903 lines
		
	
	
		
			30 KiB
		
	
	
	
		
			C++
		
	
	
	
			
		
		
	
	
			903 lines
		
	
	
		
			30 KiB
		
	
	
	
		
			C++
		
	
	
	
//===- InputFiles.cpp -----------------------------------------------------===//
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//
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//                             The LLVM Linker
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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#include "InputFiles.h"
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#include "Driver.h"
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#include "Error.h"
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#include "InputSection.h"
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#include "LinkerScript.h"
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#include "ELFCreator.h"
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#include "SymbolTable.h"
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#include "Symbols.h"
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#include "llvm/ADT/STLExtras.h"
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#include "llvm/Bitcode/ReaderWriter.h"
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#include "llvm/CodeGen/Analysis.h"
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#include "llvm/IR/LLVMContext.h"
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#include "llvm/IR/Module.h"
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#include "llvm/MC/StringTableBuilder.h"
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#include "llvm/Support/Path.h"
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#include "llvm/Support/raw_ostream.h"
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using namespace llvm;
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using namespace llvm::ELF;
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using namespace llvm::object;
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using namespace llvm::sys::fs;
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using namespace lld;
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using namespace lld::elf;
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std::vector<InputFile *> InputFile::Pool;
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// Deletes all InputFile instances created so far.
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void InputFile::freePool() {
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  // Files are freed in reverse order so that files created
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  // from other files (e.g. object files extracted from archives)
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  // are freed in the proper order.
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  for (int I = Pool.size() - 1; I >= 0; --I)
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    delete Pool[I];
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}
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// Returns "(internal)", "foo.a(bar.o)" or "baz.o".
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std::string elf::getFilename(const InputFile *F) {
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  if (!F)
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    return "(internal)";
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  if (!F->ArchiveName.empty())
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    return (F->ArchiveName + "(" + F->getName() + ")").str();
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  return F->getName();
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}
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template <class ELFT>
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static ELFFile<ELFT> createELFObj(MemoryBufferRef MB) {
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  std::error_code EC;
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  ELFFile<ELFT> F(MB.getBuffer(), EC);
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  if (EC)
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    error(EC, "failed to read " + MB.getBufferIdentifier());
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  return F;
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}
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template <class ELFT> static ELFKind getELFKind() {
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  if (ELFT::TargetEndianness == support::little)
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    return ELFT::Is64Bits ? ELF64LEKind : ELF32LEKind;
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  return ELFT::Is64Bits ? ELF64BEKind : ELF32BEKind;
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}
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template <class ELFT>
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ELFFileBase<ELFT>::ELFFileBase(Kind K, MemoryBufferRef MB)
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    : InputFile(K, MB), ELFObj(createELFObj<ELFT>(MB)) {
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  EKind = getELFKind<ELFT>();
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  EMachine = ELFObj.getHeader()->e_machine;
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}
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template <class ELFT>
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typename ELFT::SymRange ELFFileBase<ELFT>::getElfSymbols(bool OnlyGlobals) {
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  if (!Symtab)
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    return Elf_Sym_Range(nullptr, nullptr);
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  Elf_Sym_Range Syms = ELFObj.symbols(Symtab);
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  uint32_t NumSymbols = std::distance(Syms.begin(), Syms.end());
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  uint32_t FirstNonLocal = Symtab->sh_info;
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  if (FirstNonLocal > NumSymbols)
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    fatal(getFilename(this) + ": invalid sh_info in symbol table");
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  if (OnlyGlobals)
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    return makeArrayRef(Syms.begin() + FirstNonLocal, Syms.end());
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  return makeArrayRef(Syms.begin(), Syms.end());
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}
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template <class ELFT>
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uint32_t ELFFileBase<ELFT>::getSectionIndex(const Elf_Sym &Sym) const {
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  uint32_t I = Sym.st_shndx;
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  if (I == ELF::SHN_XINDEX)
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    return ELFObj.getExtendedSymbolTableIndex(&Sym, Symtab, SymtabSHNDX);
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  if (I >= ELF::SHN_LORESERVE)
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    return 0;
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  return I;
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}
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template <class ELFT> void ELFFileBase<ELFT>::initStringTable() {
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  if (!Symtab)
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    return;
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  StringTable = check(ELFObj.getStringTableForSymtab(*Symtab));
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}
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template <class ELFT>
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elf::ObjectFile<ELFT>::ObjectFile(MemoryBufferRef M)
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    : ELFFileBase<ELFT>(Base::ObjectKind, M) {}
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template <class ELFT>
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ArrayRef<SymbolBody *> elf::ObjectFile<ELFT>::getNonLocalSymbols() {
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  if (!this->Symtab)
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    return this->SymbolBodies;
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  uint32_t FirstNonLocal = this->Symtab->sh_info;
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  return makeArrayRef(this->SymbolBodies).slice(FirstNonLocal);
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}
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template <class ELFT>
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ArrayRef<SymbolBody *> elf::ObjectFile<ELFT>::getLocalSymbols() {
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  if (!this->Symtab)
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    return this->SymbolBodies;
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  uint32_t FirstNonLocal = this->Symtab->sh_info;
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  return makeArrayRef(this->SymbolBodies).slice(1, FirstNonLocal - 1);
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}
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template <class ELFT>
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ArrayRef<SymbolBody *> elf::ObjectFile<ELFT>::getSymbols() {
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  if (!this->Symtab)
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    return this->SymbolBodies;
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  return makeArrayRef(this->SymbolBodies).slice(1);
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}
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template <class ELFT> uint32_t elf::ObjectFile<ELFT>::getMipsGp0() const {
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  if (ELFT::Is64Bits && MipsOptions && MipsOptions->Reginfo)
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    return MipsOptions->Reginfo->ri_gp_value;
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  if (!ELFT::Is64Bits && MipsReginfo && MipsReginfo->Reginfo)
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    return MipsReginfo->Reginfo->ri_gp_value;
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  return 0;
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}
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template <class ELFT>
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void elf::ObjectFile<ELFT>::parse(DenseSet<StringRef> &ComdatGroups) {
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  // Read section and symbol tables.
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  initializeSections(ComdatGroups);
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  initializeSymbols();
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}
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// Sections with SHT_GROUP and comdat bits define comdat section groups.
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// They are identified and deduplicated by group name. This function
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// returns a group name.
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template <class ELFT>
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StringRef elf::ObjectFile<ELFT>::getShtGroupSignature(const Elf_Shdr &Sec) {
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  const ELFFile<ELFT> &Obj = this->ELFObj;
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  const Elf_Shdr *Symtab = check(Obj.getSection(Sec.sh_link));
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  const Elf_Sym *Sym = Obj.getSymbol(Symtab, Sec.sh_info);
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  StringRef Strtab = check(Obj.getStringTableForSymtab(*Symtab));
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  return check(Sym->getName(Strtab));
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}
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template <class ELFT>
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ArrayRef<typename elf::ObjectFile<ELFT>::Elf_Word>
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elf::ObjectFile<ELFT>::getShtGroupEntries(const Elf_Shdr &Sec) {
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  const ELFFile<ELFT> &Obj = this->ELFObj;
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  ArrayRef<Elf_Word> Entries =
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      check(Obj.template getSectionContentsAsArray<Elf_Word>(&Sec));
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  if (Entries.empty() || Entries[0] != GRP_COMDAT)
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    fatal(getFilename(this) + ": unsupported SHT_GROUP format");
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  return Entries.slice(1);
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}
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template <class ELFT>
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bool elf::ObjectFile<ELFT>::shouldMerge(const Elf_Shdr &Sec) {
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  // We don't merge sections if -O0 (default is -O1). This makes sometimes
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  // the linker significantly faster, although the output will be bigger.
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  if (Config->Optimize == 0)
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    return false;
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  // A mergeable section with size 0 is useless because they don't have
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  // any data to merge. A mergeable string section with size 0 can be
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  // argued as invalid because it doesn't end with a null character.
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  // We'll avoid a mess by handling them as if they were non-mergeable.
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  if (Sec.sh_size == 0)
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    return false;
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  uintX_t Flags = Sec.sh_flags;
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  if (!(Flags & SHF_MERGE))
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    return false;
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  if (Flags & SHF_WRITE)
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    fatal(getFilename(this) + ": writable SHF_MERGE section is not supported");
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  uintX_t EntSize = Sec.sh_entsize;
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  if (!EntSize || Sec.sh_size % EntSize)
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    fatal(getFilename(this) +
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          ": SHF_MERGE section size must be a multiple of sh_entsize");
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  // Don't try to merge if the alignment is larger than the sh_entsize and this
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  // is not SHF_STRINGS.
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  //
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  // Since this is not a SHF_STRINGS, we would need to pad after every entity.
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  // It would be equivalent for the producer of the .o to just set a larger
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  // sh_entsize.
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  if (Flags & SHF_STRINGS)
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    return true;
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  return Sec.sh_addralign <= EntSize;
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}
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template <class ELFT>
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void elf::ObjectFile<ELFT>::initializeSections(
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    DenseSet<StringRef> &ComdatGroups) {
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  uint64_t Size = this->ELFObj.getNumSections();
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  Sections.resize(Size);
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  unsigned I = -1;
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  const ELFFile<ELFT> &Obj = this->ELFObj;
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  for (const Elf_Shdr &Sec : Obj.sections()) {
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    ++I;
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    if (Sections[I] == &InputSection<ELFT>::Discarded)
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      continue;
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    switch (Sec.sh_type) {
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    case SHT_GROUP:
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      Sections[I] = &InputSection<ELFT>::Discarded;
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      if (ComdatGroups.insert(getShtGroupSignature(Sec)).second)
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        continue;
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      for (uint32_t SecIndex : getShtGroupEntries(Sec)) {
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        if (SecIndex >= Size)
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          fatal(getFilename(this) + ": invalid section index in group: " +
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                Twine(SecIndex));
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        Sections[SecIndex] = &InputSection<ELFT>::Discarded;
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      }
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      break;
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    case SHT_SYMTAB:
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      this->Symtab = &Sec;
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      break;
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    case SHT_SYMTAB_SHNDX:
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      this->SymtabSHNDX = check(Obj.getSHNDXTable(Sec));
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      break;
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    case SHT_STRTAB:
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    case SHT_NULL:
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      break;
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    default:
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      Sections[I] = createInputSection(Sec);
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    }
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  }
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}
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template <class ELFT>
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InputSectionBase<ELFT> *
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elf::ObjectFile<ELFT>::getRelocTarget(const Elf_Shdr &Sec) {
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  uint32_t Idx = Sec.sh_info;
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  if (Idx >= Sections.size())
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    fatal(getFilename(this) + ": invalid relocated section index: " +
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          Twine(Idx));
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  InputSectionBase<ELFT> *Target = Sections[Idx];
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  // Strictly speaking, a relocation section must be included in the
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  // group of the section it relocates. However, LLVM 3.3 and earlier
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  // would fail to do so, so we gracefully handle that case.
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  if (Target == &InputSection<ELFT>::Discarded)
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    return nullptr;
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  if (!Target)
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    fatal(getFilename(this) + ": unsupported relocation reference");
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  return Target;
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}
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template <class ELFT>
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InputSectionBase<ELFT> *
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elf::ObjectFile<ELFT>::createInputSection(const Elf_Shdr &Sec) {
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  StringRef Name = check(this->ELFObj.getSectionName(&Sec));
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  switch (Sec.sh_type) {
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  case SHT_ARM_ATTRIBUTES:
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    // FIXME: ARM meta-data section. At present attributes are ignored,
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    // they can be used to reason about object compatibility.
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    return &InputSection<ELFT>::Discarded;
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  case SHT_MIPS_REGINFO:
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    MipsReginfo.reset(new MipsReginfoInputSection<ELFT>(this, &Sec, Name));
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    return MipsReginfo.get();
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  case SHT_MIPS_OPTIONS:
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    MipsOptions.reset(new MipsOptionsInputSection<ELFT>(this, &Sec, Name));
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    return MipsOptions.get();
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  case SHT_MIPS_ABIFLAGS:
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    MipsAbiFlags.reset(new MipsAbiFlagsInputSection<ELFT>(this, &Sec, Name));
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    return MipsAbiFlags.get();
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  case SHT_RELA:
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  case SHT_REL: {
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    // This section contains relocation information.
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    // If -r is given, we do not interpret or apply relocation
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    // but just copy relocation sections to output.
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    if (Config->Relocatable)
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      return new (IAlloc.Allocate()) InputSection<ELFT>(this, &Sec, Name);
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    // Find the relocation target section and associate this
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    // section with it.
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    InputSectionBase<ELFT> *Target = getRelocTarget(Sec);
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    if (!Target)
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      return nullptr;
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    if (auto *S = dyn_cast<InputSection<ELFT>>(Target)) {
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      S->RelocSections.push_back(&Sec);
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      return nullptr;
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    }
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    if (auto *S = dyn_cast<EhInputSection<ELFT>>(Target)) {
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      if (S->RelocSection)
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        fatal(getFilename(this) +
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              ": multiple relocation sections to .eh_frame are not supported");
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      S->RelocSection = &Sec;
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      return nullptr;
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    }
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    fatal(getFilename(this) +
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          ": relocations pointing to SHF_MERGE are not supported");
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  }
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  }
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  // .note.GNU-stack is a marker section to control the presence of
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  // PT_GNU_STACK segment in outputs. Since the presence of the segment
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  // is controlled only by the command line option (-z execstack) in LLD,
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  // .note.GNU-stack is ignored.
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  if (Name == ".note.GNU-stack")
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    return &InputSection<ELFT>::Discarded;
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  if (Name == ".note.GNU-split-stack") {
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    error("objects using splitstacks are not supported");
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    return &InputSection<ELFT>::Discarded;
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  }
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  if (Config->Strip != StripPolicy::None && Name.startswith(".debug"))
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    return &InputSection<ELFT>::Discarded;
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  // The linker merges EH (exception handling) frames and creates a
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  // .eh_frame_hdr section for runtime. So we handle them with a special
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  // class. For relocatable outputs, they are just passed through.
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  if (Name == ".eh_frame" && !Config->Relocatable)
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    return new (EHAlloc.Allocate()) EhInputSection<ELFT>(this, &Sec, Name);
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  if (shouldMerge(Sec))
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    return new (MAlloc.Allocate()) MergeInputSection<ELFT>(this, &Sec, Name);
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  return new (IAlloc.Allocate()) InputSection<ELFT>(this, &Sec, Name);
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}
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template <class ELFT> void elf::ObjectFile<ELFT>::initializeSymbols() {
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  this->initStringTable();
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  Elf_Sym_Range Syms = this->getElfSymbols(false);
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  uint32_t NumSymbols = std::distance(Syms.begin(), Syms.end());
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  SymbolBodies.reserve(NumSymbols);
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  for (const Elf_Sym &Sym : Syms)
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    SymbolBodies.push_back(createSymbolBody(&Sym));
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}
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template <class ELFT>
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InputSectionBase<ELFT> *
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elf::ObjectFile<ELFT>::getSection(const Elf_Sym &Sym) const {
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  uint32_t Index = this->getSectionIndex(Sym);
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  if (Index == 0)
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    return nullptr;
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  if (Index >= Sections.size())
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    fatal(getFilename(this) + ": invalid section index: " + Twine(Index));
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  InputSectionBase<ELFT> *S = Sections[Index];
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  // We found that GNU assembler 2.17.50 [FreeBSD] 2007-07-03
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  // could generate broken objects. STT_SECTION symbols can be
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  // associated with SHT_REL[A]/SHT_SYMTAB/SHT_STRTAB sections.
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  // In this case it is fine for section to be null here as we
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  // do not allocate sections of these types.
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  if (!S || S == &InputSectionBase<ELFT>::Discarded)
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    return S;
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  return S->Repl;
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}
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template <class ELFT>
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SymbolBody *elf::ObjectFile<ELFT>::createSymbolBody(const Elf_Sym *Sym) {
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  int Binding = Sym->getBinding();
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  InputSectionBase<ELFT> *Sec = getSection(*Sym);
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  if (Binding == STB_LOCAL) {
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    if (Sym->st_shndx == SHN_UNDEF)
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      return new (this->Alloc)
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          Undefined(Sym->st_name, Sym->st_other, Sym->getType(), this);
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    return new (this->Alloc) DefinedRegular<ELFT>(*Sym, Sec);
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  }
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  StringRef Name = check(Sym->getName(this->StringTable));
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  switch (Sym->st_shndx) {
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  case SHN_UNDEF:
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    return elf::Symtab<ELFT>::X
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        ->addUndefined(Name, Binding, Sym->st_other, Sym->getType(),
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                       /*CanOmitFromDynSym*/ false, /*HasUnnamedAddr*/ false,
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                       this)
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        ->body();
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  case SHN_COMMON:
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    return elf::Symtab<ELFT>::X
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        ->addCommon(Name, Sym->st_size, Sym->st_value, Binding, Sym->st_other,
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                    Sym->getType(), /*HasUnnamedAddr*/ false, this)
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        ->body();
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  }
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  switch (Binding) {
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  default:
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    fatal(getFilename(this) + ": unexpected binding: " + Twine(Binding));
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  case STB_GLOBAL:
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  case STB_WEAK:
 | 
						|
  case STB_GNU_UNIQUE:
 | 
						|
    if (Sec == &InputSection<ELFT>::Discarded)
 | 
						|
      return elf::Symtab<ELFT>::X
 | 
						|
          ->addUndefined(Name, Binding, Sym->st_other, Sym->getType(),
 | 
						|
                         /*CanOmitFromDynSym*/ false,
 | 
						|
                         /*HasUnnamedAddr*/ false, this)
 | 
						|
          ->body();
 | 
						|
    return elf::Symtab<ELFT>::X->addRegular(Name, *Sym, Sec)->body();
 | 
						|
  }
 | 
						|
}
 | 
						|
 | 
						|
template <class ELFT> void ArchiveFile::parse() {
 | 
						|
  File = check(Archive::create(MB), "failed to parse archive");
 | 
						|
 | 
						|
  // Read the symbol table to construct Lazy objects.
 | 
						|
  for (const Archive::Symbol &Sym : File->symbols())
 | 
						|
    Symtab<ELFT>::X->addLazyArchive(this, Sym);
 | 
						|
}
 | 
						|
 | 
						|
// Returns a buffer pointing to a member file containing a given symbol.
 | 
						|
MemoryBufferRef ArchiveFile::getMember(const Archive::Symbol *Sym) {
 | 
						|
  Archive::Child C =
 | 
						|
      check(Sym->getMember(),
 | 
						|
            "could not get the member for symbol " + Sym->getName());
 | 
						|
 | 
						|
  if (!Seen.insert(C.getChildOffset()).second)
 | 
						|
    return MemoryBufferRef();
 | 
						|
 | 
						|
  MemoryBufferRef Ret =
 | 
						|
      check(C.getMemoryBufferRef(),
 | 
						|
            "could not get the buffer for the member defining symbol " +
 | 
						|
                Sym->getName());
 | 
						|
 | 
						|
  if (C.getParent()->isThin() && Driver->Cpio)
 | 
						|
    Driver->Cpio->append(relativeToRoot(check(C.getFullName())),
 | 
						|
                         Ret.getBuffer());
 | 
						|
 | 
						|
  return Ret;
 | 
						|
}
 | 
						|
 | 
						|
template <class ELFT>
 | 
						|
SharedFile<ELFT>::SharedFile(MemoryBufferRef M)
 | 
						|
    : ELFFileBase<ELFT>(Base::SharedKind, M), AsNeeded(Config->AsNeeded) {}
 | 
						|
 | 
						|
template <class ELFT>
 | 
						|
const typename ELFT::Shdr *
 | 
						|
SharedFile<ELFT>::getSection(const Elf_Sym &Sym) const {
 | 
						|
  uint32_t Index = this->getSectionIndex(Sym);
 | 
						|
  if (Index == 0)
 | 
						|
    return nullptr;
 | 
						|
  return check(this->ELFObj.getSection(Index));
 | 
						|
}
 | 
						|
 | 
						|
// Partially parse the shared object file so that we can call
 | 
						|
// getSoName on this object.
 | 
						|
template <class ELFT> void SharedFile<ELFT>::parseSoName() {
 | 
						|
  typedef typename ELFT::Dyn Elf_Dyn;
 | 
						|
  typedef typename ELFT::uint uintX_t;
 | 
						|
  const Elf_Shdr *DynamicSec = nullptr;
 | 
						|
 | 
						|
  const ELFFile<ELFT> Obj = this->ELFObj;
 | 
						|
  for (const Elf_Shdr &Sec : Obj.sections()) {
 | 
						|
    switch (Sec.sh_type) {
 | 
						|
    default:
 | 
						|
      continue;
 | 
						|
    case SHT_DYNSYM:
 | 
						|
      this->Symtab = &Sec;
 | 
						|
      break;
 | 
						|
    case SHT_DYNAMIC:
 | 
						|
      DynamicSec = &Sec;
 | 
						|
      break;
 | 
						|
    case SHT_SYMTAB_SHNDX:
 | 
						|
      this->SymtabSHNDX = check(Obj.getSHNDXTable(Sec));
 | 
						|
      break;
 | 
						|
    case SHT_GNU_versym:
 | 
						|
      this->VersymSec = &Sec;
 | 
						|
      break;
 | 
						|
    case SHT_GNU_verdef:
 | 
						|
      this->VerdefSec = &Sec;
 | 
						|
      break;
 | 
						|
    }
 | 
						|
  }
 | 
						|
 | 
						|
  this->initStringTable();
 | 
						|
 | 
						|
  // DSOs are identified by soname, and they usually contain
 | 
						|
  // DT_SONAME tag in their header. But if they are missing,
 | 
						|
  // filenames are used as default sonames.
 | 
						|
  SoName = sys::path::filename(this->getName());
 | 
						|
 | 
						|
  if (!DynamicSec)
 | 
						|
    return;
 | 
						|
  auto *Begin =
 | 
						|
      reinterpret_cast<const Elf_Dyn *>(Obj.base() + DynamicSec->sh_offset);
 | 
						|
  const Elf_Dyn *End = Begin + DynamicSec->sh_size / sizeof(Elf_Dyn);
 | 
						|
 | 
						|
  for (const Elf_Dyn &Dyn : make_range(Begin, End)) {
 | 
						|
    if (Dyn.d_tag == DT_SONAME) {
 | 
						|
      uintX_t Val = Dyn.getVal();
 | 
						|
      if (Val >= this->StringTable.size())
 | 
						|
        fatal(getFilename(this) + ": invalid DT_SONAME entry");
 | 
						|
      SoName = StringRef(this->StringTable.data() + Val);
 | 
						|
      return;
 | 
						|
    }
 | 
						|
  }
 | 
						|
}
 | 
						|
 | 
						|
// Parse the version definitions in the object file if present. Returns a vector
 | 
						|
// whose nth element contains a pointer to the Elf_Verdef for version identifier
 | 
						|
// n. Version identifiers that are not definitions map to nullptr. The array
 | 
						|
// always has at least length 1.
 | 
						|
template <class ELFT>
 | 
						|
std::vector<const typename ELFT::Verdef *>
 | 
						|
SharedFile<ELFT>::parseVerdefs(const Elf_Versym *&Versym) {
 | 
						|
  std::vector<const Elf_Verdef *> Verdefs(1);
 | 
						|
  // We only need to process symbol versions for this DSO if it has both a
 | 
						|
  // versym and a verdef section, which indicates that the DSO contains symbol
 | 
						|
  // version definitions.
 | 
						|
  if (!VersymSec || !VerdefSec)
 | 
						|
    return Verdefs;
 | 
						|
 | 
						|
  // The location of the first global versym entry.
 | 
						|
  Versym = reinterpret_cast<const Elf_Versym *>(this->ELFObj.base() +
 | 
						|
                                                VersymSec->sh_offset) +
 | 
						|
           this->Symtab->sh_info;
 | 
						|
 | 
						|
  // We cannot determine the largest verdef identifier without inspecting
 | 
						|
  // every Elf_Verdef, but both bfd and gold assign verdef identifiers
 | 
						|
  // sequentially starting from 1, so we predict that the largest identifier
 | 
						|
  // will be VerdefCount.
 | 
						|
  unsigned VerdefCount = VerdefSec->sh_info;
 | 
						|
  Verdefs.resize(VerdefCount + 1);
 | 
						|
 | 
						|
  // Build the Verdefs array by following the chain of Elf_Verdef objects
 | 
						|
  // from the start of the .gnu.version_d section.
 | 
						|
  const uint8_t *Verdef = this->ELFObj.base() + VerdefSec->sh_offset;
 | 
						|
  for (unsigned I = 0; I != VerdefCount; ++I) {
 | 
						|
    auto *CurVerdef = reinterpret_cast<const Elf_Verdef *>(Verdef);
 | 
						|
    Verdef += CurVerdef->vd_next;
 | 
						|
    unsigned VerdefIndex = CurVerdef->vd_ndx;
 | 
						|
    if (Verdefs.size() <= VerdefIndex)
 | 
						|
      Verdefs.resize(VerdefIndex + 1);
 | 
						|
    Verdefs[VerdefIndex] = CurVerdef;
 | 
						|
  }
 | 
						|
 | 
						|
  return Verdefs;
 | 
						|
}
 | 
						|
 | 
						|
// Fully parse the shared object file. This must be called after parseSoName().
 | 
						|
template <class ELFT> void SharedFile<ELFT>::parseRest() {
 | 
						|
  // Create mapping from version identifiers to Elf_Verdef entries.
 | 
						|
  const Elf_Versym *Versym = nullptr;
 | 
						|
  std::vector<const Elf_Verdef *> Verdefs = parseVerdefs(Versym);
 | 
						|
 | 
						|
  Elf_Sym_Range Syms = this->getElfSymbols(true);
 | 
						|
  for (const Elf_Sym &Sym : Syms) {
 | 
						|
    unsigned VersymIndex = 0;
 | 
						|
    if (Versym) {
 | 
						|
      VersymIndex = Versym->vs_index;
 | 
						|
      ++Versym;
 | 
						|
    }
 | 
						|
 | 
						|
    StringRef Name = check(Sym.getName(this->StringTable));
 | 
						|
    if (Sym.isUndefined()) {
 | 
						|
      Undefs.push_back(Name);
 | 
						|
      continue;
 | 
						|
    }
 | 
						|
 | 
						|
    if (Versym) {
 | 
						|
      // Ignore local symbols and non-default versions.
 | 
						|
      if (VersymIndex == VER_NDX_LOCAL || (VersymIndex & VERSYM_HIDDEN))
 | 
						|
        continue;
 | 
						|
    }
 | 
						|
 | 
						|
    const Elf_Verdef *V =
 | 
						|
        VersymIndex == VER_NDX_GLOBAL ? nullptr : Verdefs[VersymIndex];
 | 
						|
    elf::Symtab<ELFT>::X->addShared(this, Name, Sym, V);
 | 
						|
  }
 | 
						|
}
 | 
						|
 | 
						|
static ELFKind getBitcodeELFKind(MemoryBufferRef MB) {
 | 
						|
  Triple T(getBitcodeTargetTriple(MB, Driver->Context));
 | 
						|
  if (T.isLittleEndian())
 | 
						|
    return T.isArch64Bit() ? ELF64LEKind : ELF32LEKind;
 | 
						|
  return T.isArch64Bit() ? ELF64BEKind : ELF32BEKind;
 | 
						|
}
 | 
						|
 | 
						|
static uint8_t getBitcodeMachineKind(MemoryBufferRef MB) {
 | 
						|
  Triple T(getBitcodeTargetTriple(MB, Driver->Context));
 | 
						|
  switch (T.getArch()) {
 | 
						|
  case Triple::aarch64:
 | 
						|
    return EM_AARCH64;
 | 
						|
  case Triple::arm:
 | 
						|
    return EM_ARM;
 | 
						|
  case Triple::mips:
 | 
						|
  case Triple::mipsel:
 | 
						|
  case Triple::mips64:
 | 
						|
  case Triple::mips64el:
 | 
						|
    return EM_MIPS;
 | 
						|
  case Triple::ppc:
 | 
						|
    return EM_PPC;
 | 
						|
  case Triple::ppc64:
 | 
						|
    return EM_PPC64;
 | 
						|
  case Triple::x86:
 | 
						|
    return T.isOSIAMCU() ? EM_IAMCU : EM_386;
 | 
						|
  case Triple::x86_64:
 | 
						|
    return EM_X86_64;
 | 
						|
  default:
 | 
						|
    fatal(MB.getBufferIdentifier() +
 | 
						|
          ": could not infer e_machine from bitcode target triple " + T.str());
 | 
						|
  }
 | 
						|
}
 | 
						|
 | 
						|
BitcodeFile::BitcodeFile(MemoryBufferRef MB) : InputFile(BitcodeKind, MB) {
 | 
						|
  EKind = getBitcodeELFKind(MB);
 | 
						|
  EMachine = getBitcodeMachineKind(MB);
 | 
						|
}
 | 
						|
 | 
						|
static uint8_t getGvVisibility(const GlobalValue *GV) {
 | 
						|
  switch (GV->getVisibility()) {
 | 
						|
  case GlobalValue::DefaultVisibility:
 | 
						|
    return STV_DEFAULT;
 | 
						|
  case GlobalValue::HiddenVisibility:
 | 
						|
    return STV_HIDDEN;
 | 
						|
  case GlobalValue::ProtectedVisibility:
 | 
						|
    return STV_PROTECTED;
 | 
						|
  }
 | 
						|
  llvm_unreachable("unknown visibility");
 | 
						|
}
 | 
						|
 | 
						|
template <class ELFT>
 | 
						|
Symbol *BitcodeFile::createSymbol(const DenseSet<const Comdat *> &KeptComdats,
 | 
						|
                                  const IRObjectFile &Obj,
 | 
						|
                                  const BasicSymbolRef &Sym) {
 | 
						|
  const GlobalValue *GV = Obj.getSymbolGV(Sym.getRawDataRefImpl());
 | 
						|
 | 
						|
  SmallString<64> Name;
 | 
						|
  raw_svector_ostream OS(Name);
 | 
						|
  Sym.printName(OS);
 | 
						|
  StringRef NameRef = Saver.save(StringRef(Name));
 | 
						|
 | 
						|
  uint32_t Flags = Sym.getFlags();
 | 
						|
  uint32_t Binding = (Flags & BasicSymbolRef::SF_Weak) ? STB_WEAK : STB_GLOBAL;
 | 
						|
 | 
						|
  uint8_t Type = STT_NOTYPE;
 | 
						|
  uint8_t Visibility;
 | 
						|
  bool CanOmitFromDynSym = false;
 | 
						|
  bool HasUnnamedAddr = false;
 | 
						|
 | 
						|
  // FIXME: Expose a thread-local flag for module asm symbols.
 | 
						|
  if (GV) {
 | 
						|
    if (GV->isThreadLocal())
 | 
						|
      Type = STT_TLS;
 | 
						|
    CanOmitFromDynSym = canBeOmittedFromSymbolTable(GV);
 | 
						|
    Visibility = getGvVisibility(GV);
 | 
						|
    HasUnnamedAddr =
 | 
						|
        GV->getUnnamedAddr() == llvm::GlobalValue::UnnamedAddr::Global;
 | 
						|
  } else {
 | 
						|
    // FIXME: Set SF_Hidden flag correctly for module asm symbols, and expose
 | 
						|
    // protected visibility.
 | 
						|
    Visibility = STV_DEFAULT;
 | 
						|
  }
 | 
						|
 | 
						|
  if (GV)
 | 
						|
    if (const Comdat *C = GV->getComdat())
 | 
						|
      if (!KeptComdats.count(C))
 | 
						|
        return Symtab<ELFT>::X->addUndefined(NameRef, Binding, Visibility, Type,
 | 
						|
                                             CanOmitFromDynSym, HasUnnamedAddr,
 | 
						|
                                             this);
 | 
						|
 | 
						|
  const Module &M = Obj.getModule();
 | 
						|
  if (Flags & BasicSymbolRef::SF_Undefined)
 | 
						|
    return Symtab<ELFT>::X->addUndefined(NameRef, Binding, Visibility, Type,
 | 
						|
                                         CanOmitFromDynSym, HasUnnamedAddr,
 | 
						|
                                         this);
 | 
						|
  if (Flags & BasicSymbolRef::SF_Common) {
 | 
						|
    // FIXME: Set SF_Common flag correctly for module asm symbols, and expose
 | 
						|
    // size and alignment.
 | 
						|
    assert(GV);
 | 
						|
    const DataLayout &DL = M.getDataLayout();
 | 
						|
    uint64_t Size = DL.getTypeAllocSize(GV->getValueType());
 | 
						|
    return Symtab<ELFT>::X->addCommon(NameRef, Size, GV->getAlignment(),
 | 
						|
                                      Binding, Visibility, STT_OBJECT,
 | 
						|
                                      HasUnnamedAddr, this);
 | 
						|
  }
 | 
						|
  return Symtab<ELFT>::X->addBitcode(NameRef, Binding, Visibility, Type,
 | 
						|
                                     CanOmitFromDynSym, HasUnnamedAddr, this);
 | 
						|
}
 | 
						|
 | 
						|
bool BitcodeFile::shouldSkip(uint32_t Flags) {
 | 
						|
  return !(Flags & BasicSymbolRef::SF_Global) ||
 | 
						|
         (Flags & BasicSymbolRef::SF_FormatSpecific);
 | 
						|
}
 | 
						|
 | 
						|
template <class ELFT>
 | 
						|
void BitcodeFile::parse(DenseSet<StringRef> &ComdatGroups) {
 | 
						|
  Obj = check(IRObjectFile::create(MB, Driver->Context));
 | 
						|
  const Module &M = Obj->getModule();
 | 
						|
 | 
						|
  DenseSet<const Comdat *> KeptComdats;
 | 
						|
  for (const auto &P : M.getComdatSymbolTable()) {
 | 
						|
    StringRef N = Saver.save(P.first());
 | 
						|
    if (ComdatGroups.insert(N).second)
 | 
						|
      KeptComdats.insert(&P.second);
 | 
						|
  }
 | 
						|
 | 
						|
  for (const BasicSymbolRef &Sym : Obj->symbols())
 | 
						|
    if (!shouldSkip(Sym.getFlags()))
 | 
						|
      Symbols.push_back(createSymbol<ELFT>(KeptComdats, *Obj, Sym));
 | 
						|
}
 | 
						|
 | 
						|
template <template <class> class T>
 | 
						|
static InputFile *createELFFile(MemoryBufferRef MB) {
 | 
						|
  unsigned char Size;
 | 
						|
  unsigned char Endian;
 | 
						|
  std::tie(Size, Endian) = getElfArchType(MB.getBuffer());
 | 
						|
  if (Endian != ELFDATA2LSB && Endian != ELFDATA2MSB)
 | 
						|
    fatal("invalid data encoding: " + MB.getBufferIdentifier());
 | 
						|
 | 
						|
  InputFile *Obj;
 | 
						|
  if (Size == ELFCLASS32 && Endian == ELFDATA2LSB)
 | 
						|
    Obj = new T<ELF32LE>(MB);
 | 
						|
  else if (Size == ELFCLASS32 && Endian == ELFDATA2MSB)
 | 
						|
    Obj = new T<ELF32BE>(MB);
 | 
						|
  else if (Size == ELFCLASS64 && Endian == ELFDATA2LSB)
 | 
						|
    Obj = new T<ELF64LE>(MB);
 | 
						|
  else if (Size == ELFCLASS64 && Endian == ELFDATA2MSB)
 | 
						|
    Obj = new T<ELF64BE>(MB);
 | 
						|
  else
 | 
						|
    fatal("invalid file class: " + MB.getBufferIdentifier());
 | 
						|
 | 
						|
  if (!Config->FirstElf)
 | 
						|
    Config->FirstElf = Obj;
 | 
						|
  return Obj;
 | 
						|
}
 | 
						|
 | 
						|
template <class ELFT> InputFile *BinaryFile::createELF() {
 | 
						|
  // Wrap the binary blob with an ELF header and footer
 | 
						|
  // so that we can link it as a regular ELF file.
 | 
						|
  ELFCreator<ELFT> ELF(ET_REL, Config->EMachine);
 | 
						|
  auto DataSec = ELF.addSection(".data");
 | 
						|
  DataSec.Header->sh_flags = SHF_ALLOC;
 | 
						|
  DataSec.Header->sh_size = MB.getBufferSize();
 | 
						|
  DataSec.Header->sh_type = SHT_PROGBITS;
 | 
						|
  DataSec.Header->sh_addralign = 8;
 | 
						|
 | 
						|
  std::string Filepath = MB.getBufferIdentifier();
 | 
						|
  std::transform(Filepath.begin(), Filepath.end(), Filepath.begin(),
 | 
						|
                 [](char C) { return isalnum(C) ? C : '_'; });
 | 
						|
  std::string StartSym = "_binary_" + Filepath + "_start";
 | 
						|
  std::string EndSym = "_binary_" + Filepath + "_end";
 | 
						|
  std::string SizeSym = "_binary_" + Filepath + "_size";
 | 
						|
 | 
						|
  auto SSym = ELF.addSymbol(StartSym);
 | 
						|
  SSym.Sym->setBindingAndType(STB_GLOBAL, STT_OBJECT);
 | 
						|
  SSym.Sym->st_shndx = DataSec.Index;
 | 
						|
 | 
						|
  auto ESym = ELF.addSymbol(EndSym);
 | 
						|
  ESym.Sym->setBindingAndType(STB_GLOBAL, STT_OBJECT);
 | 
						|
  ESym.Sym->st_shndx = DataSec.Index;
 | 
						|
  ESym.Sym->st_value = MB.getBufferSize();
 | 
						|
 | 
						|
  auto SZSym = ELF.addSymbol(SizeSym);
 | 
						|
  SZSym.Sym->setBindingAndType(STB_GLOBAL, STT_OBJECT);
 | 
						|
  SZSym.Sym->st_shndx = SHN_ABS;
 | 
						|
  SZSym.Sym->st_value = MB.getBufferSize();
 | 
						|
 | 
						|
  std::size_t Size = ELF.layout();
 | 
						|
  ELFData.resize(Size);
 | 
						|
 | 
						|
  ELF.write(ELFData.data());
 | 
						|
 | 
						|
  // .data
 | 
						|
  std::copy(MB.getBufferStart(), MB.getBufferEnd(),
 | 
						|
            ELFData.data() + DataSec.Header->sh_offset);
 | 
						|
 | 
						|
  return createELFFile<ObjectFile>(MemoryBufferRef(
 | 
						|
      StringRef((char *)ELFData.data(), Size), MB.getBufferIdentifier()));
 | 
						|
}
 | 
						|
 | 
						|
static bool isBitcode(MemoryBufferRef MB) {
 | 
						|
  using namespace sys::fs;
 | 
						|
  return identify_magic(MB.getBuffer()) == file_magic::bitcode;
 | 
						|
}
 | 
						|
 | 
						|
InputFile *elf::createObjectFile(MemoryBufferRef MB, StringRef ArchiveName) {
 | 
						|
  InputFile *F =
 | 
						|
      isBitcode(MB) ? new BitcodeFile(MB) : createELFFile<ObjectFile>(MB);
 | 
						|
  F->ArchiveName = ArchiveName;
 | 
						|
  return F;
 | 
						|
}
 | 
						|
 | 
						|
InputFile *elf::createSharedFile(MemoryBufferRef MB) {
 | 
						|
  return createELFFile<SharedFile>(MB);
 | 
						|
}
 | 
						|
 | 
						|
MemoryBufferRef LazyObjectFile::getBuffer() {
 | 
						|
  if (Seen)
 | 
						|
    return MemoryBufferRef();
 | 
						|
  Seen = true;
 | 
						|
  return MB;
 | 
						|
}
 | 
						|
 | 
						|
template <class ELFT>
 | 
						|
void LazyObjectFile::parse() {
 | 
						|
  for (StringRef Sym : getSymbols())
 | 
						|
    Symtab<ELFT>::X->addLazyObject(Sym, *this);
 | 
						|
}
 | 
						|
 | 
						|
template <class ELFT> std::vector<StringRef> LazyObjectFile::getElfSymbols() {
 | 
						|
  typedef typename ELFT::Shdr Elf_Shdr;
 | 
						|
  typedef typename ELFT::Sym Elf_Sym;
 | 
						|
  typedef typename ELFT::SymRange Elf_Sym_Range;
 | 
						|
 | 
						|
  const ELFFile<ELFT> Obj = createELFObj<ELFT>(this->MB);
 | 
						|
  for (const Elf_Shdr &Sec : Obj.sections()) {
 | 
						|
    if (Sec.sh_type != SHT_SYMTAB)
 | 
						|
      continue;
 | 
						|
    Elf_Sym_Range Syms = Obj.symbols(&Sec);
 | 
						|
    uint32_t FirstNonLocal = Sec.sh_info;
 | 
						|
    StringRef StringTable = check(Obj.getStringTableForSymtab(Sec));
 | 
						|
    std::vector<StringRef> V;
 | 
						|
    for (const Elf_Sym &Sym : Syms.slice(FirstNonLocal))
 | 
						|
      if (Sym.st_shndx != SHN_UNDEF)
 | 
						|
        V.push_back(check(Sym.getName(StringTable)));
 | 
						|
    return V;
 | 
						|
  }
 | 
						|
  return {};
 | 
						|
}
 | 
						|
 | 
						|
std::vector<StringRef> LazyObjectFile::getBitcodeSymbols() {
 | 
						|
  LLVMContext Context;
 | 
						|
  std::unique_ptr<IRObjectFile> Obj =
 | 
						|
      check(IRObjectFile::create(this->MB, Context));
 | 
						|
  std::vector<StringRef> V;
 | 
						|
  for (const BasicSymbolRef &Sym : Obj->symbols()) {
 | 
						|
    uint32_t Flags = Sym.getFlags();
 | 
						|
    if (BitcodeFile::shouldSkip(Flags))
 | 
						|
      continue;
 | 
						|
    if (Flags & BasicSymbolRef::SF_Undefined)
 | 
						|
      continue;
 | 
						|
    SmallString<64> Name;
 | 
						|
    raw_svector_ostream OS(Name);
 | 
						|
    Sym.printName(OS);
 | 
						|
    V.push_back(Saver.save(StringRef(Name)));
 | 
						|
  }
 | 
						|
  return V;
 | 
						|
}
 | 
						|
 | 
						|
// Returns a vector of globally-visible defined symbol names.
 | 
						|
std::vector<StringRef> LazyObjectFile::getSymbols() {
 | 
						|
  if (isBitcode(this->MB))
 | 
						|
    return getBitcodeSymbols();
 | 
						|
 | 
						|
  unsigned char Size;
 | 
						|
  unsigned char Endian;
 | 
						|
  std::tie(Size, Endian) = getElfArchType(this->MB.getBuffer());
 | 
						|
  if (Size == ELFCLASS32) {
 | 
						|
    if (Endian == ELFDATA2LSB)
 | 
						|
      return getElfSymbols<ELF32LE>();
 | 
						|
    return getElfSymbols<ELF32BE>();
 | 
						|
  }
 | 
						|
  if (Endian == ELFDATA2LSB)
 | 
						|
    return getElfSymbols<ELF64LE>();
 | 
						|
  return getElfSymbols<ELF64BE>();
 | 
						|
}
 | 
						|
 | 
						|
template void ArchiveFile::parse<ELF32LE>();
 | 
						|
template void ArchiveFile::parse<ELF32BE>();
 | 
						|
template void ArchiveFile::parse<ELF64LE>();
 | 
						|
template void ArchiveFile::parse<ELF64BE>();
 | 
						|
 | 
						|
template void BitcodeFile::parse<ELF32LE>(DenseSet<StringRef> &);
 | 
						|
template void BitcodeFile::parse<ELF32BE>(DenseSet<StringRef> &);
 | 
						|
template void BitcodeFile::parse<ELF64LE>(DenseSet<StringRef> &);
 | 
						|
template void BitcodeFile::parse<ELF64BE>(DenseSet<StringRef> &);
 | 
						|
 | 
						|
template void LazyObjectFile::parse<ELF32LE>();
 | 
						|
template void LazyObjectFile::parse<ELF32BE>();
 | 
						|
template void LazyObjectFile::parse<ELF64LE>();
 | 
						|
template void LazyObjectFile::parse<ELF64BE>();
 | 
						|
 | 
						|
template class elf::ELFFileBase<ELF32LE>;
 | 
						|
template class elf::ELFFileBase<ELF32BE>;
 | 
						|
template class elf::ELFFileBase<ELF64LE>;
 | 
						|
template class elf::ELFFileBase<ELF64BE>;
 | 
						|
 | 
						|
template class elf::ObjectFile<ELF32LE>;
 | 
						|
template class elf::ObjectFile<ELF32BE>;
 | 
						|
template class elf::ObjectFile<ELF64LE>;
 | 
						|
template class elf::ObjectFile<ELF64BE>;
 | 
						|
 | 
						|
template class elf::SharedFile<ELF32LE>;
 | 
						|
template class elf::SharedFile<ELF32BE>;
 | 
						|
template class elf::SharedFile<ELF64LE>;
 | 
						|
template class elf::SharedFile<ELF64BE>;
 | 
						|
 | 
						|
template InputFile *BinaryFile::createELF<ELF32LE>();
 | 
						|
template InputFile *BinaryFile::createELF<ELF32BE>();
 | 
						|
template InputFile *BinaryFile::createELF<ELF64LE>();
 | 
						|
template InputFile *BinaryFile::createELF<ELF64BE>();
 |