Home | History | Annotate | Line # | Download | only in InterfaceStub
      1 //===- ELFObjHandler.cpp --------------------------------------------------===//
      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 #include "llvm/InterfaceStub/ELFObjHandler.h"
     10 #include "llvm/InterfaceStub/ELFStub.h"
     11 #include "llvm/MC/StringTableBuilder.h"
     12 #include "llvm/Object/Binary.h"
     13 #include "llvm/Object/ELFObjectFile.h"
     14 #include "llvm/Object/ELFTypes.h"
     15 #include "llvm/Support/Errc.h"
     16 #include "llvm/Support/Error.h"
     17 #include "llvm/Support/FileOutputBuffer.h"
     18 #include "llvm/Support/MathExtras.h"
     19 #include "llvm/Support/MemoryBuffer.h"
     20 #include "llvm/Support/Process.h"
     21 
     22 using llvm::MemoryBufferRef;
     23 using llvm::object::ELFObjectFile;
     24 
     25 using namespace llvm;
     26 using namespace llvm::object;
     27 using namespace llvm::ELF;
     28 
     29 namespace llvm {
     30 namespace elfabi {
     31 
     32 // Simple struct to hold relevant .dynamic entries.
     33 struct DynamicEntries {
     34   uint64_t StrTabAddr = 0;
     35   uint64_t StrSize = 0;
     36   Optional<uint64_t> SONameOffset;
     37   std::vector<uint64_t> NeededLibNames;
     38   // Symbol table:
     39   uint64_t DynSymAddr = 0;
     40   // Hash tables:
     41   Optional<uint64_t> ElfHash;
     42   Optional<uint64_t> GnuHash;
     43 };
     44 
     45 /// This initializes an ELF file header with information specific to a binary
     46 /// dynamic shared object.
     47 /// Offsets, indexes, links, etc. for section and program headers are just
     48 /// zero-initialized as they will be updated elsewhere.
     49 ///
     50 /// @param ElfHeader Target ELFT::Ehdr to populate.
     51 /// @param Machine Target architecture (e_machine from ELF specifications).
     52 template <class ELFT>
     53 static void initELFHeader(typename ELFT::Ehdr &ElfHeader, uint16_t Machine) {
     54   memset(&ElfHeader, 0, sizeof(ElfHeader));
     55   // ELF identification.
     56   ElfHeader.e_ident[EI_MAG0] = ElfMagic[EI_MAG0];
     57   ElfHeader.e_ident[EI_MAG1] = ElfMagic[EI_MAG1];
     58   ElfHeader.e_ident[EI_MAG2] = ElfMagic[EI_MAG2];
     59   ElfHeader.e_ident[EI_MAG3] = ElfMagic[EI_MAG3];
     60   ElfHeader.e_ident[EI_CLASS] = ELFT::Is64Bits ? ELFCLASS64 : ELFCLASS32;
     61   bool IsLittleEndian = ELFT::TargetEndianness == support::little;
     62   ElfHeader.e_ident[EI_DATA] = IsLittleEndian ? ELFDATA2LSB : ELFDATA2MSB;
     63   ElfHeader.e_ident[EI_VERSION] = EV_CURRENT;
     64   ElfHeader.e_ident[EI_OSABI] = ELFOSABI_NONE;
     65 
     66   // Remainder of ELF header.
     67   ElfHeader.e_type = ET_DYN;
     68   ElfHeader.e_machine = Machine;
     69   ElfHeader.e_version = EV_CURRENT;
     70   ElfHeader.e_ehsize = sizeof(typename ELFT::Ehdr);
     71   ElfHeader.e_phentsize = sizeof(typename ELFT::Phdr);
     72   ElfHeader.e_shentsize = sizeof(typename ELFT::Shdr);
     73 }
     74 
     75 namespace {
     76 template <class ELFT> struct OutputSection {
     77   using Elf_Shdr = typename ELFT::Shdr;
     78   std::string Name;
     79   Elf_Shdr Shdr;
     80   uint64_t Addr;
     81   uint64_t Offset;
     82   uint64_t Size;
     83   uint64_t Align;
     84   uint32_t Index;
     85   bool NoBits = true;
     86 };
     87 
     88 template <class T, class ELFT>
     89 struct ContentSection : public OutputSection<ELFT> {
     90   T Content;
     91   ContentSection() { this->NoBits = false; }
     92 };
     93 
     94 // This class just wraps StringTableBuilder for the purpose of adding a
     95 // default constructor.
     96 class ELFStringTableBuilder : public StringTableBuilder {
     97 public:
     98   ELFStringTableBuilder() : StringTableBuilder(StringTableBuilder::ELF) {}
     99 };
    100 
    101 template <class ELFT> class ELFSymbolTableBuilder {
    102 public:
    103   using Elf_Sym = typename ELFT::Sym;
    104 
    105   ELFSymbolTableBuilder() { Symbols.push_back({}); }
    106 
    107   void add(size_t StNameOffset, uint64_t StSize, uint8_t StBind, uint8_t StType,
    108            uint8_t StOther, uint16_t StShndx) {
    109     Elf_Sym S{};
    110     S.st_name = StNameOffset;
    111     S.st_size = StSize;
    112     S.st_info = (StBind << 4) | (StType & 0xf);
    113     S.st_other = StOther;
    114     S.st_shndx = StShndx;
    115     Symbols.push_back(S);
    116   }
    117 
    118   size_t getSize() const { return Symbols.size() * sizeof(Elf_Sym); }
    119 
    120   void write(uint8_t *Buf) const {
    121     memcpy(Buf, Symbols.data(), sizeof(Elf_Sym) * Symbols.size());
    122   }
    123 
    124 private:
    125   llvm::SmallVector<Elf_Sym, 8> Symbols;
    126 };
    127 
    128 template <class ELFT> class ELFDynamicTableBuilder {
    129 public:
    130   using Elf_Dyn = typename ELFT::Dyn;
    131 
    132   size_t addAddr(uint64_t Tag, uint64_t Addr) {
    133     Elf_Dyn Entry;
    134     Entry.d_tag = Tag;
    135     Entry.d_un.d_ptr = Addr;
    136     Entries.push_back(Entry);
    137     return Entries.size() - 1;
    138   }
    139 
    140   void modifyAddr(size_t Index, uint64_t Addr) {
    141     Entries[Index].d_un.d_ptr = Addr;
    142   }
    143 
    144   size_t addValue(uint64_t Tag, uint64_t Value) {
    145     Elf_Dyn Entry;
    146     Entry.d_tag = Tag;
    147     Entry.d_un.d_val = Value;
    148     Entries.push_back(Entry);
    149     return Entries.size() - 1;
    150   }
    151 
    152   void modifyValue(size_t Index, uint64_t Value) {
    153     Entries[Index].d_un.d_val = Value;
    154   }
    155 
    156   size_t getSize() const {
    157     // Add DT_NULL entry at the end.
    158     return (Entries.size() + 1) * sizeof(Elf_Dyn);
    159   }
    160 
    161   void write(uint8_t *Buf) const {
    162     memcpy(Buf, Entries.data(), sizeof(Elf_Dyn) * Entries.size());
    163     // Add DT_NULL entry at the end.
    164     memset(Buf + sizeof(Elf_Dyn) * Entries.size(), 0, sizeof(Elf_Dyn));
    165   }
    166 
    167 private:
    168   llvm::SmallVector<Elf_Dyn, 8> Entries;
    169 };
    170 
    171 template <class ELFT> class ELFStubBuilder {
    172 public:
    173   using Elf_Ehdr = typename ELFT::Ehdr;
    174   using Elf_Shdr = typename ELFT::Shdr;
    175   using Elf_Phdr = typename ELFT::Phdr;
    176   using Elf_Sym = typename ELFT::Sym;
    177   using Elf_Addr = typename ELFT::Addr;
    178   using Elf_Dyn = typename ELFT::Dyn;
    179 
    180   ELFStubBuilder(const ELFStubBuilder &) = delete;
    181   ELFStubBuilder(ELFStubBuilder &&) = default;
    182 
    183   explicit ELFStubBuilder(const ELFStub &Stub) {
    184     DynSym.Name = ".dynsym";
    185     DynSym.Align = sizeof(Elf_Addr);
    186     DynStr.Name = ".dynstr";
    187     DynStr.Align = 1;
    188     DynTab.Name = ".dynamic";
    189     DynTab.Align = sizeof(Elf_Addr);
    190     ShStrTab.Name = ".shstrtab";
    191     ShStrTab.Align = 1;
    192 
    193     // Populate string tables.
    194     for (const ELFSymbol &Sym : Stub.Symbols)
    195       DynStr.Content.add(Sym.Name);
    196     for (const std::string &Lib : Stub.NeededLibs)
    197       DynStr.Content.add(Lib);
    198     if (Stub.SoName)
    199       DynStr.Content.add(Stub.SoName.getValue());
    200 
    201     std::vector<OutputSection<ELFT> *> Sections = {&DynSym, &DynStr, &DynTab,
    202                                                    &ShStrTab};
    203     const OutputSection<ELFT> *LastSection = Sections.back();
    204     // Now set the Index and put sections names into ".shstrtab".
    205     uint64_t Index = 1;
    206     for (OutputSection<ELFT> *Sec : Sections) {
    207       Sec->Index = Index++;
    208       ShStrTab.Content.add(Sec->Name);
    209     }
    210     ShStrTab.Content.finalize();
    211     ShStrTab.Size = ShStrTab.Content.getSize();
    212     DynStr.Content.finalize();
    213     DynStr.Size = DynStr.Content.getSize();
    214 
    215     // Populate dynamic symbol table.
    216     for (const ELFSymbol &Sym : Stub.Symbols) {
    217       uint8_t Bind = Sym.Weak ? STB_WEAK : STB_GLOBAL;
    218       // For non-undefined symbols, value of the shndx is not relevant at link
    219       // time as long as it is not SHN_UNDEF. Set shndx to 1, which
    220       // points to ".dynsym".
    221       uint16_t Shndx = Sym.Undefined ? SHN_UNDEF : 1;
    222       DynSym.Content.add(DynStr.Content.getOffset(Sym.Name), Sym.Size, Bind,
    223                          (uint8_t)Sym.Type, 0, Shndx);
    224     }
    225     DynSym.Size = DynSym.Content.getSize();
    226 
    227     // Poplulate dynamic table.
    228     size_t DynSymIndex = DynTab.Content.addAddr(DT_SYMTAB, 0);
    229     size_t DynStrIndex = DynTab.Content.addAddr(DT_STRTAB, 0);
    230     for (const std::string &Lib : Stub.NeededLibs)
    231       DynTab.Content.addValue(DT_NEEDED, DynStr.Content.getOffset(Lib));
    232     if (Stub.SoName)
    233       DynTab.Content.addValue(DT_SONAME,
    234                               DynStr.Content.getOffset(Stub.SoName.getValue()));
    235     DynTab.Size = DynTab.Content.getSize();
    236     // Calculate sections' addresses and offsets.
    237     uint64_t CurrentOffset = sizeof(Elf_Ehdr);
    238     for (OutputSection<ELFT> *Sec : Sections) {
    239       Sec->Offset = alignTo(CurrentOffset, Sec->Align);
    240       Sec->Addr = Sec->Offset;
    241       CurrentOffset = Sec->Offset + Sec->Size;
    242     }
    243     // Fill Addr back to dynamic table.
    244     DynTab.Content.modifyAddr(DynSymIndex, DynSym.Addr);
    245     DynTab.Content.modifyAddr(DynStrIndex, DynStr.Addr);
    246     // Write section headers of string tables.
    247     fillSymTabShdr(DynSym, SHT_DYNSYM);
    248     fillStrTabShdr(DynStr, SHF_ALLOC);
    249     fillDynTabShdr(DynTab);
    250     fillStrTabShdr(ShStrTab);
    251 
    252     // Finish initializing the ELF header.
    253     initELFHeader<ELFT>(ElfHeader, Stub.Arch);
    254     ElfHeader.e_shstrndx = ShStrTab.Index;
    255     ElfHeader.e_shnum = LastSection->Index + 1;
    256     ElfHeader.e_shoff =
    257         alignTo(LastSection->Offset + LastSection->Size, sizeof(Elf_Addr));
    258   }
    259 
    260   size_t getSize() const {
    261     return ElfHeader.e_shoff + ElfHeader.e_shnum * sizeof(Elf_Shdr);
    262   }
    263 
    264   void write(uint8_t *Data) const {
    265     write(Data, ElfHeader);
    266     DynSym.Content.write(Data + DynSym.Shdr.sh_offset);
    267     DynStr.Content.write(Data + DynStr.Shdr.sh_offset);
    268     DynTab.Content.write(Data + DynTab.Shdr.sh_offset);
    269     ShStrTab.Content.write(Data + ShStrTab.Shdr.sh_offset);
    270     writeShdr(Data, DynSym);
    271     writeShdr(Data, DynStr);
    272     writeShdr(Data, DynTab);
    273     writeShdr(Data, ShStrTab);
    274   }
    275 
    276 private:
    277   Elf_Ehdr ElfHeader;
    278   ContentSection<ELFStringTableBuilder, ELFT> DynStr;
    279   ContentSection<ELFStringTableBuilder, ELFT> ShStrTab;
    280   ContentSection<ELFSymbolTableBuilder<ELFT>, ELFT> DynSym;
    281   ContentSection<ELFDynamicTableBuilder<ELFT>, ELFT> DynTab;
    282 
    283   template <class T> static void write(uint8_t *Data, const T &Value) {
    284     *reinterpret_cast<T *>(Data) = Value;
    285   }
    286 
    287   void fillStrTabShdr(ContentSection<ELFStringTableBuilder, ELFT> &StrTab,
    288                       uint32_t ShFlags = 0) const {
    289     StrTab.Shdr.sh_type = SHT_STRTAB;
    290     StrTab.Shdr.sh_flags = ShFlags;
    291     StrTab.Shdr.sh_addr = StrTab.Addr;
    292     StrTab.Shdr.sh_offset = StrTab.Offset;
    293     StrTab.Shdr.sh_info = 0;
    294     StrTab.Shdr.sh_size = StrTab.Size;
    295     StrTab.Shdr.sh_name = ShStrTab.Content.getOffset(StrTab.Name);
    296     StrTab.Shdr.sh_addralign = StrTab.Align;
    297     StrTab.Shdr.sh_entsize = 0;
    298     StrTab.Shdr.sh_link = 0;
    299   }
    300   void fillSymTabShdr(ContentSection<ELFSymbolTableBuilder<ELFT>, ELFT> &SymTab,
    301                       uint32_t ShType) const {
    302     SymTab.Shdr.sh_type = ShType;
    303     SymTab.Shdr.sh_flags = SHF_ALLOC;
    304     SymTab.Shdr.sh_addr = SymTab.Addr;
    305     SymTab.Shdr.sh_offset = SymTab.Offset;
    306     // Only non-local symbols are included in the tbe file, so .dynsym only
    307     // contains 1 local symbol (the undefined symbol at index 0). The sh_info
    308     // should always be 1.
    309     SymTab.Shdr.sh_info = 1;
    310     SymTab.Shdr.sh_size = SymTab.Size;
    311     SymTab.Shdr.sh_name = this->ShStrTab.Content.getOffset(SymTab.Name);
    312     SymTab.Shdr.sh_addralign = SymTab.Align;
    313     SymTab.Shdr.sh_entsize = sizeof(Elf_Sym);
    314     SymTab.Shdr.sh_link = this->DynStr.Index;
    315   }
    316   void fillDynTabShdr(
    317       ContentSection<ELFDynamicTableBuilder<ELFT>, ELFT> &DynTab) const {
    318     DynTab.Shdr.sh_type = SHT_DYNAMIC;
    319     DynTab.Shdr.sh_flags = SHF_ALLOC;
    320     DynTab.Shdr.sh_addr = DynTab.Addr;
    321     DynTab.Shdr.sh_offset = DynTab.Offset;
    322     DynTab.Shdr.sh_info = 0;
    323     DynTab.Shdr.sh_size = DynTab.Size;
    324     DynTab.Shdr.sh_name = this->ShStrTab.Content.getOffset(DynTab.Name);
    325     DynTab.Shdr.sh_addralign = DynTab.Align;
    326     DynTab.Shdr.sh_entsize = sizeof(Elf_Dyn);
    327     DynTab.Shdr.sh_link = this->DynStr.Index;
    328   }
    329   uint64_t shdrOffset(const OutputSection<ELFT> &Sec) const {
    330     return ElfHeader.e_shoff + Sec.Index * sizeof(Elf_Shdr);
    331   }
    332 
    333   void writeShdr(uint8_t *Data, const OutputSection<ELFT> &Sec) const {
    334     write(Data + shdrOffset(Sec), Sec.Shdr);
    335   }
    336 };
    337 } // end anonymous namespace
    338 
    339 /// This function behaves similarly to StringRef::substr(), but attempts to
    340 /// terminate the returned StringRef at the first null terminator. If no null
    341 /// terminator is found, an error is returned.
    342 ///
    343 /// @param Str Source string to create a substring from.
    344 /// @param Offset The start index of the desired substring.
    345 static Expected<StringRef> terminatedSubstr(StringRef Str, size_t Offset) {
    346   size_t StrEnd = Str.find('\0', Offset);
    347   if (StrEnd == StringLiteral::npos) {
    348     return createError(
    349         "String overran bounds of string table (no null terminator)");
    350   }
    351 
    352   size_t StrLen = StrEnd - Offset;
    353   return Str.substr(Offset, StrLen);
    354 }
    355 
    356 /// This function takes an error, and appends a string of text to the end of
    357 /// that error. Since "appending" to an Error isn't supported behavior of an
    358 /// Error, this function technically creates a new error with the combined
    359 /// message and consumes the old error.
    360 ///
    361 /// @param Err Source error.
    362 /// @param After Text to append at the end of Err's error message.
    363 Error appendToError(Error Err, StringRef After) {
    364   std::string Message;
    365   raw_string_ostream Stream(Message);
    366   Stream << Err;
    367   Stream << " " << After;
    368   consumeError(std::move(Err));
    369   return createError(Stream.str().c_str());
    370 }
    371 
    372 /// This function populates a DynamicEntries struct using an ELFT::DynRange.
    373 /// After populating the struct, the members are validated with
    374 /// some basic sanity checks.
    375 ///
    376 /// @param Dyn Target DynamicEntries struct to populate.
    377 /// @param DynTable Source dynamic table.
    378 template <class ELFT>
    379 static Error populateDynamic(DynamicEntries &Dyn,
    380                              typename ELFT::DynRange DynTable) {
    381   if (DynTable.empty())
    382     return createError("No .dynamic section found");
    383 
    384   // Search .dynamic for relevant entries.
    385   bool FoundDynStr = false;
    386   bool FoundDynStrSz = false;
    387   bool FoundDynSym = false;
    388   for (auto &Entry : DynTable) {
    389     switch (Entry.d_tag) {
    390     case DT_SONAME:
    391       Dyn.SONameOffset = Entry.d_un.d_val;
    392       break;
    393     case DT_STRTAB:
    394       Dyn.StrTabAddr = Entry.d_un.d_ptr;
    395       FoundDynStr = true;
    396       break;
    397     case DT_STRSZ:
    398       Dyn.StrSize = Entry.d_un.d_val;
    399       FoundDynStrSz = true;
    400       break;
    401     case DT_NEEDED:
    402       Dyn.NeededLibNames.push_back(Entry.d_un.d_val);
    403       break;
    404     case DT_SYMTAB:
    405       Dyn.DynSymAddr = Entry.d_un.d_ptr;
    406       FoundDynSym = true;
    407       break;
    408     case DT_HASH:
    409       Dyn.ElfHash = Entry.d_un.d_ptr;
    410       break;
    411     case DT_GNU_HASH:
    412       Dyn.GnuHash = Entry.d_un.d_ptr;
    413     }
    414   }
    415 
    416   if (!FoundDynStr) {
    417     return createError(
    418         "Couldn't locate dynamic string table (no DT_STRTAB entry)");
    419   }
    420   if (!FoundDynStrSz) {
    421     return createError(
    422         "Couldn't determine dynamic string table size (no DT_STRSZ entry)");
    423   }
    424   if (!FoundDynSym) {
    425     return createError(
    426         "Couldn't locate dynamic symbol table (no DT_SYMTAB entry)");
    427   }
    428   if (Dyn.SONameOffset.hasValue() && *Dyn.SONameOffset >= Dyn.StrSize) {
    429     return createStringError(object_error::parse_failed,
    430                              "DT_SONAME string offset (0x%016" PRIx64
    431                              ") outside of dynamic string table",
    432                              *Dyn.SONameOffset);
    433   }
    434   for (uint64_t Offset : Dyn.NeededLibNames) {
    435     if (Offset >= Dyn.StrSize) {
    436       return createStringError(object_error::parse_failed,
    437                                "DT_NEEDED string offset (0x%016" PRIx64
    438                                ") outside of dynamic string table",
    439                                Offset);
    440     }
    441   }
    442 
    443   return Error::success();
    444 }
    445 
    446 /// This function extracts symbol type from a symbol's st_info member and
    447 /// maps it to an ELFSymbolType enum.
    448 /// Currently, STT_NOTYPE, STT_OBJECT, STT_FUNC, and STT_TLS are supported.
    449 /// Other symbol types are mapped to ELFSymbolType::Unknown.
    450 ///
    451 /// @param Info Binary symbol st_info to extract symbol type from.
    452 static ELFSymbolType convertInfoToType(uint8_t Info) {
    453   Info = Info & 0xf;
    454   switch (Info) {
    455   case ELF::STT_NOTYPE:
    456     return ELFSymbolType::NoType;
    457   case ELF::STT_OBJECT:
    458     return ELFSymbolType::Object;
    459   case ELF::STT_FUNC:
    460     return ELFSymbolType::Func;
    461   case ELF::STT_TLS:
    462     return ELFSymbolType::TLS;
    463   default:
    464     return ELFSymbolType::Unknown;
    465   }
    466 }
    467 
    468 /// This function creates an ELFSymbol and populates all members using
    469 /// information from a binary ELFT::Sym.
    470 ///
    471 /// @param SymName The desired name of the ELFSymbol.
    472 /// @param RawSym ELFT::Sym to extract symbol information from.
    473 template <class ELFT>
    474 static ELFSymbol createELFSym(StringRef SymName,
    475                               const typename ELFT::Sym &RawSym) {
    476   ELFSymbol TargetSym{std::string(SymName)};
    477   uint8_t Binding = RawSym.getBinding();
    478   if (Binding == STB_WEAK)
    479     TargetSym.Weak = true;
    480   else
    481     TargetSym.Weak = false;
    482 
    483   TargetSym.Undefined = RawSym.isUndefined();
    484   TargetSym.Type = convertInfoToType(RawSym.st_info);
    485 
    486   if (TargetSym.Type == ELFSymbolType::Func) {
    487     TargetSym.Size = 0;
    488   } else {
    489     TargetSym.Size = RawSym.st_size;
    490   }
    491   return TargetSym;
    492 }
    493 
    494 /// This function populates an ELFStub with symbols using information read
    495 /// from an ELF binary.
    496 ///
    497 /// @param TargetStub ELFStub to add symbols to.
    498 /// @param DynSym Range of dynamic symbols to add to TargetStub.
    499 /// @param DynStr StringRef to the dynamic string table.
    500 template <class ELFT>
    501 static Error populateSymbols(ELFStub &TargetStub,
    502                              const typename ELFT::SymRange DynSym,
    503                              StringRef DynStr) {
    504   // Skips the first symbol since it's the NULL symbol.
    505   for (auto RawSym : DynSym.drop_front(1)) {
    506     // If a symbol does not have global or weak binding, ignore it.
    507     uint8_t Binding = RawSym.getBinding();
    508     if (!(Binding == STB_GLOBAL || Binding == STB_WEAK))
    509       continue;
    510     // If a symbol doesn't have default or protected visibility, ignore it.
    511     uint8_t Visibility = RawSym.getVisibility();
    512     if (!(Visibility == STV_DEFAULT || Visibility == STV_PROTECTED))
    513       continue;
    514     // Create an ELFSymbol and populate it with information from the symbol
    515     // table entry.
    516     Expected<StringRef> SymName = terminatedSubstr(DynStr, RawSym.st_name);
    517     if (!SymName)
    518       return SymName.takeError();
    519     ELFSymbol Sym = createELFSym<ELFT>(*SymName, RawSym);
    520     TargetStub.Symbols.insert(std::move(Sym));
    521     // TODO: Populate symbol warning.
    522   }
    523   return Error::success();
    524 }
    525 
    526 /// Returns a new ELFStub with all members populated from an ELFObjectFile.
    527 /// @param ElfObj Source ELFObjectFile.
    528 template <class ELFT>
    529 static Expected<std::unique_ptr<ELFStub>>
    530 buildStub(const ELFObjectFile<ELFT> &ElfObj) {
    531   using Elf_Dyn_Range = typename ELFT::DynRange;
    532   using Elf_Phdr_Range = typename ELFT::PhdrRange;
    533   using Elf_Sym_Range = typename ELFT::SymRange;
    534   using Elf_Sym = typename ELFT::Sym;
    535   std::unique_ptr<ELFStub> DestStub = std::make_unique<ELFStub>();
    536   const ELFFile<ELFT> &ElfFile = ElfObj.getELFFile();
    537   // Fetch .dynamic table.
    538   Expected<Elf_Dyn_Range> DynTable = ElfFile.dynamicEntries();
    539   if (!DynTable) {
    540     return DynTable.takeError();
    541   }
    542 
    543   // Fetch program headers.
    544   Expected<Elf_Phdr_Range> PHdrs = ElfFile.program_headers();
    545   if (!PHdrs) {
    546     return PHdrs.takeError();
    547   }
    548 
    549   // Collect relevant .dynamic entries.
    550   DynamicEntries DynEnt;
    551   if (Error Err = populateDynamic<ELFT>(DynEnt, *DynTable))
    552     return std::move(Err);
    553 
    554   // Get pointer to in-memory location of .dynstr section.
    555   Expected<const uint8_t *> DynStrPtr = ElfFile.toMappedAddr(DynEnt.StrTabAddr);
    556   if (!DynStrPtr)
    557     return appendToError(DynStrPtr.takeError(),
    558                          "when locating .dynstr section contents");
    559 
    560   StringRef DynStr(reinterpret_cast<const char *>(DynStrPtr.get()),
    561                    DynEnt.StrSize);
    562 
    563   // Populate Arch from ELF header.
    564   DestStub->Arch = ElfFile.getHeader().e_machine;
    565 
    566   // Populate SoName from .dynamic entries and dynamic string table.
    567   if (DynEnt.SONameOffset.hasValue()) {
    568     Expected<StringRef> NameOrErr =
    569         terminatedSubstr(DynStr, *DynEnt.SONameOffset);
    570     if (!NameOrErr) {
    571       return appendToError(NameOrErr.takeError(), "when reading DT_SONAME");
    572     }
    573     DestStub->SoName = std::string(*NameOrErr);
    574   }
    575 
    576   // Populate NeededLibs from .dynamic entries and dynamic string table.
    577   for (uint64_t NeededStrOffset : DynEnt.NeededLibNames) {
    578     Expected<StringRef> LibNameOrErr =
    579         terminatedSubstr(DynStr, NeededStrOffset);
    580     if (!LibNameOrErr) {
    581       return appendToError(LibNameOrErr.takeError(), "when reading DT_NEEDED");
    582     }
    583     DestStub->NeededLibs.push_back(std::string(*LibNameOrErr));
    584   }
    585 
    586   // Populate Symbols from .dynsym table and dynamic string table.
    587   Expected<uint64_t> SymCount = ElfFile.getDynSymtabSize();
    588   if (!SymCount)
    589     return SymCount.takeError();
    590   if (*SymCount > 0) {
    591     // Get pointer to in-memory location of .dynsym section.
    592     Expected<const uint8_t *> DynSymPtr =
    593         ElfFile.toMappedAddr(DynEnt.DynSymAddr);
    594     if (!DynSymPtr)
    595       return appendToError(DynSymPtr.takeError(),
    596                            "when locating .dynsym section contents");
    597     Elf_Sym_Range DynSyms = ArrayRef<Elf_Sym>(
    598         reinterpret_cast<const Elf_Sym *>(*DynSymPtr), *SymCount);
    599     Error SymReadError = populateSymbols<ELFT>(*DestStub, DynSyms, DynStr);
    600     if (SymReadError)
    601       return appendToError(std::move(SymReadError),
    602                            "when reading dynamic symbols");
    603   }
    604 
    605   return std::move(DestStub);
    606 }
    607 
    608 /// This function opens a file for writing and then writes a binary ELF stub to
    609 /// the file.
    610 ///
    611 /// @param FilePath File path for writing the ELF binary.
    612 /// @param Stub Source ELFStub to generate a binary ELF stub from.
    613 template <class ELFT>
    614 static Error writeELFBinaryToFile(StringRef FilePath, const ELFStub &Stub,
    615                                   bool WriteIfChanged) {
    616   ELFStubBuilder<ELFT> Builder{Stub};
    617   // Write Stub to memory first.
    618   std::vector<uint8_t> Buf(Builder.getSize());
    619   Builder.write(Buf.data());
    620 
    621   if (WriteIfChanged) {
    622     if (ErrorOr<std::unique_ptr<MemoryBuffer>> BufOrError =
    623             MemoryBuffer::getFile(FilePath)) {
    624       // Compare Stub output with existing Stub file.
    625       // If Stub file unchanged, abort updating.
    626       if ((*BufOrError)->getBufferSize() == Builder.getSize() &&
    627           !memcmp((*BufOrError)->getBufferStart(), Buf.data(),
    628                   Builder.getSize()))
    629         return Error::success();
    630     }
    631   }
    632 
    633   Expected<std::unique_ptr<FileOutputBuffer>> BufOrError =
    634       FileOutputBuffer::create(FilePath, Builder.getSize());
    635   if (!BufOrError)
    636     return createStringError(errc::invalid_argument,
    637                              toString(BufOrError.takeError()) +
    638                                  " when trying to open `" + FilePath +
    639                                  "` for writing");
    640 
    641   // Write binary to file.
    642   std::unique_ptr<FileOutputBuffer> FileBuf = std::move(*BufOrError);
    643   memcpy(FileBuf->getBufferStart(), Buf.data(), Buf.size());
    644 
    645   return FileBuf->commit();
    646 }
    647 
    648 Expected<std::unique_ptr<ELFStub>> readELFFile(MemoryBufferRef Buf) {
    649   Expected<std::unique_ptr<Binary>> BinOrErr = createBinary(Buf);
    650   if (!BinOrErr) {
    651     return BinOrErr.takeError();
    652   }
    653 
    654   Binary *Bin = BinOrErr->get();
    655   if (auto Obj = dyn_cast<ELFObjectFile<ELF32LE>>(Bin)) {
    656     return buildStub(*Obj);
    657   } else if (auto Obj = dyn_cast<ELFObjectFile<ELF64LE>>(Bin)) {
    658     return buildStub(*Obj);
    659   } else if (auto Obj = dyn_cast<ELFObjectFile<ELF32BE>>(Bin)) {
    660     return buildStub(*Obj);
    661   } else if (auto Obj = dyn_cast<ELFObjectFile<ELF64BE>>(Bin)) {
    662     return buildStub(*Obj);
    663   }
    664   return createStringError(errc::not_supported, "unsupported binary format");
    665 }
    666 
    667 // This function wraps the ELFT writeELFBinaryToFile() so writeBinaryStub()
    668 // can be called without having to use ELFType templates directly.
    669 Error writeBinaryStub(StringRef FilePath, const ELFStub &Stub,
    670                       ELFTarget OutputFormat, bool WriteIfChanged) {
    671   if (OutputFormat == ELFTarget::ELF32LE)
    672     return writeELFBinaryToFile<ELF32LE>(FilePath, Stub, WriteIfChanged);
    673   if (OutputFormat == ELFTarget::ELF32BE)
    674     return writeELFBinaryToFile<ELF32BE>(FilePath, Stub, WriteIfChanged);
    675   if (OutputFormat == ELFTarget::ELF64LE)
    676     return writeELFBinaryToFile<ELF64LE>(FilePath, Stub, WriteIfChanged);
    677   if (OutputFormat == ELFTarget::ELF64BE)
    678     return writeELFBinaryToFile<ELF64BE>(FilePath, Stub, WriteIfChanged);
    679   llvm_unreachable("invalid binary output target");
    680 }
    681 
    682 } // end namespace elfabi
    683 } // end namespace llvm
    684