1 //===-- llvm-objdump.cpp - Object file dumping utility for llvm -----------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This program is a utility that works like binutils "objdump", that is, it 11 // dumps out a plethora of information about an object file depending on the 12 // flags. 13 // 14 // The flags and output of this program should be near identical to those of 15 // binutils objdump. 16 // 17 //===----------------------------------------------------------------------===// 18 19 #include "llvm-objdump.h" 20 #include "llvm/ADT/Optional.h" 21 #include "llvm/ADT/STLExtras.h" 22 #include "llvm/ADT/StringExtras.h" 23 #include "llvm/ADT/Triple.h" 24 #include "llvm/CodeGen/FaultMaps.h" 25 #include "llvm/MC/MCAsmInfo.h" 26 #include "llvm/MC/MCContext.h" 27 #include "llvm/MC/MCDisassembler.h" 28 #include "llvm/MC/MCInst.h" 29 #include "llvm/MC/MCInstPrinter.h" 30 #include "llvm/MC/MCInstrAnalysis.h" 31 #include "llvm/MC/MCInstrInfo.h" 32 #include "llvm/MC/MCObjectFileInfo.h" 33 #include "llvm/MC/MCRegisterInfo.h" 34 #include "llvm/MC/MCRelocationInfo.h" 35 #include "llvm/MC/MCSubtargetInfo.h" 36 #include "llvm/Object/Archive.h" 37 #include "llvm/Object/ELFObjectFile.h" 38 #include "llvm/Object/COFF.h" 39 #include "llvm/Object/MachO.h" 40 #include "llvm/Object/ObjectFile.h" 41 #include "llvm/Support/Casting.h" 42 #include "llvm/Support/CommandLine.h" 43 #include "llvm/Support/Debug.h" 44 #include "llvm/Support/Errc.h" 45 #include "llvm/Support/FileSystem.h" 46 #include "llvm/Support/Format.h" 47 #include "llvm/Support/GraphWriter.h" 48 #include "llvm/Support/Host.h" 49 #include "llvm/Support/ManagedStatic.h" 50 #include "llvm/Support/MemoryBuffer.h" 51 #include "llvm/Support/PrettyStackTrace.h" 52 #include "llvm/Support/Signals.h" 53 #include "llvm/Support/SourceMgr.h" 54 #include "llvm/Support/TargetRegistry.h" 55 #include "llvm/Support/TargetSelect.h" 56 #include "llvm/Support/raw_ostream.h" 57 #include <algorithm> 58 #include <cctype> 59 #include <cstring> 60 #include <system_error> 61 62 using namespace llvm; 63 using namespace object; 64 65 static cl::list<std::string> 66 InputFilenames(cl::Positional, cl::desc("<input object files>"),cl::ZeroOrMore); 67 68 cl::opt<bool> 69 llvm::Disassemble("disassemble", 70 cl::desc("Display assembler mnemonics for the machine instructions")); 71 static cl::alias 72 Disassembled("d", cl::desc("Alias for --disassemble"), 73 cl::aliasopt(Disassemble)); 74 75 cl::opt<bool> 76 llvm::Relocations("r", cl::desc("Display the relocation entries in the file")); 77 78 cl::opt<bool> 79 llvm::SectionContents("s", cl::desc("Display the content of each section")); 80 81 cl::opt<bool> 82 llvm::SymbolTable("t", cl::desc("Display the symbol table")); 83 84 cl::opt<bool> 85 llvm::ExportsTrie("exports-trie", cl::desc("Display mach-o exported symbols")); 86 87 cl::opt<bool> 88 llvm::Rebase("rebase", cl::desc("Display mach-o rebasing info")); 89 90 cl::opt<bool> 91 llvm::Bind("bind", cl::desc("Display mach-o binding info")); 92 93 cl::opt<bool> 94 llvm::LazyBind("lazy-bind", cl::desc("Display mach-o lazy binding info")); 95 96 cl::opt<bool> 97 llvm::WeakBind("weak-bind", cl::desc("Display mach-o weak binding info")); 98 99 static cl::opt<bool> 100 MachOOpt("macho", cl::desc("Use MachO specific object file parser")); 101 static cl::alias 102 MachOm("m", cl::desc("Alias for --macho"), cl::aliasopt(MachOOpt)); 103 104 cl::opt<std::string> 105 llvm::TripleName("triple", cl::desc("Target triple to disassemble for, " 106 "see -version for available targets")); 107 108 cl::opt<std::string> 109 llvm::MCPU("mcpu", 110 cl::desc("Target a specific cpu type (-mcpu=help for details)"), 111 cl::value_desc("cpu-name"), 112 cl::init("")); 113 114 cl::opt<std::string> 115 llvm::ArchName("arch-name", cl::desc("Target arch to disassemble for, " 116 "see -version for available targets")); 117 118 cl::opt<bool> 119 llvm::SectionHeaders("section-headers", cl::desc("Display summaries of the " 120 "headers for each section.")); 121 static cl::alias 122 SectionHeadersShort("headers", cl::desc("Alias for --section-headers"), 123 cl::aliasopt(SectionHeaders)); 124 static cl::alias 125 SectionHeadersShorter("h", cl::desc("Alias for --section-headers"), 126 cl::aliasopt(SectionHeaders)); 127 128 cl::list<std::string> 129 llvm::MAttrs("mattr", 130 cl::CommaSeparated, 131 cl::desc("Target specific attributes"), 132 cl::value_desc("a1,+a2,-a3,...")); 133 134 cl::opt<bool> 135 llvm::NoShowRawInsn("no-show-raw-insn", cl::desc("When disassembling " 136 "instructions, do not print " 137 "the instruction bytes.")); 138 139 cl::opt<bool> 140 llvm::UnwindInfo("unwind-info", cl::desc("Display unwind information")); 141 142 static cl::alias 143 UnwindInfoShort("u", cl::desc("Alias for --unwind-info"), 144 cl::aliasopt(UnwindInfo)); 145 146 cl::opt<bool> 147 llvm::PrivateHeaders("private-headers", 148 cl::desc("Display format specific file headers")); 149 150 static cl::alias 151 PrivateHeadersShort("p", cl::desc("Alias for --private-headers"), 152 cl::aliasopt(PrivateHeaders)); 153 154 cl::opt<bool> 155 llvm::PrintImmHex("print-imm-hex", 156 cl::desc("Use hex format for immediate values")); 157 158 cl::opt<bool> PrintFaultMaps("fault-map-section", 159 cl::desc("Display contents of faultmap section")); 160 161 static StringRef ToolName; 162 static int ReturnValue = EXIT_SUCCESS; 163 164 bool llvm::error(std::error_code EC) { 165 if (!EC) 166 return false; 167 168 outs() << ToolName << ": error reading file: " << EC.message() << ".\n"; 169 outs().flush(); 170 ReturnValue = EXIT_FAILURE; 171 return true; 172 } 173 174 static void report_error(StringRef File, std::error_code EC) { 175 assert(EC); 176 errs() << ToolName << ": '" << File << "': " << EC.message() << ".\n"; 177 ReturnValue = EXIT_FAILURE; 178 } 179 180 static const Target *getTarget(const ObjectFile *Obj = nullptr) { 181 // Figure out the target triple. 182 llvm::Triple TheTriple("unknown-unknown-unknown"); 183 if (TripleName.empty()) { 184 if (Obj) { 185 TheTriple.setArch(Triple::ArchType(Obj->getArch())); 186 // TheTriple defaults to ELF, and COFF doesn't have an environment: 187 // the best we can do here is indicate that it is mach-o. 188 if (Obj->isMachO()) 189 TheTriple.setObjectFormat(Triple::MachO); 190 191 if (Obj->isCOFF()) { 192 const auto COFFObj = dyn_cast<COFFObjectFile>(Obj); 193 if (COFFObj->getArch() == Triple::thumb) 194 TheTriple.setTriple("thumbv7-windows"); 195 } 196 } 197 } else 198 TheTriple.setTriple(Triple::normalize(TripleName)); 199 200 // Get the target specific parser. 201 std::string Error; 202 const Target *TheTarget = TargetRegistry::lookupTarget(ArchName, TheTriple, 203 Error); 204 if (!TheTarget) { 205 errs() << ToolName << ": " << Error; 206 return nullptr; 207 } 208 209 // Update the triple name and return the found target. 210 TripleName = TheTriple.getTriple(); 211 return TheTarget; 212 } 213 214 bool llvm::RelocAddressLess(RelocationRef a, RelocationRef b) { 215 uint64_t a_addr = a.getOffset(); 216 uint64_t b_addr = b.getOffset(); 217 return a_addr < b_addr; 218 } 219 220 namespace { 221 class PrettyPrinter { 222 public: 223 virtual ~PrettyPrinter(){} 224 virtual void printInst(MCInstPrinter &IP, const MCInst *MI, 225 ArrayRef<uint8_t> Bytes, uint64_t Address, 226 raw_ostream &OS, StringRef Annot, 227 MCSubtargetInfo const &STI) { 228 outs() << format("%8" PRIx64 ":", Address); 229 if (!NoShowRawInsn) { 230 outs() << "\t"; 231 dumpBytes(Bytes, outs()); 232 } 233 IP.printInst(MI, outs(), "", STI); 234 } 235 }; 236 PrettyPrinter PrettyPrinterInst; 237 class HexagonPrettyPrinter : public PrettyPrinter { 238 public: 239 void printLead(ArrayRef<uint8_t> Bytes, uint64_t Address, 240 raw_ostream &OS) { 241 uint32_t opcode = 242 (Bytes[3] << 24) | (Bytes[2] << 16) | (Bytes[1] << 8) | Bytes[0]; 243 OS << format("%8" PRIx64 ":", Address); 244 if (!NoShowRawInsn) { 245 OS << "\t"; 246 dumpBytes(Bytes.slice(0, 4), OS); 247 OS << format("%08" PRIx32, opcode); 248 } 249 } 250 void printInst(MCInstPrinter &IP, const MCInst *MI, 251 ArrayRef<uint8_t> Bytes, uint64_t Address, 252 raw_ostream &OS, StringRef Annot, 253 MCSubtargetInfo const &STI) override { 254 std::string Buffer; 255 { 256 raw_string_ostream TempStream(Buffer); 257 IP.printInst(MI, TempStream, "", STI); 258 } 259 StringRef Contents(Buffer); 260 // Split off bundle attributes 261 auto PacketBundle = Contents.rsplit('\n'); 262 // Split off first instruction from the rest 263 auto HeadTail = PacketBundle.first.split('\n'); 264 auto Preamble = " { "; 265 auto Separator = ""; 266 while(!HeadTail.first.empty()) { 267 OS << Separator; 268 Separator = "\n"; 269 printLead(Bytes, Address, OS); 270 OS << Preamble; 271 Preamble = " "; 272 StringRef Inst; 273 auto Duplex = HeadTail.first.split('\v'); 274 if(!Duplex.second.empty()){ 275 OS << Duplex.first; 276 OS << "; "; 277 Inst = Duplex.second; 278 } 279 else 280 Inst = HeadTail.first; 281 OS << Inst; 282 Bytes = Bytes.slice(4); 283 Address += 4; 284 HeadTail = HeadTail.second.split('\n'); 285 } 286 OS << " } " << PacketBundle.second; 287 } 288 }; 289 HexagonPrettyPrinter HexagonPrettyPrinterInst; 290 PrettyPrinter &selectPrettyPrinter(Triple const &Triple) { 291 switch(Triple.getArch()) { 292 default: 293 return PrettyPrinterInst; 294 case Triple::hexagon: 295 return HexagonPrettyPrinterInst; 296 } 297 } 298 } 299 300 template <class ELFT> 301 static std::error_code getRelocationValueString(const ELFObjectFile<ELFT> *Obj, 302 DataRefImpl Rel, 303 SmallVectorImpl<char> &Result) { 304 typedef typename ELFObjectFile<ELFT>::Elf_Sym Elf_Sym; 305 typedef typename ELFObjectFile<ELFT>::Elf_Shdr Elf_Shdr; 306 typedef typename ELFObjectFile<ELFT>::Elf_Rel Elf_Rel; 307 typedef typename ELFObjectFile<ELFT>::Elf_Rela Elf_Rela; 308 309 const ELFFile<ELFT> &EF = *Obj->getELFFile(); 310 311 ErrorOr<const Elf_Shdr *> SecOrErr = EF.getSection(Rel.d.a); 312 if (std::error_code EC = SecOrErr.getError()) 313 return EC; 314 const Elf_Shdr *Sec = *SecOrErr; 315 ErrorOr<const Elf_Shdr *> SymTabOrErr = EF.getSection(Sec->sh_link); 316 if (std::error_code EC = SymTabOrErr.getError()) 317 return EC; 318 const Elf_Shdr *SymTab = *SymTabOrErr; 319 assert(SymTab->sh_type == ELF::SHT_SYMTAB || 320 SymTab->sh_type == ELF::SHT_DYNSYM); 321 ErrorOr<const Elf_Shdr *> StrTabSec = EF.getSection(SymTab->sh_link); 322 if (std::error_code EC = StrTabSec.getError()) 323 return EC; 324 ErrorOr<StringRef> StrTabOrErr = EF.getStringTable(*StrTabSec); 325 if (std::error_code EC = StrTabOrErr.getError()) 326 return EC; 327 StringRef StrTab = *StrTabOrErr; 328 uint8_t type; 329 StringRef res; 330 int64_t addend = 0; 331 uint16_t symbol_index = 0; 332 switch (Sec->sh_type) { 333 default: 334 return object_error::parse_failed; 335 case ELF::SHT_REL: { 336 const Elf_Rel *ERel = Obj->getRel(Rel); 337 type = ERel->getType(EF.isMips64EL()); 338 symbol_index = ERel->getSymbol(EF.isMips64EL()); 339 // TODO: Read implicit addend from section data. 340 break; 341 } 342 case ELF::SHT_RELA: { 343 const Elf_Rela *ERela = Obj->getRela(Rel); 344 type = ERela->getType(EF.isMips64EL()); 345 symbol_index = ERela->getSymbol(EF.isMips64EL()); 346 addend = ERela->r_addend; 347 break; 348 } 349 } 350 const Elf_Sym *symb = 351 EF.template getEntry<Elf_Sym>(Sec->sh_link, symbol_index); 352 StringRef Target; 353 ErrorOr<const Elf_Shdr *> SymSec = EF.getSection(symb); 354 if (std::error_code EC = SymSec.getError()) 355 return EC; 356 if (symb->getType() == ELF::STT_SECTION) { 357 ErrorOr<StringRef> SecName = EF.getSectionName(*SymSec); 358 if (std::error_code EC = SecName.getError()) 359 return EC; 360 Target = *SecName; 361 } else { 362 ErrorOr<StringRef> SymName = symb->getName(StrTab); 363 if (!SymName) 364 return SymName.getError(); 365 Target = *SymName; 366 } 367 switch (EF.getHeader()->e_machine) { 368 case ELF::EM_X86_64: 369 switch (type) { 370 case ELF::R_X86_64_PC8: 371 case ELF::R_X86_64_PC16: 372 case ELF::R_X86_64_PC32: { 373 std::string fmtbuf; 374 raw_string_ostream fmt(fmtbuf); 375 fmt << Target << (addend < 0 ? "" : "+") << addend << "-P"; 376 fmt.flush(); 377 Result.append(fmtbuf.begin(), fmtbuf.end()); 378 } break; 379 case ELF::R_X86_64_8: 380 case ELF::R_X86_64_16: 381 case ELF::R_X86_64_32: 382 case ELF::R_X86_64_32S: 383 case ELF::R_X86_64_64: { 384 std::string fmtbuf; 385 raw_string_ostream fmt(fmtbuf); 386 fmt << Target << (addend < 0 ? "" : "+") << addend; 387 fmt.flush(); 388 Result.append(fmtbuf.begin(), fmtbuf.end()); 389 } break; 390 default: 391 res = "Unknown"; 392 } 393 break; 394 case ELF::EM_AARCH64: { 395 std::string fmtbuf; 396 raw_string_ostream fmt(fmtbuf); 397 fmt << Target; 398 if (addend != 0) 399 fmt << (addend < 0 ? "" : "+") << addend; 400 fmt.flush(); 401 Result.append(fmtbuf.begin(), fmtbuf.end()); 402 break; 403 } 404 case ELF::EM_386: 405 case ELF::EM_ARM: 406 case ELF::EM_HEXAGON: 407 case ELF::EM_MIPS: 408 res = Target; 409 break; 410 default: 411 res = "Unknown"; 412 } 413 if (Result.empty()) 414 Result.append(res.begin(), res.end()); 415 return std::error_code(); 416 } 417 418 static std::error_code getRelocationValueString(const ELFObjectFileBase *Obj, 419 const RelocationRef &RelRef, 420 SmallVectorImpl<char> &Result) { 421 DataRefImpl Rel = RelRef.getRawDataRefImpl(); 422 if (auto *ELF32LE = dyn_cast<ELF32LEObjectFile>(Obj)) 423 return getRelocationValueString(ELF32LE, Rel, Result); 424 if (auto *ELF64LE = dyn_cast<ELF64LEObjectFile>(Obj)) 425 return getRelocationValueString(ELF64LE, Rel, Result); 426 if (auto *ELF32BE = dyn_cast<ELF32BEObjectFile>(Obj)) 427 return getRelocationValueString(ELF32BE, Rel, Result); 428 auto *ELF64BE = cast<ELF64BEObjectFile>(Obj); 429 return getRelocationValueString(ELF64BE, Rel, Result); 430 } 431 432 static std::error_code getRelocationValueString(const COFFObjectFile *Obj, 433 const RelocationRef &Rel, 434 SmallVectorImpl<char> &Result) { 435 symbol_iterator SymI = Rel.getSymbol(); 436 StringRef SymName; 437 if (std::error_code EC = SymI->getName(SymName)) 438 return EC; 439 Result.append(SymName.begin(), SymName.end()); 440 return std::error_code(); 441 } 442 443 static void printRelocationTargetName(const MachOObjectFile *O, 444 const MachO::any_relocation_info &RE, 445 raw_string_ostream &fmt) { 446 bool IsScattered = O->isRelocationScattered(RE); 447 448 // Target of a scattered relocation is an address. In the interest of 449 // generating pretty output, scan through the symbol table looking for a 450 // symbol that aligns with that address. If we find one, print it. 451 // Otherwise, we just print the hex address of the target. 452 if (IsScattered) { 453 uint32_t Val = O->getPlainRelocationSymbolNum(RE); 454 455 for (const SymbolRef &Symbol : O->symbols()) { 456 std::error_code ec; 457 uint64_t Addr; 458 StringRef Name; 459 460 if ((ec = Symbol.getAddress(Addr))) 461 report_fatal_error(ec.message()); 462 if (Addr != Val) 463 continue; 464 if ((ec = Symbol.getName(Name))) 465 report_fatal_error(ec.message()); 466 fmt << Name; 467 return; 468 } 469 470 // If we couldn't find a symbol that this relocation refers to, try 471 // to find a section beginning instead. 472 for (const SectionRef &Section : O->sections()) { 473 std::error_code ec; 474 475 StringRef Name; 476 uint64_t Addr = Section.getAddress(); 477 if (Addr != Val) 478 continue; 479 if ((ec = Section.getName(Name))) 480 report_fatal_error(ec.message()); 481 fmt << Name; 482 return; 483 } 484 485 fmt << format("0x%x", Val); 486 return; 487 } 488 489 StringRef S; 490 bool isExtern = O->getPlainRelocationExternal(RE); 491 uint64_t Val = O->getPlainRelocationSymbolNum(RE); 492 493 if (isExtern) { 494 symbol_iterator SI = O->symbol_begin(); 495 advance(SI, Val); 496 SI->getName(S); 497 } else { 498 section_iterator SI = O->section_begin(); 499 // Adjust for the fact that sections are 1-indexed. 500 advance(SI, Val - 1); 501 SI->getName(S); 502 } 503 504 fmt << S; 505 } 506 507 static std::error_code getRelocationValueString(const MachOObjectFile *Obj, 508 const RelocationRef &RelRef, 509 SmallVectorImpl<char> &Result) { 510 DataRefImpl Rel = RelRef.getRawDataRefImpl(); 511 MachO::any_relocation_info RE = Obj->getRelocation(Rel); 512 513 unsigned Arch = Obj->getArch(); 514 515 std::string fmtbuf; 516 raw_string_ostream fmt(fmtbuf); 517 unsigned Type = Obj->getAnyRelocationType(RE); 518 bool IsPCRel = Obj->getAnyRelocationPCRel(RE); 519 520 // Determine any addends that should be displayed with the relocation. 521 // These require decoding the relocation type, which is triple-specific. 522 523 // X86_64 has entirely custom relocation types. 524 if (Arch == Triple::x86_64) { 525 bool isPCRel = Obj->getAnyRelocationPCRel(RE); 526 527 switch (Type) { 528 case MachO::X86_64_RELOC_GOT_LOAD: 529 case MachO::X86_64_RELOC_GOT: { 530 printRelocationTargetName(Obj, RE, fmt); 531 fmt << "@GOT"; 532 if (isPCRel) 533 fmt << "PCREL"; 534 break; 535 } 536 case MachO::X86_64_RELOC_SUBTRACTOR: { 537 DataRefImpl RelNext = Rel; 538 Obj->moveRelocationNext(RelNext); 539 MachO::any_relocation_info RENext = Obj->getRelocation(RelNext); 540 541 // X86_64_RELOC_SUBTRACTOR must be followed by a relocation of type 542 // X86_64_RELOC_UNSIGNED. 543 // NOTE: Scattered relocations don't exist on x86_64. 544 unsigned RType = Obj->getAnyRelocationType(RENext); 545 if (RType != MachO::X86_64_RELOC_UNSIGNED) 546 report_fatal_error("Expected X86_64_RELOC_UNSIGNED after " 547 "X86_64_RELOC_SUBTRACTOR."); 548 549 // The X86_64_RELOC_UNSIGNED contains the minuend symbol; 550 // X86_64_RELOC_SUBTRACTOR contains the subtrahend. 551 printRelocationTargetName(Obj, RENext, fmt); 552 fmt << "-"; 553 printRelocationTargetName(Obj, RE, fmt); 554 break; 555 } 556 case MachO::X86_64_RELOC_TLV: 557 printRelocationTargetName(Obj, RE, fmt); 558 fmt << "@TLV"; 559 if (isPCRel) 560 fmt << "P"; 561 break; 562 case MachO::X86_64_RELOC_SIGNED_1: 563 printRelocationTargetName(Obj, RE, fmt); 564 fmt << "-1"; 565 break; 566 case MachO::X86_64_RELOC_SIGNED_2: 567 printRelocationTargetName(Obj, RE, fmt); 568 fmt << "-2"; 569 break; 570 case MachO::X86_64_RELOC_SIGNED_4: 571 printRelocationTargetName(Obj, RE, fmt); 572 fmt << "-4"; 573 break; 574 default: 575 printRelocationTargetName(Obj, RE, fmt); 576 break; 577 } 578 // X86 and ARM share some relocation types in common. 579 } else if (Arch == Triple::x86 || Arch == Triple::arm || 580 Arch == Triple::ppc) { 581 // Generic relocation types... 582 switch (Type) { 583 case MachO::GENERIC_RELOC_PAIR: // prints no info 584 return std::error_code(); 585 case MachO::GENERIC_RELOC_SECTDIFF: { 586 DataRefImpl RelNext = Rel; 587 Obj->moveRelocationNext(RelNext); 588 MachO::any_relocation_info RENext = Obj->getRelocation(RelNext); 589 590 // X86 sect diff's must be followed by a relocation of type 591 // GENERIC_RELOC_PAIR. 592 unsigned RType = Obj->getAnyRelocationType(RENext); 593 594 if (RType != MachO::GENERIC_RELOC_PAIR) 595 report_fatal_error("Expected GENERIC_RELOC_PAIR after " 596 "GENERIC_RELOC_SECTDIFF."); 597 598 printRelocationTargetName(Obj, RE, fmt); 599 fmt << "-"; 600 printRelocationTargetName(Obj, RENext, fmt); 601 break; 602 } 603 } 604 605 if (Arch == Triple::x86 || Arch == Triple::ppc) { 606 switch (Type) { 607 case MachO::GENERIC_RELOC_LOCAL_SECTDIFF: { 608 DataRefImpl RelNext = Rel; 609 Obj->moveRelocationNext(RelNext); 610 MachO::any_relocation_info RENext = Obj->getRelocation(RelNext); 611 612 // X86 sect diff's must be followed by a relocation of type 613 // GENERIC_RELOC_PAIR. 614 unsigned RType = Obj->getAnyRelocationType(RENext); 615 if (RType != MachO::GENERIC_RELOC_PAIR) 616 report_fatal_error("Expected GENERIC_RELOC_PAIR after " 617 "GENERIC_RELOC_LOCAL_SECTDIFF."); 618 619 printRelocationTargetName(Obj, RE, fmt); 620 fmt << "-"; 621 printRelocationTargetName(Obj, RENext, fmt); 622 break; 623 } 624 case MachO::GENERIC_RELOC_TLV: { 625 printRelocationTargetName(Obj, RE, fmt); 626 fmt << "@TLV"; 627 if (IsPCRel) 628 fmt << "P"; 629 break; 630 } 631 default: 632 printRelocationTargetName(Obj, RE, fmt); 633 } 634 } else { // ARM-specific relocations 635 switch (Type) { 636 case MachO::ARM_RELOC_HALF: 637 case MachO::ARM_RELOC_HALF_SECTDIFF: { 638 // Half relocations steal a bit from the length field to encode 639 // whether this is an upper16 or a lower16 relocation. 640 bool isUpper = Obj->getAnyRelocationLength(RE) >> 1; 641 642 if (isUpper) 643 fmt << ":upper16:("; 644 else 645 fmt << ":lower16:("; 646 printRelocationTargetName(Obj, RE, fmt); 647 648 DataRefImpl RelNext = Rel; 649 Obj->moveRelocationNext(RelNext); 650 MachO::any_relocation_info RENext = Obj->getRelocation(RelNext); 651 652 // ARM half relocs must be followed by a relocation of type 653 // ARM_RELOC_PAIR. 654 unsigned RType = Obj->getAnyRelocationType(RENext); 655 if (RType != MachO::ARM_RELOC_PAIR) 656 report_fatal_error("Expected ARM_RELOC_PAIR after " 657 "ARM_RELOC_HALF"); 658 659 // NOTE: The half of the target virtual address is stashed in the 660 // address field of the secondary relocation, but we can't reverse 661 // engineer the constant offset from it without decoding the movw/movt 662 // instruction to find the other half in its immediate field. 663 664 // ARM_RELOC_HALF_SECTDIFF encodes the second section in the 665 // symbol/section pointer of the follow-on relocation. 666 if (Type == MachO::ARM_RELOC_HALF_SECTDIFF) { 667 fmt << "-"; 668 printRelocationTargetName(Obj, RENext, fmt); 669 } 670 671 fmt << ")"; 672 break; 673 } 674 default: { printRelocationTargetName(Obj, RE, fmt); } 675 } 676 } 677 } else 678 printRelocationTargetName(Obj, RE, fmt); 679 680 fmt.flush(); 681 Result.append(fmtbuf.begin(), fmtbuf.end()); 682 return std::error_code(); 683 } 684 685 static std::error_code getRelocationValueString(const RelocationRef &Rel, 686 SmallVectorImpl<char> &Result) { 687 const ObjectFile *Obj = Rel.getObject(); 688 if (auto *ELF = dyn_cast<ELFObjectFileBase>(Obj)) 689 return getRelocationValueString(ELF, Rel, Result); 690 if (auto *COFF = dyn_cast<COFFObjectFile>(Obj)) 691 return getRelocationValueString(COFF, Rel, Result); 692 auto *MachO = cast<MachOObjectFile>(Obj); 693 return getRelocationValueString(MachO, Rel, Result); 694 } 695 696 /// @brief Indicates whether this relocation should hidden when listing 697 /// relocations, usually because it is the trailing part of a multipart 698 /// relocation that will be printed as part of the leading relocation. 699 static bool getHidden(RelocationRef RelRef) { 700 const ObjectFile *Obj = RelRef.getObject(); 701 auto *MachO = dyn_cast<MachOObjectFile>(Obj); 702 if (!MachO) 703 return false; 704 705 unsigned Arch = MachO->getArch(); 706 DataRefImpl Rel = RelRef.getRawDataRefImpl(); 707 uint64_t Type = MachO->getRelocationType(Rel); 708 709 // On arches that use the generic relocations, GENERIC_RELOC_PAIR 710 // is always hidden. 711 if (Arch == Triple::x86 || Arch == Triple::arm || Arch == Triple::ppc) { 712 if (Type == MachO::GENERIC_RELOC_PAIR) 713 return true; 714 } else if (Arch == Triple::x86_64) { 715 // On x86_64, X86_64_RELOC_UNSIGNED is hidden only when it follows 716 // an X86_64_RELOC_SUBTRACTOR. 717 if (Type == MachO::X86_64_RELOC_UNSIGNED && Rel.d.a > 0) { 718 DataRefImpl RelPrev = Rel; 719 RelPrev.d.a--; 720 uint64_t PrevType = MachO->getRelocationType(RelPrev); 721 if (PrevType == MachO::X86_64_RELOC_SUBTRACTOR) 722 return true; 723 } 724 } 725 726 return false; 727 } 728 729 static void DisassembleObject(const ObjectFile *Obj, bool InlineRelocs) { 730 const Target *TheTarget = getTarget(Obj); 731 // getTarget() will have already issued a diagnostic if necessary, so 732 // just bail here if it failed. 733 if (!TheTarget) 734 return; 735 736 // Package up features to be passed to target/subtarget 737 std::string FeaturesStr; 738 if (MAttrs.size()) { 739 SubtargetFeatures Features; 740 for (unsigned i = 0; i != MAttrs.size(); ++i) 741 Features.AddFeature(MAttrs[i]); 742 FeaturesStr = Features.getString(); 743 } 744 745 std::unique_ptr<const MCRegisterInfo> MRI( 746 TheTarget->createMCRegInfo(TripleName)); 747 if (!MRI) { 748 errs() << "error: no register info for target " << TripleName << "\n"; 749 return; 750 } 751 752 // Set up disassembler. 753 std::unique_ptr<const MCAsmInfo> AsmInfo( 754 TheTarget->createMCAsmInfo(*MRI, TripleName)); 755 if (!AsmInfo) { 756 errs() << "error: no assembly info for target " << TripleName << "\n"; 757 return; 758 } 759 760 std::unique_ptr<const MCSubtargetInfo> STI( 761 TheTarget->createMCSubtargetInfo(TripleName, MCPU, FeaturesStr)); 762 if (!STI) { 763 errs() << "error: no subtarget info for target " << TripleName << "\n"; 764 return; 765 } 766 767 std::unique_ptr<const MCInstrInfo> MII(TheTarget->createMCInstrInfo()); 768 if (!MII) { 769 errs() << "error: no instruction info for target " << TripleName << "\n"; 770 return; 771 } 772 773 std::unique_ptr<const MCObjectFileInfo> MOFI(new MCObjectFileInfo); 774 MCContext Ctx(AsmInfo.get(), MRI.get(), MOFI.get()); 775 776 std::unique_ptr<MCDisassembler> DisAsm( 777 TheTarget->createMCDisassembler(*STI, Ctx)); 778 779 if (!DisAsm) { 780 errs() << "error: no disassembler for target " << TripleName << "\n"; 781 return; 782 } 783 784 std::unique_ptr<const MCInstrAnalysis> MIA( 785 TheTarget->createMCInstrAnalysis(MII.get())); 786 787 int AsmPrinterVariant = AsmInfo->getAssemblerDialect(); 788 std::unique_ptr<MCInstPrinter> IP(TheTarget->createMCInstPrinter( 789 Triple(TripleName), AsmPrinterVariant, *AsmInfo, *MII, *MRI)); 790 if (!IP) { 791 errs() << "error: no instruction printer for target " << TripleName 792 << '\n'; 793 return; 794 } 795 IP->setPrintImmHex(PrintImmHex); 796 PrettyPrinter &PIP = selectPrettyPrinter(Triple(TripleName)); 797 798 StringRef Fmt = Obj->getBytesInAddress() > 4 ? "\t\t%016" PRIx64 ": " : 799 "\t\t\t%08" PRIx64 ": "; 800 801 // Create a mapping, RelocSecs = SectionRelocMap[S], where sections 802 // in RelocSecs contain the relocations for section S. 803 std::error_code EC; 804 std::map<SectionRef, SmallVector<SectionRef, 1>> SectionRelocMap; 805 for (const SectionRef &Section : Obj->sections()) { 806 section_iterator Sec2 = Section.getRelocatedSection(); 807 if (Sec2 != Obj->section_end()) 808 SectionRelocMap[*Sec2].push_back(Section); 809 } 810 811 for (const SectionRef &Section : Obj->sections()) { 812 if (!Section.isText() || Section.isVirtual()) 813 continue; 814 815 uint64_t SectionAddr = Section.getAddress(); 816 uint64_t SectSize = Section.getSize(); 817 if (!SectSize) 818 continue; 819 820 // Make a list of all the symbols in this section. 821 std::vector<std::pair<uint64_t, StringRef>> Symbols; 822 for (const SymbolRef &Symbol : Obj->symbols()) { 823 if (Section.containsSymbol(Symbol)) { 824 uint64_t Address; 825 if (error(Symbol.getAddress(Address))) 826 break; 827 if (Address == UnknownAddress) 828 continue; 829 Address -= SectionAddr; 830 if (Address >= SectSize) 831 continue; 832 833 StringRef Name; 834 if (error(Symbol.getName(Name))) 835 break; 836 Symbols.push_back(std::make_pair(Address, Name)); 837 } 838 } 839 840 // Sort the symbols by address, just in case they didn't come in that way. 841 array_pod_sort(Symbols.begin(), Symbols.end()); 842 843 // Make a list of all the relocations for this section. 844 std::vector<RelocationRef> Rels; 845 if (InlineRelocs) { 846 for (const SectionRef &RelocSec : SectionRelocMap[Section]) { 847 for (const RelocationRef &Reloc : RelocSec.relocations()) { 848 Rels.push_back(Reloc); 849 } 850 } 851 } 852 853 // Sort relocations by address. 854 std::sort(Rels.begin(), Rels.end(), RelocAddressLess); 855 856 StringRef SegmentName = ""; 857 if (const MachOObjectFile *MachO = dyn_cast<const MachOObjectFile>(Obj)) { 858 DataRefImpl DR = Section.getRawDataRefImpl(); 859 SegmentName = MachO->getSectionFinalSegmentName(DR); 860 } 861 StringRef name; 862 if (error(Section.getName(name))) 863 break; 864 outs() << "Disassembly of section "; 865 if (!SegmentName.empty()) 866 outs() << SegmentName << ","; 867 outs() << name << ':'; 868 869 // If the section has no symbol at the start, just insert a dummy one. 870 if (Symbols.empty() || Symbols[0].first != 0) 871 Symbols.insert(Symbols.begin(), std::make_pair(0, name)); 872 873 SmallString<40> Comments; 874 raw_svector_ostream CommentStream(Comments); 875 876 StringRef BytesStr; 877 if (error(Section.getContents(BytesStr))) 878 break; 879 ArrayRef<uint8_t> Bytes(reinterpret_cast<const uint8_t *>(BytesStr.data()), 880 BytesStr.size()); 881 882 uint64_t Size; 883 uint64_t Index; 884 885 std::vector<RelocationRef>::const_iterator rel_cur = Rels.begin(); 886 std::vector<RelocationRef>::const_iterator rel_end = Rels.end(); 887 // Disassemble symbol by symbol. 888 for (unsigned si = 0, se = Symbols.size(); si != se; ++si) { 889 890 uint64_t Start = Symbols[si].first; 891 // The end is either the section end or the beginning of the next symbol. 892 uint64_t End = (si == se - 1) ? SectSize : Symbols[si + 1].first; 893 // If this symbol has the same address as the next symbol, then skip it. 894 if (Start == End) 895 continue; 896 897 outs() << '\n' << Symbols[si].second << ":\n"; 898 899 #ifndef NDEBUG 900 raw_ostream &DebugOut = DebugFlag ? dbgs() : nulls(); 901 #else 902 raw_ostream &DebugOut = nulls(); 903 #endif 904 905 for (Index = Start; Index < End; Index += Size) { 906 MCInst Inst; 907 908 if (DisAsm->getInstruction(Inst, Size, Bytes.slice(Index), 909 SectionAddr + Index, DebugOut, 910 CommentStream)) { 911 PIP.printInst(*IP, &Inst, 912 Bytes.slice(Index, Size), 913 SectionAddr + Index, outs(), "", *STI); 914 outs() << CommentStream.str(); 915 Comments.clear(); 916 outs() << "\n"; 917 } else { 918 errs() << ToolName << ": warning: invalid instruction encoding\n"; 919 if (Size == 0) 920 Size = 1; // skip illegible bytes 921 } 922 923 // Print relocation for instruction. 924 while (rel_cur != rel_end) { 925 bool hidden = getHidden(*rel_cur); 926 uint64_t addr = rel_cur->getOffset(); 927 SmallString<16> name; 928 SmallString<32> val; 929 930 // If this relocation is hidden, skip it. 931 if (hidden) goto skip_print_rel; 932 933 // Stop when rel_cur's address is past the current instruction. 934 if (addr >= Index + Size) break; 935 rel_cur->getTypeName(name); 936 if (error(getRelocationValueString(*rel_cur, val))) 937 goto skip_print_rel; 938 outs() << format(Fmt.data(), SectionAddr + addr) << name 939 << "\t" << val << "\n"; 940 941 skip_print_rel: 942 ++rel_cur; 943 } 944 } 945 } 946 } 947 } 948 949 void llvm::PrintRelocations(const ObjectFile *Obj) { 950 StringRef Fmt = Obj->getBytesInAddress() > 4 ? "%016" PRIx64 : 951 "%08" PRIx64; 952 // Regular objdump doesn't print relocations in non-relocatable object 953 // files. 954 if (!Obj->isRelocatableObject()) 955 return; 956 957 for (const SectionRef &Section : Obj->sections()) { 958 if (Section.relocation_begin() == Section.relocation_end()) 959 continue; 960 StringRef secname; 961 if (error(Section.getName(secname))) 962 continue; 963 outs() << "RELOCATION RECORDS FOR [" << secname << "]:\n"; 964 for (const RelocationRef &Reloc : Section.relocations()) { 965 bool hidden = getHidden(Reloc); 966 uint64_t address = Reloc.getOffset(); 967 SmallString<32> relocname; 968 SmallString<32> valuestr; 969 if (hidden) 970 continue; 971 Reloc.getTypeName(relocname); 972 if (error(getRelocationValueString(Reloc, valuestr))) 973 continue; 974 outs() << format(Fmt.data(), address) << " " << relocname << " " 975 << valuestr << "\n"; 976 } 977 outs() << "\n"; 978 } 979 } 980 981 void llvm::PrintSectionHeaders(const ObjectFile *Obj) { 982 outs() << "Sections:\n" 983 "Idx Name Size Address Type\n"; 984 unsigned i = 0; 985 for (const SectionRef &Section : Obj->sections()) { 986 StringRef Name; 987 if (error(Section.getName(Name))) 988 return; 989 uint64_t Address = Section.getAddress(); 990 uint64_t Size = Section.getSize(); 991 bool Text = Section.isText(); 992 bool Data = Section.isData(); 993 bool BSS = Section.isBSS(); 994 std::string Type = (std::string(Text ? "TEXT " : "") + 995 (Data ? "DATA " : "") + (BSS ? "BSS" : "")); 996 outs() << format("%3d %-13s %08" PRIx64 " %016" PRIx64 " %s\n", i, 997 Name.str().c_str(), Size, Address, Type.c_str()); 998 ++i; 999 } 1000 } 1001 1002 void llvm::PrintSectionContents(const ObjectFile *Obj) { 1003 std::error_code EC; 1004 for (const SectionRef &Section : Obj->sections()) { 1005 StringRef Name; 1006 StringRef Contents; 1007 if (error(Section.getName(Name))) 1008 continue; 1009 uint64_t BaseAddr = Section.getAddress(); 1010 uint64_t Size = Section.getSize(); 1011 if (!Size) 1012 continue; 1013 1014 outs() << "Contents of section " << Name << ":\n"; 1015 if (Section.isBSS()) { 1016 outs() << format("<skipping contents of bss section at [%04" PRIx64 1017 ", %04" PRIx64 ")>\n", 1018 BaseAddr, BaseAddr + Size); 1019 continue; 1020 } 1021 1022 if (error(Section.getContents(Contents))) 1023 continue; 1024 1025 // Dump out the content as hex and printable ascii characters. 1026 for (std::size_t addr = 0, end = Contents.size(); addr < end; addr += 16) { 1027 outs() << format(" %04" PRIx64 " ", BaseAddr + addr); 1028 // Dump line of hex. 1029 for (std::size_t i = 0; i < 16; ++i) { 1030 if (i != 0 && i % 4 == 0) 1031 outs() << ' '; 1032 if (addr + i < end) 1033 outs() << hexdigit((Contents[addr + i] >> 4) & 0xF, true) 1034 << hexdigit(Contents[addr + i] & 0xF, true); 1035 else 1036 outs() << " "; 1037 } 1038 // Print ascii. 1039 outs() << " "; 1040 for (std::size_t i = 0; i < 16 && addr + i < end; ++i) { 1041 if (std::isprint(static_cast<unsigned char>(Contents[addr + i]) & 0xFF)) 1042 outs() << Contents[addr + i]; 1043 else 1044 outs() << "."; 1045 } 1046 outs() << "\n"; 1047 } 1048 } 1049 } 1050 1051 static void PrintCOFFSymbolTable(const COFFObjectFile *coff) { 1052 for (unsigned SI = 0, SE = coff->getNumberOfSymbols(); SI != SE; ++SI) { 1053 ErrorOr<COFFSymbolRef> Symbol = coff->getSymbol(SI); 1054 StringRef Name; 1055 if (error(Symbol.getError())) 1056 return; 1057 1058 if (error(coff->getSymbolName(*Symbol, Name))) 1059 return; 1060 1061 outs() << "[" << format("%2d", SI) << "]" 1062 << "(sec " << format("%2d", int(Symbol->getSectionNumber())) << ")" 1063 << "(fl 0x00)" // Flag bits, which COFF doesn't have. 1064 << "(ty " << format("%3x", unsigned(Symbol->getType())) << ")" 1065 << "(scl " << format("%3x", unsigned(Symbol->getStorageClass())) << ") " 1066 << "(nx " << unsigned(Symbol->getNumberOfAuxSymbols()) << ") " 1067 << "0x" << format("%08x", unsigned(Symbol->getValue())) << " " 1068 << Name << "\n"; 1069 1070 for (unsigned AI = 0, AE = Symbol->getNumberOfAuxSymbols(); AI < AE; ++AI, ++SI) { 1071 if (Symbol->isSectionDefinition()) { 1072 const coff_aux_section_definition *asd; 1073 if (error(coff->getAuxSymbol<coff_aux_section_definition>(SI + 1, asd))) 1074 return; 1075 1076 int32_t AuxNumber = asd->getNumber(Symbol->isBigObj()); 1077 1078 outs() << "AUX " 1079 << format("scnlen 0x%x nreloc %d nlnno %d checksum 0x%x " 1080 , unsigned(asd->Length) 1081 , unsigned(asd->NumberOfRelocations) 1082 , unsigned(asd->NumberOfLinenumbers) 1083 , unsigned(asd->CheckSum)) 1084 << format("assoc %d comdat %d\n" 1085 , unsigned(AuxNumber) 1086 , unsigned(asd->Selection)); 1087 } else if (Symbol->isFileRecord()) { 1088 const char *FileName; 1089 if (error(coff->getAuxSymbol<char>(SI + 1, FileName))) 1090 return; 1091 1092 StringRef Name(FileName, Symbol->getNumberOfAuxSymbols() * 1093 coff->getSymbolTableEntrySize()); 1094 outs() << "AUX " << Name.rtrim(StringRef("\0", 1)) << '\n'; 1095 1096 SI = SI + Symbol->getNumberOfAuxSymbols(); 1097 break; 1098 } else { 1099 outs() << "AUX Unknown\n"; 1100 } 1101 } 1102 } 1103 } 1104 1105 void llvm::PrintSymbolTable(const ObjectFile *o) { 1106 outs() << "SYMBOL TABLE:\n"; 1107 1108 if (const COFFObjectFile *coff = dyn_cast<const COFFObjectFile>(o)) { 1109 PrintCOFFSymbolTable(coff); 1110 return; 1111 } 1112 for (const SymbolRef &Symbol : o->symbols()) { 1113 uint64_t Address; 1114 SymbolRef::Type Type = Symbol.getType(); 1115 uint32_t Flags = Symbol.getFlags(); 1116 section_iterator Section = o->section_end(); 1117 if (error(Symbol.getAddress(Address))) 1118 continue; 1119 if (error(Symbol.getSection(Section))) 1120 continue; 1121 StringRef Name; 1122 if (Type == SymbolRef::ST_Debug && Section != o->section_end()) { 1123 Section->getName(Name); 1124 } else if (error(Symbol.getName(Name))) { 1125 continue; 1126 } 1127 1128 bool Global = Flags & SymbolRef::SF_Global; 1129 bool Weak = Flags & SymbolRef::SF_Weak; 1130 bool Absolute = Flags & SymbolRef::SF_Absolute; 1131 bool Common = Flags & SymbolRef::SF_Common; 1132 bool Hidden = Flags & SymbolRef::SF_Hidden; 1133 1134 if (Common) 1135 Address = Symbol.getCommonSize(); 1136 1137 if (Address == UnknownAddress) 1138 Address = 0; 1139 char GlobLoc = ' '; 1140 if (Type != SymbolRef::ST_Unknown) 1141 GlobLoc = Global ? 'g' : 'l'; 1142 char Debug = (Type == SymbolRef::ST_Debug || Type == SymbolRef::ST_File) 1143 ? 'd' : ' '; 1144 char FileFunc = ' '; 1145 if (Type == SymbolRef::ST_File) 1146 FileFunc = 'f'; 1147 else if (Type == SymbolRef::ST_Function) 1148 FileFunc = 'F'; 1149 1150 const char *Fmt = o->getBytesInAddress() > 4 ? "%016" PRIx64 : 1151 "%08" PRIx64; 1152 1153 outs() << format(Fmt, Address) << " " 1154 << GlobLoc // Local -> 'l', Global -> 'g', Neither -> ' ' 1155 << (Weak ? 'w' : ' ') // Weak? 1156 << ' ' // Constructor. Not supported yet. 1157 << ' ' // Warning. Not supported yet. 1158 << ' ' // Indirect reference to another symbol. 1159 << Debug // Debugging (d) or dynamic (D) symbol. 1160 << FileFunc // Name of function (F), file (f) or object (O). 1161 << ' '; 1162 if (Absolute) { 1163 outs() << "*ABS*"; 1164 } else if (Common) { 1165 outs() << "*COM*"; 1166 } else if (Section == o->section_end()) { 1167 outs() << "*UND*"; 1168 } else { 1169 if (const MachOObjectFile *MachO = 1170 dyn_cast<const MachOObjectFile>(o)) { 1171 DataRefImpl DR = Section->getRawDataRefImpl(); 1172 StringRef SegmentName = MachO->getSectionFinalSegmentName(DR); 1173 outs() << SegmentName << ","; 1174 } 1175 StringRef SectionName; 1176 if (error(Section->getName(SectionName))) 1177 SectionName = ""; 1178 outs() << SectionName; 1179 } 1180 1181 outs() << '\t'; 1182 if (Common || isa<ELFObjectFileBase>(o)) { 1183 uint64_t Val = 1184 Common ? Symbol.getAlignment() : ELFSymbolRef(Symbol).getSize(); 1185 outs() << format("\t %08" PRIx64 " ", Val); 1186 } 1187 1188 if (Hidden) { 1189 outs() << ".hidden "; 1190 } 1191 outs() << Name 1192 << '\n'; 1193 } 1194 } 1195 1196 static void PrintUnwindInfo(const ObjectFile *o) { 1197 outs() << "Unwind info:\n\n"; 1198 1199 if (const COFFObjectFile *coff = dyn_cast<COFFObjectFile>(o)) { 1200 printCOFFUnwindInfo(coff); 1201 } else if (const MachOObjectFile *MachO = dyn_cast<MachOObjectFile>(o)) 1202 printMachOUnwindInfo(MachO); 1203 else { 1204 // TODO: Extract DWARF dump tool to objdump. 1205 errs() << "This operation is only currently supported " 1206 "for COFF and MachO object files.\n"; 1207 return; 1208 } 1209 } 1210 1211 void llvm::printExportsTrie(const ObjectFile *o) { 1212 outs() << "Exports trie:\n"; 1213 if (const MachOObjectFile *MachO = dyn_cast<MachOObjectFile>(o)) 1214 printMachOExportsTrie(MachO); 1215 else { 1216 errs() << "This operation is only currently supported " 1217 "for Mach-O executable files.\n"; 1218 return; 1219 } 1220 } 1221 1222 void llvm::printRebaseTable(const ObjectFile *o) { 1223 outs() << "Rebase table:\n"; 1224 if (const MachOObjectFile *MachO = dyn_cast<MachOObjectFile>(o)) 1225 printMachORebaseTable(MachO); 1226 else { 1227 errs() << "This operation is only currently supported " 1228 "for Mach-O executable files.\n"; 1229 return; 1230 } 1231 } 1232 1233 void llvm::printBindTable(const ObjectFile *o) { 1234 outs() << "Bind table:\n"; 1235 if (const MachOObjectFile *MachO = dyn_cast<MachOObjectFile>(o)) 1236 printMachOBindTable(MachO); 1237 else { 1238 errs() << "This operation is only currently supported " 1239 "for Mach-O executable files.\n"; 1240 return; 1241 } 1242 } 1243 1244 void llvm::printLazyBindTable(const ObjectFile *o) { 1245 outs() << "Lazy bind table:\n"; 1246 if (const MachOObjectFile *MachO = dyn_cast<MachOObjectFile>(o)) 1247 printMachOLazyBindTable(MachO); 1248 else { 1249 errs() << "This operation is only currently supported " 1250 "for Mach-O executable files.\n"; 1251 return; 1252 } 1253 } 1254 1255 void llvm::printWeakBindTable(const ObjectFile *o) { 1256 outs() << "Weak bind table:\n"; 1257 if (const MachOObjectFile *MachO = dyn_cast<MachOObjectFile>(o)) 1258 printMachOWeakBindTable(MachO); 1259 else { 1260 errs() << "This operation is only currently supported " 1261 "for Mach-O executable files.\n"; 1262 return; 1263 } 1264 } 1265 1266 static void printFaultMaps(const ObjectFile *Obj) { 1267 const char *FaultMapSectionName = nullptr; 1268 1269 if (isa<ELFObjectFileBase>(Obj)) { 1270 FaultMapSectionName = ".llvm_faultmaps"; 1271 } else if (isa<MachOObjectFile>(Obj)) { 1272 FaultMapSectionName = "__llvm_faultmaps"; 1273 } else { 1274 errs() << "This operation is only currently supported " 1275 "for ELF and Mach-O executable files.\n"; 1276 return; 1277 } 1278 1279 Optional<object::SectionRef> FaultMapSection; 1280 1281 for (auto Sec : Obj->sections()) { 1282 StringRef Name; 1283 Sec.getName(Name); 1284 if (Name == FaultMapSectionName) { 1285 FaultMapSection = Sec; 1286 break; 1287 } 1288 } 1289 1290 outs() << "FaultMap table:\n"; 1291 1292 if (!FaultMapSection.hasValue()) { 1293 outs() << "<not found>\n"; 1294 return; 1295 } 1296 1297 StringRef FaultMapContents; 1298 if (error(FaultMapSection.getValue().getContents(FaultMapContents))) { 1299 errs() << "Could not read the " << FaultMapContents << " section!\n"; 1300 return; 1301 } 1302 1303 FaultMapParser FMP(FaultMapContents.bytes_begin(), 1304 FaultMapContents.bytes_end()); 1305 1306 outs() << FMP; 1307 } 1308 1309 static void printPrivateFileHeader(const ObjectFile *o) { 1310 if (o->isELF()) { 1311 printELFFileHeader(o); 1312 } else if (o->isCOFF()) { 1313 printCOFFFileHeader(o); 1314 } else if (o->isMachO()) { 1315 printMachOFileHeader(o); 1316 } 1317 } 1318 1319 static void DumpObject(const ObjectFile *o) { 1320 outs() << '\n'; 1321 outs() << o->getFileName() 1322 << ":\tfile format " << o->getFileFormatName() << "\n\n"; 1323 1324 if (Disassemble) 1325 DisassembleObject(o, Relocations); 1326 if (Relocations && !Disassemble) 1327 PrintRelocations(o); 1328 if (SectionHeaders) 1329 PrintSectionHeaders(o); 1330 if (SectionContents) 1331 PrintSectionContents(o); 1332 if (SymbolTable) 1333 PrintSymbolTable(o); 1334 if (UnwindInfo) 1335 PrintUnwindInfo(o); 1336 if (PrivateHeaders) 1337 printPrivateFileHeader(o); 1338 if (ExportsTrie) 1339 printExportsTrie(o); 1340 if (Rebase) 1341 printRebaseTable(o); 1342 if (Bind) 1343 printBindTable(o); 1344 if (LazyBind) 1345 printLazyBindTable(o); 1346 if (WeakBind) 1347 printWeakBindTable(o); 1348 if (PrintFaultMaps) 1349 printFaultMaps(o); 1350 } 1351 1352 /// @brief Dump each object file in \a a; 1353 static void DumpArchive(const Archive *a) { 1354 for (Archive::child_iterator i = a->child_begin(), e = a->child_end(); i != e; 1355 ++i) { 1356 ErrorOr<std::unique_ptr<Binary>> ChildOrErr = i->getAsBinary(); 1357 if (std::error_code EC = ChildOrErr.getError()) { 1358 // Ignore non-object files. 1359 if (EC != object_error::invalid_file_type) 1360 report_error(a->getFileName(), EC); 1361 continue; 1362 } 1363 if (ObjectFile *o = dyn_cast<ObjectFile>(&*ChildOrErr.get())) 1364 DumpObject(o); 1365 else 1366 report_error(a->getFileName(), object_error::invalid_file_type); 1367 } 1368 } 1369 1370 /// @brief Open file and figure out how to dump it. 1371 static void DumpInput(StringRef file) { 1372 // If file isn't stdin, check that it exists. 1373 if (file != "-" && !sys::fs::exists(file)) { 1374 report_error(file, errc::no_such_file_or_directory); 1375 return; 1376 } 1377 1378 // If we are using the Mach-O specific object file parser, then let it parse 1379 // the file and process the command line options. So the -arch flags can 1380 // be used to select specific slices, etc. 1381 if (MachOOpt) { 1382 ParseInputMachO(file); 1383 return; 1384 } 1385 1386 // Attempt to open the binary. 1387 ErrorOr<OwningBinary<Binary>> BinaryOrErr = createBinary(file); 1388 if (std::error_code EC = BinaryOrErr.getError()) { 1389 report_error(file, EC); 1390 return; 1391 } 1392 Binary &Binary = *BinaryOrErr.get().getBinary(); 1393 1394 if (Archive *a = dyn_cast<Archive>(&Binary)) 1395 DumpArchive(a); 1396 else if (ObjectFile *o = dyn_cast<ObjectFile>(&Binary)) 1397 DumpObject(o); 1398 else 1399 report_error(file, object_error::invalid_file_type); 1400 } 1401 1402 int main(int argc, char **argv) { 1403 // Print a stack trace if we signal out. 1404 sys::PrintStackTraceOnErrorSignal(); 1405 PrettyStackTraceProgram X(argc, argv); 1406 llvm_shutdown_obj Y; // Call llvm_shutdown() on exit. 1407 1408 // Initialize targets and assembly printers/parsers. 1409 llvm::InitializeAllTargetInfos(); 1410 llvm::InitializeAllTargetMCs(); 1411 llvm::InitializeAllAsmParsers(); 1412 llvm::InitializeAllDisassemblers(); 1413 1414 // Register the target printer for --version. 1415 cl::AddExtraVersionPrinter(TargetRegistry::printRegisteredTargetsForVersion); 1416 1417 cl::ParseCommandLineOptions(argc, argv, "llvm object file dumper\n"); 1418 TripleName = Triple::normalize(TripleName); 1419 1420 ToolName = argv[0]; 1421 1422 // Defaults to a.out if no filenames specified. 1423 if (InputFilenames.size() == 0) 1424 InputFilenames.push_back("a.out"); 1425 1426 if (!Disassemble 1427 && !Relocations 1428 && !SectionHeaders 1429 && !SectionContents 1430 && !SymbolTable 1431 && !UnwindInfo 1432 && !PrivateHeaders 1433 && !ExportsTrie 1434 && !Rebase 1435 && !Bind 1436 && !LazyBind 1437 && !WeakBind 1438 && !(UniversalHeaders && MachOOpt) 1439 && !(ArchiveHeaders && MachOOpt) 1440 && !(IndirectSymbols && MachOOpt) 1441 && !(DataInCode && MachOOpt) 1442 && !(LinkOptHints && MachOOpt) 1443 && !(InfoPlist && MachOOpt) 1444 && !(DylibsUsed && MachOOpt) 1445 && !(DylibId && MachOOpt) 1446 && !(ObjcMetaData && MachOOpt) 1447 && !(DumpSections.size() != 0 && MachOOpt) 1448 && !PrintFaultMaps) { 1449 cl::PrintHelpMessage(); 1450 return 2; 1451 } 1452 1453 std::for_each(InputFilenames.begin(), InputFilenames.end(), 1454 DumpInput); 1455 1456 return ReturnValue; 1457 } 1458