } 8648 if (flags & MachO::SG_FVMLIB) { 8649 outs() << " FVMLIB"; 8650 flags &= ~MachO::SG_FVMLIB; 8651 } 8652 if (flags & MachO::SG_NORELOC) { 8653 outs() << " NORELOC"; 8654 flags &= ~MachO::SG_NORELOC; 8655 } 8656 if (flags & MachO::SG_PROTECTED_VERSION_1) { 8657 outs() << " PROTECTED_VERSION_1"; 8658 flags &= ~MachO::SG_PROTECTED_VERSION_1; 8659 } 8660 if (flags) 8661 outs() << format(" 0x%08" PRIx32, flags) << " (unknown flags)\n"; 8662 else 8663 outs() << "\n"; 8664 } 8665 } else { 8666 outs() << " flags " << format("0x%" PRIx32, flags) << "\n"; 8667 } 8668 } 8669 8670 static void PrintSection(const char *sectname, const char *segname, 8671 uint64_t addr, uint64_t size, uint32_t offset, 8672 uint32_t align, uint32_t reloff, uint32_t nreloc, 8673 uint32_t flags, uint32_t reserved1, uint32_t reserved2, 8674 uint32_t cmd, const char *sg_segname, 8675 uint32_t filetype, uint32_t object_size, 8676 bool verbose) { 8677 outs() << "Section\n"; 8678 outs() << " sectname " << format("%.16s\n", sectname); 8679 outs() << " segname " << format("%.16s", segname); 8680 if (filetype != MachO::MH_OBJECT && strncmp(sg_segname, segname, 16) != 0) 8681 outs() << " (does not match segment)\n"; 8682 else 8683 outs() << "\n"; 8684 if (cmd == MachO::LC_SEGMENT_64) { 8685 outs() << " addr " << format("0x%016" PRIx64, addr) << "\n"; 8686 outs() << " size " << format("0x%016" PRIx64, size); 8687 } else { 8688 outs() << " addr " << format("0x%08" PRIx64, addr) << "\n"; 8689 outs() << " size " << format("0x%08" PRIx64, size); 8690 } 8691 if ((flags & MachO::S_ZEROFILL) != 0 && offset + size > object_size) 8692 outs() << " (past end of file)\n"; 8693 else 8694 outs() << "\n"; 8695 outs() << " offset " << offset; 8696 if (offset > object_size) 8697 outs() << " (past end of file)\n"; 8698 else 8699 outs() << "\n"; 8700 uint32_t align_shifted = 1 << align; 8701 outs() << " align 2^" << align << " (" << align_shifted << ")\n"; 8702 outs() << " reloff " << reloff; 8703 if (reloff > object_size) 8704 outs() << " (past end of file)\n"; 8705 else 8706 outs() << "\n"; 8707 outs() << " nreloc " << nreloc; 8708 if (reloff + nreloc * sizeof(struct MachO::relocation_info) > object_size) 8709 outs() << " (past end of file)\n"; 8710 else 8711 outs() << "\n"; 8712 uint32_t section_type = flags & MachO::SECTION_TYPE; 8713 if (verbose) { 8714 outs() << " type"; 8715 if (section_type == MachO::S_REGULAR) 8716 outs() << " S_REGULAR\n"; 8717 else if (section_type == MachO::S_ZEROFILL) 8718 outs() << " S_ZEROFILL\n"; 8719 else if (section_type == MachO::S_CSTRING_LITERALS) 8720 outs() << " S_CSTRING_LITERALS\n"; 8721 else if (section_type == MachO::S_4BYTE_LITERALS) 8722 outs() << " S_4BYTE_LITERALS\n"; 8723 else if (section_type == MachO::S_8BYTE_LITERALS) 8724 outs() << " S_8BYTE_LITERALS\n"; 8725 else if (section_type == MachO::S_16BYTE_LITERALS) 8726 outs() << " S_16BYTE_LITERALS\n"; 8727 else if (section_type == MachO::S_LITERAL_POINTERS) 8728 outs() << " S_LITERAL_POINTERS\n"; 8729 else if (section_type == MachO::S_NON_LAZY_SYMBOL_POINTERS) 8730 outs() << " S_NON_LAZY_SYMBOL_POINTERS\n"; 8731 else if (section_type == MachO::S_LAZY_SYMBOL_POINTERS) 8732 outs() << " S_LAZY_SYMBOL_POINTERS\n"; 8733 else if (section_type == MachO::S_SYMBOL_STUBS) 8734 outs() << " S_SYMBOL_STUBS\n"; 8735 else if (section_type == MachO::S_MOD_INIT_FUNC_POINTERS) 8736 outs() << " S_MOD_INIT_FUNC_POINTERS\n"; 8737 else if (section_type == MachO::S_MOD_TERM_FUNC_POINTERS) 8738 outs() << " S_MOD_TERM_FUNC_POINTERS\n"; 8739 else if (section_type == MachO::S_COALESCED) 8740 outs() << " S_COALESCED\n"; 8741 else if (section_type == MachO::S_INTERPOSING) 8742 outs() << " S_INTERPOSING\n"; 8743 else if (section_type == MachO::S_DTRACE_DOF) 8744 outs() << " S_DTRACE_DOF\n"; 8745 else if (section_type == MachO::S_LAZY_DYLIB_SYMBOL_POINTERS) 8746 outs() << " S_LAZY_DYLIB_SYMBOL_POINTERS\n"; 8747 else if (section_type == MachO::S_THREAD_LOCAL_REGULAR) 8748 outs() << " S_THREAD_LOCAL_REGULAR\n"; 8749 else if (section_type == MachO::S_THREAD_LOCAL_ZEROFILL) 8750 outs() << " S_THREAD_LOCAL_ZEROFILL\n"; 8751 else if (section_type == MachO::S_THREAD_LOCAL_VARIABLES) 8752 outs() << " S_THREAD_LOCAL_VARIABLES\n"; 8753 else if (section_type == MachO::S_THREAD_LOCAL_VARIABLE_POINTERS) 8754 outs() << " S_THREAD_LOCAL_VARIABLE_POINTERS\n"; 8755 else if (section_type == MachO::S_THREAD_LOCAL_INIT_FUNCTION_POINTERS) 8756 outs() << " S_THREAD_LOCAL_INIT_FUNCTION_POINTERS\n"; 8757 else 8758 outs() << format("0x%08" PRIx32, section_type) << "\n"; 8759 outs() << "attributes"; 8760 uint32_t section_attributes = flags & MachO::SECTION_ATTRIBUTES; 8761 if (section_attributes & MachO::S_ATTR_PURE_INSTRUCTIONS) 8762 outs() << " PURE_INSTRUCTIONS"; 8763 if (section_attributes & MachO::S_ATTR_NO_TOC) 8764 outs() << " NO_TOC"; 8765 if (section_attributes & MachO::S_ATTR_STRIP_STATIC_SYMS) 8766 outs() << " STRIP_STATIC_SYMS"; 8767 if (section_attributes & MachO::S_ATTR_NO_DEAD_STRIP) 8768 outs() << " NO_DEAD_STRIP"; 8769 if (section_attributes & MachO::S_ATTR_LIVE_SUPPORT) 8770 outs() << " LIVE_SUPPORT"; 8771 if (section_attributes & MachO::S_ATTR_SELF_MODIFYING_CODE) 8772 outs() << " SELF_MODIFYING_CODE"; 8773 if (section_attributes & MachO::S_ATTR_DEBUG) 8774 outs() << " DEBUG"; 8775 if (section_attributes & MachO::S_ATTR_SOME_INSTRUCTIONS) 8776 outs() << " SOME_INSTRUCTIONS"; 8777 if (section_attributes & MachO::S_ATTR_EXT_RELOC) 8778 outs() << " EXT_RELOC"; 8779 if (section_attributes & MachO::S_ATTR_LOC_RELOC) 8780 outs() << " LOC_RELOC"; 8781 if (section_attributes == 0) 8782 outs() << " (none)"; 8783 outs() << "\n"; 8784 } else 8785 outs() << " flags " << format("0x%08" PRIx32, flags) << "\n"; 8786 outs() << " reserved1 " << reserved1; 8787 if (section_type == MachO::S_SYMBOL_STUBS || 8788 section_type == MachO::S_LAZY_SYMBOL_POINTERS || 8789 section_type == MachO::S_LAZY_DYLIB_SYMBOL_POINTERS || 8790 section_type == MachO::S_NON_LAZY_SYMBOL_POINTERS || 8791 section_type == MachO::S_THREAD_LOCAL_VARIABLE_POINTERS) 8792 outs() << " (index into indirect symbol table)\n"; 8793 else 8794 outs() << "\n"; 8795 outs() << " reserved2 " << reserved2; 8796 if (section_type == MachO::S_SYMBOL_STUBS) 8797 outs() << " (size of stubs)\n"; 8798 else 8799 outs() << "\n"; 8800 } 8801 8802 static void PrintSymtabLoadCommand(MachO::symtab_command st, bool Is64Bit, 8803 uint32_t object_size) { 8804 outs() << " cmd LC_SYMTAB\n"; 8805 outs() << " cmdsize " << st.cmdsize; 8806 if (st.cmdsize != sizeof(struct MachO::symtab_command)) 8807 outs() << " Incorrect size\n"; 8808 else 8809 outs() << "\n"; 8810 outs() << " symoff " << st.symoff; 8811 if (st.symoff > object_size) 8812 outs() << " (past end of file)\n"; 8813 else 8814 outs() << "\n"; 8815 outs() << " nsyms " << st.nsyms; 8816 uint64_t big_size; 8817 if (Is64Bit) { 8818 big_size = st.nsyms; 8819 big_size *= sizeof(struct MachO::nlist_64); 8820 big_size += st.symoff; 8821 if (big_size > object_size) 8822 outs() << " (past end of file)\n"; 8823 else 8824 outs() << "\n"; 8825 } else { 8826 big_size = st.nsyms; 8827 big_size *= sizeof(struct MachO::nlist); 8828 big_size += st.symoff; 8829 if (big_size > object_size) 8830 outs() << " (past end of file)\n"; 8831 else 8832 outs() << "\n"; 8833 } 8834 outs() << " stroff " << st.stroff; 8835 if (st.stroff > object_size) 8836 outs() << " (past end of file)\n"; 8837 else 8838 outs() << "\n"; 8839 outs() << " strsize " << st.strsize; 8840 big_size = st.stroff; 8841 big_size += st.strsize; 8842 if (big_size > object_size) 8843 outs() << " (past end of file)\n"; 8844 else 8845 outs() << "\n"; 8846 } 8847 8848 static void PrintDysymtabLoadCommand(MachO::dysymtab_command dyst, 8849 uint32_t nsyms, uint32_t object_size, 8850 bool Is64Bit) { 8851 outs() << " cmd LC_DYSYMTAB\n"; 8852 outs() << " cmdsize " << dyst.cmdsize; 8853 if (dyst.cmdsize != sizeof(struct MachO::dysymtab_command)) 8854 outs() << " Incorrect size\n"; 8855 else 8856 outs() << "\n"; 8857 outs() << " ilocalsym " << dyst.ilocalsym; 8858 if (dyst.ilocalsym > nsyms) 8859 outs() << " (greater than the number of symbols)\n"; 8860 else 8861 outs() << "\n"; 8862 outs() << " nlocalsym " << dyst.nlocalsym; 8863 uint64_t big_size; 8864 big_size = dyst.ilocalsym; 8865 big_size += dyst.nlocalsym; 8866 if (big_size > nsyms) 8867 outs() << " (past the end of the symbol table)\n"; 8868 else 8869 outs() << "\n"; 8870 outs() << " iextdefsym " << dyst.iextdefsym; 8871 if (dyst.iextdefsym > nsyms) 8872 outs() << " (greater than the number of symbols)\n"; 8873 else 8874 outs() << "\n"; 8875 outs() << " nextdefsym " << dyst.nextdefsym; 8876 big_size = dyst.iextdefsym; 8877 big_size += dyst.nextdefsym; 8878 if (big_size > nsyms) 8879 outs() << " (past the end of the symbol table)\n"; 8880 else 8881 outs() << "\n"; 8882 outs() << " iundefsym " << dyst.iundefsym; 8883 if (dyst.iundefsym > nsyms) 8884 outs() << " (greater than the number of symbols)\n"; 8885 else 8886 outs() << "\n"; 8887 outs() << " nundefsym " << dyst.nundefsym; 8888 big_size = dyst.iundefsym; 8889 big_size += dyst.nundefsym; 8890 if (big_size > nsyms) 8891 outs() << " (past the end of the symbol table)\n"; 8892 else 8893 outs() << "\n"; 8894 outs() << " tocoff " << dyst.tocoff; 8895 if (dyst.tocoff > object_size) 8896 outs() << " (past end of file)\n"; 8897 else 8898 outs() << "\n"; 8899 outs() << " ntoc " << dyst.ntoc; 8900 big_size = dyst.ntoc; 8901 big_size *= sizeof(struct MachO::dylib_table_of_contents); 8902 big_size += dyst.tocoff; 8903 if (big_size > object_size) 8904 outs() << " (past end of file)\n"; 8905 else 8906 outs() << "\n"; 8907 outs() << " modtaboff " << dyst.modtaboff; 8908 if (dyst.modtaboff > object_size) 8909 outs() << " (past end of file)\n"; 8910 else 8911 outs() << "\n"; 8912 outs() << " nmodtab " << dyst.nmodtab; 8913 uint64_t modtabend; 8914 if (Is64Bit) { 8915 modtabend = dyst.nmodtab; 8916 modtabend *= sizeof(struct MachO::dylib_module_64); 8917 modtabend += dyst.modtaboff; 8918 } else { 8919 modtabend = dyst.nmodtab; 8920 modtabend *= sizeof(struct MachO::dylib_module); 8921 modtabend += dyst.modtaboff; 8922 } 8923 if (modtabend > object_size) 8924 outs() << " (past end of file)\n"; 8925 else 8926 outs() << "\n"; 8927 outs() << " extrefsymoff " << dyst.extrefsymoff; 8928 if (dyst.extrefsymoff > object_size) 8929 outs() << " (past end of file)\n"; 8930 else 8931 outs() << "\n"; 8932 outs() << " nextrefsyms " << dyst.nextrefsyms; 8933 big_size = dyst.nextrefsyms; 8934 big_size *= sizeof(struct MachO::dylib_reference); 8935 big_size += dyst.extrefsymoff; 8936 if (big_size > object_size) 8937 outs() << " (past end of file)\n"; 8938 else 8939 outs() << "\n"; 8940 outs() << " indirectsymoff " << dyst.indirectsymoff; 8941 if (dyst.indirectsymoff > object_size) 8942 outs() << " (past end of file)\n"; 8943 else 8944 outs() << "\n"; 8945 outs() << " nindirectsyms " << dyst.nindirectsyms; 8946 big_size = dyst.nindirectsyms; 8947 big_size *= sizeof(uint32_t); 8948 big_size += dyst.indirectsymoff; 8949 if (big_size > object_size) 8950 outs() << " (past end of file)\n"; 8951 else 8952 outs() << "\n"; 8953 outs() << " extreloff " << dyst.extreloff; 8954 if (dyst.extreloff > object_size) 8955 outs() << " (past end of file)\n"; 8956 else 8957 outs() << "\n"; 8958 outs() << " nextrel " << dyst.nextrel; 8959 big_size = dyst.nextrel; 8960 big_size *= sizeof(struct MachO::relocation_info); 8961 big_size += dyst.extreloff; 8962 if (big_size > object_size) 8963 outs() << " (past end of file)\n"; 8964 else 8965 outs() << "\n"; 8966 outs() << " locreloff " << dyst.locreloff; 8967 if (dyst.locreloff > object_size) 8968 outs() << " (past end of file)\n"; 8969 else 8970 outs() << "\n"; 8971 outs() << " nlocrel " << dyst.nlocrel; 8972 big_size = dyst.nlocrel; 8973 big_size *= sizeof(struct MachO::relocation_info); 8974 big_size += dyst.locreloff; 8975 if (big_size > object_size) 8976 outs() << " (past end of file)\n"; 8977 else 8978 outs() << "\n"; 8979 } 8980 8981 static void PrintDyldInfoLoadCommand(MachO::dyld_info_command dc, 8982 uint32_t object_size) { 8983 if (dc.cmd == MachO::LC_DYLD_INFO) 8984 outs() << " cmd LC_DYLD_INFO\n"; 8985 else 8986 outs() << " cmd LC_DYLD_INFO_ONLY\n"; 8987 outs() << " cmdsize " << dc.cmdsize; 8988 if (dc.cmdsize != sizeof(struct MachO::dyld_info_command)) 8989 outs() << " Incorrect size\n"; 8990 else 8991 outs() << "\n"; 8992 outs() << " rebase_off " << dc.rebase_off; 8993 if (dc.rebase_off > object_size) 8994 outs() << " (past end of file)\n"; 8995 else 8996 outs() << "\n"; 8997 outs() << " rebase_size " << dc.rebase_size; 8998 uint64_t big_size; 8999 big_size = dc.rebase_off; 9000 big_size += dc.rebase_size; 9001 if (big_size > object_size) 9002 outs() << " (past end of file)\n"; 9003 else 9004 outs() << "\n"; 9005 outs() << " bind_off " << dc.bind_off; 9006 if (dc.bind_off > object_size) 9007 outs() << " (past end of file)\n"; 9008 else 9009 outs() << "\n"; 9010 outs() << " bind_size " << dc.bind_size; 9011 big_size = dc.bind_off; 9012 big_size += dc.bind_size; 9013 if (big_size > object_size) 9014 outs() << " (past end of file)\n"; 9015 else 9016 outs() << "\n"; 9017 outs() << " weak_bind_off " << dc.weak_bind_off; 9018 if (dc.weak_bind_off > object_size) 9019 outs() << " (past end of file)\n"; 9020 else 9021 outs() << "\n"; 9022 outs() << " weak_bind_size " << dc.weak_bind_size; 9023 big_size = dc.weak_bind_off; 9024 big_size += dc.weak_bind_size; 9025 if (big_size > object_size) 9026 outs() << " (past end of file)\n"; 9027 else 9028 outs() << "\n"; 9029 outs() << " lazy_bind_off " << dc.lazy_bind_off; 9030 if (dc.lazy_bind_off > object_size) 9031 outs() << " (past end of file)\n"; 9032 else 9033 outs() << "\n"; 9034 outs() << " lazy_bind_size " << dc.lazy_bind_size; 9035 big_size = dc.lazy_bind_off; 9036 big_size += dc.lazy_bind_size; 9037 if (big_size > object_size) 9038 outs() << " (past end of file)\n"; 9039 else 9040 outs() << "\n"; 9041 outs() << " export_off " << dc.export_off; 9042 if (dc.export_off > object_size) 9043 outs() << " (past end of file)\n"; 9044 else 9045 outs() << "\n"; 9046 outs() << " export_size " << dc.export_size; 9047 big_size = dc.export_off; 9048 big_size += dc.export_size; 9049 if (big_size > object_size) 9050 outs() << " (past end of file)\n"; 9051 else 9052 outs() << "\n"; 9053 } 9054 9055 static void PrintDyldLoadCommand(MachO::dylinker_command dyld, 9056 const char *Ptr) { 9057 if (dyld.cmd == MachO::LC_ID_DYLINKER) 9058 outs() << " cmd LC_ID_DYLINKER\n"; 9059 else if (dyld.cmd == MachO::LC_LOAD_DYLINKER) 9060 outs() << " cmd LC_LOAD_DYLINKER\n"; 9061 else if (dyld.cmd == MachO::LC_DYLD_ENVIRONMENT) 9062 outs() << " cmd LC_DYLD_ENVIRONMENT\n"; 9063 else 9064 outs() << " cmd ?(" << dyld.cmd << ")\n"; 9065 outs() << " cmdsize " << dyld.cmdsize; 9066 if (dyld.cmdsize < sizeof(struct MachO::dylinker_command)) 9067 outs() << " Incorrect size\n"; 9068 else 9069 outs() << "\n"; 9070 if (dyld.name >= dyld.cmdsize) 9071 outs() << " name ?(bad offset " << dyld.name << ")\n"; 9072 else { 9073 const char *P = (const char *)(Ptr) + dyld.name; 9074 outs() << " name " << P << " (offset " << dyld.name << ")\n"; 9075 } 9076 } 9077 9078 static void PrintUuidLoadCommand(MachO::uuid_command uuid) { 9079 outs() << " cmd LC_UUID\n"; 9080 outs() << " cmdsize " << uuid.cmdsize; 9081 if (uuid.cmdsize != sizeof(struct MachO::uuid_command)) 9082 outs() << " Incorrect size\n"; 9083 else 9084 outs() << "\n"; 9085 outs() << " uuid "; 9086 for (int i = 0; i < 16; ++i) { 9087 outs() << format("%02" PRIX32, uuid.uuid[i]); 9088 if (i == 3 || i == 5 || i == 7 || i == 9) 9089 outs() << "-"; 9090 } 9091 outs() << "\n"; 9092 } 9093 9094 static void PrintRpathLoadCommand(MachO::rpath_command rpath, const char *Ptr) { 9095 outs() << " cmd LC_RPATH\n"; 9096 outs() << " cmdsize " << rpath.cmdsize; 9097 if (rpath.cmdsize < sizeof(struct MachO::rpath_command)) 9098 outs() << " Incorrect size\n"; 9099 else 9100 outs() << "\n"; 9101 if (rpath.path >= rpath.cmdsize) 9102 outs() << " path ?(bad offset " << rpath.path << ")\n"; 9103 else { 9104 const char *P = (const char *)(Ptr) + rpath.path; 9105 outs() << " path " << P << " (offset " << rpath.path << ")\n"; 9106 } 9107 } 9108 9109 static void PrintVersionMinLoadCommand(MachO::version_min_command vd) { 9110 StringRef LoadCmdName; 9111 switch (vd.cmd) { 9112 case MachO::LC_VERSION_MIN_MACOSX: 9113 LoadCmdName = "LC_VERSION_MIN_MACOSX"; 9114 break; 9115 case MachO::LC_VERSION_MIN_IPHONEOS: 9116 LoadCmdName = "LC_VERSION_MIN_IPHONEOS"; 9117 break; 9118 case MachO::LC_VERSION_MIN_TVOS: 9119 LoadCmdName = "LC_VERSION_MIN_TVOS"; 9120 break; 9121 case MachO::LC_VERSION_MIN_WATCHOS: 9122 LoadCmdName = "LC_VERSION_MIN_WATCHOS"; 9123 break; 9124 default: 9125 llvm_unreachable("Unknown version min load command"); 9126 } 9127 9128 outs() << " cmd " << LoadCmdName << '\n'; 9129 outs() << " cmdsize " << vd.cmdsize; 9130 if (vd.cmdsize != sizeof(struct MachO::version_min_command)) 9131 outs() << " Incorrect size\n"; 9132 else 9133 outs() << "\n"; 9134 outs() << " version " 9135 << MachOObjectFile::getVersionMinMajor(vd, false) << "." 9136 << MachOObjectFile::getVersionMinMinor(vd, false); 9137 uint32_t Update = MachOObjectFile::getVersionMinUpdate(vd, false); 9138 if (Update != 0) 9139 outs() << "." << Update; 9140 outs() << "\n"; 9141 if (vd.sdk == 0) 9142 outs() << " sdk n/a"; 9143 else { 9144 outs() << " sdk " 9145 << MachOObjectFile::getVersionMinMajor(vd, true) << "." 9146 << MachOObjectFile::getVersionMinMinor(vd, true); 9147 } 9148 Update = MachOObjectFile::getVersionMinUpdate(vd, true); 9149 if (Update != 0) 9150 outs() << "." << Update; 9151 outs() << "\n"; 9152 } 9153 9154 static void PrintNoteLoadCommand(MachO::note_command Nt) { 9155 outs() << " cmd LC_NOTE\n"; 9156 outs() << " cmdsize " << Nt.cmdsize; 9157 if (Nt.cmdsize != sizeof(struct MachO::note_command)) 9158 outs() << " Incorrect size\n"; 9159 else 9160 outs() << "\n"; 9161 const char *d = Nt.data_owner; 9162 outs() << "data_owner " << format("%.16s\n", d); 9163 outs() << " offset " << Nt.offset << "\n"; 9164 outs() << " size " << Nt.size << "\n"; 9165 } 9166 9167 static void PrintBuildToolVersion(MachO::build_tool_version bv, bool verbose) { 9168 outs() << " tool "; 9169 if (verbose) 9170 outs() << MachOObjectFile::getBuildTool(bv.tool); 9171 else 9172 outs() << bv.tool; 9173 outs() << "\n"; 9174 outs() << " version " << MachOObjectFile::getVersionString(bv.version) 9175 << "\n"; 9176 } 9177 9178 static void PrintBuildVersionLoadCommand(const MachOObjectFile *obj, 9179 MachO::build_version_command bd, 9180 bool verbose) { 9181 outs() << " cmd LC_BUILD_VERSION\n"; 9182 outs() << " cmdsize " << bd.cmdsize; 9183 if (bd.cmdsize != 9184 sizeof(struct MachO::build_version_command) + 9185 bd.ntools * sizeof(struct MachO::build_tool_version)) 9186 outs() << " Incorrect size\n"; 9187 else 9188 outs() << "\n"; 9189 outs() << " platform "; 9190 if (verbose) 9191 outs() << MachOObjectFile::getBuildPlatform(bd.platform); 9192 else 9193 outs() << bd.platform; 9194 outs() << "\n"; 9195 if (bd.sdk) 9196 outs() << " sdk " << MachOObjectFile::getVersionString(bd.sdk) 9197 << "\n"; 9198 else 9199 outs() << " sdk n/a\n"; 9200 outs() << " minos " << MachOObjectFile::getVersionString(bd.minos) 9201 << "\n"; 9202 outs() << " ntools " << bd.ntools << "\n"; 9203 for (unsigned i = 0; i < bd.ntools; ++i) { 9204 MachO::build_tool_version bv = obj->getBuildToolVersion(i); 9205 PrintBuildToolVersion(bv, verbose); 9206 } 9207 } 9208 9209 static void PrintSourceVersionCommand(MachO::source_version_command sd) { 9210 outs() << " cmd LC_SOURCE_VERSION\n"; 9211 outs() << " cmdsize " << sd.cmdsize; 9212 if (sd.cmdsize != sizeof(struct MachO::source_version_command)) 9213 outs() << " Incorrect size\n"; 9214 else 9215 outs() << "\n"; 9216 uint64_t a = (sd.version >> 40) & 0xffffff; 9217 uint64_t b = (sd.version >> 30) & 0x3ff; 9218 uint64_t c = (sd.version >> 20) & 0x3ff; 9219 uint64_t d = (sd.version >> 10) & 0x3ff; 9220 uint64_t e = sd.version & 0x3ff; 9221 outs() << " version " << a << "." << b; 9222 if (e != 0) 9223 outs() << "." << c << "." << d << "." << e; 9224 else if (d != 0) 9225 outs() << "." << c << "." << d; 9226 else if (c != 0) 9227 outs() << "." << c; 9228 outs() << "\n"; 9229 } 9230 9231 static void PrintEntryPointCommand(MachO::entry_point_command ep) { 9232 outs() << " cmd LC_MAIN\n"; 9233 outs() << " cmdsize " << ep.cmdsize; 9234 if (ep.cmdsize != sizeof(struct MachO::entry_point_command)) 9235 outs() << " Incorrect size\n"; 9236 else 9237 outs() << "\n"; 9238 outs() << " entryoff " << ep.entryoff << "\n"; 9239 outs() << " stacksize " << ep.stacksize << "\n"; 9240 } 9241 9242 static void PrintEncryptionInfoCommand(MachO::encryption_info_command ec, 9243 uint32_t object_size) { 9244 outs() << " cmd LC_ENCRYPTION_INFO\n"; 9245 outs() << " cmdsize " << ec.cmdsize; 9246 if (ec.cmdsize != sizeof(struct MachO::encryption_info_command)) 9247 outs() << " Incorrect size\n"; 9248 else 9249 outs() << "\n"; 9250 outs() << " cryptoff " << ec.cryptoff; 9251 if (ec.cryptoff > object_size) 9252 outs() << " (past end of file)\n"; 9253 else 9254 outs() << "\n"; 9255 outs() << " cryptsize " << ec.cryptsize; 9256 if (ec.cryptsize > object_size) 9257 outs() << " (past end of file)\n"; 9258 else 9259 outs() << "\n"; 9260 outs() << " cryptid " << ec.cryptid << "\n"; 9261 } 9262 9263 static void PrintEncryptionInfoCommand64(MachO::encryption_info_command_64 ec, 9264 uint32_t object_size) { 9265 outs() << " cmd LC_ENCRYPTION_INFO_64\n"; 9266 outs() << " cmdsize " << ec.cmdsize; 9267 if (ec.cmdsize != sizeof(struct MachO::encryption_info_command_64)) 9268 outs() << " Incorrect size\n"; 9269 else 9270 outs() << "\n"; 9271 outs() << " cryptoff " << ec.cryptoff; 9272 if (ec.cryptoff > object_size) 9273 outs() << " (past end of file)\n"; 9274 else 9275 outs() << "\n"; 9276 outs() << " cryptsize " << ec.cryptsize; 9277 if (ec.cryptsize > object_size) 9278 outs() << " (past end of file)\n"; 9279 else 9280 outs() << "\n"; 9281 outs() << " cryptid " << ec.cryptid << "\n"; 9282 outs() << " pad " << ec.pad << "\n"; 9283 } 9284 9285 static void PrintLinkerOptionCommand(MachO::linker_option_command lo, 9286 const char *Ptr) { 9287 outs() << " cmd LC_LINKER_OPTION\n"; 9288 outs() << " cmdsize " << lo.cmdsize; 9289 if (lo.cmdsize < sizeof(struct MachO::linker_option_command)) 9290 outs() << " Incorrect size\n"; 9291 else 9292 outs() << "\n"; 9293 outs() << " count " << lo.count << "\n"; 9294 const char *string = Ptr + sizeof(struct MachO::linker_option_command); 9295 uint32_t left = lo.cmdsize - sizeof(struct MachO::linker_option_command); 9296 uint32_t i = 0; 9297 while (left > 0) { 9298 while (*string == '\0' && left > 0) { 9299 string++; 9300 left--; 9301 } 9302 if (left > 0) { 9303 i++; 9304 outs() << " string #" << i << " " << format("%.*s\n", left, string); 9305 uint32_t NullPos = StringRef(string, left).find('\0'); 9306 uint32_t len = std::min(NullPos, left) + 1; 9307 string += len; 9308 left -= len; 9309 } 9310 } 9311 if (lo.count != i) 9312 outs() << " count " << lo.count << " does not match number of strings " 9313 << i << "\n"; 9314 } 9315 9316 static void PrintSubFrameworkCommand(MachO::sub_framework_command sub, 9317 const char *Ptr) { 9318 outs() << " cmd LC_SUB_FRAMEWORK\n"; 9319 outs() << " cmdsize " << sub.cmdsize; 9320 if (sub.cmdsize < sizeof(struct MachO::sub_framework_command)) 9321 outs() << " Incorrect size\n"; 9322 else 9323 outs() << "\n"; 9324 if (sub.umbrella < sub.cmdsize) { 9325 const char *P = Ptr + sub.umbrella; 9326 outs() << " umbrella " << P << " (offset " << sub.umbrella << ")\n"; 9327 } else { 9328 outs() << " umbrella ?(bad offset " << sub.umbrella << ")\n"; 9329 } 9330 } 9331 9332 static void PrintSubUmbrellaCommand(MachO::sub_umbrella_command sub, 9333 const char *Ptr) { 9334 outs() << " cmd LC_SUB_UMBRELLA\n"; 9335 outs() << " cmdsize " << sub.cmdsize; 9336 if (sub.cmdsize < sizeof(struct MachO::sub_umbrella_command)) 9337 outs() << " Incorrect size\n"; 9338 else 9339 outs() << "\n"; 9340 if (sub.sub_umbrella < sub.cmdsize) { 9341 const char *P = Ptr + sub.sub_umbrella; 9342 outs() << " sub_umbrella " << P << " (offset " << sub.sub_umbrella << ")\n"; 9343 } else { 9344 outs() << " sub_umbrella ?(bad offset " << sub.sub_umbrella << ")\n"; 9345 } 9346 } 9347 9348 static void PrintSubLibraryCommand(MachO::sub_library_command sub, 9349 const char *Ptr) { 9350 outs() << " cmd LC_SUB_LIBRARY\n"; 9351 outs() << " cmdsize " << sub.cmdsize; 9352 if (sub.cmdsize < sizeof(struct MachO::sub_library_command)) 9353 outs() << " Incorrect size\n"; 9354 else 9355 outs() << "\n"; 9356 if (sub.sub_library < sub.cmdsize) { 9357 const char *P = Ptr + sub.sub_library; 9358 outs() << " sub_library " << P << " (offset " << sub.sub_library << ")\n"; 9359 } else { 9360 outs() << " sub_library ?(bad offset " << sub.sub_library << ")\n"; 9361 } 9362 } 9363 9364 static void PrintSubClientCommand(MachO::sub_client_command sub, 9365 const char *Ptr) { 9366 outs() << " cmd LC_SUB_CLIENT\n"; 9367 outs() << " cmdsize " << sub.cmdsize; 9368 if (sub.cmdsize < sizeof(struct MachO::sub_client_command)) 9369 outs() << " Incorrect size\n"; 9370 else 9371 outs() << "\n"; 9372 if (sub.client < sub.cmdsize) { 9373 const char *P = Ptr + sub.client; 9374 outs() << " client " << P << " (offset " << sub.client << ")\n"; 9375 } else { 9376 outs() << " client ?(bad offset " << sub.client << ")\n"; 9377 } 9378 } 9379 9380 static void PrintRoutinesCommand(MachO::routines_command r) { 9381 outs() << " cmd LC_ROUTINES\n"; 9382 outs() << " cmdsize " << r.cmdsize; 9383 if (r.cmdsize != sizeof(struct MachO::routines_command)) 9384 outs() << " Incorrect size\n"; 9385 else 9386 outs() << "\n"; 9387 outs() << " init_address " << format("0x%08" PRIx32, r.init_address) << "\n"; 9388 outs() << " init_module " << r.init_module << "\n"; 9389 outs() << " reserved1 " << r.reserved1 << "\n"; 9390 outs() << " reserved2 " << r.reserved2 << "\n"; 9391 outs() << " reserved3 " << r.reserved3 << "\n"; 9392 outs() << " reserved4 " << r.reserved4 << "\n"; 9393 outs() << " reserved5 " << r.reserved5 << "\n"; 9394 outs() << " reserved6 " << r.reserved6 << "\n"; 9395 } 9396 9397 static void PrintRoutinesCommand64(MachO::routines_command_64 r) { 9398 outs() << " cmd LC_ROUTINES_64\n"; 9399 outs() << " cmdsize " << r.cmdsize; 9400 if (r.cmdsize != sizeof(struct MachO::routines_command_64)) 9401 outs() << " Incorrect size\n"; 9402 else 9403 outs() << "\n"; 9404 outs() << " init_address " << format("0x%016" PRIx64, r.init_address) << "\n"; 9405 outs() << " init_module " << r.init_module << "\n"; 9406 outs() << " reserved1 " << r.reserved1 << "\n"; 9407 outs() << " reserved2 " << r.reserved2 << "\n"; 9408 outs() << " reserved3 " << r.reserved3 << "\n"; 9409 outs() << " reserved4 " << r.reserved4 << "\n"; 9410 outs() << " reserved5 " << r.reserved5 << "\n"; 9411 outs() << " reserved6 " << r.reserved6 << "\n"; 9412 } 9413 9414 static void Print_x86_thread_state32_t(MachO::x86_thread_state32_t &cpu32) { 9415 outs() << "\t eax " << format("0x%08" PRIx32, cpu32.eax); 9416 outs() << " ebx " << format("0x%08" PRIx32, cpu32.ebx); 9417 outs() << " ecx " << format("0x%08" PRIx32, cpu32.ecx); 9418 outs() << " edx " << format("0x%08" PRIx32, cpu32.edx) << "\n"; 9419 outs() << "\t edi " << format("0x%08" PRIx32, cpu32.edi); 9420 outs() << " esi " << format("0x%08" PRIx32, cpu32.esi); 9421 outs() << " ebp " << format("0x%08" PRIx32, cpu32.ebp); 9422 outs() << " esp " << format("0x%08" PRIx32, cpu32.esp) << "\n"; 9423 outs() << "\t ss " << format("0x%08" PRIx32, cpu32.ss); 9424 outs() << " eflags " << format("0x%08" PRIx32, cpu32.eflags); 9425 outs() << " eip " << format("0x%08" PRIx32, cpu32.eip); 9426 outs() << " cs " << format("0x%08" PRIx32, cpu32.cs) << "\n"; 9427 outs() << "\t ds " << format("0x%08" PRIx32, cpu32.ds); 9428 outs() << " es " << format("0x%08" PRIx32, cpu32.es); 9429 outs() << " fs " << format("0x%08" PRIx32, cpu32.fs); 9430 outs() << " gs " << format("0x%08" PRIx32, cpu32.gs) << "\n"; 9431 } 9432 9433 static void Print_x86_thread_state64_t(MachO::x86_thread_state64_t &cpu64) { 9434 outs() << " rax " << format("0x%016" PRIx64, cpu64.rax); 9435 outs() << " rbx " << format("0x%016" PRIx64, cpu64.rbx); 9436 outs() << " rcx " << format("0x%016" PRIx64, cpu64.rcx) << "\n"; 9437 outs() << " rdx " << format("0x%016" PRIx64, cpu64.rdx); 9438 outs() << " rdi " << format("0x%016" PRIx64, cpu64.rdi); 9439 outs() << " rsi " << format("0x%016" PRIx64, cpu64.rsi) << "\n"; 9440 outs() << " rbp " << format("0x%016" PRIx64, cpu64.rbp); 9441 outs() << " rsp " << format("0x%016" PRIx64, cpu64.rsp); 9442 outs() << " r8 " << format("0x%016" PRIx64, cpu64.r8) << "\n"; 9443 outs() << " r9 " << format("0x%016" PRIx64, cpu64.r9); 9444 outs() << " r10 " << format("0x%016" PRIx64, cpu64.r10); 9445 outs() << " r11 " << format("0x%016" PRIx64, cpu64.r11) << "\n"; 9446 outs() << " r12 " << format("0x%016" PRIx64, cpu64.r12); 9447 outs() << " r13 " << format("0x%016" PRIx64, cpu64.r13); 9448 outs() << " r14 " << format("0x%016" PRIx64, cpu64.r14) << "\n"; 9449 outs() << " r15 " << format("0x%016" PRIx64, cpu64.r15); 9450 outs() << " rip " << format("0x%016" PRIx64, cpu64.rip) << "\n"; 9451 outs() << "rflags " << format("0x%016" PRIx64, cpu64.rflags); 9452 outs() << " cs " << format("0x%016" PRIx64, cpu64.cs); 9453 outs() << " fs " << format("0x%016" PRIx64, cpu64.fs) << "\n"; 9454 outs() << " gs " << format("0x%016" PRIx64, cpu64.gs) << "\n"; 9455 } 9456 9457 static void Print_mmst_reg(MachO::mmst_reg_t &r) { 9458 uint32_t f; 9459 outs() << "\t mmst_reg "; 9460 for (f = 0; f < 10; f++) 9461 outs() << format("%02" PRIx32, (r.mmst_reg[f] & 0xff)) << " "; 9462 outs() << "\n"; 9463 outs() << "\t mmst_rsrv "; 9464 for (f = 0; f < 6; f++) 9465 outs() << format("%02" PRIx32, (r.mmst_rsrv[f] & 0xff)) << " "; 9466 outs() << "\n"; 9467 } 9468 9469 static void Print_xmm_reg(MachO::xmm_reg_t &r) { 9470 uint32_t f; 9471 outs() << "\t xmm_reg "; 9472 for (f = 0; f < 16; f++) 9473 outs() << format("%02" PRIx32, (r.xmm_reg[f] & 0xff)) << " "; 9474 outs() << "\n"; 9475 } 9476 9477 static void Print_x86_float_state_t(MachO::x86_float_state64_t &fpu) { 9478 outs() << "\t fpu_reserved[0] " << fpu.fpu_reserved[0]; 9479 outs() << " fpu_reserved[1] " << fpu.fpu_reserved[1] << "\n"; 9480 outs() << "\t control: invalid " << fpu.fpu_fcw.invalid; 9481 outs() << " denorm " << fpu.fpu_fcw.denorm; 9482 outs() << " zdiv " << fpu.fpu_fcw.zdiv; 9483 outs() << " ovrfl " << fpu.fpu_fcw.ovrfl; 9484 outs() << " undfl " << fpu.fpu_fcw.undfl; 9485 outs() << " precis " << fpu.fpu_fcw.precis << "\n"; 9486 outs() << "\t\t pc "; 9487 if (fpu.fpu_fcw.pc == MachO::x86_FP_PREC_24B) 9488 outs() << "FP_PREC_24B "; 9489 else if (fpu.fpu_fcw.pc == MachO::x86_FP_PREC_53B) 9490 outs() << "FP_PREC_53B "; 9491 else if (fpu.fpu_fcw.pc == MachO::x86_FP_PREC_64B) 9492 outs() << "FP_PREC_64B "; 9493 else 9494 outs() << fpu.fpu_fcw.pc << " "; 9495 outs() << "rc "; 9496 if (fpu.fpu_fcw.rc == MachO::x86_FP_RND_NEAR) 9497 outs() << "FP_RND_NEAR "; 9498 else if (fpu.fpu_fcw.rc == MachO::x86_FP_RND_DOWN) 9499 outs() << "FP_RND_DOWN "; 9500 else if (fpu.fpu_fcw.rc == MachO::x86_FP_RND_UP) 9501 outs() << "FP_RND_UP "; 9502 else if (fpu.fpu_fcw.rc == MachO::x86_FP_CHOP) 9503 outs() << "FP_CHOP "; 9504 outs() << "\n"; 9505 outs() << "\t status: invalid " << fpu.fpu_fsw.invalid; 9506 outs() << " denorm " << fpu.fpu_fsw.denorm; 9507 outs() << " zdiv " << fpu.fpu_fsw.zdiv; 9508 outs() << " ovrfl " << fpu.fpu_fsw.ovrfl; 9509 outs() << " undfl " << fpu.fpu_fsw.undfl; 9510 outs() << " precis " << fpu.fpu_fsw.precis; 9511 outs() << " stkflt " << fpu.fpu_fsw.stkflt << "\n"; 9512 outs() << "\t errsumm " << fpu.fpu_fsw.errsumm; 9513 outs() << " c0 " << fpu.fpu_fsw.c0; 9514 outs() << " c1 " << fpu.fpu_fsw.c1; 9515 outs() << " c2 " << fpu.fpu_fsw.c2; 9516 outs() << " tos " << fpu.fpu_fsw.tos; 9517 outs() << " c3 " << fpu.fpu_fsw.c3; 9518 outs() << " busy " << fpu.fpu_fsw.busy << "\n"; 9519 outs() << "\t fpu_ftw " << format("0x%02" PRIx32, fpu.fpu_ftw); 9520 outs() << " fpu_rsrv1 " << format("0x%02" PRIx32, fpu.fpu_rsrv1); 9521 outs() << " fpu_fop " << format("0x%04" PRIx32, fpu.fpu_fop); 9522 outs() << " fpu_ip " << format("0x%08" PRIx32, fpu.fpu_ip) << "\n"; 9523 outs() << "\t fpu_cs " << format("0x%04" PRIx32, fpu.fpu_cs); 9524 outs() << " fpu_rsrv2 " << format("0x%04" PRIx32, fpu.fpu_rsrv2); 9525 outs() << " fpu_dp " << format("0x%08" PRIx32, fpu.fpu_dp); 9526 outs() << " fpu_ds " << format("0x%04" PRIx32, fpu.fpu_ds) << "\n"; 9527 outs() << "\t fpu_rsrv3 " << format("0x%04" PRIx32, fpu.fpu_rsrv3); 9528 outs() << " fpu_mxcsr " << format("0x%08" PRIx32, fpu.fpu_mxcsr); 9529 outs() << " fpu_mxcsrmask " << format("0x%08" PRIx32, fpu.fpu_mxcsrmask); 9530 outs() << "\n"; 9531 outs() << "\t fpu_stmm0:\n"; 9532 Print_mmst_reg(fpu.fpu_stmm0); 9533 outs() << "\t fpu_stmm1:\n"; 9534 Print_mmst_reg(fpu.fpu_stmm1); 9535 outs() << "\t fpu_stmm2:\n"; 9536 Print_mmst_reg(fpu.fpu_stmm2); 9537 outs() << "\t fpu_stmm3:\n"; 9538 Print_mmst_reg(fpu.fpu_stmm3); 9539 outs() << "\t fpu_stmm4:\n"; 9540 Print_mmst_reg(fpu.fpu_stmm4); 9541 outs() << "\t fpu_stmm5:\n"; 9542 Print_mmst_reg(fpu.fpu_stmm5); 9543 outs() << "\t fpu_stmm6:\n"; 9544 Print_mmst_reg(fpu.fpu_stmm6); 9545 outs() << "\t fpu_stmm7:\n"; 9546 Print_mmst_reg(fpu.fpu_stmm7); 9547 outs() << "\t fpu_xmm0:\n"; 9548 Print_xmm_reg(fpu.fpu_xmm0); 9549 outs() << "\t fpu_xmm1:\n"; 9550 Print_xmm_reg(fpu.fpu_xmm1); 9551 outs() << "\t fpu_xmm2:\n"; 9552 Print_xmm_reg(fpu.fpu_xmm2); 9553 outs() << "\t fpu_xmm3:\n"; 9554 Print_xmm_reg(fpu.fpu_xmm3); 9555 outs() << "\t fpu_xmm4:\n"; 9556 Print_xmm_reg(fpu.fpu_xmm4); 9557 outs() << "\t fpu_xmm5:\n"; 9558 Print_xmm_reg(fpu.fpu_xmm5); 9559 outs() << "\t fpu_xmm6:\n"; 9560 Print_xmm_reg(fpu.fpu_xmm6); 9561 outs() << "\t fpu_xmm7:\n"; 9562 Print_xmm_reg(fpu.fpu_xmm7); 9563 outs() << "\t fpu_xmm8:\n"; 9564 Print_xmm_reg(fpu.fpu_xmm8); 9565 outs() << "\t fpu_xmm9:\n"; 9566 Print_xmm_reg(fpu.fpu_xmm9); 9567 outs() << "\t fpu_xmm10:\n"; 9568 Print_xmm_reg(fpu.fpu_xmm10); 9569 outs() << "\t fpu_xmm11:\n"; 9570 Print_xmm_reg(fpu.fpu_xmm11); 9571 outs() << "\t fpu_xmm12:\n"; 9572 Print_xmm_reg(fpu.fpu_xmm12); 9573 outs() << "\t fpu_xmm13:\n"; 9574 Print_xmm_reg(fpu.fpu_xmm13); 9575 outs() << "\t fpu_xmm14:\n"; 9576 Print_xmm_reg(fpu.fpu_xmm14); 9577 outs() << "\t fpu_xmm15:\n"; 9578 Print_xmm_reg(fpu.fpu_xmm15); 9579 outs() << "\t fpu_rsrv4:\n"; 9580 for (uint32_t f = 0; f < 6; f++) { 9581 outs() << "\t "; 9582 for (uint32_t g = 0; g < 16; g++) 9583 outs() << format("%02" PRIx32, fpu.fpu_rsrv4[f * g]) << " "; 9584 outs() << "\n"; 9585 } 9586 outs() << "\t fpu_reserved1 " << format("0x%08" PRIx32, fpu.fpu_reserved1); 9587 outs() << "\n"; 9588 } 9589 9590 static void Print_x86_exception_state_t(MachO::x86_exception_state64_t &exc64) { 9591 outs() << "\t trapno " << format("0x%08" PRIx32, exc64.trapno); 9592 outs() << " err " << format("0x%08" PRIx32, exc64.err); 9593 outs() << " faultvaddr " << format("0x%016" PRIx64, exc64.faultvaddr) << "\n"; 9594 } 9595 9596 static void Print_arm_thread_state32_t(MachO::arm_thread_state32_t &cpu32) { 9597 outs() << "\t r0 " << format("0x%08" PRIx32, cpu32.r[0]); 9598 outs() << " r1 " << format("0x%08" PRIx32, cpu32.r[1]); 9599 outs() << " r2 " << format("0x%08" PRIx32, cpu32.r[2]); 9600 outs() << " r3 " << format("0x%08" PRIx32, cpu32.r[3]) << "\n"; 9601 outs() << "\t r4 " << format("0x%08" PRIx32, cpu32.r[4]); 9602 outs() << " r5 " << format("0x%08" PRIx32, cpu32.r[5]); 9603 outs() << " r6 " << format("0x%08" PRIx32, cpu32.r[6]); 9604 outs() << " r7 " << format("0x%08" PRIx32, cpu32.r[7]) << "\n"; 9605 outs() << "\t r8 " << format("0x%08" PRIx32, cpu32.r[8]); 9606 outs() << " r9 " << format("0x%08" PRIx32, cpu32.r[9]); 9607 outs() << " r10 " << format("0x%08" PRIx32, cpu32.r[10]); 9608 outs() << " r11 " << format("0x%08" PRIx32, cpu32.r[11]) << "\n"; 9609 outs() << "\t r12 " << format("0x%08" PRIx32, cpu32.r[12]); 9610 outs() << " sp " << format("0x%08" PRIx32, cpu32.sp); 9611 outs() << " lr " << format("0x%08" PRIx32, cpu32.lr); 9612 outs() << " pc " << format("0x%08" PRIx32, cpu32.pc) << "\n"; 9613 outs() << "\t cpsr " << format("0x%08" PRIx32, cpu32.cpsr) << "\n"; 9614 } 9615 9616 static void Print_arm_thread_state64_t(MachO::arm_thread_state64_t &cpu64) { 9617 outs() << "\t x0 " << format("0x%016" PRIx64, cpu64.x[0]); 9618 outs() << " x1 " << format("0x%016" PRIx64, cpu64.x[1]); 9619 outs() << " x2 " << format("0x%016" PRIx64, cpu64.x[2]) << "\n"; 9620 outs() << "\t x3 " << format("0x%016" PRIx64, cpu64.x[3]); 9621 outs() << " x4 " << format("0x%016" PRIx64, cpu64.x[4]); 9622 outs() << " x5 " << format("0x%016" PRIx64, cpu64.x[5]) << "\n"; 9623 outs() << "\t x6 " << format("0x%016" PRIx64, cpu64.x[6]); 9624 outs() << " x7 " << format("0x%016" PRIx64, cpu64.x[7]); 9625 outs() << " x8 " << format("0x%016" PRIx64, cpu64.x[8]) << "\n"; 9626 outs() << "\t x9 " << format("0x%016" PRIx64, cpu64.x[9]); 9627 outs() << " x10 " << format("0x%016" PRIx64, cpu64.x[10]); 9628 outs() << " x11 " << format("0x%016" PRIx64, cpu64.x[11]) << "\n"; 9629 outs() << "\t x12 " << format("0x%016" PRIx64, cpu64.x[12]); 9630 outs() << " x13 " << format("0x%016" PRIx64, cpu64.x[13]); 9631 outs() << " x14 " << format("0x%016" PRIx64, cpu64.x[14]) << "\n"; 9632 outs() << "\t x15 " << format("0x%016" PRIx64, cpu64.x[15]); 9633 outs() << " x16 " << format("0x%016" PRIx64, cpu64.x[16]); 9634 outs() << " x17 " << format("0x%016" PRIx64, cpu64.x[17]) << "\n"; 9635 outs() << "\t x18 " << format("0x%016" PRIx64, cpu64.x[18]); 9636 outs() << " x19 " << format("0x%016" PRIx64, cpu64.x[19]); 9637 outs() << " x20 " << format("0x%016" PRIx64, cpu64.x[20]) << "\n"; 9638 outs() << "\t x21 " << format("0x%016" PRIx64, cpu64.x[21]); 9639 outs() << " x22 " << format("0x%016" PRIx64, cpu64.x[22]); 9640 outs() << " x23 " << format("0x%016" PRIx64, cpu64.x[23]) << "\n"; 9641 outs() << "\t x24 " << format("0x%016" PRIx64, cpu64.x[24]); 9642 outs() << " x25 " << format("0x%016" PRIx64, cpu64.x[25]); 9643 outs() << " x26 " << format("0x%016" PRIx64, cpu64.x[26]) << "\n"; 9644 outs() << "\t x27 " << format("0x%016" PRIx64, cpu64.x[27]); 9645 outs() << " x28 " << format("0x%016" PRIx64, cpu64.x[28]); 9646 outs() << " fp " << format("0x%016" PRIx64, cpu64.fp) << "\n"; 9647 outs() << "\t lr " << format("0x%016" PRIx64, cpu64.lr); 9648 outs() << " sp " << format("0x%016" PRIx64, cpu64.sp); 9649 outs() << " pc " << format("0x%016" PRIx64, cpu64.pc) << "\n"; 9650 outs() << "\t cpsr " << format("0x%08" PRIx32, cpu64.cpsr) << "\n"; 9651 } 9652 9653 static void PrintThreadCommand(MachO::thread_command t, const char *Ptr, 9654 bool isLittleEndian, uint32_t cputype) { 9655 if (t.cmd == MachO::LC_THREAD) 9656 outs() << " cmd LC_THREAD\n"; 9657 else if (t.cmd == MachO::LC_UNIXTHREAD) 9658 outs() << " cmd LC_UNIXTHREAD\n"; 9659 else 9660 outs() << " cmd " << t.cmd << " (unknown)\n"; 9661 outs() << " cmdsize " << t.cmdsize; 9662 if (t.cmdsize < sizeof(struct MachO::thread_command) + 2 * sizeof(uint32_t)) 9663 outs() << " Incorrect size\n"; 9664 else 9665 outs() << "\n"; 9666 9667 const char *begin = Ptr + sizeof(struct MachO::thread_command); 9668 const char *end = Ptr + t.cmdsize; 9669 uint32_t flavor, count, left; 9670 if (cputype == MachO::CPU_TYPE_I386) { 9671 while (begin < end) { 9672 if (end - begin > (ptrdiff_t)sizeof(uint32_t)) { 9673 memcpy((char *)&flavor, begin, sizeof(uint32_t)); 9674 begin += sizeof(uint32_t); 9675 } else { 9676 flavor = 0; 9677 begin = end; 9678 } 9679 if (isLittleEndian != sys::IsLittleEndianHost) 9680 sys::swapByteOrder(flavor); 9681 if (end - begin > (ptrdiff_t)sizeof(uint32_t)) { 9682 memcpy((char *)&count, begin, sizeof(uint32_t)); 9683 begin += sizeof(uint32_t); 9684 } else { 9685 count = 0; 9686 begin = end; 9687 } 9688 if (isLittleEndian != sys::IsLittleEndianHost) 9689 sys::swapByteOrder(count); 9690 if (flavor == MachO::x86_THREAD_STATE32) { 9691 outs() << " flavor i386_THREAD_STATE\n"; 9692 if (count == MachO::x86_THREAD_STATE32_COUNT) 9693 outs() << " count i386_THREAD_STATE_COUNT\n"; 9694 else 9695 outs() << " count " << count 9696 << " (not x86_THREAD_STATE32_COUNT)\n"; 9697 MachO::x86_thread_state32_t cpu32; 9698 left = end - begin; 9699 if (left >= sizeof(MachO::x86_thread_state32_t)) { 9700 memcpy(&cpu32, begin, sizeof(MachO::x86_thread_state32_t)); 9701 begin += sizeof(MachO::x86_thread_state32_t); 9702 } else { 9703 memset(&cpu32, '\0', sizeof(MachO::x86_thread_state32_t)); 9704 memcpy(&cpu32, begin, left); 9705 begin += left; 9706 } 9707 if (isLittleEndian != sys::IsLittleEndianHost) 9708 swapStruct(cpu32); 9709 Print_x86_thread_state32_t(cpu32); 9710 } else if (flavor == MachO::x86_THREAD_STATE) { 9711 outs() << " flavor x86_THREAD_STATE\n"; 9712 if (count == MachO::x86_THREAD_STATE_COUNT) 9713 outs() << " count x86_THREAD_STATE_COUNT\n"; 9714 else 9715 outs() << " count " << count 9716 << " (not x86_THREAD_STATE_COUNT)\n"; 9717 struct MachO::x86_thread_state_t ts; 9718 left = end - begin; 9719 if (left >= sizeof(MachO::x86_thread_state_t)) { 9720 memcpy(&ts, begin, sizeof(MachO::x86_thread_state_t)); 9721 begin += sizeof(MachO::x86_thread_state_t); 9722 } else { 9723 memset(&ts, '\0', sizeof(MachO::x86_thread_state_t)); 9724 memcpy(&ts, begin, left); 9725 begin += left; 9726 } 9727 if (isLittleEndian != sys::IsLittleEndianHost) 9728 swapStruct(ts); 9729 if (ts.tsh.flavor == MachO::x86_THREAD_STATE32) { 9730 outs() << "\t tsh.flavor x86_THREAD_STATE32 "; 9731 if (ts.tsh.count == MachO::x86_THREAD_STATE32_COUNT) 9732 outs() << "tsh.count x86_THREAD_STATE32_COUNT\n"; 9733 else 9734 outs() << "tsh.count " << ts.tsh.count 9735 << " (not x86_THREAD_STATE32_COUNT\n"; 9736 Print_x86_thread_state32_t(ts.uts.ts32); 9737 } else { 9738 outs() << "\t tsh.flavor " << ts.tsh.flavor << " tsh.count " 9739 << ts.tsh.count << "\n"; 9740 } 9741 } else { 9742 outs() << " flavor " << flavor << " (unknown)\n"; 9743 outs() << " count " << count << "\n"; 9744 outs() << " state (unknown)\n"; 9745 begin += count * sizeof(uint32_t); 9746 } 9747 } 9748 } else if (cputype == MachO::CPU_TYPE_X86_64) { 9749 while (begin < end) { 9750 if (end - begin > (ptrdiff_t)sizeof(uint32_t)) { 9751 memcpy((char *)&flavor, begin, sizeof(uint32_t)); 9752 begin += sizeof(uint32_t); 9753 } else { 9754 flavor = 0; 9755 begin = end; 9756 } 9757 if (isLittleEndian != sys::IsLittleEndianHost) 9758 sys::swapByteOrder(flavor); 9759 if (end - begin > (ptrdiff_t)sizeof(uint32_t)) { 9760 memcpy((char *)&count, begin, sizeof(uint32_t)); 9761 begin += sizeof(uint32_t); 9762 } else { 9763 count = 0; 9764 begin = end; 9765 } 9766 if (isLittleEndian != sys::IsLittleEndianHost) 9767 sys::swapByteOrder(count); 9768 if (flavor == MachO::x86_THREAD_STATE64) { 9769 outs() << " flavor x86_THREAD_STATE64\n"; 9770 if (count == MachO::x86_THREAD_STATE64_COUNT) 9771 outs() << " count x86_THREAD_STATE64_COUNT\n"; 9772 else 9773 outs() << " count " << count 9774 << " (not x86_THREAD_STATE64_COUNT)\n"; 9775 MachO::x86_thread_state64_t cpu64; 9776 left = end - begin; 9777 if (left >= sizeof(MachO::x86_thread_state64_t)) { 9778 memcpy(&cpu64, begin, sizeof(MachO::x86_thread_state64_t)); 9779 begin += sizeof(MachO::x86_thread_state64_t); 9780 } else { 9781 memset(&cpu64, '\0', sizeof(MachO::x86_thread_state64_t)); 9782 memcpy(&cpu64, begin, left); 9783 begin += left; 9784 } 9785 if (isLittleEndian != sys::IsLittleEndianHost) 9786 swapStruct(cpu64); 9787 Print_x86_thread_state64_t(cpu64); 9788 } else if (flavor == MachO::x86_THREAD_STATE) { 9789 outs() << " flavor x86_THREAD_STATE\n"; 9790 if (count == MachO::x86_THREAD_STATE_COUNT) 9791 outs() << " count x86_THREAD_STATE_COUNT\n"; 9792 else 9793 outs() << " count " << count 9794 << " (not x86_THREAD_STATE_COUNT)\n"; 9795 struct MachO::x86_thread_state_t ts; 9796 left = end - begin; 9797 if (left >= sizeof(MachO::x86_thread_state_t)) { 9798 memcpy(&ts, begin, sizeof(MachO::x86_thread_state_t)); 9799 begin += sizeof(MachO::x86_thread_state_t); 9800 } else { 9801 memset(&ts, '\0', sizeof(MachO::x86_thread_state_t)); 9802 memcpy(&ts, begin, left); 9803 begin += left; 9804 } 9805 if (isLittleEndian != sys::IsLittleEndianHost) 9806 swapStruct(ts); 9807 if (ts.tsh.flavor == MachO::x86_THREAD_STATE64) { 9808 outs() << "\t tsh.flavor x86_THREAD_STATE64 "; 9809 if (ts.tsh.count == MachO::x86_THREAD_STATE64_COUNT) 9810 outs() << "tsh.count x86_THREAD_STATE64_COUNT\n"; 9811 else 9812 outs() << "tsh.count " << ts.tsh.count 9813 << " (not x86_THREAD_STATE64_COUNT\n"; 9814 Print_x86_thread_state64_t(ts.uts.ts64); 9815 } else { 9816 outs() << "\t tsh.flavor " << ts.tsh.flavor << " tsh.count " 9817 << ts.tsh.count << "\n"; 9818 } 9819 } else if (flavor == MachO::x86_FLOAT_STATE) { 9820 outs() << " flavor x86_FLOAT_STATE\n"; 9821 if (count == MachO::x86_FLOAT_STATE_COUNT) 9822 outs() << " count x86_FLOAT_STATE_COUNT\n"; 9823 else 9824 outs() << " count " << count << " (not x86_FLOAT_STATE_COUNT)\n"; 9825 struct MachO::x86_float_state_t fs; 9826 left = end - begin; 9827 if (left >= sizeof(MachO::x86_float_state_t)) { 9828 memcpy(&fs, begin, sizeof(MachO::x86_float_state_t)); 9829 begin += sizeof(MachO::x86_float_state_t); 9830 } else { 9831 memset(&fs, '\0', sizeof(MachO::x86_float_state_t)); 9832 memcpy(&fs, begin, left); 9833 begin += left; 9834 } 9835 if (isLittleEndian != sys::IsLittleEndianHost) 9836 swapStruct(fs); 9837 if (fs.fsh.flavor == MachO::x86_FLOAT_STATE64) { 9838 outs() << "\t fsh.flavor x86_FLOAT_STATE64 "; 9839 if (fs.fsh.count == MachO::x86_FLOAT_STATE64_COUNT) 9840 outs() << "fsh.count x86_FLOAT_STATE64_COUNT\n"; 9841 else 9842 outs() << "fsh.count " << fs.fsh.count 9843 << " (not x86_FLOAT_STATE64_COUNT\n"; 9844 Print_x86_float_state_t(fs.ufs.fs64); 9845 } else { 9846 outs() << "\t fsh.flavor " << fs.fsh.flavor << " fsh.count " 9847 << fs.fsh.count << "\n"; 9848 } 9849 } else if (flavor == MachO::x86_EXCEPTION_STATE) { 9850 outs() << " flavor x86_EXCEPTION_STATE\n"; 9851 if (count == MachO::x86_EXCEPTION_STATE_COUNT) 9852 outs() << " count x86_EXCEPTION_STATE_COUNT\n"; 9853 else 9854 outs() << " count " << count 9855 << " (not x86_EXCEPTION_STATE_COUNT)\n"; 9856 struct MachO::x86_exception_state_t es; 9857 left = end - begin; 9858 if (left >= sizeof(MachO::x86_exception_state_t)) { 9859 memcpy(&es, begin, sizeof(MachO::x86_exception_state_t)); 9860 begin += sizeof(MachO::x86_exception_state_t); 9861 } else { 9862 memset(&es, '\0', sizeof(MachO::x86_exception_state_t)); 9863 memcpy(&es, begin, left); 9864 begin += left; 9865 } 9866 if (isLittleEndian != sys::IsLittleEndianHost) 9867 swapStruct(es); 9868 if (es.esh.flavor == MachO::x86_EXCEPTION_STATE64) { 9869 outs() << "\t esh.flavor x86_EXCEPTION_STATE64\n"; 9870 if (es.esh.count == MachO::x86_EXCEPTION_STATE64_COUNT) 9871 outs() << "\t esh.count x86_EXCEPTION_STATE64_COUNT\n"; 9872 else 9873 outs() << "\t esh.count " << es.esh.count 9874 << " (not x86_EXCEPTION_STATE64_COUNT\n"; 9875 Print_x86_exception_state_t(es.ues.es64); 9876 } else { 9877 outs() << "\t esh.flavor " << es.esh.flavor << " esh.count " 9878 << es.esh.count << "\n"; 9879 } 9880 } else if (flavor == MachO::x86_EXCEPTION_STATE64) { 9881 outs() << " flavor x86_EXCEPTION_STATE64\n"; 9882 if (count == MachO::x86_EXCEPTION_STATE64_COUNT) 9883 outs() << " count x86_EXCEPTION_STATE64_COUNT\n"; 9884 else 9885 outs() << " count " << count 9886 << " (not x86_EXCEPTION_STATE64_COUNT)\n"; 9887 struct MachO::x86_exception_state64_t es64; 9888 left = end - begin; 9889 if (left >= sizeof(MachO::x86_exception_state64_t)) { 9890 memcpy(&es64, begin, sizeof(MachO::x86_exception_state64_t)); 9891 begin += sizeof(MachO::x86_exception_state64_t); 9892 } else { 9893 memset(&es64, '\0', sizeof(MachO::x86_exception_state64_t)); 9894 memcpy(&es64, begin, left); 9895 begin += left; 9896 } 9897 if (isLittleEndian != sys::IsLittleEndianHost) 9898 swapStruct(es64); 9899 Print_x86_exception_state_t(es64); 9900 } else { 9901 outs() << " flavor " << flavor << " (unknown)\n"; 9902 outs() << " count " << count << "\n"; 9903 outs() << " state (unknown)\n"; 9904 begin += count * sizeof(uint32_t); 9905 } 9906 } 9907 } else if (cputype == MachO::CPU_TYPE_ARM) { 9908 while (begin < end) { 9909 if (end - begin > (ptrdiff_t)sizeof(uint32_t)) { 9910 memcpy((char *)&flavor, begin, sizeof(uint32_t)); 9911 begin += sizeof(uint32_t); 9912 } else { 9913 flavor = 0; 9914 begin = end; 9915 } 9916 if (isLittleEndian != sys::IsLittleEndianHost) 9917 sys::swapByteOrder(flavor); 9918 if (end - begin > (ptrdiff_t)sizeof(uint32_t)) { 9919 memcpy((char *)&count, begin, sizeof(uint32_t)); 9920 begin += sizeof(uint32_t); 9921 } else { 9922 count = 0; 9923 begin = end; 9924 } 9925 if (isLittleEndian != sys::IsLittleEndianHost) 9926 sys::swapByteOrder(count); 9927 if (flavor == MachO::ARM_THREAD_STATE) { 9928 outs() << " flavor ARM_THREAD_STATE\n"; 9929 if (count == MachO::ARM_THREAD_STATE_COUNT) 9930 outs() << " count ARM_THREAD_STATE_COUNT\n"; 9931 else 9932 outs() << " count " << count 9933 << " (not ARM_THREAD_STATE_COUNT)\n"; 9934 MachO::arm_thread_state32_t cpu32; 9935 left = end - begin; 9936 if (left >= sizeof(MachO::arm_thread_state32_t)) { 9937 memcpy(&cpu32, begin, sizeof(MachO::arm_thread_state32_t)); 9938 begin += sizeof(MachO::arm_thread_state32_t); 9939 } else { 9940 memset(&cpu32, '\0', sizeof(MachO::arm_thread_state32_t)); 9941 memcpy(&cpu32, begin, left); 9942 begin += left; 9943 } 9944 if (isLittleEndian != sys::IsLittleEndianHost) 9945 swapStruct(cpu32); 9946 Print_arm_thread_state32_t(cpu32); 9947 } else { 9948 outs() << " flavor " << flavor << " (unknown)\n"; 9949 outs() << " count " << count << "\n"; 9950 outs() << " state (unknown)\n"; 9951 begin += count * sizeof(uint32_t); 9952 } 9953 } 9954 } else if (cputype == MachO::CPU_TYPE_ARM64 || 9955 cputype == MachO::CPU_TYPE_ARM64_32) { 9956 while (begin < end) { 9957 if (end - begin > (ptrdiff_t)sizeof(uint32_t)) { 9958 memcpy((char *)&flavor, begin, sizeof(uint32_t)); 9959 begin += sizeof(uint32_t); 9960 } else { 9961 flavor = 0; 9962 begin = end; 9963 } 9964 if (isLittleEndian != sys::IsLittleEndianHost) 9965 sys::swapByteOrder(flavor); 9966 if (end - begin > (ptrdiff_t)sizeof(uint32_t)) { 9967 memcpy((char *)&count, begin, sizeof(uint32_t)); 9968 begin += sizeof(uint32_t); 9969 } else { 9970 count = 0; 9971 begin = end; 9972 } 9973 if (isLittleEndian != sys::IsLittleEndianHost) 9974 sys::swapByteOrder(count); 9975 if (flavor == MachO::ARM_THREAD_STATE64) { 9976 outs() << " flavor ARM_THREAD_STATE64\n"; 9977 if (count == MachO::ARM_THREAD_STATE64_COUNT) 9978 outs() << " count ARM_THREAD_STATE64_COUNT\n"; 9979 else 9980 outs() << " count " << count 9981 << " (not ARM_THREAD_STATE64_COUNT)\n"; 9982 MachO::arm_thread_state64_t cpu64; 9983 left = end - begin; 9984 if (left >= sizeof(MachO::arm_thread_state64_t)) { 9985 memcpy(&cpu64, begin, sizeof(MachO::arm_thread_state64_t)); 9986 begin += sizeof(MachO::arm_thread_state64_t); 9987 } else { 9988 memset(&cpu64, '\0', sizeof(MachO::arm_thread_state64_t)); 9989 memcpy(&cpu64, begin, left); 9990 begin += left; 9991 } 9992 if (isLittleEndian != sys::IsLittleEndianHost) 9993 swapStruct(cpu64); 9994 Print_arm_thread_state64_t(cpu64); 9995 } else { 9996 outs() << " flavor " << flavor << " (unknown)\n"; 9997 outs() << " count " << count << "\n"; 9998 outs() << " state (unknown)\n"; 9999 begin += count * sizeof(uint32_t); 10000 } 10001 } 10002 } else { 10003 while (begin < end) { 10004 if (end - begin > (ptrdiff_t)sizeof(uint32_t)) { 10005 memcpy((char *)&flavor, begin, sizeof(uint32_t)); 10006 begin += sizeof(uint32_t); 10007 } else { 10008 flavor = 0; 10009 begin = end; 10010 } 10011 if (isLittleEndian != sys::IsLittleEndianHost) 10012 sys::swapByteOrder(flavor); 10013 if (end - begin > (ptrdiff_t)sizeof(uint32_t)) { 10014 memcpy((char *)&count, begin, sizeof(uint32_t)); 10015 begin += sizeof(uint32_t); 10016 } else { 10017 count = 0; 10018 begin = end; 10019 } 10020 if (isLittleEndian != sys::IsLittleEndianHost) 10021 sys::swapByteOrder(count); 10022 outs() << " flavor " << flavor << "\n"; 10023 outs() << " count " << count << "\n"; 10024 outs() << " state (Unknown cputype/cpusubtype)\n"; 10025 begin += count * sizeof(uint32_t); 10026 } 10027 } 10028 } 10029 10030 static void PrintDylibCommand(MachO::dylib_command dl, const char *Ptr) { 10031 if (dl.cmd == MachO::LC_ID_DYLIB) 10032 outs() << " cmd LC_ID_DYLIB\n"; 10033 else if (dl.cmd == MachO::LC_LOAD_DYLIB) 10034 outs() << " cmd LC_LOAD_DYLIB\n"; 10035 else if (dl.cmd == MachO::LC_LOAD_WEAK_DYLIB) 10036 outs() << " cmd LC_LOAD_WEAK_DYLIB\n"; 10037 else if (dl.cmd == MachO::LC_REEXPORT_DYLIB) 10038 outs() << " cmd LC_REEXPORT_DYLIB\n"; 10039 else if (dl.cmd == MachO::LC_LAZY_LOAD_DYLIB) 10040 outs() << " cmd LC_LAZY_LOAD_DYLIB\n"; 10041 else if (dl.cmd == MachO::LC_LOAD_UPWARD_DYLIB) 10042 outs() << " cmd LC_LOAD_UPWARD_DYLIB\n"; 10043 else 10044 outs() << " cmd " << dl.cmd << " (unknown)\n"; 10045 outs() << " cmdsize " << dl.cmdsize; 10046 if (dl.cmdsize < sizeof(struct MachO::dylib_command)) 10047 outs() << " Incorrect size\n"; 10048 else 10049 outs() << "\n"; 10050 if (dl.dylib.name < dl.cmdsize) { 10051 const char *P = (const char *)(Ptr) + dl.dylib.name; 10052 outs() << " name " << P << " (offset " << dl.dylib.name << ")\n"; 10053 } else { 10054 outs() << " name ?(bad offset " << dl.dylib.name << ")\n"; 10055 } 10056 outs() << " time stamp " << dl.dylib.timestamp << " "; 10057 time_t t = dl.dylib.timestamp; 10058 outs() << ctime(&t); 10059 outs() << " current version "; 10060 if (dl.dylib.current_version == 0xffffffff) 10061 outs() << "n/a\n"; 10062 else 10063 outs() << ((dl.dylib.current_version >> 16) & 0xffff) << "." 10064 << ((dl.dylib.current_version >> 8) & 0xff) << "." 10065 << (dl.dylib.current_version & 0xff) << "\n"; 10066 outs() << "compatibility version "; 10067 if (dl.dylib.compatibility_version == 0xffffffff) 10068 outs() << "n/a\n"; 10069 else 10070 outs() << ((dl.dylib.compatibility_version >> 16) & 0xffff) << "." 10071 << ((dl.dylib.compatibility_version >> 8) & 0xff) << "." 10072 << (dl.dylib.compatibility_version & 0xff) << "\n"; 10073 } 10074 10075 static void PrintLinkEditDataCommand(MachO::linkedit_data_command ld, 10076 uint32_t object_size) { 10077 if (ld.cmd == MachO::LC_CODE_SIGNATURE) 10078 outs() << " cmd LC_CODE_SIGNATURE\n"; 10079 else if (ld.cmd == MachO::LC_SEGMENT_SPLIT_INFO) 10080 outs() << " cmd LC_SEGMENT_SPLIT_INFO\n"; 10081 else if (ld.cmd == MachO::LC_FUNCTION_STARTS) 10082 outs() << " cmd LC_FUNCTION_STARTS\n"; 10083 else if (ld.cmd == MachO::LC_DATA_IN_CODE) 10084 outs() << " cmd LC_DATA_IN_CODE\n"; 10085 else if (ld.cmd == MachO::LC_DYLIB_CODE_SIGN_DRS) 10086 outs() << " cmd LC_DYLIB_CODE_SIGN_DRS\n"; 10087 else if (ld.cmd == MachO::LC_LINKER_OPTIMIZATION_HINT) 10088 outs() << " cmd LC_LINKER_OPTIMIZATION_HINT\n"; 10089 else if (ld.cmd == MachO::LC_DYLD_EXPORTS_TRIE) 10090 outs() << " cmd LC_DYLD_EXPORTS_TRIE\n"; 10091 else if (ld.cmd == MachO::LC_DYLD_CHAINED_FIXUPS) 10092 outs() << " cmd LC_DYLD_CHAINED_FIXUPS\n"; 10093 else 10094 outs() << " cmd " << ld.cmd << " (?)\n"; 10095 outs() << " cmdsize " << ld.cmdsize; 10096 if (ld.cmdsize != sizeof(struct MachO::linkedit_data_command)) 10097 outs() << " Incorrect size\n"; 10098 else 10099 outs() << "\n"; 10100 outs() << " dataoff " << ld.dataoff; 10101 if (ld.dataoff > object_size) 10102 outs() << " (past end of file)\n"; 10103 else 10104 outs() << "\n"; 10105 outs() << " datasize " << ld.datasize; 10106 uint64_t big_size = ld.dataoff; 10107 big_size += ld.datasize; 10108 if (big_size > object_size) 10109 outs() << " (past end of file)\n"; 10110 else 10111 outs() << "\n"; 10112 } 10113 10114 static void PrintLoadCommands(const MachOObjectFile *Obj, uint32_t filetype, 10115 uint32_t cputype, bool verbose) { 10116 StringRef Buf = Obj->getData(); 10117 unsigned Index = 0; 10118 for (const auto &Command : Obj->load_commands()) { 10119 outs() << "Load command " << Index++ << "\n"; 10120 if (Command.C.cmd == MachO::LC_SEGMENT) { 10121 MachO::segment_command SLC = Obj->getSegmentLoadCommand(Command); 10122 const char *sg_segname = SLC.segname; 10123 PrintSegmentCommand(SLC.cmd, SLC.cmdsize, SLC.segname, SLC.vmaddr, 10124 SLC.vmsize, SLC.fileoff, SLC.filesize, SLC.maxprot, 10125 SLC.initprot, SLC.nsects, SLC.flags, Buf.size(), 10126 verbose); 10127 for (unsigned j = 0; j < SLC.nsects; j++) { 10128 MachO::section S = Obj->getSection(Command, j); 10129 PrintSection(S.sectname, S.segname, S.addr, S.size, S.offset, S.align, 10130 S.reloff, S.nreloc, S.flags, S.reserved1, S.reserved2, 10131 SLC.cmd, sg_segname, filetype, Buf.size(), verbose); 10132 } 10133 } else if (Command.C.cmd == MachO::LC_SEGMENT_64) { 10134 MachO::segment_command_64 SLC_64 = Obj->getSegment64LoadCommand(Command); 10135 const char *sg_segname = SLC_64.segname; 10136 PrintSegmentCommand(SLC_64.cmd, SLC_64.cmdsize, SLC_64.segname, 10137 SLC_64.vmaddr, SLC_64.vmsize, SLC_64.fileoff, 10138 SLC_64.filesize, SLC_64.maxprot, SLC_64.initprot, 10139 SLC_64.nsects, SLC_64.flags, Buf.size(), verbose); 10140 for (unsigned j = 0; j < SLC_64.nsects; j++) { 10141 MachO::section_64 S_64 = Obj->getSection64(Command, j); 10142 PrintSection(S_64.sectname, S_64.segname, S_64.addr, S_64.size, 10143 S_64.offset, S_64.align, S_64.reloff, S_64.nreloc, 10144 S_64.flags, S_64.reserved1, S_64.reserved2, SLC_64.cmd, 10145 sg_segname, filetype, Buf.size(), verbose); 10146 } 10147 } else if (Command.C.cmd == MachO::LC_SYMTAB) { 10148 MachO::symtab_command Symtab = Obj->getSymtabLoadCommand(); 10149 PrintSymtabLoadCommand(Symtab, Obj->is64Bit(), Buf.size()); 10150 } else if (Command.C.cmd == MachO::LC_DYSYMTAB) { 10151 MachO::dysymtab_command Dysymtab = Obj->getDysymtabLoadCommand(); 10152 MachO::symtab_command Symtab = Obj->getSymtabLoadCommand(); 10153 PrintDysymtabLoadCommand(Dysymtab, Symtab.nsyms, Buf.size(), 10154 Obj->is64Bit()); 10155 } else if (Command.C.cmd == MachO::LC_DYLD_INFO || 10156 Command.C.cmd == MachO::LC_DYLD_INFO_ONLY) { 10157 MachO::dyld_info_command DyldInfo = Obj->getDyldInfoLoadCommand(Command); 10158 PrintDyldInfoLoadCommand(DyldInfo, Buf.size()); 10159 } else if (Command.C.cmd == MachO::LC_LOAD_DYLINKER || 10160 Command.C.cmd == MachO::LC_ID_DYLINKER || 10161 Command.C.cmd == MachO::LC_DYLD_ENVIRONMENT) { 10162 MachO::dylinker_command Dyld = Obj->getDylinkerCommand(Command); 10163 PrintDyldLoadCommand(Dyld, Command.Ptr); 10164 } else if (Command.C.cmd == MachO::LC_UUID) { 10165 MachO::uuid_command Uuid = Obj->getUuidCommand(Command); 10166 PrintUuidLoadCommand(Uuid); 10167 } else if (Command.C.cmd == MachO::LC_RPATH) { 10168 MachO::rpath_command Rpath = Obj->getRpathCommand(Command); 10169 PrintRpathLoadCommand(Rpath, Command.Ptr); 10170 } else if (Command.C.cmd == MachO::LC_VERSION_MIN_MACOSX || 10171 Command.C.cmd == MachO::LC_VERSION_MIN_IPHONEOS || 10172 Command.C.cmd == MachO::LC_VERSION_MIN_TVOS || 10173 Command.C.cmd == MachO::LC_VERSION_MIN_WATCHOS) { 10174 MachO::version_min_command Vd = Obj->getVersionMinLoadCommand(Command); 10175 PrintVersionMinLoadCommand(Vd); 10176 } else if (Command.C.cmd == MachO::LC_NOTE) { 10177 MachO::note_command Nt = Obj->getNoteLoadCommand(Command); 10178 PrintNoteLoadCommand(Nt); 10179 } else if (Command.C.cmd == MachO::LC_BUILD_VERSION) { 10180 MachO::build_version_command Bv = 10181 Obj->getBuildVersionLoadCommand(Command); 10182 PrintBuildVersionLoadCommand(Obj, Bv, verbose); 10183 } else if (Command.C.cmd == MachO::LC_SOURCE_VERSION) { 10184 MachO::source_version_command Sd = Obj->getSourceVersionCommand(Command); 10185 PrintSourceVersionCommand(Sd); 10186 } else if (Command.C.cmd == MachO::LC_MAIN) { 10187 MachO::entry_point_command Ep = Obj->getEntryPointCommand(Command); 10188 PrintEntryPointCommand(Ep); 10189 } else if (Command.C.cmd == MachO::LC_ENCRYPTION_INFO) { 10190 MachO::encryption_info_command Ei = 10191 Obj->getEncryptionInfoCommand(Command); 10192 PrintEncryptionInfoCommand(Ei, Buf.size()); 10193 } else if (Command.C.cmd == MachO::LC_ENCRYPTION_INFO_64) { 10194 MachO::encryption_info_command_64 Ei = 10195 Obj->getEncryptionInfoCommand64(Command); 10196 PrintEncryptionInfoCommand64(Ei, Buf.size()); 10197 } else if (Command.C.cmd == MachO::LC_LINKER_OPTION) { 10198 MachO::linker_option_command Lo = 10199 Obj->getLinkerOptionLoadCommand(Command); 10200 PrintLinkerOptionCommand(Lo, Command.Ptr); 10201 } else if (Command.C.cmd == MachO::LC_SUB_FRAMEWORK) { 10202 MachO::sub_framework_command Sf = Obj->getSubFrameworkCommand(Command); 10203 PrintSubFrameworkCommand(Sf, Command.Ptr); 10204 } else if (Command.C.cmd == MachO::LC_SUB_UMBRELLA) { 10205 MachO::sub_umbrella_command Sf = Obj->getSubUmbrellaCommand(Command); 10206 PrintSubUmbrellaCommand(Sf, Command.Ptr); 10207 } else if (Command.C.cmd == MachO::LC_SUB_LIBRARY) { 10208 MachO::sub_library_command Sl = Obj->getSubLibraryCommand(Command); 10209 PrintSubLibraryCommand(Sl, Command.Ptr); 10210 } else if (Command.C.cmd == MachO::LC_SUB_CLIENT) { 10211 MachO::sub_client_command Sc = Obj->getSubClientCommand(Command); 10212 PrintSubClientCommand(Sc, Command.Ptr); 10213 } else if (Command.C.cmd == MachO::LC_ROUTINES) { 10214 MachO::routines_command Rc = Obj->getRoutinesCommand(Command); 10215 PrintRoutinesCommand(Rc); 10216 } else if (Command.C.cmd == MachO::LC_ROUTINES_64) { 10217 MachO::routines_command_64 Rc = Obj->getRoutinesCommand64(Command); 10218 PrintRoutinesCommand64(Rc); 10219 } else if (Command.C.cmd == MachO::LC_THREAD || 10220 Command.C.cmd == MachO::LC_UNIXTHREAD) { 10221 MachO::thread_command Tc = Obj->getThreadCommand(Command); 10222 PrintThreadCommand(Tc, Command.Ptr, Obj->isLittleEndian(), cputype); 10223 } else if (Command.C.cmd == MachO::LC_LOAD_DYLIB || 10224 Command.C.cmd == MachO::LC_ID_DYLIB || 10225 Command.C.cmd == MachO::LC_LOAD_WEAK_DYLIB || 10226 Command.C.cmd == MachO::LC_REEXPORT_DYLIB || 10227 Command.C.cmd == MachO::LC_LAZY_LOAD_DYLIB || 10228 Command.C.cmd == MachO::LC_LOAD_UPWARD_DYLIB) { 10229 MachO::dylib_command Dl = Obj->getDylibIDLoadCommand(Command); 10230 PrintDylibCommand(Dl, Command.Ptr); 10231 } else if (Command.C.cmd == MachO::LC_CODE_SIGNATURE || 10232 Command.C.cmd == MachO::LC_SEGMENT_SPLIT_INFO || 10233 Command.C.cmd == MachO::LC_FUNCTION_STARTS || 10234 Command.C.cmd == MachO::LC_DATA_IN_CODE || 10235 Command.C.cmd == MachO::LC_DYLIB_CODE_SIGN_DRS || 10236 Command.C.cmd == MachO::LC_LINKER_OPTIMIZATION_HINT || 10237 Command.C.cmd == MachO::LC_DYLD_EXPORTS_TRIE || 10238 Command.C.cmd == MachO::LC_DYLD_CHAINED_FIXUPS) { 10239 MachO::linkedit_data_command Ld = 10240 Obj->getLinkeditDataLoadCommand(Command); 10241 PrintLinkEditDataCommand(Ld, Buf.size()); 10242 } else { 10243 outs() << " cmd ?(" << format("0x%08" PRIx32, Command.C.cmd) 10244 << ")\n"; 10245 outs() << " cmdsize " << Command.C.cmdsize << "\n"; 10246 // TODO: get and print the raw bytes of the load command. 10247 } 10248 // TODO: print all the other kinds of load commands. 10249 } 10250 } 10251 10252 static void PrintMachHeader(const MachOObjectFile *Obj, bool verbose) { 10253 if (Obj->is64Bit()) { 10254 MachO::mach_header_64 H_64; 10255 H_64 = Obj->getHeader64(); 10256 PrintMachHeader(H_64.magic, H_64.cputype, H_64.cpusubtype, H_64.filetype, 10257 H_64.ncmds, H_64.sizeofcmds, H_64.flags, verbose); 10258 } else { 10259 MachO::mach_header H; 10260 H = Obj->getHeader(); 10261 PrintMachHeader(H.magic, H.cputype, H.cpusubtype, H.filetype, H.ncmds, 10262 H.sizeofcmds, H.flags, verbose); 10263 } 10264 } 10265 10266 void objdump::printMachOFileHeader(const object::ObjectFile *Obj) { 10267 const MachOObjectFile *file = cast<const MachOObjectFile>(Obj); 10268 PrintMachHeader(file, Verbose); 10269 } 10270 10271 void objdump::printMachOLoadCommands(const object::ObjectFile *Obj) { 10272 const MachOObjectFile *file = cast<const MachOObjectFile>(Obj); 10273 uint32_t filetype = 0; 10274 uint32_t cputype = 0; 10275 if (file->is64Bit()) { 10276 MachO::mach_header_64 H_64; 10277 H_64 = file->getHeader64(); 10278 filetype = H_64.filetype; 10279 cputype = H_64.cputype; 10280 } else { 10281 MachO::mach_header H; 10282 H = file->getHeader(); 10283 filetype = H.filetype; 10284 cputype = H.cputype; 10285 } 10286 PrintLoadCommands(file, filetype, cputype, Verbose); 10287 } 10288 10289 //===----------------------------------------------------------------------===// 10290 // export trie dumping 10291 //===----------------------------------------------------------------------===// 10292 10293 static void printMachOExportsTrie(const object::MachOObjectFile *Obj) { 10294 uint64_t BaseSegmentAddress = 0; 10295 for (const auto &Command : Obj->load_commands()) { 10296 if (Command.C.cmd == MachO::LC_SEGMENT) { 10297 MachO::segment_command Seg = Obj->getSegmentLoadCommand(Command); 10298 if (Seg.fileoff == 0 && Seg.filesize != 0) { 10299 BaseSegmentAddress = Seg.vmaddr; 10300 break; 10301 } 10302 } else if (Command.C.cmd == MachO::LC_SEGMENT_64) { 10303 MachO::segment_command_64 Seg = Obj->getSegment64LoadCommand(Command); 10304 if (Seg.fileoff == 0 && Seg.filesize != 0) { 10305 BaseSegmentAddress = Seg.vmaddr; 10306 break; 10307 } 10308 } 10309 } 10310 Error Err = Error::success(); 10311 for (const object::ExportEntry &Entry : Obj->exports(Err)) { 10312 uint64_t Flags = Entry.flags(); 10313 bool ReExport = (Flags & MachO::EXPORT_SYMBOL_FLAGS_REEXPORT); 10314 bool WeakDef = (Flags & MachO::EXPORT_SYMBOL_FLAGS_WEAK_DEFINITION); 10315 bool ThreadLocal = ((Flags & MachO::EXPORT_SYMBOL_FLAGS_KIND_MASK) == 10316 MachO::EXPORT_SYMBOL_FLAGS_KIND_THREAD_LOCAL); 10317 bool Abs = ((Flags & MachO::EXPORT_SYMBOL_FLAGS_KIND_MASK) == 10318 MachO::EXPORT_SYMBOL_FLAGS_KIND_ABSOLUTE); 10319 bool Resolver = (Flags & MachO::EXPORT_SYMBOL_FLAGS_STUB_AND_RESOLVER); 10320 if (ReExport) 10321 outs() << "[re-export] "; 10322 else 10323 outs() << format("0x%08llX ", 10324 Entry.address() + BaseSegmentAddress); 10325 outs() << Entry.name(); 10326 if (WeakDef || ThreadLocal || Resolver || Abs) { 10327 ListSeparator LS; 10328 outs() << " ["; 10329 if (WeakDef) 10330 outs() << LS << "weak_def"; 10331 if (ThreadLocal) 10332 outs() << LS << "per-thread"; 10333 if (Abs) 10334 outs() << LS << "absolute"; 10335 if (Resolver) 10336 outs() << LS << format("resolver=0x%08llX", Entry.other()); 10337 outs() << "]"; 10338 } 10339 if (ReExport) { 10340 StringRef DylibName = "unknown"; 10341 int Ordinal = Entry.other() - 1; 10342 Obj->getLibraryShortNameByIndex(Ordinal, DylibName); 10343 if (Entry.otherName().empty()) 10344 outs() << " (from " << DylibName << ")"; 10345 else 10346 outs() << " (" << Entry.otherName() << " from " << DylibName << ")"; 10347 } 10348 outs() << "\n"; 10349 } 10350 if (Err) 10351 reportError(std::move(Err), Obj->getFileName()); 10352 } 10353 10354 //===----------------------------------------------------------------------===// 10355 // rebase table dumping 10356 //===----------------------------------------------------------------------===// 10357 10358 static void printMachORebaseTable(object::MachOObjectFile *Obj) { 10359 outs() << "segment section address type\n"; 10360 Error Err = Error::success(); 10361 for (const object::MachORebaseEntry &Entry : Obj->rebaseTable(Err)) { 10362 StringRef SegmentName = Entry.segmentName(); 10363 StringRef SectionName = Entry.sectionName(); 10364 uint64_t Address = Entry.address(); 10365 10366 // Table lines look like: __DATA __nl_symbol_ptr 0x0000F00C pointer 10367 outs() << format("%-8s %-18s 0x%08" PRIX64 " %s\n", 10368 SegmentName.str().c_str(), SectionName.str().c_str(), 10369 Address, Entry.typeName().str().c_str()); 10370 } 10371 if (Err) 10372 reportError(std::move(Err), Obj->getFileName()); 10373 } 10374 10375 static StringRef ordinalName(const object::MachOObjectFile *Obj, int Ordinal) { 10376 StringRef DylibName; 10377 switch (Ordinal) { 10378 case MachO::BIND_SPECIAL_DYLIB_SELF: 10379 return "this-image"; 10380 case MachO::BIND_SPECIAL_DYLIB_MAIN_EXECUTABLE: 10381 return "main-executable"; 10382 case MachO::BIND_SPECIAL_DYLIB_FLAT_LOOKUP: 10383 return "flat-namespace"; 10384 default: 10385 if (Ordinal > 0) { 10386 std::error_code EC = 10387 Obj->getLibraryShortNameByIndex(Ordinal - 1, DylibName); 10388 if (EC) 10389 return "<<bad library ordinal>>"; 10390 return DylibName; 10391 } 10392 } 10393 return "<<unknown special ordinal>>"; 10394 } 10395 10396 //===----------------------------------------------------------------------===// 10397 // bind table dumping 10398 //===----------------------------------------------------------------------===// 10399 10400 static void printMachOBindTable(object::MachOObjectFile *Obj) { 10401 // Build table of sections so names can used in final output. 10402 outs() << "segment section address type " 10403 "addend dylib symbol\n"; 10404 Error Err = Error::success(); 10405 for (const object::MachOBindEntry &Entry : Obj->bindTable(Err)) { 10406 StringRef SegmentName = Entry.segmentName(); 10407 StringRef SectionName = Entry.sectionName(); 10408 uint64_t Address = Entry.address(); 10409 10410 // Table lines look like: 10411 // __DATA __got 0x00012010 pointer 0 libSystem ___stack_chk_guard 10412 StringRef Attr; 10413 if (Entry.flags() & MachO::BIND_SYMBOL_FLAGS_WEAK_IMPORT) 10414 Attr = " (weak_import)"; 10415 outs() << left_justify(SegmentName, 8) << " " 10416 << left_justify(SectionName, 18) << " " 10417 << format_hex(Address, 10, true) << " " 10418 << left_justify(Entry.typeName(), 8) << " " 10419 << format_decimal(Entry.addend(), 8) << " " 10420 << left_justify(ordinalName(Obj, Entry.ordinal()), 16) << " " 10421 << Entry.symbolName() << Attr << "\n"; 10422 } 10423 if (Err) 10424 reportError(std::move(Err), Obj->getFileName()); 10425 } 10426 10427 //===----------------------------------------------------------------------===// 10428 // lazy bind table dumping 10429 //===----------------------------------------------------------------------===// 10430 10431 static void printMachOLazyBindTable(object::MachOObjectFile *Obj) { 10432 outs() << "segment section address " 10433 "dylib symbol\n"; 10434 Error Err = Error::success(); 10435 for (const object::MachOBindEntry &Entry : Obj->lazyBindTable(Err)) { 10436 StringRef SegmentName = Entry.segmentName(); 10437 StringRef SectionName = Entry.sectionName(); 10438 uint64_t Address = Entry.address(); 10439 10440 // Table lines look like: 10441 // __DATA __got 0x00012010 libSystem ___stack_chk_guard 10442 outs() << left_justify(SegmentName, 8) << " " 10443 << left_justify(SectionName, 18) << " " 10444 << format_hex(Address, 10, true) << " " 10445 << left_justify(ordinalName(Obj, Entry.ordinal()), 16) << " " 10446 << Entry.symbolName() << "\n"; 10447 } 10448 if (Err) 10449 reportError(std::move(Err), Obj->getFileName()); 10450 } 10451 10452 //===----------------------------------------------------------------------===// 10453 // weak bind table dumping 10454 //===----------------------------------------------------------------------===// 10455 10456 static void printMachOWeakBindTable(object::MachOObjectFile *Obj) { 10457 outs() << "segment section address " 10458 "type addend symbol\n"; 10459 Error Err = Error::success(); 10460 for (const object::MachOBindEntry &Entry : Obj->weakBindTable(Err)) { 10461 // Strong symbols don't have a location to update. 10462 if (Entry.flags() & MachO::BIND_SYMBOL_FLAGS_NON_WEAK_DEFINITION) { 10463 outs() << " strong " 10464 << Entry.symbolName() << "\n"; 10465 continue; 10466 } 10467 StringRef SegmentName = Entry.segmentName(); 10468 StringRef SectionName = Entry.sectionName(); 10469 uint64_t Address = Entry.address(); 10470 10471 // Table lines look like: 10472 // __DATA __data 0x00001000 pointer 0 _foo 10473 outs() << left_justify(SegmentName, 8) << " " 10474 << left_justify(SectionName, 18) << " " 10475 << format_hex(Address, 10, true) << " " 10476 << left_justify(Entry.typeName(), 8) << " " 10477 << format_decimal(Entry.addend(), 8) << " " << Entry.symbolName() 10478 << "\n"; 10479 } 10480 if (Err) 10481 reportError(std::move(Err), Obj->getFileName()); 10482 } 10483 10484 // get_dyld_bind_info_symbolname() is used for disassembly and passed an 10485 // address, ReferenceValue, in the Mach-O file and looks in the dyld bind 10486 // information for that address. If the address is found its binding symbol 10487 // name is returned. If not nullptr is returned. 10488 static const char *get_dyld_bind_info_symbolname(uint64_t ReferenceValue, 10489 struct DisassembleInfo *info) { 10490 if (info->bindtable == nullptr) { 10491 info->bindtable = std::make_unique<SymbolAddressMap>(); 10492 Error Err = Error::success(); 10493 for (const object::MachOBindEntry &Entry : info->O->bindTable(Err)) { 10494 uint64_t Address = Entry.address(); 10495 StringRef name = Entry.symbolName(); 10496 if (!name.empty()) 10497 (*info->bindtable)[Address] = name; 10498 } 10499 if (Err) 10500 reportError(std::move(Err), info->O->getFileName()); 10501 } 10502 auto name = info->bindtable->lookup(ReferenceValue); 10503 return !name.empty() ? name.data() : nullptr; 10504 } 10505 10506 void objdump::printLazyBindTable(ObjectFile *o) { 10507 outs() << "\nLazy bind table:\n"; 10508 if (MachOObjectFile *MachO = dyn_cast<MachOObjectFile>(o)) 10509 printMachOLazyBindTable(MachO); 10510 else 10511 WithColor::error() 10512 << "This operation is only currently supported " 10513 "for Mach-O executable files.\n"; 10514 } 10515 10516 void objdump::printWeakBindTable(ObjectFile *o) { 10517 outs() << "\nWeak bind table:\n"; 10518 if (MachOObjectFile *MachO = dyn_cast<MachOObjectFile>(o)) 10519 printMachOWeakBindTable(MachO); 10520 else 10521 WithColor::error() 10522 << "This operation is only currently supported " 10523 "for Mach-O executable files.\n"; 10524 } 10525 10526 void objdump::printExportsTrie(const ObjectFile *o) { 10527 outs() << "\nExports trie:\n"; 10528 if (const MachOObjectFile *MachO = dyn_cast<MachOObjectFile>(o)) 10529 printMachOExportsTrie(MachO); 10530 else 10531 WithColor::error() 10532 << "This operation is only currently supported " 10533 "for Mach-O executable files.\n"; 10534 } 10535 10536 void objdump::printRebaseTable(ObjectFile *o) { 10537 outs() << "\nRebase table:\n"; 10538 if (MachOObjectFile *MachO = dyn_cast<MachOObjectFile>(o)) 10539 printMachORebaseTable(MachO); 10540 else 10541 WithColor::error() 10542 << "This operation is only currently supported " 10543 "for Mach-O executable files.\n"; 10544 } 10545 10546 void objdump::printBindTable(ObjectFile *o) { 10547 outs() << "\nBind table:\n"; 10548 if (MachOObjectFile *MachO = dyn_cast<MachOObjectFile>(o)) 10549 printMachOBindTable(MachO); 10550 else 10551 WithColor::error() 10552 << "This operation is only currently supported " 10553 "for Mach-O executable files.\n"; 10554 } 10555