1 //===- lib/MC/ELFObjectWriter.cpp - ELF 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 // This file implements ELF object file writer information. 11 // 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/MC/MCELFObjectWriter.h" 15 #include "llvm/ADT/STLExtras.h" 16 #include "llvm/ADT/SmallPtrSet.h" 17 #include "llvm/ADT/SmallString.h" 18 #include "llvm/ADT/StringMap.h" 19 #include "llvm/MC/MCAsmBackend.h" 20 #include "llvm/MC/MCAsmInfo.h" 21 #include "llvm/MC/MCAsmLayout.h" 22 #include "llvm/MC/MCAssembler.h" 23 #include "llvm/MC/MCContext.h" 24 #include "llvm/MC/MCExpr.h" 25 #include "llvm/MC/MCFixupKindInfo.h" 26 #include "llvm/MC/MCObjectWriter.h" 27 #include "llvm/MC/MCSectionELF.h" 28 #include "llvm/MC/MCSymbolELF.h" 29 #include "llvm/MC/MCValue.h" 30 #include "llvm/MC/StringTableBuilder.h" 31 #include "llvm/Support/Compression.h" 32 #include "llvm/Support/Debug.h" 33 #include "llvm/Support/ELF.h" 34 #include "llvm/Support/Endian.h" 35 #include "llvm/Support/Error.h" 36 #include "llvm/Support/ErrorHandling.h" 37 #include "llvm/Support/StringSaver.h" 38 #include <vector> 39 40 using namespace llvm; 41 42 #undef DEBUG_TYPE 43 #define DEBUG_TYPE "reloc-info" 44 45 namespace { 46 typedef DenseMap<const MCSectionELF *, uint32_t> SectionIndexMapTy; 47 48 class ELFObjectWriter; 49 50 class SymbolTableWriter { 51 ELFObjectWriter &EWriter; 52 bool Is64Bit; 53 54 // indexes we are going to write to .symtab_shndx. 55 std::vector<uint32_t> ShndxIndexes; 56 57 // The numbel of symbols written so far. 58 unsigned NumWritten; 59 60 void createSymtabShndx(); 61 62 template <typename T> void write(T Value); 63 64 public: 65 SymbolTableWriter(ELFObjectWriter &EWriter, bool Is64Bit); 66 67 void writeSymbol(uint32_t name, uint8_t info, uint64_t value, uint64_t size, 68 uint8_t other, uint32_t shndx, bool Reserved); 69 70 ArrayRef<uint32_t> getShndxIndexes() const { return ShndxIndexes; } 71 }; 72 73 class ELFObjectWriter : public MCObjectWriter { 74 static uint64_t SymbolValue(const MCSymbol &Sym, const MCAsmLayout &Layout); 75 static bool isInSymtab(const MCAsmLayout &Layout, const MCSymbolELF &Symbol, 76 bool Used, bool Renamed); 77 78 /// Helper struct for containing some precomputed information on symbols. 79 struct ELFSymbolData { 80 const MCSymbolELF *Symbol; 81 uint32_t SectionIndex; 82 StringRef Name; 83 84 // Support lexicographic sorting. 85 bool operator<(const ELFSymbolData &RHS) const { 86 unsigned LHSType = Symbol->getType(); 87 unsigned RHSType = RHS.Symbol->getType(); 88 if (LHSType == ELF::STT_SECTION && RHSType != ELF::STT_SECTION) 89 return false; 90 if (LHSType != ELF::STT_SECTION && RHSType == ELF::STT_SECTION) 91 return true; 92 if (LHSType == ELF::STT_SECTION && RHSType == ELF::STT_SECTION) 93 return SectionIndex < RHS.SectionIndex; 94 return Name < RHS.Name; 95 } 96 }; 97 98 /// The target specific ELF writer instance. 99 std::unique_ptr<MCELFObjectTargetWriter> TargetObjectWriter; 100 101 DenseMap<const MCSymbolELF *, const MCSymbolELF *> Renames; 102 103 llvm::DenseMap<const MCSectionELF *, std::vector<ELFRelocationEntry>> 104 Relocations; 105 106 /// @} 107 /// @name Symbol Table Data 108 /// @{ 109 110 BumpPtrAllocator Alloc; 111 StringSaver VersionSymSaver{Alloc}; 112 StringTableBuilder StrTabBuilder{StringTableBuilder::ELF}; 113 114 /// @} 115 116 // This holds the symbol table index of the last local symbol. 117 unsigned LastLocalSymbolIndex; 118 // This holds the .strtab section index. 119 unsigned StringTableIndex; 120 // This holds the .symtab section index. 121 unsigned SymbolTableIndex; 122 123 // Sections in the order they are to be output in the section table. 124 std::vector<const MCSectionELF *> SectionTable; 125 unsigned addToSectionTable(const MCSectionELF *Sec); 126 127 // TargetObjectWriter wrappers. 128 bool is64Bit() const { return TargetObjectWriter->is64Bit(); } 129 bool hasRelocationAddend() const { 130 return TargetObjectWriter->hasRelocationAddend(); 131 } 132 unsigned getRelocType(MCContext &Ctx, const MCValue &Target, 133 const MCFixup &Fixup, bool IsPCRel) const { 134 return TargetObjectWriter->getRelocType(Ctx, Target, Fixup, IsPCRel); 135 } 136 137 void align(unsigned Alignment); 138 139 bool maybeWriteCompression(uint64_t Size, 140 SmallVectorImpl<char> &CompressedContents, 141 bool ZLibStyle, unsigned Alignment); 142 143 public: 144 ELFObjectWriter(MCELFObjectTargetWriter *MOTW, raw_pwrite_stream &OS, 145 bool IsLittleEndian) 146 : MCObjectWriter(OS, IsLittleEndian), TargetObjectWriter(MOTW) {} 147 148 void reset() override { 149 Renames.clear(); 150 Relocations.clear(); 151 StrTabBuilder.clear(); 152 SectionTable.clear(); 153 MCObjectWriter::reset(); 154 } 155 156 ~ELFObjectWriter() override; 157 158 void WriteWord(uint64_t W) { 159 if (is64Bit()) 160 write64(W); 161 else 162 write32(W); 163 } 164 165 template <typename T> void write(T Val) { 166 if (IsLittleEndian) 167 support::endian::Writer<support::little>(getStream()).write(Val); 168 else 169 support::endian::Writer<support::big>(getStream()).write(Val); 170 } 171 172 void writeHeader(const MCAssembler &Asm); 173 174 void writeSymbol(SymbolTableWriter &Writer, uint32_t StringIndex, 175 ELFSymbolData &MSD, const MCAsmLayout &Layout); 176 177 // Start and end offset of each section 178 typedef std::map<const MCSectionELF *, std::pair<uint64_t, uint64_t>> 179 SectionOffsetsTy; 180 181 bool shouldRelocateWithSymbol(const MCAssembler &Asm, 182 const MCSymbolRefExpr *RefA, 183 const MCSymbol *Sym, uint64_t C, 184 unsigned Type) const; 185 186 void recordRelocation(MCAssembler &Asm, const MCAsmLayout &Layout, 187 const MCFragment *Fragment, const MCFixup &Fixup, 188 MCValue Target, bool &IsPCRel, 189 uint64_t &FixedValue) override; 190 191 // Map from a signature symbol to the group section index 192 typedef DenseMap<const MCSymbol *, unsigned> RevGroupMapTy; 193 194 /// Compute the symbol table data 195 /// 196 /// \param Asm - The assembler. 197 /// \param SectionIndexMap - Maps a section to its index. 198 /// \param RevGroupMap - Maps a signature symbol to the group section. 199 void computeSymbolTable(MCAssembler &Asm, const MCAsmLayout &Layout, 200 const SectionIndexMapTy &SectionIndexMap, 201 const RevGroupMapTy &RevGroupMap, 202 SectionOffsetsTy &SectionOffsets); 203 204 MCSectionELF *createRelocationSection(MCContext &Ctx, 205 const MCSectionELF &Sec); 206 207 const MCSectionELF *createStringTable(MCContext &Ctx); 208 209 void executePostLayoutBinding(MCAssembler &Asm, 210 const MCAsmLayout &Layout) override; 211 212 void writeSectionHeader(const MCAsmLayout &Layout, 213 const SectionIndexMapTy &SectionIndexMap, 214 const SectionOffsetsTy &SectionOffsets); 215 216 void writeSectionData(const MCAssembler &Asm, MCSection &Sec, 217 const MCAsmLayout &Layout); 218 219 void WriteSecHdrEntry(uint32_t Name, uint32_t Type, uint64_t Flags, 220 uint64_t Address, uint64_t Offset, uint64_t Size, 221 uint32_t Link, uint32_t Info, uint64_t Alignment, 222 uint64_t EntrySize); 223 224 void writeRelocations(const MCAssembler &Asm, const MCSectionELF &Sec); 225 226 bool isSymbolRefDifferenceFullyResolvedImpl(const MCAssembler &Asm, 227 const MCSymbol &SymA, 228 const MCFragment &FB, bool InSet, 229 bool IsPCRel) const override; 230 231 bool isWeak(const MCSymbol &Sym) const override; 232 233 void writeObject(MCAssembler &Asm, const MCAsmLayout &Layout) override; 234 void writeSection(const SectionIndexMapTy &SectionIndexMap, 235 uint32_t GroupSymbolIndex, uint64_t Offset, uint64_t Size, 236 const MCSectionELF &Section); 237 }; 238 } // end anonymous namespace 239 240 void ELFObjectWriter::align(unsigned Alignment) { 241 uint64_t Padding = OffsetToAlignment(getStream().tell(), Alignment); 242 WriteZeros(Padding); 243 } 244 245 unsigned ELFObjectWriter::addToSectionTable(const MCSectionELF *Sec) { 246 SectionTable.push_back(Sec); 247 StrTabBuilder.add(Sec->getSectionName()); 248 return SectionTable.size(); 249 } 250 251 void SymbolTableWriter::createSymtabShndx() { 252 if (!ShndxIndexes.empty()) 253 return; 254 255 ShndxIndexes.resize(NumWritten); 256 } 257 258 template <typename T> void SymbolTableWriter::write(T Value) { 259 EWriter.write(Value); 260 } 261 262 SymbolTableWriter::SymbolTableWriter(ELFObjectWriter &EWriter, bool Is64Bit) 263 : EWriter(EWriter), Is64Bit(Is64Bit), NumWritten(0) {} 264 265 void SymbolTableWriter::writeSymbol(uint32_t name, uint8_t info, uint64_t value, 266 uint64_t size, uint8_t other, 267 uint32_t shndx, bool Reserved) { 268 bool LargeIndex = shndx >= ELF::SHN_LORESERVE && !Reserved; 269 270 if (LargeIndex) 271 createSymtabShndx(); 272 273 if (!ShndxIndexes.empty()) { 274 if (LargeIndex) 275 ShndxIndexes.push_back(shndx); 276 else 277 ShndxIndexes.push_back(0); 278 } 279 280 uint16_t Index = LargeIndex ? uint16_t(ELF::SHN_XINDEX) : shndx; 281 282 if (Is64Bit) { 283 write(name); // st_name 284 write(info); // st_info 285 write(other); // st_other 286 write(Index); // st_shndx 287 write(value); // st_value 288 write(size); // st_size 289 } else { 290 write(name); // st_name 291 write(uint32_t(value)); // st_value 292 write(uint32_t(size)); // st_size 293 write(info); // st_info 294 write(other); // st_other 295 write(Index); // st_shndx 296 } 297 298 ++NumWritten; 299 } 300 301 ELFObjectWriter::~ELFObjectWriter() 302 {} 303 304 // Emit the ELF header. 305 void ELFObjectWriter::writeHeader(const MCAssembler &Asm) { 306 // ELF Header 307 // ---------- 308 // 309 // Note 310 // ---- 311 // emitWord method behaves differently for ELF32 and ELF64, writing 312 // 4 bytes in the former and 8 in the latter. 313 314 writeBytes(ELF::ElfMagic); // e_ident[EI_MAG0] to e_ident[EI_MAG3] 315 316 write8(is64Bit() ? ELF::ELFCLASS64 : ELF::ELFCLASS32); // e_ident[EI_CLASS] 317 318 // e_ident[EI_DATA] 319 write8(isLittleEndian() ? ELF::ELFDATA2LSB : ELF::ELFDATA2MSB); 320 321 write8(ELF::EV_CURRENT); // e_ident[EI_VERSION] 322 // e_ident[EI_OSABI] 323 write8(TargetObjectWriter->getOSABI()); 324 write8(0); // e_ident[EI_ABIVERSION] 325 326 WriteZeros(ELF::EI_NIDENT - ELF::EI_PAD); 327 328 write16(ELF::ET_REL); // e_type 329 330 write16(TargetObjectWriter->getEMachine()); // e_machine = target 331 332 write32(ELF::EV_CURRENT); // e_version 333 WriteWord(0); // e_entry, no entry point in .o file 334 WriteWord(0); // e_phoff, no program header for .o 335 WriteWord(0); // e_shoff = sec hdr table off in bytes 336 337 // e_flags = whatever the target wants 338 write32(Asm.getELFHeaderEFlags()); 339 340 // e_ehsize = ELF header size 341 write16(is64Bit() ? sizeof(ELF::Elf64_Ehdr) : sizeof(ELF::Elf32_Ehdr)); 342 343 write16(0); // e_phentsize = prog header entry size 344 write16(0); // e_phnum = # prog header entries = 0 345 346 // e_shentsize = Section header entry size 347 write16(is64Bit() ? sizeof(ELF::Elf64_Shdr) : sizeof(ELF::Elf32_Shdr)); 348 349 // e_shnum = # of section header ents 350 write16(0); 351 352 // e_shstrndx = Section # of '.shstrtab' 353 assert(StringTableIndex < ELF::SHN_LORESERVE); 354 write16(StringTableIndex); 355 } 356 357 uint64_t ELFObjectWriter::SymbolValue(const MCSymbol &Sym, 358 const MCAsmLayout &Layout) { 359 if (Sym.isCommon() && Sym.isExternal()) 360 return Sym.getCommonAlignment(); 361 362 uint64_t Res; 363 if (!Layout.getSymbolOffset(Sym, Res)) 364 return 0; 365 366 if (Layout.getAssembler().isThumbFunc(&Sym)) 367 Res |= 1; 368 369 return Res; 370 } 371 372 void ELFObjectWriter::executePostLayoutBinding(MCAssembler &Asm, 373 const MCAsmLayout &Layout) { 374 // The presence of symbol versions causes undefined symbols and 375 // versions declared with @@@ to be renamed. 376 for (const MCSymbol &A : Asm.symbols()) { 377 const auto &Alias = cast<MCSymbolELF>(A); 378 // Not an alias. 379 if (!Alias.isVariable()) 380 continue; 381 auto *Ref = dyn_cast<MCSymbolRefExpr>(Alias.getVariableValue()); 382 if (!Ref) 383 continue; 384 const auto &Symbol = cast<MCSymbolELF>(Ref->getSymbol()); 385 386 StringRef AliasName = Alias.getName(); 387 size_t Pos = AliasName.find('@'); 388 if (Pos == StringRef::npos) 389 continue; 390 391 // Aliases defined with .symvar copy the binding from the symbol they alias. 392 // This is the first place we are able to copy this information. 393 Alias.setExternal(Symbol.isExternal()); 394 Alias.setBinding(Symbol.getBinding()); 395 396 StringRef Rest = AliasName.substr(Pos); 397 if (!Symbol.isUndefined() && !Rest.startswith("@@@")) 398 continue; 399 400 // FIXME: produce a better error message. 401 if (Symbol.isUndefined() && Rest.startswith("@@") && 402 !Rest.startswith("@@@")) 403 report_fatal_error("A @@ version cannot be undefined"); 404 405 Renames.insert(std::make_pair(&Symbol, &Alias)); 406 } 407 } 408 409 static uint8_t mergeTypeForSet(uint8_t origType, uint8_t newType) { 410 uint8_t Type = newType; 411 412 // Propagation rules: 413 // IFUNC > FUNC > OBJECT > NOTYPE 414 // TLS_OBJECT > OBJECT > NOTYPE 415 // 416 // dont let the new type degrade the old type 417 switch (origType) { 418 default: 419 break; 420 case ELF::STT_GNU_IFUNC: 421 if (Type == ELF::STT_FUNC || Type == ELF::STT_OBJECT || 422 Type == ELF::STT_NOTYPE || Type == ELF::STT_TLS) 423 Type = ELF::STT_GNU_IFUNC; 424 break; 425 case ELF::STT_FUNC: 426 if (Type == ELF::STT_OBJECT || Type == ELF::STT_NOTYPE || 427 Type == ELF::STT_TLS) 428 Type = ELF::STT_FUNC; 429 break; 430 case ELF::STT_OBJECT: 431 if (Type == ELF::STT_NOTYPE) 432 Type = ELF::STT_OBJECT; 433 break; 434 case ELF::STT_TLS: 435 if (Type == ELF::STT_OBJECT || Type == ELF::STT_NOTYPE || 436 Type == ELF::STT_GNU_IFUNC || Type == ELF::STT_FUNC) 437 Type = ELF::STT_TLS; 438 break; 439 } 440 441 return Type; 442 } 443 444 void ELFObjectWriter::writeSymbol(SymbolTableWriter &Writer, 445 uint32_t StringIndex, ELFSymbolData &MSD, 446 const MCAsmLayout &Layout) { 447 const auto &Symbol = cast<MCSymbolELF>(*MSD.Symbol); 448 const MCSymbolELF *Base = 449 cast_or_null<MCSymbolELF>(Layout.getBaseSymbol(Symbol)); 450 451 // This has to be in sync with when computeSymbolTable uses SHN_ABS or 452 // SHN_COMMON. 453 bool IsReserved = !Base || Symbol.isCommon(); 454 455 // Binding and Type share the same byte as upper and lower nibbles 456 uint8_t Binding = Symbol.getBinding(); 457 uint8_t Type = Symbol.getType(); 458 if (Base) { 459 Type = mergeTypeForSet(Type, Base->getType()); 460 } 461 uint8_t Info = (Binding << 4) | Type; 462 463 // Other and Visibility share the same byte with Visibility using the lower 464 // 2 bits 465 uint8_t Visibility = Symbol.getVisibility(); 466 uint8_t Other = Symbol.getOther() | Visibility; 467 468 uint64_t Value = SymbolValue(*MSD.Symbol, Layout); 469 uint64_t Size = 0; 470 471 const MCExpr *ESize = MSD.Symbol->getSize(); 472 if (!ESize && Base) 473 ESize = Base->getSize(); 474 475 if (ESize) { 476 int64_t Res; 477 if (!ESize->evaluateKnownAbsolute(Res, Layout)) 478 report_fatal_error("Size expression must be absolute."); 479 Size = Res; 480 } 481 482 // Write out the symbol table entry 483 Writer.writeSymbol(StringIndex, Info, Value, Size, Other, MSD.SectionIndex, 484 IsReserved); 485 } 486 487 // It is always valid to create a relocation with a symbol. It is preferable 488 // to use a relocation with a section if that is possible. Using the section 489 // allows us to omit some local symbols from the symbol table. 490 bool ELFObjectWriter::shouldRelocateWithSymbol(const MCAssembler &Asm, 491 const MCSymbolRefExpr *RefA, 492 const MCSymbol *S, uint64_t C, 493 unsigned Type) const { 494 const auto *Sym = cast_or_null<MCSymbolELF>(S); 495 // A PCRel relocation to an absolute value has no symbol (or section). We 496 // represent that with a relocation to a null section. 497 if (!RefA) 498 return false; 499 500 MCSymbolRefExpr::VariantKind Kind = RefA->getKind(); 501 switch (Kind) { 502 default: 503 break; 504 // The .odp creation emits a relocation against the symbol ".TOC." which 505 // create a R_PPC64_TOC relocation. However the relocation symbol name 506 // in final object creation should be NULL, since the symbol does not 507 // really exist, it is just the reference to TOC base for the current 508 // object file. Since the symbol is undefined, returning false results 509 // in a relocation with a null section which is the desired result. 510 case MCSymbolRefExpr::VK_PPC_TOCBASE: 511 return false; 512 513 // These VariantKind cause the relocation to refer to something other than 514 // the symbol itself, like a linker generated table. Since the address of 515 // symbol is not relevant, we cannot replace the symbol with the 516 // section and patch the difference in the addend. 517 case MCSymbolRefExpr::VK_GOT: 518 case MCSymbolRefExpr::VK_PLT: 519 case MCSymbolRefExpr::VK_GOTPCREL: 520 case MCSymbolRefExpr::VK_PPC_GOT_LO: 521 case MCSymbolRefExpr::VK_PPC_GOT_HI: 522 case MCSymbolRefExpr::VK_PPC_GOT_HA: 523 return true; 524 } 525 526 // An undefined symbol is not in any section, so the relocation has to point 527 // to the symbol itself. 528 assert(Sym && "Expected a symbol"); 529 if (Sym->isUndefined()) 530 return true; 531 532 unsigned Binding = Sym->getBinding(); 533 switch(Binding) { 534 default: 535 llvm_unreachable("Invalid Binding"); 536 case ELF::STB_LOCAL: 537 break; 538 case ELF::STB_WEAK: 539 // If the symbol is weak, it might be overridden by a symbol in another 540 // file. The relocation has to point to the symbol so that the linker 541 // can update it. 542 return true; 543 case ELF::STB_GLOBAL: 544 // Global ELF symbols can be preempted by the dynamic linker. The relocation 545 // has to point to the symbol for a reason analogous to the STB_WEAK case. 546 return true; 547 } 548 549 // If a relocation points to a mergeable section, we have to be careful. 550 // If the offset is zero, a relocation with the section will encode the 551 // same information. With a non-zero offset, the situation is different. 552 // For example, a relocation can point 42 bytes past the end of a string. 553 // If we change such a relocation to use the section, the linker would think 554 // that it pointed to another string and subtracting 42 at runtime will 555 // produce the wrong value. 556 if (Sym->isInSection()) { 557 auto &Sec = cast<MCSectionELF>(Sym->getSection()); 558 unsigned Flags = Sec.getFlags(); 559 if (Flags & ELF::SHF_MERGE) { 560 if (C != 0) 561 return true; 562 563 // It looks like gold has a bug (http://sourceware.org/PR16794) and can 564 // only handle section relocations to mergeable sections if using RELA. 565 if (!hasRelocationAddend()) 566 return true; 567 } 568 569 // Most TLS relocations use a got, so they need the symbol. Even those that 570 // are just an offset (@tpoff), require a symbol in gold versions before 571 // 5efeedf61e4fe720fd3e9a08e6c91c10abb66d42 (2014-09-26) which fixed 572 // http://sourceware.org/PR16773. 573 if (Flags & ELF::SHF_TLS) 574 return true; 575 } 576 577 // If the symbol is a thumb function the final relocation must set the lowest 578 // bit. With a symbol that is done by just having the symbol have that bit 579 // set, so we would lose the bit if we relocated with the section. 580 // FIXME: We could use the section but add the bit to the relocation value. 581 if (Asm.isThumbFunc(Sym)) 582 return true; 583 584 if (TargetObjectWriter->needsRelocateWithSymbol(*Sym, Type)) 585 return true; 586 return false; 587 } 588 589 // True if the assembler knows nothing about the final value of the symbol. 590 // This doesn't cover the comdat issues, since in those cases the assembler 591 // can at least know that all symbols in the section will move together. 592 static bool isWeak(const MCSymbolELF &Sym) { 593 if (Sym.getType() == ELF::STT_GNU_IFUNC) 594 return true; 595 596 switch (Sym.getBinding()) { 597 default: 598 llvm_unreachable("Unknown binding"); 599 case ELF::STB_LOCAL: 600 return false; 601 case ELF::STB_GLOBAL: 602 return false; 603 case ELF::STB_WEAK: 604 case ELF::STB_GNU_UNIQUE: 605 return true; 606 } 607 } 608 609 void ELFObjectWriter::recordRelocation(MCAssembler &Asm, 610 const MCAsmLayout &Layout, 611 const MCFragment *Fragment, 612 const MCFixup &Fixup, MCValue Target, 613 bool &IsPCRel, uint64_t &FixedValue) { 614 const MCSectionELF &FixupSection = cast<MCSectionELF>(*Fragment->getParent()); 615 uint64_t C = Target.getConstant(); 616 uint64_t FixupOffset = Layout.getFragmentOffset(Fragment) + Fixup.getOffset(); 617 MCContext &Ctx = Asm.getContext(); 618 619 if (const MCSymbolRefExpr *RefB = Target.getSymB()) { 620 assert(RefB->getKind() == MCSymbolRefExpr::VK_None && 621 "Should not have constructed this"); 622 623 // Let A, B and C being the components of Target and R be the location of 624 // the fixup. If the fixup is not pcrel, we want to compute (A - B + C). 625 // If it is pcrel, we want to compute (A - B + C - R). 626 627 // In general, ELF has no relocations for -B. It can only represent (A + C) 628 // or (A + C - R). If B = R + K and the relocation is not pcrel, we can 629 // replace B to implement it: (A - R - K + C) 630 if (IsPCRel) { 631 Ctx.reportError( 632 Fixup.getLoc(), 633 "No relocation available to represent this relative expression"); 634 return; 635 } 636 637 const auto &SymB = cast<MCSymbolELF>(RefB->getSymbol()); 638 639 if (SymB.isUndefined()) { 640 Ctx.reportError(Fixup.getLoc(), 641 Twine("symbol '") + SymB.getName() + 642 "' can not be undefined in a subtraction expression"); 643 return; 644 } 645 646 assert(!SymB.isAbsolute() && "Should have been folded"); 647 const MCSection &SecB = SymB.getSection(); 648 if (&SecB != &FixupSection) { 649 Ctx.reportError(Fixup.getLoc(), 650 "Cannot represent a difference across sections"); 651 return; 652 } 653 654 uint64_t SymBOffset = Layout.getSymbolOffset(SymB); 655 uint64_t K = SymBOffset - FixupOffset; 656 IsPCRel = true; 657 C -= K; 658 } 659 660 // We either rejected the fixup or folded B into C at this point. 661 const MCSymbolRefExpr *RefA = Target.getSymA(); 662 const auto *SymA = RefA ? cast<MCSymbolELF>(&RefA->getSymbol()) : nullptr; 663 664 bool ViaWeakRef = false; 665 if (SymA && SymA->isVariable()) { 666 const MCExpr *Expr = SymA->getVariableValue(); 667 if (const auto *Inner = dyn_cast<MCSymbolRefExpr>(Expr)) { 668 if (Inner->getKind() == MCSymbolRefExpr::VK_WEAKREF) { 669 SymA = cast<MCSymbolELF>(&Inner->getSymbol()); 670 ViaWeakRef = true; 671 } 672 } 673 } 674 675 unsigned Type = getRelocType(Ctx, Target, Fixup, IsPCRel); 676 uint64_t OriginalC = C; 677 bool RelocateWithSymbol = shouldRelocateWithSymbol(Asm, RefA, SymA, C, Type); 678 if (!RelocateWithSymbol && SymA && !SymA->isUndefined()) 679 C += Layout.getSymbolOffset(*SymA); 680 681 uint64_t Addend = 0; 682 if (hasRelocationAddend()) { 683 Addend = C; 684 C = 0; 685 } 686 687 FixedValue = C; 688 689 if (!RelocateWithSymbol) { 690 const MCSection *SecA = 691 (SymA && !SymA->isUndefined()) ? &SymA->getSection() : nullptr; 692 auto *ELFSec = cast_or_null<MCSectionELF>(SecA); 693 const auto *SectionSymbol = 694 ELFSec ? cast<MCSymbolELF>(ELFSec->getBeginSymbol()) : nullptr; 695 if (SectionSymbol) 696 SectionSymbol->setUsedInReloc(); 697 ELFRelocationEntry Rec(FixupOffset, SectionSymbol, Type, Addend, SymA, 698 OriginalC); 699 Relocations[&FixupSection].push_back(Rec); 700 return; 701 } 702 703 const auto *RenamedSymA = SymA; 704 if (SymA) { 705 if (const MCSymbolELF *R = Renames.lookup(SymA)) 706 RenamedSymA = R; 707 708 if (ViaWeakRef) 709 RenamedSymA->setIsWeakrefUsedInReloc(); 710 else 711 RenamedSymA->setUsedInReloc(); 712 } 713 ELFRelocationEntry Rec(FixupOffset, RenamedSymA, Type, Addend, SymA, 714 OriginalC); 715 Relocations[&FixupSection].push_back(Rec); 716 } 717 718 bool ELFObjectWriter::isInSymtab(const MCAsmLayout &Layout, 719 const MCSymbolELF &Symbol, bool Used, 720 bool Renamed) { 721 if (Symbol.isVariable()) { 722 const MCExpr *Expr = Symbol.getVariableValue(); 723 if (const MCSymbolRefExpr *Ref = dyn_cast<MCSymbolRefExpr>(Expr)) { 724 if (Ref->getKind() == MCSymbolRefExpr::VK_WEAKREF) 725 return false; 726 } 727 } 728 729 if (Used) 730 return true; 731 732 if (Renamed) 733 return false; 734 735 if (Symbol.isVariable() && Symbol.isUndefined()) { 736 // FIXME: this is here just to diagnose the case of a var = commmon_sym. 737 Layout.getBaseSymbol(Symbol); 738 return false; 739 } 740 741 if (Symbol.isUndefined() && !Symbol.isBindingSet()) 742 return false; 743 744 if (Symbol.isTemporary()) 745 return false; 746 747 if (Symbol.getType() == ELF::STT_SECTION) 748 return false; 749 750 return true; 751 } 752 753 void ELFObjectWriter::computeSymbolTable( 754 MCAssembler &Asm, const MCAsmLayout &Layout, 755 const SectionIndexMapTy &SectionIndexMap, const RevGroupMapTy &RevGroupMap, 756 SectionOffsetsTy &SectionOffsets) { 757 MCContext &Ctx = Asm.getContext(); 758 SymbolTableWriter Writer(*this, is64Bit()); 759 760 // Symbol table 761 unsigned EntrySize = is64Bit() ? ELF::SYMENTRY_SIZE64 : ELF::SYMENTRY_SIZE32; 762 MCSectionELF *SymtabSection = 763 Ctx.getELFSection(".symtab", ELF::SHT_SYMTAB, 0, EntrySize, ""); 764 SymtabSection->setAlignment(is64Bit() ? 8 : 4); 765 SymbolTableIndex = addToSectionTable(SymtabSection); 766 767 align(SymtabSection->getAlignment()); 768 uint64_t SecStart = getStream().tell(); 769 770 // The first entry is the undefined symbol entry. 771 Writer.writeSymbol(0, 0, 0, 0, 0, 0, false); 772 773 std::vector<ELFSymbolData> LocalSymbolData; 774 std::vector<ELFSymbolData> ExternalSymbolData; 775 776 // Add the data for the symbols. 777 bool HasLargeSectionIndex = false; 778 for (const MCSymbol &S : Asm.symbols()) { 779 const auto &Symbol = cast<MCSymbolELF>(S); 780 bool Used = Symbol.isUsedInReloc(); 781 bool WeakrefUsed = Symbol.isWeakrefUsedInReloc(); 782 bool isSignature = Symbol.isSignature(); 783 784 if (!isInSymtab(Layout, Symbol, Used || WeakrefUsed || isSignature, 785 Renames.count(&Symbol))) 786 continue; 787 788 if (Symbol.isTemporary() && Symbol.isUndefined()) { 789 Ctx.reportError(SMLoc(), "Undefined temporary symbol"); 790 continue; 791 } 792 793 ELFSymbolData MSD; 794 MSD.Symbol = cast<MCSymbolELF>(&Symbol); 795 796 bool Local = Symbol.getBinding() == ELF::STB_LOCAL; 797 assert(Local || !Symbol.isTemporary()); 798 799 if (Symbol.isAbsolute()) { 800 MSD.SectionIndex = ELF::SHN_ABS; 801 } else if (Symbol.isCommon()) { 802 assert(!Local); 803 MSD.SectionIndex = ELF::SHN_COMMON; 804 } else if (Symbol.isUndefined()) { 805 if (isSignature && !Used) { 806 MSD.SectionIndex = RevGroupMap.lookup(&Symbol); 807 if (MSD.SectionIndex >= ELF::SHN_LORESERVE) 808 HasLargeSectionIndex = true; 809 } else { 810 MSD.SectionIndex = ELF::SHN_UNDEF; 811 } 812 } else { 813 const MCSectionELF &Section = 814 static_cast<const MCSectionELF &>(Symbol.getSection()); 815 MSD.SectionIndex = SectionIndexMap.lookup(&Section); 816 assert(MSD.SectionIndex && "Invalid section index!"); 817 if (MSD.SectionIndex >= ELF::SHN_LORESERVE) 818 HasLargeSectionIndex = true; 819 } 820 821 // The @@@ in symbol version is replaced with @ in undefined symbols and @@ 822 // in defined ones. 823 // 824 // FIXME: All name handling should be done before we get to the writer, 825 // including dealing with GNU-style version suffixes. Fixing this isn't 826 // trivial. 827 // 828 // We thus have to be careful to not perform the symbol version replacement 829 // blindly: 830 // 831 // The ELF format is used on Windows by the MCJIT engine. Thus, on 832 // Windows, the ELFObjectWriter can encounter symbols mangled using the MS 833 // Visual Studio C++ name mangling scheme. Symbols mangled using the MSVC 834 // C++ name mangling can legally have "@@@" as a sub-string. In that case, 835 // the EFLObjectWriter should not interpret the "@@@" sub-string as 836 // specifying GNU-style symbol versioning. The ELFObjectWriter therefore 837 // checks for the MSVC C++ name mangling prefix which is either "?", "@?", 838 // "__imp_?" or "__imp_@?". 839 // 840 // It would have been interesting to perform the MS mangling prefix check 841 // only when the target triple is of the form *-pc-windows-elf. But, it 842 // seems that this information is not easily accessible from the 843 // ELFObjectWriter. 844 StringRef Name = Symbol.getName(); 845 SmallString<32> Buf; 846 if (!Name.startswith("?") && !Name.startswith("@?") && 847 !Name.startswith("__imp_?") && !Name.startswith("__imp_@?")) { 848 // This symbol isn't following the MSVC C++ name mangling convention. We 849 // can thus safely interpret the @@@ in symbol names as specifying symbol 850 // versioning. 851 size_t Pos = Name.find("@@@"); 852 if (Pos != StringRef::npos) { 853 Buf += Name.substr(0, Pos); 854 unsigned Skip = MSD.SectionIndex == ELF::SHN_UNDEF ? 2 : 1; 855 Buf += Name.substr(Pos + Skip); 856 Name = VersionSymSaver.save(Buf.c_str()); 857 } 858 } 859 860 // Sections have their own string table 861 if (Symbol.getType() != ELF::STT_SECTION) { 862 MSD.Name = Name; 863 StrTabBuilder.add(Name); 864 } 865 866 if (Local) 867 LocalSymbolData.push_back(MSD); 868 else 869 ExternalSymbolData.push_back(MSD); 870 } 871 872 // This holds the .symtab_shndx section index. 873 unsigned SymtabShndxSectionIndex = 0; 874 875 if (HasLargeSectionIndex) { 876 MCSectionELF *SymtabShndxSection = 877 Ctx.getELFSection(".symtab_shndxr", ELF::SHT_SYMTAB_SHNDX, 0, 4, ""); 878 SymtabShndxSectionIndex = addToSectionTable(SymtabShndxSection); 879 SymtabShndxSection->setAlignment(4); 880 } 881 882 ArrayRef<std::string> FileNames = Asm.getFileNames(); 883 for (const std::string &Name : FileNames) 884 StrTabBuilder.add(Name); 885 886 StrTabBuilder.finalize(); 887 888 for (const std::string &Name : FileNames) 889 Writer.writeSymbol(StrTabBuilder.getOffset(Name), 890 ELF::STT_FILE | ELF::STB_LOCAL, 0, 0, ELF::STV_DEFAULT, 891 ELF::SHN_ABS, true); 892 893 // Symbols are required to be in lexicographic order. 894 array_pod_sort(LocalSymbolData.begin(), LocalSymbolData.end()); 895 array_pod_sort(ExternalSymbolData.begin(), ExternalSymbolData.end()); 896 897 // Set the symbol indices. Local symbols must come before all other 898 // symbols with non-local bindings. 899 unsigned Index = FileNames.size() + 1; 900 901 for (ELFSymbolData &MSD : LocalSymbolData) { 902 unsigned StringIndex = MSD.Symbol->getType() == ELF::STT_SECTION 903 ? 0 904 : StrTabBuilder.getOffset(MSD.Name); 905 MSD.Symbol->setIndex(Index++); 906 writeSymbol(Writer, StringIndex, MSD, Layout); 907 } 908 909 // Write the symbol table entries. 910 LastLocalSymbolIndex = Index; 911 912 for (ELFSymbolData &MSD : ExternalSymbolData) { 913 unsigned StringIndex = StrTabBuilder.getOffset(MSD.Name); 914 MSD.Symbol->setIndex(Index++); 915 writeSymbol(Writer, StringIndex, MSD, Layout); 916 assert(MSD.Symbol->getBinding() != ELF::STB_LOCAL); 917 } 918 919 uint64_t SecEnd = getStream().tell(); 920 SectionOffsets[SymtabSection] = std::make_pair(SecStart, SecEnd); 921 922 ArrayRef<uint32_t> ShndxIndexes = Writer.getShndxIndexes(); 923 if (ShndxIndexes.empty()) { 924 assert(SymtabShndxSectionIndex == 0); 925 return; 926 } 927 assert(SymtabShndxSectionIndex != 0); 928 929 SecStart = getStream().tell(); 930 const MCSectionELF *SymtabShndxSection = 931 SectionTable[SymtabShndxSectionIndex - 1]; 932 for (uint32_t Index : ShndxIndexes) 933 write(Index); 934 SecEnd = getStream().tell(); 935 SectionOffsets[SymtabShndxSection] = std::make_pair(SecStart, SecEnd); 936 } 937 938 MCSectionELF * 939 ELFObjectWriter::createRelocationSection(MCContext &Ctx, 940 const MCSectionELF &Sec) { 941 if (Relocations[&Sec].empty()) 942 return nullptr; 943 944 const StringRef SectionName = Sec.getSectionName(); 945 std::string RelaSectionName = hasRelocationAddend() ? ".rela" : ".rel"; 946 RelaSectionName += SectionName; 947 948 unsigned EntrySize; 949 if (hasRelocationAddend()) 950 EntrySize = is64Bit() ? sizeof(ELF::Elf64_Rela) : sizeof(ELF::Elf32_Rela); 951 else 952 EntrySize = is64Bit() ? sizeof(ELF::Elf64_Rel) : sizeof(ELF::Elf32_Rel); 953 954 unsigned Flags = 0; 955 if (Sec.getFlags() & ELF::SHF_GROUP) 956 Flags = ELF::SHF_GROUP; 957 958 MCSectionELF *RelaSection = Ctx.createELFRelSection( 959 RelaSectionName, hasRelocationAddend() ? ELF::SHT_RELA : ELF::SHT_REL, 960 Flags, EntrySize, Sec.getGroup(), &Sec); 961 RelaSection->setAlignment(is64Bit() ? 8 : 4); 962 return RelaSection; 963 } 964 965 // Include the debug info compression header. 966 bool ELFObjectWriter::maybeWriteCompression( 967 uint64_t Size, SmallVectorImpl<char> &CompressedContents, bool ZLibStyle, 968 unsigned Alignment) { 969 if (ZLibStyle) { 970 uint64_t HdrSize = 971 is64Bit() ? sizeof(ELF::Elf32_Chdr) : sizeof(ELF::Elf64_Chdr); 972 if (Size <= HdrSize + CompressedContents.size()) 973 return false; 974 // Platform specific header is followed by compressed data. 975 if (is64Bit()) { 976 // Write Elf64_Chdr header. 977 write(static_cast<ELF::Elf64_Word>(ELF::ELFCOMPRESS_ZLIB)); 978 write(static_cast<ELF::Elf64_Word>(0)); // ch_reserved field. 979 write(static_cast<ELF::Elf64_Xword>(Size)); 980 write(static_cast<ELF::Elf64_Xword>(Alignment)); 981 } else { 982 // Write Elf32_Chdr header otherwise. 983 write(static_cast<ELF::Elf32_Word>(ELF::ELFCOMPRESS_ZLIB)); 984 write(static_cast<ELF::Elf32_Word>(Size)); 985 write(static_cast<ELF::Elf32_Word>(Alignment)); 986 } 987 return true; 988 } 989 990 // "ZLIB" followed by 8 bytes representing the uncompressed size of the section, 991 // useful for consumers to preallocate a buffer to decompress into. 992 const StringRef Magic = "ZLIB"; 993 if (Size <= Magic.size() + sizeof(Size) + CompressedContents.size()) 994 return false; 995 write(ArrayRef<char>(Magic.begin(), Magic.size())); 996 writeBE64(Size); 997 return true; 998 } 999 1000 void ELFObjectWriter::writeSectionData(const MCAssembler &Asm, MCSection &Sec, 1001 const MCAsmLayout &Layout) { 1002 MCSectionELF &Section = static_cast<MCSectionELF &>(Sec); 1003 StringRef SectionName = Section.getSectionName(); 1004 1005 // Compressing debug_frame requires handling alignment fragments which is 1006 // more work (possibly generalizing MCAssembler.cpp:writeFragment to allow 1007 // for writing to arbitrary buffers) for little benefit. 1008 bool CompressionEnabled = 1009 Asm.getContext().getAsmInfo()->compressDebugSections() != 1010 DebugCompressionType::DCT_None; 1011 if (!CompressionEnabled || !SectionName.startswith(".debug_") || 1012 SectionName == ".debug_frame") { 1013 Asm.writeSectionData(&Section, Layout); 1014 return; 1015 } 1016 1017 SmallVector<char, 128> UncompressedData; 1018 raw_svector_ostream VecOS(UncompressedData); 1019 raw_pwrite_stream &OldStream = getStream(); 1020 setStream(VecOS); 1021 Asm.writeSectionData(&Section, Layout); 1022 setStream(OldStream); 1023 1024 SmallVector<char, 128> CompressedContents; 1025 if (Error E = zlib::compress( 1026 StringRef(UncompressedData.data(), UncompressedData.size()), 1027 CompressedContents)) { 1028 consumeError(std::move(E)); 1029 getStream() << UncompressedData; 1030 return; 1031 } 1032 1033 bool ZlibStyle = Asm.getContext().getAsmInfo()->compressDebugSections() == 1034 DebugCompressionType::DCT_Zlib; 1035 if (!maybeWriteCompression(UncompressedData.size(), CompressedContents, 1036 ZlibStyle, Sec.getAlignment())) { 1037 getStream() << UncompressedData; 1038 return; 1039 } 1040 1041 if (ZlibStyle) 1042 // Set the compressed flag. That is zlib style. 1043 Section.setFlags(Section.getFlags() | ELF::SHF_COMPRESSED); 1044 else 1045 // Add "z" prefix to section name. This is zlib-gnu style. 1046 Asm.getContext().renameELFSection(&Section, 1047 (".z" + SectionName.drop_front(1)).str()); 1048 getStream() << CompressedContents; 1049 } 1050 1051 void ELFObjectWriter::WriteSecHdrEntry(uint32_t Name, uint32_t Type, 1052 uint64_t Flags, uint64_t Address, 1053 uint64_t Offset, uint64_t Size, 1054 uint32_t Link, uint32_t Info, 1055 uint64_t Alignment, 1056 uint64_t EntrySize) { 1057 write32(Name); // sh_name: index into string table 1058 write32(Type); // sh_type 1059 WriteWord(Flags); // sh_flags 1060 WriteWord(Address); // sh_addr 1061 WriteWord(Offset); // sh_offset 1062 WriteWord(Size); // sh_size 1063 write32(Link); // sh_link 1064 write32(Info); // sh_info 1065 WriteWord(Alignment); // sh_addralign 1066 WriteWord(EntrySize); // sh_entsize 1067 } 1068 1069 void ELFObjectWriter::writeRelocations(const MCAssembler &Asm, 1070 const MCSectionELF &Sec) { 1071 std::vector<ELFRelocationEntry> &Relocs = Relocations[&Sec]; 1072 1073 // We record relocations by pushing to the end of a vector. Reverse the vector 1074 // to get the relocations in the order they were created. 1075 // In most cases that is not important, but it can be for special sections 1076 // (.eh_frame) or specific relocations (TLS optimizations on SystemZ). 1077 std::reverse(Relocs.begin(), Relocs.end()); 1078 1079 // Sort the relocation entries. MIPS needs this. 1080 TargetObjectWriter->sortRelocs(Asm, Relocs); 1081 1082 for (unsigned i = 0, e = Relocs.size(); i != e; ++i) { 1083 const ELFRelocationEntry &Entry = Relocs[e - i - 1]; 1084 unsigned Index = Entry.Symbol ? Entry.Symbol->getIndex() : 0; 1085 1086 if (is64Bit()) { 1087 write(Entry.Offset); 1088 if (TargetObjectWriter->isN64()) { 1089 write(uint32_t(Index)); 1090 1091 write(TargetObjectWriter->getRSsym(Entry.Type)); 1092 write(TargetObjectWriter->getRType3(Entry.Type)); 1093 write(TargetObjectWriter->getRType2(Entry.Type)); 1094 write(TargetObjectWriter->getRType(Entry.Type)); 1095 } else { 1096 struct ELF::Elf64_Rela ERE64; 1097 ERE64.setSymbolAndType(Index, Entry.Type); 1098 write(ERE64.r_info); 1099 } 1100 if (hasRelocationAddend()) 1101 write(Entry.Addend); 1102 } else { 1103 write(uint32_t(Entry.Offset)); 1104 1105 struct ELF::Elf32_Rela ERE32; 1106 ERE32.setSymbolAndType(Index, Entry.Type); 1107 write(ERE32.r_info); 1108 1109 if (hasRelocationAddend()) 1110 write(uint32_t(Entry.Addend)); 1111 } 1112 } 1113 } 1114 1115 const MCSectionELF *ELFObjectWriter::createStringTable(MCContext &Ctx) { 1116 const MCSectionELF *StrtabSection = SectionTable[StringTableIndex - 1]; 1117 StrTabBuilder.write(getStream()); 1118 return StrtabSection; 1119 } 1120 1121 void ELFObjectWriter::writeSection(const SectionIndexMapTy &SectionIndexMap, 1122 uint32_t GroupSymbolIndex, uint64_t Offset, 1123 uint64_t Size, const MCSectionELF &Section) { 1124 uint64_t sh_link = 0; 1125 uint64_t sh_info = 0; 1126 1127 switch(Section.getType()) { 1128 default: 1129 // Nothing to do. 1130 break; 1131 1132 case ELF::SHT_DYNAMIC: 1133 llvm_unreachable("SHT_DYNAMIC in a relocatable object"); 1134 1135 case ELF::SHT_REL: 1136 case ELF::SHT_RELA: { 1137 sh_link = SymbolTableIndex; 1138 assert(sh_link && ".symtab not found"); 1139 const MCSectionELF *InfoSection = Section.getAssociatedSection(); 1140 sh_info = SectionIndexMap.lookup(InfoSection); 1141 break; 1142 } 1143 1144 case ELF::SHT_SYMTAB: 1145 case ELF::SHT_DYNSYM: 1146 sh_link = StringTableIndex; 1147 sh_info = LastLocalSymbolIndex; 1148 break; 1149 1150 case ELF::SHT_SYMTAB_SHNDX: 1151 sh_link = SymbolTableIndex; 1152 break; 1153 1154 case ELF::SHT_GROUP: 1155 sh_link = SymbolTableIndex; 1156 sh_info = GroupSymbolIndex; 1157 break; 1158 } 1159 1160 if (TargetObjectWriter->getEMachine() == ELF::EM_ARM && 1161 Section.getType() == ELF::SHT_ARM_EXIDX) 1162 sh_link = SectionIndexMap.lookup(Section.getAssociatedSection()); 1163 1164 WriteSecHdrEntry(StrTabBuilder.getOffset(Section.getSectionName()), 1165 Section.getType(), Section.getFlags(), 0, Offset, Size, 1166 sh_link, sh_info, Section.getAlignment(), 1167 Section.getEntrySize()); 1168 } 1169 1170 void ELFObjectWriter::writeSectionHeader( 1171 const MCAsmLayout &Layout, const SectionIndexMapTy &SectionIndexMap, 1172 const SectionOffsetsTy &SectionOffsets) { 1173 const unsigned NumSections = SectionTable.size(); 1174 1175 // Null section first. 1176 uint64_t FirstSectionSize = 1177 (NumSections + 1) >= ELF::SHN_LORESERVE ? NumSections + 1 : 0; 1178 WriteSecHdrEntry(0, 0, 0, 0, 0, FirstSectionSize, 0, 0, 0, 0); 1179 1180 for (const MCSectionELF *Section : SectionTable) { 1181 uint32_t GroupSymbolIndex; 1182 unsigned Type = Section->getType(); 1183 if (Type != ELF::SHT_GROUP) 1184 GroupSymbolIndex = 0; 1185 else 1186 GroupSymbolIndex = Section->getGroup()->getIndex(); 1187 1188 const std::pair<uint64_t, uint64_t> &Offsets = 1189 SectionOffsets.find(Section)->second; 1190 uint64_t Size; 1191 if (Type == ELF::SHT_NOBITS) 1192 Size = Layout.getSectionAddressSize(Section); 1193 else 1194 Size = Offsets.second - Offsets.first; 1195 1196 writeSection(SectionIndexMap, GroupSymbolIndex, Offsets.first, Size, 1197 *Section); 1198 } 1199 } 1200 1201 void ELFObjectWriter::writeObject(MCAssembler &Asm, 1202 const MCAsmLayout &Layout) { 1203 MCContext &Ctx = Asm.getContext(); 1204 MCSectionELF *StrtabSection = 1205 Ctx.getELFSection(".strtab", ELF::SHT_STRTAB, 0); 1206 StringTableIndex = addToSectionTable(StrtabSection); 1207 1208 RevGroupMapTy RevGroupMap; 1209 SectionIndexMapTy SectionIndexMap; 1210 1211 std::map<const MCSymbol *, std::vector<const MCSectionELF *>> GroupMembers; 1212 1213 // Write out the ELF header ... 1214 writeHeader(Asm); 1215 1216 // ... then the sections ... 1217 SectionOffsetsTy SectionOffsets; 1218 std::vector<MCSectionELF *> Groups; 1219 std::vector<MCSectionELF *> Relocations; 1220 for (MCSection &Sec : Asm) { 1221 MCSectionELF &Section = static_cast<MCSectionELF &>(Sec); 1222 1223 align(Section.getAlignment()); 1224 1225 // Remember the offset into the file for this section. 1226 uint64_t SecStart = getStream().tell(); 1227 1228 const MCSymbolELF *SignatureSymbol = Section.getGroup(); 1229 writeSectionData(Asm, Section, Layout); 1230 1231 uint64_t SecEnd = getStream().tell(); 1232 SectionOffsets[&Section] = std::make_pair(SecStart, SecEnd); 1233 1234 MCSectionELF *RelSection = createRelocationSection(Ctx, Section); 1235 1236 if (SignatureSymbol) { 1237 Asm.registerSymbol(*SignatureSymbol); 1238 unsigned &GroupIdx = RevGroupMap[SignatureSymbol]; 1239 if (!GroupIdx) { 1240 MCSectionELF *Group = Ctx.createELFGroupSection(SignatureSymbol); 1241 GroupIdx = addToSectionTable(Group); 1242 Group->setAlignment(4); 1243 Groups.push_back(Group); 1244 } 1245 std::vector<const MCSectionELF *> &Members = 1246 GroupMembers[SignatureSymbol]; 1247 Members.push_back(&Section); 1248 if (RelSection) 1249 Members.push_back(RelSection); 1250 } 1251 1252 SectionIndexMap[&Section] = addToSectionTable(&Section); 1253 if (RelSection) { 1254 SectionIndexMap[RelSection] = addToSectionTable(RelSection); 1255 Relocations.push_back(RelSection); 1256 } 1257 } 1258 1259 for (MCSectionELF *Group : Groups) { 1260 align(Group->getAlignment()); 1261 1262 // Remember the offset into the file for this section. 1263 uint64_t SecStart = getStream().tell(); 1264 1265 const MCSymbol *SignatureSymbol = Group->getGroup(); 1266 assert(SignatureSymbol); 1267 write(uint32_t(ELF::GRP_COMDAT)); 1268 for (const MCSectionELF *Member : GroupMembers[SignatureSymbol]) { 1269 uint32_t SecIndex = SectionIndexMap.lookup(Member); 1270 write(SecIndex); 1271 } 1272 1273 uint64_t SecEnd = getStream().tell(); 1274 SectionOffsets[Group] = std::make_pair(SecStart, SecEnd); 1275 } 1276 1277 // Compute symbol table information. 1278 computeSymbolTable(Asm, Layout, SectionIndexMap, RevGroupMap, SectionOffsets); 1279 1280 for (MCSectionELF *RelSection : Relocations) { 1281 align(RelSection->getAlignment()); 1282 1283 // Remember the offset into the file for this section. 1284 uint64_t SecStart = getStream().tell(); 1285 1286 writeRelocations(Asm, *RelSection->getAssociatedSection()); 1287 1288 uint64_t SecEnd = getStream().tell(); 1289 SectionOffsets[RelSection] = std::make_pair(SecStart, SecEnd); 1290 } 1291 1292 { 1293 uint64_t SecStart = getStream().tell(); 1294 const MCSectionELF *Sec = createStringTable(Ctx); 1295 uint64_t SecEnd = getStream().tell(); 1296 SectionOffsets[Sec] = std::make_pair(SecStart, SecEnd); 1297 } 1298 1299 uint64_t NaturalAlignment = is64Bit() ? 8 : 4; 1300 align(NaturalAlignment); 1301 1302 const uint64_t SectionHeaderOffset = getStream().tell(); 1303 1304 // ... then the section header table ... 1305 writeSectionHeader(Layout, SectionIndexMap, SectionOffsets); 1306 1307 uint16_t NumSections = (SectionTable.size() + 1 >= ELF::SHN_LORESERVE) 1308 ? (uint16_t)ELF::SHN_UNDEF 1309 : SectionTable.size() + 1; 1310 if (sys::IsLittleEndianHost != IsLittleEndian) 1311 sys::swapByteOrder(NumSections); 1312 unsigned NumSectionsOffset; 1313 1314 if (is64Bit()) { 1315 uint64_t Val = SectionHeaderOffset; 1316 if (sys::IsLittleEndianHost != IsLittleEndian) 1317 sys::swapByteOrder(Val); 1318 getStream().pwrite(reinterpret_cast<char *>(&Val), sizeof(Val), 1319 offsetof(ELF::Elf64_Ehdr, e_shoff)); 1320 NumSectionsOffset = offsetof(ELF::Elf64_Ehdr, e_shnum); 1321 } else { 1322 uint32_t Val = SectionHeaderOffset; 1323 if (sys::IsLittleEndianHost != IsLittleEndian) 1324 sys::swapByteOrder(Val); 1325 getStream().pwrite(reinterpret_cast<char *>(&Val), sizeof(Val), 1326 offsetof(ELF::Elf32_Ehdr, e_shoff)); 1327 NumSectionsOffset = offsetof(ELF::Elf32_Ehdr, e_shnum); 1328 } 1329 getStream().pwrite(reinterpret_cast<char *>(&NumSections), 1330 sizeof(NumSections), NumSectionsOffset); 1331 } 1332 1333 bool ELFObjectWriter::isSymbolRefDifferenceFullyResolvedImpl( 1334 const MCAssembler &Asm, const MCSymbol &SA, const MCFragment &FB, 1335 bool InSet, bool IsPCRel) const { 1336 const auto &SymA = cast<MCSymbolELF>(SA); 1337 if (IsPCRel) { 1338 assert(!InSet); 1339 if (::isWeak(SymA)) 1340 return false; 1341 } 1342 return MCObjectWriter::isSymbolRefDifferenceFullyResolvedImpl(Asm, SymA, FB, 1343 InSet, IsPCRel); 1344 } 1345 1346 bool ELFObjectWriter::isWeak(const MCSymbol &S) const { 1347 const auto &Sym = cast<MCSymbolELF>(S); 1348 if (::isWeak(Sym)) 1349 return true; 1350 1351 // It is invalid to replace a reference to a global in a comdat 1352 // with a reference to a local since out of comdat references 1353 // to a local are forbidden. 1354 // We could try to return false for more cases, like the reference 1355 // being in the same comdat or Sym being an alias to another global, 1356 // but it is not clear if it is worth the effort. 1357 if (Sym.getBinding() != ELF::STB_GLOBAL) 1358 return false; 1359 1360 if (!Sym.isInSection()) 1361 return false; 1362 1363 const auto &Sec = cast<MCSectionELF>(Sym.getSection()); 1364 return Sec.getGroup(); 1365 } 1366 1367 MCObjectWriter *llvm::createELFObjectWriter(MCELFObjectTargetWriter *MOTW, 1368 raw_pwrite_stream &OS, 1369 bool IsLittleEndian) { 1370 return new ELFObjectWriter(MOTW, OS, IsLittleEndian); 1371 } 1372