1 //===- lib/MC/MachObjectWriter.cpp - Mach-O File Writer -------------------===// 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 #include "llvm/MC/MCMachObjectWriter.h" 11 #include "llvm/ADT/StringMap.h" 12 #include "llvm/ADT/Twine.h" 13 #include "llvm/MC/MCAsmBackend.h" 14 #include "llvm/MC/MCAsmLayout.h" 15 #include "llvm/MC/MCAssembler.h" 16 #include "llvm/MC/MCExpr.h" 17 #include "llvm/MC/MCFixupKindInfo.h" 18 #include "llvm/MC/MCObjectWriter.h" 19 #include "llvm/MC/MCSectionMachO.h" 20 #include "llvm/MC/MCSymbolMachO.h" 21 #include "llvm/MC/MCValue.h" 22 #include "llvm/Support/Debug.h" 23 #include "llvm/Support/ErrorHandling.h" 24 #include "llvm/Support/MachO.h" 25 #include "llvm/Support/raw_ostream.h" 26 #include <vector> 27 using namespace llvm; 28 29 #define DEBUG_TYPE "mc" 30 31 void MachObjectWriter::reset() { 32 Relocations.clear(); 33 IndirectSymBase.clear(); 34 StringTable.clear(); 35 LocalSymbolData.clear(); 36 ExternalSymbolData.clear(); 37 UndefinedSymbolData.clear(); 38 MCObjectWriter::reset(); 39 } 40 41 bool MachObjectWriter::doesSymbolRequireExternRelocation(const MCSymbol &S) { 42 // Undefined symbols are always extern. 43 if (S.isUndefined()) 44 return true; 45 46 // References to weak definitions require external relocation entries; the 47 // definition may not always be the one in the same object file. 48 if (cast<MCSymbolMachO>(S).isWeakDefinition()) 49 return true; 50 51 // Otherwise, we can use an internal relocation. 52 return false; 53 } 54 55 bool MachObjectWriter:: 56 MachSymbolData::operator<(const MachSymbolData &RHS) const { 57 return Symbol->getName() < RHS.Symbol->getName(); 58 } 59 60 bool MachObjectWriter::isFixupKindPCRel(const MCAssembler &Asm, unsigned Kind) { 61 const MCFixupKindInfo &FKI = Asm.getBackend().getFixupKindInfo( 62 (MCFixupKind) Kind); 63 64 return FKI.Flags & MCFixupKindInfo::FKF_IsPCRel; 65 } 66 67 uint64_t MachObjectWriter::getFragmentAddress(const MCFragment *Fragment, 68 const MCAsmLayout &Layout) const { 69 return getSectionAddress(Fragment->getParent()) + 70 Layout.getFragmentOffset(Fragment); 71 } 72 73 uint64_t MachObjectWriter::getSymbolAddress(const MCSymbol &S, 74 const MCAsmLayout &Layout) const { 75 // If this is a variable, then recursively evaluate now. 76 if (S.isVariable()) { 77 if (const MCConstantExpr *C = 78 dyn_cast<const MCConstantExpr>(S.getVariableValue())) 79 return C->getValue(); 80 81 MCValue Target; 82 if (!S.getVariableValue()->evaluateAsRelocatable(Target, &Layout, nullptr)) 83 report_fatal_error("unable to evaluate offset for variable '" + 84 S.getName() + "'"); 85 86 // Verify that any used symbols are defined. 87 if (Target.getSymA() && Target.getSymA()->getSymbol().isUndefined()) 88 report_fatal_error("unable to evaluate offset to undefined symbol '" + 89 Target.getSymA()->getSymbol().getName() + "'"); 90 if (Target.getSymB() && Target.getSymB()->getSymbol().isUndefined()) 91 report_fatal_error("unable to evaluate offset to undefined symbol '" + 92 Target.getSymB()->getSymbol().getName() + "'"); 93 94 uint64_t Address = Target.getConstant(); 95 if (Target.getSymA()) 96 Address += getSymbolAddress(Target.getSymA()->getSymbol(), Layout); 97 if (Target.getSymB()) 98 Address += getSymbolAddress(Target.getSymB()->getSymbol(), Layout); 99 return Address; 100 } 101 102 return getSectionAddress(S.getFragment()->getParent()) + 103 Layout.getSymbolOffset(S); 104 } 105 106 uint64_t MachObjectWriter::getPaddingSize(const MCSection *Sec, 107 const MCAsmLayout &Layout) const { 108 uint64_t EndAddr = getSectionAddress(Sec) + Layout.getSectionAddressSize(Sec); 109 unsigned Next = Sec->getLayoutOrder() + 1; 110 if (Next >= Layout.getSectionOrder().size()) 111 return 0; 112 113 const MCSection &NextSec = *Layout.getSectionOrder()[Next]; 114 if (NextSec.isVirtualSection()) 115 return 0; 116 return OffsetToAlignment(EndAddr, NextSec.getAlignment()); 117 } 118 119 void MachObjectWriter::writeHeader(MachO::HeaderFileType Type, 120 unsigned NumLoadCommands, 121 unsigned LoadCommandsSize, 122 bool SubsectionsViaSymbols) { 123 uint32_t Flags = 0; 124 125 if (SubsectionsViaSymbols) 126 Flags |= MachO::MH_SUBSECTIONS_VIA_SYMBOLS; 127 128 // struct mach_header (28 bytes) or 129 // struct mach_header_64 (32 bytes) 130 131 uint64_t Start = getStream().tell(); 132 (void) Start; 133 134 write32(is64Bit() ? MachO::MH_MAGIC_64 : MachO::MH_MAGIC); 135 136 write32(TargetObjectWriter->getCPUType()); 137 write32(TargetObjectWriter->getCPUSubtype()); 138 139 write32(Type); 140 write32(NumLoadCommands); 141 write32(LoadCommandsSize); 142 write32(Flags); 143 if (is64Bit()) 144 write32(0); // reserved 145 146 assert( 147 getStream().tell() - Start == 148 (is64Bit() ? sizeof(MachO::mach_header_64) : sizeof(MachO::mach_header))); 149 } 150 151 /// writeSegmentLoadCommand - Write a segment load command. 152 /// 153 /// \param NumSections The number of sections in this segment. 154 /// \param SectionDataSize The total size of the sections. 155 void MachObjectWriter::writeSegmentLoadCommand( 156 StringRef Name, unsigned NumSections, uint64_t VMAddr, uint64_t VMSize, 157 uint64_t SectionDataStartOffset, uint64_t SectionDataSize, uint32_t MaxProt, 158 uint32_t InitProt) { 159 // struct segment_command (56 bytes) or 160 // struct segment_command_64 (72 bytes) 161 162 uint64_t Start = getStream().tell(); 163 (void) Start; 164 165 unsigned SegmentLoadCommandSize = 166 is64Bit() ? sizeof(MachO::segment_command_64): 167 sizeof(MachO::segment_command); 168 write32(is64Bit() ? MachO::LC_SEGMENT_64 : MachO::LC_SEGMENT); 169 write32(SegmentLoadCommandSize + 170 NumSections * (is64Bit() ? sizeof(MachO::section_64) : 171 sizeof(MachO::section))); 172 173 assert(Name.size() <= 16); 174 writeBytes(Name, 16); 175 if (is64Bit()) { 176 write64(VMAddr); // vmaddr 177 write64(VMSize); // vmsize 178 write64(SectionDataStartOffset); // file offset 179 write64(SectionDataSize); // file size 180 } else { 181 write32(VMAddr); // vmaddr 182 write32(VMSize); // vmsize 183 write32(SectionDataStartOffset); // file offset 184 write32(SectionDataSize); // file size 185 } 186 // maxprot 187 write32(MaxProt); 188 // initprot 189 write32(InitProt); 190 write32(NumSections); 191 write32(0); // flags 192 193 assert(getStream().tell() - Start == SegmentLoadCommandSize); 194 } 195 196 void MachObjectWriter::writeSection(const MCAsmLayout &Layout, 197 const MCSection &Sec, uint64_t VMAddr, 198 uint64_t FileOffset, unsigned Flags, 199 uint64_t RelocationsStart, 200 unsigned NumRelocations) { 201 uint64_t SectionSize = Layout.getSectionAddressSize(&Sec); 202 const MCSectionMachO &Section = cast<MCSectionMachO>(Sec); 203 204 // The offset is unused for virtual sections. 205 if (Section.isVirtualSection()) { 206 assert(Layout.getSectionFileSize(&Sec) == 0 && "Invalid file size!"); 207 FileOffset = 0; 208 } 209 210 // struct section (68 bytes) or 211 // struct section_64 (80 bytes) 212 213 uint64_t Start = getStream().tell(); 214 (void) Start; 215 216 writeBytes(Section.getSectionName(), 16); 217 writeBytes(Section.getSegmentName(), 16); 218 if (is64Bit()) { 219 write64(VMAddr); // address 220 write64(SectionSize); // size 221 } else { 222 write32(VMAddr); // address 223 write32(SectionSize); // size 224 } 225 write32(FileOffset); 226 227 assert(isPowerOf2_32(Section.getAlignment()) && "Invalid alignment!"); 228 write32(Log2_32(Section.getAlignment())); 229 write32(NumRelocations ? RelocationsStart : 0); 230 write32(NumRelocations); 231 write32(Flags); 232 write32(IndirectSymBase.lookup(&Sec)); // reserved1 233 write32(Section.getStubSize()); // reserved2 234 if (is64Bit()) 235 write32(0); // reserved3 236 237 assert(getStream().tell() - Start == 238 (is64Bit() ? sizeof(MachO::section_64) : sizeof(MachO::section))); 239 } 240 241 void MachObjectWriter::writeSymtabLoadCommand(uint32_t SymbolOffset, 242 uint32_t NumSymbols, 243 uint32_t StringTableOffset, 244 uint32_t StringTableSize) { 245 // struct symtab_command (24 bytes) 246 247 uint64_t Start = getStream().tell(); 248 (void) Start; 249 250 write32(MachO::LC_SYMTAB); 251 write32(sizeof(MachO::symtab_command)); 252 write32(SymbolOffset); 253 write32(NumSymbols); 254 write32(StringTableOffset); 255 write32(StringTableSize); 256 257 assert(getStream().tell() - Start == sizeof(MachO::symtab_command)); 258 } 259 260 void MachObjectWriter::writeDysymtabLoadCommand(uint32_t FirstLocalSymbol, 261 uint32_t NumLocalSymbols, 262 uint32_t FirstExternalSymbol, 263 uint32_t NumExternalSymbols, 264 uint32_t FirstUndefinedSymbol, 265 uint32_t NumUndefinedSymbols, 266 uint32_t IndirectSymbolOffset, 267 uint32_t NumIndirectSymbols) { 268 // struct dysymtab_command (80 bytes) 269 270 uint64_t Start = getStream().tell(); 271 (void) Start; 272 273 write32(MachO::LC_DYSYMTAB); 274 write32(sizeof(MachO::dysymtab_command)); 275 write32(FirstLocalSymbol); 276 write32(NumLocalSymbols); 277 write32(FirstExternalSymbol); 278 write32(NumExternalSymbols); 279 write32(FirstUndefinedSymbol); 280 write32(NumUndefinedSymbols); 281 write32(0); // tocoff 282 write32(0); // ntoc 283 write32(0); // modtaboff 284 write32(0); // nmodtab 285 write32(0); // extrefsymoff 286 write32(0); // nextrefsyms 287 write32(IndirectSymbolOffset); 288 write32(NumIndirectSymbols); 289 write32(0); // extreloff 290 write32(0); // nextrel 291 write32(0); // locreloff 292 write32(0); // nlocrel 293 294 assert(getStream().tell() - Start == sizeof(MachO::dysymtab_command)); 295 } 296 297 MachObjectWriter::MachSymbolData * 298 MachObjectWriter::findSymbolData(const MCSymbol &Sym) { 299 for (auto *SymbolData : 300 {&LocalSymbolData, &ExternalSymbolData, &UndefinedSymbolData}) 301 for (MachSymbolData &Entry : *SymbolData) 302 if (Entry.Symbol == &Sym) 303 return &Entry; 304 305 return nullptr; 306 } 307 308 const MCSymbol &MachObjectWriter::findAliasedSymbol(const MCSymbol &Sym) const { 309 const MCSymbol *S = &Sym; 310 while (S->isVariable()) { 311 const MCExpr *Value = S->getVariableValue(); 312 const auto *Ref = dyn_cast<MCSymbolRefExpr>(Value); 313 if (!Ref) 314 return *S; 315 S = &Ref->getSymbol(); 316 } 317 return *S; 318 } 319 320 void MachObjectWriter::writeNlist(MachSymbolData &MSD, 321 const MCAsmLayout &Layout) { 322 const MCSymbol *Symbol = MSD.Symbol; 323 const MCSymbol &Data = *Symbol; 324 const MCSymbol *AliasedSymbol = &findAliasedSymbol(*Symbol); 325 uint8_t SectionIndex = MSD.SectionIndex; 326 uint8_t Type = 0; 327 uint64_t Address = 0; 328 bool IsAlias = Symbol != AliasedSymbol; 329 330 const MCSymbol &OrigSymbol = *Symbol; 331 MachSymbolData *AliaseeInfo; 332 if (IsAlias) { 333 AliaseeInfo = findSymbolData(*AliasedSymbol); 334 if (AliaseeInfo) 335 SectionIndex = AliaseeInfo->SectionIndex; 336 Symbol = AliasedSymbol; 337 // FIXME: Should this update Data as well? Do we need OrigSymbol at all? 338 } 339 340 // Set the N_TYPE bits. See <mach-o/nlist.h>. 341 // 342 // FIXME: Are the prebound or indirect fields possible here? 343 if (IsAlias && Symbol->isUndefined()) 344 Type = MachO::N_INDR; 345 else if (Symbol->isUndefined()) 346 Type = MachO::N_UNDF; 347 else if (Symbol->isAbsolute()) 348 Type = MachO::N_ABS; 349 else 350 Type = MachO::N_SECT; 351 352 // FIXME: Set STAB bits. 353 354 if (Data.isPrivateExtern()) 355 Type |= MachO::N_PEXT; 356 357 // Set external bit. 358 if (Data.isExternal() || (!IsAlias && Symbol->isUndefined())) 359 Type |= MachO::N_EXT; 360 361 // Compute the symbol address. 362 if (IsAlias && Symbol->isUndefined()) 363 Address = AliaseeInfo->StringIndex; 364 else if (Symbol->isDefined()) 365 Address = getSymbolAddress(OrigSymbol, Layout); 366 else if (Symbol->isCommon()) { 367 // Common symbols are encoded with the size in the address 368 // field, and their alignment in the flags. 369 Address = Symbol->getCommonSize(); 370 } 371 372 // struct nlist (12 bytes) 373 374 write32(MSD.StringIndex); 375 write8(Type); 376 write8(SectionIndex); 377 378 // The Mach-O streamer uses the lowest 16-bits of the flags for the 'desc' 379 // value. 380 write16(cast<MCSymbolMachO>(Symbol)->getEncodedFlags()); 381 if (is64Bit()) 382 write64(Address); 383 else 384 write32(Address); 385 } 386 387 void MachObjectWriter::writeLinkeditLoadCommand(uint32_t Type, 388 uint32_t DataOffset, 389 uint32_t DataSize) { 390 uint64_t Start = getStream().tell(); 391 (void) Start; 392 393 write32(Type); 394 write32(sizeof(MachO::linkedit_data_command)); 395 write32(DataOffset); 396 write32(DataSize); 397 398 assert(getStream().tell() - Start == sizeof(MachO::linkedit_data_command)); 399 } 400 401 static unsigned ComputeLinkerOptionsLoadCommandSize( 402 const std::vector<std::string> &Options, bool is64Bit) 403 { 404 unsigned Size = sizeof(MachO::linker_option_command); 405 for (const std::string &Option : Options) 406 Size += Option.size() + 1; 407 return RoundUpToAlignment(Size, is64Bit ? 8 : 4); 408 } 409 410 void MachObjectWriter::writeLinkerOptionsLoadCommand( 411 const std::vector<std::string> &Options) 412 { 413 unsigned Size = ComputeLinkerOptionsLoadCommandSize(Options, is64Bit()); 414 uint64_t Start = getStream().tell(); 415 (void) Start; 416 417 write32(MachO::LC_LINKER_OPTION); 418 write32(Size); 419 write32(Options.size()); 420 uint64_t BytesWritten = sizeof(MachO::linker_option_command); 421 for (const std::string &Option : Options) { 422 // Write each string, including the null byte. 423 writeBytes(Option.c_str(), Option.size() + 1); 424 BytesWritten += Option.size() + 1; 425 } 426 427 // Pad to a multiple of the pointer size. 428 writeBytes("", OffsetToAlignment(BytesWritten, is64Bit() ? 8 : 4)); 429 430 assert(getStream().tell() - Start == Size); 431 } 432 433 void MachObjectWriter::recordRelocation(MCAssembler &Asm, 434 const MCAsmLayout &Layout, 435 const MCFragment *Fragment, 436 const MCFixup &Fixup, MCValue Target, 437 bool &IsPCRel, uint64_t &FixedValue) { 438 TargetObjectWriter->recordRelocation(this, Asm, Layout, Fragment, Fixup, 439 Target, FixedValue); 440 } 441 442 void MachObjectWriter::bindIndirectSymbols(MCAssembler &Asm) { 443 // This is the point where 'as' creates actual symbols for indirect symbols 444 // (in the following two passes). It would be easier for us to do this sooner 445 // when we see the attribute, but that makes getting the order in the symbol 446 // table much more complicated than it is worth. 447 // 448 // FIXME: Revisit this when the dust settles. 449 450 // Report errors for use of .indirect_symbol not in a symbol pointer section 451 // or stub section. 452 for (MCAssembler::indirect_symbol_iterator it = Asm.indirect_symbol_begin(), 453 ie = Asm.indirect_symbol_end(); it != ie; ++it) { 454 const MCSectionMachO &Section = cast<MCSectionMachO>(*it->Section); 455 456 if (Section.getType() != MachO::S_NON_LAZY_SYMBOL_POINTERS && 457 Section.getType() != MachO::S_LAZY_SYMBOL_POINTERS && 458 Section.getType() != MachO::S_SYMBOL_STUBS) { 459 MCSymbol &Symbol = *it->Symbol; 460 report_fatal_error("indirect symbol '" + Symbol.getName() + 461 "' not in a symbol pointer or stub section"); 462 } 463 } 464 465 // Bind non-lazy symbol pointers first. 466 unsigned IndirectIndex = 0; 467 for (MCAssembler::indirect_symbol_iterator it = Asm.indirect_symbol_begin(), 468 ie = Asm.indirect_symbol_end(); it != ie; ++it, ++IndirectIndex) { 469 const MCSectionMachO &Section = cast<MCSectionMachO>(*it->Section); 470 471 if (Section.getType() != MachO::S_NON_LAZY_SYMBOL_POINTERS) 472 continue; 473 474 // Initialize the section indirect symbol base, if necessary. 475 IndirectSymBase.insert(std::make_pair(it->Section, IndirectIndex)); 476 477 Asm.registerSymbol(*it->Symbol); 478 } 479 480 // Then lazy symbol pointers and symbol stubs. 481 IndirectIndex = 0; 482 for (MCAssembler::indirect_symbol_iterator it = Asm.indirect_symbol_begin(), 483 ie = Asm.indirect_symbol_end(); it != ie; ++it, ++IndirectIndex) { 484 const MCSectionMachO &Section = cast<MCSectionMachO>(*it->Section); 485 486 if (Section.getType() != MachO::S_LAZY_SYMBOL_POINTERS && 487 Section.getType() != MachO::S_SYMBOL_STUBS) 488 continue; 489 490 // Initialize the section indirect symbol base, if necessary. 491 IndirectSymBase.insert(std::make_pair(it->Section, IndirectIndex)); 492 493 // Set the symbol type to undefined lazy, but only on construction. 494 // 495 // FIXME: Do not hardcode. 496 bool Created; 497 Asm.registerSymbol(*it->Symbol, &Created); 498 if (Created) 499 cast<MCSymbolMachO>(it->Symbol)->setReferenceTypeUndefinedLazy(true); 500 } 501 } 502 503 /// computeSymbolTable - Compute the symbol table data 504 void MachObjectWriter::computeSymbolTable( 505 MCAssembler &Asm, std::vector<MachSymbolData> &LocalSymbolData, 506 std::vector<MachSymbolData> &ExternalSymbolData, 507 std::vector<MachSymbolData> &UndefinedSymbolData) { 508 // Build section lookup table. 509 DenseMap<const MCSection*, uint8_t> SectionIndexMap; 510 unsigned Index = 1; 511 for (MCAssembler::iterator it = Asm.begin(), 512 ie = Asm.end(); it != ie; ++it, ++Index) 513 SectionIndexMap[&*it] = Index; 514 assert(Index <= 256 && "Too many sections!"); 515 516 // Build the string table. 517 for (const MCSymbol &Symbol : Asm.symbols()) { 518 if (!Asm.isSymbolLinkerVisible(Symbol)) 519 continue; 520 521 StringTable.add(Symbol.getName()); 522 } 523 StringTable.finalize(StringTableBuilder::MachO); 524 525 // Build the symbol arrays but only for non-local symbols. 526 // 527 // The particular order that we collect and then sort the symbols is chosen to 528 // match 'as'. Even though it doesn't matter for correctness, this is 529 // important for letting us diff .o files. 530 for (const MCSymbol &Symbol : Asm.symbols()) { 531 // Ignore non-linker visible symbols. 532 if (!Asm.isSymbolLinkerVisible(Symbol)) 533 continue; 534 535 if (!Symbol.isExternal() && !Symbol.isUndefined()) 536 continue; 537 538 MachSymbolData MSD; 539 MSD.Symbol = &Symbol; 540 MSD.StringIndex = StringTable.getOffset(Symbol.getName()); 541 542 if (Symbol.isUndefined()) { 543 MSD.SectionIndex = 0; 544 UndefinedSymbolData.push_back(MSD); 545 } else if (Symbol.isAbsolute()) { 546 MSD.SectionIndex = 0; 547 ExternalSymbolData.push_back(MSD); 548 } else { 549 MSD.SectionIndex = SectionIndexMap.lookup(&Symbol.getSection()); 550 assert(MSD.SectionIndex && "Invalid section index!"); 551 ExternalSymbolData.push_back(MSD); 552 } 553 } 554 555 // Now add the data for local symbols. 556 for (const MCSymbol &Symbol : Asm.symbols()) { 557 // Ignore non-linker visible symbols. 558 if (!Asm.isSymbolLinkerVisible(Symbol)) 559 continue; 560 561 if (Symbol.isExternal() || Symbol.isUndefined()) 562 continue; 563 564 MachSymbolData MSD; 565 MSD.Symbol = &Symbol; 566 MSD.StringIndex = StringTable.getOffset(Symbol.getName()); 567 568 if (Symbol.isAbsolute()) { 569 MSD.SectionIndex = 0; 570 LocalSymbolData.push_back(MSD); 571 } else { 572 MSD.SectionIndex = SectionIndexMap.lookup(&Symbol.getSection()); 573 assert(MSD.SectionIndex && "Invalid section index!"); 574 LocalSymbolData.push_back(MSD); 575 } 576 } 577 578 // External and undefined symbols are required to be in lexicographic order. 579 std::sort(ExternalSymbolData.begin(), ExternalSymbolData.end()); 580 std::sort(UndefinedSymbolData.begin(), UndefinedSymbolData.end()); 581 582 // Set the symbol indices. 583 Index = 0; 584 for (auto *SymbolData : 585 {&LocalSymbolData, &ExternalSymbolData, &UndefinedSymbolData}) 586 for (MachSymbolData &Entry : *SymbolData) 587 Entry.Symbol->setIndex(Index++); 588 589 for (const MCSection &Section : Asm) { 590 for (RelAndSymbol &Rel : Relocations[&Section]) { 591 if (!Rel.Sym) 592 continue; 593 594 // Set the Index and the IsExtern bit. 595 unsigned Index = Rel.Sym->getIndex(); 596 assert(isInt<24>(Index)); 597 if (IsLittleEndian) 598 Rel.MRE.r_word1 = (Rel.MRE.r_word1 & (~0U << 24)) | Index | (1 << 27); 599 else 600 Rel.MRE.r_word1 = (Rel.MRE.r_word1 & 0xff) | Index << 8 | (1 << 4); 601 } 602 } 603 } 604 605 void MachObjectWriter::computeSectionAddresses(const MCAssembler &Asm, 606 const MCAsmLayout &Layout) { 607 uint64_t StartAddress = 0; 608 for (const MCSection *Sec : Layout.getSectionOrder()) { 609 StartAddress = RoundUpToAlignment(StartAddress, Sec->getAlignment()); 610 SectionAddress[Sec] = StartAddress; 611 StartAddress += Layout.getSectionAddressSize(Sec); 612 613 // Explicitly pad the section to match the alignment requirements of the 614 // following one. This is for 'gas' compatibility, it shouldn't 615 /// strictly be necessary. 616 StartAddress += getPaddingSize(Sec, Layout); 617 } 618 } 619 620 void MachObjectWriter::executePostLayoutBinding(MCAssembler &Asm, 621 const MCAsmLayout &Layout) { 622 computeSectionAddresses(Asm, Layout); 623 624 // Create symbol data for any indirect symbols. 625 bindIndirectSymbols(Asm); 626 } 627 628 bool MachObjectWriter::isSymbolRefDifferenceFullyResolvedImpl( 629 const MCAssembler &Asm, const MCSymbol &SymA, const MCFragment &FB, 630 bool InSet, bool IsPCRel) const { 631 if (InSet) 632 return true; 633 634 // The effective address is 635 // addr(atom(A)) + offset(A) 636 // - addr(atom(B)) - offset(B) 637 // and the offsets are not relocatable, so the fixup is fully resolved when 638 // addr(atom(A)) - addr(atom(B)) == 0. 639 const MCSymbol &SA = findAliasedSymbol(SymA); 640 const MCSection &SecA = SA.getSection(); 641 const MCSection &SecB = *FB.getParent(); 642 643 if (IsPCRel) { 644 // The simple (Darwin, except on x86_64) way of dealing with this was to 645 // assume that any reference to a temporary symbol *must* be a temporary 646 // symbol in the same atom, unless the sections differ. Therefore, any PCrel 647 // relocation to a temporary symbol (in the same section) is fully 648 // resolved. This also works in conjunction with absolutized .set, which 649 // requires the compiler to use .set to absolutize the differences between 650 // symbols which the compiler knows to be assembly time constants, so we 651 // don't need to worry about considering symbol differences fully resolved. 652 // 653 // If the file isn't using sub-sections-via-symbols, we can make the 654 // same assumptions about any symbol that we normally make about 655 // assembler locals. 656 657 bool hasReliableSymbolDifference = isX86_64(); 658 if (!hasReliableSymbolDifference) { 659 if (!SA.isInSection() || &SecA != &SecB || 660 (!SA.isTemporary() && FB.getAtom() != SA.getFragment()->getAtom() && 661 Asm.getSubsectionsViaSymbols())) 662 return false; 663 return true; 664 } 665 // For Darwin x86_64, there is one special case when the reference IsPCRel. 666 // If the fragment with the reference does not have a base symbol but meets 667 // the simple way of dealing with this, in that it is a temporary symbol in 668 // the same atom then it is assumed to be fully resolved. This is needed so 669 // a relocation entry is not created and so the static linker does not 670 // mess up the reference later. 671 else if(!FB.getAtom() && 672 SA.isTemporary() && SA.isInSection() && &SecA == &SecB){ 673 return true; 674 } 675 } 676 677 // If they are not in the same section, we can't compute the diff. 678 if (&SecA != &SecB) 679 return false; 680 681 const MCFragment *FA = SA.getFragment(); 682 683 // Bail if the symbol has no fragment. 684 if (!FA) 685 return false; 686 687 // If the atoms are the same, they are guaranteed to have the same address. 688 if (FA->getAtom() == FB.getAtom()) 689 return true; 690 691 // Otherwise, we can't prove this is fully resolved. 692 return false; 693 } 694 695 void MachObjectWriter::writeObject(MCAssembler &Asm, 696 const MCAsmLayout &Layout) { 697 // Compute symbol table information and bind symbol indices. 698 computeSymbolTable(Asm, LocalSymbolData, ExternalSymbolData, 699 UndefinedSymbolData); 700 701 unsigned NumSections = Asm.size(); 702 const MCAssembler::VersionMinInfoType &VersionInfo = 703 Layout.getAssembler().getVersionMinInfo(); 704 705 // The section data starts after the header, the segment load command (and 706 // section headers) and the symbol table. 707 unsigned NumLoadCommands = 1; 708 uint64_t LoadCommandsSize = is64Bit() ? 709 sizeof(MachO::segment_command_64) + NumSections * sizeof(MachO::section_64): 710 sizeof(MachO::segment_command) + NumSections * sizeof(MachO::section); 711 712 // Add the deployment target version info load command size, if used. 713 if (VersionInfo.Major != 0) { 714 ++NumLoadCommands; 715 LoadCommandsSize += sizeof(MachO::version_min_command); 716 } 717 718 // Add the data-in-code load command size, if used. 719 unsigned NumDataRegions = Asm.getDataRegions().size(); 720 if (NumDataRegions) { 721 ++NumLoadCommands; 722 LoadCommandsSize += sizeof(MachO::linkedit_data_command); 723 } 724 725 // Add the loh load command size, if used. 726 uint64_t LOHRawSize = Asm.getLOHContainer().getEmitSize(*this, Layout); 727 uint64_t LOHSize = RoundUpToAlignment(LOHRawSize, is64Bit() ? 8 : 4); 728 if (LOHSize) { 729 ++NumLoadCommands; 730 LoadCommandsSize += sizeof(MachO::linkedit_data_command); 731 } 732 733 // Add the symbol table load command sizes, if used. 734 unsigned NumSymbols = LocalSymbolData.size() + ExternalSymbolData.size() + 735 UndefinedSymbolData.size(); 736 if (NumSymbols) { 737 NumLoadCommands += 2; 738 LoadCommandsSize += (sizeof(MachO::symtab_command) + 739 sizeof(MachO::dysymtab_command)); 740 } 741 742 // Add the linker option load commands sizes. 743 for (const auto &Option : Asm.getLinkerOptions()) { 744 ++NumLoadCommands; 745 LoadCommandsSize += ComputeLinkerOptionsLoadCommandSize(Option, is64Bit()); 746 } 747 748 // Compute the total size of the section data, as well as its file size and vm 749 // size. 750 uint64_t SectionDataStart = (is64Bit() ? sizeof(MachO::mach_header_64) : 751 sizeof(MachO::mach_header)) + LoadCommandsSize; 752 uint64_t SectionDataSize = 0; 753 uint64_t SectionDataFileSize = 0; 754 uint64_t VMSize = 0; 755 for (const MCSection &Sec : Asm) { 756 uint64_t Address = getSectionAddress(&Sec); 757 uint64_t Size = Layout.getSectionAddressSize(&Sec); 758 uint64_t FileSize = Layout.getSectionFileSize(&Sec); 759 FileSize += getPaddingSize(&Sec, Layout); 760 761 VMSize = std::max(VMSize, Address + Size); 762 763 if (Sec.isVirtualSection()) 764 continue; 765 766 SectionDataSize = std::max(SectionDataSize, Address + Size); 767 SectionDataFileSize = std::max(SectionDataFileSize, Address + FileSize); 768 } 769 770 // The section data is padded to 4 bytes. 771 // 772 // FIXME: Is this machine dependent? 773 unsigned SectionDataPadding = OffsetToAlignment(SectionDataFileSize, 4); 774 SectionDataFileSize += SectionDataPadding; 775 776 // Write the prolog, starting with the header and load command... 777 writeHeader(MachO::MH_OBJECT, NumLoadCommands, LoadCommandsSize, 778 Asm.getSubsectionsViaSymbols()); 779 uint32_t Prot = 780 MachO::VM_PROT_READ | MachO::VM_PROT_WRITE | MachO::VM_PROT_EXECUTE; 781 writeSegmentLoadCommand("", NumSections, 0, VMSize, SectionDataStart, 782 SectionDataSize, Prot, Prot); 783 784 // ... and then the section headers. 785 uint64_t RelocTableEnd = SectionDataStart + SectionDataFileSize; 786 for (const MCSection &Section : Asm) { 787 const auto &Sec = cast<MCSectionMachO>(Section); 788 std::vector<RelAndSymbol> &Relocs = Relocations[&Sec]; 789 unsigned NumRelocs = Relocs.size(); 790 uint64_t SectionStart = SectionDataStart + getSectionAddress(&Sec); 791 unsigned Flags = Sec.getTypeAndAttributes(); 792 if (Sec.hasInstructions()) 793 Flags |= MachO::S_ATTR_SOME_INSTRUCTIONS; 794 writeSection(Layout, Sec, getSectionAddress(&Sec), SectionStart, Flags, 795 RelocTableEnd, NumRelocs); 796 RelocTableEnd += NumRelocs * sizeof(MachO::any_relocation_info); 797 } 798 799 // Write out the deployment target information, if it's available. 800 if (VersionInfo.Major != 0) { 801 assert(VersionInfo.Update < 256 && "unencodable update target version"); 802 assert(VersionInfo.Minor < 256 && "unencodable minor target version"); 803 assert(VersionInfo.Major < 65536 && "unencodable major target version"); 804 uint32_t EncodedVersion = VersionInfo.Update | (VersionInfo.Minor << 8) | 805 (VersionInfo.Major << 16); 806 write32(VersionInfo.Kind == MCVM_OSXVersionMin ? MachO::LC_VERSION_MIN_MACOSX : 807 MachO::LC_VERSION_MIN_IPHONEOS); 808 write32(sizeof(MachO::version_min_command)); 809 write32(EncodedVersion); 810 write32(0); // reserved. 811 } 812 813 // Write the data-in-code load command, if used. 814 uint64_t DataInCodeTableEnd = RelocTableEnd + NumDataRegions * 8; 815 if (NumDataRegions) { 816 uint64_t DataRegionsOffset = RelocTableEnd; 817 uint64_t DataRegionsSize = NumDataRegions * 8; 818 writeLinkeditLoadCommand(MachO::LC_DATA_IN_CODE, DataRegionsOffset, 819 DataRegionsSize); 820 } 821 822 // Write the loh load command, if used. 823 uint64_t LOHTableEnd = DataInCodeTableEnd + LOHSize; 824 if (LOHSize) 825 writeLinkeditLoadCommand(MachO::LC_LINKER_OPTIMIZATION_HINT, 826 DataInCodeTableEnd, LOHSize); 827 828 // Write the symbol table load command, if used. 829 if (NumSymbols) { 830 unsigned FirstLocalSymbol = 0; 831 unsigned NumLocalSymbols = LocalSymbolData.size(); 832 unsigned FirstExternalSymbol = FirstLocalSymbol + NumLocalSymbols; 833 unsigned NumExternalSymbols = ExternalSymbolData.size(); 834 unsigned FirstUndefinedSymbol = FirstExternalSymbol + NumExternalSymbols; 835 unsigned NumUndefinedSymbols = UndefinedSymbolData.size(); 836 unsigned NumIndirectSymbols = Asm.indirect_symbol_size(); 837 unsigned NumSymTabSymbols = 838 NumLocalSymbols + NumExternalSymbols + NumUndefinedSymbols; 839 uint64_t IndirectSymbolSize = NumIndirectSymbols * 4; 840 uint64_t IndirectSymbolOffset = 0; 841 842 // If used, the indirect symbols are written after the section data. 843 if (NumIndirectSymbols) 844 IndirectSymbolOffset = LOHTableEnd; 845 846 // The symbol table is written after the indirect symbol data. 847 uint64_t SymbolTableOffset = LOHTableEnd + IndirectSymbolSize; 848 849 // The string table is written after symbol table. 850 uint64_t StringTableOffset = 851 SymbolTableOffset + NumSymTabSymbols * (is64Bit() ? 852 sizeof(MachO::nlist_64) : 853 sizeof(MachO::nlist)); 854 writeSymtabLoadCommand(SymbolTableOffset, NumSymTabSymbols, 855 StringTableOffset, StringTable.data().size()); 856 857 writeDysymtabLoadCommand(FirstLocalSymbol, NumLocalSymbols, 858 FirstExternalSymbol, NumExternalSymbols, 859 FirstUndefinedSymbol, NumUndefinedSymbols, 860 IndirectSymbolOffset, NumIndirectSymbols); 861 } 862 863 // Write the linker options load commands. 864 for (const auto &Option : Asm.getLinkerOptions()) 865 writeLinkerOptionsLoadCommand(Option); 866 867 // Write the actual section data. 868 for (const MCSection &Sec : Asm) { 869 Asm.writeSectionData(&Sec, Layout); 870 871 uint64_t Pad = getPaddingSize(&Sec, Layout); 872 WriteZeros(Pad); 873 } 874 875 // Write the extra padding. 876 WriteZeros(SectionDataPadding); 877 878 // Write the relocation entries. 879 for (const MCSection &Sec : Asm) { 880 // Write the section relocation entries, in reverse order to match 'as' 881 // (approximately, the exact algorithm is more complicated than this). 882 std::vector<RelAndSymbol> &Relocs = Relocations[&Sec]; 883 for (const RelAndSymbol &Rel : make_range(Relocs.rbegin(), Relocs.rend())) { 884 write32(Rel.MRE.r_word0); 885 write32(Rel.MRE.r_word1); 886 } 887 } 888 889 // Write out the data-in-code region payload, if there is one. 890 for (MCAssembler::const_data_region_iterator 891 it = Asm.data_region_begin(), ie = Asm.data_region_end(); 892 it != ie; ++it) { 893 const DataRegionData *Data = &(*it); 894 uint64_t Start = getSymbolAddress(*Data->Start, Layout); 895 uint64_t End = getSymbolAddress(*Data->End, Layout); 896 DEBUG(dbgs() << "data in code region-- kind: " << Data->Kind 897 << " start: " << Start << "(" << Data->Start->getName() << ")" 898 << " end: " << End << "(" << Data->End->getName() << ")" 899 << " size: " << End - Start 900 << "\n"); 901 write32(Start); 902 write16(End - Start); 903 write16(Data->Kind); 904 } 905 906 // Write out the loh commands, if there is one. 907 if (LOHSize) { 908 #ifndef NDEBUG 909 unsigned Start = getStream().tell(); 910 #endif 911 Asm.getLOHContainer().emit(*this, Layout); 912 // Pad to a multiple of the pointer size. 913 writeBytes("", OffsetToAlignment(LOHRawSize, is64Bit() ? 8 : 4)); 914 assert(getStream().tell() - Start == LOHSize); 915 } 916 917 // Write the symbol table data, if used. 918 if (NumSymbols) { 919 // Write the indirect symbol entries. 920 for (MCAssembler::const_indirect_symbol_iterator 921 it = Asm.indirect_symbol_begin(), 922 ie = Asm.indirect_symbol_end(); it != ie; ++it) { 923 // Indirect symbols in the non-lazy symbol pointer section have some 924 // special handling. 925 const MCSectionMachO &Section = 926 static_cast<const MCSectionMachO &>(*it->Section); 927 if (Section.getType() == MachO::S_NON_LAZY_SYMBOL_POINTERS) { 928 // If this symbol is defined and internal, mark it as such. 929 if (it->Symbol->isDefined() && !it->Symbol->isExternal()) { 930 uint32_t Flags = MachO::INDIRECT_SYMBOL_LOCAL; 931 if (it->Symbol->isAbsolute()) 932 Flags |= MachO::INDIRECT_SYMBOL_ABS; 933 write32(Flags); 934 continue; 935 } 936 } 937 938 write32(it->Symbol->getIndex()); 939 } 940 941 // FIXME: Check that offsets match computed ones. 942 943 // Write the symbol table entries. 944 for (auto *SymbolData : 945 {&LocalSymbolData, &ExternalSymbolData, &UndefinedSymbolData}) 946 for (MachSymbolData &Entry : *SymbolData) 947 writeNlist(Entry, Layout); 948 949 // Write the string table. 950 getStream() << StringTable.data(); 951 } 952 } 953 954 MCObjectWriter *llvm::createMachObjectWriter(MCMachObjectTargetWriter *MOTW, 955 raw_pwrite_stream &OS, 956 bool IsLittleEndian) { 957 return new MachObjectWriter(MOTW, OS, IsLittleEndian); 958 } 959