1 //===- InputFiles.cpp -----------------------------------------------------===// 2 // 3 // The LLVM Linker 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 10 #include "InputFiles.h" 11 #include "Driver.h" 12 #include "Error.h" 13 #include "InputSection.h" 14 #include "SymbolTable.h" 15 #include "Symbols.h" 16 #include "llvm/ADT/STLExtras.h" 17 #include "llvm/CodeGen/Analysis.h" 18 #include "llvm/IR/LLVMContext.h" 19 #include "llvm/IR/Module.h" 20 #include "llvm/Support/raw_ostream.h" 21 22 using namespace llvm; 23 using namespace llvm::ELF; 24 using namespace llvm::object; 25 using namespace llvm::sys::fs; 26 27 using namespace lld; 28 using namespace lld::elf; 29 30 // Returns "(internal)", "foo.a(bar.o)" or "baz.o". 31 std::string elf::getFilename(InputFile *F) { 32 if (!F) 33 return "(internal)"; 34 if (!F->ArchiveName.empty()) 35 return (F->ArchiveName + "(" + F->getName() + ")").str(); 36 return F->getName(); 37 } 38 39 template <class ELFT> 40 static ELFFile<ELFT> createELFObj(MemoryBufferRef MB) { 41 std::error_code EC; 42 ELFFile<ELFT> F(MB.getBuffer(), EC); 43 check(EC); 44 return F; 45 } 46 47 template <class ELFT> 48 ELFFileBase<ELFT>::ELFFileBase(Kind K, MemoryBufferRef MB) 49 : InputFile(K, MB), ELFObj(createELFObj<ELFT>(MB)) {} 50 51 template <class ELFT> 52 ELFKind ELFFileBase<ELFT>::getELFKind() { 53 if (ELFT::TargetEndianness == support::little) 54 return ELFT::Is64Bits ? ELF64LEKind : ELF32LEKind; 55 return ELFT::Is64Bits ? ELF64BEKind : ELF32BEKind; 56 } 57 58 template <class ELFT> 59 typename ELFT::SymRange ELFFileBase<ELFT>::getElfSymbols(bool OnlyGlobals) { 60 if (!Symtab) 61 return Elf_Sym_Range(nullptr, nullptr); 62 Elf_Sym_Range Syms = ELFObj.symbols(Symtab); 63 uint32_t NumSymbols = std::distance(Syms.begin(), Syms.end()); 64 uint32_t FirstNonLocal = Symtab->sh_info; 65 if (FirstNonLocal > NumSymbols) 66 fatal("invalid sh_info in symbol table"); 67 68 if (OnlyGlobals) 69 return makeArrayRef(Syms.begin() + FirstNonLocal, Syms.end()); 70 return makeArrayRef(Syms.begin(), Syms.end()); 71 } 72 73 template <class ELFT> 74 uint32_t ELFFileBase<ELFT>::getSectionIndex(const Elf_Sym &Sym) const { 75 uint32_t I = Sym.st_shndx; 76 if (I == ELF::SHN_XINDEX) 77 return ELFObj.getExtendedSymbolTableIndex(&Sym, Symtab, SymtabSHNDX); 78 if (I >= ELF::SHN_LORESERVE) 79 return 0; 80 return I; 81 } 82 83 template <class ELFT> void ELFFileBase<ELFT>::initStringTable() { 84 if (!Symtab) 85 return; 86 StringTable = check(ELFObj.getStringTableForSymtab(*Symtab)); 87 } 88 89 template <class ELFT> 90 elf::ObjectFile<ELFT>::ObjectFile(MemoryBufferRef M) 91 : ELFFileBase<ELFT>(Base::ObjectKind, M) {} 92 93 template <class ELFT> 94 ArrayRef<SymbolBody *> elf::ObjectFile<ELFT>::getNonLocalSymbols() { 95 if (!this->Symtab) 96 return this->SymbolBodies; 97 uint32_t FirstNonLocal = this->Symtab->sh_info; 98 return makeArrayRef(this->SymbolBodies).slice(FirstNonLocal); 99 } 100 101 template <class ELFT> 102 ArrayRef<SymbolBody *> elf::ObjectFile<ELFT>::getLocalSymbols() { 103 if (!this->Symtab) 104 return this->SymbolBodies; 105 uint32_t FirstNonLocal = this->Symtab->sh_info; 106 return makeArrayRef(this->SymbolBodies).slice(1, FirstNonLocal - 1); 107 } 108 109 template <class ELFT> 110 ArrayRef<SymbolBody *> elf::ObjectFile<ELFT>::getSymbols() { 111 if (!this->Symtab) 112 return this->SymbolBodies; 113 return makeArrayRef(this->SymbolBodies).slice(1); 114 } 115 116 template <class ELFT> uint32_t elf::ObjectFile<ELFT>::getMipsGp0() const { 117 if (ELFT::Is64Bits && MipsOptions && MipsOptions->Reginfo) 118 return MipsOptions->Reginfo->ri_gp_value; 119 if (!ELFT::Is64Bits && MipsReginfo && MipsReginfo->Reginfo) 120 return MipsReginfo->Reginfo->ri_gp_value; 121 return 0; 122 } 123 124 template <class ELFT> 125 void elf::ObjectFile<ELFT>::parse(DenseSet<StringRef> &ComdatGroups) { 126 // Read section and symbol tables. 127 initializeSections(ComdatGroups); 128 initializeSymbols(); 129 } 130 131 // Sections with SHT_GROUP and comdat bits define comdat section groups. 132 // They are identified and deduplicated by group name. This function 133 // returns a group name. 134 template <class ELFT> 135 StringRef elf::ObjectFile<ELFT>::getShtGroupSignature(const Elf_Shdr &Sec) { 136 const ELFFile<ELFT> &Obj = this->ELFObj; 137 uint32_t SymtabdSectionIndex = Sec.sh_link; 138 const Elf_Shdr *SymtabSec = check(Obj.getSection(SymtabdSectionIndex)); 139 uint32_t SymIndex = Sec.sh_info; 140 const Elf_Sym *Sym = Obj.getSymbol(SymtabSec, SymIndex); 141 StringRef StringTable = check(Obj.getStringTableForSymtab(*SymtabSec)); 142 return check(Sym->getName(StringTable)); 143 } 144 145 template <class ELFT> 146 ArrayRef<typename elf::ObjectFile<ELFT>::Elf_Word> 147 elf::ObjectFile<ELFT>::getShtGroupEntries(const Elf_Shdr &Sec) { 148 const ELFFile<ELFT> &Obj = this->ELFObj; 149 ArrayRef<Elf_Word> Entries = 150 check(Obj.template getSectionContentsAsArray<Elf_Word>(&Sec)); 151 if (Entries.empty() || Entries[0] != GRP_COMDAT) 152 fatal("unsupported SHT_GROUP format"); 153 return Entries.slice(1); 154 } 155 156 template <class ELFT> static bool shouldMerge(const typename ELFT::Shdr &Sec) { 157 typedef typename ELFT::uint uintX_t; 158 159 // We don't merge sections if -O0 (default is -O1). This makes sometimes 160 // the linker significantly faster, although the output will be bigger. 161 if (Config->Optimize == 0) 162 return false; 163 164 uintX_t Flags = Sec.sh_flags; 165 if (!(Flags & SHF_MERGE)) 166 return false; 167 if (Flags & SHF_WRITE) 168 fatal("writable SHF_MERGE sections are not supported"); 169 uintX_t EntSize = Sec.sh_entsize; 170 if (!EntSize || Sec.sh_size % EntSize) 171 fatal("SHF_MERGE section size must be a multiple of sh_entsize"); 172 173 // Don't try to merge if the aligment is larger than the sh_entsize and this 174 // is not SHF_STRINGS. 175 // 176 // Since this is not a SHF_STRINGS, we would need to pad after every entity. 177 // It would be equivalent for the producer of the .o to just set a larger 178 // sh_entsize. 179 if (Flags & SHF_STRINGS) 180 return true; 181 182 if (Sec.sh_addralign > EntSize) 183 return false; 184 185 return true; 186 } 187 188 template <class ELFT> 189 void elf::ObjectFile<ELFT>::initializeSections( 190 DenseSet<StringRef> &ComdatGroups) { 191 uint64_t Size = this->ELFObj.getNumSections(); 192 Sections.resize(Size); 193 unsigned I = -1; 194 const ELFFile<ELFT> &Obj = this->ELFObj; 195 for (const Elf_Shdr &Sec : Obj.sections()) { 196 ++I; 197 if (Sections[I] == &InputSection<ELFT>::Discarded) 198 continue; 199 200 switch (Sec.sh_type) { 201 case SHT_GROUP: 202 Sections[I] = &InputSection<ELFT>::Discarded; 203 if (ComdatGroups.insert(getShtGroupSignature(Sec)).second) 204 continue; 205 for (uint32_t SecIndex : getShtGroupEntries(Sec)) { 206 if (SecIndex >= Size) 207 fatal("invalid section index in group"); 208 Sections[SecIndex] = &InputSection<ELFT>::Discarded; 209 } 210 break; 211 case SHT_SYMTAB: 212 this->Symtab = &Sec; 213 break; 214 case SHT_SYMTAB_SHNDX: 215 this->SymtabSHNDX = check(Obj.getSHNDXTable(Sec)); 216 break; 217 case SHT_STRTAB: 218 case SHT_NULL: 219 break; 220 case SHT_RELA: 221 case SHT_REL: { 222 // This section contains relocation information. 223 // If -r is given, we do not interpret or apply relocation 224 // but just copy relocation sections to output. 225 if (Config->Relocatable) { 226 Sections[I] = new (IAlloc.Allocate()) InputSection<ELFT>(this, &Sec); 227 break; 228 } 229 230 // Find the relocation target section and associate this 231 // section with it. 232 InputSectionBase<ELFT> *Target = getRelocTarget(Sec); 233 if (!Target) 234 break; 235 if (auto *S = dyn_cast<InputSection<ELFT>>(Target)) { 236 S->RelocSections.push_back(&Sec); 237 break; 238 } 239 if (auto *S = dyn_cast<EHInputSection<ELFT>>(Target)) { 240 if (S->RelocSection) 241 fatal("multiple relocation sections to .eh_frame are not supported"); 242 S->RelocSection = &Sec; 243 break; 244 } 245 fatal("relocations pointing to SHF_MERGE are not supported"); 246 } 247 default: 248 Sections[I] = createInputSection(Sec); 249 } 250 } 251 } 252 253 template <class ELFT> 254 InputSectionBase<ELFT> * 255 elf::ObjectFile<ELFT>::getRelocTarget(const Elf_Shdr &Sec) { 256 uint32_t Idx = Sec.sh_info; 257 if (Idx >= Sections.size()) 258 fatal("invalid relocated section index"); 259 InputSectionBase<ELFT> *Target = Sections[Idx]; 260 261 // Strictly speaking, a relocation section must be included in the 262 // group of the section it relocates. However, LLVM 3.3 and earlier 263 // would fail to do so, so we gracefully handle that case. 264 if (Target == &InputSection<ELFT>::Discarded) 265 return nullptr; 266 267 if (!Target) 268 fatal("unsupported relocation reference"); 269 return Target; 270 } 271 272 template <class ELFT> 273 InputSectionBase<ELFT> * 274 elf::ObjectFile<ELFT>::createInputSection(const Elf_Shdr &Sec) { 275 StringRef Name = check(this->ELFObj.getSectionName(&Sec)); 276 277 // .note.GNU-stack is a marker section to control the presence of 278 // PT_GNU_STACK segment in outputs. Since the presence of the segment 279 // is controlled only by the command line option (-z execstack) in LLD, 280 // .note.GNU-stack is ignored. 281 if (Name == ".note.GNU-stack") 282 return &InputSection<ELFT>::Discarded; 283 284 if (Name == ".note.GNU-split-stack") { 285 error("objects using splitstacks are not supported"); 286 return &InputSection<ELFT>::Discarded; 287 } 288 289 if (Config->StripDebug && Name.startswith(".debug")) 290 return &InputSection<ELFT>::Discarded; 291 292 // A MIPS object file has a special sections that contain register 293 // usage info, which need to be handled by the linker specially. 294 if (Config->EMachine == EM_MIPS) { 295 if (Name == ".reginfo") { 296 MipsReginfo.reset(new MipsReginfoInputSection<ELFT>(this, &Sec)); 297 return MipsReginfo.get(); 298 } 299 if (Name == ".MIPS.options") { 300 MipsOptions.reset(new MipsOptionsInputSection<ELFT>(this, &Sec)); 301 return MipsOptions.get(); 302 } 303 } 304 305 // We dont need special handling of .eh_frame sections if relocatable 306 // output was choosen. Proccess them as usual input sections. 307 if (!Config->Relocatable && Name == ".eh_frame") 308 return new (EHAlloc.Allocate()) EHInputSection<ELFT>(this, &Sec); 309 if (shouldMerge<ELFT>(Sec)) 310 return new (MAlloc.Allocate()) MergeInputSection<ELFT>(this, &Sec); 311 return new (IAlloc.Allocate()) InputSection<ELFT>(this, &Sec); 312 } 313 314 template <class ELFT> void elf::ObjectFile<ELFT>::initializeSymbols() { 315 this->initStringTable(); 316 Elf_Sym_Range Syms = this->getElfSymbols(false); 317 uint32_t NumSymbols = std::distance(Syms.begin(), Syms.end()); 318 SymbolBodies.reserve(NumSymbols); 319 for (const Elf_Sym &Sym : Syms) 320 SymbolBodies.push_back(createSymbolBody(&Sym)); 321 } 322 323 template <class ELFT> 324 InputSectionBase<ELFT> * 325 elf::ObjectFile<ELFT>::getSection(const Elf_Sym &Sym) const { 326 uint32_t Index = this->getSectionIndex(Sym); 327 if (Index == 0) 328 return nullptr; 329 if (Index >= Sections.size() || !Sections[Index]) 330 fatal("invalid section index"); 331 InputSectionBase<ELFT> *S = Sections[Index]; 332 if (S == &InputSectionBase<ELFT>::Discarded) 333 return S; 334 return S->Repl; 335 } 336 337 template <class ELFT> 338 SymbolBody *elf::ObjectFile<ELFT>::createSymbolBody(const Elf_Sym *Sym) { 339 unsigned char Binding = Sym->getBinding(); 340 InputSectionBase<ELFT> *Sec = getSection(*Sym); 341 if (Binding == STB_LOCAL) { 342 if (Sym->st_shndx == SHN_UNDEF) 343 return new (Alloc) Undefined(Sym->st_name, Sym->st_other, Sym->getType()); 344 return new (Alloc) DefinedRegular<ELFT>(*Sym, Sec); 345 } 346 347 StringRef Name = check(Sym->getName(this->StringTable)); 348 349 switch (Sym->st_shndx) { 350 case SHN_UNDEF: 351 return elf::Symtab<ELFT>::X 352 ->addUndefined(Name, Binding, Sym->st_other, Sym->getType(), this) 353 ->body(); 354 case SHN_COMMON: 355 return elf::Symtab<ELFT>::X 356 ->addCommon(Name, Sym->st_size, Sym->st_value, Binding, Sym->st_other, 357 Sym->getType(), this) 358 ->body(); 359 } 360 361 switch (Binding) { 362 default: 363 fatal("unexpected binding"); 364 case STB_GLOBAL: 365 case STB_WEAK: 366 case STB_GNU_UNIQUE: 367 if (Sec == &InputSection<ELFT>::Discarded) 368 return elf::Symtab<ELFT>::X 369 ->addUndefined(Name, Binding, Sym->st_other, Sym->getType(), this) 370 ->body(); 371 return elf::Symtab<ELFT>::X->addRegular(Name, *Sym, Sec)->body(); 372 } 373 } 374 375 template <class ELFT> void ArchiveFile::parse() { 376 File = check(Archive::create(MB), "failed to parse archive"); 377 378 // Read the symbol table to construct Lazy objects. 379 for (const Archive::Symbol &Sym : File->symbols()) 380 Symtab<ELFT>::X->addLazyArchive(this, Sym); 381 } 382 383 // Returns a buffer pointing to a member file containing a given symbol. 384 MemoryBufferRef ArchiveFile::getMember(const Archive::Symbol *Sym) { 385 Archive::Child C = 386 check(Sym->getMember(), 387 "could not get the member for symbol " + Sym->getName()); 388 389 if (!Seen.insert(C.getChildOffset()).second) 390 return MemoryBufferRef(); 391 392 MemoryBufferRef Ret = 393 check(C.getMemoryBufferRef(), 394 "could not get the buffer for the member defining symbol " + 395 Sym->getName()); 396 397 if (C.getParent()->isThin()) 398 maybeCopyInputFile(check(C.getFullName()), Ret.getBuffer()); 399 400 return Ret; 401 } 402 403 template <class ELFT> 404 SharedFile<ELFT>::SharedFile(MemoryBufferRef M) 405 : ELFFileBase<ELFT>(Base::SharedKind, M), AsNeeded(Config->AsNeeded) {} 406 407 template <class ELFT> 408 const typename ELFT::Shdr * 409 SharedFile<ELFT>::getSection(const Elf_Sym &Sym) const { 410 uint32_t Index = this->getSectionIndex(Sym); 411 if (Index == 0) 412 return nullptr; 413 return check(this->ELFObj.getSection(Index)); 414 } 415 416 // Partially parse the shared object file so that we can call 417 // getSoName on this object. 418 template <class ELFT> void SharedFile<ELFT>::parseSoName() { 419 typedef typename ELFT::Dyn Elf_Dyn; 420 typedef typename ELFT::uint uintX_t; 421 const Elf_Shdr *DynamicSec = nullptr; 422 423 const ELFFile<ELFT> Obj = this->ELFObj; 424 for (const Elf_Shdr &Sec : Obj.sections()) { 425 switch (Sec.sh_type) { 426 default: 427 continue; 428 case SHT_DYNSYM: 429 this->Symtab = &Sec; 430 break; 431 case SHT_DYNAMIC: 432 DynamicSec = &Sec; 433 break; 434 case SHT_SYMTAB_SHNDX: 435 this->SymtabSHNDX = check(Obj.getSHNDXTable(Sec)); 436 break; 437 case SHT_GNU_versym: 438 this->VersymSec = &Sec; 439 break; 440 case SHT_GNU_verdef: 441 this->VerdefSec = &Sec; 442 break; 443 } 444 } 445 446 this->initStringTable(); 447 SoName = this->getName(); 448 449 if (!DynamicSec) 450 return; 451 auto *Begin = 452 reinterpret_cast<const Elf_Dyn *>(Obj.base() + DynamicSec->sh_offset); 453 const Elf_Dyn *End = Begin + DynamicSec->sh_size / sizeof(Elf_Dyn); 454 455 for (const Elf_Dyn &Dyn : make_range(Begin, End)) { 456 if (Dyn.d_tag == DT_SONAME) { 457 uintX_t Val = Dyn.getVal(); 458 if (Val >= this->StringTable.size()) 459 fatal("invalid DT_SONAME entry"); 460 SoName = StringRef(this->StringTable.data() + Val); 461 return; 462 } 463 } 464 } 465 466 // Parse the version definitions in the object file if present. Returns a vector 467 // whose nth element contains a pointer to the Elf_Verdef for version identifier 468 // n. Version identifiers that are not definitions map to nullptr. The array 469 // always has at least length 1. 470 template <class ELFT> 471 std::vector<const typename ELFT::Verdef *> 472 SharedFile<ELFT>::parseVerdefs(const Elf_Versym *&Versym) { 473 std::vector<const Elf_Verdef *> Verdefs(1); 474 // We only need to process symbol versions for this DSO if it has both a 475 // versym and a verdef section, which indicates that the DSO contains symbol 476 // version definitions. 477 if (!VersymSec || !VerdefSec) 478 return Verdefs; 479 480 // The location of the first global versym entry. 481 Versym = reinterpret_cast<const Elf_Versym *>(this->ELFObj.base() + 482 VersymSec->sh_offset) + 483 this->Symtab->sh_info; 484 485 // We cannot determine the largest verdef identifier without inspecting 486 // every Elf_Verdef, but both bfd and gold assign verdef identifiers 487 // sequentially starting from 1, so we predict that the largest identifier 488 // will be VerdefCount. 489 unsigned VerdefCount = VerdefSec->sh_info; 490 Verdefs.resize(VerdefCount + 1); 491 492 // Build the Verdefs array by following the chain of Elf_Verdef objects 493 // from the start of the .gnu.version_d section. 494 const uint8_t *Verdef = this->ELFObj.base() + VerdefSec->sh_offset; 495 for (unsigned I = 0; I != VerdefCount; ++I) { 496 auto *CurVerdef = reinterpret_cast<const Elf_Verdef *>(Verdef); 497 Verdef += CurVerdef->vd_next; 498 unsigned VerdefIndex = CurVerdef->vd_ndx; 499 if (Verdefs.size() <= VerdefIndex) 500 Verdefs.resize(VerdefIndex + 1); 501 Verdefs[VerdefIndex] = CurVerdef; 502 } 503 504 return Verdefs; 505 } 506 507 // Fully parse the shared object file. This must be called after parseSoName(). 508 template <class ELFT> void SharedFile<ELFT>::parseRest() { 509 // Create mapping from version identifiers to Elf_Verdef entries. 510 const Elf_Versym *Versym = nullptr; 511 std::vector<const Elf_Verdef *> Verdefs = parseVerdefs(Versym); 512 513 Elf_Sym_Range Syms = this->getElfSymbols(true); 514 for (const Elf_Sym &Sym : Syms) { 515 unsigned VersymIndex = 0; 516 if (Versym) { 517 VersymIndex = Versym->vs_index; 518 ++Versym; 519 } 520 521 StringRef Name = check(Sym.getName(this->StringTable)); 522 if (Sym.isUndefined()) { 523 Undefs.push_back(Name); 524 continue; 525 } 526 527 if (Versym) { 528 // Ignore local symbols and non-default versions. 529 if (VersymIndex == 0 || (VersymIndex & VERSYM_HIDDEN)) 530 continue; 531 } 532 elf::Symtab<ELFT>::X->addShared(this, Name, Sym, Verdefs[VersymIndex]); 533 } 534 } 535 536 BitcodeFile::BitcodeFile(MemoryBufferRef M) : InputFile(BitcodeKind, M) {} 537 538 static uint8_t getGvVisibility(const GlobalValue *GV) { 539 switch (GV->getVisibility()) { 540 case GlobalValue::DefaultVisibility: 541 return STV_DEFAULT; 542 case GlobalValue::HiddenVisibility: 543 return STV_HIDDEN; 544 case GlobalValue::ProtectedVisibility: 545 return STV_PROTECTED; 546 } 547 llvm_unreachable("unknown visibility"); 548 } 549 550 template <class ELFT> 551 Symbol *BitcodeFile::createSymbol(const DenseSet<const Comdat *> &KeptComdats, 552 const IRObjectFile &Obj, 553 const BasicSymbolRef &Sym) { 554 const GlobalValue *GV = Obj.getSymbolGV(Sym.getRawDataRefImpl()); 555 556 SmallString<64> Name; 557 raw_svector_ostream OS(Name); 558 Sym.printName(OS); 559 StringRef NameRef = Saver.save(StringRef(Name)); 560 561 uint32_t Flags = Sym.getFlags(); 562 bool IsWeak = Flags & BasicSymbolRef::SF_Weak; 563 uint32_t Binding = IsWeak ? STB_WEAK : STB_GLOBAL; 564 565 uint8_t Type = STT_NOTYPE; 566 bool CanOmitFromDynSym = false; 567 // FIXME: Expose a thread-local flag for module asm symbols. 568 if (GV) { 569 if (GV->isThreadLocal()) 570 Type = STT_TLS; 571 CanOmitFromDynSym = canBeOmittedFromSymbolTable(GV); 572 } 573 574 uint8_t Visibility; 575 if (GV) 576 Visibility = getGvVisibility(GV); 577 else 578 // FIXME: Set SF_Hidden flag correctly for module asm symbols, and expose 579 // protected visibility. 580 Visibility = STV_DEFAULT; 581 582 if (GV) 583 if (const Comdat *C = GV->getComdat()) 584 if (!KeptComdats.count(C)) 585 return Symtab<ELFT>::X->addUndefined(NameRef, Binding, Visibility, Type, 586 this); 587 588 const Module &M = Obj.getModule(); 589 if (Flags & BasicSymbolRef::SF_Undefined) 590 return Symtab<ELFT>::X->addUndefined(NameRef, Binding, Visibility, Type, 591 this); 592 if (Flags & BasicSymbolRef::SF_Common) { 593 // FIXME: Set SF_Common flag correctly for module asm symbols, and expose 594 // size and alignment. 595 assert(GV); 596 const DataLayout &DL = M.getDataLayout(); 597 uint64_t Size = DL.getTypeAllocSize(GV->getValueType()); 598 return Symtab<ELFT>::X->addCommon(NameRef, Size, GV->getAlignment(), 599 Binding, Visibility, STT_OBJECT, this); 600 } 601 return Symtab<ELFT>::X->addBitcode(NameRef, IsWeak, Visibility, Type, 602 CanOmitFromDynSym, this); 603 } 604 605 bool BitcodeFile::shouldSkip(uint32_t Flags) { 606 if (!(Flags & BasicSymbolRef::SF_Global)) 607 return true; 608 if (Flags & BasicSymbolRef::SF_FormatSpecific) 609 return true; 610 return false; 611 } 612 613 template <class ELFT> 614 void BitcodeFile::parse(DenseSet<StringRef> &ComdatGroups) { 615 Obj = check(IRObjectFile::create(MB, Driver->Context)); 616 const Module &M = Obj->getModule(); 617 618 DenseSet<const Comdat *> KeptComdats; 619 for (const auto &P : M.getComdatSymbolTable()) { 620 StringRef N = Saver.save(P.first()); 621 if (ComdatGroups.insert(N).second) 622 KeptComdats.insert(&P.second); 623 } 624 625 for (const BasicSymbolRef &Sym : Obj->symbols()) 626 if (!shouldSkip(Sym.getFlags())) 627 Symbols.push_back(createSymbol<ELFT>(KeptComdats, *Obj, Sym)); 628 } 629 630 template <typename T> 631 static std::unique_ptr<InputFile> createELFFileAux(MemoryBufferRef MB) { 632 std::unique_ptr<T> Ret = llvm::make_unique<T>(MB); 633 634 if (!Config->FirstElf) 635 Config->FirstElf = Ret.get(); 636 637 if (Config->EKind == ELFNoneKind) { 638 Config->EKind = Ret->getELFKind(); 639 Config->EMachine = Ret->getEMachine(); 640 if (Config->EMachine == EM_MIPS && Config->EKind == ELF64LEKind) 641 Config->Mips64EL = true; 642 } 643 644 return std::move(Ret); 645 } 646 647 template <template <class> class T> 648 static std::unique_ptr<InputFile> createELFFile(MemoryBufferRef MB) { 649 unsigned char Size; 650 unsigned char Endian; 651 std::tie(Size, Endian) = getElfArchType(MB.getBuffer()); 652 if (Endian != ELFDATA2LSB && Endian != ELFDATA2MSB) 653 fatal("invalid data encoding: " + MB.getBufferIdentifier()); 654 655 if (Size == ELFCLASS32) { 656 if (Endian == ELFDATA2LSB) 657 return createELFFileAux<T<ELF32LE>>(MB); 658 return createELFFileAux<T<ELF32BE>>(MB); 659 } 660 if (Size == ELFCLASS64) { 661 if (Endian == ELFDATA2LSB) 662 return createELFFileAux<T<ELF64LE>>(MB); 663 return createELFFileAux<T<ELF64BE>>(MB); 664 } 665 fatal("invalid file class: " + MB.getBufferIdentifier()); 666 } 667 668 static bool isBitcode(MemoryBufferRef MB) { 669 using namespace sys::fs; 670 return identify_magic(MB.getBuffer()) == file_magic::bitcode; 671 } 672 673 std::unique_ptr<InputFile> elf::createObjectFile(MemoryBufferRef MB, 674 StringRef ArchiveName) { 675 std::unique_ptr<InputFile> F; 676 if (isBitcode(MB)) 677 F.reset(new BitcodeFile(MB)); 678 else 679 F = createELFFile<ObjectFile>(MB); 680 F->ArchiveName = ArchiveName; 681 return F; 682 } 683 684 std::unique_ptr<InputFile> elf::createSharedFile(MemoryBufferRef MB) { 685 return createELFFile<SharedFile>(MB); 686 } 687 688 template <class ELFT> 689 void LazyObjectFile::parse() { 690 for (StringRef Sym : getSymbols()) 691 Symtab<ELFT>::X->addLazyObject(Sym, this->MB); 692 } 693 694 template <class ELFT> std::vector<StringRef> LazyObjectFile::getElfSymbols() { 695 typedef typename ELFT::Shdr Elf_Shdr; 696 typedef typename ELFT::Sym Elf_Sym; 697 typedef typename ELFT::SymRange Elf_Sym_Range; 698 699 const ELFFile<ELFT> Obj = createELFObj<ELFT>(this->MB); 700 for (const Elf_Shdr &Sec : Obj.sections()) { 701 if (Sec.sh_type != SHT_SYMTAB) 702 continue; 703 Elf_Sym_Range Syms = Obj.symbols(&Sec); 704 uint32_t FirstNonLocal = Sec.sh_info; 705 StringRef StringTable = check(Obj.getStringTableForSymtab(Sec)); 706 std::vector<StringRef> V; 707 for (const Elf_Sym &Sym : Syms.slice(FirstNonLocal)) 708 if (Sym.st_shndx != SHN_UNDEF) 709 V.push_back(check(Sym.getName(StringTable))); 710 return V; 711 } 712 return {}; 713 } 714 715 std::vector<StringRef> LazyObjectFile::getBitcodeSymbols() { 716 LLVMContext Context; 717 std::unique_ptr<IRObjectFile> Obj = 718 check(IRObjectFile::create(this->MB, Context)); 719 std::vector<StringRef> V; 720 for (const BasicSymbolRef &Sym : Obj->symbols()) { 721 uint32_t Flags = Sym.getFlags(); 722 if (BitcodeFile::shouldSkip(Flags)) 723 continue; 724 if (Flags & BasicSymbolRef::SF_Undefined) 725 continue; 726 SmallString<64> Name; 727 raw_svector_ostream OS(Name); 728 Sym.printName(OS); 729 V.push_back(Saver.save(StringRef(Name))); 730 } 731 return V; 732 } 733 734 // Returns a vector of globally-visible defined symbol names. 735 std::vector<StringRef> LazyObjectFile::getSymbols() { 736 if (isBitcode(this->MB)) 737 return getBitcodeSymbols(); 738 739 unsigned char Size; 740 unsigned char Endian; 741 std::tie(Size, Endian) = getElfArchType(this->MB.getBuffer()); 742 if (Size == ELFCLASS32) { 743 if (Endian == ELFDATA2LSB) 744 return getElfSymbols<ELF32LE>(); 745 return getElfSymbols<ELF32BE>(); 746 } 747 if (Endian == ELFDATA2LSB) 748 return getElfSymbols<ELF64LE>(); 749 return getElfSymbols<ELF64BE>(); 750 } 751 752 template void ArchiveFile::parse<ELF32LE>(); 753 template void ArchiveFile::parse<ELF32BE>(); 754 template void ArchiveFile::parse<ELF64LE>(); 755 template void ArchiveFile::parse<ELF64BE>(); 756 757 template void 758 BitcodeFile::parse<ELF32LE>(llvm::DenseSet<StringRef> &ComdatGroups); 759 template void 760 BitcodeFile::parse<ELF32BE>(llvm::DenseSet<StringRef> &ComdatGroups); 761 template void 762 BitcodeFile::parse<ELF64LE>(llvm::DenseSet<StringRef> &ComdatGroups); 763 template void 764 BitcodeFile::parse<ELF64BE>(llvm::DenseSet<StringRef> &ComdatGroups); 765 766 template void LazyObjectFile::parse<ELF32LE>(); 767 template void LazyObjectFile::parse<ELF32BE>(); 768 template void LazyObjectFile::parse<ELF64LE>(); 769 template void LazyObjectFile::parse<ELF64BE>(); 770 771 template class elf::ELFFileBase<ELF32LE>; 772 template class elf::ELFFileBase<ELF32BE>; 773 template class elf::ELFFileBase<ELF64LE>; 774 template class elf::ELFFileBase<ELF64BE>; 775 776 template class elf::ObjectFile<ELF32LE>; 777 template class elf::ObjectFile<ELF32BE>; 778 template class elf::ObjectFile<ELF64LE>; 779 template class elf::ObjectFile<ELF64BE>; 780 781 template class elf::SharedFile<ELF32LE>; 782 template class elf::SharedFile<ELF32BE>; 783 template class elf::SharedFile<ELF64LE>; 784 template class elf::SharedFile<ELF64BE>; 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