1 //===- yaml2elf - Convert YAML to a ELF object file -----------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 /// 9 /// \file 10 /// The ELF component of yaml2obj. 11 /// 12 //===----------------------------------------------------------------------===// 13 14 #include "llvm/ADT/ArrayRef.h" 15 #include "llvm/ADT/DenseMap.h" 16 #include "llvm/ADT/SetVector.h" 17 #include "llvm/ADT/StringSet.h" 18 #include "llvm/BinaryFormat/ELF.h" 19 #include "llvm/MC/StringTableBuilder.h" 20 #include "llvm/Object/ELFObjectFile.h" 21 #include "llvm/ObjectYAML/DWARFEmitter.h" 22 #include "llvm/ObjectYAML/DWARFYAML.h" 23 #include "llvm/ObjectYAML/ELFYAML.h" 24 #include "llvm/ObjectYAML/yaml2obj.h" 25 #include "llvm/Support/EndianStream.h" 26 #include "llvm/Support/Errc.h" 27 #include "llvm/Support/Error.h" 28 #include "llvm/Support/LEB128.h" 29 #include "llvm/Support/MemoryBuffer.h" 30 #include "llvm/Support/WithColor.h" 31 #include "llvm/Support/YAMLTraits.h" 32 #include "llvm/Support/raw_ostream.h" 33 34 using namespace llvm; 35 36 // This class is used to build up a contiguous binary blob while keeping 37 // track of an offset in the output (which notionally begins at 38 // `InitialOffset`). 39 // The blob might be limited to an arbitrary size. All attempts to write data 40 // are ignored and the error condition is remembered once the limit is reached. 41 // Such an approach allows us to simplify the code by delaying error reporting 42 // and doing it at a convenient time. 43 namespace { 44 class ContiguousBlobAccumulator { 45 const uint64_t InitialOffset; 46 const uint64_t MaxSize; 47 48 SmallVector<char, 128> Buf; 49 raw_svector_ostream OS; 50 Error ReachedLimitErr = Error::success(); 51 52 bool checkLimit(uint64_t Size) { 53 if (!ReachedLimitErr && getOffset() + Size <= MaxSize) 54 return true; 55 if (!ReachedLimitErr) 56 ReachedLimitErr = createStringError(errc::invalid_argument, 57 "reached the output size limit"); 58 return false; 59 } 60 61 public: 62 ContiguousBlobAccumulator(uint64_t BaseOffset, uint64_t SizeLimit) 63 : InitialOffset(BaseOffset), MaxSize(SizeLimit), OS(Buf) {} 64 65 uint64_t tell() const { return OS.tell(); } 66 uint64_t getOffset() const { return InitialOffset + OS.tell(); } 67 void writeBlobToStream(raw_ostream &Out) const { Out << OS.str(); } 68 69 Error takeLimitError() { 70 // Request to write 0 bytes to check we did not reach the limit. 71 checkLimit(0); 72 return std::move(ReachedLimitErr); 73 } 74 75 /// \returns The new offset. 76 uint64_t padToAlignment(unsigned Align) { 77 uint64_t CurrentOffset = getOffset(); 78 if (ReachedLimitErr) 79 return CurrentOffset; 80 81 uint64_t AlignedOffset = alignTo(CurrentOffset, Align == 0 ? 1 : Align); 82 uint64_t PaddingSize = AlignedOffset - CurrentOffset; 83 if (!checkLimit(PaddingSize)) 84 return CurrentOffset; 85 86 writeZeros(PaddingSize); 87 return AlignedOffset; 88 } 89 90 raw_ostream *getRawOS(uint64_t Size) { 91 if (checkLimit(Size)) 92 return &OS; 93 return nullptr; 94 } 95 96 void writeAsBinary(const yaml::BinaryRef &Bin, uint64_t N = UINT64_MAX) { 97 if (!checkLimit(Bin.binary_size())) 98 return; 99 Bin.writeAsBinary(OS, N); 100 } 101 102 void writeZeros(uint64_t Num) { 103 if (checkLimit(Num)) 104 OS.write_zeros(Num); 105 } 106 107 void write(const char *Ptr, size_t Size) { 108 if (checkLimit(Size)) 109 OS.write(Ptr, Size); 110 } 111 112 void write(unsigned char C) { 113 if (checkLimit(1)) 114 OS.write(C); 115 } 116 117 unsigned writeULEB128(uint64_t Val) { 118 if (!checkLimit(sizeof(uint64_t))) 119 return 0; 120 return encodeULEB128(Val, OS); 121 } 122 123 template <typename T> void write(T Val, support::endianness E) { 124 if (checkLimit(sizeof(T))) 125 support::endian::write<T>(OS, Val, E); 126 } 127 }; 128 129 // Used to keep track of section and symbol names, so that in the YAML file 130 // sections and symbols can be referenced by name instead of by index. 131 class NameToIdxMap { 132 StringMap<unsigned> Map; 133 134 public: 135 /// \Returns false if name is already present in the map. 136 bool addName(StringRef Name, unsigned Ndx) { 137 return Map.insert({Name, Ndx}).second; 138 } 139 /// \Returns false if name is not present in the map. 140 bool lookup(StringRef Name, unsigned &Idx) const { 141 auto I = Map.find(Name); 142 if (I == Map.end()) 143 return false; 144 Idx = I->getValue(); 145 return true; 146 } 147 /// Asserts if name is not present in the map. 148 unsigned get(StringRef Name) const { 149 unsigned Idx; 150 if (lookup(Name, Idx)) 151 return Idx; 152 assert(false && "Expected section not found in index"); 153 return 0; 154 } 155 unsigned size() const { return Map.size(); } 156 }; 157 158 namespace { 159 struct Fragment { 160 uint64_t Offset; 161 uint64_t Size; 162 uint32_t Type; 163 uint64_t AddrAlign; 164 }; 165 } // namespace 166 167 /// "Single point of truth" for the ELF file construction. 168 /// TODO: This class still has a ways to go before it is truly a "single 169 /// point of truth". 170 template <class ELFT> class ELFState { 171 typedef typename ELFT::Ehdr Elf_Ehdr; 172 typedef typename ELFT::Phdr Elf_Phdr; 173 typedef typename ELFT::Shdr Elf_Shdr; 174 typedef typename ELFT::Sym Elf_Sym; 175 typedef typename ELFT::Rel Elf_Rel; 176 typedef typename ELFT::Rela Elf_Rela; 177 typedef typename ELFT::Relr Elf_Relr; 178 typedef typename ELFT::Dyn Elf_Dyn; 179 typedef typename ELFT::uint uintX_t; 180 181 enum class SymtabType { Static, Dynamic }; 182 183 /// The future ".strtab" section. 184 StringTableBuilder DotStrtab{StringTableBuilder::ELF}; 185 186 /// The future ".shstrtab" section. 187 StringTableBuilder DotShStrtab{StringTableBuilder::ELF}; 188 189 /// The future ".dynstr" section. 190 StringTableBuilder DotDynstr{StringTableBuilder::ELF}; 191 192 NameToIdxMap SN2I; 193 NameToIdxMap SymN2I; 194 NameToIdxMap DynSymN2I; 195 ELFYAML::Object &Doc; 196 197 StringSet<> ExcludedSectionHeaders; 198 199 uint64_t LocationCounter = 0; 200 bool HasError = false; 201 yaml::ErrorHandler ErrHandler; 202 void reportError(const Twine &Msg); 203 void reportError(Error Err); 204 205 std::vector<Elf_Sym> toELFSymbols(ArrayRef<ELFYAML::Symbol> Symbols, 206 const StringTableBuilder &Strtab); 207 unsigned toSectionIndex(StringRef S, StringRef LocSec, StringRef LocSym = ""); 208 unsigned toSymbolIndex(StringRef S, StringRef LocSec, bool IsDynamic); 209 210 void buildSectionIndex(); 211 void buildSymbolIndexes(); 212 void initProgramHeaders(std::vector<Elf_Phdr> &PHeaders); 213 bool initImplicitHeader(ContiguousBlobAccumulator &CBA, Elf_Shdr &Header, 214 StringRef SecName, ELFYAML::Section *YAMLSec); 215 void initSectionHeaders(std::vector<Elf_Shdr> &SHeaders, 216 ContiguousBlobAccumulator &CBA); 217 void initSymtabSectionHeader(Elf_Shdr &SHeader, SymtabType STType, 218 ContiguousBlobAccumulator &CBA, 219 ELFYAML::Section *YAMLSec); 220 void initStrtabSectionHeader(Elf_Shdr &SHeader, StringRef Name, 221 StringTableBuilder &STB, 222 ContiguousBlobAccumulator &CBA, 223 ELFYAML::Section *YAMLSec); 224 void initDWARFSectionHeader(Elf_Shdr &SHeader, StringRef Name, 225 ContiguousBlobAccumulator &CBA, 226 ELFYAML::Section *YAMLSec); 227 void setProgramHeaderLayout(std::vector<Elf_Phdr> &PHeaders, 228 std::vector<Elf_Shdr> &SHeaders); 229 230 std::vector<Fragment> 231 getPhdrFragments(const ELFYAML::ProgramHeader &Phdr, 232 ArrayRef<typename ELFT::Shdr> SHeaders); 233 234 void finalizeStrings(); 235 void writeELFHeader(raw_ostream &OS, uint64_t SHOff); 236 void writeSectionContent(Elf_Shdr &SHeader, 237 const ELFYAML::NoBitsSection &Section, 238 ContiguousBlobAccumulator &CBA); 239 void writeSectionContent(Elf_Shdr &SHeader, 240 const ELFYAML::RawContentSection &Section, 241 ContiguousBlobAccumulator &CBA); 242 void writeSectionContent(Elf_Shdr &SHeader, 243 const ELFYAML::RelocationSection &Section, 244 ContiguousBlobAccumulator &CBA); 245 void writeSectionContent(Elf_Shdr &SHeader, 246 const ELFYAML::RelrSection &Section, 247 ContiguousBlobAccumulator &CBA); 248 void writeSectionContent(Elf_Shdr &SHeader, const ELFYAML::Group &Group, 249 ContiguousBlobAccumulator &CBA); 250 void writeSectionContent(Elf_Shdr &SHeader, 251 const ELFYAML::SymtabShndxSection &Shndx, 252 ContiguousBlobAccumulator &CBA); 253 void writeSectionContent(Elf_Shdr &SHeader, 254 const ELFYAML::SymverSection &Section, 255 ContiguousBlobAccumulator &CBA); 256 void writeSectionContent(Elf_Shdr &SHeader, 257 const ELFYAML::VerneedSection &Section, 258 ContiguousBlobAccumulator &CBA); 259 void writeSectionContent(Elf_Shdr &SHeader, 260 const ELFYAML::VerdefSection &Section, 261 ContiguousBlobAccumulator &CBA); 262 void writeSectionContent(Elf_Shdr &SHeader, 263 const ELFYAML::MipsABIFlags &Section, 264 ContiguousBlobAccumulator &CBA); 265 void writeSectionContent(Elf_Shdr &SHeader, 266 const ELFYAML::DynamicSection &Section, 267 ContiguousBlobAccumulator &CBA); 268 void writeSectionContent(Elf_Shdr &SHeader, 269 const ELFYAML::StackSizesSection &Section, 270 ContiguousBlobAccumulator &CBA); 271 void writeSectionContent(Elf_Shdr &SHeader, 272 const ELFYAML::HashSection &Section, 273 ContiguousBlobAccumulator &CBA); 274 void writeSectionContent(Elf_Shdr &SHeader, 275 const ELFYAML::AddrsigSection &Section, 276 ContiguousBlobAccumulator &CBA); 277 void writeSectionContent(Elf_Shdr &SHeader, 278 const ELFYAML::NoteSection &Section, 279 ContiguousBlobAccumulator &CBA); 280 void writeSectionContent(Elf_Shdr &SHeader, 281 const ELFYAML::GnuHashSection &Section, 282 ContiguousBlobAccumulator &CBA); 283 void writeSectionContent(Elf_Shdr &SHeader, 284 const ELFYAML::LinkerOptionsSection &Section, 285 ContiguousBlobAccumulator &CBA); 286 void writeSectionContent(Elf_Shdr &SHeader, 287 const ELFYAML::DependentLibrariesSection &Section, 288 ContiguousBlobAccumulator &CBA); 289 void writeSectionContent(Elf_Shdr &SHeader, 290 const ELFYAML::CallGraphProfileSection &Section, 291 ContiguousBlobAccumulator &CBA); 292 293 void writeFill(ELFYAML::Fill &Fill, ContiguousBlobAccumulator &CBA); 294 295 ELFState(ELFYAML::Object &D, yaml::ErrorHandler EH); 296 297 void assignSectionAddress(Elf_Shdr &SHeader, ELFYAML::Section *YAMLSec); 298 299 DenseMap<StringRef, size_t> buildSectionHeaderReorderMap(); 300 301 BumpPtrAllocator StringAlloc; 302 uint64_t alignToOffset(ContiguousBlobAccumulator &CBA, uint64_t Align, 303 llvm::Optional<llvm::yaml::Hex64> Offset); 304 305 uint64_t getSectionNameOffset(StringRef Name); 306 307 public: 308 static bool writeELF(raw_ostream &OS, ELFYAML::Object &Doc, 309 yaml::ErrorHandler EH, uint64_t MaxSize); 310 }; 311 } // end anonymous namespace 312 313 template <class T> static size_t arrayDataSize(ArrayRef<T> A) { 314 return A.size() * sizeof(T); 315 } 316 317 template <class T> static void writeArrayData(raw_ostream &OS, ArrayRef<T> A) { 318 OS.write((const char *)A.data(), arrayDataSize(A)); 319 } 320 321 template <class T> static void zero(T &Obj) { memset(&Obj, 0, sizeof(Obj)); } 322 323 template <class ELFT> 324 ELFState<ELFT>::ELFState(ELFYAML::Object &D, yaml::ErrorHandler EH) 325 : Doc(D), ErrHandler(EH) { 326 std::vector<ELFYAML::Section *> Sections = Doc.getSections(); 327 // Insert SHT_NULL section implicitly when it is not defined in YAML. 328 if (Sections.empty() || Sections.front()->Type != ELF::SHT_NULL) 329 Doc.Chunks.insert( 330 Doc.Chunks.begin(), 331 std::make_unique<ELFYAML::Section>( 332 ELFYAML::Chunk::ChunkKind::RawContent, /*IsImplicit=*/true)); 333 334 // We add a technical suffix for each unnamed section/fill. It does not affect 335 // the output, but allows us to map them by name in the code and report better 336 // error messages. 337 StringSet<> DocSections; 338 for (size_t I = 0; I < Doc.Chunks.size(); ++I) { 339 const std::unique_ptr<ELFYAML::Chunk> &C = Doc.Chunks[I]; 340 if (C->Name.empty()) { 341 std::string NewName = ELFYAML::appendUniqueSuffix( 342 /*Name=*/"", "index " + Twine(I)); 343 C->Name = StringRef(NewName).copy(StringAlloc); 344 assert(ELFYAML::dropUniqueSuffix(C->Name).empty()); 345 } 346 347 if (!DocSections.insert(C->Name).second) 348 reportError("repeated section/fill name: '" + C->Name + 349 "' at YAML section/fill number " + Twine(I)); 350 } 351 352 std::vector<StringRef> ImplicitSections; 353 if (Doc.DynamicSymbols) 354 ImplicitSections.insert(ImplicitSections.end(), {".dynsym", ".dynstr"}); 355 if (Doc.Symbols) 356 ImplicitSections.push_back(".symtab"); 357 if (Doc.DWARF) 358 for (StringRef DebugSecName : Doc.DWARF->getUsedSectionNames()) { 359 std::string SecName = ("." + DebugSecName).str(); 360 ImplicitSections.push_back(StringRef(SecName).copy(StringAlloc)); 361 } 362 ImplicitSections.insert(ImplicitSections.end(), {".strtab", ".shstrtab"}); 363 364 // Insert placeholders for implicit sections that are not 365 // defined explicitly in YAML. 366 for (StringRef SecName : ImplicitSections) { 367 if (DocSections.count(SecName)) 368 continue; 369 370 std::unique_ptr<ELFYAML::Chunk> Sec = std::make_unique<ELFYAML::Section>( 371 ELFYAML::Chunk::ChunkKind::RawContent, true /*IsImplicit*/); 372 Sec->Name = SecName; 373 Doc.Chunks.push_back(std::move(Sec)); 374 } 375 } 376 377 template <class ELFT> 378 void ELFState<ELFT>::writeELFHeader(raw_ostream &OS, uint64_t SHOff) { 379 using namespace llvm::ELF; 380 381 Elf_Ehdr Header; 382 zero(Header); 383 Header.e_ident[EI_MAG0] = 0x7f; 384 Header.e_ident[EI_MAG1] = 'E'; 385 Header.e_ident[EI_MAG2] = 'L'; 386 Header.e_ident[EI_MAG3] = 'F'; 387 Header.e_ident[EI_CLASS] = ELFT::Is64Bits ? ELFCLASS64 : ELFCLASS32; 388 Header.e_ident[EI_DATA] = Doc.Header.Data; 389 Header.e_ident[EI_VERSION] = EV_CURRENT; 390 Header.e_ident[EI_OSABI] = Doc.Header.OSABI; 391 Header.e_ident[EI_ABIVERSION] = Doc.Header.ABIVersion; 392 Header.e_type = Doc.Header.Type; 393 Header.e_machine = Doc.Header.Machine; 394 Header.e_version = EV_CURRENT; 395 Header.e_entry = Doc.Header.Entry; 396 Header.e_phoff = Doc.ProgramHeaders.size() ? sizeof(Header) : 0; 397 Header.e_flags = Doc.Header.Flags; 398 Header.e_ehsize = sizeof(Elf_Ehdr); 399 Header.e_phentsize = Doc.ProgramHeaders.size() ? sizeof(Elf_Phdr) : 0; 400 Header.e_phnum = Doc.ProgramHeaders.size(); 401 402 Header.e_shentsize = 403 Doc.Header.SHEntSize ? (uint16_t)*Doc.Header.SHEntSize : sizeof(Elf_Shdr); 404 405 const bool NoShdrs = Doc.SectionHeaders && Doc.SectionHeaders->NoHeaders; 406 407 if (Doc.Header.SHOff) 408 Header.e_shoff = *Doc.Header.SHOff; 409 else if (NoShdrs) 410 Header.e_shoff = 0; 411 else 412 Header.e_shoff = SHOff; 413 414 if (Doc.Header.SHNum) 415 Header.e_shnum = *Doc.Header.SHNum; 416 else if (!Doc.SectionHeaders) 417 Header.e_shnum = Doc.getSections().size(); 418 else if (NoShdrs) 419 Header.e_shnum = 0; 420 else 421 Header.e_shnum = 422 (Doc.SectionHeaders->Sections ? Doc.SectionHeaders->Sections->size() 423 : 0) + 424 /*Null section*/ 1; 425 426 if (Doc.Header.SHStrNdx) 427 Header.e_shstrndx = *Doc.Header.SHStrNdx; 428 else if (NoShdrs || ExcludedSectionHeaders.count(".shstrtab")) 429 Header.e_shstrndx = 0; 430 else 431 Header.e_shstrndx = SN2I.get(".shstrtab"); 432 433 OS.write((const char *)&Header, sizeof(Header)); 434 } 435 436 template <class ELFT> 437 void ELFState<ELFT>::initProgramHeaders(std::vector<Elf_Phdr> &PHeaders) { 438 DenseMap<StringRef, ELFYAML::Fill *> NameToFill; 439 for (const std::unique_ptr<ELFYAML::Chunk> &D : Doc.Chunks) 440 if (auto S = dyn_cast<ELFYAML::Fill>(D.get())) 441 NameToFill[S->Name] = S; 442 443 std::vector<ELFYAML::Section *> Sections = Doc.getSections(); 444 for (ELFYAML::ProgramHeader &YamlPhdr : Doc.ProgramHeaders) { 445 Elf_Phdr Phdr; 446 zero(Phdr); 447 Phdr.p_type = YamlPhdr.Type; 448 Phdr.p_flags = YamlPhdr.Flags; 449 Phdr.p_vaddr = YamlPhdr.VAddr; 450 Phdr.p_paddr = YamlPhdr.PAddr; 451 PHeaders.push_back(Phdr); 452 453 // Map Sections list to corresponding chunks. 454 for (const ELFYAML::SectionName &SecName : YamlPhdr.Sections) { 455 if (ELFYAML::Fill *Fill = NameToFill.lookup(SecName.Section)) { 456 YamlPhdr.Chunks.push_back(Fill); 457 continue; 458 } 459 460 unsigned Index; 461 if (SN2I.lookup(SecName.Section, Index)) { 462 YamlPhdr.Chunks.push_back(Sections[Index]); 463 continue; 464 } 465 466 reportError("unknown section or fill referenced: '" + SecName.Section + 467 "' by program header"); 468 } 469 } 470 } 471 472 template <class ELFT> 473 unsigned ELFState<ELFT>::toSectionIndex(StringRef S, StringRef LocSec, 474 StringRef LocSym) { 475 assert(LocSec.empty() || LocSym.empty()); 476 477 unsigned Index; 478 if (!SN2I.lookup(S, Index) && !to_integer(S, Index)) { 479 if (!LocSym.empty()) 480 reportError("unknown section referenced: '" + S + "' by YAML symbol '" + 481 LocSym + "'"); 482 else 483 reportError("unknown section referenced: '" + S + "' by YAML section '" + 484 LocSec + "'"); 485 return 0; 486 } 487 488 if (!Doc.SectionHeaders || 489 (!Doc.SectionHeaders->NoHeaders && !Doc.SectionHeaders->Excluded)) 490 return Index; 491 492 assert(!Doc.SectionHeaders->NoHeaders || !Doc.SectionHeaders->Sections); 493 size_t FirstExcluded = 494 Doc.SectionHeaders->Sections ? Doc.SectionHeaders->Sections->size() : 0; 495 if (Index >= FirstExcluded) { 496 if (LocSym.empty()) 497 reportError("unable to link '" + LocSec + "' to excluded section '" + S + 498 "'"); 499 else 500 reportError("excluded section referenced: '" + S + "' by symbol '" + 501 LocSym + "'"); 502 } 503 return Index; 504 } 505 506 template <class ELFT> 507 unsigned ELFState<ELFT>::toSymbolIndex(StringRef S, StringRef LocSec, 508 bool IsDynamic) { 509 const NameToIdxMap &SymMap = IsDynamic ? DynSymN2I : SymN2I; 510 unsigned Index; 511 // Here we try to look up S in the symbol table. If it is not there, 512 // treat its value as a symbol index. 513 if (!SymMap.lookup(S, Index) && !to_integer(S, Index)) { 514 reportError("unknown symbol referenced: '" + S + "' by YAML section '" + 515 LocSec + "'"); 516 return 0; 517 } 518 return Index; 519 } 520 521 template <class ELFT> 522 static void overrideFields(ELFYAML::Section *From, typename ELFT::Shdr &To) { 523 if (!From) 524 return; 525 if (From->ShFlags) 526 To.sh_flags = *From->ShFlags; 527 if (From->ShName) 528 To.sh_name = *From->ShName; 529 if (From->ShOffset) 530 To.sh_offset = *From->ShOffset; 531 if (From->ShSize) 532 To.sh_size = *From->ShSize; 533 } 534 535 template <class ELFT> 536 bool ELFState<ELFT>::initImplicitHeader(ContiguousBlobAccumulator &CBA, 537 Elf_Shdr &Header, StringRef SecName, 538 ELFYAML::Section *YAMLSec) { 539 // Check if the header was already initialized. 540 if (Header.sh_offset) 541 return false; 542 543 if (SecName == ".symtab") 544 initSymtabSectionHeader(Header, SymtabType::Static, CBA, YAMLSec); 545 else if (SecName == ".strtab") 546 initStrtabSectionHeader(Header, SecName, DotStrtab, CBA, YAMLSec); 547 else if (SecName == ".shstrtab") 548 initStrtabSectionHeader(Header, SecName, DotShStrtab, CBA, YAMLSec); 549 else if (SecName == ".dynsym") 550 initSymtabSectionHeader(Header, SymtabType::Dynamic, CBA, YAMLSec); 551 else if (SecName == ".dynstr") 552 initStrtabSectionHeader(Header, SecName, DotDynstr, CBA, YAMLSec); 553 else if (SecName.startswith(".debug_")) { 554 // If a ".debug_*" section's type is a preserved one, e.g., SHT_DYNAMIC, we 555 // will not treat it as a debug section. 556 if (YAMLSec && !isa<ELFYAML::RawContentSection>(YAMLSec)) 557 return false; 558 initDWARFSectionHeader(Header, SecName, CBA, YAMLSec); 559 } else 560 return false; 561 562 LocationCounter += Header.sh_size; 563 564 // Override section fields if requested. 565 overrideFields<ELFT>(YAMLSec, Header); 566 return true; 567 } 568 569 constexpr char SuffixStart = '('; 570 constexpr char SuffixEnd = ')'; 571 572 std::string llvm::ELFYAML::appendUniqueSuffix(StringRef Name, 573 const Twine &Msg) { 574 // Do not add a space when a Name is empty. 575 std::string Ret = Name.empty() ? "" : Name.str() + ' '; 576 return Ret + (Twine(SuffixStart) + Msg + Twine(SuffixEnd)).str(); 577 } 578 579 StringRef llvm::ELFYAML::dropUniqueSuffix(StringRef S) { 580 if (S.empty() || S.back() != SuffixEnd) 581 return S; 582 583 // A special case for empty names. See appendUniqueSuffix() above. 584 size_t SuffixPos = S.rfind(SuffixStart); 585 if (SuffixPos == 0) 586 return ""; 587 588 if (SuffixPos == StringRef::npos || S[SuffixPos - 1] != ' ') 589 return S; 590 return S.substr(0, SuffixPos - 1); 591 } 592 593 template <class ELFT> 594 uint64_t ELFState<ELFT>::getSectionNameOffset(StringRef Name) { 595 // If a section is excluded from section headers, we do not save its name in 596 // the string table. 597 if (ExcludedSectionHeaders.count(Name)) 598 return 0; 599 return DotShStrtab.getOffset(Name); 600 } 601 602 template <class ELFT> 603 void ELFState<ELFT>::initSectionHeaders(std::vector<Elf_Shdr> &SHeaders, 604 ContiguousBlobAccumulator &CBA) { 605 // Ensure SHN_UNDEF entry is present. An all-zero section header is a 606 // valid SHN_UNDEF entry since SHT_NULL == 0. 607 SHeaders.resize(Doc.getSections().size()); 608 609 for (const std::unique_ptr<ELFYAML::Chunk> &D : Doc.Chunks) { 610 if (ELFYAML::Fill *S = dyn_cast<ELFYAML::Fill>(D.get())) { 611 S->Offset = alignToOffset(CBA, /*Align=*/1, S->Offset); 612 writeFill(*S, CBA); 613 LocationCounter += S->Size; 614 continue; 615 } 616 617 ELFYAML::Section *Sec = cast<ELFYAML::Section>(D.get()); 618 bool IsFirstUndefSection = D == Doc.Chunks.front(); 619 if (IsFirstUndefSection && Sec->IsImplicit) 620 continue; 621 622 // We have a few sections like string or symbol tables that are usually 623 // added implicitly to the end. However, if they are explicitly specified 624 // in the YAML, we need to write them here. This ensures the file offset 625 // remains correct. 626 Elf_Shdr &SHeader = SHeaders[SN2I.get(Sec->Name)]; 627 if (initImplicitHeader(CBA, SHeader, Sec->Name, 628 Sec->IsImplicit ? nullptr : Sec)) 629 continue; 630 631 assert(Sec && "It can't be null unless it is an implicit section. But all " 632 "implicit sections should already have been handled above."); 633 634 SHeader.sh_name = 635 getSectionNameOffset(ELFYAML::dropUniqueSuffix(Sec->Name)); 636 SHeader.sh_type = Sec->Type; 637 if (Sec->Flags) 638 SHeader.sh_flags = *Sec->Flags; 639 SHeader.sh_addralign = Sec->AddressAlign; 640 641 // Set the offset for all sections, except the SHN_UNDEF section with index 642 // 0 when not explicitly requested. 643 if (!IsFirstUndefSection || Sec->Offset) 644 SHeader.sh_offset = alignToOffset(CBA, SHeader.sh_addralign, Sec->Offset); 645 646 assignSectionAddress(SHeader, Sec); 647 648 if (!Sec->Link.empty()) 649 SHeader.sh_link = toSectionIndex(Sec->Link, Sec->Name); 650 651 if (IsFirstUndefSection) { 652 if (auto RawSec = dyn_cast<ELFYAML::RawContentSection>(Sec)) { 653 // We do not write any content for special SHN_UNDEF section. 654 if (RawSec->Size) 655 SHeader.sh_size = *RawSec->Size; 656 if (RawSec->Info) 657 SHeader.sh_info = *RawSec->Info; 658 } 659 if (Sec->EntSize) 660 SHeader.sh_entsize = *Sec->EntSize; 661 } else if (auto S = dyn_cast<ELFYAML::RawContentSection>(Sec)) { 662 writeSectionContent(SHeader, *S, CBA); 663 } else if (auto S = dyn_cast<ELFYAML::SymtabShndxSection>(Sec)) { 664 writeSectionContent(SHeader, *S, CBA); 665 } else if (auto S = dyn_cast<ELFYAML::RelocationSection>(Sec)) { 666 writeSectionContent(SHeader, *S, CBA); 667 } else if (auto S = dyn_cast<ELFYAML::RelrSection>(Sec)) { 668 writeSectionContent(SHeader, *S, CBA); 669 } else if (auto S = dyn_cast<ELFYAML::Group>(Sec)) { 670 writeSectionContent(SHeader, *S, CBA); 671 } else if (auto S = dyn_cast<ELFYAML::MipsABIFlags>(Sec)) { 672 writeSectionContent(SHeader, *S, CBA); 673 } else if (auto S = dyn_cast<ELFYAML::NoBitsSection>(Sec)) { 674 writeSectionContent(SHeader, *S, CBA); 675 } else if (auto S = dyn_cast<ELFYAML::DynamicSection>(Sec)) { 676 writeSectionContent(SHeader, *S, CBA); 677 } else if (auto S = dyn_cast<ELFYAML::SymverSection>(Sec)) { 678 writeSectionContent(SHeader, *S, CBA); 679 } else if (auto S = dyn_cast<ELFYAML::VerneedSection>(Sec)) { 680 writeSectionContent(SHeader, *S, CBA); 681 } else if (auto S = dyn_cast<ELFYAML::VerdefSection>(Sec)) { 682 writeSectionContent(SHeader, *S, CBA); 683 } else if (auto S = dyn_cast<ELFYAML::StackSizesSection>(Sec)) { 684 writeSectionContent(SHeader, *S, CBA); 685 } else if (auto S = dyn_cast<ELFYAML::HashSection>(Sec)) { 686 writeSectionContent(SHeader, *S, CBA); 687 } else if (auto S = dyn_cast<ELFYAML::AddrsigSection>(Sec)) { 688 writeSectionContent(SHeader, *S, CBA); 689 } else if (auto S = dyn_cast<ELFYAML::LinkerOptionsSection>(Sec)) { 690 writeSectionContent(SHeader, *S, CBA); 691 } else if (auto S = dyn_cast<ELFYAML::NoteSection>(Sec)) { 692 writeSectionContent(SHeader, *S, CBA); 693 } else if (auto S = dyn_cast<ELFYAML::GnuHashSection>(Sec)) { 694 writeSectionContent(SHeader, *S, CBA); 695 } else if (auto S = dyn_cast<ELFYAML::DependentLibrariesSection>(Sec)) { 696 writeSectionContent(SHeader, *S, CBA); 697 } else if (auto S = dyn_cast<ELFYAML::CallGraphProfileSection>(Sec)) { 698 writeSectionContent(SHeader, *S, CBA); 699 } else { 700 llvm_unreachable("Unknown section type"); 701 } 702 703 LocationCounter += SHeader.sh_size; 704 705 // Override section fields if requested. 706 overrideFields<ELFT>(Sec, SHeader); 707 } 708 } 709 710 template <class ELFT> 711 void ELFState<ELFT>::assignSectionAddress(Elf_Shdr &SHeader, 712 ELFYAML::Section *YAMLSec) { 713 if (YAMLSec && YAMLSec->Address) { 714 SHeader.sh_addr = *YAMLSec->Address; 715 LocationCounter = *YAMLSec->Address; 716 return; 717 } 718 719 // sh_addr represents the address in the memory image of a process. Sections 720 // in a relocatable object file or non-allocatable sections do not need 721 // sh_addr assignment. 722 if (Doc.Header.Type.value == ELF::ET_REL || 723 !(SHeader.sh_flags & ELF::SHF_ALLOC)) 724 return; 725 726 LocationCounter = 727 alignTo(LocationCounter, SHeader.sh_addralign ? SHeader.sh_addralign : 1); 728 SHeader.sh_addr = LocationCounter; 729 } 730 731 static size_t findFirstNonGlobal(ArrayRef<ELFYAML::Symbol> Symbols) { 732 for (size_t I = 0; I < Symbols.size(); ++I) 733 if (Symbols[I].Binding.value != ELF::STB_LOCAL) 734 return I; 735 return Symbols.size(); 736 } 737 738 static uint64_t writeContent(ContiguousBlobAccumulator &CBA, 739 const Optional<yaml::BinaryRef> &Content, 740 const Optional<llvm::yaml::Hex64> &Size) { 741 size_t ContentSize = 0; 742 if (Content) { 743 CBA.writeAsBinary(*Content); 744 ContentSize = Content->binary_size(); 745 } 746 747 if (!Size) 748 return ContentSize; 749 750 CBA.writeZeros(*Size - ContentSize); 751 return *Size; 752 } 753 754 template <class ELFT> 755 std::vector<typename ELFT::Sym> 756 ELFState<ELFT>::toELFSymbols(ArrayRef<ELFYAML::Symbol> Symbols, 757 const StringTableBuilder &Strtab) { 758 std::vector<Elf_Sym> Ret; 759 Ret.resize(Symbols.size() + 1); 760 761 size_t I = 0; 762 for (const ELFYAML::Symbol &Sym : Symbols) { 763 Elf_Sym &Symbol = Ret[++I]; 764 765 // If NameIndex, which contains the name offset, is explicitly specified, we 766 // use it. This is useful for preparing broken objects. Otherwise, we add 767 // the specified Name to the string table builder to get its offset. 768 if (Sym.StName) 769 Symbol.st_name = *Sym.StName; 770 else if (!Sym.Name.empty()) 771 Symbol.st_name = Strtab.getOffset(ELFYAML::dropUniqueSuffix(Sym.Name)); 772 773 Symbol.setBindingAndType(Sym.Binding, Sym.Type); 774 if (!Sym.Section.empty()) 775 Symbol.st_shndx = toSectionIndex(Sym.Section, "", Sym.Name); 776 else if (Sym.Index) 777 Symbol.st_shndx = *Sym.Index; 778 779 Symbol.st_value = Sym.Value; 780 Symbol.st_other = Sym.Other ? *Sym.Other : 0; 781 Symbol.st_size = Sym.Size; 782 } 783 784 return Ret; 785 } 786 787 template <class ELFT> 788 void ELFState<ELFT>::initSymtabSectionHeader(Elf_Shdr &SHeader, 789 SymtabType STType, 790 ContiguousBlobAccumulator &CBA, 791 ELFYAML::Section *YAMLSec) { 792 793 bool IsStatic = STType == SymtabType::Static; 794 ArrayRef<ELFYAML::Symbol> Symbols; 795 if (IsStatic && Doc.Symbols) 796 Symbols = *Doc.Symbols; 797 else if (!IsStatic && Doc.DynamicSymbols) 798 Symbols = *Doc.DynamicSymbols; 799 800 ELFYAML::RawContentSection *RawSec = 801 dyn_cast_or_null<ELFYAML::RawContentSection>(YAMLSec); 802 if (RawSec && (RawSec->Content || RawSec->Size)) { 803 bool HasSymbolsDescription = 804 (IsStatic && Doc.Symbols) || (!IsStatic && Doc.DynamicSymbols); 805 if (HasSymbolsDescription) { 806 StringRef Property = (IsStatic ? "`Symbols`" : "`DynamicSymbols`"); 807 if (RawSec->Content) 808 reportError("cannot specify both `Content` and " + Property + 809 " for symbol table section '" + RawSec->Name + "'"); 810 if (RawSec->Size) 811 reportError("cannot specify both `Size` and " + Property + 812 " for symbol table section '" + RawSec->Name + "'"); 813 return; 814 } 815 } 816 817 zero(SHeader); 818 SHeader.sh_name = getSectionNameOffset(IsStatic ? ".symtab" : ".dynsym"); 819 820 if (YAMLSec) 821 SHeader.sh_type = YAMLSec->Type; 822 else 823 SHeader.sh_type = IsStatic ? ELF::SHT_SYMTAB : ELF::SHT_DYNSYM; 824 825 if (RawSec && !RawSec->Link.empty()) { 826 // If the Link field is explicitly defined in the document, 827 // we should use it. 828 SHeader.sh_link = toSectionIndex(RawSec->Link, RawSec->Name); 829 } else { 830 // When we describe the .dynsym section in the document explicitly, it is 831 // allowed to omit the "DynamicSymbols" tag. In this case .dynstr is not 832 // added implicitly and we should be able to leave the Link zeroed if 833 // .dynstr is not defined. 834 unsigned Link = 0; 835 if (IsStatic) { 836 if (!ExcludedSectionHeaders.count(".strtab")) 837 Link = SN2I.get(".strtab"); 838 } else { 839 if (!ExcludedSectionHeaders.count(".dynstr")) 840 SN2I.lookup(".dynstr", Link); 841 } 842 SHeader.sh_link = Link; 843 } 844 845 if (YAMLSec && YAMLSec->Flags) 846 SHeader.sh_flags = *YAMLSec->Flags; 847 else if (!IsStatic) 848 SHeader.sh_flags = ELF::SHF_ALLOC; 849 850 // If the symbol table section is explicitly described in the YAML 851 // then we should set the fields requested. 852 SHeader.sh_info = (RawSec && RawSec->Info) ? (unsigned)(*RawSec->Info) 853 : findFirstNonGlobal(Symbols) + 1; 854 SHeader.sh_entsize = (YAMLSec && YAMLSec->EntSize) 855 ? (uint64_t)(*YAMLSec->EntSize) 856 : sizeof(Elf_Sym); 857 SHeader.sh_addralign = YAMLSec ? (uint64_t)YAMLSec->AddressAlign : 8; 858 859 assignSectionAddress(SHeader, YAMLSec); 860 861 SHeader.sh_offset = alignToOffset(CBA, SHeader.sh_addralign, /*Offset=*/None); 862 863 if (RawSec && (RawSec->Content || RawSec->Size)) { 864 assert(Symbols.empty()); 865 SHeader.sh_size = writeContent(CBA, RawSec->Content, RawSec->Size); 866 return; 867 } 868 869 std::vector<Elf_Sym> Syms = 870 toELFSymbols(Symbols, IsStatic ? DotStrtab : DotDynstr); 871 SHeader.sh_size = Syms.size() * sizeof(Elf_Sym); 872 CBA.write((const char *)Syms.data(), SHeader.sh_size); 873 } 874 875 template <class ELFT> 876 void ELFState<ELFT>::initStrtabSectionHeader(Elf_Shdr &SHeader, StringRef Name, 877 StringTableBuilder &STB, 878 ContiguousBlobAccumulator &CBA, 879 ELFYAML::Section *YAMLSec) { 880 zero(SHeader); 881 SHeader.sh_name = getSectionNameOffset(Name); 882 SHeader.sh_type = YAMLSec ? YAMLSec->Type : ELF::SHT_STRTAB; 883 SHeader.sh_addralign = YAMLSec ? (uint64_t)YAMLSec->AddressAlign : 1; 884 885 ELFYAML::RawContentSection *RawSec = 886 dyn_cast_or_null<ELFYAML::RawContentSection>(YAMLSec); 887 888 SHeader.sh_offset = alignToOffset(CBA, SHeader.sh_addralign, /*Offset=*/None); 889 890 if (RawSec && (RawSec->Content || RawSec->Size)) { 891 SHeader.sh_size = writeContent(CBA, RawSec->Content, RawSec->Size); 892 } else { 893 if (raw_ostream *OS = CBA.getRawOS(STB.getSize())) 894 STB.write(*OS); 895 SHeader.sh_size = STB.getSize(); 896 } 897 898 if (YAMLSec && YAMLSec->EntSize) 899 SHeader.sh_entsize = *YAMLSec->EntSize; 900 901 if (RawSec && RawSec->Info) 902 SHeader.sh_info = *RawSec->Info; 903 904 if (YAMLSec && YAMLSec->Flags) 905 SHeader.sh_flags = *YAMLSec->Flags; 906 else if (Name == ".dynstr") 907 SHeader.sh_flags = ELF::SHF_ALLOC; 908 909 assignSectionAddress(SHeader, YAMLSec); 910 } 911 912 static bool shouldEmitDWARF(DWARFYAML::Data &DWARF, StringRef Name) { 913 SetVector<StringRef> DebugSecNames = DWARF.getUsedSectionNames(); 914 return Name.consume_front(".") && DebugSecNames.count(Name); 915 } 916 917 template <class ELFT> 918 Expected<uint64_t> emitDWARF(typename ELFT::Shdr &SHeader, StringRef Name, 919 const DWARFYAML::Data &DWARF, 920 ContiguousBlobAccumulator &CBA) { 921 // We are unable to predict the size of debug data, so we request to write 0 922 // bytes. This should always return us an output stream unless CBA is already 923 // in an error state. 924 raw_ostream *OS = CBA.getRawOS(0); 925 if (!OS) 926 return 0; 927 928 uint64_t BeginOffset = CBA.tell(); 929 Error Err = Error::success(); 930 cantFail(std::move(Err)); 931 932 if (Name == ".debug_str") 933 Err = DWARFYAML::emitDebugStr(*OS, DWARF); 934 else if (Name == ".debug_aranges") 935 Err = DWARFYAML::emitDebugAranges(*OS, DWARF); 936 else if (Name == ".debug_ranges") 937 Err = DWARFYAML::emitDebugRanges(*OS, DWARF); 938 else if (Name == ".debug_line") 939 Err = DWARFYAML::emitDebugLine(*OS, DWARF); 940 else if (Name == ".debug_addr") 941 Err = DWARFYAML::emitDebugAddr(*OS, DWARF); 942 else if (Name == ".debug_abbrev") 943 Err = DWARFYAML::emitDebugAbbrev(*OS, DWARF); 944 else if (Name == ".debug_info") 945 Err = DWARFYAML::emitDebugInfo(*OS, DWARF); 946 else 947 llvm_unreachable("unexpected emitDWARF() call"); 948 949 if (Err) 950 return std::move(Err); 951 952 return CBA.tell() - BeginOffset; 953 } 954 955 template <class ELFT> 956 void ELFState<ELFT>::initDWARFSectionHeader(Elf_Shdr &SHeader, StringRef Name, 957 ContiguousBlobAccumulator &CBA, 958 ELFYAML::Section *YAMLSec) { 959 zero(SHeader); 960 SHeader.sh_name = getSectionNameOffset(ELFYAML::dropUniqueSuffix(Name)); 961 SHeader.sh_type = YAMLSec ? YAMLSec->Type : ELF::SHT_PROGBITS; 962 SHeader.sh_addralign = YAMLSec ? (uint64_t)YAMLSec->AddressAlign : 1; 963 SHeader.sh_offset = alignToOffset(CBA, SHeader.sh_addralign, 964 YAMLSec ? YAMLSec->Offset : None); 965 966 ELFYAML::RawContentSection *RawSec = 967 dyn_cast_or_null<ELFYAML::RawContentSection>(YAMLSec); 968 if (Doc.DWARF && shouldEmitDWARF(*Doc.DWARF, Name)) { 969 if (RawSec && (RawSec->Content || RawSec->Size)) 970 reportError("cannot specify section '" + Name + 971 "' contents in the 'DWARF' entry and the 'Content' " 972 "or 'Size' in the 'Sections' entry at the same time"); 973 else { 974 if (Expected<uint64_t> ShSizeOrErr = 975 emitDWARF<ELFT>(SHeader, Name, *Doc.DWARF, CBA)) 976 SHeader.sh_size = *ShSizeOrErr; 977 else 978 reportError(ShSizeOrErr.takeError()); 979 } 980 } else if (RawSec) 981 SHeader.sh_size = writeContent(CBA, RawSec->Content, RawSec->Size); 982 else 983 llvm_unreachable("debug sections can only be initialized via the 'DWARF' " 984 "entry or a RawContentSection"); 985 986 if (YAMLSec && YAMLSec->EntSize) 987 SHeader.sh_entsize = *YAMLSec->EntSize; 988 else if (Name == ".debug_str") 989 SHeader.sh_entsize = 1; 990 991 if (RawSec && RawSec->Info) 992 SHeader.sh_info = *RawSec->Info; 993 994 if (YAMLSec && YAMLSec->Flags) 995 SHeader.sh_flags = *YAMLSec->Flags; 996 else if (Name == ".debug_str") 997 SHeader.sh_flags = ELF::SHF_MERGE | ELF::SHF_STRINGS; 998 999 if (YAMLSec && !YAMLSec->Link.empty()) 1000 SHeader.sh_link = toSectionIndex(YAMLSec->Link, Name); 1001 1002 assignSectionAddress(SHeader, YAMLSec); 1003 } 1004 1005 template <class ELFT> void ELFState<ELFT>::reportError(const Twine &Msg) { 1006 ErrHandler(Msg); 1007 HasError = true; 1008 } 1009 1010 template <class ELFT> void ELFState<ELFT>::reportError(Error Err) { 1011 handleAllErrors(std::move(Err), [&](const ErrorInfoBase &Err) { 1012 reportError(Err.message()); 1013 }); 1014 } 1015 1016 template <class ELFT> 1017 std::vector<Fragment> 1018 ELFState<ELFT>::getPhdrFragments(const ELFYAML::ProgramHeader &Phdr, 1019 ArrayRef<Elf_Shdr> SHeaders) { 1020 std::vector<Fragment> Ret; 1021 for (const ELFYAML::Chunk *C : Phdr.Chunks) { 1022 if (const ELFYAML::Fill *F = dyn_cast<ELFYAML::Fill>(C)) { 1023 Ret.push_back({*F->Offset, F->Size, llvm::ELF::SHT_PROGBITS, 1024 /*ShAddrAlign=*/1}); 1025 continue; 1026 } 1027 1028 const ELFYAML::Section *S = cast<ELFYAML::Section>(C); 1029 const Elf_Shdr &H = SHeaders[SN2I.get(S->Name)]; 1030 Ret.push_back({H.sh_offset, H.sh_size, H.sh_type, H.sh_addralign}); 1031 } 1032 return Ret; 1033 } 1034 1035 template <class ELFT> 1036 void ELFState<ELFT>::setProgramHeaderLayout(std::vector<Elf_Phdr> &PHeaders, 1037 std::vector<Elf_Shdr> &SHeaders) { 1038 uint32_t PhdrIdx = 0; 1039 for (auto &YamlPhdr : Doc.ProgramHeaders) { 1040 Elf_Phdr &PHeader = PHeaders[PhdrIdx++]; 1041 std::vector<Fragment> Fragments = getPhdrFragments(YamlPhdr, SHeaders); 1042 if (!llvm::is_sorted(Fragments, [](const Fragment &A, const Fragment &B) { 1043 return A.Offset < B.Offset; 1044 })) 1045 reportError("sections in the program header with index " + 1046 Twine(PhdrIdx) + " are not sorted by their file offset"); 1047 1048 if (YamlPhdr.Offset) { 1049 if (!Fragments.empty() && *YamlPhdr.Offset > Fragments.front().Offset) 1050 reportError("'Offset' for segment with index " + Twine(PhdrIdx) + 1051 " must be less than or equal to the minimum file offset of " 1052 "all included sections (0x" + 1053 Twine::utohexstr(Fragments.front().Offset) + ")"); 1054 PHeader.p_offset = *YamlPhdr.Offset; 1055 } else if (!Fragments.empty()) { 1056 PHeader.p_offset = Fragments.front().Offset; 1057 } 1058 1059 // Set the file size if not set explicitly. 1060 if (YamlPhdr.FileSize) { 1061 PHeader.p_filesz = *YamlPhdr.FileSize; 1062 } else if (!Fragments.empty()) { 1063 uint64_t FileSize = Fragments.back().Offset - PHeader.p_offset; 1064 // SHT_NOBITS sections occupy no physical space in a file, we should not 1065 // take their sizes into account when calculating the file size of a 1066 // segment. 1067 if (Fragments.back().Type != llvm::ELF::SHT_NOBITS) 1068 FileSize += Fragments.back().Size; 1069 PHeader.p_filesz = FileSize; 1070 } 1071 1072 // Find the maximum offset of the end of a section in order to set p_memsz. 1073 uint64_t MemOffset = PHeader.p_offset; 1074 for (const Fragment &F : Fragments) 1075 MemOffset = std::max(MemOffset, F.Offset + F.Size); 1076 // Set the memory size if not set explicitly. 1077 PHeader.p_memsz = YamlPhdr.MemSize ? uint64_t(*YamlPhdr.MemSize) 1078 : MemOffset - PHeader.p_offset; 1079 1080 if (YamlPhdr.Align) { 1081 PHeader.p_align = *YamlPhdr.Align; 1082 } else { 1083 // Set the alignment of the segment to be the maximum alignment of the 1084 // sections so that by default the segment has a valid and sensible 1085 // alignment. 1086 PHeader.p_align = 1; 1087 for (const Fragment &F : Fragments) 1088 PHeader.p_align = std::max((uint64_t)PHeader.p_align, F.AddrAlign); 1089 } 1090 } 1091 } 1092 1093 static bool shouldAllocateFileSpace(ArrayRef<ELFYAML::ProgramHeader> Phdrs, 1094 const ELFYAML::NoBitsSection &S) { 1095 for (const ELFYAML::ProgramHeader &PH : Phdrs) { 1096 auto It = llvm::find_if( 1097 PH.Chunks, [&](ELFYAML::Chunk *C) { return C->Name == S.Name; }); 1098 if (std::any_of(It, PH.Chunks.end(), [](ELFYAML::Chunk *C) { 1099 return (isa<ELFYAML::Fill>(C) || 1100 cast<ELFYAML::Section>(C)->Type != ELF::SHT_NOBITS); 1101 })) 1102 return true; 1103 } 1104 return false; 1105 } 1106 1107 template <class ELFT> 1108 void ELFState<ELFT>::writeSectionContent(Elf_Shdr &SHeader, 1109 const ELFYAML::NoBitsSection &S, 1110 ContiguousBlobAccumulator &CBA) { 1111 // SHT_NOBITS sections do not have any content to write. 1112 SHeader.sh_entsize = 0; 1113 SHeader.sh_size = S.Size; 1114 1115 // When a nobits section is followed by a non-nobits section or fill 1116 // in the same segment, we allocate the file space for it. This behavior 1117 // matches linkers. 1118 if (shouldAllocateFileSpace(Doc.ProgramHeaders, S)) 1119 CBA.writeZeros(S.Size); 1120 } 1121 1122 template <class ELFT> 1123 void ELFState<ELFT>::writeSectionContent( 1124 Elf_Shdr &SHeader, const ELFYAML::RawContentSection &Section, 1125 ContiguousBlobAccumulator &CBA) { 1126 SHeader.sh_size = writeContent(CBA, Section.Content, Section.Size); 1127 1128 if (Section.EntSize) 1129 SHeader.sh_entsize = *Section.EntSize; 1130 1131 if (Section.Info) 1132 SHeader.sh_info = *Section.Info; 1133 } 1134 1135 static bool isMips64EL(const ELFYAML::Object &Doc) { 1136 return Doc.Header.Machine == ELFYAML::ELF_EM(llvm::ELF::EM_MIPS) && 1137 Doc.Header.Class == ELFYAML::ELF_ELFCLASS(ELF::ELFCLASS64) && 1138 Doc.Header.Data == ELFYAML::ELF_ELFDATA(ELF::ELFDATA2LSB); 1139 } 1140 1141 template <class ELFT> 1142 void ELFState<ELFT>::writeSectionContent( 1143 Elf_Shdr &SHeader, const ELFYAML::RelocationSection &Section, 1144 ContiguousBlobAccumulator &CBA) { 1145 assert((Section.Type == llvm::ELF::SHT_REL || 1146 Section.Type == llvm::ELF::SHT_RELA) && 1147 "Section type is not SHT_REL nor SHT_RELA"); 1148 1149 bool IsRela = Section.Type == llvm::ELF::SHT_RELA; 1150 if (Section.EntSize) 1151 SHeader.sh_entsize = *Section.EntSize; 1152 else 1153 SHeader.sh_entsize = IsRela ? sizeof(Elf_Rela) : sizeof(Elf_Rel); 1154 SHeader.sh_size = (IsRela ? sizeof(Elf_Rela) : sizeof(Elf_Rel)) * 1155 Section.Relocations.size(); 1156 1157 // For relocation section set link to .symtab by default. 1158 unsigned Link = 0; 1159 if (Section.Link.empty() && !ExcludedSectionHeaders.count(".symtab") && 1160 SN2I.lookup(".symtab", Link)) 1161 SHeader.sh_link = Link; 1162 1163 if (!Section.RelocatableSec.empty()) 1164 SHeader.sh_info = toSectionIndex(Section.RelocatableSec, Section.Name); 1165 1166 for (const auto &Rel : Section.Relocations) { 1167 unsigned SymIdx = Rel.Symbol ? toSymbolIndex(*Rel.Symbol, Section.Name, 1168 Section.Link == ".dynsym") 1169 : 0; 1170 if (IsRela) { 1171 Elf_Rela REntry; 1172 zero(REntry); 1173 REntry.r_offset = Rel.Offset; 1174 REntry.r_addend = Rel.Addend; 1175 REntry.setSymbolAndType(SymIdx, Rel.Type, isMips64EL(Doc)); 1176 CBA.write((const char *)&REntry, sizeof(REntry)); 1177 } else { 1178 Elf_Rel REntry; 1179 zero(REntry); 1180 REntry.r_offset = Rel.Offset; 1181 REntry.setSymbolAndType(SymIdx, Rel.Type, isMips64EL(Doc)); 1182 CBA.write((const char *)&REntry, sizeof(REntry)); 1183 } 1184 } 1185 } 1186 1187 template <class ELFT> 1188 void ELFState<ELFT>::writeSectionContent(Elf_Shdr &SHeader, 1189 const ELFYAML::RelrSection &Section, 1190 ContiguousBlobAccumulator &CBA) { 1191 SHeader.sh_entsize = 1192 Section.EntSize ? uint64_t(*Section.EntSize) : sizeof(Elf_Relr); 1193 1194 if (Section.Content) { 1195 SHeader.sh_size = writeContent(CBA, Section.Content, None); 1196 return; 1197 } 1198 1199 if (!Section.Entries) 1200 return; 1201 1202 for (llvm::yaml::Hex64 E : *Section.Entries) { 1203 if (!ELFT::Is64Bits && E > UINT32_MAX) 1204 reportError(Section.Name + ": the value is too large for 32-bits: 0x" + 1205 Twine::utohexstr(E)); 1206 CBA.write<uintX_t>(E, ELFT::TargetEndianness); 1207 } 1208 1209 SHeader.sh_size = sizeof(uintX_t) * Section.Entries->size(); 1210 } 1211 1212 template <class ELFT> 1213 void ELFState<ELFT>::writeSectionContent( 1214 Elf_Shdr &SHeader, const ELFYAML::SymtabShndxSection &Shndx, 1215 ContiguousBlobAccumulator &CBA) { 1216 for (uint32_t E : Shndx.Entries) 1217 CBA.write<uint32_t>(E, ELFT::TargetEndianness); 1218 1219 SHeader.sh_entsize = Shndx.EntSize ? (uint64_t)*Shndx.EntSize : 4; 1220 SHeader.sh_size = Shndx.Entries.size() * SHeader.sh_entsize; 1221 } 1222 1223 template <class ELFT> 1224 void ELFState<ELFT>::writeSectionContent(Elf_Shdr &SHeader, 1225 const ELFYAML::Group &Section, 1226 ContiguousBlobAccumulator &CBA) { 1227 assert(Section.Type == llvm::ELF::SHT_GROUP && 1228 "Section type is not SHT_GROUP"); 1229 1230 unsigned Link = 0; 1231 if (Section.Link.empty() && !ExcludedSectionHeaders.count(".symtab") && 1232 SN2I.lookup(".symtab", Link)) 1233 SHeader.sh_link = Link; 1234 1235 SHeader.sh_entsize = 4; 1236 SHeader.sh_size = SHeader.sh_entsize * Section.Members.size(); 1237 1238 if (Section.Signature) 1239 SHeader.sh_info = 1240 toSymbolIndex(*Section.Signature, Section.Name, /*IsDynamic=*/false); 1241 1242 for (const ELFYAML::SectionOrType &Member : Section.Members) { 1243 unsigned int SectionIndex = 0; 1244 if (Member.sectionNameOrType == "GRP_COMDAT") 1245 SectionIndex = llvm::ELF::GRP_COMDAT; 1246 else 1247 SectionIndex = toSectionIndex(Member.sectionNameOrType, Section.Name); 1248 CBA.write<uint32_t>(SectionIndex, ELFT::TargetEndianness); 1249 } 1250 } 1251 1252 template <class ELFT> 1253 void ELFState<ELFT>::writeSectionContent(Elf_Shdr &SHeader, 1254 const ELFYAML::SymverSection &Section, 1255 ContiguousBlobAccumulator &CBA) { 1256 for (uint16_t Version : Section.Entries) 1257 CBA.write<uint16_t>(Version, ELFT::TargetEndianness); 1258 1259 SHeader.sh_entsize = Section.EntSize ? (uint64_t)*Section.EntSize : 2; 1260 SHeader.sh_size = Section.Entries.size() * SHeader.sh_entsize; 1261 } 1262 1263 template <class ELFT> 1264 void ELFState<ELFT>::writeSectionContent( 1265 Elf_Shdr &SHeader, const ELFYAML::StackSizesSection &Section, 1266 ContiguousBlobAccumulator &CBA) { 1267 if (Section.Content || Section.Size) { 1268 SHeader.sh_size = writeContent(CBA, Section.Content, Section.Size); 1269 return; 1270 } 1271 1272 for (const ELFYAML::StackSizeEntry &E : *Section.Entries) { 1273 CBA.write<uintX_t>(E.Address, ELFT::TargetEndianness); 1274 SHeader.sh_size += sizeof(uintX_t) + CBA.writeULEB128(E.Size); 1275 } 1276 } 1277 1278 template <class ELFT> 1279 void ELFState<ELFT>::writeSectionContent( 1280 Elf_Shdr &SHeader, const ELFYAML::LinkerOptionsSection &Section, 1281 ContiguousBlobAccumulator &CBA) { 1282 if (Section.Content) { 1283 SHeader.sh_size = writeContent(CBA, Section.Content, None); 1284 return; 1285 } 1286 1287 if (!Section.Options) 1288 return; 1289 1290 for (const ELFYAML::LinkerOption &LO : *Section.Options) { 1291 CBA.write(LO.Key.data(), LO.Key.size()); 1292 CBA.write('\0'); 1293 CBA.write(LO.Value.data(), LO.Value.size()); 1294 CBA.write('\0'); 1295 SHeader.sh_size += (LO.Key.size() + LO.Value.size() + 2); 1296 } 1297 } 1298 1299 template <class ELFT> 1300 void ELFState<ELFT>::writeSectionContent( 1301 Elf_Shdr &SHeader, const ELFYAML::DependentLibrariesSection &Section, 1302 ContiguousBlobAccumulator &CBA) { 1303 if (Section.Content) { 1304 SHeader.sh_size = writeContent(CBA, Section.Content, None); 1305 return; 1306 } 1307 1308 if (!Section.Libs) 1309 return; 1310 1311 for (StringRef Lib : *Section.Libs) { 1312 CBA.write(Lib.data(), Lib.size()); 1313 CBA.write('\0'); 1314 SHeader.sh_size += Lib.size() + 1; 1315 } 1316 } 1317 1318 template <class ELFT> 1319 uint64_t 1320 ELFState<ELFT>::alignToOffset(ContiguousBlobAccumulator &CBA, uint64_t Align, 1321 llvm::Optional<llvm::yaml::Hex64> Offset) { 1322 uint64_t CurrentOffset = CBA.getOffset(); 1323 uint64_t AlignedOffset; 1324 1325 if (Offset) { 1326 if ((uint64_t)*Offset < CurrentOffset) { 1327 reportError("the 'Offset' value (0x" + 1328 Twine::utohexstr((uint64_t)*Offset) + ") goes backward"); 1329 return CurrentOffset; 1330 } 1331 1332 // We ignore an alignment when an explicit offset has been requested. 1333 AlignedOffset = *Offset; 1334 } else { 1335 AlignedOffset = alignTo(CurrentOffset, std::max(Align, (uint64_t)1)); 1336 } 1337 1338 CBA.writeZeros(AlignedOffset - CurrentOffset); 1339 return AlignedOffset; 1340 } 1341 1342 template <class ELFT> 1343 void ELFState<ELFT>::writeSectionContent( 1344 Elf_Shdr &SHeader, const ELFYAML::CallGraphProfileSection &Section, 1345 ContiguousBlobAccumulator &CBA) { 1346 if (Section.EntSize) 1347 SHeader.sh_entsize = *Section.EntSize; 1348 else 1349 SHeader.sh_entsize = 16; 1350 1351 unsigned Link = 0; 1352 if (Section.Link.empty() && !ExcludedSectionHeaders.count(".symtab") && 1353 SN2I.lookup(".symtab", Link)) 1354 SHeader.sh_link = Link; 1355 1356 if (Section.Content) { 1357 SHeader.sh_size = writeContent(CBA, Section.Content, None); 1358 return; 1359 } 1360 1361 if (!Section.Entries) 1362 return; 1363 1364 for (const ELFYAML::CallGraphEntry &E : *Section.Entries) { 1365 unsigned From = toSymbolIndex(E.From, Section.Name, /*IsDynamic=*/false); 1366 unsigned To = toSymbolIndex(E.To, Section.Name, /*IsDynamic=*/false); 1367 1368 CBA.write<uint32_t>(From, ELFT::TargetEndianness); 1369 CBA.write<uint32_t>(To, ELFT::TargetEndianness); 1370 CBA.write<uint64_t>(E.Weight, ELFT::TargetEndianness); 1371 SHeader.sh_size += 16; 1372 } 1373 } 1374 1375 template <class ELFT> 1376 void ELFState<ELFT>::writeSectionContent(Elf_Shdr &SHeader, 1377 const ELFYAML::HashSection &Section, 1378 ContiguousBlobAccumulator &CBA) { 1379 unsigned Link = 0; 1380 if (Section.Link.empty() && !ExcludedSectionHeaders.count(".dynsym") && 1381 SN2I.lookup(".dynsym", Link)) 1382 SHeader.sh_link = Link; 1383 1384 if (Section.Content || Section.Size) { 1385 SHeader.sh_size = writeContent(CBA, Section.Content, Section.Size); 1386 return; 1387 } 1388 1389 CBA.write<uint32_t>( 1390 Section.NBucket.getValueOr(llvm::yaml::Hex64(Section.Bucket->size())), 1391 ELFT::TargetEndianness); 1392 CBA.write<uint32_t>( 1393 Section.NChain.getValueOr(llvm::yaml::Hex64(Section.Chain->size())), 1394 ELFT::TargetEndianness); 1395 1396 for (uint32_t Val : *Section.Bucket) 1397 CBA.write<uint32_t>(Val, ELFT::TargetEndianness); 1398 for (uint32_t Val : *Section.Chain) 1399 CBA.write<uint32_t>(Val, ELFT::TargetEndianness); 1400 1401 SHeader.sh_size = (2 + Section.Bucket->size() + Section.Chain->size()) * 4; 1402 } 1403 1404 template <class ELFT> 1405 void ELFState<ELFT>::writeSectionContent(Elf_Shdr &SHeader, 1406 const ELFYAML::VerdefSection &Section, 1407 ContiguousBlobAccumulator &CBA) { 1408 typedef typename ELFT::Verdef Elf_Verdef; 1409 typedef typename ELFT::Verdaux Elf_Verdaux; 1410 1411 SHeader.sh_info = Section.Info; 1412 1413 if (Section.Content) { 1414 SHeader.sh_size = writeContent(CBA, Section.Content, None); 1415 return; 1416 } 1417 1418 if (!Section.Entries) 1419 return; 1420 1421 uint64_t AuxCnt = 0; 1422 for (size_t I = 0; I < Section.Entries->size(); ++I) { 1423 const ELFYAML::VerdefEntry &E = (*Section.Entries)[I]; 1424 1425 Elf_Verdef VerDef; 1426 VerDef.vd_version = E.Version; 1427 VerDef.vd_flags = E.Flags; 1428 VerDef.vd_ndx = E.VersionNdx; 1429 VerDef.vd_hash = E.Hash; 1430 VerDef.vd_aux = sizeof(Elf_Verdef); 1431 VerDef.vd_cnt = E.VerNames.size(); 1432 if (I == Section.Entries->size() - 1) 1433 VerDef.vd_next = 0; 1434 else 1435 VerDef.vd_next = 1436 sizeof(Elf_Verdef) + E.VerNames.size() * sizeof(Elf_Verdaux); 1437 CBA.write((const char *)&VerDef, sizeof(Elf_Verdef)); 1438 1439 for (size_t J = 0; J < E.VerNames.size(); ++J, ++AuxCnt) { 1440 Elf_Verdaux VernAux; 1441 VernAux.vda_name = DotDynstr.getOffset(E.VerNames[J]); 1442 if (J == E.VerNames.size() - 1) 1443 VernAux.vda_next = 0; 1444 else 1445 VernAux.vda_next = sizeof(Elf_Verdaux); 1446 CBA.write((const char *)&VernAux, sizeof(Elf_Verdaux)); 1447 } 1448 } 1449 1450 SHeader.sh_size = Section.Entries->size() * sizeof(Elf_Verdef) + 1451 AuxCnt * sizeof(Elf_Verdaux); 1452 } 1453 1454 template <class ELFT> 1455 void ELFState<ELFT>::writeSectionContent(Elf_Shdr &SHeader, 1456 const ELFYAML::VerneedSection &Section, 1457 ContiguousBlobAccumulator &CBA) { 1458 typedef typename ELFT::Verneed Elf_Verneed; 1459 typedef typename ELFT::Vernaux Elf_Vernaux; 1460 1461 SHeader.sh_info = Section.Info; 1462 1463 if (Section.Content) { 1464 SHeader.sh_size = writeContent(CBA, Section.Content, None); 1465 return; 1466 } 1467 1468 if (!Section.VerneedV) 1469 return; 1470 1471 uint64_t AuxCnt = 0; 1472 for (size_t I = 0; I < Section.VerneedV->size(); ++I) { 1473 const ELFYAML::VerneedEntry &VE = (*Section.VerneedV)[I]; 1474 1475 Elf_Verneed VerNeed; 1476 VerNeed.vn_version = VE.Version; 1477 VerNeed.vn_file = DotDynstr.getOffset(VE.File); 1478 if (I == Section.VerneedV->size() - 1) 1479 VerNeed.vn_next = 0; 1480 else 1481 VerNeed.vn_next = 1482 sizeof(Elf_Verneed) + VE.AuxV.size() * sizeof(Elf_Vernaux); 1483 VerNeed.vn_cnt = VE.AuxV.size(); 1484 VerNeed.vn_aux = sizeof(Elf_Verneed); 1485 CBA.write((const char *)&VerNeed, sizeof(Elf_Verneed)); 1486 1487 for (size_t J = 0; J < VE.AuxV.size(); ++J, ++AuxCnt) { 1488 const ELFYAML::VernauxEntry &VAuxE = VE.AuxV[J]; 1489 1490 Elf_Vernaux VernAux; 1491 VernAux.vna_hash = VAuxE.Hash; 1492 VernAux.vna_flags = VAuxE.Flags; 1493 VernAux.vna_other = VAuxE.Other; 1494 VernAux.vna_name = DotDynstr.getOffset(VAuxE.Name); 1495 if (J == VE.AuxV.size() - 1) 1496 VernAux.vna_next = 0; 1497 else 1498 VernAux.vna_next = sizeof(Elf_Vernaux); 1499 CBA.write((const char *)&VernAux, sizeof(Elf_Vernaux)); 1500 } 1501 } 1502 1503 SHeader.sh_size = Section.VerneedV->size() * sizeof(Elf_Verneed) + 1504 AuxCnt * sizeof(Elf_Vernaux); 1505 } 1506 1507 template <class ELFT> 1508 void ELFState<ELFT>::writeSectionContent(Elf_Shdr &SHeader, 1509 const ELFYAML::MipsABIFlags &Section, 1510 ContiguousBlobAccumulator &CBA) { 1511 assert(Section.Type == llvm::ELF::SHT_MIPS_ABIFLAGS && 1512 "Section type is not SHT_MIPS_ABIFLAGS"); 1513 1514 object::Elf_Mips_ABIFlags<ELFT> Flags; 1515 zero(Flags); 1516 SHeader.sh_entsize = sizeof(Flags); 1517 SHeader.sh_size = SHeader.sh_entsize; 1518 1519 Flags.version = Section.Version; 1520 Flags.isa_level = Section.ISALevel; 1521 Flags.isa_rev = Section.ISARevision; 1522 Flags.gpr_size = Section.GPRSize; 1523 Flags.cpr1_size = Section.CPR1Size; 1524 Flags.cpr2_size = Section.CPR2Size; 1525 Flags.fp_abi = Section.FpABI; 1526 Flags.isa_ext = Section.ISAExtension; 1527 Flags.ases = Section.ASEs; 1528 Flags.flags1 = Section.Flags1; 1529 Flags.flags2 = Section.Flags2; 1530 CBA.write((const char *)&Flags, sizeof(Flags)); 1531 } 1532 1533 template <class ELFT> 1534 void ELFState<ELFT>::writeSectionContent(Elf_Shdr &SHeader, 1535 const ELFYAML::DynamicSection &Section, 1536 ContiguousBlobAccumulator &CBA) { 1537 assert(Section.Type == llvm::ELF::SHT_DYNAMIC && 1538 "Section type is not SHT_DYNAMIC"); 1539 1540 if (!Section.Entries.empty() && Section.Content) 1541 reportError("cannot specify both raw content and explicit entries " 1542 "for dynamic section '" + 1543 Section.Name + "'"); 1544 1545 if (Section.Content) 1546 SHeader.sh_size = Section.Content->binary_size(); 1547 else 1548 SHeader.sh_size = 2 * sizeof(uintX_t) * Section.Entries.size(); 1549 if (Section.EntSize) 1550 SHeader.sh_entsize = *Section.EntSize; 1551 else 1552 SHeader.sh_entsize = sizeof(Elf_Dyn); 1553 1554 for (const ELFYAML::DynamicEntry &DE : Section.Entries) { 1555 CBA.write<uintX_t>(DE.Tag, ELFT::TargetEndianness); 1556 CBA.write<uintX_t>(DE.Val, ELFT::TargetEndianness); 1557 } 1558 if (Section.Content) 1559 CBA.writeAsBinary(*Section.Content); 1560 } 1561 1562 template <class ELFT> 1563 void ELFState<ELFT>::writeSectionContent(Elf_Shdr &SHeader, 1564 const ELFYAML::AddrsigSection &Section, 1565 ContiguousBlobAccumulator &CBA) { 1566 unsigned Link = 0; 1567 if (Section.Link.empty() && !ExcludedSectionHeaders.count(".symtab") && 1568 SN2I.lookup(".symtab", Link)) 1569 SHeader.sh_link = Link; 1570 1571 if (Section.Content || Section.Size) { 1572 SHeader.sh_size = writeContent(CBA, Section.Content, Section.Size); 1573 return; 1574 } 1575 1576 for (StringRef Sym : *Section.Symbols) 1577 SHeader.sh_size += 1578 CBA.writeULEB128(toSymbolIndex(Sym, Section.Name, /*IsDynamic=*/false)); 1579 } 1580 1581 template <class ELFT> 1582 void ELFState<ELFT>::writeSectionContent(Elf_Shdr &SHeader, 1583 const ELFYAML::NoteSection &Section, 1584 ContiguousBlobAccumulator &CBA) { 1585 uint64_t Offset = CBA.tell(); 1586 if (Section.Content || Section.Size) { 1587 SHeader.sh_size = writeContent(CBA, Section.Content, Section.Size); 1588 return; 1589 } 1590 1591 for (const ELFYAML::NoteEntry &NE : *Section.Notes) { 1592 // Write name size. 1593 if (NE.Name.empty()) 1594 CBA.write<uint32_t>(0, ELFT::TargetEndianness); 1595 else 1596 CBA.write<uint32_t>(NE.Name.size() + 1, ELFT::TargetEndianness); 1597 1598 // Write description size. 1599 if (NE.Desc.binary_size() == 0) 1600 CBA.write<uint32_t>(0, ELFT::TargetEndianness); 1601 else 1602 CBA.write<uint32_t>(NE.Desc.binary_size(), ELFT::TargetEndianness); 1603 1604 // Write type. 1605 CBA.write<uint32_t>(NE.Type, ELFT::TargetEndianness); 1606 1607 // Write name, null terminator and padding. 1608 if (!NE.Name.empty()) { 1609 CBA.write(NE.Name.data(), NE.Name.size()); 1610 CBA.write('\0'); 1611 CBA.padToAlignment(4); 1612 } 1613 1614 // Write description and padding. 1615 if (NE.Desc.binary_size() != 0) { 1616 CBA.writeAsBinary(NE.Desc); 1617 CBA.padToAlignment(4); 1618 } 1619 } 1620 1621 SHeader.sh_size = CBA.tell() - Offset; 1622 } 1623 1624 template <class ELFT> 1625 void ELFState<ELFT>::writeSectionContent(Elf_Shdr &SHeader, 1626 const ELFYAML::GnuHashSection &Section, 1627 ContiguousBlobAccumulator &CBA) { 1628 unsigned Link = 0; 1629 if (Section.Link.empty() && !ExcludedSectionHeaders.count(".dynsym") && 1630 SN2I.lookup(".dynsym", Link)) 1631 SHeader.sh_link = Link; 1632 1633 if (Section.Content) { 1634 SHeader.sh_size = writeContent(CBA, Section.Content, None); 1635 return; 1636 } 1637 1638 // We write the header first, starting with the hash buckets count. Normally 1639 // it is the number of entries in HashBuckets, but the "NBuckets" property can 1640 // be used to override this field, which is useful for producing broken 1641 // objects. 1642 if (Section.Header->NBuckets) 1643 CBA.write<uint32_t>(*Section.Header->NBuckets, ELFT::TargetEndianness); 1644 else 1645 CBA.write<uint32_t>(Section.HashBuckets->size(), ELFT::TargetEndianness); 1646 1647 // Write the index of the first symbol in the dynamic symbol table accessible 1648 // via the hash table. 1649 CBA.write<uint32_t>(Section.Header->SymNdx, ELFT::TargetEndianness); 1650 1651 // Write the number of words in the Bloom filter. As above, the "MaskWords" 1652 // property can be used to set this field to any value. 1653 if (Section.Header->MaskWords) 1654 CBA.write<uint32_t>(*Section.Header->MaskWords, ELFT::TargetEndianness); 1655 else 1656 CBA.write<uint32_t>(Section.BloomFilter->size(), ELFT::TargetEndianness); 1657 1658 // Write the shift constant used by the Bloom filter. 1659 CBA.write<uint32_t>(Section.Header->Shift2, ELFT::TargetEndianness); 1660 1661 // We've finished writing the header. Now write the Bloom filter. 1662 for (llvm::yaml::Hex64 Val : *Section.BloomFilter) 1663 CBA.write<uintX_t>(Val, ELFT::TargetEndianness); 1664 1665 // Write an array of hash buckets. 1666 for (llvm::yaml::Hex32 Val : *Section.HashBuckets) 1667 CBA.write<uint32_t>(Val, ELFT::TargetEndianness); 1668 1669 // Write an array of hash values. 1670 for (llvm::yaml::Hex32 Val : *Section.HashValues) 1671 CBA.write<uint32_t>(Val, ELFT::TargetEndianness); 1672 1673 SHeader.sh_size = 16 /*Header size*/ + 1674 Section.BloomFilter->size() * sizeof(typename ELFT::uint) + 1675 Section.HashBuckets->size() * 4 + 1676 Section.HashValues->size() * 4; 1677 } 1678 1679 template <class ELFT> 1680 void ELFState<ELFT>::writeFill(ELFYAML::Fill &Fill, 1681 ContiguousBlobAccumulator &CBA) { 1682 size_t PatternSize = Fill.Pattern ? Fill.Pattern->binary_size() : 0; 1683 if (!PatternSize) { 1684 CBA.writeZeros(Fill.Size); 1685 return; 1686 } 1687 1688 // Fill the content with the specified pattern. 1689 uint64_t Written = 0; 1690 for (; Written + PatternSize <= Fill.Size; Written += PatternSize) 1691 CBA.writeAsBinary(*Fill.Pattern); 1692 CBA.writeAsBinary(*Fill.Pattern, Fill.Size - Written); 1693 } 1694 1695 template <class ELFT> 1696 DenseMap<StringRef, size_t> ELFState<ELFT>::buildSectionHeaderReorderMap() { 1697 if (!Doc.SectionHeaders || Doc.SectionHeaders->NoHeaders) 1698 return DenseMap<StringRef, size_t>(); 1699 1700 DenseMap<StringRef, size_t> Ret; 1701 size_t SecNdx = 0; 1702 StringSet<> Seen; 1703 1704 auto AddSection = [&](const ELFYAML::SectionHeader &Hdr) { 1705 if (!Ret.try_emplace(Hdr.Name, ++SecNdx).second) 1706 reportError("repeated section name: '" + Hdr.Name + 1707 "' in the section header description"); 1708 Seen.insert(Hdr.Name); 1709 }; 1710 1711 if (Doc.SectionHeaders->Sections) 1712 for (const ELFYAML::SectionHeader &Hdr : *Doc.SectionHeaders->Sections) 1713 AddSection(Hdr); 1714 1715 if (Doc.SectionHeaders->Excluded) 1716 for (const ELFYAML::SectionHeader &Hdr : *Doc.SectionHeaders->Excluded) 1717 AddSection(Hdr); 1718 1719 for (const ELFYAML::Section *S : Doc.getSections()) { 1720 // Ignore special first SHT_NULL section. 1721 if (S == Doc.getSections().front()) 1722 continue; 1723 if (!Seen.count(S->Name)) 1724 reportError("section '" + S->Name + 1725 "' should be present in the 'Sections' or 'Excluded' lists"); 1726 Seen.erase(S->Name); 1727 } 1728 1729 for (const auto &It : Seen) 1730 reportError("section header contains undefined section '" + It.getKey() + 1731 "'"); 1732 return Ret; 1733 } 1734 1735 template <class ELFT> void ELFState<ELFT>::buildSectionIndex() { 1736 // A YAML description can have an explicit section header declaration that 1737 // allows to change the order of section headers. 1738 DenseMap<StringRef, size_t> ReorderMap = buildSectionHeaderReorderMap(); 1739 1740 if (HasError) 1741 return; 1742 1743 // Build excluded section headers map. 1744 std::vector<ELFYAML::Section *> Sections = Doc.getSections(); 1745 if (Doc.SectionHeaders) { 1746 if (Doc.SectionHeaders->Excluded) 1747 for (const ELFYAML::SectionHeader &Hdr : *Doc.SectionHeaders->Excluded) 1748 if (!ExcludedSectionHeaders.insert(Hdr.Name).second) 1749 llvm_unreachable("buildSectionIndex() failed"); 1750 1751 if (Doc.SectionHeaders->NoHeaders) 1752 for (const ELFYAML::Section *S : Sections) 1753 if (!ExcludedSectionHeaders.insert(S->Name).second) 1754 llvm_unreachable("buildSectionIndex() failed"); 1755 } 1756 1757 size_t SecNdx = -1; 1758 for (const ELFYAML::Section *S : Sections) { 1759 ++SecNdx; 1760 1761 size_t Index = ReorderMap.empty() ? SecNdx : ReorderMap.lookup(S->Name); 1762 if (!SN2I.addName(S->Name, Index)) 1763 llvm_unreachable("buildSectionIndex() failed"); 1764 1765 if (!ExcludedSectionHeaders.count(S->Name)) 1766 DotShStrtab.add(ELFYAML::dropUniqueSuffix(S->Name)); 1767 } 1768 1769 DotShStrtab.finalize(); 1770 } 1771 1772 template <class ELFT> void ELFState<ELFT>::buildSymbolIndexes() { 1773 auto Build = [this](ArrayRef<ELFYAML::Symbol> V, NameToIdxMap &Map) { 1774 for (size_t I = 0, S = V.size(); I < S; ++I) { 1775 const ELFYAML::Symbol &Sym = V[I]; 1776 if (!Sym.Name.empty() && !Map.addName(Sym.Name, I + 1)) 1777 reportError("repeated symbol name: '" + Sym.Name + "'"); 1778 } 1779 }; 1780 1781 if (Doc.Symbols) 1782 Build(*Doc.Symbols, SymN2I); 1783 if (Doc.DynamicSymbols) 1784 Build(*Doc.DynamicSymbols, DynSymN2I); 1785 } 1786 1787 template <class ELFT> void ELFState<ELFT>::finalizeStrings() { 1788 // Add the regular symbol names to .strtab section. 1789 if (Doc.Symbols) 1790 for (const ELFYAML::Symbol &Sym : *Doc.Symbols) 1791 DotStrtab.add(ELFYAML::dropUniqueSuffix(Sym.Name)); 1792 DotStrtab.finalize(); 1793 1794 // Add the dynamic symbol names to .dynstr section. 1795 if (Doc.DynamicSymbols) 1796 for (const ELFYAML::Symbol &Sym : *Doc.DynamicSymbols) 1797 DotDynstr.add(ELFYAML::dropUniqueSuffix(Sym.Name)); 1798 1799 // SHT_GNU_verdef and SHT_GNU_verneed sections might also 1800 // add strings to .dynstr section. 1801 for (const ELFYAML::Chunk *Sec : Doc.getSections()) { 1802 if (auto VerNeed = dyn_cast<ELFYAML::VerneedSection>(Sec)) { 1803 if (VerNeed->VerneedV) { 1804 for (const ELFYAML::VerneedEntry &VE : *VerNeed->VerneedV) { 1805 DotDynstr.add(VE.File); 1806 for (const ELFYAML::VernauxEntry &Aux : VE.AuxV) 1807 DotDynstr.add(Aux.Name); 1808 } 1809 } 1810 } else if (auto VerDef = dyn_cast<ELFYAML::VerdefSection>(Sec)) { 1811 if (VerDef->Entries) 1812 for (const ELFYAML::VerdefEntry &E : *VerDef->Entries) 1813 for (StringRef Name : E.VerNames) 1814 DotDynstr.add(Name); 1815 } 1816 } 1817 1818 DotDynstr.finalize(); 1819 } 1820 1821 template <class ELFT> 1822 bool ELFState<ELFT>::writeELF(raw_ostream &OS, ELFYAML::Object &Doc, 1823 yaml::ErrorHandler EH, uint64_t MaxSize) { 1824 ELFState<ELFT> State(Doc, EH); 1825 if (State.HasError) 1826 return false; 1827 1828 // Finalize .strtab and .dynstr sections. We do that early because want to 1829 // finalize the string table builders before writing the content of the 1830 // sections that might want to use them. 1831 State.finalizeStrings(); 1832 1833 State.buildSectionIndex(); 1834 State.buildSymbolIndexes(); 1835 1836 if (State.HasError) 1837 return false; 1838 1839 std::vector<Elf_Phdr> PHeaders; 1840 State.initProgramHeaders(PHeaders); 1841 1842 // XXX: This offset is tightly coupled with the order that we write 1843 // things to `OS`. 1844 const size_t SectionContentBeginOffset = 1845 sizeof(Elf_Ehdr) + sizeof(Elf_Phdr) * Doc.ProgramHeaders.size(); 1846 // It is quite easy to accidentally create output with yaml2obj that is larger 1847 // than intended, for example, due to an issue in the YAML description. 1848 // We limit the maximum allowed output size, but also provide a command line 1849 // option to change this limitation. 1850 ContiguousBlobAccumulator CBA(SectionContentBeginOffset, MaxSize); 1851 1852 std::vector<Elf_Shdr> SHeaders; 1853 State.initSectionHeaders(SHeaders, CBA); 1854 1855 // Now we can decide segment offsets. 1856 State.setProgramHeaderLayout(PHeaders, SHeaders); 1857 1858 // Align the start of the section header table, which is written after all 1859 // section data. 1860 uint64_t SHOff = 1861 State.alignToOffset(CBA, sizeof(typename ELFT::uint), /*Offset=*/None); 1862 bool ReachedLimit = SHOff + arrayDataSize(makeArrayRef(SHeaders)) > MaxSize; 1863 if (Error E = CBA.takeLimitError()) { 1864 // We report a custom error message instead below. 1865 consumeError(std::move(E)); 1866 ReachedLimit = true; 1867 } 1868 1869 if (ReachedLimit) 1870 State.reportError( 1871 "the desired output size is greater than permitted. Use the " 1872 "--max-size option to change the limit"); 1873 1874 if (State.HasError) 1875 return false; 1876 1877 State.writeELFHeader(OS, SHOff); 1878 writeArrayData(OS, makeArrayRef(PHeaders)); 1879 CBA.writeBlobToStream(OS); 1880 writeArrayData(OS, makeArrayRef(SHeaders)); 1881 return true; 1882 } 1883 1884 namespace llvm { 1885 namespace yaml { 1886 1887 bool yaml2elf(llvm::ELFYAML::Object &Doc, raw_ostream &Out, ErrorHandler EH, 1888 uint64_t MaxSize) { 1889 bool IsLE = Doc.Header.Data == ELFYAML::ELF_ELFDATA(ELF::ELFDATA2LSB); 1890 bool Is64Bit = Doc.Header.Class == ELFYAML::ELF_ELFCLASS(ELF::ELFCLASS64); 1891 if (Is64Bit) { 1892 if (IsLE) 1893 return ELFState<object::ELF64LE>::writeELF(Out, Doc, EH, MaxSize); 1894 return ELFState<object::ELF64BE>::writeELF(Out, Doc, EH, MaxSize); 1895 } 1896 if (IsLE) 1897 return ELFState<object::ELF32LE>::writeELF(Out, Doc, EH, MaxSize); 1898 return ELFState<object::ELF32BE>::writeELF(Out, Doc, EH, MaxSize); 1899 } 1900 1901 } // namespace yaml 1902 } // namespace llvm 1903