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      1 //===- ELFDumper.cpp - ELF-specific dumper --------------------------------===//
      2 //
      3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
      4 // See https://llvm.org/LICENSE.txt for license information.
      5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
      6 //
      7 //===----------------------------------------------------------------------===//
      8 ///
      9 /// \file
     10 /// This file implements the ELF-specific dumper for llvm-readobj.
     11 ///
     12 //===----------------------------------------------------------------------===//
     13 
     14 #include "ARMEHABIPrinter.h"
     15 #include "DwarfCFIEHPrinter.h"
     16 #include "ObjDumper.h"
     17 #include "StackMapPrinter.h"
     18 #include "llvm-readobj.h"
     19 #include "llvm/ADT/ArrayRef.h"
     20 #include "llvm/ADT/DenseMap.h"
     21 #include "llvm/ADT/DenseSet.h"
     22 #include "llvm/ADT/MapVector.h"
     23 #include "llvm/ADT/Optional.h"
     24 #include "llvm/ADT/PointerIntPair.h"
     25 #include "llvm/ADT/STLExtras.h"
     26 #include "llvm/ADT/SmallString.h"
     27 #include "llvm/ADT/SmallVector.h"
     28 #include "llvm/ADT/StringExtras.h"
     29 #include "llvm/ADT/StringRef.h"
     30 #include "llvm/ADT/Twine.h"
     31 #include "llvm/BinaryFormat/AMDGPUMetadataVerifier.h"
     32 #include "llvm/BinaryFormat/ELF.h"
     33 #include "llvm/Demangle/Demangle.h"
     34 #include "llvm/Object/ELF.h"
     35 #include "llvm/Object/ELFObjectFile.h"
     36 #include "llvm/Object/ELFTypes.h"
     37 #include "llvm/Object/Error.h"
     38 #include "llvm/Object/ObjectFile.h"
     39 #include "llvm/Object/RelocationResolver.h"
     40 #include "llvm/Object/StackMapParser.h"
     41 #include "llvm/Support/AMDGPUMetadata.h"
     42 #include "llvm/Support/ARMAttributeParser.h"
     43 #include "llvm/Support/ARMBuildAttributes.h"
     44 #include "llvm/Support/Casting.h"
     45 #include "llvm/Support/Compiler.h"
     46 #include "llvm/Support/Endian.h"
     47 #include "llvm/Support/ErrorHandling.h"
     48 #include "llvm/Support/Format.h"
     49 #include "llvm/Support/FormatVariadic.h"
     50 #include "llvm/Support/FormattedStream.h"
     51 #include "llvm/Support/LEB128.h"
     52 #include "llvm/Support/MathExtras.h"
     53 #include "llvm/Support/MipsABIFlags.h"
     54 #include "llvm/Support/RISCVAttributeParser.h"
     55 #include "llvm/Support/RISCVAttributes.h"
     56 #include "llvm/Support/ScopedPrinter.h"
     57 #include "llvm/Support/raw_ostream.h"
     58 #include <algorithm>
     59 #include <cinttypes>
     60 #include <cstddef>
     61 #include <cstdint>
     62 #include <cstdlib>
     63 #include <iterator>
     64 #include <memory>
     65 #include <string>
     66 #include <system_error>
     67 #include <vector>
     68 
     69 using namespace llvm;
     70 using namespace llvm::object;
     71 using namespace ELF;
     72 
     73 #define LLVM_READOBJ_ENUM_CASE(ns, enum)                                       \
     74   case ns::enum:                                                               \
     75     return #enum;
     76 
     77 #define ENUM_ENT(enum, altName)                                                \
     78   { #enum, altName, ELF::enum }
     79 
     80 #define ENUM_ENT_1(enum)                                                       \
     81   { #enum, #enum, ELF::enum }
     82 
     83 namespace {
     84 
     85 template <class ELFT> struct RelSymbol {
     86   RelSymbol(const typename ELFT::Sym *S, StringRef N)
     87       : Sym(S), Name(N.str()) {}
     88   const typename ELFT::Sym *Sym;
     89   std::string Name;
     90 };
     91 
     92 /// Represents a contiguous uniform range in the file. We cannot just create a
     93 /// range directly because when creating one of these from the .dynamic table
     94 /// the size, entity size and virtual address are different entries in arbitrary
     95 /// order (DT_REL, DT_RELSZ, DT_RELENT for example).
     96 struct DynRegionInfo {
     97   DynRegionInfo(const Binary &Owner, const ObjDumper &D)
     98       : Obj(&Owner), Dumper(&D) {}
     99   DynRegionInfo(const Binary &Owner, const ObjDumper &D, const uint8_t *A,
    100                 uint64_t S, uint64_t ES)
    101       : Addr(A), Size(S), EntSize(ES), Obj(&Owner), Dumper(&D) {}
    102 
    103   /// Address in current address space.
    104   const uint8_t *Addr = nullptr;
    105   /// Size in bytes of the region.
    106   uint64_t Size = 0;
    107   /// Size of each entity in the region.
    108   uint64_t EntSize = 0;
    109 
    110   /// Owner object. Used for error reporting.
    111   const Binary *Obj;
    112   /// Dumper used for error reporting.
    113   const ObjDumper *Dumper;
    114   /// Error prefix. Used for error reporting to provide more information.
    115   std::string Context;
    116   /// Region size name. Used for error reporting.
    117   StringRef SizePrintName = "size";
    118   /// Entry size name. Used for error reporting. If this field is empty, errors
    119   /// will not mention the entry size.
    120   StringRef EntSizePrintName = "entry size";
    121 
    122   template <typename Type> ArrayRef<Type> getAsArrayRef() const {
    123     const Type *Start = reinterpret_cast<const Type *>(Addr);
    124     if (!Start)
    125       return {Start, Start};
    126 
    127     const uint64_t Offset =
    128         Addr - (const uint8_t *)Obj->getMemoryBufferRef().getBufferStart();
    129     const uint64_t ObjSize = Obj->getMemoryBufferRef().getBufferSize();
    130 
    131     if (Size > ObjSize - Offset) {
    132       Dumper->reportUniqueWarning(
    133           "unable to read data at 0x" + Twine::utohexstr(Offset) +
    134           " of size 0x" + Twine::utohexstr(Size) + " (" + SizePrintName +
    135           "): it goes past the end of the file of size 0x" +
    136           Twine::utohexstr(ObjSize));
    137       return {Start, Start};
    138     }
    139 
    140     if (EntSize == sizeof(Type) && (Size % EntSize == 0))
    141       return {Start, Start + (Size / EntSize)};
    142 
    143     std::string Msg;
    144     if (!Context.empty())
    145       Msg += Context + " has ";
    146 
    147     Msg += ("invalid " + SizePrintName + " (0x" + Twine::utohexstr(Size) + ")")
    148                .str();
    149     if (!EntSizePrintName.empty())
    150       Msg +=
    151           (" or " + EntSizePrintName + " (0x" + Twine::utohexstr(EntSize) + ")")
    152               .str();
    153 
    154     Dumper->reportUniqueWarning(Msg);
    155     return {Start, Start};
    156   }
    157 };
    158 
    159 struct GroupMember {
    160   StringRef Name;
    161   uint64_t Index;
    162 };
    163 
    164 struct GroupSection {
    165   StringRef Name;
    166   std::string Signature;
    167   uint64_t ShName;
    168   uint64_t Index;
    169   uint32_t Link;
    170   uint32_t Info;
    171   uint32_t Type;
    172   std::vector<GroupMember> Members;
    173 };
    174 
    175 namespace {
    176 
    177 struct NoteType {
    178   uint32_t ID;
    179   StringRef Name;
    180 };
    181 
    182 } // namespace
    183 
    184 template <class ELFT> class Relocation {
    185 public:
    186   Relocation(const typename ELFT::Rel &R, bool IsMips64EL)
    187       : Type(R.getType(IsMips64EL)), Symbol(R.getSymbol(IsMips64EL)),
    188         Offset(R.r_offset), Info(R.r_info) {}
    189 
    190   Relocation(const typename ELFT::Rela &R, bool IsMips64EL)
    191       : Relocation((const typename ELFT::Rel &)R, IsMips64EL) {
    192     Addend = R.r_addend;
    193   }
    194 
    195   uint32_t Type;
    196   uint32_t Symbol;
    197   typename ELFT::uint Offset;
    198   typename ELFT::uint Info;
    199   Optional<int64_t> Addend;
    200 };
    201 
    202 template <class ELFT> class MipsGOTParser;
    203 
    204 template <typename ELFT> class ELFDumper : public ObjDumper {
    205   LLVM_ELF_IMPORT_TYPES_ELFT(ELFT)
    206 
    207 public:
    208   ELFDumper(const object::ELFObjectFile<ELFT> &ObjF, ScopedPrinter &Writer);
    209 
    210   void printUnwindInfo() override;
    211   void printNeededLibraries() override;
    212   void printHashTable() override;
    213   void printGnuHashTable() override;
    214   void printLoadName() override;
    215   void printVersionInfo() override;
    216   void printArchSpecificInfo() override;
    217   void printStackMap() const override;
    218 
    219   const object::ELFObjectFile<ELFT> &getElfObject() const { return ObjF; };
    220 
    221   std::string describe(const Elf_Shdr &Sec) const;
    222 
    223   unsigned getHashTableEntSize() const {
    224     // EM_S390 and ELF::EM_ALPHA platforms use 8-bytes entries in SHT_HASH
    225     // sections. This violates the ELF specification.
    226     if (Obj.getHeader().e_machine == ELF::EM_S390 ||
    227         Obj.getHeader().e_machine == ELF::EM_ALPHA)
    228       return 8;
    229     return 4;
    230   }
    231 
    232   Elf_Dyn_Range dynamic_table() const {
    233     // A valid .dynamic section contains an array of entries terminated
    234     // with a DT_NULL entry. However, sometimes the section content may
    235     // continue past the DT_NULL entry, so to dump the section correctly,
    236     // we first find the end of the entries by iterating over them.
    237     Elf_Dyn_Range Table = DynamicTable.template getAsArrayRef<Elf_Dyn>();
    238 
    239     size_t Size = 0;
    240     while (Size < Table.size())
    241       if (Table[Size++].getTag() == DT_NULL)
    242         break;
    243 
    244     return Table.slice(0, Size);
    245   }
    246 
    247   Elf_Sym_Range dynamic_symbols() const {
    248     if (!DynSymRegion)
    249       return Elf_Sym_Range();
    250     return DynSymRegion->template getAsArrayRef<Elf_Sym>();
    251   }
    252 
    253   const Elf_Shdr *findSectionByName(StringRef Name) const;
    254 
    255   StringRef getDynamicStringTable() const { return DynamicStringTable; }
    256 
    257 protected:
    258   virtual void printVersionSymbolSection(const Elf_Shdr *Sec) = 0;
    259   virtual void printVersionDefinitionSection(const Elf_Shdr *Sec) = 0;
    260   virtual void printVersionDependencySection(const Elf_Shdr *Sec) = 0;
    261 
    262   void
    263   printDependentLibsHelper(function_ref<void(const Elf_Shdr &)> OnSectionStart,
    264                            function_ref<void(StringRef, uint64_t)> OnLibEntry);
    265 
    266   virtual void printRelRelaReloc(const Relocation<ELFT> &R,
    267                                  const RelSymbol<ELFT> &RelSym) = 0;
    268   virtual void printRelrReloc(const Elf_Relr &R) = 0;
    269   virtual void printDynamicRelocHeader(unsigned Type, StringRef Name,
    270                                        const DynRegionInfo &Reg) {}
    271   void printReloc(const Relocation<ELFT> &R, unsigned RelIndex,
    272                   const Elf_Shdr &Sec, const Elf_Shdr *SymTab);
    273   void printDynamicReloc(const Relocation<ELFT> &R);
    274   void printDynamicRelocationsHelper();
    275   void printRelocationsHelper(const Elf_Shdr &Sec);
    276   void forEachRelocationDo(
    277       const Elf_Shdr &Sec, bool RawRelr,
    278       llvm::function_ref<void(const Relocation<ELFT> &, unsigned,
    279                               const Elf_Shdr &, const Elf_Shdr *)>
    280           RelRelaFn,
    281       llvm::function_ref<void(const Elf_Relr &)> RelrFn);
    282 
    283   virtual void printSymtabMessage(const Elf_Shdr *Symtab, size_t Offset,
    284                                   bool NonVisibilityBitsUsed) const {};
    285   virtual void printSymbol(const Elf_Sym &Symbol, unsigned SymIndex,
    286                            DataRegion<Elf_Word> ShndxTable,
    287                            Optional<StringRef> StrTable, bool IsDynamic,
    288                            bool NonVisibilityBitsUsed) const = 0;
    289 
    290   virtual void printMipsABIFlags() = 0;
    291   virtual void printMipsGOT(const MipsGOTParser<ELFT> &Parser) = 0;
    292   virtual void printMipsPLT(const MipsGOTParser<ELFT> &Parser) = 0;
    293 
    294   Expected<ArrayRef<Elf_Versym>>
    295   getVersionTable(const Elf_Shdr &Sec, ArrayRef<Elf_Sym> *SymTab,
    296                   StringRef *StrTab, const Elf_Shdr **SymTabSec) const;
    297   StringRef getPrintableSectionName(const Elf_Shdr &Sec) const;
    298 
    299   std::vector<GroupSection> getGroups();
    300 
    301   bool printFunctionStackSize(uint64_t SymValue,
    302                               Optional<const Elf_Shdr *> FunctionSec,
    303                               const Elf_Shdr &StackSizeSec, DataExtractor Data,
    304                               uint64_t *Offset);
    305   void printStackSize(const Relocation<ELFT> &R, const Elf_Shdr &RelocSec,
    306                       unsigned Ndx, const Elf_Shdr *SymTab,
    307                       const Elf_Shdr *FunctionSec, const Elf_Shdr &StackSizeSec,
    308                       const RelocationResolver &Resolver, DataExtractor Data);
    309   virtual void printStackSizeEntry(uint64_t Size, StringRef FuncName) = 0;
    310 
    311   void printRelocatableStackSizes(std::function<void()> PrintHeader);
    312   void printNonRelocatableStackSizes(std::function<void()> PrintHeader);
    313 
    314   const object::ELFObjectFile<ELFT> &ObjF;
    315   const ELFFile<ELFT> &Obj;
    316   StringRef FileName;
    317 
    318   Expected<DynRegionInfo> createDRI(uint64_t Offset, uint64_t Size,
    319                                     uint64_t EntSize) {
    320     if (Offset + Size < Offset || Offset + Size > Obj.getBufSize())
    321       return createError("offset (0x" + Twine::utohexstr(Offset) +
    322                          ") + size (0x" + Twine::utohexstr(Size) +
    323                          ") is greater than the file size (0x" +
    324                          Twine::utohexstr(Obj.getBufSize()) + ")");
    325     return DynRegionInfo(ObjF, *this, Obj.base() + Offset, Size, EntSize);
    326   }
    327 
    328   void printAttributes();
    329   void printMipsReginfo();
    330   void printMipsOptions();
    331 
    332   std::pair<const Elf_Phdr *, const Elf_Shdr *> findDynamic();
    333   void loadDynamicTable();
    334   void parseDynamicTable();
    335 
    336   Expected<StringRef> getSymbolVersion(const Elf_Sym &Sym,
    337                                        bool &IsDefault) const;
    338   Expected<SmallVector<Optional<VersionEntry>, 0> *> getVersionMap() const;
    339 
    340   DynRegionInfo DynRelRegion;
    341   DynRegionInfo DynRelaRegion;
    342   DynRegionInfo DynRelrRegion;
    343   DynRegionInfo DynPLTRelRegion;
    344   Optional<DynRegionInfo> DynSymRegion;
    345   DynRegionInfo DynSymTabShndxRegion;
    346   DynRegionInfo DynamicTable;
    347   StringRef DynamicStringTable;
    348   const Elf_Hash *HashTable = nullptr;
    349   const Elf_GnuHash *GnuHashTable = nullptr;
    350   const Elf_Shdr *DotSymtabSec = nullptr;
    351   const Elf_Shdr *DotDynsymSec = nullptr;
    352   const Elf_Shdr *DotCGProfileSec = nullptr;
    353   const Elf_Shdr *DotAddrsigSec = nullptr;
    354   DenseMap<const Elf_Shdr *, ArrayRef<Elf_Word>> ShndxTables;
    355   Optional<uint64_t> SONameOffset;
    356 
    357   const Elf_Shdr *SymbolVersionSection = nullptr;   // .gnu.version
    358   const Elf_Shdr *SymbolVersionNeedSection = nullptr; // .gnu.version_r
    359   const Elf_Shdr *SymbolVersionDefSection = nullptr; // .gnu.version_d
    360 
    361   std::string getFullSymbolName(const Elf_Sym &Symbol, unsigned SymIndex,
    362                                 DataRegion<Elf_Word> ShndxTable,
    363                                 Optional<StringRef> StrTable,
    364                                 bool IsDynamic) const;
    365   Expected<unsigned>
    366   getSymbolSectionIndex(const Elf_Sym &Symbol, unsigned SymIndex,
    367                         DataRegion<Elf_Word> ShndxTable) const;
    368   Expected<StringRef> getSymbolSectionName(const Elf_Sym &Symbol,
    369                                            unsigned SectionIndex) const;
    370   std::string getStaticSymbolName(uint32_t Index) const;
    371   StringRef getDynamicString(uint64_t Value) const;
    372 
    373   void printSymbolsHelper(bool IsDynamic) const;
    374   std::string getDynamicEntry(uint64_t Type, uint64_t Value) const;
    375 
    376   Expected<RelSymbol<ELFT>> getRelocationTarget(const Relocation<ELFT> &R,
    377                                                 const Elf_Shdr *SymTab) const;
    378 
    379   ArrayRef<Elf_Word> getShndxTable(const Elf_Shdr *Symtab) const;
    380 
    381 private:
    382   mutable SmallVector<Optional<VersionEntry>, 0> VersionMap;
    383 };
    384 
    385 template <class ELFT>
    386 std::string ELFDumper<ELFT>::describe(const Elf_Shdr &Sec) const {
    387   return ::describe(Obj, Sec);
    388 }
    389 
    390 namespace {
    391 
    392 template <class ELFT> struct SymtabLink {
    393   typename ELFT::SymRange Symbols;
    394   StringRef StringTable;
    395   const typename ELFT::Shdr *SymTab;
    396 };
    397 
    398 // Returns the linked symbol table, symbols and associated string table for a
    399 // given section.
    400 template <class ELFT>
    401 Expected<SymtabLink<ELFT>> getLinkAsSymtab(const ELFFile<ELFT> &Obj,
    402                                            const typename ELFT::Shdr &Sec,
    403                                            unsigned ExpectedType) {
    404   Expected<const typename ELFT::Shdr *> SymtabOrErr =
    405       Obj.getSection(Sec.sh_link);
    406   if (!SymtabOrErr)
    407     return createError("invalid section linked to " + describe(Obj, Sec) +
    408                        ": " + toString(SymtabOrErr.takeError()));
    409 
    410   if ((*SymtabOrErr)->sh_type != ExpectedType)
    411     return createError(
    412         "invalid section linked to " + describe(Obj, Sec) + ": expected " +
    413         object::getELFSectionTypeName(Obj.getHeader().e_machine, ExpectedType) +
    414         ", but got " +
    415         object::getELFSectionTypeName(Obj.getHeader().e_machine,
    416                                       (*SymtabOrErr)->sh_type));
    417 
    418   Expected<StringRef> StrTabOrErr = Obj.getLinkAsStrtab(**SymtabOrErr);
    419   if (!StrTabOrErr)
    420     return createError(
    421         "can't get a string table for the symbol table linked to " +
    422         describe(Obj, Sec) + ": " + toString(StrTabOrErr.takeError()));
    423 
    424   Expected<typename ELFT::SymRange> SymsOrErr = Obj.symbols(*SymtabOrErr);
    425   if (!SymsOrErr)
    426     return createError("unable to read symbols from the " + describe(Obj, Sec) +
    427                        ": " + toString(SymsOrErr.takeError()));
    428 
    429   return SymtabLink<ELFT>{*SymsOrErr, *StrTabOrErr, *SymtabOrErr};
    430 }
    431 
    432 } // namespace
    433 
    434 template <class ELFT>
    435 Expected<ArrayRef<typename ELFT::Versym>>
    436 ELFDumper<ELFT>::getVersionTable(const Elf_Shdr &Sec, ArrayRef<Elf_Sym> *SymTab,
    437                                  StringRef *StrTab,
    438                                  const Elf_Shdr **SymTabSec) const {
    439   assert((!SymTab && !StrTab && !SymTabSec) || (SymTab && StrTab && SymTabSec));
    440   if (reinterpret_cast<uintptr_t>(Obj.base() + Sec.sh_offset) %
    441           sizeof(uint16_t) !=
    442       0)
    443     return createError("the " + describe(Sec) + " is misaligned");
    444 
    445   Expected<ArrayRef<Elf_Versym>> VersionsOrErr =
    446       Obj.template getSectionContentsAsArray<Elf_Versym>(Sec);
    447   if (!VersionsOrErr)
    448     return createError("cannot read content of " + describe(Sec) + ": " +
    449                        toString(VersionsOrErr.takeError()));
    450 
    451   Expected<SymtabLink<ELFT>> SymTabOrErr =
    452       getLinkAsSymtab(Obj, Sec, SHT_DYNSYM);
    453   if (!SymTabOrErr) {
    454     reportUniqueWarning(SymTabOrErr.takeError());
    455     return *VersionsOrErr;
    456   }
    457 
    458   if (SymTabOrErr->Symbols.size() != VersionsOrErr->size())
    459     reportUniqueWarning(describe(Sec) + ": the number of entries (" +
    460                         Twine(VersionsOrErr->size()) +
    461                         ") does not match the number of symbols (" +
    462                         Twine(SymTabOrErr->Symbols.size()) +
    463                         ") in the symbol table with index " +
    464                         Twine(Sec.sh_link));
    465 
    466   if (SymTab) {
    467     *SymTab = SymTabOrErr->Symbols;
    468     *StrTab = SymTabOrErr->StringTable;
    469     *SymTabSec = SymTabOrErr->SymTab;
    470   }
    471   return *VersionsOrErr;
    472 }
    473 
    474 template <class ELFT>
    475 void ELFDumper<ELFT>::printSymbolsHelper(bool IsDynamic) const {
    476   Optional<StringRef> StrTable;
    477   size_t Entries = 0;
    478   Elf_Sym_Range Syms(nullptr, nullptr);
    479   const Elf_Shdr *SymtabSec = IsDynamic ? DotDynsymSec : DotSymtabSec;
    480 
    481   if (IsDynamic) {
    482     StrTable = DynamicStringTable;
    483     Syms = dynamic_symbols();
    484     Entries = Syms.size();
    485   } else if (DotSymtabSec) {
    486     if (Expected<StringRef> StrTableOrErr =
    487             Obj.getStringTableForSymtab(*DotSymtabSec))
    488       StrTable = *StrTableOrErr;
    489     else
    490       reportUniqueWarning(
    491           "unable to get the string table for the SHT_SYMTAB section: " +
    492           toString(StrTableOrErr.takeError()));
    493 
    494     if (Expected<Elf_Sym_Range> SymsOrErr = Obj.symbols(DotSymtabSec))
    495       Syms = *SymsOrErr;
    496     else
    497       reportUniqueWarning(
    498           "unable to read symbols from the SHT_SYMTAB section: " +
    499           toString(SymsOrErr.takeError()));
    500     Entries = DotSymtabSec->getEntityCount();
    501   }
    502   if (Syms.empty())
    503     return;
    504 
    505   // The st_other field has 2 logical parts. The first two bits hold the symbol
    506   // visibility (STV_*) and the remainder hold other platform-specific values.
    507   bool NonVisibilityBitsUsed =
    508       llvm::any_of(Syms, [](const Elf_Sym &S) { return S.st_other & ~0x3; });
    509 
    510   DataRegion<Elf_Word> ShndxTable =
    511       IsDynamic ? DataRegion<Elf_Word>(
    512                       (const Elf_Word *)this->DynSymTabShndxRegion.Addr,
    513                       this->getElfObject().getELFFile().end())
    514                 : DataRegion<Elf_Word>(this->getShndxTable(SymtabSec));
    515 
    516   printSymtabMessage(SymtabSec, Entries, NonVisibilityBitsUsed);
    517   for (const Elf_Sym &Sym : Syms)
    518     printSymbol(Sym, &Sym - Syms.begin(), ShndxTable, StrTable, IsDynamic,
    519                 NonVisibilityBitsUsed);
    520 }
    521 
    522 template <typename ELFT> class GNUELFDumper : public ELFDumper<ELFT> {
    523   formatted_raw_ostream &OS;
    524 
    525 public:
    526   LLVM_ELF_IMPORT_TYPES_ELFT(ELFT)
    527 
    528   GNUELFDumper(const object::ELFObjectFile<ELFT> &ObjF, ScopedPrinter &Writer)
    529       : ELFDumper<ELFT>(ObjF, Writer),
    530         OS(static_cast<formatted_raw_ostream &>(Writer.getOStream())) {
    531     assert(&this->W.getOStream() == &llvm::fouts());
    532   }
    533 
    534   void printFileHeaders() override;
    535   void printGroupSections() override;
    536   void printRelocations() override;
    537   void printSectionHeaders() override;
    538   void printSymbols(bool PrintSymbols, bool PrintDynamicSymbols) override;
    539   void printHashSymbols() override;
    540   void printSectionDetails() override;
    541   void printDependentLibs() override;
    542   void printDynamicTable() override;
    543   void printDynamicRelocations() override;
    544   void printSymtabMessage(const Elf_Shdr *Symtab, size_t Offset,
    545                           bool NonVisibilityBitsUsed) const override;
    546   void printProgramHeaders(bool PrintProgramHeaders,
    547                            cl::boolOrDefault PrintSectionMapping) override;
    548   void printVersionSymbolSection(const Elf_Shdr *Sec) override;
    549   void printVersionDefinitionSection(const Elf_Shdr *Sec) override;
    550   void printVersionDependencySection(const Elf_Shdr *Sec) override;
    551   void printHashHistograms() override;
    552   void printCGProfile() override;
    553   void printBBAddrMaps() override;
    554   void printAddrsig() override;
    555   void printNotes() override;
    556   void printELFLinkerOptions() override;
    557   void printStackSizes() override;
    558 
    559 private:
    560   void printHashHistogram(const Elf_Hash &HashTable);
    561   void printGnuHashHistogram(const Elf_GnuHash &GnuHashTable);
    562   void printHashTableSymbols(const Elf_Hash &HashTable);
    563   void printGnuHashTableSymbols(const Elf_GnuHash &GnuHashTable);
    564 
    565   struct Field {
    566     std::string Str;
    567     unsigned Column;
    568 
    569     Field(StringRef S, unsigned Col) : Str(std::string(S)), Column(Col) {}
    570     Field(unsigned Col) : Column(Col) {}
    571   };
    572 
    573   template <typename T, typename TEnum>
    574   std::string printEnum(T Value, ArrayRef<EnumEntry<TEnum>> EnumValues) const {
    575     for (const EnumEntry<TEnum> &EnumItem : EnumValues)
    576       if (EnumItem.Value == Value)
    577         return std::string(EnumItem.AltName);
    578     return to_hexString(Value, false);
    579   }
    580 
    581   template <typename T, typename TEnum>
    582   std::string printFlags(T Value, ArrayRef<EnumEntry<TEnum>> EnumValues,
    583                          TEnum EnumMask1 = {}, TEnum EnumMask2 = {},
    584                          TEnum EnumMask3 = {}) const {
    585     std::string Str;
    586     for (const EnumEntry<TEnum> &Flag : EnumValues) {
    587       if (Flag.Value == 0)
    588         continue;
    589 
    590       TEnum EnumMask{};
    591       if (Flag.Value & EnumMask1)
    592         EnumMask = EnumMask1;
    593       else if (Flag.Value & EnumMask2)
    594         EnumMask = EnumMask2;
    595       else if (Flag.Value & EnumMask3)
    596         EnumMask = EnumMask3;
    597       bool IsEnum = (Flag.Value & EnumMask) != 0;
    598       if ((!IsEnum && (Value & Flag.Value) == Flag.Value) ||
    599           (IsEnum && (Value & EnumMask) == Flag.Value)) {
    600         if (!Str.empty())
    601           Str += ", ";
    602         Str += Flag.AltName;
    603       }
    604     }
    605     return Str;
    606   }
    607 
    608   formatted_raw_ostream &printField(struct Field F) const {
    609     if (F.Column != 0)
    610       OS.PadToColumn(F.Column);
    611     OS << F.Str;
    612     OS.flush();
    613     return OS;
    614   }
    615   void printHashedSymbol(const Elf_Sym *Sym, unsigned SymIndex,
    616                          DataRegion<Elf_Word> ShndxTable, StringRef StrTable,
    617                          uint32_t Bucket);
    618   void printRelrReloc(const Elf_Relr &R) override;
    619   void printRelRelaReloc(const Relocation<ELFT> &R,
    620                          const RelSymbol<ELFT> &RelSym) override;
    621   void printSymbol(const Elf_Sym &Symbol, unsigned SymIndex,
    622                    DataRegion<Elf_Word> ShndxTable,
    623                    Optional<StringRef> StrTable, bool IsDynamic,
    624                    bool NonVisibilityBitsUsed) const override;
    625   void printDynamicRelocHeader(unsigned Type, StringRef Name,
    626                                const DynRegionInfo &Reg) override;
    627 
    628   std::string getSymbolSectionNdx(const Elf_Sym &Symbol, unsigned SymIndex,
    629                                   DataRegion<Elf_Word> ShndxTable) const;
    630   void printProgramHeaders() override;
    631   void printSectionMapping() override;
    632   void printGNUVersionSectionProlog(const typename ELFT::Shdr &Sec,
    633                                     const Twine &Label, unsigned EntriesNum);
    634 
    635   void printStackSizeEntry(uint64_t Size, StringRef FuncName) override;
    636 
    637   void printMipsGOT(const MipsGOTParser<ELFT> &Parser) override;
    638   void printMipsPLT(const MipsGOTParser<ELFT> &Parser) override;
    639   void printMipsABIFlags() override;
    640 };
    641 
    642 template <typename ELFT> class LLVMELFDumper : public ELFDumper<ELFT> {
    643 public:
    644   LLVM_ELF_IMPORT_TYPES_ELFT(ELFT)
    645 
    646   LLVMELFDumper(const object::ELFObjectFile<ELFT> &ObjF, ScopedPrinter &Writer)
    647       : ELFDumper<ELFT>(ObjF, Writer), W(Writer) {}
    648 
    649   void printFileHeaders() override;
    650   void printGroupSections() override;
    651   void printRelocations() override;
    652   void printSectionHeaders() override;
    653   void printSymbols(bool PrintSymbols, bool PrintDynamicSymbols) override;
    654   void printDependentLibs() override;
    655   void printDynamicTable() override;
    656   void printDynamicRelocations() override;
    657   void printProgramHeaders(bool PrintProgramHeaders,
    658                            cl::boolOrDefault PrintSectionMapping) override;
    659   void printVersionSymbolSection(const Elf_Shdr *Sec) override;
    660   void printVersionDefinitionSection(const Elf_Shdr *Sec) override;
    661   void printVersionDependencySection(const Elf_Shdr *Sec) override;
    662   void printHashHistograms() override;
    663   void printCGProfile() override;
    664   void printBBAddrMaps() override;
    665   void printAddrsig() override;
    666   void printNotes() override;
    667   void printELFLinkerOptions() override;
    668   void printStackSizes() override;
    669 
    670 private:
    671   void printRelrReloc(const Elf_Relr &R) override;
    672   void printRelRelaReloc(const Relocation<ELFT> &R,
    673                          const RelSymbol<ELFT> &RelSym) override;
    674 
    675   void printSymbolSection(const Elf_Sym &Symbol, unsigned SymIndex,
    676                           DataRegion<Elf_Word> ShndxTable) const;
    677   void printSymbol(const Elf_Sym &Symbol, unsigned SymIndex,
    678                    DataRegion<Elf_Word> ShndxTable,
    679                    Optional<StringRef> StrTable, bool IsDynamic,
    680                    bool /*NonVisibilityBitsUsed*/) const override;
    681   void printProgramHeaders() override;
    682   void printSectionMapping() override {}
    683   void printStackSizeEntry(uint64_t Size, StringRef FuncName) override;
    684 
    685   void printMipsGOT(const MipsGOTParser<ELFT> &Parser) override;
    686   void printMipsPLT(const MipsGOTParser<ELFT> &Parser) override;
    687   void printMipsABIFlags() override;
    688 
    689   ScopedPrinter &W;
    690 };
    691 
    692 } // end anonymous namespace
    693 
    694 namespace llvm {
    695 
    696 template <class ELFT>
    697 static std::unique_ptr<ObjDumper>
    698 createELFDumper(const ELFObjectFile<ELFT> &Obj, ScopedPrinter &Writer) {
    699   if (opts::Output == opts::GNU)
    700     return std::make_unique<GNUELFDumper<ELFT>>(Obj, Writer);
    701   return std::make_unique<LLVMELFDumper<ELFT>>(Obj, Writer);
    702 }
    703 
    704 std::unique_ptr<ObjDumper> createELFDumper(const object::ELFObjectFileBase &Obj,
    705                                            ScopedPrinter &Writer) {
    706   // Little-endian 32-bit
    707   if (const ELF32LEObjectFile *ELFObj = dyn_cast<ELF32LEObjectFile>(&Obj))
    708     return createELFDumper(*ELFObj, Writer);
    709 
    710   // Big-endian 32-bit
    711   if (const ELF32BEObjectFile *ELFObj = dyn_cast<ELF32BEObjectFile>(&Obj))
    712     return createELFDumper(*ELFObj, Writer);
    713 
    714   // Little-endian 64-bit
    715   if (const ELF64LEObjectFile *ELFObj = dyn_cast<ELF64LEObjectFile>(&Obj))
    716     return createELFDumper(*ELFObj, Writer);
    717 
    718   // Big-endian 64-bit
    719   return createELFDumper(*cast<ELF64BEObjectFile>(&Obj), Writer);
    720 }
    721 
    722 } // end namespace llvm
    723 
    724 template <class ELFT>
    725 Expected<SmallVector<Optional<VersionEntry>, 0> *>
    726 ELFDumper<ELFT>::getVersionMap() const {
    727   // If the VersionMap has already been loaded or if there is no dynamic symtab
    728   // or version table, there is nothing to do.
    729   if (!VersionMap.empty() || !DynSymRegion || !SymbolVersionSection)
    730     return &VersionMap;
    731 
    732   Expected<SmallVector<Optional<VersionEntry>, 0>> MapOrErr =
    733       Obj.loadVersionMap(SymbolVersionNeedSection, SymbolVersionDefSection);
    734   if (MapOrErr)
    735     VersionMap = *MapOrErr;
    736   else
    737     return MapOrErr.takeError();
    738 
    739   return &VersionMap;
    740 }
    741 
    742 template <typename ELFT>
    743 Expected<StringRef> ELFDumper<ELFT>::getSymbolVersion(const Elf_Sym &Sym,
    744                                                       bool &IsDefault) const {
    745   // This is a dynamic symbol. Look in the GNU symbol version table.
    746   if (!SymbolVersionSection) {
    747     // No version table.
    748     IsDefault = false;
    749     return "";
    750   }
    751 
    752   assert(DynSymRegion && "DynSymRegion has not been initialised");
    753   // Determine the position in the symbol table of this entry.
    754   size_t EntryIndex = (reinterpret_cast<uintptr_t>(&Sym) -
    755                        reinterpret_cast<uintptr_t>(DynSymRegion->Addr)) /
    756                       sizeof(Elf_Sym);
    757 
    758   // Get the corresponding version index entry.
    759   Expected<const Elf_Versym *> EntryOrErr =
    760       Obj.template getEntry<Elf_Versym>(*SymbolVersionSection, EntryIndex);
    761   if (!EntryOrErr)
    762     return EntryOrErr.takeError();
    763 
    764   unsigned Version = (*EntryOrErr)->vs_index;
    765   if (Version == VER_NDX_LOCAL || Version == VER_NDX_GLOBAL) {
    766     IsDefault = false;
    767     return "";
    768   }
    769 
    770   Expected<SmallVector<Optional<VersionEntry>, 0> *> MapOrErr =
    771       getVersionMap();
    772   if (!MapOrErr)
    773     return MapOrErr.takeError();
    774 
    775   return Obj.getSymbolVersionByIndex(Version, IsDefault, **MapOrErr,
    776                                      Sym.st_shndx == ELF::SHN_UNDEF);
    777 }
    778 
    779 template <typename ELFT>
    780 Expected<RelSymbol<ELFT>>
    781 ELFDumper<ELFT>::getRelocationTarget(const Relocation<ELFT> &R,
    782                                      const Elf_Shdr *SymTab) const {
    783   if (R.Symbol == 0)
    784     return RelSymbol<ELFT>(nullptr, "");
    785 
    786   Expected<const Elf_Sym *> SymOrErr =
    787       Obj.template getEntry<Elf_Sym>(*SymTab, R.Symbol);
    788   if (!SymOrErr)
    789     return createError("unable to read an entry with index " + Twine(R.Symbol) +
    790                        " from " + describe(*SymTab) + ": " +
    791                        toString(SymOrErr.takeError()));
    792   const Elf_Sym *Sym = *SymOrErr;
    793   if (!Sym)
    794     return RelSymbol<ELFT>(nullptr, "");
    795 
    796   Expected<StringRef> StrTableOrErr = Obj.getStringTableForSymtab(*SymTab);
    797   if (!StrTableOrErr)
    798     return StrTableOrErr.takeError();
    799 
    800   const Elf_Sym *FirstSym =
    801       cantFail(Obj.template getEntry<Elf_Sym>(*SymTab, 0));
    802   std::string SymbolName =
    803       getFullSymbolName(*Sym, Sym - FirstSym, getShndxTable(SymTab),
    804                         *StrTableOrErr, SymTab->sh_type == SHT_DYNSYM);
    805   return RelSymbol<ELFT>(Sym, SymbolName);
    806 }
    807 
    808 template <typename ELFT>
    809 ArrayRef<typename ELFT::Word>
    810 ELFDumper<ELFT>::getShndxTable(const Elf_Shdr *Symtab) const {
    811   if (Symtab) {
    812     auto It = ShndxTables.find(Symtab);
    813     if (It != ShndxTables.end())
    814       return It->second;
    815   }
    816   return {};
    817 }
    818 
    819 static std::string maybeDemangle(StringRef Name) {
    820   return opts::Demangle ? demangle(std::string(Name)) : Name.str();
    821 }
    822 
    823 template <typename ELFT>
    824 std::string ELFDumper<ELFT>::getStaticSymbolName(uint32_t Index) const {
    825   auto Warn = [&](Error E) -> std::string {
    826     reportUniqueWarning("unable to read the name of symbol with index " +
    827                         Twine(Index) + ": " + toString(std::move(E)));
    828     return "<?>";
    829   };
    830 
    831   Expected<const typename ELFT::Sym *> SymOrErr =
    832       Obj.getSymbol(DotSymtabSec, Index);
    833   if (!SymOrErr)
    834     return Warn(SymOrErr.takeError());
    835 
    836   Expected<StringRef> StrTabOrErr = Obj.getStringTableForSymtab(*DotSymtabSec);
    837   if (!StrTabOrErr)
    838     return Warn(StrTabOrErr.takeError());
    839 
    840   Expected<StringRef> NameOrErr = (*SymOrErr)->getName(*StrTabOrErr);
    841   if (!NameOrErr)
    842     return Warn(NameOrErr.takeError());
    843   return maybeDemangle(*NameOrErr);
    844 }
    845 
    846 template <typename ELFT>
    847 std::string ELFDumper<ELFT>::getFullSymbolName(const Elf_Sym &Symbol,
    848                                                unsigned SymIndex,
    849                                                DataRegion<Elf_Word> ShndxTable,
    850                                                Optional<StringRef> StrTable,
    851                                                bool IsDynamic) const {
    852   if (!StrTable)
    853     return "<?>";
    854 
    855   std::string SymbolName;
    856   if (Expected<StringRef> NameOrErr = Symbol.getName(*StrTable)) {
    857     SymbolName = maybeDemangle(*NameOrErr);
    858   } else {
    859     reportUniqueWarning(NameOrErr.takeError());
    860     return "<?>";
    861   }
    862 
    863   if (SymbolName.empty() && Symbol.getType() == ELF::STT_SECTION) {
    864     Expected<unsigned> SectionIndex =
    865         getSymbolSectionIndex(Symbol, SymIndex, ShndxTable);
    866     if (!SectionIndex) {
    867       reportUniqueWarning(SectionIndex.takeError());
    868       return "<?>";
    869     }
    870     Expected<StringRef> NameOrErr = getSymbolSectionName(Symbol, *SectionIndex);
    871     if (!NameOrErr) {
    872       reportUniqueWarning(NameOrErr.takeError());
    873       return ("<section " + Twine(*SectionIndex) + ">").str();
    874     }
    875     return std::string(*NameOrErr);
    876   }
    877 
    878   if (!IsDynamic)
    879     return SymbolName;
    880 
    881   bool IsDefault;
    882   Expected<StringRef> VersionOrErr = getSymbolVersion(Symbol, IsDefault);
    883   if (!VersionOrErr) {
    884     reportUniqueWarning(VersionOrErr.takeError());
    885     return SymbolName + "@<corrupt>";
    886   }
    887 
    888   if (!VersionOrErr->empty()) {
    889     SymbolName += (IsDefault ? "@@" : "@");
    890     SymbolName += *VersionOrErr;
    891   }
    892   return SymbolName;
    893 }
    894 
    895 template <typename ELFT>
    896 Expected<unsigned>
    897 ELFDumper<ELFT>::getSymbolSectionIndex(const Elf_Sym &Symbol, unsigned SymIndex,
    898                                        DataRegion<Elf_Word> ShndxTable) const {
    899   unsigned Ndx = Symbol.st_shndx;
    900   if (Ndx == SHN_XINDEX)
    901     return object::getExtendedSymbolTableIndex<ELFT>(Symbol, SymIndex,
    902                                                      ShndxTable);
    903   if (Ndx != SHN_UNDEF && Ndx < SHN_LORESERVE)
    904     return Ndx;
    905 
    906   auto CreateErr = [&](const Twine &Name, Optional<unsigned> Offset = None) {
    907     std::string Desc;
    908     if (Offset)
    909       Desc = (Name + "+0x" + Twine::utohexstr(*Offset)).str();
    910     else
    911       Desc = Name.str();
    912     return createError(
    913         "unable to get section index for symbol with st_shndx = 0x" +
    914         Twine::utohexstr(Ndx) + " (" + Desc + ")");
    915   };
    916 
    917   if (Ndx >= ELF::SHN_LOPROC && Ndx <= ELF::SHN_HIPROC)
    918     return CreateErr("SHN_LOPROC", Ndx - ELF::SHN_LOPROC);
    919   if (Ndx >= ELF::SHN_LOOS && Ndx <= ELF::SHN_HIOS)
    920     return CreateErr("SHN_LOOS", Ndx - ELF::SHN_LOOS);
    921   if (Ndx == ELF::SHN_UNDEF)
    922     return CreateErr("SHN_UNDEF");
    923   if (Ndx == ELF::SHN_ABS)
    924     return CreateErr("SHN_ABS");
    925   if (Ndx == ELF::SHN_COMMON)
    926     return CreateErr("SHN_COMMON");
    927   return CreateErr("SHN_LORESERVE", Ndx - SHN_LORESERVE);
    928 }
    929 
    930 template <typename ELFT>
    931 Expected<StringRef>
    932 ELFDumper<ELFT>::getSymbolSectionName(const Elf_Sym &Symbol,
    933                                       unsigned SectionIndex) const {
    934   Expected<const Elf_Shdr *> SecOrErr = Obj.getSection(SectionIndex);
    935   if (!SecOrErr)
    936     return SecOrErr.takeError();
    937   return Obj.getSectionName(**SecOrErr);
    938 }
    939 
    940 template <class ELFO>
    941 static const typename ELFO::Elf_Shdr *
    942 findNotEmptySectionByAddress(const ELFO &Obj, StringRef FileName,
    943                              uint64_t Addr) {
    944   for (const typename ELFO::Elf_Shdr &Shdr : cantFail(Obj.sections()))
    945     if (Shdr.sh_addr == Addr && Shdr.sh_size > 0)
    946       return &Shdr;
    947   return nullptr;
    948 }
    949 
    950 static const EnumEntry<unsigned> ElfClass[] = {
    951   {"None",   "none",   ELF::ELFCLASSNONE},
    952   {"32-bit", "ELF32",  ELF::ELFCLASS32},
    953   {"64-bit", "ELF64",  ELF::ELFCLASS64},
    954 };
    955 
    956 static const EnumEntry<unsigned> ElfDataEncoding[] = {
    957   {"None",         "none",                          ELF::ELFDATANONE},
    958   {"LittleEndian", "2's complement, little endian", ELF::ELFDATA2LSB},
    959   {"BigEndian",    "2's complement, big endian",    ELF::ELFDATA2MSB},
    960 };
    961 
    962 static const EnumEntry<unsigned> ElfObjectFileType[] = {
    963   {"None",         "NONE (none)",              ELF::ET_NONE},
    964   {"Relocatable",  "REL (Relocatable file)",   ELF::ET_REL},
    965   {"Executable",   "EXEC (Executable file)",   ELF::ET_EXEC},
    966   {"SharedObject", "DYN (Shared object file)", ELF::ET_DYN},
    967   {"Core",         "CORE (Core file)",         ELF::ET_CORE},
    968 };
    969 
    970 static const EnumEntry<unsigned> ElfOSABI[] = {
    971   {"SystemV",      "UNIX - System V",      ELF::ELFOSABI_NONE},
    972   {"HPUX",         "UNIX - HP-UX",         ELF::ELFOSABI_HPUX},
    973   {"NetBSD",       "UNIX - NetBSD",        ELF::ELFOSABI_NETBSD},
    974   {"GNU/Linux",    "UNIX - GNU",           ELF::ELFOSABI_LINUX},
    975   {"GNU/Hurd",     "GNU/Hurd",             ELF::ELFOSABI_HURD},
    976   {"Solaris",      "UNIX - Solaris",       ELF::ELFOSABI_SOLARIS},
    977   {"AIX",          "UNIX - AIX",           ELF::ELFOSABI_AIX},
    978   {"IRIX",         "UNIX - IRIX",          ELF::ELFOSABI_IRIX},
    979   {"FreeBSD",      "UNIX - FreeBSD",       ELF::ELFOSABI_FREEBSD},
    980   {"TRU64",        "UNIX - TRU64",         ELF::ELFOSABI_TRU64},
    981   {"Modesto",      "Novell - Modesto",     ELF::ELFOSABI_MODESTO},
    982   {"OpenBSD",      "UNIX - OpenBSD",       ELF::ELFOSABI_OPENBSD},
    983   {"OpenVMS",      "VMS - OpenVMS",        ELF::ELFOSABI_OPENVMS},
    984   {"NSK",          "HP - Non-Stop Kernel", ELF::ELFOSABI_NSK},
    985   {"AROS",         "AROS",                 ELF::ELFOSABI_AROS},
    986   {"FenixOS",      "FenixOS",              ELF::ELFOSABI_FENIXOS},
    987   {"CloudABI",     "CloudABI",             ELF::ELFOSABI_CLOUDABI},
    988   {"Standalone",   "Standalone App",       ELF::ELFOSABI_STANDALONE}
    989 };
    990 
    991 static const EnumEntry<unsigned> AMDGPUElfOSABI[] = {
    992   {"AMDGPU_HSA",    "AMDGPU - HSA",    ELF::ELFOSABI_AMDGPU_HSA},
    993   {"AMDGPU_PAL",    "AMDGPU - PAL",    ELF::ELFOSABI_AMDGPU_PAL},
    994   {"AMDGPU_MESA3D", "AMDGPU - MESA3D", ELF::ELFOSABI_AMDGPU_MESA3D}
    995 };
    996 
    997 static const EnumEntry<unsigned> ARMElfOSABI[] = {
    998   {"ARM", "ARM", ELF::ELFOSABI_ARM}
    999 };
   1000 
   1001 static const EnumEntry<unsigned> C6000ElfOSABI[] = {
   1002   {"C6000_ELFABI", "Bare-metal C6000", ELF::ELFOSABI_C6000_ELFABI},
   1003   {"C6000_LINUX",  "Linux C6000",      ELF::ELFOSABI_C6000_LINUX}
   1004 };
   1005 
   1006 static const EnumEntry<unsigned> ElfMachineType[] = {
   1007   ENUM_ENT(EM_NONE,          "None"),
   1008   ENUM_ENT(EM_M32,           "WE32100"),
   1009   ENUM_ENT(EM_SPARC,         "Sparc"),
   1010   ENUM_ENT(EM_386,           "Intel 80386"),
   1011   ENUM_ENT(EM_68K,           "MC68000"),
   1012   ENUM_ENT(EM_88K,           "MC88000"),
   1013   ENUM_ENT(EM_IAMCU,         "EM_IAMCU"),
   1014   ENUM_ENT(EM_860,           "Intel 80860"),
   1015   ENUM_ENT(EM_MIPS,          "MIPS R3000"),
   1016   ENUM_ENT(EM_S370,          "IBM System/370"),
   1017   ENUM_ENT(EM_MIPS_RS3_LE,   "MIPS R3000 little-endian"),
   1018   ENUM_ENT(EM_PARISC,        "HPPA"),
   1019   ENUM_ENT(EM_VPP500,        "Fujitsu VPP500"),
   1020   ENUM_ENT(EM_SPARC32PLUS,   "Sparc v8+"),
   1021   ENUM_ENT(EM_960,           "Intel 80960"),
   1022   ENUM_ENT(EM_PPC,           "PowerPC"),
   1023   ENUM_ENT(EM_PPC64,         "PowerPC64"),
   1024   ENUM_ENT(EM_S390,          "IBM S/390"),
   1025   ENUM_ENT(EM_SPU,           "SPU"),
   1026   ENUM_ENT(EM_V800,          "NEC V800 series"),
   1027   ENUM_ENT(EM_FR20,          "Fujistsu FR20"),
   1028   ENUM_ENT(EM_RH32,          "TRW RH-32"),
   1029   ENUM_ENT(EM_RCE,           "Motorola RCE"),
   1030   ENUM_ENT(EM_ARM,           "ARM"),
   1031   ENUM_ENT(EM_ALPHA,         "EM_ALPHA"),
   1032   ENUM_ENT(EM_SH,            "Hitachi SH"),
   1033   ENUM_ENT(EM_SPARCV9,       "Sparc v9"),
   1034   ENUM_ENT(EM_TRICORE,       "Siemens Tricore"),
   1035   ENUM_ENT(EM_ARC,           "ARC"),
   1036   ENUM_ENT(EM_H8_300,        "Hitachi H8/300"),
   1037   ENUM_ENT(EM_H8_300H,       "Hitachi H8/300H"),
   1038   ENUM_ENT(EM_H8S,           "Hitachi H8S"),
   1039   ENUM_ENT(EM_H8_500,        "Hitachi H8/500"),
   1040   ENUM_ENT(EM_IA_64,         "Intel IA-64"),
   1041   ENUM_ENT(EM_MIPS_X,        "Stanford MIPS-X"),
   1042   ENUM_ENT(EM_COLDFIRE,      "Motorola Coldfire"),
   1043   ENUM_ENT(EM_68HC12,        "Motorola MC68HC12 Microcontroller"),
   1044   ENUM_ENT(EM_MMA,           "Fujitsu Multimedia Accelerator"),
   1045   ENUM_ENT(EM_PCP,           "Siemens PCP"),
   1046   ENUM_ENT(EM_NCPU,          "Sony nCPU embedded RISC processor"),
   1047   ENUM_ENT(EM_NDR1,          "Denso NDR1 microprocesspr"),
   1048   ENUM_ENT(EM_STARCORE,      "Motorola Star*Core processor"),
   1049   ENUM_ENT(EM_ME16,          "Toyota ME16 processor"),
   1050   ENUM_ENT(EM_ST100,         "STMicroelectronics ST100 processor"),
   1051   ENUM_ENT(EM_TINYJ,         "Advanced Logic Corp. TinyJ embedded processor"),
   1052   ENUM_ENT(EM_X86_64,        "Advanced Micro Devices X86-64"),
   1053   ENUM_ENT(EM_PDSP,          "Sony DSP processor"),
   1054   ENUM_ENT(EM_PDP10,         "Digital Equipment Corp. PDP-10"),
   1055   ENUM_ENT(EM_PDP11,         "Digital Equipment Corp. PDP-11"),
   1056   ENUM_ENT(EM_FX66,          "Siemens FX66 microcontroller"),
   1057   ENUM_ENT(EM_ST9PLUS,       "STMicroelectronics ST9+ 8/16 bit microcontroller"),
   1058   ENUM_ENT(EM_ST7,           "STMicroelectronics ST7 8-bit microcontroller"),
   1059   ENUM_ENT(EM_68HC16,        "Motorola MC68HC16 Microcontroller"),
   1060   ENUM_ENT(EM_68HC11,        "Motorola MC68HC11 Microcontroller"),
   1061   ENUM_ENT(EM_68HC08,        "Motorola MC68HC08 Microcontroller"),
   1062   ENUM_ENT(EM_68HC05,        "Motorola MC68HC05 Microcontroller"),
   1063   ENUM_ENT(EM_SVX,           "Silicon Graphics SVx"),
   1064   ENUM_ENT(EM_ST19,          "STMicroelectronics ST19 8-bit microcontroller"),
   1065   ENUM_ENT(EM_VAX,           "Digital VAX"),
   1066   ENUM_ENT(EM_CRIS,          "Axis Communications 32-bit embedded processor"),
   1067   ENUM_ENT(EM_JAVELIN,       "Infineon Technologies 32-bit embedded cpu"),
   1068   ENUM_ENT(EM_FIREPATH,      "Element 14 64-bit DSP processor"),
   1069   ENUM_ENT(EM_ZSP,           "LSI Logic's 16-bit DSP processor"),
   1070   ENUM_ENT(EM_MMIX,          "Donald Knuth's educational 64-bit processor"),
   1071   ENUM_ENT(EM_HUANY,         "Harvard Universitys's machine-independent object format"),
   1072   ENUM_ENT(EM_PRISM,         "Vitesse Prism"),
   1073   ENUM_ENT(EM_AVR,           "Atmel AVR 8-bit microcontroller"),
   1074   ENUM_ENT(EM_FR30,          "Fujitsu FR30"),
   1075   ENUM_ENT(EM_D10V,          "Mitsubishi D10V"),
   1076   ENUM_ENT(EM_D30V,          "Mitsubishi D30V"),
   1077   ENUM_ENT(EM_V850,          "NEC v850"),
   1078   ENUM_ENT(EM_M32R,          "Renesas M32R (formerly Mitsubishi M32r)"),
   1079   ENUM_ENT(EM_MN10300,       "Matsushita MN10300"),
   1080   ENUM_ENT(EM_MN10200,       "Matsushita MN10200"),
   1081   ENUM_ENT(EM_PJ,            "picoJava"),
   1082   ENUM_ENT(EM_OPENRISC,      "OpenRISC 32-bit embedded processor"),
   1083   ENUM_ENT(EM_ARC_COMPACT,   "EM_ARC_COMPACT"),
   1084   ENUM_ENT(EM_XTENSA,        "Tensilica Xtensa Processor"),
   1085   ENUM_ENT(EM_VIDEOCORE,     "Alphamosaic VideoCore processor"),
   1086   ENUM_ENT(EM_TMM_GPP,       "Thompson Multimedia General Purpose Processor"),
   1087   ENUM_ENT(EM_NS32K,         "National Semiconductor 32000 series"),
   1088   ENUM_ENT(EM_TPC,           "Tenor Network TPC processor"),
   1089   ENUM_ENT(EM_SNP1K,         "EM_SNP1K"),
   1090   ENUM_ENT(EM_ST200,         "STMicroelectronics ST200 microcontroller"),
   1091   ENUM_ENT(EM_IP2K,          "Ubicom IP2xxx 8-bit microcontrollers"),
   1092   ENUM_ENT(EM_MAX,           "MAX Processor"),
   1093   ENUM_ENT(EM_CR,            "National Semiconductor CompactRISC"),
   1094   ENUM_ENT(EM_F2MC16,        "Fujitsu F2MC16"),
   1095   ENUM_ENT(EM_MSP430,        "Texas Instruments msp430 microcontroller"),
   1096   ENUM_ENT(EM_BLACKFIN,      "Analog Devices Blackfin"),
   1097   ENUM_ENT(EM_SE_C33,        "S1C33 Family of Seiko Epson processors"),
   1098   ENUM_ENT(EM_SEP,           "Sharp embedded microprocessor"),
   1099   ENUM_ENT(EM_ARCA,          "Arca RISC microprocessor"),
   1100   ENUM_ENT(EM_UNICORE,       "Unicore"),
   1101   ENUM_ENT(EM_EXCESS,        "eXcess 16/32/64-bit configurable embedded CPU"),
   1102   ENUM_ENT(EM_DXP,           "Icera Semiconductor Inc. Deep Execution Processor"),
   1103   ENUM_ENT(EM_ALTERA_NIOS2,  "Altera Nios"),
   1104   ENUM_ENT(EM_CRX,           "National Semiconductor CRX microprocessor"),
   1105   ENUM_ENT(EM_XGATE,         "Motorola XGATE embedded processor"),
   1106   ENUM_ENT(EM_C166,          "Infineon Technologies xc16x"),
   1107   ENUM_ENT(EM_M16C,          "Renesas M16C"),
   1108   ENUM_ENT(EM_DSPIC30F,      "Microchip Technology dsPIC30F Digital Signal Controller"),
   1109   ENUM_ENT(EM_CE,            "Freescale Communication Engine RISC core"),
   1110   ENUM_ENT(EM_M32C,          "Renesas M32C"),
   1111   ENUM_ENT(EM_TSK3000,       "Altium TSK3000 core"),
   1112   ENUM_ENT(EM_RS08,          "Freescale RS08 embedded processor"),
   1113   ENUM_ENT(EM_SHARC,         "EM_SHARC"),
   1114   ENUM_ENT(EM_ECOG2,         "Cyan Technology eCOG2 microprocessor"),
   1115   ENUM_ENT(EM_SCORE7,        "SUNPLUS S+Core"),
   1116   ENUM_ENT(EM_DSP24,         "New Japan Radio (NJR) 24-bit DSP Processor"),
   1117   ENUM_ENT(EM_VIDEOCORE3,    "Broadcom VideoCore III processor"),
   1118   ENUM_ENT(EM_LATTICEMICO32, "Lattice Mico32"),
   1119   ENUM_ENT(EM_SE_C17,        "Seiko Epson C17 family"),
   1120   ENUM_ENT(EM_TI_C6000,      "Texas Instruments TMS320C6000 DSP family"),
   1121   ENUM_ENT(EM_TI_C2000,      "Texas Instruments TMS320C2000 DSP family"),
   1122   ENUM_ENT(EM_TI_C5500,      "Texas Instruments TMS320C55x DSP family"),
   1123   ENUM_ENT(EM_MMDSP_PLUS,    "STMicroelectronics 64bit VLIW Data Signal Processor"),
   1124   ENUM_ENT(EM_CYPRESS_M8C,   "Cypress M8C microprocessor"),
   1125   ENUM_ENT(EM_R32C,          "Renesas R32C series microprocessors"),
   1126   ENUM_ENT(EM_TRIMEDIA,      "NXP Semiconductors TriMedia architecture family"),
   1127   ENUM_ENT(EM_HEXAGON,       "Qualcomm Hexagon"),
   1128   ENUM_ENT(EM_8051,          "Intel 8051 and variants"),
   1129   ENUM_ENT(EM_STXP7X,        "STMicroelectronics STxP7x family"),
   1130   ENUM_ENT(EM_NDS32,         "Andes Technology compact code size embedded RISC processor family"),
   1131   ENUM_ENT(EM_ECOG1,         "Cyan Technology eCOG1 microprocessor"),
   1132   // FIXME: Following EM_ECOG1X definitions is dead code since EM_ECOG1X has
   1133   //        an identical number to EM_ECOG1.
   1134   ENUM_ENT(EM_ECOG1X,        "Cyan Technology eCOG1X family"),
   1135   ENUM_ENT(EM_MAXQ30,        "Dallas Semiconductor MAXQ30 Core microcontrollers"),
   1136   ENUM_ENT(EM_XIMO16,        "New Japan Radio (NJR) 16-bit DSP Processor"),
   1137   ENUM_ENT(EM_MANIK,         "M2000 Reconfigurable RISC Microprocessor"),
   1138   ENUM_ENT(EM_CRAYNV2,       "Cray Inc. NV2 vector architecture"),
   1139   ENUM_ENT(EM_RX,            "Renesas RX"),
   1140   ENUM_ENT(EM_METAG,         "Imagination Technologies Meta processor architecture"),
   1141   ENUM_ENT(EM_MCST_ELBRUS,   "MCST Elbrus general purpose hardware architecture"),
   1142   ENUM_ENT(EM_ECOG16,        "Cyan Technology eCOG16 family"),
   1143   ENUM_ENT(EM_CR16,          "National Semiconductor CompactRISC 16-bit processor"),
   1144   ENUM_ENT(EM_ETPU,          "Freescale Extended Time Processing Unit"),
   1145   ENUM_ENT(EM_SLE9X,         "Infineon Technologies SLE9X core"),
   1146   ENUM_ENT(EM_L10M,          "EM_L10M"),
   1147   ENUM_ENT(EM_K10M,          "EM_K10M"),
   1148   ENUM_ENT(EM_AARCH64,       "AArch64"),
   1149   ENUM_ENT(EM_AVR32,         "Atmel Corporation 32-bit microprocessor family"),
   1150   ENUM_ENT(EM_STM8,          "STMicroeletronics STM8 8-bit microcontroller"),
   1151   ENUM_ENT(EM_TILE64,        "Tilera TILE64 multicore architecture family"),
   1152   ENUM_ENT(EM_TILEPRO,       "Tilera TILEPro multicore architecture family"),
   1153   ENUM_ENT(EM_MICROBLAZE,    "Xilinx MicroBlaze 32-bit RISC soft processor core"),
   1154   ENUM_ENT(EM_CUDA,          "NVIDIA CUDA architecture"),
   1155   ENUM_ENT(EM_TILEGX,        "Tilera TILE-Gx multicore architecture family"),
   1156   ENUM_ENT(EM_CLOUDSHIELD,   "EM_CLOUDSHIELD"),
   1157   ENUM_ENT(EM_COREA_1ST,     "EM_COREA_1ST"),
   1158   ENUM_ENT(EM_COREA_2ND,     "EM_COREA_2ND"),
   1159   ENUM_ENT(EM_ARC_COMPACT2,  "EM_ARC_COMPACT2"),
   1160   ENUM_ENT(EM_OPEN8,         "EM_OPEN8"),
   1161   ENUM_ENT(EM_RL78,          "Renesas RL78"),
   1162   ENUM_ENT(EM_VIDEOCORE5,    "Broadcom VideoCore V processor"),
   1163   ENUM_ENT(EM_78KOR,         "EM_78KOR"),
   1164   ENUM_ENT(EM_56800EX,       "EM_56800EX"),
   1165   ENUM_ENT(EM_AMDGPU,        "EM_AMDGPU"),
   1166   ENUM_ENT(EM_RISCV,         "RISC-V"),
   1167   ENUM_ENT(EM_LANAI,         "EM_LANAI"),
   1168   ENUM_ENT(EM_BPF,           "EM_BPF"),
   1169   ENUM_ENT(EM_VE,            "NEC SX-Aurora Vector Engine"),
   1170 };
   1171 
   1172 static const EnumEntry<unsigned> ElfSymbolBindings[] = {
   1173     {"Local",  "LOCAL",  ELF::STB_LOCAL},
   1174     {"Global", "GLOBAL", ELF::STB_GLOBAL},
   1175     {"Weak",   "WEAK",   ELF::STB_WEAK},
   1176     {"Unique", "UNIQUE", ELF::STB_GNU_UNIQUE}};
   1177 
   1178 static const EnumEntry<unsigned> ElfSymbolVisibilities[] = {
   1179     {"DEFAULT",   "DEFAULT",   ELF::STV_DEFAULT},
   1180     {"INTERNAL",  "INTERNAL",  ELF::STV_INTERNAL},
   1181     {"HIDDEN",    "HIDDEN",    ELF::STV_HIDDEN},
   1182     {"PROTECTED", "PROTECTED", ELF::STV_PROTECTED}};
   1183 
   1184 static const EnumEntry<unsigned> AMDGPUSymbolTypes[] = {
   1185   { "AMDGPU_HSA_KERNEL",            ELF::STT_AMDGPU_HSA_KERNEL }
   1186 };
   1187 
   1188 static const char *getGroupType(uint32_t Flag) {
   1189   if (Flag & ELF::GRP_COMDAT)
   1190     return "COMDAT";
   1191   else
   1192     return "(unknown)";
   1193 }
   1194 
   1195 static const EnumEntry<unsigned> ElfSectionFlags[] = {
   1196   ENUM_ENT(SHF_WRITE,            "W"),
   1197   ENUM_ENT(SHF_ALLOC,            "A"),
   1198   ENUM_ENT(SHF_EXECINSTR,        "X"),
   1199   ENUM_ENT(SHF_MERGE,            "M"),
   1200   ENUM_ENT(SHF_STRINGS,          "S"),
   1201   ENUM_ENT(SHF_INFO_LINK,        "I"),
   1202   ENUM_ENT(SHF_LINK_ORDER,       "L"),
   1203   ENUM_ENT(SHF_OS_NONCONFORMING, "O"),
   1204   ENUM_ENT(SHF_GROUP,            "G"),
   1205   ENUM_ENT(SHF_TLS,              "T"),
   1206   ENUM_ENT(SHF_COMPRESSED,       "C"),
   1207   ENUM_ENT(SHF_GNU_RETAIN,       "R"),
   1208   ENUM_ENT(SHF_EXCLUDE,          "E"),
   1209 };
   1210 
   1211 static const EnumEntry<unsigned> ElfXCoreSectionFlags[] = {
   1212   ENUM_ENT(XCORE_SHF_CP_SECTION, ""),
   1213   ENUM_ENT(XCORE_SHF_DP_SECTION, "")
   1214 };
   1215 
   1216 static const EnumEntry<unsigned> ElfARMSectionFlags[] = {
   1217   ENUM_ENT(SHF_ARM_PURECODE, "y")
   1218 };
   1219 
   1220 static const EnumEntry<unsigned> ElfHexagonSectionFlags[] = {
   1221   ENUM_ENT(SHF_HEX_GPREL, "")
   1222 };
   1223 
   1224 static const EnumEntry<unsigned> ElfMipsSectionFlags[] = {
   1225   ENUM_ENT(SHF_MIPS_NODUPES, ""),
   1226   ENUM_ENT(SHF_MIPS_NAMES,   ""),
   1227   ENUM_ENT(SHF_MIPS_LOCAL,   ""),
   1228   ENUM_ENT(SHF_MIPS_NOSTRIP, ""),
   1229   ENUM_ENT(SHF_MIPS_GPREL,   ""),
   1230   ENUM_ENT(SHF_MIPS_MERGE,   ""),
   1231   ENUM_ENT(SHF_MIPS_ADDR,    ""),
   1232   ENUM_ENT(SHF_MIPS_STRING,  "")
   1233 };
   1234 
   1235 static const EnumEntry<unsigned> ElfX86_64SectionFlags[] = {
   1236   ENUM_ENT(SHF_X86_64_LARGE, "l")
   1237 };
   1238 
   1239 static std::vector<EnumEntry<unsigned>>
   1240 getSectionFlagsForTarget(unsigned EMachine) {
   1241   std::vector<EnumEntry<unsigned>> Ret(std::begin(ElfSectionFlags),
   1242                                        std::end(ElfSectionFlags));
   1243   switch (EMachine) {
   1244   case EM_ARM:
   1245     Ret.insert(Ret.end(), std::begin(ElfARMSectionFlags),
   1246                std::end(ElfARMSectionFlags));
   1247     break;
   1248   case EM_HEXAGON:
   1249     Ret.insert(Ret.end(), std::begin(ElfHexagonSectionFlags),
   1250                std::end(ElfHexagonSectionFlags));
   1251     break;
   1252   case EM_MIPS:
   1253     Ret.insert(Ret.end(), std::begin(ElfMipsSectionFlags),
   1254                std::end(ElfMipsSectionFlags));
   1255     break;
   1256   case EM_X86_64:
   1257     Ret.insert(Ret.end(), std::begin(ElfX86_64SectionFlags),
   1258                std::end(ElfX86_64SectionFlags));
   1259     break;
   1260   case EM_XCORE:
   1261     Ret.insert(Ret.end(), std::begin(ElfXCoreSectionFlags),
   1262                std::end(ElfXCoreSectionFlags));
   1263     break;
   1264   default:
   1265     break;
   1266   }
   1267   return Ret;
   1268 }
   1269 
   1270 static std::string getGNUFlags(unsigned EMachine, uint64_t Flags) {
   1271   // Here we are trying to build the flags string in the same way as GNU does.
   1272   // It is not that straightforward. Imagine we have sh_flags == 0x90000000.
   1273   // SHF_EXCLUDE ("E") has a value of 0x80000000 and SHF_MASKPROC is 0xf0000000.
   1274   // GNU readelf will not print "E" or "Ep" in this case, but will print just
   1275   // "p". It only will print "E" when no other processor flag is set.
   1276   std::string Str;
   1277   bool HasUnknownFlag = false;
   1278   bool HasOSFlag = false;
   1279   bool HasProcFlag = false;
   1280   std::vector<EnumEntry<unsigned>> FlagsList =
   1281       getSectionFlagsForTarget(EMachine);
   1282   while (Flags) {
   1283     // Take the least significant bit as a flag.
   1284     uint64_t Flag = Flags & -Flags;
   1285     Flags -= Flag;
   1286 
   1287     // Find the flag in the known flags list.
   1288     auto I = llvm::find_if(FlagsList, [=](const EnumEntry<unsigned> &E) {
   1289       // Flags with empty names are not printed in GNU style output.
   1290       return E.Value == Flag && !E.AltName.empty();
   1291     });
   1292     if (I != FlagsList.end()) {
   1293       Str += I->AltName;
   1294       continue;
   1295     }
   1296 
   1297     // If we did not find a matching regular flag, then we deal with an OS
   1298     // specific flag, processor specific flag or an unknown flag.
   1299     if (Flag & ELF::SHF_MASKOS) {
   1300       HasOSFlag = true;
   1301       Flags &= ~ELF::SHF_MASKOS;
   1302     } else if (Flag & ELF::SHF_MASKPROC) {
   1303       HasProcFlag = true;
   1304       // Mask off all the processor-specific bits. This removes the SHF_EXCLUDE
   1305       // bit if set so that it doesn't also get printed.
   1306       Flags &= ~ELF::SHF_MASKPROC;
   1307     } else {
   1308       HasUnknownFlag = true;
   1309     }
   1310   }
   1311 
   1312   // "o", "p" and "x" are printed last.
   1313   if (HasOSFlag)
   1314     Str += "o";
   1315   if (HasProcFlag)
   1316     Str += "p";
   1317   if (HasUnknownFlag)
   1318     Str += "x";
   1319   return Str;
   1320 }
   1321 
   1322 static StringRef segmentTypeToString(unsigned Arch, unsigned Type) {
   1323   // Check potentially overlapped processor-specific program header type.
   1324   switch (Arch) {
   1325   case ELF::EM_ARM:
   1326     switch (Type) { LLVM_READOBJ_ENUM_CASE(ELF, PT_ARM_EXIDX); }
   1327     break;
   1328   case ELF::EM_MIPS:
   1329   case ELF::EM_MIPS_RS3_LE:
   1330     switch (Type) {
   1331       LLVM_READOBJ_ENUM_CASE(ELF, PT_MIPS_REGINFO);
   1332       LLVM_READOBJ_ENUM_CASE(ELF, PT_MIPS_RTPROC);
   1333       LLVM_READOBJ_ENUM_CASE(ELF, PT_MIPS_OPTIONS);
   1334       LLVM_READOBJ_ENUM_CASE(ELF, PT_MIPS_ABIFLAGS);
   1335     }
   1336     break;
   1337   }
   1338 
   1339   switch (Type) {
   1340     LLVM_READOBJ_ENUM_CASE(ELF, PT_NULL);
   1341     LLVM_READOBJ_ENUM_CASE(ELF, PT_LOAD);
   1342     LLVM_READOBJ_ENUM_CASE(ELF, PT_DYNAMIC);
   1343     LLVM_READOBJ_ENUM_CASE(ELF, PT_INTERP);
   1344     LLVM_READOBJ_ENUM_CASE(ELF, PT_NOTE);
   1345     LLVM_READOBJ_ENUM_CASE(ELF, PT_SHLIB);
   1346     LLVM_READOBJ_ENUM_CASE(ELF, PT_PHDR);
   1347     LLVM_READOBJ_ENUM_CASE(ELF, PT_TLS);
   1348 
   1349     LLVM_READOBJ_ENUM_CASE(ELF, PT_GNU_EH_FRAME);
   1350     LLVM_READOBJ_ENUM_CASE(ELF, PT_SUNW_UNWIND);
   1351 
   1352     LLVM_READOBJ_ENUM_CASE(ELF, PT_GNU_STACK);
   1353     LLVM_READOBJ_ENUM_CASE(ELF, PT_GNU_RELRO);
   1354     LLVM_READOBJ_ENUM_CASE(ELF, PT_GNU_PROPERTY);
   1355 
   1356     LLVM_READOBJ_ENUM_CASE(ELF, PT_OPENBSD_RANDOMIZE);
   1357     LLVM_READOBJ_ENUM_CASE(ELF, PT_OPENBSD_WXNEEDED);
   1358     LLVM_READOBJ_ENUM_CASE(ELF, PT_OPENBSD_BOOTDATA);
   1359   default:
   1360     return "";
   1361   }
   1362 }
   1363 
   1364 static std::string getGNUPtType(unsigned Arch, unsigned Type) {
   1365   StringRef Seg = segmentTypeToString(Arch, Type);
   1366   if (Seg.empty())
   1367     return std::string("<unknown>: ") + to_string(format_hex(Type, 1));
   1368 
   1369   // E.g. "PT_ARM_EXIDX" -> "EXIDX".
   1370   if (Seg.startswith("PT_ARM_"))
   1371     return Seg.drop_front(7).str();
   1372 
   1373   // E.g. "PT_MIPS_REGINFO" -> "REGINFO".
   1374   if (Seg.startswith("PT_MIPS_"))
   1375     return Seg.drop_front(8).str();
   1376 
   1377   // E.g. "PT_LOAD" -> "LOAD".
   1378   assert(Seg.startswith("PT_"));
   1379   return Seg.drop_front(3).str();
   1380 }
   1381 
   1382 static const EnumEntry<unsigned> ElfSegmentFlags[] = {
   1383   LLVM_READOBJ_ENUM_ENT(ELF, PF_X),
   1384   LLVM_READOBJ_ENUM_ENT(ELF, PF_W),
   1385   LLVM_READOBJ_ENUM_ENT(ELF, PF_R)
   1386 };
   1387 
   1388 static const EnumEntry<unsigned> ElfHeaderMipsFlags[] = {
   1389   ENUM_ENT(EF_MIPS_NOREORDER, "noreorder"),
   1390   ENUM_ENT(EF_MIPS_PIC, "pic"),
   1391   ENUM_ENT(EF_MIPS_CPIC, "cpic"),
   1392   ENUM_ENT(EF_MIPS_ABI2, "abi2"),
   1393   ENUM_ENT(EF_MIPS_32BITMODE, "32bitmode"),
   1394   ENUM_ENT(EF_MIPS_FP64, "fp64"),
   1395   ENUM_ENT(EF_MIPS_NAN2008, "nan2008"),
   1396   ENUM_ENT(EF_MIPS_ABI_O32, "o32"),
   1397   ENUM_ENT(EF_MIPS_ABI_O64, "o64"),
   1398   ENUM_ENT(EF_MIPS_ABI_EABI32, "eabi32"),
   1399   ENUM_ENT(EF_MIPS_ABI_EABI64, "eabi64"),
   1400   ENUM_ENT(EF_MIPS_MACH_3900, "3900"),
   1401   ENUM_ENT(EF_MIPS_MACH_4010, "4010"),
   1402   ENUM_ENT(EF_MIPS_MACH_4100, "4100"),
   1403   ENUM_ENT(EF_MIPS_MACH_4650, "4650"),
   1404   ENUM_ENT(EF_MIPS_MACH_4120, "4120"),
   1405   ENUM_ENT(EF_MIPS_MACH_4111, "4111"),
   1406   ENUM_ENT(EF_MIPS_MACH_SB1, "sb1"),
   1407   ENUM_ENT(EF_MIPS_MACH_OCTEON, "octeon"),
   1408   ENUM_ENT(EF_MIPS_MACH_XLR, "xlr"),
   1409   ENUM_ENT(EF_MIPS_MACH_OCTEON2, "octeon2"),
   1410   ENUM_ENT(EF_MIPS_MACH_OCTEON3, "octeon3"),
   1411   ENUM_ENT(EF_MIPS_MACH_5400, "5400"),
   1412   ENUM_ENT(EF_MIPS_MACH_5900, "5900"),
   1413   ENUM_ENT(EF_MIPS_MACH_5500, "5500"),
   1414   ENUM_ENT(EF_MIPS_MACH_9000, "9000"),
   1415   ENUM_ENT(EF_MIPS_MACH_LS2E, "loongson-2e"),
   1416   ENUM_ENT(EF_MIPS_MACH_LS2F, "loongson-2f"),
   1417   ENUM_ENT(EF_MIPS_MACH_LS3A, "loongson-3a"),
   1418   ENUM_ENT(EF_MIPS_MICROMIPS, "micromips"),
   1419   ENUM_ENT(EF_MIPS_ARCH_ASE_M16, "mips16"),
   1420   ENUM_ENT(EF_MIPS_ARCH_ASE_MDMX, "mdmx"),
   1421   ENUM_ENT(EF_MIPS_ARCH_1, "mips1"),
   1422   ENUM_ENT(EF_MIPS_ARCH_2, "mips2"),
   1423   ENUM_ENT(EF_MIPS_ARCH_3, "mips3"),
   1424   ENUM_ENT(EF_MIPS_ARCH_4, "mips4"),
   1425   ENUM_ENT(EF_MIPS_ARCH_5, "mips5"),
   1426   ENUM_ENT(EF_MIPS_ARCH_32, "mips32"),
   1427   ENUM_ENT(EF_MIPS_ARCH_64, "mips64"),
   1428   ENUM_ENT(EF_MIPS_ARCH_32R2, "mips32r2"),
   1429   ENUM_ENT(EF_MIPS_ARCH_64R2, "mips64r2"),
   1430   ENUM_ENT(EF_MIPS_ARCH_32R6, "mips32r6"),
   1431   ENUM_ENT(EF_MIPS_ARCH_64R6, "mips64r6")
   1432 };
   1433 
   1434 static const EnumEntry<unsigned> ElfHeaderAMDGPUFlagsABIVersion3[] = {
   1435   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_NONE),
   1436   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_R600),
   1437   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_R630),
   1438   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_RS880),
   1439   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_RV670),
   1440   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_RV710),
   1441   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_RV730),
   1442   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_RV770),
   1443   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_CEDAR),
   1444   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_CYPRESS),
   1445   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_JUNIPER),
   1446   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_REDWOOD),
   1447   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_SUMO),
   1448   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_BARTS),
   1449   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_CAICOS),
   1450   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_CAYMAN),
   1451   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_TURKS),
   1452   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX600),
   1453   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX601),
   1454   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX602),
   1455   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX700),
   1456   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX701),
   1457   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX702),
   1458   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX703),
   1459   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX704),
   1460   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX705),
   1461   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX801),
   1462   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX802),
   1463   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX803),
   1464   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX805),
   1465   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX810),
   1466   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX900),
   1467   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX902),
   1468   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX904),
   1469   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX906),
   1470   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX908),
   1471   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX909),
   1472   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX90A),
   1473   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX90C),
   1474   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1010),
   1475   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1011),
   1476   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1012),
   1477   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1030),
   1478   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1031),
   1479   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1032),
   1480   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1033),
   1481   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1034),
   1482   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_FEATURE_XNACK_V3),
   1483   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_FEATURE_SRAMECC_V3)
   1484 };
   1485 
   1486 static const EnumEntry<unsigned> ElfHeaderAMDGPUFlagsABIVersion4[] = {
   1487   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_NONE),
   1488   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_R600),
   1489   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_R630),
   1490   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_RS880),
   1491   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_RV670),
   1492   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_RV710),
   1493   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_RV730),
   1494   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_RV770),
   1495   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_CEDAR),
   1496   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_CYPRESS),
   1497   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_JUNIPER),
   1498   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_REDWOOD),
   1499   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_SUMO),
   1500   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_BARTS),
   1501   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_CAICOS),
   1502   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_CAYMAN),
   1503   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_R600_TURKS),
   1504   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX600),
   1505   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX601),
   1506   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX602),
   1507   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX700),
   1508   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX701),
   1509   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX702),
   1510   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX703),
   1511   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX704),
   1512   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX705),
   1513   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX801),
   1514   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX802),
   1515   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX803),
   1516   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX805),
   1517   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX810),
   1518   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX900),
   1519   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX902),
   1520   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX904),
   1521   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX906),
   1522   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX908),
   1523   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX909),
   1524   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX90A),
   1525   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX90C),
   1526   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1010),
   1527   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1011),
   1528   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1012),
   1529   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1030),
   1530   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1031),
   1531   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1032),
   1532   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1033),
   1533   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_MACH_AMDGCN_GFX1034),
   1534   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_FEATURE_XNACK_ANY_V4),
   1535   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_FEATURE_XNACK_OFF_V4),
   1536   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_FEATURE_XNACK_ON_V4),
   1537   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_FEATURE_SRAMECC_ANY_V4),
   1538   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_FEATURE_SRAMECC_OFF_V4),
   1539   LLVM_READOBJ_ENUM_ENT(ELF, EF_AMDGPU_FEATURE_SRAMECC_ON_V4)
   1540 };
   1541 
   1542 static const EnumEntry<unsigned> ElfHeaderRISCVFlags[] = {
   1543   ENUM_ENT(EF_RISCV_RVC, "RVC"),
   1544   ENUM_ENT(EF_RISCV_FLOAT_ABI_SINGLE, "single-float ABI"),
   1545   ENUM_ENT(EF_RISCV_FLOAT_ABI_DOUBLE, "double-float ABI"),
   1546   ENUM_ENT(EF_RISCV_FLOAT_ABI_QUAD, "quad-float ABI"),
   1547   ENUM_ENT(EF_RISCV_RVE, "RVE")
   1548 };
   1549 
   1550 static const EnumEntry<unsigned> ElfHeaderAVRFlags[] = {
   1551   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_AVR1),
   1552   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_AVR2),
   1553   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_AVR25),
   1554   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_AVR3),
   1555   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_AVR31),
   1556   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_AVR35),
   1557   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_AVR4),
   1558   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_AVR5),
   1559   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_AVR51),
   1560   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_AVR6),
   1561   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_AVRTINY),
   1562   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_XMEGA1),
   1563   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_XMEGA2),
   1564   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_XMEGA3),
   1565   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_XMEGA4),
   1566   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_XMEGA5),
   1567   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_XMEGA6),
   1568   LLVM_READOBJ_ENUM_ENT(ELF, EF_AVR_ARCH_XMEGA7),
   1569   ENUM_ENT(EF_AVR_LINKRELAX_PREPARED, "relaxable"),
   1570 };
   1571 
   1572 
   1573 static const EnumEntry<unsigned> ElfSymOtherFlags[] = {
   1574   LLVM_READOBJ_ENUM_ENT(ELF, STV_INTERNAL),
   1575   LLVM_READOBJ_ENUM_ENT(ELF, STV_HIDDEN),
   1576   LLVM_READOBJ_ENUM_ENT(ELF, STV_PROTECTED)
   1577 };
   1578 
   1579 static const EnumEntry<unsigned> ElfMipsSymOtherFlags[] = {
   1580   LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_OPTIONAL),
   1581   LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_PLT),
   1582   LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_PIC),
   1583   LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_MICROMIPS)
   1584 };
   1585 
   1586 static const EnumEntry<unsigned> ElfAArch64SymOtherFlags[] = {
   1587   LLVM_READOBJ_ENUM_ENT(ELF, STO_AARCH64_VARIANT_PCS)
   1588 };
   1589 
   1590 static const EnumEntry<unsigned> ElfMips16SymOtherFlags[] = {
   1591   LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_OPTIONAL),
   1592   LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_PLT),
   1593   LLVM_READOBJ_ENUM_ENT(ELF, STO_MIPS_MIPS16)
   1594 };
   1595 
   1596 static const char *getElfMipsOptionsOdkType(unsigned Odk) {
   1597   switch (Odk) {
   1598   LLVM_READOBJ_ENUM_CASE(ELF, ODK_NULL);
   1599   LLVM_READOBJ_ENUM_CASE(ELF, ODK_REGINFO);
   1600   LLVM_READOBJ_ENUM_CASE(ELF, ODK_EXCEPTIONS);
   1601   LLVM_READOBJ_ENUM_CASE(ELF, ODK_PAD);
   1602   LLVM_READOBJ_ENUM_CASE(ELF, ODK_HWPATCH);
   1603   LLVM_READOBJ_ENUM_CASE(ELF, ODK_FILL);
   1604   LLVM_READOBJ_ENUM_CASE(ELF, ODK_TAGS);
   1605   LLVM_READOBJ_ENUM_CASE(ELF, ODK_HWAND);
   1606   LLVM_READOBJ_ENUM_CASE(ELF, ODK_HWOR);
   1607   LLVM_READOBJ_ENUM_CASE(ELF, ODK_GP_GROUP);
   1608   LLVM_READOBJ_ENUM_CASE(ELF, ODK_IDENT);
   1609   LLVM_READOBJ_ENUM_CASE(ELF, ODK_PAGESIZE);
   1610   default:
   1611     return "Unknown";
   1612   }
   1613 }
   1614 
   1615 template <typename ELFT>
   1616 std::pair<const typename ELFT::Phdr *, const typename ELFT::Shdr *>
   1617 ELFDumper<ELFT>::findDynamic() {
   1618   // Try to locate the PT_DYNAMIC header.
   1619   const Elf_Phdr *DynamicPhdr = nullptr;
   1620   if (Expected<ArrayRef<Elf_Phdr>> PhdrsOrErr = Obj.program_headers()) {
   1621     for (const Elf_Phdr &Phdr : *PhdrsOrErr) {
   1622       if (Phdr.p_type != ELF::PT_DYNAMIC)
   1623         continue;
   1624       DynamicPhdr = &Phdr;
   1625       break;
   1626     }
   1627   } else {
   1628     reportUniqueWarning(
   1629         "unable to read program headers to locate the PT_DYNAMIC segment: " +
   1630         toString(PhdrsOrErr.takeError()));
   1631   }
   1632 
   1633   // Try to locate the .dynamic section in the sections header table.
   1634   const Elf_Shdr *DynamicSec = nullptr;
   1635   for (const Elf_Shdr &Sec : cantFail(Obj.sections())) {
   1636     if (Sec.sh_type != ELF::SHT_DYNAMIC)
   1637       continue;
   1638     DynamicSec = &Sec;
   1639     break;
   1640   }
   1641 
   1642   if (DynamicPhdr && ((DynamicPhdr->p_offset + DynamicPhdr->p_filesz >
   1643                        ObjF.getMemoryBufferRef().getBufferSize()) ||
   1644                       (DynamicPhdr->p_offset + DynamicPhdr->p_filesz <
   1645                        DynamicPhdr->p_offset))) {
   1646     reportUniqueWarning(
   1647         "PT_DYNAMIC segment offset (0x" +
   1648         Twine::utohexstr(DynamicPhdr->p_offset) + ") + file size (0x" +
   1649         Twine::utohexstr(DynamicPhdr->p_filesz) +
   1650         ") exceeds the size of the file (0x" +
   1651         Twine::utohexstr(ObjF.getMemoryBufferRef().getBufferSize()) + ")");
   1652     // Don't use the broken dynamic header.
   1653     DynamicPhdr = nullptr;
   1654   }
   1655 
   1656   if (DynamicPhdr && DynamicSec) {
   1657     if (DynamicSec->sh_addr + DynamicSec->sh_size >
   1658             DynamicPhdr->p_vaddr + DynamicPhdr->p_memsz ||
   1659         DynamicSec->sh_addr < DynamicPhdr->p_vaddr)
   1660       reportUniqueWarning(describe(*DynamicSec) +
   1661                           " is not contained within the "
   1662                           "PT_DYNAMIC segment");
   1663 
   1664     if (DynamicSec->sh_addr != DynamicPhdr->p_vaddr)
   1665       reportUniqueWarning(describe(*DynamicSec) + " is not at the start of "
   1666                                                   "PT_DYNAMIC segment");
   1667   }
   1668 
   1669   return std::make_pair(DynamicPhdr, DynamicSec);
   1670 }
   1671 
   1672 template <typename ELFT>
   1673 void ELFDumper<ELFT>::loadDynamicTable() {
   1674   const Elf_Phdr *DynamicPhdr;
   1675   const Elf_Shdr *DynamicSec;
   1676   std::tie(DynamicPhdr, DynamicSec) = findDynamic();
   1677   if (!DynamicPhdr && !DynamicSec)
   1678     return;
   1679 
   1680   DynRegionInfo FromPhdr(ObjF, *this);
   1681   bool IsPhdrTableValid = false;
   1682   if (DynamicPhdr) {
   1683     // Use cantFail(), because p_offset/p_filesz fields of a PT_DYNAMIC are
   1684     // validated in findDynamic() and so createDRI() is not expected to fail.
   1685     FromPhdr = cantFail(createDRI(DynamicPhdr->p_offset, DynamicPhdr->p_filesz,
   1686                                   sizeof(Elf_Dyn)));
   1687     FromPhdr.SizePrintName = "PT_DYNAMIC size";
   1688     FromPhdr.EntSizePrintName = "";
   1689     IsPhdrTableValid = !FromPhdr.template getAsArrayRef<Elf_Dyn>().empty();
   1690   }
   1691 
   1692   // Locate the dynamic table described in a section header.
   1693   // Ignore sh_entsize and use the expected value for entry size explicitly.
   1694   // This allows us to dump dynamic sections with a broken sh_entsize
   1695   // field.
   1696   DynRegionInfo FromSec(ObjF, *this);
   1697   bool IsSecTableValid = false;
   1698   if (DynamicSec) {
   1699     Expected<DynRegionInfo> RegOrErr =
   1700         createDRI(DynamicSec->sh_offset, DynamicSec->sh_size, sizeof(Elf_Dyn));
   1701     if (RegOrErr) {
   1702       FromSec = *RegOrErr;
   1703       FromSec.Context = describe(*DynamicSec);
   1704       FromSec.EntSizePrintName = "";
   1705       IsSecTableValid = !FromSec.template getAsArrayRef<Elf_Dyn>().empty();
   1706     } else {
   1707       reportUniqueWarning("unable to read the dynamic table from " +
   1708                           describe(*DynamicSec) + ": " +
   1709                           toString(RegOrErr.takeError()));
   1710     }
   1711   }
   1712 
   1713   // When we only have information from one of the SHT_DYNAMIC section header or
   1714   // PT_DYNAMIC program header, just use that.
   1715   if (!DynamicPhdr || !DynamicSec) {
   1716     if ((DynamicPhdr && IsPhdrTableValid) || (DynamicSec && IsSecTableValid)) {
   1717       DynamicTable = DynamicPhdr ? FromPhdr : FromSec;
   1718       parseDynamicTable();
   1719     } else {
   1720       reportUniqueWarning("no valid dynamic table was found");
   1721     }
   1722     return;
   1723   }
   1724 
   1725   // At this point we have tables found from the section header and from the
   1726   // dynamic segment. Usually they match, but we have to do sanity checks to
   1727   // verify that.
   1728 
   1729   if (FromPhdr.Addr != FromSec.Addr)
   1730     reportUniqueWarning("SHT_DYNAMIC section header and PT_DYNAMIC "
   1731                         "program header disagree about "
   1732                         "the location of the dynamic table");
   1733 
   1734   if (!IsPhdrTableValid && !IsSecTableValid) {
   1735     reportUniqueWarning("no valid dynamic table was found");
   1736     return;
   1737   }
   1738 
   1739   // Information in the PT_DYNAMIC program header has priority over the
   1740   // information in a section header.
   1741   if (IsPhdrTableValid) {
   1742     if (!IsSecTableValid)
   1743       reportUniqueWarning(
   1744           "SHT_DYNAMIC dynamic table is invalid: PT_DYNAMIC will be used");
   1745     DynamicTable = FromPhdr;
   1746   } else {
   1747     reportUniqueWarning(
   1748         "PT_DYNAMIC dynamic table is invalid: SHT_DYNAMIC will be used");
   1749     DynamicTable = FromSec;
   1750   }
   1751 
   1752   parseDynamicTable();
   1753 }
   1754 
   1755 template <typename ELFT>
   1756 ELFDumper<ELFT>::ELFDumper(const object::ELFObjectFile<ELFT> &O,
   1757                            ScopedPrinter &Writer)
   1758     : ObjDumper(Writer, O.getFileName()), ObjF(O), Obj(O.getELFFile()),
   1759       FileName(O.getFileName()), DynRelRegion(O, *this),
   1760       DynRelaRegion(O, *this), DynRelrRegion(O, *this),
   1761       DynPLTRelRegion(O, *this), DynSymTabShndxRegion(O, *this),
   1762       DynamicTable(O, *this) {
   1763   if (!O.IsContentValid())
   1764     return;
   1765 
   1766   typename ELFT::ShdrRange Sections = cantFail(Obj.sections());
   1767   for (const Elf_Shdr &Sec : Sections) {
   1768     switch (Sec.sh_type) {
   1769     case ELF::SHT_SYMTAB:
   1770       if (!DotSymtabSec)
   1771         DotSymtabSec = &Sec;
   1772       break;
   1773     case ELF::SHT_DYNSYM:
   1774       if (!DotDynsymSec)
   1775         DotDynsymSec = &Sec;
   1776 
   1777       if (!DynSymRegion) {
   1778         Expected<DynRegionInfo> RegOrErr =
   1779             createDRI(Sec.sh_offset, Sec.sh_size, Sec.sh_entsize);
   1780         if (RegOrErr) {
   1781           DynSymRegion = *RegOrErr;
   1782           DynSymRegion->Context = describe(Sec);
   1783 
   1784           if (Expected<StringRef> E = Obj.getStringTableForSymtab(Sec))
   1785             DynamicStringTable = *E;
   1786           else
   1787             reportUniqueWarning("unable to get the string table for the " +
   1788                                 describe(Sec) + ": " + toString(E.takeError()));
   1789         } else {
   1790           reportUniqueWarning("unable to read dynamic symbols from " +
   1791                               describe(Sec) + ": " +
   1792                               toString(RegOrErr.takeError()));
   1793         }
   1794       }
   1795       break;
   1796     case ELF::SHT_SYMTAB_SHNDX: {
   1797       uint32_t SymtabNdx = Sec.sh_link;
   1798       if (SymtabNdx >= Sections.size()) {
   1799         reportUniqueWarning(
   1800             "unable to get the associated symbol table for " + describe(Sec) +
   1801             ": sh_link (" + Twine(SymtabNdx) +
   1802             ") is greater than or equal to the total number of sections (" +
   1803             Twine(Sections.size()) + ")");
   1804         continue;
   1805       }
   1806 
   1807       if (Expected<ArrayRef<Elf_Word>> ShndxTableOrErr =
   1808               Obj.getSHNDXTable(Sec)) {
   1809         if (!ShndxTables.insert({&Sections[SymtabNdx], *ShndxTableOrErr})
   1810                  .second)
   1811           reportUniqueWarning(
   1812               "multiple SHT_SYMTAB_SHNDX sections are linked to " +
   1813               describe(Sec));
   1814       } else {
   1815         reportUniqueWarning(ShndxTableOrErr.takeError());
   1816       }
   1817       break;
   1818     }
   1819     case ELF::SHT_GNU_versym:
   1820       if (!SymbolVersionSection)
   1821         SymbolVersionSection = &Sec;
   1822       break;
   1823     case ELF::SHT_GNU_verdef:
   1824       if (!SymbolVersionDefSection)
   1825         SymbolVersionDefSection = &Sec;
   1826       break;
   1827     case ELF::SHT_GNU_verneed:
   1828       if (!SymbolVersionNeedSection)
   1829         SymbolVersionNeedSection = &Sec;
   1830       break;
   1831     case ELF::SHT_LLVM_CALL_GRAPH_PROFILE:
   1832       if (!DotCGProfileSec)
   1833         DotCGProfileSec = &Sec;
   1834       break;
   1835     case ELF::SHT_LLVM_ADDRSIG:
   1836       if (!DotAddrsigSec)
   1837         DotAddrsigSec = &Sec;
   1838       break;
   1839     }
   1840   }
   1841 
   1842   loadDynamicTable();
   1843 }
   1844 
   1845 template <typename ELFT> void ELFDumper<ELFT>::parseDynamicTable() {
   1846   auto toMappedAddr = [&](uint64_t Tag, uint64_t VAddr) -> const uint8_t * {
   1847     auto MappedAddrOrError = Obj.toMappedAddr(VAddr, [&](const Twine &Msg) {
   1848       this->reportUniqueWarning(Msg);
   1849       return Error::success();
   1850     });
   1851     if (!MappedAddrOrError) {
   1852       this->reportUniqueWarning("unable to parse DT_" +
   1853                                 Obj.getDynamicTagAsString(Tag) + ": " +
   1854                                 llvm::toString(MappedAddrOrError.takeError()));
   1855       return nullptr;
   1856     }
   1857     return MappedAddrOrError.get();
   1858   };
   1859 
   1860   const char *StringTableBegin = nullptr;
   1861   uint64_t StringTableSize = 0;
   1862   Optional<DynRegionInfo> DynSymFromTable;
   1863   for (const Elf_Dyn &Dyn : dynamic_table()) {
   1864     switch (Dyn.d_tag) {
   1865     case ELF::DT_HASH:
   1866       HashTable = reinterpret_cast<const Elf_Hash *>(
   1867           toMappedAddr(Dyn.getTag(), Dyn.getPtr()));
   1868       break;
   1869     case ELF::DT_GNU_HASH:
   1870       GnuHashTable = reinterpret_cast<const Elf_GnuHash *>(
   1871           toMappedAddr(Dyn.getTag(), Dyn.getPtr()));
   1872       break;
   1873     case ELF::DT_STRTAB:
   1874       StringTableBegin = reinterpret_cast<const char *>(
   1875           toMappedAddr(Dyn.getTag(), Dyn.getPtr()));
   1876       break;
   1877     case ELF::DT_STRSZ:
   1878       StringTableSize = Dyn.getVal();
   1879       break;
   1880     case ELF::DT_SYMTAB: {
   1881       // If we can't map the DT_SYMTAB value to an address (e.g. when there are
   1882       // no program headers), we ignore its value.
   1883       if (const uint8_t *VA = toMappedAddr(Dyn.getTag(), Dyn.getPtr())) {
   1884         DynSymFromTable.emplace(ObjF, *this);
   1885         DynSymFromTable->Addr = VA;
   1886         DynSymFromTable->EntSize = sizeof(Elf_Sym);
   1887         DynSymFromTable->EntSizePrintName = "";
   1888       }
   1889       break;
   1890     }
   1891     case ELF::DT_SYMENT: {
   1892       uint64_t Val = Dyn.getVal();
   1893       if (Val != sizeof(Elf_Sym))
   1894         this->reportUniqueWarning("DT_SYMENT value of 0x" +
   1895                                   Twine::utohexstr(Val) +
   1896                                   " is not the size of a symbol (0x" +
   1897                                   Twine::utohexstr(sizeof(Elf_Sym)) + ")");
   1898       break;
   1899     }
   1900     case ELF::DT_RELA:
   1901       DynRelaRegion.Addr = toMappedAddr(Dyn.getTag(), Dyn.getPtr());
   1902       break;
   1903     case ELF::DT_RELASZ:
   1904       DynRelaRegion.Size = Dyn.getVal();
   1905       DynRelaRegion.SizePrintName = "DT_RELASZ value";
   1906       break;
   1907     case ELF::DT_RELAENT:
   1908       DynRelaRegion.EntSize = Dyn.getVal();
   1909       DynRelaRegion.EntSizePrintName = "DT_RELAENT value";
   1910       break;
   1911     case ELF::DT_SONAME:
   1912       SONameOffset = Dyn.getVal();
   1913       break;
   1914     case ELF::DT_REL:
   1915       DynRelRegion.Addr = toMappedAddr(Dyn.getTag(), Dyn.getPtr());
   1916       break;
   1917     case ELF::DT_RELSZ:
   1918       DynRelRegion.Size = Dyn.getVal();
   1919       DynRelRegion.SizePrintName = "DT_RELSZ value";
   1920       break;
   1921     case ELF::DT_RELENT:
   1922       DynRelRegion.EntSize = Dyn.getVal();
   1923       DynRelRegion.EntSizePrintName = "DT_RELENT value";
   1924       break;
   1925     case ELF::DT_RELR:
   1926     case ELF::DT_ANDROID_RELR:
   1927       DynRelrRegion.Addr = toMappedAddr(Dyn.getTag(), Dyn.getPtr());
   1928       break;
   1929     case ELF::DT_RELRSZ:
   1930     case ELF::DT_ANDROID_RELRSZ:
   1931       DynRelrRegion.Size = Dyn.getVal();
   1932       DynRelrRegion.SizePrintName = Dyn.d_tag == ELF::DT_RELRSZ
   1933                                         ? "DT_RELRSZ value"
   1934                                         : "DT_ANDROID_RELRSZ value";
   1935       break;
   1936     case ELF::DT_RELRENT:
   1937     case ELF::DT_ANDROID_RELRENT:
   1938       DynRelrRegion.EntSize = Dyn.getVal();
   1939       DynRelrRegion.EntSizePrintName = Dyn.d_tag == ELF::DT_RELRENT
   1940                                            ? "DT_RELRENT value"
   1941                                            : "DT_ANDROID_RELRENT value";
   1942       break;
   1943     case ELF::DT_PLTREL:
   1944       if (Dyn.getVal() == DT_REL)
   1945         DynPLTRelRegion.EntSize = sizeof(Elf_Rel);
   1946       else if (Dyn.getVal() == DT_RELA)
   1947         DynPLTRelRegion.EntSize = sizeof(Elf_Rela);
   1948       else
   1949         reportUniqueWarning(Twine("unknown DT_PLTREL value of ") +
   1950                             Twine((uint64_t)Dyn.getVal()));
   1951       DynPLTRelRegion.EntSizePrintName = "PLTREL entry size";
   1952       break;
   1953     case ELF::DT_JMPREL:
   1954       DynPLTRelRegion.Addr = toMappedAddr(Dyn.getTag(), Dyn.getPtr());
   1955       break;
   1956     case ELF::DT_PLTRELSZ:
   1957       DynPLTRelRegion.Size = Dyn.getVal();
   1958       DynPLTRelRegion.SizePrintName = "DT_PLTRELSZ value";
   1959       break;
   1960     case ELF::DT_SYMTAB_SHNDX:
   1961       DynSymTabShndxRegion.Addr = toMappedAddr(Dyn.getTag(), Dyn.getPtr());
   1962       DynSymTabShndxRegion.EntSize = sizeof(Elf_Word);
   1963       break;
   1964     }
   1965   }
   1966 
   1967   if (StringTableBegin) {
   1968     const uint64_t FileSize = Obj.getBufSize();
   1969     const uint64_t Offset = (const uint8_t *)StringTableBegin - Obj.base();
   1970     if (StringTableSize > FileSize - Offset)
   1971       reportUniqueWarning(
   1972           "the dynamic string table at 0x" + Twine::utohexstr(Offset) +
   1973           " goes past the end of the file (0x" + Twine::utohexstr(FileSize) +
   1974           ") with DT_STRSZ = 0x" + Twine::utohexstr(StringTableSize));
   1975     else
   1976       DynamicStringTable = StringRef(StringTableBegin, StringTableSize);
   1977   }
   1978 
   1979   const bool IsHashTableSupported = getHashTableEntSize() == 4;
   1980   if (DynSymRegion) {
   1981     // Often we find the information about the dynamic symbol table
   1982     // location in the SHT_DYNSYM section header. However, the value in
   1983     // DT_SYMTAB has priority, because it is used by dynamic loaders to
   1984     // locate .dynsym at runtime. The location we find in the section header
   1985     // and the location we find here should match.
   1986     if (DynSymFromTable && DynSymFromTable->Addr != DynSymRegion->Addr)
   1987       reportUniqueWarning(
   1988           createError("SHT_DYNSYM section header and DT_SYMTAB disagree about "
   1989                       "the location of the dynamic symbol table"));
   1990 
   1991     // According to the ELF gABI: "The number of symbol table entries should
   1992     // equal nchain". Check to see if the DT_HASH hash table nchain value
   1993     // conflicts with the number of symbols in the dynamic symbol table
   1994     // according to the section header.
   1995     if (HashTable && IsHashTableSupported) {
   1996       if (DynSymRegion->EntSize == 0)
   1997         reportUniqueWarning("SHT_DYNSYM section has sh_entsize == 0");
   1998       else if (HashTable->nchain != DynSymRegion->Size / DynSymRegion->EntSize)
   1999         reportUniqueWarning(
   2000             "hash table nchain (" + Twine(HashTable->nchain) +
   2001             ") differs from symbol count derived from SHT_DYNSYM section "
   2002             "header (" +
   2003             Twine(DynSymRegion->Size / DynSymRegion->EntSize) + ")");
   2004     }
   2005   }
   2006 
   2007   // Delay the creation of the actual dynamic symbol table until now, so that
   2008   // checks can always be made against the section header-based properties,
   2009   // without worrying about tag order.
   2010   if (DynSymFromTable) {
   2011     if (!DynSymRegion) {
   2012       DynSymRegion = DynSymFromTable;
   2013     } else {
   2014       DynSymRegion->Addr = DynSymFromTable->Addr;
   2015       DynSymRegion->EntSize = DynSymFromTable->EntSize;
   2016       DynSymRegion->EntSizePrintName = DynSymFromTable->EntSizePrintName;
   2017     }
   2018   }
   2019 
   2020   // Derive the dynamic symbol table size from the DT_HASH hash table, if
   2021   // present.
   2022   if (HashTable && IsHashTableSupported && DynSymRegion) {
   2023     const uint64_t FileSize = Obj.getBufSize();
   2024     const uint64_t DerivedSize =
   2025         (uint64_t)HashTable->nchain * DynSymRegion->EntSize;
   2026     const uint64_t Offset = (const uint8_t *)DynSymRegion->Addr - Obj.base();
   2027     if (DerivedSize > FileSize - Offset)
   2028       reportUniqueWarning(
   2029           "the size (0x" + Twine::utohexstr(DerivedSize) +
   2030           ") of the dynamic symbol table at 0x" + Twine::utohexstr(Offset) +
   2031           ", derived from the hash table, goes past the end of the file (0x" +
   2032           Twine::utohexstr(FileSize) + ") and will be ignored");
   2033     else
   2034       DynSymRegion->Size = HashTable->nchain * DynSymRegion->EntSize;
   2035   }
   2036 }
   2037 
   2038 template <typename ELFT> void ELFDumper<ELFT>::printVersionInfo() {
   2039   // Dump version symbol section.
   2040   printVersionSymbolSection(SymbolVersionSection);
   2041 
   2042   // Dump version definition section.
   2043   printVersionDefinitionSection(SymbolVersionDefSection);
   2044 
   2045   // Dump version dependency section.
   2046   printVersionDependencySection(SymbolVersionNeedSection);
   2047 }
   2048 
   2049 #define LLVM_READOBJ_DT_FLAG_ENT(prefix, enum)                                 \
   2050   { #enum, prefix##_##enum }
   2051 
   2052 static const EnumEntry<unsigned> ElfDynamicDTFlags[] = {
   2053   LLVM_READOBJ_DT_FLAG_ENT(DF, ORIGIN),
   2054   LLVM_READOBJ_DT_FLAG_ENT(DF, SYMBOLIC),
   2055   LLVM_READOBJ_DT_FLAG_ENT(DF, TEXTREL),
   2056   LLVM_READOBJ_DT_FLAG_ENT(DF, BIND_NOW),
   2057   LLVM_READOBJ_DT_FLAG_ENT(DF, STATIC_TLS)
   2058 };
   2059 
   2060 static const EnumEntry<unsigned> ElfDynamicDTFlags1[] = {
   2061   LLVM_READOBJ_DT_FLAG_ENT(DF_1, NOW),
   2062   LLVM_READOBJ_DT_FLAG_ENT(DF_1, GLOBAL),
   2063   LLVM_READOBJ_DT_FLAG_ENT(DF_1, GROUP),
   2064   LLVM_READOBJ_DT_FLAG_ENT(DF_1, NODELETE),
   2065   LLVM_READOBJ_DT_FLAG_ENT(DF_1, LOADFLTR),
   2066   LLVM_READOBJ_DT_FLAG_ENT(DF_1, INITFIRST),
   2067   LLVM_READOBJ_DT_FLAG_ENT(DF_1, NOOPEN),
   2068   LLVM_READOBJ_DT_FLAG_ENT(DF_1, ORIGIN),
   2069   LLVM_READOBJ_DT_FLAG_ENT(DF_1, DIRECT),
   2070   LLVM_READOBJ_DT_FLAG_ENT(DF_1, TRANS),
   2071   LLVM_READOBJ_DT_FLAG_ENT(DF_1, INTERPOSE),
   2072   LLVM_READOBJ_DT_FLAG_ENT(DF_1, NODEFLIB),
   2073   LLVM_READOBJ_DT_FLAG_ENT(DF_1, NODUMP),
   2074   LLVM_READOBJ_DT_FLAG_ENT(DF_1, CONFALT),
   2075   LLVM_READOBJ_DT_FLAG_ENT(DF_1, ENDFILTEE),
   2076   LLVM_READOBJ_DT_FLAG_ENT(DF_1, DISPRELDNE),
   2077   LLVM_READOBJ_DT_FLAG_ENT(DF_1, DISPRELPND),
   2078   LLVM_READOBJ_DT_FLAG_ENT(DF_1, NODIRECT),
   2079   LLVM_READOBJ_DT_FLAG_ENT(DF_1, IGNMULDEF),
   2080   LLVM_READOBJ_DT_FLAG_ENT(DF_1, NOKSYMS),
   2081   LLVM_READOBJ_DT_FLAG_ENT(DF_1, NOHDR),
   2082   LLVM_READOBJ_DT_FLAG_ENT(DF_1, EDITED),
   2083   LLVM_READOBJ_DT_FLAG_ENT(DF_1, NORELOC),
   2084   LLVM_READOBJ_DT_FLAG_ENT(DF_1, SYMINTPOSE),
   2085   LLVM_READOBJ_DT_FLAG_ENT(DF_1, GLOBAUDIT),
   2086   LLVM_READOBJ_DT_FLAG_ENT(DF_1, SINGLETON),
   2087   LLVM_READOBJ_DT_FLAG_ENT(DF_1, PIE),
   2088 };
   2089 
   2090 static const EnumEntry<unsigned> ElfDynamicDTMipsFlags[] = {
   2091   LLVM_READOBJ_DT_FLAG_ENT(RHF, NONE),
   2092   LLVM_READOBJ_DT_FLAG_ENT(RHF, QUICKSTART),
   2093   LLVM_READOBJ_DT_FLAG_ENT(RHF, NOTPOT),
   2094   LLVM_READOBJ_DT_FLAG_ENT(RHS, NO_LIBRARY_REPLACEMENT),
   2095   LLVM_READOBJ_DT_FLAG_ENT(RHF, NO_MOVE),
   2096   LLVM_READOBJ_DT_FLAG_ENT(RHF, SGI_ONLY),
   2097   LLVM_READOBJ_DT_FLAG_ENT(RHF, GUARANTEE_INIT),
   2098   LLVM_READOBJ_DT_FLAG_ENT(RHF, DELTA_C_PLUS_PLUS),
   2099   LLVM_READOBJ_DT_FLAG_ENT(RHF, GUARANTEE_START_INIT),
   2100   LLVM_READOBJ_DT_FLAG_ENT(RHF, PIXIE),
   2101   LLVM_READOBJ_DT_FLAG_ENT(RHF, DEFAULT_DELAY_LOAD),
   2102   LLVM_READOBJ_DT_FLAG_ENT(RHF, REQUICKSTART),
   2103   LLVM_READOBJ_DT_FLAG_ENT(RHF, REQUICKSTARTED),
   2104   LLVM_READOBJ_DT_FLAG_ENT(RHF, CORD),
   2105   LLVM_READOBJ_DT_FLAG_ENT(RHF, NO_UNRES_UNDEF),
   2106   LLVM_READOBJ_DT_FLAG_ENT(RHF, RLD_ORDER_SAFE)
   2107 };
   2108 
   2109 #undef LLVM_READOBJ_DT_FLAG_ENT
   2110 
   2111 template <typename T, typename TFlag>
   2112 void printFlags(T Value, ArrayRef<EnumEntry<TFlag>> Flags, raw_ostream &OS) {
   2113   SmallVector<EnumEntry<TFlag>, 10> SetFlags;
   2114   for (const EnumEntry<TFlag> &Flag : Flags)
   2115     if (Flag.Value != 0 && (Value & Flag.Value) == Flag.Value)
   2116       SetFlags.push_back(Flag);
   2117 
   2118   for (const EnumEntry<TFlag> &Flag : SetFlags)
   2119     OS << Flag.Name << " ";
   2120 }
   2121 
   2122 template <class ELFT>
   2123 const typename ELFT::Shdr *
   2124 ELFDumper<ELFT>::findSectionByName(StringRef Name) const {
   2125   for (const Elf_Shdr &Shdr : cantFail(Obj.sections())) {
   2126     if (Expected<StringRef> NameOrErr = Obj.getSectionName(Shdr)) {
   2127       if (*NameOrErr == Name)
   2128         return &Shdr;
   2129     } else {
   2130       reportUniqueWarning("unable to read the name of " + describe(Shdr) +
   2131                           ": " + toString(NameOrErr.takeError()));
   2132     }
   2133   }
   2134   return nullptr;
   2135 }
   2136 
   2137 template <class ELFT>
   2138 std::string ELFDumper<ELFT>::getDynamicEntry(uint64_t Type,
   2139                                              uint64_t Value) const {
   2140   auto FormatHexValue = [](uint64_t V) {
   2141     std::string Str;
   2142     raw_string_ostream OS(Str);
   2143     const char *ConvChar =
   2144         (opts::Output == opts::GNU) ? "0x%" PRIx64 : "0x%" PRIX64;
   2145     OS << format(ConvChar, V);
   2146     return OS.str();
   2147   };
   2148 
   2149   auto FormatFlags = [](uint64_t V,
   2150                         llvm::ArrayRef<llvm::EnumEntry<unsigned int>> Array) {
   2151     std::string Str;
   2152     raw_string_ostream OS(Str);
   2153     printFlags(V, Array, OS);
   2154     return OS.str();
   2155   };
   2156 
   2157   // Handle custom printing of architecture specific tags
   2158   switch (Obj.getHeader().e_machine) {
   2159   case EM_AARCH64:
   2160     switch (Type) {
   2161     case DT_AARCH64_BTI_PLT:
   2162     case DT_AARCH64_PAC_PLT:
   2163     case DT_AARCH64_VARIANT_PCS:
   2164       return std::to_string(Value);
   2165     default:
   2166       break;
   2167     }
   2168     break;
   2169   case EM_HEXAGON:
   2170     switch (Type) {
   2171     case DT_HEXAGON_VER:
   2172       return std::to_string(Value);
   2173     case DT_HEXAGON_SYMSZ:
   2174     case DT_HEXAGON_PLT:
   2175       return FormatHexValue(Value);
   2176     default:
   2177       break;
   2178     }
   2179     break;
   2180   case EM_MIPS:
   2181     switch (Type) {
   2182     case DT_MIPS_RLD_VERSION:
   2183     case DT_MIPS_LOCAL_GOTNO:
   2184     case DT_MIPS_SYMTABNO:
   2185     case DT_MIPS_UNREFEXTNO:
   2186       return std::to_string(Value);
   2187     case DT_MIPS_TIME_STAMP:
   2188     case DT_MIPS_ICHECKSUM:
   2189     case DT_MIPS_IVERSION:
   2190     case DT_MIPS_BASE_ADDRESS:
   2191     case DT_MIPS_MSYM:
   2192     case DT_MIPS_CONFLICT:
   2193     case DT_MIPS_LIBLIST:
   2194     case DT_MIPS_CONFLICTNO:
   2195     case DT_MIPS_LIBLISTNO:
   2196     case DT_MIPS_GOTSYM:
   2197     case DT_MIPS_HIPAGENO:
   2198     case DT_MIPS_RLD_MAP:
   2199     case DT_MIPS_DELTA_CLASS:
   2200     case DT_MIPS_DELTA_CLASS_NO:
   2201     case DT_MIPS_DELTA_INSTANCE:
   2202     case DT_MIPS_DELTA_RELOC:
   2203     case DT_MIPS_DELTA_RELOC_NO:
   2204     case DT_MIPS_DELTA_SYM:
   2205     case DT_MIPS_DELTA_SYM_NO:
   2206     case DT_MIPS_DELTA_CLASSSYM:
   2207     case DT_MIPS_DELTA_CLASSSYM_NO:
   2208     case DT_MIPS_CXX_FLAGS:
   2209     case DT_MIPS_PIXIE_INIT:
   2210     case DT_MIPS_SYMBOL_LIB:
   2211     case DT_MIPS_LOCALPAGE_GOTIDX:
   2212     case DT_MIPS_LOCAL_GOTIDX:
   2213     case DT_MIPS_HIDDEN_GOTIDX:
   2214     case DT_MIPS_PROTECTED_GOTIDX:
   2215     case DT_MIPS_OPTIONS:
   2216     case DT_MIPS_INTERFACE:
   2217     case DT_MIPS_DYNSTR_ALIGN:
   2218     case DT_MIPS_INTERFACE_SIZE:
   2219     case DT_MIPS_RLD_TEXT_RESOLVE_ADDR:
   2220     case DT_MIPS_PERF_SUFFIX:
   2221     case DT_MIPS_COMPACT_SIZE:
   2222     case DT_MIPS_GP_VALUE:
   2223     case DT_MIPS_AUX_DYNAMIC:
   2224     case DT_MIPS_PLTGOT:
   2225     case DT_MIPS_RWPLT:
   2226     case DT_MIPS_RLD_MAP_REL:
   2227       return FormatHexValue(Value);
   2228     case DT_MIPS_FLAGS:
   2229       return FormatFlags(Value, makeArrayRef(ElfDynamicDTMipsFlags));
   2230     default:
   2231       break;
   2232     }
   2233     break;
   2234   default:
   2235     break;
   2236   }
   2237 
   2238   switch (Type) {
   2239   case DT_PLTREL:
   2240     if (Value == DT_REL)
   2241       return "REL";
   2242     if (Value == DT_RELA)
   2243       return "RELA";
   2244     LLVM_FALLTHROUGH;
   2245   case DT_PLTGOT:
   2246   case DT_HASH:
   2247   case DT_STRTAB:
   2248   case DT_SYMTAB:
   2249   case DT_RELA:
   2250   case DT_INIT:
   2251   case DT_FINI:
   2252   case DT_REL:
   2253   case DT_JMPREL:
   2254   case DT_INIT_ARRAY:
   2255   case DT_FINI_ARRAY:
   2256   case DT_PREINIT_ARRAY:
   2257   case DT_DEBUG:
   2258   case DT_VERDEF:
   2259   case DT_VERNEED:
   2260   case DT_VERSYM:
   2261   case DT_GNU_HASH:
   2262   case DT_NULL:
   2263     return FormatHexValue(Value);
   2264   case DT_RELACOUNT:
   2265   case DT_RELCOUNT:
   2266   case DT_VERDEFNUM:
   2267   case DT_VERNEEDNUM:
   2268     return std::to_string(Value);
   2269   case DT_PLTRELSZ:
   2270   case DT_RELASZ:
   2271   case DT_RELAENT:
   2272   case DT_STRSZ:
   2273   case DT_SYMENT:
   2274   case DT_RELSZ:
   2275   case DT_RELENT:
   2276   case DT_INIT_ARRAYSZ:
   2277   case DT_FINI_ARRAYSZ:
   2278   case DT_PREINIT_ARRAYSZ:
   2279   case DT_ANDROID_RELSZ:
   2280   case DT_ANDROID_RELASZ:
   2281     return std::to_string(Value) + " (bytes)";
   2282   case DT_NEEDED:
   2283   case DT_SONAME:
   2284   case DT_AUXILIARY:
   2285   case DT_USED:
   2286   case DT_FILTER:
   2287   case DT_RPATH:
   2288   case DT_RUNPATH: {
   2289     const std::map<uint64_t, const char *> TagNames = {
   2290         {DT_NEEDED, "Shared library"},       {DT_SONAME, "Library soname"},
   2291         {DT_AUXILIARY, "Auxiliary library"}, {DT_USED, "Not needed object"},
   2292         {DT_FILTER, "Filter library"},       {DT_RPATH, "Library rpath"},
   2293         {DT_RUNPATH, "Library runpath"},
   2294     };
   2295 
   2296     return (Twine(TagNames.at(Type)) + ": [" + getDynamicString(Value) + "]")
   2297         .str();
   2298   }
   2299   case DT_FLAGS:
   2300     return FormatFlags(Value, makeArrayRef(ElfDynamicDTFlags));
   2301   case DT_FLAGS_1:
   2302     return FormatFlags(Value, makeArrayRef(ElfDynamicDTFlags1));
   2303   default:
   2304     return FormatHexValue(Value);
   2305   }
   2306 }
   2307 
   2308 template <class ELFT>
   2309 StringRef ELFDumper<ELFT>::getDynamicString(uint64_t Value) const {
   2310   if (DynamicStringTable.empty() && !DynamicStringTable.data()) {
   2311     reportUniqueWarning("string table was not found");
   2312     return "<?>";
   2313   }
   2314 
   2315   auto WarnAndReturn = [this](const Twine &Msg, uint64_t Offset) {
   2316     reportUniqueWarning("string table at offset 0x" + Twine::utohexstr(Offset) +
   2317                         Msg);
   2318     return "<?>";
   2319   };
   2320 
   2321   const uint64_t FileSize = Obj.getBufSize();
   2322   const uint64_t Offset =
   2323       (const uint8_t *)DynamicStringTable.data() - Obj.base();
   2324   if (DynamicStringTable.size() > FileSize - Offset)
   2325     return WarnAndReturn(" with size 0x" +
   2326                              Twine::utohexstr(DynamicStringTable.size()) +
   2327                              " goes past the end of the file (0x" +
   2328                              Twine::utohexstr(FileSize) + ")",
   2329                          Offset);
   2330 
   2331   if (Value >= DynamicStringTable.size())
   2332     return WarnAndReturn(
   2333         ": unable to read the string at 0x" + Twine::utohexstr(Offset + Value) +
   2334             ": it goes past the end of the table (0x" +
   2335             Twine::utohexstr(Offset + DynamicStringTable.size()) + ")",
   2336         Offset);
   2337 
   2338   if (DynamicStringTable.back() != '\0')
   2339     return WarnAndReturn(": unable to read the string at 0x" +
   2340                              Twine::utohexstr(Offset + Value) +
   2341                              ": the string table is not null-terminated",
   2342                          Offset);
   2343 
   2344   return DynamicStringTable.data() + Value;
   2345 }
   2346 
   2347 template <class ELFT> void ELFDumper<ELFT>::printUnwindInfo() {
   2348   DwarfCFIEH::PrinterContext<ELFT> Ctx(W, ObjF);
   2349   Ctx.printUnwindInformation();
   2350 }
   2351 
   2352 // The namespace is needed to fix the compilation with GCC older than 7.0+.
   2353 namespace {
   2354 template <> void ELFDumper<ELF32LE>::printUnwindInfo() {
   2355   if (Obj.getHeader().e_machine == EM_ARM) {
   2356     ARM::EHABI::PrinterContext<ELF32LE> Ctx(W, Obj, ObjF.getFileName(),
   2357                                             DotSymtabSec);
   2358     Ctx.PrintUnwindInformation();
   2359   }
   2360   DwarfCFIEH::PrinterContext<ELF32LE> Ctx(W, ObjF);
   2361   Ctx.printUnwindInformation();
   2362 }
   2363 } // namespace
   2364 
   2365 template <class ELFT> void ELFDumper<ELFT>::printNeededLibraries() {
   2366   ListScope D(W, "NeededLibraries");
   2367 
   2368   std::vector<StringRef> Libs;
   2369   for (const auto &Entry : dynamic_table())
   2370     if (Entry.d_tag == ELF::DT_NEEDED)
   2371       Libs.push_back(getDynamicString(Entry.d_un.d_val));
   2372 
   2373   llvm::sort(Libs);
   2374 
   2375   for (StringRef L : Libs)
   2376     W.startLine() << L << "\n";
   2377 }
   2378 
   2379 template <class ELFT>
   2380 static Error checkHashTable(const ELFDumper<ELFT> &Dumper,
   2381                             const typename ELFT::Hash *H,
   2382                             bool *IsHeaderValid = nullptr) {
   2383   const ELFFile<ELFT> &Obj = Dumper.getElfObject().getELFFile();
   2384   const uint64_t SecOffset = (const uint8_t *)H - Obj.base();
   2385   if (Dumper.getHashTableEntSize() == 8) {
   2386     auto It = llvm::find_if(ElfMachineType, [&](const EnumEntry<unsigned> &E) {
   2387       return E.Value == Obj.getHeader().e_machine;
   2388     });
   2389     if (IsHeaderValid)
   2390       *IsHeaderValid = false;
   2391     return createError("the hash table at 0x" + Twine::utohexstr(SecOffset) +
   2392                        " is not supported: it contains non-standard 8 "
   2393                        "byte entries on " +
   2394                        It->AltName + " platform");
   2395   }
   2396 
   2397   auto MakeError = [&](const Twine &Msg = "") {
   2398     return createError("the hash table at offset 0x" +
   2399                        Twine::utohexstr(SecOffset) +
   2400                        " goes past the end of the file (0x" +
   2401                        Twine::utohexstr(Obj.getBufSize()) + ")" + Msg);
   2402   };
   2403 
   2404   // Each SHT_HASH section starts from two 32-bit fields: nbucket and nchain.
   2405   const unsigned HeaderSize = 2 * sizeof(typename ELFT::Word);
   2406 
   2407   if (IsHeaderValid)
   2408     *IsHeaderValid = Obj.getBufSize() - SecOffset >= HeaderSize;
   2409 
   2410   if (Obj.getBufSize() - SecOffset < HeaderSize)
   2411     return MakeError();
   2412 
   2413   if (Obj.getBufSize() - SecOffset - HeaderSize <
   2414       ((uint64_t)H->nbucket + H->nchain) * sizeof(typename ELFT::Word))
   2415     return MakeError(", nbucket = " + Twine(H->nbucket) +
   2416                      ", nchain = " + Twine(H->nchain));
   2417   return Error::success();
   2418 }
   2419 
   2420 template <class ELFT>
   2421 static Error checkGNUHashTable(const ELFFile<ELFT> &Obj,
   2422                                const typename ELFT::GnuHash *GnuHashTable,
   2423                                bool *IsHeaderValid = nullptr) {
   2424   const uint8_t *TableData = reinterpret_cast<const uint8_t *>(GnuHashTable);
   2425   assert(TableData >= Obj.base() && TableData < Obj.base() + Obj.getBufSize() &&
   2426          "GnuHashTable must always point to a location inside the file");
   2427 
   2428   uint64_t TableOffset = TableData - Obj.base();
   2429   if (IsHeaderValid)
   2430     *IsHeaderValid = TableOffset + /*Header size:*/ 16 < Obj.getBufSize();
   2431   if (TableOffset + 16 + (uint64_t)GnuHashTable->nbuckets * 4 +
   2432           (uint64_t)GnuHashTable->maskwords * sizeof(typename ELFT::Off) >=
   2433       Obj.getBufSize())
   2434     return createError("unable to dump the SHT_GNU_HASH "
   2435                        "section at 0x" +
   2436                        Twine::utohexstr(TableOffset) +
   2437                        ": it goes past the end of the file");
   2438   return Error::success();
   2439 }
   2440 
   2441 template <typename ELFT> void ELFDumper<ELFT>::printHashTable() {
   2442   DictScope D(W, "HashTable");
   2443   if (!HashTable)
   2444     return;
   2445 
   2446   bool IsHeaderValid;
   2447   Error Err = checkHashTable(*this, HashTable, &IsHeaderValid);
   2448   if (IsHeaderValid) {
   2449     W.printNumber("Num Buckets", HashTable->nbucket);
   2450     W.printNumber("Num Chains", HashTable->nchain);
   2451   }
   2452 
   2453   if (Err) {
   2454     reportUniqueWarning(std::move(Err));
   2455     return;
   2456   }
   2457 
   2458   W.printList("Buckets", HashTable->buckets());
   2459   W.printList("Chains", HashTable->chains());
   2460 }
   2461 
   2462 template <class ELFT>
   2463 static Expected<ArrayRef<typename ELFT::Word>>
   2464 getGnuHashTableChains(Optional<DynRegionInfo> DynSymRegion,
   2465                       const typename ELFT::GnuHash *GnuHashTable) {
   2466   if (!DynSymRegion)
   2467     return createError("no dynamic symbol table found");
   2468 
   2469   ArrayRef<typename ELFT::Sym> DynSymTable =
   2470       DynSymRegion->template getAsArrayRef<typename ELFT::Sym>();
   2471   size_t NumSyms = DynSymTable.size();
   2472   if (!NumSyms)
   2473     return createError("the dynamic symbol table is empty");
   2474 
   2475   if (GnuHashTable->symndx < NumSyms)
   2476     return GnuHashTable->values(NumSyms);
   2477 
   2478   // A normal empty GNU hash table section produced by linker might have
   2479   // symndx set to the number of dynamic symbols + 1 (for the zero symbol)
   2480   // and have dummy null values in the Bloom filter and in the buckets
   2481   // vector (or no values at all). It happens because the value of symndx is not
   2482   // important for dynamic loaders when the GNU hash table is empty. They just
   2483   // skip the whole object during symbol lookup. In such cases, the symndx value
   2484   // is irrelevant and we should not report a warning.
   2485   ArrayRef<typename ELFT::Word> Buckets = GnuHashTable->buckets();
   2486   if (!llvm::all_of(Buckets, [](typename ELFT::Word V) { return V == 0; }))
   2487     return createError(
   2488         "the first hashed symbol index (" + Twine(GnuHashTable->symndx) +
   2489         ") is greater than or equal to the number of dynamic symbols (" +
   2490         Twine(NumSyms) + ")");
   2491   // There is no way to represent an array of (dynamic symbols count - symndx)
   2492   // length.
   2493   return ArrayRef<typename ELFT::Word>();
   2494 }
   2495 
   2496 template <typename ELFT>
   2497 void ELFDumper<ELFT>::printGnuHashTable() {
   2498   DictScope D(W, "GnuHashTable");
   2499   if (!GnuHashTable)
   2500     return;
   2501 
   2502   bool IsHeaderValid;
   2503   Error Err = checkGNUHashTable<ELFT>(Obj, GnuHashTable, &IsHeaderValid);
   2504   if (IsHeaderValid) {
   2505     W.printNumber("Num Buckets", GnuHashTable->nbuckets);
   2506     W.printNumber("First Hashed Symbol Index", GnuHashTable->symndx);
   2507     W.printNumber("Num Mask Words", GnuHashTable->maskwords);
   2508     W.printNumber("Shift Count", GnuHashTable->shift2);
   2509   }
   2510 
   2511   if (Err) {
   2512     reportUniqueWarning(std::move(Err));
   2513     return;
   2514   }
   2515 
   2516   ArrayRef<typename ELFT::Off> BloomFilter = GnuHashTable->filter();
   2517   W.printHexList("Bloom Filter", BloomFilter);
   2518 
   2519   ArrayRef<Elf_Word> Buckets = GnuHashTable->buckets();
   2520   W.printList("Buckets", Buckets);
   2521 
   2522   Expected<ArrayRef<Elf_Word>> Chains =
   2523       getGnuHashTableChains<ELFT>(DynSymRegion, GnuHashTable);
   2524   if (!Chains) {
   2525     reportUniqueWarning("unable to dump 'Values' for the SHT_GNU_HASH "
   2526                         "section: " +
   2527                         toString(Chains.takeError()));
   2528     return;
   2529   }
   2530 
   2531   W.printHexList("Values", *Chains);
   2532 }
   2533 
   2534 template <typename ELFT> void ELFDumper<ELFT>::printLoadName() {
   2535   StringRef SOName = "<Not found>";
   2536   if (SONameOffset)
   2537     SOName = getDynamicString(*SONameOffset);
   2538   W.printString("LoadName", SOName);
   2539 }
   2540 
   2541 template <class ELFT> void ELFDumper<ELFT>::printArchSpecificInfo() {
   2542   switch (Obj.getHeader().e_machine) {
   2543   case EM_ARM:
   2544   case EM_RISCV:
   2545     printAttributes();
   2546     break;
   2547   case EM_MIPS: {
   2548     printMipsABIFlags();
   2549     printMipsOptions();
   2550     printMipsReginfo();
   2551     MipsGOTParser<ELFT> Parser(*this);
   2552     if (Error E = Parser.findGOT(dynamic_table(), dynamic_symbols()))
   2553       reportUniqueWarning(std::move(E));
   2554     else if (!Parser.isGotEmpty())
   2555       printMipsGOT(Parser);
   2556 
   2557     if (Error E = Parser.findPLT(dynamic_table()))
   2558       reportUniqueWarning(std::move(E));
   2559     else if (!Parser.isPltEmpty())
   2560       printMipsPLT(Parser);
   2561     break;
   2562   }
   2563   default:
   2564     break;
   2565   }
   2566 }
   2567 
   2568 template <class ELFT> void ELFDumper<ELFT>::printAttributes() {
   2569   if (!Obj.isLE()) {
   2570     W.startLine() << "Attributes not implemented.\n";
   2571     return;
   2572   }
   2573 
   2574   const unsigned Machine = Obj.getHeader().e_machine;
   2575   assert((Machine == EM_ARM || Machine == EM_RISCV) &&
   2576          "Attributes not implemented.");
   2577 
   2578   DictScope BA(W, "BuildAttributes");
   2579   for (const Elf_Shdr &Sec : cantFail(Obj.sections())) {
   2580     if (Sec.sh_type != ELF::SHT_ARM_ATTRIBUTES &&
   2581         Sec.sh_type != ELF::SHT_RISCV_ATTRIBUTES)
   2582       continue;
   2583 
   2584     ArrayRef<uint8_t> Contents;
   2585     if (Expected<ArrayRef<uint8_t>> ContentOrErr =
   2586             Obj.getSectionContents(Sec)) {
   2587       Contents = *ContentOrErr;
   2588       if (Contents.empty()) {
   2589         reportUniqueWarning("the " + describe(Sec) + " is empty");
   2590         continue;
   2591       }
   2592     } else {
   2593       reportUniqueWarning("unable to read the content of the " + describe(Sec) +
   2594                           ": " + toString(ContentOrErr.takeError()));
   2595       continue;
   2596     }
   2597 
   2598     W.printHex("FormatVersion", Contents[0]);
   2599 
   2600     auto ParseAttrubutes = [&]() {
   2601       if (Machine == EM_ARM)
   2602         return ARMAttributeParser(&W).parse(Contents, support::little);
   2603       return RISCVAttributeParser(&W).parse(Contents, support::little);
   2604     };
   2605 
   2606     if (Error E = ParseAttrubutes())
   2607       reportUniqueWarning("unable to dump attributes from the " +
   2608                           describe(Sec) + ": " + toString(std::move(E)));
   2609   }
   2610 }
   2611 
   2612 namespace {
   2613 
   2614 template <class ELFT> class MipsGOTParser {
   2615 public:
   2616   LLVM_ELF_IMPORT_TYPES_ELFT(ELFT)
   2617   using Entry = typename ELFT::Addr;
   2618   using Entries = ArrayRef<Entry>;
   2619 
   2620   const bool IsStatic;
   2621   const ELFFile<ELFT> &Obj;
   2622   const ELFDumper<ELFT> &Dumper;
   2623 
   2624   MipsGOTParser(const ELFDumper<ELFT> &D);
   2625   Error findGOT(Elf_Dyn_Range DynTable, Elf_Sym_Range DynSyms);
   2626   Error findPLT(Elf_Dyn_Range DynTable);
   2627 
   2628   bool isGotEmpty() const { return GotEntries.empty(); }
   2629   bool isPltEmpty() const { return PltEntries.empty(); }
   2630 
   2631   uint64_t getGp() const;
   2632 
   2633   const Entry *getGotLazyResolver() const;
   2634   const Entry *getGotModulePointer() const;
   2635   const Entry *getPltLazyResolver() const;
   2636   const Entry *getPltModulePointer() const;
   2637 
   2638   Entries getLocalEntries() const;
   2639   Entries getGlobalEntries() const;
   2640   Entries getOtherEntries() const;
   2641   Entries getPltEntries() const;
   2642 
   2643   uint64_t getGotAddress(const Entry * E) const;
   2644   int64_t getGotOffset(const Entry * E) const;
   2645   const Elf_Sym *getGotSym(const Entry *E) const;
   2646 
   2647   uint64_t getPltAddress(const Entry * E) const;
   2648   const Elf_Sym *getPltSym(const Entry *E) const;
   2649 
   2650   StringRef getPltStrTable() const { return PltStrTable; }
   2651   const Elf_Shdr *getPltSymTable() const { return PltSymTable; }
   2652 
   2653 private:
   2654   const Elf_Shdr *GotSec;
   2655   size_t LocalNum;
   2656   size_t GlobalNum;
   2657 
   2658   const Elf_Shdr *PltSec;
   2659   const Elf_Shdr *PltRelSec;
   2660   const Elf_Shdr *PltSymTable;
   2661   StringRef FileName;
   2662 
   2663   Elf_Sym_Range GotDynSyms;
   2664   StringRef PltStrTable;
   2665 
   2666   Entries GotEntries;
   2667   Entries PltEntries;
   2668 };
   2669 
   2670 } // end anonymous namespace
   2671 
   2672 template <class ELFT>
   2673 MipsGOTParser<ELFT>::MipsGOTParser(const ELFDumper<ELFT> &D)
   2674     : IsStatic(D.dynamic_table().empty()), Obj(D.getElfObject().getELFFile()),
   2675       Dumper(D), GotSec(nullptr), LocalNum(0), GlobalNum(0), PltSec(nullptr),
   2676       PltRelSec(nullptr), PltSymTable(nullptr),
   2677       FileName(D.getElfObject().getFileName()) {}
   2678 
   2679 template <class ELFT>
   2680 Error MipsGOTParser<ELFT>::findGOT(Elf_Dyn_Range DynTable,
   2681                                    Elf_Sym_Range DynSyms) {
   2682   // See "Global Offset Table" in Chapter 5 in the following document
   2683   // for detailed GOT description.
   2684   // ftp://www.linux-mips.org/pub/linux/mips/doc/ABI/mipsabi.pdf
   2685 
   2686   // Find static GOT secton.
   2687   if (IsStatic) {
   2688     GotSec = Dumper.findSectionByName(".got");
   2689     if (!GotSec)
   2690       return Error::success();
   2691 
   2692     ArrayRef<uint8_t> Content =
   2693         unwrapOrError(FileName, Obj.getSectionContents(*GotSec));
   2694     GotEntries = Entries(reinterpret_cast<const Entry *>(Content.data()),
   2695                          Content.size() / sizeof(Entry));
   2696     LocalNum = GotEntries.size();
   2697     return Error::success();
   2698   }
   2699 
   2700   // Lookup dynamic table tags which define the GOT layout.
   2701   Optional<uint64_t> DtPltGot;
   2702   Optional<uint64_t> DtLocalGotNum;
   2703   Optional<uint64_t> DtGotSym;
   2704   for (const auto &Entry : DynTable) {
   2705     switch (Entry.getTag()) {
   2706     case ELF::DT_PLTGOT:
   2707       DtPltGot = Entry.getVal();
   2708       break;
   2709     case ELF::DT_MIPS_LOCAL_GOTNO:
   2710       DtLocalGotNum = Entry.getVal();
   2711       break;
   2712     case ELF::DT_MIPS_GOTSYM:
   2713       DtGotSym = Entry.getVal();
   2714       break;
   2715     }
   2716   }
   2717 
   2718   if (!DtPltGot && !DtLocalGotNum && !DtGotSym)
   2719     return Error::success();
   2720 
   2721   if (!DtPltGot)
   2722     return createError("cannot find PLTGOT dynamic tag");
   2723   if (!DtLocalGotNum)
   2724     return createError("cannot find MIPS_LOCAL_GOTNO dynamic tag");
   2725   if (!DtGotSym)
   2726     return createError("cannot find MIPS_GOTSYM dynamic tag");
   2727 
   2728   size_t DynSymTotal = DynSyms.size();
   2729   if (*DtGotSym > DynSymTotal)
   2730     return createError("DT_MIPS_GOTSYM value (" + Twine(*DtGotSym) +
   2731                        ") exceeds the number of dynamic symbols (" +
   2732                        Twine(DynSymTotal) + ")");
   2733 
   2734   GotSec = findNotEmptySectionByAddress(Obj, FileName, *DtPltGot);
   2735   if (!GotSec)
   2736     return createError("there is no non-empty GOT section at 0x" +
   2737                        Twine::utohexstr(*DtPltGot));
   2738 
   2739   LocalNum = *DtLocalGotNum;
   2740   GlobalNum = DynSymTotal - *DtGotSym;
   2741 
   2742   ArrayRef<uint8_t> Content =
   2743       unwrapOrError(FileName, Obj.getSectionContents(*GotSec));
   2744   GotEntries = Entries(reinterpret_cast<const Entry *>(Content.data()),
   2745                        Content.size() / sizeof(Entry));
   2746   GotDynSyms = DynSyms.drop_front(*DtGotSym);
   2747 
   2748   return Error::success();
   2749 }
   2750 
   2751 template <class ELFT>
   2752 Error MipsGOTParser<ELFT>::findPLT(Elf_Dyn_Range DynTable) {
   2753   // Lookup dynamic table tags which define the PLT layout.
   2754   Optional<uint64_t> DtMipsPltGot;
   2755   Optional<uint64_t> DtJmpRel;
   2756   for (const auto &Entry : DynTable) {
   2757     switch (Entry.getTag()) {
   2758     case ELF::DT_MIPS_PLTGOT:
   2759       DtMipsPltGot = Entry.getVal();
   2760       break;
   2761     case ELF::DT_JMPREL:
   2762       DtJmpRel = Entry.getVal();
   2763       break;
   2764     }
   2765   }
   2766 
   2767   if (!DtMipsPltGot && !DtJmpRel)
   2768     return Error::success();
   2769 
   2770   // Find PLT section.
   2771   if (!DtMipsPltGot)
   2772     return createError("cannot find MIPS_PLTGOT dynamic tag");
   2773   if (!DtJmpRel)
   2774     return createError("cannot find JMPREL dynamic tag");
   2775 
   2776   PltSec = findNotEmptySectionByAddress(Obj, FileName, *DtMipsPltGot);
   2777   if (!PltSec)
   2778     return createError("there is no non-empty PLTGOT section at 0x" +
   2779                        Twine::utohexstr(*DtMipsPltGot));
   2780 
   2781   PltRelSec = findNotEmptySectionByAddress(Obj, FileName, *DtJmpRel);
   2782   if (!PltRelSec)
   2783     return createError("there is no non-empty RELPLT section at 0x" +
   2784                        Twine::utohexstr(*DtJmpRel));
   2785 
   2786   if (Expected<ArrayRef<uint8_t>> PltContentOrErr =
   2787           Obj.getSectionContents(*PltSec))
   2788     PltEntries =
   2789         Entries(reinterpret_cast<const Entry *>(PltContentOrErr->data()),
   2790                 PltContentOrErr->size() / sizeof(Entry));
   2791   else
   2792     return createError("unable to read PLTGOT section content: " +
   2793                        toString(PltContentOrErr.takeError()));
   2794 
   2795   if (Expected<const Elf_Shdr *> PltSymTableOrErr =
   2796           Obj.getSection(PltRelSec->sh_link))
   2797     PltSymTable = *PltSymTableOrErr;
   2798   else
   2799     return createError("unable to get a symbol table linked to the " +
   2800                        describe(Obj, *PltRelSec) + ": " +
   2801                        toString(PltSymTableOrErr.takeError()));
   2802 
   2803   if (Expected<StringRef> StrTabOrErr =
   2804           Obj.getStringTableForSymtab(*PltSymTable))
   2805     PltStrTable = *StrTabOrErr;
   2806   else
   2807     return createError("unable to get a string table for the " +
   2808                        describe(Obj, *PltSymTable) + ": " +
   2809                        toString(StrTabOrErr.takeError()));
   2810 
   2811   return Error::success();
   2812 }
   2813 
   2814 template <class ELFT> uint64_t MipsGOTParser<ELFT>::getGp() const {
   2815   return GotSec->sh_addr + 0x7ff0;
   2816 }
   2817 
   2818 template <class ELFT>
   2819 const typename MipsGOTParser<ELFT>::Entry *
   2820 MipsGOTParser<ELFT>::getGotLazyResolver() const {
   2821   return LocalNum > 0 ? &GotEntries[0] : nullptr;
   2822 }
   2823 
   2824 template <class ELFT>
   2825 const typename MipsGOTParser<ELFT>::Entry *
   2826 MipsGOTParser<ELFT>::getGotModulePointer() const {
   2827   if (LocalNum < 2)
   2828     return nullptr;
   2829   const Entry &E = GotEntries[1];
   2830   if ((E >> (sizeof(Entry) * 8 - 1)) == 0)
   2831     return nullptr;
   2832   return &E;
   2833 }
   2834 
   2835 template <class ELFT>
   2836 typename MipsGOTParser<ELFT>::Entries
   2837 MipsGOTParser<ELFT>::getLocalEntries() const {
   2838   size_t Skip = getGotModulePointer() ? 2 : 1;
   2839   if (LocalNum - Skip <= 0)
   2840     return Entries();
   2841   return GotEntries.slice(Skip, LocalNum - Skip);
   2842 }
   2843 
   2844 template <class ELFT>
   2845 typename MipsGOTParser<ELFT>::Entries
   2846 MipsGOTParser<ELFT>::getGlobalEntries() const {
   2847   if (GlobalNum == 0)
   2848     return Entries();
   2849   return GotEntries.slice(LocalNum, GlobalNum);
   2850 }
   2851 
   2852 template <class ELFT>
   2853 typename MipsGOTParser<ELFT>::Entries
   2854 MipsGOTParser<ELFT>::getOtherEntries() const {
   2855   size_t OtherNum = GotEntries.size() - LocalNum - GlobalNum;
   2856   if (OtherNum == 0)
   2857     return Entries();
   2858   return GotEntries.slice(LocalNum + GlobalNum, OtherNum);
   2859 }
   2860 
   2861 template <class ELFT>
   2862 uint64_t MipsGOTParser<ELFT>::getGotAddress(const Entry *E) const {
   2863   int64_t Offset = std::distance(GotEntries.data(), E) * sizeof(Entry);
   2864   return GotSec->sh_addr + Offset;
   2865 }
   2866 
   2867 template <class ELFT>
   2868 int64_t MipsGOTParser<ELFT>::getGotOffset(const Entry *E) const {
   2869   int64_t Offset = std::distance(GotEntries.data(), E) * sizeof(Entry);
   2870   return Offset - 0x7ff0;
   2871 }
   2872 
   2873 template <class ELFT>
   2874 const typename MipsGOTParser<ELFT>::Elf_Sym *
   2875 MipsGOTParser<ELFT>::getGotSym(const Entry *E) const {
   2876   int64_t Offset = std::distance(GotEntries.data(), E);
   2877   return &GotDynSyms[Offset - LocalNum];
   2878 }
   2879 
   2880 template <class ELFT>
   2881 const typename MipsGOTParser<ELFT>::Entry *
   2882 MipsGOTParser<ELFT>::getPltLazyResolver() const {
   2883   return PltEntries.empty() ? nullptr : &PltEntries[0];
   2884 }
   2885 
   2886 template <class ELFT>
   2887 const typename MipsGOTParser<ELFT>::Entry *
   2888 MipsGOTParser<ELFT>::getPltModulePointer() const {
   2889   return PltEntries.size() < 2 ? nullptr : &PltEntries[1];
   2890 }
   2891 
   2892 template <class ELFT>
   2893 typename MipsGOTParser<ELFT>::Entries
   2894 MipsGOTParser<ELFT>::getPltEntries() const {
   2895   if (PltEntries.size() <= 2)
   2896     return Entries();
   2897   return PltEntries.slice(2, PltEntries.size() - 2);
   2898 }
   2899 
   2900 template <class ELFT>
   2901 uint64_t MipsGOTParser<ELFT>::getPltAddress(const Entry *E) const {
   2902   int64_t Offset = std::distance(PltEntries.data(), E) * sizeof(Entry);
   2903   return PltSec->sh_addr + Offset;
   2904 }
   2905 
   2906 template <class ELFT>
   2907 const typename MipsGOTParser<ELFT>::Elf_Sym *
   2908 MipsGOTParser<ELFT>::getPltSym(const Entry *E) const {
   2909   int64_t Offset = std::distance(getPltEntries().data(), E);
   2910   if (PltRelSec->sh_type == ELF::SHT_REL) {
   2911     Elf_Rel_Range Rels = unwrapOrError(FileName, Obj.rels(*PltRelSec));
   2912     return unwrapOrError(FileName,
   2913                          Obj.getRelocationSymbol(Rels[Offset], PltSymTable));
   2914   } else {
   2915     Elf_Rela_Range Rels = unwrapOrError(FileName, Obj.relas(*PltRelSec));
   2916     return unwrapOrError(FileName,
   2917                          Obj.getRelocationSymbol(Rels[Offset], PltSymTable));
   2918   }
   2919 }
   2920 
   2921 static const EnumEntry<unsigned> ElfMipsISAExtType[] = {
   2922   {"None",                    Mips::AFL_EXT_NONE},
   2923   {"Broadcom SB-1",           Mips::AFL_EXT_SB1},
   2924   {"Cavium Networks Octeon",  Mips::AFL_EXT_OCTEON},
   2925   {"Cavium Networks Octeon2", Mips::AFL_EXT_OCTEON2},
   2926   {"Cavium Networks OcteonP", Mips::AFL_EXT_OCTEONP},
   2927   {"Cavium Networks Octeon3", Mips::AFL_EXT_OCTEON3},
   2928   {"LSI R4010",               Mips::AFL_EXT_4010},
   2929   {"Loongson 2E",             Mips::AFL_EXT_LOONGSON_2E},
   2930   {"Loongson 2F",             Mips::AFL_EXT_LOONGSON_2F},
   2931   {"Loongson 3A",             Mips::AFL_EXT_LOONGSON_3A},
   2932   {"MIPS R4650",              Mips::AFL_EXT_4650},
   2933   {"MIPS R5900",              Mips::AFL_EXT_5900},
   2934   {"MIPS R10000",             Mips::AFL_EXT_10000},
   2935   {"NEC VR4100",              Mips::AFL_EXT_4100},
   2936   {"NEC VR4111/VR4181",       Mips::AFL_EXT_4111},
   2937   {"NEC VR4120",              Mips::AFL_EXT_4120},
   2938   {"NEC VR5400",              Mips::AFL_EXT_5400},
   2939   {"NEC VR5500",              Mips::AFL_EXT_5500},
   2940   {"RMI Xlr",                 Mips::AFL_EXT_XLR},
   2941   {"Toshiba R3900",           Mips::AFL_EXT_3900}
   2942 };
   2943 
   2944 static const EnumEntry<unsigned> ElfMipsASEFlags[] = {
   2945   {"DSP",                Mips::AFL_ASE_DSP},
   2946   {"DSPR2",              Mips::AFL_ASE_DSPR2},
   2947   {"Enhanced VA Scheme", Mips::AFL_ASE_EVA},
   2948   {"MCU",                Mips::AFL_ASE_MCU},
   2949   {"MDMX",               Mips::AFL_ASE_MDMX},
   2950   {"MIPS-3D",            Mips::AFL_ASE_MIPS3D},
   2951   {"MT",                 Mips::AFL_ASE_MT},
   2952   {"SmartMIPS",          Mips::AFL_ASE_SMARTMIPS},
   2953   {"VZ",                 Mips::AFL_ASE_VIRT},
   2954   {"MSA",                Mips::AFL_ASE_MSA},
   2955   {"MIPS16",             Mips::AFL_ASE_MIPS16},
   2956   {"microMIPS",          Mips::AFL_ASE_MICROMIPS},
   2957   {"XPA",                Mips::AFL_ASE_XPA},
   2958   {"CRC",                Mips::AFL_ASE_CRC},
   2959   {"GINV",               Mips::AFL_ASE_GINV},
   2960 };
   2961 
   2962 static const EnumEntry<unsigned> ElfMipsFpABIType[] = {
   2963   {"Hard or soft float",                  Mips::Val_GNU_MIPS_ABI_FP_ANY},
   2964   {"Hard float (double precision)",       Mips::Val_GNU_MIPS_ABI_FP_DOUBLE},
   2965   {"Hard float (single precision)",       Mips::Val_GNU_MIPS_ABI_FP_SINGLE},
   2966   {"Soft float",                          Mips::Val_GNU_MIPS_ABI_FP_SOFT},
   2967   {"Hard float (MIPS32r2 64-bit FPU 12 callee-saved)",
   2968    Mips::Val_GNU_MIPS_ABI_FP_OLD_64},
   2969   {"Hard float (32-bit CPU, Any FPU)",    Mips::Val_GNU_MIPS_ABI_FP_XX},
   2970   {"Hard float (32-bit CPU, 64-bit FPU)", Mips::Val_GNU_MIPS_ABI_FP_64},
   2971   {"Hard float compat (32-bit CPU, 64-bit FPU)",
   2972    Mips::Val_GNU_MIPS_ABI_FP_64A}
   2973 };
   2974 
   2975 static const EnumEntry<unsigned> ElfMipsFlags1[] {
   2976   {"ODDSPREG", Mips::AFL_FLAGS1_ODDSPREG},
   2977 };
   2978 
   2979 static int getMipsRegisterSize(uint8_t Flag) {
   2980   switch (Flag) {
   2981   case Mips::AFL_REG_NONE:
   2982     return 0;
   2983   case Mips::AFL_REG_32:
   2984     return 32;
   2985   case Mips::AFL_REG_64:
   2986     return 64;
   2987   case Mips::AFL_REG_128:
   2988     return 128;
   2989   default:
   2990     return -1;
   2991   }
   2992 }
   2993 
   2994 template <class ELFT>
   2995 static void printMipsReginfoData(ScopedPrinter &W,
   2996                                  const Elf_Mips_RegInfo<ELFT> &Reginfo) {
   2997   W.printHex("GP", Reginfo.ri_gp_value);
   2998   W.printHex("General Mask", Reginfo.ri_gprmask);
   2999   W.printHex("Co-Proc Mask0", Reginfo.ri_cprmask[0]);
   3000   W.printHex("Co-Proc Mask1", Reginfo.ri_cprmask[1]);
   3001   W.printHex("Co-Proc Mask2", Reginfo.ri_cprmask[2]);
   3002   W.printHex("Co-Proc Mask3", Reginfo.ri_cprmask[3]);
   3003 }
   3004 
   3005 template <class ELFT> void ELFDumper<ELFT>::printMipsReginfo() {
   3006   const Elf_Shdr *RegInfoSec = findSectionByName(".reginfo");
   3007   if (!RegInfoSec) {
   3008     W.startLine() << "There is no .reginfo section in the file.\n";
   3009     return;
   3010   }
   3011 
   3012   Expected<ArrayRef<uint8_t>> ContentsOrErr =
   3013       Obj.getSectionContents(*RegInfoSec);
   3014   if (!ContentsOrErr) {
   3015     this->reportUniqueWarning(
   3016         "unable to read the content of the .reginfo section (" +
   3017         describe(*RegInfoSec) + "): " + toString(ContentsOrErr.takeError()));
   3018     return;
   3019   }
   3020 
   3021   if (ContentsOrErr->size() < sizeof(Elf_Mips_RegInfo<ELFT>)) {
   3022     this->reportUniqueWarning("the .reginfo section has an invalid size (0x" +
   3023                               Twine::utohexstr(ContentsOrErr->size()) + ")");
   3024     return;
   3025   }
   3026 
   3027   DictScope GS(W, "MIPS RegInfo");
   3028   printMipsReginfoData(W, *reinterpret_cast<const Elf_Mips_RegInfo<ELFT> *>(
   3029                               ContentsOrErr->data()));
   3030 }
   3031 
   3032 template <class ELFT>
   3033 static Expected<const Elf_Mips_Options<ELFT> *>
   3034 readMipsOptions(const uint8_t *SecBegin, ArrayRef<uint8_t> &SecData,
   3035                 bool &IsSupported) {
   3036   if (SecData.size() < sizeof(Elf_Mips_Options<ELFT>))
   3037     return createError("the .MIPS.options section has an invalid size (0x" +
   3038                        Twine::utohexstr(SecData.size()) + ")");
   3039 
   3040   const Elf_Mips_Options<ELFT> *O =
   3041       reinterpret_cast<const Elf_Mips_Options<ELFT> *>(SecData.data());
   3042   const uint8_t Size = O->size;
   3043   if (Size > SecData.size()) {
   3044     const uint64_t Offset = SecData.data() - SecBegin;
   3045     const uint64_t SecSize = Offset + SecData.size();
   3046     return createError("a descriptor of size 0x" + Twine::utohexstr(Size) +
   3047                        " at offset 0x" + Twine::utohexstr(Offset) +
   3048                        " goes past the end of the .MIPS.options "
   3049                        "section of size 0x" +
   3050                        Twine::utohexstr(SecSize));
   3051   }
   3052 
   3053   IsSupported = O->kind == ODK_REGINFO;
   3054   const size_t ExpectedSize =
   3055       sizeof(Elf_Mips_Options<ELFT>) + sizeof(Elf_Mips_RegInfo<ELFT>);
   3056 
   3057   if (IsSupported)
   3058     if (Size < ExpectedSize)
   3059       return createError(
   3060           "a .MIPS.options entry of kind " +
   3061           Twine(getElfMipsOptionsOdkType(O->kind)) +
   3062           " has an invalid size (0x" + Twine::utohexstr(Size) +
   3063           "), the expected size is 0x" + Twine::utohexstr(ExpectedSize));
   3064 
   3065   SecData = SecData.drop_front(Size);
   3066   return O;
   3067 }
   3068 
   3069 template <class ELFT> void ELFDumper<ELFT>::printMipsOptions() {
   3070   const Elf_Shdr *MipsOpts = findSectionByName(".MIPS.options");
   3071   if (!MipsOpts) {
   3072     W.startLine() << "There is no .MIPS.options section in the file.\n";
   3073     return;
   3074   }
   3075 
   3076   DictScope GS(W, "MIPS Options");
   3077 
   3078   ArrayRef<uint8_t> Data =
   3079       unwrapOrError(ObjF.getFileName(), Obj.getSectionContents(*MipsOpts));
   3080   const uint8_t *const SecBegin = Data.begin();
   3081   while (!Data.empty()) {
   3082     bool IsSupported;
   3083     Expected<const Elf_Mips_Options<ELFT> *> OptsOrErr =
   3084         readMipsOptions<ELFT>(SecBegin, Data, IsSupported);
   3085     if (!OptsOrErr) {
   3086       reportUniqueWarning(OptsOrErr.takeError());
   3087       break;
   3088     }
   3089 
   3090     unsigned Kind = (*OptsOrErr)->kind;
   3091     const char *Type = getElfMipsOptionsOdkType(Kind);
   3092     if (!IsSupported) {
   3093       W.startLine() << "Unsupported MIPS options tag: " << Type << " (" << Kind
   3094                     << ")\n";
   3095       continue;
   3096     }
   3097 
   3098     DictScope GS(W, Type);
   3099     if (Kind == ODK_REGINFO)
   3100       printMipsReginfoData(W, (*OptsOrErr)->getRegInfo());
   3101     else
   3102       llvm_unreachable("unexpected .MIPS.options section descriptor kind");
   3103   }
   3104 }
   3105 
   3106 template <class ELFT> void ELFDumper<ELFT>::printStackMap() const {
   3107   const Elf_Shdr *StackMapSection = findSectionByName(".llvm_stackmaps");
   3108   if (!StackMapSection)
   3109     return;
   3110 
   3111   auto Warn = [&](Error &&E) {
   3112     this->reportUniqueWarning("unable to read the stack map from " +
   3113                               describe(*StackMapSection) + ": " +
   3114                               toString(std::move(E)));
   3115   };
   3116 
   3117   Expected<ArrayRef<uint8_t>> ContentOrErr =
   3118       Obj.getSectionContents(*StackMapSection);
   3119   if (!ContentOrErr) {
   3120     Warn(ContentOrErr.takeError());
   3121     return;
   3122   }
   3123 
   3124   if (Error E = StackMapParser<ELFT::TargetEndianness>::validateHeader(
   3125           *ContentOrErr)) {
   3126     Warn(std::move(E));
   3127     return;
   3128   }
   3129 
   3130   prettyPrintStackMap(W, StackMapParser<ELFT::TargetEndianness>(*ContentOrErr));
   3131 }
   3132 
   3133 template <class ELFT>
   3134 void ELFDumper<ELFT>::printReloc(const Relocation<ELFT> &R, unsigned RelIndex,
   3135                                  const Elf_Shdr &Sec, const Elf_Shdr *SymTab) {
   3136   Expected<RelSymbol<ELFT>> Target = getRelocationTarget(R, SymTab);
   3137   if (!Target)
   3138     reportUniqueWarning("unable to print relocation " + Twine(RelIndex) +
   3139                         " in " + describe(Sec) + ": " +
   3140                         toString(Target.takeError()));
   3141   else
   3142     printRelRelaReloc(R, *Target);
   3143 }
   3144 
   3145 static inline void printFields(formatted_raw_ostream &OS, StringRef Str1,
   3146                                StringRef Str2) {
   3147   OS.PadToColumn(2u);
   3148   OS << Str1;
   3149   OS.PadToColumn(37u);
   3150   OS << Str2 << "\n";
   3151   OS.flush();
   3152 }
   3153 
   3154 template <class ELFT>
   3155 static std::string getSectionHeadersNumString(const ELFFile<ELFT> &Obj,
   3156                                               StringRef FileName) {
   3157   const typename ELFT::Ehdr &ElfHeader = Obj.getHeader();
   3158   if (ElfHeader.e_shnum != 0)
   3159     return to_string(ElfHeader.e_shnum);
   3160 
   3161   Expected<ArrayRef<typename ELFT::Shdr>> ArrOrErr = Obj.sections();
   3162   if (!ArrOrErr) {
   3163     // In this case we can ignore an error, because we have already reported a
   3164     // warning about the broken section header table earlier.
   3165     consumeError(ArrOrErr.takeError());
   3166     return "<?>";
   3167   }
   3168 
   3169   if (ArrOrErr->empty())
   3170     return "0";
   3171   return "0 (" + to_string((*ArrOrErr)[0].sh_size) + ")";
   3172 }
   3173 
   3174 template <class ELFT>
   3175 static std::string getSectionHeaderTableIndexString(const ELFFile<ELFT> &Obj,
   3176                                                     StringRef FileName) {
   3177   const typename ELFT::Ehdr &ElfHeader = Obj.getHeader();
   3178   if (ElfHeader.e_shstrndx != SHN_XINDEX)
   3179     return to_string(ElfHeader.e_shstrndx);
   3180 
   3181   Expected<ArrayRef<typename ELFT::Shdr>> ArrOrErr = Obj.sections();
   3182   if (!ArrOrErr) {
   3183     // In this case we can ignore an error, because we have already reported a
   3184     // warning about the broken section header table earlier.
   3185     consumeError(ArrOrErr.takeError());
   3186     return "<?>";
   3187   }
   3188 
   3189   if (ArrOrErr->empty())
   3190     return "65535 (corrupt: out of range)";
   3191   return to_string(ElfHeader.e_shstrndx) + " (" +
   3192          to_string((*ArrOrErr)[0].sh_link) + ")";
   3193 }
   3194 
   3195 static const EnumEntry<unsigned> *getObjectFileEnumEntry(unsigned Type) {
   3196   auto It = llvm::find_if(ElfObjectFileType, [&](const EnumEntry<unsigned> &E) {
   3197     return E.Value == Type;
   3198   });
   3199   if (It != makeArrayRef(ElfObjectFileType).end())
   3200     return It;
   3201   return nullptr;
   3202 }
   3203 
   3204 template <class ELFT> void GNUELFDumper<ELFT>::printFileHeaders() {
   3205   const Elf_Ehdr &e = this->Obj.getHeader();
   3206   OS << "ELF Header:\n";
   3207   OS << "  Magic:  ";
   3208   std::string Str;
   3209   for (int i = 0; i < ELF::EI_NIDENT; i++)
   3210     OS << format(" %02x", static_cast<int>(e.e_ident[i]));
   3211   OS << "\n";
   3212   Str = printEnum(e.e_ident[ELF::EI_CLASS], makeArrayRef(ElfClass));
   3213   printFields(OS, "Class:", Str);
   3214   Str = printEnum(e.e_ident[ELF::EI_DATA], makeArrayRef(ElfDataEncoding));
   3215   printFields(OS, "Data:", Str);
   3216   OS.PadToColumn(2u);
   3217   OS << "Version:";
   3218   OS.PadToColumn(37u);
   3219   OS << to_hexString(e.e_ident[ELF::EI_VERSION]);
   3220   if (e.e_version == ELF::EV_CURRENT)
   3221     OS << " (current)";
   3222   OS << "\n";
   3223   Str = printEnum(e.e_ident[ELF::EI_OSABI], makeArrayRef(ElfOSABI));
   3224   printFields(OS, "OS/ABI:", Str);
   3225   printFields(OS,
   3226               "ABI Version:", std::to_string(e.e_ident[ELF::EI_ABIVERSION]));
   3227 
   3228   if (const EnumEntry<unsigned> *E = getObjectFileEnumEntry(e.e_type)) {
   3229     Str = E->AltName.str();
   3230   } else {
   3231     if (e.e_type >= ET_LOPROC)
   3232       Str = "Processor Specific: (" + to_hexString(e.e_type, false) + ")";
   3233     else if (e.e_type >= ET_LOOS)
   3234       Str = "OS Specific: (" + to_hexString(e.e_type, false) + ")";
   3235     else
   3236       Str = "<unknown>: " + to_hexString(e.e_type, false);
   3237   }
   3238   printFields(OS, "Type:", Str);
   3239 
   3240   Str = printEnum(e.e_machine, makeArrayRef(ElfMachineType));
   3241   printFields(OS, "Machine:", Str);
   3242   Str = "0x" + to_hexString(e.e_version);
   3243   printFields(OS, "Version:", Str);
   3244   Str = "0x" + to_hexString(e.e_entry);
   3245   printFields(OS, "Entry point address:", Str);
   3246   Str = to_string(e.e_phoff) + " (bytes into file)";
   3247   printFields(OS, "Start of program headers:", Str);
   3248   Str = to_string(e.e_shoff) + " (bytes into file)";
   3249   printFields(OS, "Start of section headers:", Str);
   3250   std::string ElfFlags;
   3251   if (e.e_machine == EM_MIPS)
   3252     ElfFlags =
   3253         printFlags(e.e_flags, makeArrayRef(ElfHeaderMipsFlags),
   3254                    unsigned(ELF::EF_MIPS_ARCH), unsigned(ELF::EF_MIPS_ABI),
   3255                    unsigned(ELF::EF_MIPS_MACH));
   3256   else if (e.e_machine == EM_RISCV)
   3257     ElfFlags = printFlags(e.e_flags, makeArrayRef(ElfHeaderRISCVFlags));
   3258   else if (e.e_machine == EM_AVR)
   3259     ElfFlags = printFlags(e.e_flags, makeArrayRef(ElfHeaderAVRFlags),
   3260                           unsigned(ELF::EF_AVR_ARCH_MASK));
   3261   Str = "0x" + to_hexString(e.e_flags);
   3262   if (!ElfFlags.empty())
   3263     Str = Str + ", " + ElfFlags;
   3264   printFields(OS, "Flags:", Str);
   3265   Str = to_string(e.e_ehsize) + " (bytes)";
   3266   printFields(OS, "Size of this header:", Str);
   3267   Str = to_string(e.e_phentsize) + " (bytes)";
   3268   printFields(OS, "Size of program headers:", Str);
   3269   Str = to_string(e.e_phnum);
   3270   printFields(OS, "Number of program headers:", Str);
   3271   Str = to_string(e.e_shentsize) + " (bytes)";
   3272   printFields(OS, "Size of section headers:", Str);
   3273   Str = getSectionHeadersNumString(this->Obj, this->FileName);
   3274   printFields(OS, "Number of section headers:", Str);
   3275   Str = getSectionHeaderTableIndexString(this->Obj, this->FileName);
   3276   printFields(OS, "Section header string table index:", Str);
   3277 }
   3278 
   3279 template <class ELFT> std::vector<GroupSection> ELFDumper<ELFT>::getGroups() {
   3280   auto GetSignature = [&](const Elf_Sym &Sym, unsigned SymNdx,
   3281                           const Elf_Shdr &Symtab) -> StringRef {
   3282     Expected<StringRef> StrTableOrErr = Obj.getStringTableForSymtab(Symtab);
   3283     if (!StrTableOrErr) {
   3284       reportUniqueWarning("unable to get the string table for " +
   3285                           describe(Symtab) + ": " +
   3286                           toString(StrTableOrErr.takeError()));
   3287       return "<?>";
   3288     }
   3289 
   3290     StringRef Strings = *StrTableOrErr;
   3291     if (Sym.st_name >= Strings.size()) {
   3292       reportUniqueWarning("unable to get the name of the symbol with index " +
   3293                           Twine(SymNdx) + ": st_name (0x" +
   3294                           Twine::utohexstr(Sym.st_name) +
   3295                           ") is past the end of the string table of size 0x" +
   3296                           Twine::utohexstr(Strings.size()));
   3297       return "<?>";
   3298     }
   3299 
   3300     return StrTableOrErr->data() + Sym.st_name;
   3301   };
   3302 
   3303   std::vector<GroupSection> Ret;
   3304   uint64_t I = 0;
   3305   for (const Elf_Shdr &Sec : cantFail(Obj.sections())) {
   3306     ++I;
   3307     if (Sec.sh_type != ELF::SHT_GROUP)
   3308       continue;
   3309 
   3310     StringRef Signature = "<?>";
   3311     if (Expected<const Elf_Shdr *> SymtabOrErr = Obj.getSection(Sec.sh_link)) {
   3312       if (Expected<const Elf_Sym *> SymOrErr =
   3313               Obj.template getEntry<Elf_Sym>(**SymtabOrErr, Sec.sh_info))
   3314         Signature = GetSignature(**SymOrErr, Sec.sh_info, **SymtabOrErr);
   3315       else
   3316         reportUniqueWarning("unable to get the signature symbol for " +
   3317                             describe(Sec) + ": " +
   3318                             toString(SymOrErr.takeError()));
   3319     } else {
   3320       reportUniqueWarning("unable to get the symbol table for " +
   3321                           describe(Sec) + ": " +
   3322                           toString(SymtabOrErr.takeError()));
   3323     }
   3324 
   3325     ArrayRef<Elf_Word> Data;
   3326     if (Expected<ArrayRef<Elf_Word>> ContentsOrErr =
   3327             Obj.template getSectionContentsAsArray<Elf_Word>(Sec)) {
   3328       if (ContentsOrErr->empty())
   3329         reportUniqueWarning("unable to read the section group flag from the " +
   3330                             describe(Sec) + ": the section is empty");
   3331       else
   3332         Data = *ContentsOrErr;
   3333     } else {
   3334       reportUniqueWarning("unable to get the content of the " + describe(Sec) +
   3335                           ": " + toString(ContentsOrErr.takeError()));
   3336     }
   3337 
   3338     Ret.push_back({getPrintableSectionName(Sec),
   3339                    maybeDemangle(Signature),
   3340                    Sec.sh_name,
   3341                    I - 1,
   3342                    Sec.sh_link,
   3343                    Sec.sh_info,
   3344                    Data.empty() ? Elf_Word(0) : Data[0],
   3345                    {}});
   3346 
   3347     if (Data.empty())
   3348       continue;
   3349 
   3350     std::vector<GroupMember> &GM = Ret.back().Members;
   3351     for (uint32_t Ndx : Data.slice(1)) {
   3352       if (Expected<const Elf_Shdr *> SecOrErr = Obj.getSection(Ndx)) {
   3353         GM.push_back({getPrintableSectionName(**SecOrErr), Ndx});
   3354       } else {
   3355         reportUniqueWarning("unable to get the section with index " +
   3356                             Twine(Ndx) + " when dumping the " + describe(Sec) +
   3357                             ": " + toString(SecOrErr.takeError()));
   3358         GM.push_back({"<?>", Ndx});
   3359       }
   3360     }
   3361   }
   3362   return Ret;
   3363 }
   3364 
   3365 static DenseMap<uint64_t, const GroupSection *>
   3366 mapSectionsToGroups(ArrayRef<GroupSection> Groups) {
   3367   DenseMap<uint64_t, const GroupSection *> Ret;
   3368   for (const GroupSection &G : Groups)
   3369     for (const GroupMember &GM : G.Members)
   3370       Ret.insert({GM.Index, &G});
   3371   return Ret;
   3372 }
   3373 
   3374 template <class ELFT> void GNUELFDumper<ELFT>::printGroupSections() {
   3375   std::vector<GroupSection> V = this->getGroups();
   3376   DenseMap<uint64_t, const GroupSection *> Map = mapSectionsToGroups(V);
   3377   for (const GroupSection &G : V) {
   3378     OS << "\n"
   3379        << getGroupType(G.Type) << " group section ["
   3380        << format_decimal(G.Index, 5) << "] `" << G.Name << "' [" << G.Signature
   3381        << "] contains " << G.Members.size() << " sections:\n"
   3382        << "   [Index]    Name\n";
   3383     for (const GroupMember &GM : G.Members) {
   3384       const GroupSection *MainGroup = Map[GM.Index];
   3385       if (MainGroup != &G)
   3386         this->reportUniqueWarning(
   3387             "section with index " + Twine(GM.Index) +
   3388             ", included in the group section with index " +
   3389             Twine(MainGroup->Index) +
   3390             ", was also found in the group section with index " +
   3391             Twine(G.Index));
   3392       OS << "   [" << format_decimal(GM.Index, 5) << "]   " << GM.Name << "\n";
   3393     }
   3394   }
   3395 
   3396   if (V.empty())
   3397     OS << "There are no section groups in this file.\n";
   3398 }
   3399 
   3400 template <class ELFT>
   3401 void GNUELFDumper<ELFT>::printRelrReloc(const Elf_Relr &R) {
   3402   OS << to_string(format_hex_no_prefix(R, ELFT::Is64Bits ? 16 : 8)) << "\n";
   3403 }
   3404 
   3405 template <class ELFT>
   3406 void GNUELFDumper<ELFT>::printRelRelaReloc(const Relocation<ELFT> &R,
   3407                                            const RelSymbol<ELFT> &RelSym) {
   3408   // First two fields are bit width dependent. The rest of them are fixed width.
   3409   unsigned Bias = ELFT::Is64Bits ? 8 : 0;
   3410   Field Fields[5] = {0, 10 + Bias, 19 + 2 * Bias, 42 + 2 * Bias, 53 + 2 * Bias};
   3411   unsigned Width = ELFT::Is64Bits ? 16 : 8;
   3412 
   3413   Fields[0].Str = to_string(format_hex_no_prefix(R.Offset, Width));
   3414   Fields[1].Str = to_string(format_hex_no_prefix(R.Info, Width));
   3415 
   3416   SmallString<32> RelocName;
   3417   this->Obj.getRelocationTypeName(R.Type, RelocName);
   3418   Fields[2].Str = RelocName.c_str();
   3419 
   3420   if (RelSym.Sym)
   3421     Fields[3].Str =
   3422         to_string(format_hex_no_prefix(RelSym.Sym->getValue(), Width));
   3423 
   3424   Fields[4].Str = std::string(RelSym.Name);
   3425   for (const Field &F : Fields)
   3426     printField(F);
   3427 
   3428   std::string Addend;
   3429   if (Optional<int64_t> A = R.Addend) {
   3430     int64_t RelAddend = *A;
   3431     if (!RelSym.Name.empty()) {
   3432       if (RelAddend < 0) {
   3433         Addend = " - ";
   3434         RelAddend = std::abs(RelAddend);
   3435       } else {
   3436         Addend = " + ";
   3437       }
   3438     }
   3439     Addend += to_hexString(RelAddend, false);
   3440   }
   3441   OS << Addend << "\n";
   3442 }
   3443 
   3444 template <class ELFT>
   3445 static void printRelocHeaderFields(formatted_raw_ostream &OS, unsigned SType) {
   3446   bool IsRela = SType == ELF::SHT_RELA || SType == ELF::SHT_ANDROID_RELA;
   3447   bool IsRelr = SType == ELF::SHT_RELR || SType == ELF::SHT_ANDROID_RELR;
   3448   if (ELFT::Is64Bits)
   3449     OS << "    ";
   3450   else
   3451     OS << " ";
   3452   if (IsRelr && opts::RawRelr)
   3453     OS << "Data  ";
   3454   else
   3455     OS << "Offset";
   3456   if (ELFT::Is64Bits)
   3457     OS << "             Info             Type"
   3458        << "               Symbol's Value  Symbol's Name";
   3459   else
   3460     OS << "     Info    Type                Sym. Value  Symbol's Name";
   3461   if (IsRela)
   3462     OS << " + Addend";
   3463   OS << "\n";
   3464 }
   3465 
   3466 template <class ELFT>
   3467 void GNUELFDumper<ELFT>::printDynamicRelocHeader(unsigned Type, StringRef Name,
   3468                                                  const DynRegionInfo &Reg) {
   3469   uint64_t Offset = Reg.Addr - this->Obj.base();
   3470   OS << "\n'" << Name.str().c_str() << "' relocation section at offset 0x"
   3471      << to_hexString(Offset, false) << " contains " << Reg.Size << " bytes:\n";
   3472   printRelocHeaderFields<ELFT>(OS, Type);
   3473 }
   3474 
   3475 template <class ELFT>
   3476 static bool isRelocationSec(const typename ELFT::Shdr &Sec) {
   3477   return Sec.sh_type == ELF::SHT_REL || Sec.sh_type == ELF::SHT_RELA ||
   3478          Sec.sh_type == ELF::SHT_RELR || Sec.sh_type == ELF::SHT_ANDROID_REL ||
   3479          Sec.sh_type == ELF::SHT_ANDROID_RELA ||
   3480          Sec.sh_type == ELF::SHT_ANDROID_RELR;
   3481 }
   3482 
   3483 template <class ELFT> void GNUELFDumper<ELFT>::printRelocations() {
   3484   auto GetEntriesNum = [&](const Elf_Shdr &Sec) -> Expected<size_t> {
   3485     // Android's packed relocation section needs to be unpacked first
   3486     // to get the actual number of entries.
   3487     if (Sec.sh_type == ELF::SHT_ANDROID_REL ||
   3488         Sec.sh_type == ELF::SHT_ANDROID_RELA) {
   3489       Expected<std::vector<typename ELFT::Rela>> RelasOrErr =
   3490           this->Obj.android_relas(Sec);
   3491       if (!RelasOrErr)
   3492         return RelasOrErr.takeError();
   3493       return RelasOrErr->size();
   3494     }
   3495 
   3496     if (!opts::RawRelr && (Sec.sh_type == ELF::SHT_RELR ||
   3497                            Sec.sh_type == ELF::SHT_ANDROID_RELR)) {
   3498       Expected<Elf_Relr_Range> RelrsOrErr = this->Obj.relrs(Sec);
   3499       if (!RelrsOrErr)
   3500         return RelrsOrErr.takeError();
   3501       return this->Obj.decode_relrs(*RelrsOrErr).size();
   3502     }
   3503 
   3504     return Sec.getEntityCount();
   3505   };
   3506 
   3507   bool HasRelocSections = false;
   3508   for (const Elf_Shdr &Sec : cantFail(this->Obj.sections())) {
   3509     if (!isRelocationSec<ELFT>(Sec))
   3510       continue;
   3511     HasRelocSections = true;
   3512 
   3513     std::string EntriesNum = "<?>";
   3514     if (Expected<size_t> NumOrErr = GetEntriesNum(Sec))
   3515       EntriesNum = std::to_string(*NumOrErr);
   3516     else
   3517       this->reportUniqueWarning("unable to get the number of relocations in " +
   3518                                 this->describe(Sec) + ": " +
   3519                                 toString(NumOrErr.takeError()));
   3520 
   3521     uintX_t Offset = Sec.sh_offset;
   3522     StringRef Name = this->getPrintableSectionName(Sec);
   3523     OS << "\nRelocation section '" << Name << "' at offset 0x"
   3524        << to_hexString(Offset, false) << " contains " << EntriesNum
   3525        << " entries:\n";
   3526     printRelocHeaderFields<ELFT>(OS, Sec.sh_type);
   3527     this->printRelocationsHelper(Sec);
   3528   }
   3529   if (!HasRelocSections)
   3530     OS << "\nThere are no relocations in this file.\n";
   3531 }
   3532 
   3533 // Print the offset of a particular section from anyone of the ranges:
   3534 // [SHT_LOOS, SHT_HIOS], [SHT_LOPROC, SHT_HIPROC], [SHT_LOUSER, SHT_HIUSER].
   3535 // If 'Type' does not fall within any of those ranges, then a string is
   3536 // returned as '<unknown>' followed by the type value.
   3537 static std::string getSectionTypeOffsetString(unsigned Type) {
   3538   if (Type >= SHT_LOOS && Type <= SHT_HIOS)
   3539     return "LOOS+0x" + to_hexString(Type - SHT_LOOS);
   3540   else if (Type >= SHT_LOPROC && Type <= SHT_HIPROC)
   3541     return "LOPROC+0x" + to_hexString(Type - SHT_LOPROC);
   3542   else if (Type >= SHT_LOUSER && Type <= SHT_HIUSER)
   3543     return "LOUSER+0x" + to_hexString(Type - SHT_LOUSER);
   3544   return "0x" + to_hexString(Type) + ": <unknown>";
   3545 }
   3546 
   3547 static std::string getSectionTypeString(unsigned Machine, unsigned Type) {
   3548   StringRef Name = getELFSectionTypeName(Machine, Type);
   3549 
   3550   // Handle SHT_GNU_* type names.
   3551   if (Name.startswith("SHT_GNU_")) {
   3552     if (Name == "SHT_GNU_HASH")
   3553       return "GNU_HASH";
   3554     // E.g. SHT_GNU_verneed -> VERNEED.
   3555     return Name.drop_front(8).upper();
   3556   }
   3557 
   3558   if (Name == "SHT_SYMTAB_SHNDX")
   3559     return "SYMTAB SECTION INDICES";
   3560 
   3561   if (Name.startswith("SHT_"))
   3562     return Name.drop_front(4).str();
   3563   return getSectionTypeOffsetString(Type);
   3564 }
   3565 
   3566 static void printSectionDescription(formatted_raw_ostream &OS,
   3567                                     unsigned EMachine) {
   3568   OS << "Key to Flags:\n";
   3569   OS << "  W (write), A (alloc), X (execute), M (merge), S (strings), I "
   3570         "(info),\n";
   3571   OS << "  L (link order), O (extra OS processing required), G (group), T "
   3572         "(TLS),\n";
   3573   OS << "  C (compressed), x (unknown), o (OS specific), E (exclude),\n";
   3574   OS << "  R (retain)";
   3575 
   3576   if (EMachine == EM_X86_64)
   3577     OS << ", l (large)";
   3578   else if (EMachine == EM_ARM)
   3579     OS << ", y (purecode)";
   3580 
   3581   OS << ", p (processor specific)\n";
   3582 }
   3583 
   3584 template <class ELFT> void GNUELFDumper<ELFT>::printSectionHeaders() {
   3585   unsigned Bias = ELFT::Is64Bits ? 0 : 8;
   3586   ArrayRef<Elf_Shdr> Sections = cantFail(this->Obj.sections());
   3587   OS << "There are " << to_string(Sections.size())
   3588      << " section headers, starting at offset "
   3589      << "0x" << to_hexString(this->Obj.getHeader().e_shoff, false) << ":\n\n";
   3590   OS << "Section Headers:\n";
   3591   Field Fields[11] = {
   3592       {"[Nr]", 2},        {"Name", 7},        {"Type", 25},
   3593       {"Address", 41},    {"Off", 58 - Bias}, {"Size", 65 - Bias},
   3594       {"ES", 72 - Bias},  {"Flg", 75 - Bias}, {"Lk", 79 - Bias},
   3595       {"Inf", 82 - Bias}, {"Al", 86 - Bias}};
   3596   for (const Field &F : Fields)
   3597     printField(F);
   3598   OS << "\n";
   3599 
   3600   StringRef SecStrTable;
   3601   if (Expected<StringRef> SecStrTableOrErr =
   3602           this->Obj.getSectionStringTable(Sections, this->WarningHandler))
   3603     SecStrTable = *SecStrTableOrErr;
   3604   else
   3605     this->reportUniqueWarning(SecStrTableOrErr.takeError());
   3606 
   3607   size_t SectionIndex = 0;
   3608   for (const Elf_Shdr &Sec : Sections) {
   3609     Fields[0].Str = to_string(SectionIndex);
   3610     if (SecStrTable.empty())
   3611       Fields[1].Str = "<no-strings>";
   3612     else
   3613       Fields[1].Str = std::string(unwrapOrError<StringRef>(
   3614           this->FileName, this->Obj.getSectionName(Sec, SecStrTable)));
   3615     Fields[2].Str =
   3616         getSectionTypeString(this->Obj.getHeader().e_machine, Sec.sh_type);
   3617     Fields[3].Str =
   3618         to_string(format_hex_no_prefix(Sec.sh_addr, ELFT::Is64Bits ? 16 : 8));
   3619     Fields[4].Str = to_string(format_hex_no_prefix(Sec.sh_offset, 6));
   3620     Fields[5].Str = to_string(format_hex_no_prefix(Sec.sh_size, 6));
   3621     Fields[6].Str = to_string(format_hex_no_prefix(Sec.sh_entsize, 2));
   3622     Fields[7].Str = getGNUFlags(this->Obj.getHeader().e_machine, Sec.sh_flags);
   3623     Fields[8].Str = to_string(Sec.sh_link);
   3624     Fields[9].Str = to_string(Sec.sh_info);
   3625     Fields[10].Str = to_string(Sec.sh_addralign);
   3626 
   3627     OS.PadToColumn(Fields[0].Column);
   3628     OS << "[" << right_justify(Fields[0].Str, 2) << "]";
   3629     for (int i = 1; i < 7; i++)
   3630       printField(Fields[i]);
   3631     OS.PadToColumn(Fields[7].Column);
   3632     OS << right_justify(Fields[7].Str, 3);
   3633     OS.PadToColumn(Fields[8].Column);
   3634     OS << right_justify(Fields[8].Str, 2);
   3635     OS.PadToColumn(Fields[9].Column);
   3636     OS << right_justify(Fields[9].Str, 3);
   3637     OS.PadToColumn(Fields[10].Column);
   3638     OS << right_justify(Fields[10].Str, 2);
   3639     OS << "\n";
   3640     ++SectionIndex;
   3641   }
   3642   printSectionDescription(OS, this->Obj.getHeader().e_machine);
   3643 }
   3644 
   3645 template <class ELFT>
   3646 void GNUELFDumper<ELFT>::printSymtabMessage(const Elf_Shdr *Symtab,
   3647                                             size_t Entries,
   3648                                             bool NonVisibilityBitsUsed) const {
   3649   StringRef Name;
   3650   if (Symtab)
   3651     Name = this->getPrintableSectionName(*Symtab);
   3652   if (!Name.empty())
   3653     OS << "\nSymbol table '" << Name << "'";
   3654   else
   3655     OS << "\nSymbol table for image";
   3656   OS << " contains " << Entries << " entries:\n";
   3657 
   3658   if (ELFT::Is64Bits)
   3659     OS << "   Num:    Value          Size Type    Bind   Vis";
   3660   else
   3661     OS << "   Num:    Value  Size Type    Bind   Vis";
   3662 
   3663   if (NonVisibilityBitsUsed)
   3664     OS << "             ";
   3665   OS << "       Ndx Name\n";
   3666 }
   3667 
   3668 template <class ELFT>
   3669 std::string
   3670 GNUELFDumper<ELFT>::getSymbolSectionNdx(const Elf_Sym &Symbol,
   3671                                         unsigned SymIndex,
   3672                                         DataRegion<Elf_Word> ShndxTable) const {
   3673   unsigned SectionIndex = Symbol.st_shndx;
   3674   switch (SectionIndex) {
   3675   case ELF::SHN_UNDEF:
   3676     return "UND";
   3677   case ELF::SHN_ABS:
   3678     return "ABS";
   3679   case ELF::SHN_COMMON:
   3680     return "COM";
   3681   case ELF::SHN_XINDEX: {
   3682     Expected<uint32_t> IndexOrErr =
   3683         object::getExtendedSymbolTableIndex<ELFT>(Symbol, SymIndex, ShndxTable);
   3684     if (!IndexOrErr) {
   3685       assert(Symbol.st_shndx == SHN_XINDEX &&
   3686              "getExtendedSymbolTableIndex should only fail due to an invalid "
   3687              "SHT_SYMTAB_SHNDX table/reference");
   3688       this->reportUniqueWarning(IndexOrErr.takeError());
   3689       return "RSV[0xffff]";
   3690     }
   3691     return to_string(format_decimal(*IndexOrErr, 3));
   3692   }
   3693   default:
   3694     // Find if:
   3695     // Processor specific
   3696     if (SectionIndex >= ELF::SHN_LOPROC && SectionIndex <= ELF::SHN_HIPROC)
   3697       return std::string("PRC[0x") +
   3698              to_string(format_hex_no_prefix(SectionIndex, 4)) + "]";
   3699     // OS specific
   3700     if (SectionIndex >= ELF::SHN_LOOS && SectionIndex <= ELF::SHN_HIOS)
   3701       return std::string("OS[0x") +
   3702              to_string(format_hex_no_prefix(SectionIndex, 4)) + "]";
   3703     // Architecture reserved:
   3704     if (SectionIndex >= ELF::SHN_LORESERVE &&
   3705         SectionIndex <= ELF::SHN_HIRESERVE)
   3706       return std::string("RSV[0x") +
   3707              to_string(format_hex_no_prefix(SectionIndex, 4)) + "]";
   3708     // A normal section with an index
   3709     return to_string(format_decimal(SectionIndex, 3));
   3710   }
   3711 }
   3712 
   3713 template <class ELFT>
   3714 void GNUELFDumper<ELFT>::printSymbol(const Elf_Sym &Symbol, unsigned SymIndex,
   3715                                      DataRegion<Elf_Word> ShndxTable,
   3716                                      Optional<StringRef> StrTable,
   3717                                      bool IsDynamic,
   3718                                      bool NonVisibilityBitsUsed) const {
   3719   unsigned Bias = ELFT::Is64Bits ? 8 : 0;
   3720   Field Fields[8] = {0,         8,         17 + Bias, 23 + Bias,
   3721                      31 + Bias, 38 + Bias, 48 + Bias, 51 + Bias};
   3722   Fields[0].Str = to_string(format_decimal(SymIndex, 6)) + ":";
   3723   Fields[1].Str =
   3724       to_string(format_hex_no_prefix(Symbol.st_value, ELFT::Is64Bits ? 16 : 8));
   3725   Fields[2].Str = to_string(format_decimal(Symbol.st_size, 5));
   3726 
   3727   unsigned char SymbolType = Symbol.getType();
   3728   if (this->Obj.getHeader().e_machine == ELF::EM_AMDGPU &&
   3729       SymbolType >= ELF::STT_LOOS && SymbolType < ELF::STT_HIOS)
   3730     Fields[3].Str = printEnum(SymbolType, makeArrayRef(AMDGPUSymbolTypes));
   3731   else
   3732     Fields[3].Str = printEnum(SymbolType, makeArrayRef(ElfSymbolTypes));
   3733 
   3734   Fields[4].Str =
   3735       printEnum(Symbol.getBinding(), makeArrayRef(ElfSymbolBindings));
   3736   Fields[5].Str =
   3737       printEnum(Symbol.getVisibility(), makeArrayRef(ElfSymbolVisibilities));
   3738 
   3739   if (Symbol.st_other & ~0x3) {
   3740     if (this->Obj.getHeader().e_machine == ELF::EM_AARCH64) {
   3741       uint8_t Other = Symbol.st_other & ~0x3;
   3742       if (Other & STO_AARCH64_VARIANT_PCS) {
   3743         Other &= ~STO_AARCH64_VARIANT_PCS;
   3744         Fields[5].Str += " [VARIANT_PCS";
   3745         if (Other != 0)
   3746           Fields[5].Str.append(" | " + to_hexString(Other, false));
   3747         Fields[5].Str.append("]");
   3748       }
   3749     } else {
   3750       Fields[5].Str +=
   3751           " [<other: " + to_string(format_hex(Symbol.st_other, 2)) + ">]";
   3752     }
   3753   }
   3754 
   3755   Fields[6].Column += NonVisibilityBitsUsed ? 13 : 0;
   3756   Fields[6].Str = getSymbolSectionNdx(Symbol, SymIndex, ShndxTable);
   3757 
   3758   Fields[7].Str = this->getFullSymbolName(Symbol, SymIndex, ShndxTable,
   3759                                           StrTable, IsDynamic);
   3760   for (const Field &Entry : Fields)
   3761     printField(Entry);
   3762   OS << "\n";
   3763 }
   3764 
   3765 template <class ELFT>
   3766 void GNUELFDumper<ELFT>::printHashedSymbol(const Elf_Sym *Symbol,
   3767                                            unsigned SymIndex,
   3768                                            DataRegion<Elf_Word> ShndxTable,
   3769                                            StringRef StrTable,
   3770                                            uint32_t Bucket) {
   3771   unsigned Bias = ELFT::Is64Bits ? 8 : 0;
   3772   Field Fields[9] = {0,         6,         11,        20 + Bias, 25 + Bias,
   3773                      34 + Bias, 41 + Bias, 49 + Bias, 53 + Bias};
   3774   Fields[0].Str = to_string(format_decimal(SymIndex, 5));
   3775   Fields[1].Str = to_string(format_decimal(Bucket, 3)) + ":";
   3776 
   3777   Fields[2].Str = to_string(
   3778       format_hex_no_prefix(Symbol->st_value, ELFT::Is64Bits ? 16 : 8));
   3779   Fields[3].Str = to_string(format_decimal(Symbol->st_size, 5));
   3780 
   3781   unsigned char SymbolType = Symbol->getType();
   3782   if (this->Obj.getHeader().e_machine == ELF::EM_AMDGPU &&
   3783       SymbolType >= ELF::STT_LOOS && SymbolType < ELF::STT_HIOS)
   3784     Fields[4].Str = printEnum(SymbolType, makeArrayRef(AMDGPUSymbolTypes));
   3785   else
   3786     Fields[4].Str = printEnum(SymbolType, makeArrayRef(ElfSymbolTypes));
   3787 
   3788   Fields[5].Str =
   3789       printEnum(Symbol->getBinding(), makeArrayRef(ElfSymbolBindings));
   3790   Fields[6].Str =
   3791       printEnum(Symbol->getVisibility(), makeArrayRef(ElfSymbolVisibilities));
   3792   Fields[7].Str = getSymbolSectionNdx(*Symbol, SymIndex, ShndxTable);
   3793   Fields[8].Str =
   3794       this->getFullSymbolName(*Symbol, SymIndex, ShndxTable, StrTable, true);
   3795 
   3796   for (const Field &Entry : Fields)
   3797     printField(Entry);
   3798   OS << "\n";
   3799 }
   3800 
   3801 template <class ELFT>
   3802 void GNUELFDumper<ELFT>::printSymbols(bool PrintSymbols,
   3803                                       bool PrintDynamicSymbols) {
   3804   if (!PrintSymbols && !PrintDynamicSymbols)
   3805     return;
   3806   // GNU readelf prints both the .dynsym and .symtab with --symbols.
   3807   this->printSymbolsHelper(true);
   3808   if (PrintSymbols)
   3809     this->printSymbolsHelper(false);
   3810 }
   3811 
   3812 template <class ELFT>
   3813 void GNUELFDumper<ELFT>::printHashTableSymbols(const Elf_Hash &SysVHash) {
   3814   if (this->DynamicStringTable.empty())
   3815     return;
   3816 
   3817   if (ELFT::Is64Bits)
   3818     OS << "  Num Buc:    Value          Size   Type   Bind Vis      Ndx Name";
   3819   else
   3820     OS << "  Num Buc:    Value  Size   Type   Bind Vis      Ndx Name";
   3821   OS << "\n";
   3822 
   3823   Elf_Sym_Range DynSyms = this->dynamic_symbols();
   3824   const Elf_Sym *FirstSym = DynSyms.empty() ? nullptr : &DynSyms[0];
   3825   if (!FirstSym) {
   3826     this->reportUniqueWarning(
   3827         Twine("unable to print symbols for the .hash table: the "
   3828               "dynamic symbol table ") +
   3829         (this->DynSymRegion ? "is empty" : "was not found"));
   3830     return;
   3831   }
   3832 
   3833   DataRegion<Elf_Word> ShndxTable(
   3834       (const Elf_Word *)this->DynSymTabShndxRegion.Addr, this->Obj.end());
   3835   auto Buckets = SysVHash.buckets();
   3836   auto Chains = SysVHash.chains();
   3837   for (uint32_t Buc = 0; Buc < SysVHash.nbucket; Buc++) {
   3838     if (Buckets[Buc] == ELF::STN_UNDEF)
   3839       continue;
   3840     std::vector<bool> Visited(SysVHash.nchain);
   3841     for (uint32_t Ch = Buckets[Buc]; Ch < SysVHash.nchain; Ch = Chains[Ch]) {
   3842       if (Ch == ELF::STN_UNDEF)
   3843         break;
   3844 
   3845       if (Visited[Ch]) {
   3846         this->reportUniqueWarning(".hash section is invalid: bucket " +
   3847                                   Twine(Ch) +
   3848                                   ": a cycle was detected in the linked chain");
   3849         break;
   3850       }
   3851 
   3852       printHashedSymbol(FirstSym + Ch, Ch, ShndxTable, this->DynamicStringTable,
   3853                         Buc);
   3854       Visited[Ch] = true;
   3855     }
   3856   }
   3857 }
   3858 
   3859 template <class ELFT>
   3860 void GNUELFDumper<ELFT>::printGnuHashTableSymbols(const Elf_GnuHash &GnuHash) {
   3861   if (this->DynamicStringTable.empty())
   3862     return;
   3863 
   3864   Elf_Sym_Range DynSyms = this->dynamic_symbols();
   3865   const Elf_Sym *FirstSym = DynSyms.empty() ? nullptr : &DynSyms[0];
   3866   if (!FirstSym) {
   3867     this->reportUniqueWarning(
   3868         Twine("unable to print symbols for the .gnu.hash table: the "
   3869               "dynamic symbol table ") +
   3870         (this->DynSymRegion ? "is empty" : "was not found"));
   3871     return;
   3872   }
   3873 
   3874   auto GetSymbol = [&](uint64_t SymIndex,
   3875                        uint64_t SymsTotal) -> const Elf_Sym * {
   3876     if (SymIndex >= SymsTotal) {
   3877       this->reportUniqueWarning(
   3878           "unable to print hashed symbol with index " + Twine(SymIndex) +
   3879           ", which is greater than or equal to the number of dynamic symbols "
   3880           "(" +
   3881           Twine::utohexstr(SymsTotal) + ")");
   3882       return nullptr;
   3883     }
   3884     return FirstSym + SymIndex;
   3885   };
   3886 
   3887   Expected<ArrayRef<Elf_Word>> ValuesOrErr =
   3888       getGnuHashTableChains<ELFT>(this->DynSymRegion, &GnuHash);
   3889   ArrayRef<Elf_Word> Values;
   3890   if (!ValuesOrErr)
   3891     this->reportUniqueWarning("unable to get hash values for the SHT_GNU_HASH "
   3892                               "section: " +
   3893                               toString(ValuesOrErr.takeError()));
   3894   else
   3895     Values = *ValuesOrErr;
   3896 
   3897   DataRegion<Elf_Word> ShndxTable(
   3898       (const Elf_Word *)this->DynSymTabShndxRegion.Addr, this->Obj.end());
   3899   ArrayRef<Elf_Word> Buckets = GnuHash.buckets();
   3900   for (uint32_t Buc = 0; Buc < GnuHash.nbuckets; Buc++) {
   3901     if (Buckets[Buc] == ELF::STN_UNDEF)
   3902       continue;
   3903     uint32_t Index = Buckets[Buc];
   3904     // Print whole chain.
   3905     while (true) {
   3906       uint32_t SymIndex = Index++;
   3907       if (const Elf_Sym *Sym = GetSymbol(SymIndex, DynSyms.size()))
   3908         printHashedSymbol(Sym, SymIndex, ShndxTable, this->DynamicStringTable,
   3909                           Buc);
   3910       else
   3911         break;
   3912 
   3913       if (SymIndex < GnuHash.symndx) {
   3914         this->reportUniqueWarning(
   3915             "unable to read the hash value for symbol with index " +
   3916             Twine(SymIndex) +
   3917             ", which is less than the index of the first hashed symbol (" +
   3918             Twine(GnuHash.symndx) + ")");
   3919         break;
   3920       }
   3921 
   3922        // Chain ends at symbol with stopper bit.
   3923       if ((Values[SymIndex - GnuHash.symndx] & 1) == 1)
   3924         break;
   3925     }
   3926   }
   3927 }
   3928 
   3929 template <class ELFT> void GNUELFDumper<ELFT>::printHashSymbols() {
   3930   if (this->HashTable) {
   3931     OS << "\n Symbol table of .hash for image:\n";
   3932     if (Error E = checkHashTable<ELFT>(*this, this->HashTable))
   3933       this->reportUniqueWarning(std::move(E));
   3934     else
   3935       printHashTableSymbols(*this->HashTable);
   3936   }
   3937 
   3938   // Try printing the .gnu.hash table.
   3939   if (this->GnuHashTable) {
   3940     OS << "\n Symbol table of .gnu.hash for image:\n";
   3941     if (ELFT::Is64Bits)
   3942       OS << "  Num Buc:    Value          Size   Type   Bind Vis      Ndx Name";
   3943     else
   3944       OS << "  Num Buc:    Value  Size   Type   Bind Vis      Ndx Name";
   3945     OS << "\n";
   3946 
   3947     if (Error E = checkGNUHashTable<ELFT>(this->Obj, this->GnuHashTable))
   3948       this->reportUniqueWarning(std::move(E));
   3949     else
   3950       printGnuHashTableSymbols(*this->GnuHashTable);
   3951   }
   3952 }
   3953 
   3954 template <class ELFT> void GNUELFDumper<ELFT>::printSectionDetails() {
   3955   ArrayRef<Elf_Shdr> Sections = cantFail(this->Obj.sections());
   3956   OS << "There are " << to_string(Sections.size())
   3957      << " section headers, starting at offset "
   3958      << "0x" << to_hexString(this->Obj.getHeader().e_shoff, false) << ":\n\n";
   3959 
   3960   OS << "Section Headers:\n";
   3961 
   3962   auto PrintFields = [&](ArrayRef<Field> V) {
   3963     for (const Field &F : V)
   3964       printField(F);
   3965     OS << "\n";
   3966   };
   3967 
   3968   PrintFields({{"[Nr]", 2}, {"Name", 7}});
   3969 
   3970   constexpr bool Is64 = ELFT::Is64Bits;
   3971   PrintFields({{"Type", 7},
   3972                {Is64 ? "Address" : "Addr", 23},
   3973                {"Off", Is64 ? 40 : 32},
   3974                {"Size", Is64 ? 47 : 39},
   3975                {"ES", Is64 ? 54 : 46},
   3976                {"Lk", Is64 ? 59 : 51},
   3977                {"Inf", Is64 ? 62 : 54},
   3978                {"Al", Is64 ? 66 : 57}});
   3979   PrintFields({{"Flags", 7}});
   3980 
   3981   StringRef SecStrTable;
   3982   if (Expected<StringRef> SecStrTableOrErr =
   3983           this->Obj.getSectionStringTable(Sections, this->WarningHandler))
   3984     SecStrTable = *SecStrTableOrErr;
   3985   else
   3986     this->reportUniqueWarning(SecStrTableOrErr.takeError());
   3987 
   3988   size_t SectionIndex = 0;
   3989   const unsigned AddrSize = Is64 ? 16 : 8;
   3990   for (const Elf_Shdr &S : Sections) {
   3991     StringRef Name = "<?>";
   3992     if (Expected<StringRef> NameOrErr =
   3993             this->Obj.getSectionName(S, SecStrTable))
   3994       Name = *NameOrErr;
   3995     else
   3996       this->reportUniqueWarning(NameOrErr.takeError());
   3997 
   3998     OS.PadToColumn(2);
   3999     OS << "[" << right_justify(to_string(SectionIndex), 2) << "]";
   4000     PrintFields({{Name, 7}});
   4001     PrintFields(
   4002         {{getSectionTypeString(this->Obj.getHeader().e_machine, S.sh_type), 7},
   4003          {to_string(format_hex_no_prefix(S.sh_addr, AddrSize)), 23},
   4004          {to_string(format_hex_no_prefix(S.sh_offset, 6)), Is64 ? 39 : 32},
   4005          {to_string(format_hex_no_prefix(S.sh_size, 6)), Is64 ? 47 : 39},
   4006          {to_string(format_hex_no_prefix(S.sh_entsize, 2)), Is64 ? 54 : 46},
   4007          {to_string(S.sh_link), Is64 ? 59 : 51},
   4008          {to_string(S.sh_info), Is64 ? 63 : 55},
   4009          {to_string(S.sh_addralign), Is64 ? 66 : 58}});
   4010 
   4011     OS.PadToColumn(7);
   4012     OS << "[" << to_string(format_hex_no_prefix(S.sh_flags, AddrSize)) << "]: ";
   4013 
   4014     DenseMap<unsigned, StringRef> FlagToName = {
   4015         {SHF_WRITE, "WRITE"},           {SHF_ALLOC, "ALLOC"},
   4016         {SHF_EXECINSTR, "EXEC"},        {SHF_MERGE, "MERGE"},
   4017         {SHF_STRINGS, "STRINGS"},       {SHF_INFO_LINK, "INFO LINK"},
   4018         {SHF_LINK_ORDER, "LINK ORDER"}, {SHF_OS_NONCONFORMING, "OS NONCONF"},
   4019         {SHF_GROUP, "GROUP"},           {SHF_TLS, "TLS"},
   4020         {SHF_COMPRESSED, "COMPRESSED"}, {SHF_EXCLUDE, "EXCLUDE"}};
   4021 
   4022     uint64_t Flags = S.sh_flags;
   4023     uint64_t UnknownFlags = 0;
   4024     ListSeparator LS;
   4025     while (Flags) {
   4026       // Take the least significant bit as a flag.
   4027       uint64_t Flag = Flags & -Flags;
   4028       Flags -= Flag;
   4029 
   4030       auto It = FlagToName.find(Flag);
   4031       if (It != FlagToName.end())
   4032         OS << LS << It->second;
   4033       else
   4034         UnknownFlags |= Flag;
   4035     }
   4036 
   4037     auto PrintUnknownFlags = [&](uint64_t Mask, StringRef Name) {
   4038       uint64_t FlagsToPrint = UnknownFlags & Mask;
   4039       if (!FlagsToPrint)
   4040         return;
   4041 
   4042       OS << LS << Name << " ("
   4043          << to_string(format_hex_no_prefix(FlagsToPrint, AddrSize)) << ")";
   4044       UnknownFlags &= ~Mask;
   4045     };
   4046 
   4047     PrintUnknownFlags(SHF_MASKOS, "OS");
   4048     PrintUnknownFlags(SHF_MASKPROC, "PROC");
   4049     PrintUnknownFlags(uint64_t(-1), "UNKNOWN");
   4050 
   4051     OS << "\n";
   4052     ++SectionIndex;
   4053   }
   4054 }
   4055 
   4056 static inline std::string printPhdrFlags(unsigned Flag) {
   4057   std::string Str;
   4058   Str = (Flag & PF_R) ? "R" : " ";
   4059   Str += (Flag & PF_W) ? "W" : " ";
   4060   Str += (Flag & PF_X) ? "E" : " ";
   4061   return Str;
   4062 }
   4063 
   4064 template <class ELFT>
   4065 static bool checkTLSSections(const typename ELFT::Phdr &Phdr,
   4066                              const typename ELFT::Shdr &Sec) {
   4067   if (Sec.sh_flags & ELF::SHF_TLS) {
   4068     // .tbss must only be shown in the PT_TLS segment.
   4069     if (Sec.sh_type == ELF::SHT_NOBITS)
   4070       return Phdr.p_type == ELF::PT_TLS;
   4071 
   4072     // SHF_TLS sections are only shown in PT_TLS, PT_LOAD or PT_GNU_RELRO
   4073     // segments.
   4074     return (Phdr.p_type == ELF::PT_TLS) || (Phdr.p_type == ELF::PT_LOAD) ||
   4075            (Phdr.p_type == ELF::PT_GNU_RELRO);
   4076   }
   4077 
   4078   // PT_TLS must only have SHF_TLS sections.
   4079   return Phdr.p_type != ELF::PT_TLS;
   4080 }
   4081 
   4082 template <class ELFT>
   4083 static bool checkOffsets(const typename ELFT::Phdr &Phdr,
   4084                          const typename ELFT::Shdr &Sec) {
   4085   // SHT_NOBITS sections don't need to have an offset inside the segment.
   4086   if (Sec.sh_type == ELF::SHT_NOBITS)
   4087     return true;
   4088 
   4089   if (Sec.sh_offset < Phdr.p_offset)
   4090     return false;
   4091 
   4092   // Only non-empty sections can be at the end of a segment.
   4093   if (Sec.sh_size == 0)
   4094     return (Sec.sh_offset + 1 <= Phdr.p_offset + Phdr.p_filesz);
   4095   return Sec.sh_offset + Sec.sh_size <= Phdr.p_offset + Phdr.p_filesz;
   4096 }
   4097 
   4098 // Check that an allocatable section belongs to a virtual address
   4099 // space of a segment.
   4100 template <class ELFT>
   4101 static bool checkVMA(const typename ELFT::Phdr &Phdr,
   4102                      const typename ELFT::Shdr &Sec) {
   4103   if (!(Sec.sh_flags & ELF::SHF_ALLOC))
   4104     return true;
   4105 
   4106   if (Sec.sh_addr < Phdr.p_vaddr)
   4107     return false;
   4108 
   4109   bool IsTbss =
   4110       (Sec.sh_type == ELF::SHT_NOBITS) && ((Sec.sh_flags & ELF::SHF_TLS) != 0);
   4111   // .tbss is special, it only has memory in PT_TLS and has NOBITS properties.
   4112   bool IsTbssInNonTLS = IsTbss && Phdr.p_type != ELF::PT_TLS;
   4113   // Only non-empty sections can be at the end of a segment.
   4114   if (Sec.sh_size == 0 || IsTbssInNonTLS)
   4115     return Sec.sh_addr + 1 <= Phdr.p_vaddr + Phdr.p_memsz;
   4116   return Sec.sh_addr + Sec.sh_size <= Phdr.p_vaddr + Phdr.p_memsz;
   4117 }
   4118 
   4119 template <class ELFT>
   4120 static bool checkPTDynamic(const typename ELFT::Phdr &Phdr,
   4121                            const typename ELFT::Shdr &Sec) {
   4122   if (Phdr.p_type != ELF::PT_DYNAMIC || Phdr.p_memsz == 0 || Sec.sh_size != 0)
   4123     return true;
   4124 
   4125   // We get here when we have an empty section. Only non-empty sections can be
   4126   // at the start or at the end of PT_DYNAMIC.
   4127   // Is section within the phdr both based on offset and VMA?
   4128   bool CheckOffset = (Sec.sh_type == ELF::SHT_NOBITS) ||
   4129                      (Sec.sh_offset > Phdr.p_offset &&
   4130                       Sec.sh_offset < Phdr.p_offset + Phdr.p_filesz);
   4131   bool CheckVA = !(Sec.sh_flags & ELF::SHF_ALLOC) ||
   4132                  (Sec.sh_addr > Phdr.p_vaddr && Sec.sh_addr < Phdr.p_memsz);
   4133   return CheckOffset && CheckVA;
   4134 }
   4135 
   4136 template <class ELFT>
   4137 void GNUELFDumper<ELFT>::printProgramHeaders(
   4138     bool PrintProgramHeaders, cl::boolOrDefault PrintSectionMapping) {
   4139   if (PrintProgramHeaders)
   4140     printProgramHeaders();
   4141 
   4142   // Display the section mapping along with the program headers, unless
   4143   // -section-mapping is explicitly set to false.
   4144   if (PrintSectionMapping != cl::BOU_FALSE)
   4145     printSectionMapping();
   4146 }
   4147 
   4148 template <class ELFT> void GNUELFDumper<ELFT>::printProgramHeaders() {
   4149   unsigned Bias = ELFT::Is64Bits ? 8 : 0;
   4150   const Elf_Ehdr &Header = this->Obj.getHeader();
   4151   Field Fields[8] = {2,         17,        26,        37 + Bias,
   4152                      48 + Bias, 56 + Bias, 64 + Bias, 68 + Bias};
   4153   OS << "\nElf file type is "
   4154      << printEnum(Header.e_type, makeArrayRef(ElfObjectFileType)) << "\n"
   4155      << "Entry point " << format_hex(Header.e_entry, 3) << "\n"
   4156      << "There are " << Header.e_phnum << " program headers,"
   4157      << " starting at offset " << Header.e_phoff << "\n\n"
   4158      << "Program Headers:\n";
   4159   if (ELFT::Is64Bits)
   4160     OS << "  Type           Offset   VirtAddr           PhysAddr         "
   4161        << "  FileSiz  MemSiz   Flg Align\n";
   4162   else
   4163     OS << "  Type           Offset   VirtAddr   PhysAddr   FileSiz "
   4164        << "MemSiz  Flg Align\n";
   4165 
   4166   unsigned Width = ELFT::Is64Bits ? 18 : 10;
   4167   unsigned SizeWidth = ELFT::Is64Bits ? 8 : 7;
   4168 
   4169   Expected<ArrayRef<Elf_Phdr>> PhdrsOrErr = this->Obj.program_headers();
   4170   if (!PhdrsOrErr) {
   4171     this->reportUniqueWarning("unable to dump program headers: " +
   4172                               toString(PhdrsOrErr.takeError()));
   4173     return;
   4174   }
   4175 
   4176   for (const Elf_Phdr &Phdr : *PhdrsOrErr) {
   4177     Fields[0].Str = getGNUPtType(Header.e_machine, Phdr.p_type);
   4178     Fields[1].Str = to_string(format_hex(Phdr.p_offset, 8));
   4179     Fields[2].Str = to_string(format_hex(Phdr.p_vaddr, Width));
   4180     Fields[3].Str = to_string(format_hex(Phdr.p_paddr, Width));
   4181     Fields[4].Str = to_string(format_hex(Phdr.p_filesz, SizeWidth));
   4182     Fields[5].Str = to_string(format_hex(Phdr.p_memsz, SizeWidth));
   4183     Fields[6].Str = printPhdrFlags(Phdr.p_flags);
   4184     Fields[7].Str = to_string(format_hex(Phdr.p_align, 1));
   4185     for (const Field &F : Fields)
   4186       printField(F);
   4187     if (Phdr.p_type == ELF::PT_INTERP) {
   4188       OS << "\n";
   4189       auto ReportBadInterp = [&](const Twine &Msg) {
   4190         this->reportUniqueWarning(
   4191             "unable to read program interpreter name at offset 0x" +
   4192             Twine::utohexstr(Phdr.p_offset) + ": " + Msg);
   4193       };
   4194 
   4195       if (Phdr.p_offset >= this->Obj.getBufSize()) {
   4196         ReportBadInterp("it goes past the end of the file (0x" +
   4197                         Twine::utohexstr(this->Obj.getBufSize()) + ")");
   4198         continue;
   4199       }
   4200 
   4201       const char *Data =
   4202           reinterpret_cast<const char *>(this->Obj.base()) + Phdr.p_offset;
   4203       size_t MaxSize = this->Obj.getBufSize() - Phdr.p_offset;
   4204       size_t Len = strnlen(Data, MaxSize);
   4205       if (Len == MaxSize) {
   4206         ReportBadInterp("it is not null-terminated");
   4207         continue;
   4208       }
   4209 
   4210       OS << "      [Requesting program interpreter: ";
   4211       OS << StringRef(Data, Len) << "]";
   4212     }
   4213     OS << "\n";
   4214   }
   4215 }
   4216 
   4217 template <class ELFT> void GNUELFDumper<ELFT>::printSectionMapping() {
   4218   OS << "\n Section to Segment mapping:\n  Segment Sections...\n";
   4219   DenseSet<const Elf_Shdr *> BelongsToSegment;
   4220   int Phnum = 0;
   4221 
   4222   Expected<ArrayRef<Elf_Phdr>> PhdrsOrErr = this->Obj.program_headers();
   4223   if (!PhdrsOrErr) {
   4224     this->reportUniqueWarning(
   4225         "can't read program headers to build section to segment mapping: " +
   4226         toString(PhdrsOrErr.takeError()));
   4227     return;
   4228   }
   4229 
   4230   for (const Elf_Phdr &Phdr : *PhdrsOrErr) {
   4231     std::string Sections;
   4232     OS << format("   %2.2d     ", Phnum++);
   4233     // Check if each section is in a segment and then print mapping.
   4234     for (const Elf_Shdr &Sec : cantFail(this->Obj.sections())) {
   4235       if (Sec.sh_type == ELF::SHT_NULL)
   4236         continue;
   4237 
   4238       // readelf additionally makes sure it does not print zero sized sections
   4239       // at end of segments and for PT_DYNAMIC both start and end of section
   4240       // .tbss must only be shown in PT_TLS section.
   4241       if (checkTLSSections<ELFT>(Phdr, Sec) && checkOffsets<ELFT>(Phdr, Sec) &&
   4242           checkVMA<ELFT>(Phdr, Sec) && checkPTDynamic<ELFT>(Phdr, Sec)) {
   4243         Sections +=
   4244             unwrapOrError(this->FileName, this->Obj.getSectionName(Sec)).str() +
   4245             " ";
   4246         BelongsToSegment.insert(&Sec);
   4247       }
   4248     }
   4249     OS << Sections << "\n";
   4250     OS.flush();
   4251   }
   4252 
   4253   // Display sections that do not belong to a segment.
   4254   std::string Sections;
   4255   for (const Elf_Shdr &Sec : cantFail(this->Obj.sections())) {
   4256     if (BelongsToSegment.find(&Sec) == BelongsToSegment.end())
   4257       Sections +=
   4258           unwrapOrError(this->FileName, this->Obj.getSectionName(Sec)).str() +
   4259           ' ';
   4260   }
   4261   if (!Sections.empty()) {
   4262     OS << "   None  " << Sections << '\n';
   4263     OS.flush();
   4264   }
   4265 }
   4266 
   4267 namespace {
   4268 
   4269 template <class ELFT>
   4270 RelSymbol<ELFT> getSymbolForReloc(const ELFDumper<ELFT> &Dumper,
   4271                                   const Relocation<ELFT> &Reloc) {
   4272   using Elf_Sym = typename ELFT::Sym;
   4273   auto WarnAndReturn = [&](const Elf_Sym *Sym,
   4274                            const Twine &Reason) -> RelSymbol<ELFT> {
   4275     Dumper.reportUniqueWarning(
   4276         "unable to get name of the dynamic symbol with index " +
   4277         Twine(Reloc.Symbol) + ": " + Reason);
   4278     return {Sym, "<corrupt>"};
   4279   };
   4280 
   4281   ArrayRef<Elf_Sym> Symbols = Dumper.dynamic_symbols();
   4282   const Elf_Sym *FirstSym = Symbols.begin();
   4283   if (!FirstSym)
   4284     return WarnAndReturn(nullptr, "no dynamic symbol table found");
   4285 
   4286   // We might have an object without a section header. In this case the size of
   4287   // Symbols is zero, because there is no way to know the size of the dynamic
   4288   // table. We should allow this case and not print a warning.
   4289   if (!Symbols.empty() && Reloc.Symbol >= Symbols.size())
   4290     return WarnAndReturn(
   4291         nullptr,
   4292         "index is greater than or equal to the number of dynamic symbols (" +
   4293             Twine(Symbols.size()) + ")");
   4294 
   4295   const ELFFile<ELFT> &Obj = Dumper.getElfObject().getELFFile();
   4296   const uint64_t FileSize = Obj.getBufSize();
   4297   const uint64_t SymOffset = ((const uint8_t *)FirstSym - Obj.base()) +
   4298                              (uint64_t)Reloc.Symbol * sizeof(Elf_Sym);
   4299   if (SymOffset + sizeof(Elf_Sym) > FileSize)
   4300     return WarnAndReturn(nullptr, "symbol at 0x" + Twine::utohexstr(SymOffset) +
   4301                                       " goes past the end of the file (0x" +
   4302                                       Twine::utohexstr(FileSize) + ")");
   4303 
   4304   const Elf_Sym *Sym = FirstSym + Reloc.Symbol;
   4305   Expected<StringRef> ErrOrName = Sym->getName(Dumper.getDynamicStringTable());
   4306   if (!ErrOrName)
   4307     return WarnAndReturn(Sym, toString(ErrOrName.takeError()));
   4308 
   4309   return {Sym == FirstSym ? nullptr : Sym, maybeDemangle(*ErrOrName)};
   4310 }
   4311 } // namespace
   4312 
   4313 template <class ELFT>
   4314 static size_t getMaxDynamicTagSize(const ELFFile<ELFT> &Obj,
   4315                                    typename ELFT::DynRange Tags) {
   4316   size_t Max = 0;
   4317   for (const typename ELFT::Dyn &Dyn : Tags)
   4318     Max = std::max(Max, Obj.getDynamicTagAsString(Dyn.d_tag).size());
   4319   return Max;
   4320 }
   4321 
   4322 template <class ELFT> void GNUELFDumper<ELFT>::printDynamicTable() {
   4323   Elf_Dyn_Range Table = this->dynamic_table();
   4324   if (Table.empty())
   4325     return;
   4326 
   4327   OS << "Dynamic section at offset "
   4328      << format_hex(reinterpret_cast<const uint8_t *>(this->DynamicTable.Addr) -
   4329                        this->Obj.base(),
   4330                    1)
   4331      << " contains " << Table.size() << " entries:\n";
   4332 
   4333   // The type name is surrounded with round brackets, hence add 2.
   4334   size_t MaxTagSize = getMaxDynamicTagSize(this->Obj, Table) + 2;
   4335   // The "Name/Value" column should be indented from the "Type" column by N
   4336   // spaces, where N = MaxTagSize - length of "Type" (4) + trailing
   4337   // space (1) = 3.
   4338   OS << "  Tag" + std::string(ELFT::Is64Bits ? 16 : 8, ' ') + "Type"
   4339      << std::string(MaxTagSize - 3, ' ') << "Name/Value\n";
   4340 
   4341   std::string ValueFmt = " %-" + std::to_string(MaxTagSize) + "s ";
   4342   for (auto Entry : Table) {
   4343     uintX_t Tag = Entry.getTag();
   4344     std::string Type =
   4345         std::string("(") + this->Obj.getDynamicTagAsString(Tag).c_str() + ")";
   4346     std::string Value = this->getDynamicEntry(Tag, Entry.getVal());
   4347     OS << "  " << format_hex(Tag, ELFT::Is64Bits ? 18 : 10)
   4348        << format(ValueFmt.c_str(), Type.c_str()) << Value << "\n";
   4349   }
   4350 }
   4351 
   4352 template <class ELFT> void GNUELFDumper<ELFT>::printDynamicRelocations() {
   4353   this->printDynamicRelocationsHelper();
   4354 }
   4355 
   4356 template <class ELFT>
   4357 void ELFDumper<ELFT>::printDynamicReloc(const Relocation<ELFT> &R) {
   4358   printRelRelaReloc(R, getSymbolForReloc(*this, R));
   4359 }
   4360 
   4361 template <class ELFT>
   4362 void ELFDumper<ELFT>::printRelocationsHelper(const Elf_Shdr &Sec) {
   4363   this->forEachRelocationDo(
   4364       Sec, opts::RawRelr,
   4365       [&](const Relocation<ELFT> &R, unsigned Ndx, const Elf_Shdr &Sec,
   4366           const Elf_Shdr *SymTab) { printReloc(R, Ndx, Sec, SymTab); },
   4367       [&](const Elf_Relr &R) { printRelrReloc(R); });
   4368 }
   4369 
   4370 template <class ELFT> void ELFDumper<ELFT>::printDynamicRelocationsHelper() {
   4371   const bool IsMips64EL = this->Obj.isMips64EL();
   4372   if (this->DynRelaRegion.Size > 0) {
   4373     printDynamicRelocHeader(ELF::SHT_RELA, "RELA", this->DynRelaRegion);
   4374     for (const Elf_Rela &Rela :
   4375          this->DynRelaRegion.template getAsArrayRef<Elf_Rela>())
   4376       printDynamicReloc(Relocation<ELFT>(Rela, IsMips64EL));
   4377   }
   4378 
   4379   if (this->DynRelRegion.Size > 0) {
   4380     printDynamicRelocHeader(ELF::SHT_REL, "REL", this->DynRelRegion);
   4381     for (const Elf_Rel &Rel :
   4382          this->DynRelRegion.template getAsArrayRef<Elf_Rel>())
   4383       printDynamicReloc(Relocation<ELFT>(Rel, IsMips64EL));
   4384   }
   4385 
   4386   if (this->DynRelrRegion.Size > 0) {
   4387     printDynamicRelocHeader(ELF::SHT_REL, "RELR", this->DynRelrRegion);
   4388     Elf_Relr_Range Relrs =
   4389         this->DynRelrRegion.template getAsArrayRef<Elf_Relr>();
   4390     for (const Elf_Rel &Rel : Obj.decode_relrs(Relrs))
   4391       printDynamicReloc(Relocation<ELFT>(Rel, IsMips64EL));
   4392   }
   4393 
   4394   if (this->DynPLTRelRegion.Size) {
   4395     if (this->DynPLTRelRegion.EntSize == sizeof(Elf_Rela)) {
   4396       printDynamicRelocHeader(ELF::SHT_RELA, "PLT", this->DynPLTRelRegion);
   4397       for (const Elf_Rela &Rela :
   4398            this->DynPLTRelRegion.template getAsArrayRef<Elf_Rela>())
   4399         printDynamicReloc(Relocation<ELFT>(Rela, IsMips64EL));
   4400     } else {
   4401       printDynamicRelocHeader(ELF::SHT_REL, "PLT", this->DynPLTRelRegion);
   4402       for (const Elf_Rel &Rel :
   4403            this->DynPLTRelRegion.template getAsArrayRef<Elf_Rel>())
   4404         printDynamicReloc(Relocation<ELFT>(Rel, IsMips64EL));
   4405     }
   4406   }
   4407 }
   4408 
   4409 template <class ELFT>
   4410 void GNUELFDumper<ELFT>::printGNUVersionSectionProlog(
   4411     const typename ELFT::Shdr &Sec, const Twine &Label, unsigned EntriesNum) {
   4412   // Don't inline the SecName, because it might report a warning to stderr and
   4413   // corrupt the output.
   4414   StringRef SecName = this->getPrintableSectionName(Sec);
   4415   OS << Label << " section '" << SecName << "' "
   4416      << "contains " << EntriesNum << " entries:\n";
   4417 
   4418   StringRef LinkedSecName = "<corrupt>";
   4419   if (Expected<const typename ELFT::Shdr *> LinkedSecOrErr =
   4420           this->Obj.getSection(Sec.sh_link))
   4421     LinkedSecName = this->getPrintableSectionName(**LinkedSecOrErr);
   4422   else
   4423     this->reportUniqueWarning("invalid section linked to " +
   4424                               this->describe(Sec) + ": " +
   4425                               toString(LinkedSecOrErr.takeError()));
   4426 
   4427   OS << " Addr: " << format_hex_no_prefix(Sec.sh_addr, 16)
   4428      << "  Offset: " << format_hex(Sec.sh_offset, 8)
   4429      << "  Link: " << Sec.sh_link << " (" << LinkedSecName << ")\n";
   4430 }
   4431 
   4432 template <class ELFT>
   4433 void GNUELFDumper<ELFT>::printVersionSymbolSection(const Elf_Shdr *Sec) {
   4434   if (!Sec)
   4435     return;
   4436 
   4437   printGNUVersionSectionProlog(*Sec, "Version symbols",
   4438                                Sec->sh_size / sizeof(Elf_Versym));
   4439   Expected<ArrayRef<Elf_Versym>> VerTableOrErr =
   4440       this->getVersionTable(*Sec, /*SymTab=*/nullptr,
   4441                             /*StrTab=*/nullptr, /*SymTabSec=*/nullptr);
   4442   if (!VerTableOrErr) {
   4443     this->reportUniqueWarning(VerTableOrErr.takeError());
   4444     return;
   4445   }
   4446 
   4447   SmallVector<Optional<VersionEntry>, 0> *VersionMap = nullptr;
   4448   if (Expected<SmallVector<Optional<VersionEntry>, 0> *> MapOrErr =
   4449           this->getVersionMap())
   4450     VersionMap = *MapOrErr;
   4451   else
   4452     this->reportUniqueWarning(MapOrErr.takeError());
   4453 
   4454   ArrayRef<Elf_Versym> VerTable = *VerTableOrErr;
   4455   std::vector<StringRef> Versions;
   4456   for (size_t I = 0, E = VerTable.size(); I < E; ++I) {
   4457     unsigned Ndx = VerTable[I].vs_index;
   4458     if (Ndx == VER_NDX_LOCAL || Ndx == VER_NDX_GLOBAL) {
   4459       Versions.emplace_back(Ndx == VER_NDX_LOCAL ? "*local*" : "*global*");
   4460       continue;
   4461     }
   4462 
   4463     if (!VersionMap) {
   4464       Versions.emplace_back("<corrupt>");
   4465       continue;
   4466     }
   4467 
   4468     bool IsDefault;
   4469     Expected<StringRef> NameOrErr = this->Obj.getSymbolVersionByIndex(
   4470         Ndx, IsDefault, *VersionMap, /*IsSymHidden=*/None);
   4471     if (!NameOrErr) {
   4472       this->reportUniqueWarning("unable to get a version for entry " +
   4473                                 Twine(I) + " of " + this->describe(*Sec) +
   4474                                 ": " + toString(NameOrErr.takeError()));
   4475       Versions.emplace_back("<corrupt>");
   4476       continue;
   4477     }
   4478     Versions.emplace_back(*NameOrErr);
   4479   }
   4480 
   4481   // readelf prints 4 entries per line.
   4482   uint64_t Entries = VerTable.size();
   4483   for (uint64_t VersymRow = 0; VersymRow < Entries; VersymRow += 4) {
   4484     OS << "  " << format_hex_no_prefix(VersymRow, 3) << ":";
   4485     for (uint64_t I = 0; (I < 4) && (I + VersymRow) < Entries; ++I) {
   4486       unsigned Ndx = VerTable[VersymRow + I].vs_index;
   4487       OS << format("%4x%c", Ndx & VERSYM_VERSION,
   4488                    Ndx & VERSYM_HIDDEN ? 'h' : ' ');
   4489       OS << left_justify("(" + std::string(Versions[VersymRow + I]) + ")", 13);
   4490     }
   4491     OS << '\n';
   4492   }
   4493   OS << '\n';
   4494 }
   4495 
   4496 static std::string versionFlagToString(unsigned Flags) {
   4497   if (Flags == 0)
   4498     return "none";
   4499 
   4500   std::string Ret;
   4501   auto AddFlag = [&Ret, &Flags](unsigned Flag, StringRef Name) {
   4502     if (!(Flags & Flag))
   4503       return;
   4504     if (!Ret.empty())
   4505       Ret += " | ";
   4506     Ret += Name;
   4507     Flags &= ~Flag;
   4508   };
   4509 
   4510   AddFlag(VER_FLG_BASE, "BASE");
   4511   AddFlag(VER_FLG_WEAK, "WEAK");
   4512   AddFlag(VER_FLG_INFO, "INFO");
   4513   AddFlag(~0, "<unknown>");
   4514   return Ret;
   4515 }
   4516 
   4517 template <class ELFT>
   4518 void GNUELFDumper<ELFT>::printVersionDefinitionSection(const Elf_Shdr *Sec) {
   4519   if (!Sec)
   4520     return;
   4521 
   4522   printGNUVersionSectionProlog(*Sec, "Version definition", Sec->sh_info);
   4523 
   4524   Expected<std::vector<VerDef>> V = this->Obj.getVersionDefinitions(*Sec);
   4525   if (!V) {
   4526     this->reportUniqueWarning(V.takeError());
   4527     return;
   4528   }
   4529 
   4530   for (const VerDef &Def : *V) {
   4531     OS << format("  0x%04x: Rev: %u  Flags: %s  Index: %u  Cnt: %u  Name: %s\n",
   4532                  Def.Offset, Def.Version,
   4533                  versionFlagToString(Def.Flags).c_str(), Def.Ndx, Def.Cnt,
   4534                  Def.Name.data());
   4535     unsigned I = 0;
   4536     for (const VerdAux &Aux : Def.AuxV)
   4537       OS << format("  0x%04x: Parent %u: %s\n", Aux.Offset, ++I,
   4538                    Aux.Name.data());
   4539   }
   4540 
   4541   OS << '\n';
   4542 }
   4543 
   4544 template <class ELFT>
   4545 void GNUELFDumper<ELFT>::printVersionDependencySection(const Elf_Shdr *Sec) {
   4546   if (!Sec)
   4547     return;
   4548 
   4549   unsigned VerneedNum = Sec->sh_info;
   4550   printGNUVersionSectionProlog(*Sec, "Version needs", VerneedNum);
   4551 
   4552   Expected<std::vector<VerNeed>> V =
   4553       this->Obj.getVersionDependencies(*Sec, this->WarningHandler);
   4554   if (!V) {
   4555     this->reportUniqueWarning(V.takeError());
   4556     return;
   4557   }
   4558 
   4559   for (const VerNeed &VN : *V) {
   4560     OS << format("  0x%04x: Version: %u  File: %s  Cnt: %u\n", VN.Offset,
   4561                  VN.Version, VN.File.data(), VN.Cnt);
   4562     for (const VernAux &Aux : VN.AuxV)
   4563       OS << format("  0x%04x:   Name: %s  Flags: %s  Version: %u\n", Aux.Offset,
   4564                    Aux.Name.data(), versionFlagToString(Aux.Flags).c_str(),
   4565                    Aux.Other);
   4566   }
   4567   OS << '\n';
   4568 }
   4569 
   4570 template <class ELFT>
   4571 void GNUELFDumper<ELFT>::printHashHistogram(const Elf_Hash &HashTable) {
   4572   size_t NBucket = HashTable.nbucket;
   4573   size_t NChain = HashTable.nchain;
   4574   ArrayRef<Elf_Word> Buckets = HashTable.buckets();
   4575   ArrayRef<Elf_Word> Chains = HashTable.chains();
   4576   size_t TotalSyms = 0;
   4577   // If hash table is correct, we have at least chains with 0 length
   4578   size_t MaxChain = 1;
   4579   size_t CumulativeNonZero = 0;
   4580 
   4581   if (NChain == 0 || NBucket == 0)
   4582     return;
   4583 
   4584   std::vector<size_t> ChainLen(NBucket, 0);
   4585   // Go over all buckets and and note chain lengths of each bucket (total
   4586   // unique chain lengths).
   4587   for (size_t B = 0; B < NBucket; B++) {
   4588     std::vector<bool> Visited(NChain);
   4589     for (size_t C = Buckets[B]; C < NChain; C = Chains[C]) {
   4590       if (C == ELF::STN_UNDEF)
   4591         break;
   4592       if (Visited[C]) {
   4593         this->reportUniqueWarning(".hash section is invalid: bucket " +
   4594                                   Twine(C) +
   4595                                   ": a cycle was detected in the linked chain");
   4596         break;
   4597       }
   4598       Visited[C] = true;
   4599       if (MaxChain <= ++ChainLen[B])
   4600         MaxChain++;
   4601     }
   4602     TotalSyms += ChainLen[B];
   4603   }
   4604 
   4605   if (!TotalSyms)
   4606     return;
   4607 
   4608   std::vector<size_t> Count(MaxChain, 0);
   4609   // Count how long is the chain for each bucket
   4610   for (size_t B = 0; B < NBucket; B++)
   4611     ++Count[ChainLen[B]];
   4612   // Print Number of buckets with each chain lengths and their cumulative
   4613   // coverage of the symbols
   4614   OS << "Histogram for bucket list length (total of " << NBucket
   4615      << " buckets)\n"
   4616      << " Length  Number     % of total  Coverage\n";
   4617   for (size_t I = 0; I < MaxChain; I++) {
   4618     CumulativeNonZero += Count[I] * I;
   4619     OS << format("%7lu  %-10lu (%5.1f%%)     %5.1f%%\n", I, Count[I],
   4620                  (Count[I] * 100.0) / NBucket,
   4621                  (CumulativeNonZero * 100.0) / TotalSyms);
   4622   }
   4623 }
   4624 
   4625 template <class ELFT>
   4626 void GNUELFDumper<ELFT>::printGnuHashHistogram(
   4627     const Elf_GnuHash &GnuHashTable) {
   4628   Expected<ArrayRef<Elf_Word>> ChainsOrErr =
   4629       getGnuHashTableChains<ELFT>(this->DynSymRegion, &GnuHashTable);
   4630   if (!ChainsOrErr) {
   4631     this->reportUniqueWarning("unable to print the GNU hash table histogram: " +
   4632                               toString(ChainsOrErr.takeError()));
   4633     return;
   4634   }
   4635 
   4636   ArrayRef<Elf_Word> Chains = *ChainsOrErr;
   4637   size_t Symndx = GnuHashTable.symndx;
   4638   size_t TotalSyms = 0;
   4639   size_t MaxChain = 1;
   4640   size_t CumulativeNonZero = 0;
   4641 
   4642   size_t NBucket = GnuHashTable.nbuckets;
   4643   if (Chains.empty() || NBucket == 0)
   4644     return;
   4645 
   4646   ArrayRef<Elf_Word> Buckets = GnuHashTable.buckets();
   4647   std::vector<size_t> ChainLen(NBucket, 0);
   4648   for (size_t B = 0; B < NBucket; B++) {
   4649     if (!Buckets[B])
   4650       continue;
   4651     size_t Len = 1;
   4652     for (size_t C = Buckets[B] - Symndx;
   4653          C < Chains.size() && (Chains[C] & 1) == 0; C++)
   4654       if (MaxChain < ++Len)
   4655         MaxChain++;
   4656     ChainLen[B] = Len;
   4657     TotalSyms += Len;
   4658   }
   4659   MaxChain++;
   4660 
   4661   if (!TotalSyms)
   4662     return;
   4663 
   4664   std::vector<size_t> Count(MaxChain, 0);
   4665   for (size_t B = 0; B < NBucket; B++)
   4666     ++Count[ChainLen[B]];
   4667   // Print Number of buckets with each chain lengths and their cumulative
   4668   // coverage of the symbols
   4669   OS << "Histogram for `.gnu.hash' bucket list length (total of " << NBucket
   4670      << " buckets)\n"
   4671      << " Length  Number     % of total  Coverage\n";
   4672   for (size_t I = 0; I < MaxChain; I++) {
   4673     CumulativeNonZero += Count[I] * I;
   4674     OS << format("%7lu  %-10lu (%5.1f%%)     %5.1f%%\n", I, Count[I],
   4675                  (Count[I] * 100.0) / NBucket,
   4676                  (CumulativeNonZero * 100.0) / TotalSyms);
   4677   }
   4678 }
   4679 
   4680 // Hash histogram shows statistics of how efficient the hash was for the
   4681 // dynamic symbol table. The table shows the number of hash buckets for
   4682 // different lengths of chains as an absolute number and percentage of the total
   4683 // buckets, and the cumulative coverage of symbols for each set of buckets.
   4684 template <class ELFT> void GNUELFDumper<ELFT>::printHashHistograms() {
   4685   // Print histogram for the .hash section.
   4686   if (this->HashTable) {
   4687     if (Error E = checkHashTable<ELFT>(*this, this->HashTable))
   4688       this->reportUniqueWarning(std::move(E));
   4689     else
   4690       printHashHistogram(*this->HashTable);
   4691   }
   4692 
   4693   // Print histogram for the .gnu.hash section.
   4694   if (this->GnuHashTable) {
   4695     if (Error E = checkGNUHashTable<ELFT>(this->Obj, this->GnuHashTable))
   4696       this->reportUniqueWarning(std::move(E));
   4697     else
   4698       printGnuHashHistogram(*this->GnuHashTable);
   4699   }
   4700 }
   4701 
   4702 template <class ELFT> void GNUELFDumper<ELFT>::printCGProfile() {
   4703   OS << "GNUStyle::printCGProfile not implemented\n";
   4704 }
   4705 
   4706 template <class ELFT> void GNUELFDumper<ELFT>::printBBAddrMaps() {
   4707   OS << "GNUStyle::printBBAddrMaps not implemented\n";
   4708 }
   4709 
   4710 static Expected<std::vector<uint64_t>> toULEB128Array(ArrayRef<uint8_t> Data) {
   4711   std::vector<uint64_t> Ret;
   4712   const uint8_t *Cur = Data.begin();
   4713   const uint8_t *End = Data.end();
   4714   while (Cur != End) {
   4715     unsigned Size;
   4716     const char *Err;
   4717     Ret.push_back(decodeULEB128(Cur, &Size, End, &Err));
   4718     if (Err)
   4719       return createError(Err);
   4720     Cur += Size;
   4721   }
   4722   return Ret;
   4723 }
   4724 
   4725 template <class ELFT>
   4726 static Expected<std::vector<uint64_t>>
   4727 decodeAddrsigSection(const ELFFile<ELFT> &Obj, const typename ELFT::Shdr &Sec) {
   4728   Expected<ArrayRef<uint8_t>> ContentsOrErr = Obj.getSectionContents(Sec);
   4729   if (!ContentsOrErr)
   4730     return ContentsOrErr.takeError();
   4731 
   4732   if (Expected<std::vector<uint64_t>> SymsOrErr =
   4733           toULEB128Array(*ContentsOrErr))
   4734     return *SymsOrErr;
   4735   else
   4736     return createError("unable to decode " + describe(Obj, Sec) + ": " +
   4737                        toString(SymsOrErr.takeError()));
   4738 }
   4739 
   4740 template <class ELFT> void GNUELFDumper<ELFT>::printAddrsig() {
   4741   if (!this->DotAddrsigSec)
   4742     return;
   4743 
   4744   Expected<std::vector<uint64_t>> SymsOrErr =
   4745       decodeAddrsigSection(this->Obj, *this->DotAddrsigSec);
   4746   if (!SymsOrErr) {
   4747     this->reportUniqueWarning(SymsOrErr.takeError());
   4748     return;
   4749   }
   4750 
   4751   StringRef Name = this->getPrintableSectionName(*this->DotAddrsigSec);
   4752   OS << "\nAddress-significant symbols section '" << Name << "'"
   4753      << " contains " << SymsOrErr->size() << " entries:\n";
   4754   OS << "   Num: Name\n";
   4755 
   4756   Field Fields[2] = {0, 8};
   4757   size_t SymIndex = 0;
   4758   for (uint64_t Sym : *SymsOrErr) {
   4759     Fields[0].Str = to_string(format_decimal(++SymIndex, 6)) + ":";
   4760     Fields[1].Str = this->getStaticSymbolName(Sym);
   4761     for (const Field &Entry : Fields)
   4762       printField(Entry);
   4763     OS << "\n";
   4764   }
   4765 }
   4766 
   4767 template <typename ELFT>
   4768 static std::string getGNUProperty(uint32_t Type, uint32_t DataSize,
   4769                                   ArrayRef<uint8_t> Data) {
   4770   std::string str;
   4771   raw_string_ostream OS(str);
   4772   uint32_t PrData;
   4773   auto DumpBit = [&](uint32_t Flag, StringRef Name) {
   4774     if (PrData & Flag) {
   4775       PrData &= ~Flag;
   4776       OS << Name;
   4777       if (PrData)
   4778         OS << ", ";
   4779     }
   4780   };
   4781 
   4782   switch (Type) {
   4783   default:
   4784     OS << format("<application-specific type 0x%x>", Type);
   4785     return OS.str();
   4786   case GNU_PROPERTY_STACK_SIZE: {
   4787     OS << "stack size: ";
   4788     if (DataSize == sizeof(typename ELFT::uint))
   4789       OS << formatv("{0:x}",
   4790                     (uint64_t)(*(const typename ELFT::Addr *)Data.data()));
   4791     else
   4792       OS << format("<corrupt length: 0x%x>", DataSize);
   4793     return OS.str();
   4794   }
   4795   case GNU_PROPERTY_NO_COPY_ON_PROTECTED:
   4796     OS << "no copy on protected";
   4797     if (DataSize)
   4798       OS << format(" <corrupt length: 0x%x>", DataSize);
   4799     return OS.str();
   4800   case GNU_PROPERTY_AARCH64_FEATURE_1_AND:
   4801   case GNU_PROPERTY_X86_FEATURE_1_AND:
   4802     OS << ((Type == GNU_PROPERTY_AARCH64_FEATURE_1_AND) ? "aarch64 feature: "
   4803                                                         : "x86 feature: ");
   4804     if (DataSize != 4) {
   4805       OS << format("<corrupt length: 0x%x>", DataSize);
   4806       return OS.str();
   4807     }
   4808     PrData = support::endian::read32<ELFT::TargetEndianness>(Data.data());
   4809     if (PrData == 0) {
   4810       OS << "<None>";
   4811       return OS.str();
   4812     }
   4813     if (Type == GNU_PROPERTY_AARCH64_FEATURE_1_AND) {
   4814       DumpBit(GNU_PROPERTY_AARCH64_FEATURE_1_BTI, "BTI");
   4815       DumpBit(GNU_PROPERTY_AARCH64_FEATURE_1_PAC, "PAC");
   4816     } else {
   4817       DumpBit(GNU_PROPERTY_X86_FEATURE_1_IBT, "IBT");
   4818       DumpBit(GNU_PROPERTY_X86_FEATURE_1_SHSTK, "SHSTK");
   4819     }
   4820     if (PrData)
   4821       OS << format("<unknown flags: 0x%x>", PrData);
   4822     return OS.str();
   4823   case GNU_PROPERTY_X86_FEATURE_2_NEEDED:
   4824   case GNU_PROPERTY_X86_FEATURE_2_USED:
   4825     OS << "x86 feature "
   4826        << (Type == GNU_PROPERTY_X86_FEATURE_2_NEEDED ? "needed: " : "used: ");
   4827     if (DataSize != 4) {
   4828       OS << format("<corrupt length: 0x%x>", DataSize);
   4829       return OS.str();
   4830     }
   4831     PrData = support::endian::read32<ELFT::TargetEndianness>(Data.data());
   4832     if (PrData == 0) {
   4833       OS << "<None>";
   4834       return OS.str();
   4835     }
   4836     DumpBit(GNU_PROPERTY_X86_FEATURE_2_X86, "x86");
   4837     DumpBit(GNU_PROPERTY_X86_FEATURE_2_X87, "x87");
   4838     DumpBit(GNU_PROPERTY_X86_FEATURE_2_MMX, "MMX");
   4839     DumpBit(GNU_PROPERTY_X86_FEATURE_2_XMM, "XMM");
   4840     DumpBit(GNU_PROPERTY_X86_FEATURE_2_YMM, "YMM");
   4841     DumpBit(GNU_PROPERTY_X86_FEATURE_2_ZMM, "ZMM");
   4842     DumpBit(GNU_PROPERTY_X86_FEATURE_2_FXSR, "FXSR");
   4843     DumpBit(GNU_PROPERTY_X86_FEATURE_2_XSAVE, "XSAVE");
   4844     DumpBit(GNU_PROPERTY_X86_FEATURE_2_XSAVEOPT, "XSAVEOPT");
   4845     DumpBit(GNU_PROPERTY_X86_FEATURE_2_XSAVEC, "XSAVEC");
   4846     if (PrData)
   4847       OS << format("<unknown flags: 0x%x>", PrData);
   4848     return OS.str();
   4849   case GNU_PROPERTY_X86_ISA_1_NEEDED:
   4850   case GNU_PROPERTY_X86_ISA_1_USED:
   4851     OS << "x86 ISA "
   4852        << (Type == GNU_PROPERTY_X86_ISA_1_NEEDED ? "needed: " : "used: ");
   4853     if (DataSize != 4) {
   4854       OS << format("<corrupt length: 0x%x>", DataSize);
   4855       return OS.str();
   4856     }
   4857     PrData = support::endian::read32<ELFT::TargetEndianness>(Data.data());
   4858     if (PrData == 0) {
   4859       OS << "<None>";
   4860       return OS.str();
   4861     }
   4862     DumpBit(GNU_PROPERTY_X86_ISA_1_BASELINE, "x86-64-baseline");
   4863     DumpBit(GNU_PROPERTY_X86_ISA_1_V2, "x86-64-v2");
   4864     DumpBit(GNU_PROPERTY_X86_ISA_1_V3, "x86-64-v3");
   4865     DumpBit(GNU_PROPERTY_X86_ISA_1_V4, "x86-64-v4");
   4866     if (PrData)
   4867       OS << format("<unknown flags: 0x%x>", PrData);
   4868     return OS.str();
   4869   }
   4870 }
   4871 
   4872 template <typename ELFT>
   4873 static SmallVector<std::string, 4> getGNUPropertyList(ArrayRef<uint8_t> Arr) {
   4874   using Elf_Word = typename ELFT::Word;
   4875 
   4876   SmallVector<std::string, 4> Properties;
   4877   while (Arr.size() >= 8) {
   4878     uint32_t Type = *reinterpret_cast<const Elf_Word *>(Arr.data());
   4879     uint32_t DataSize = *reinterpret_cast<const Elf_Word *>(Arr.data() + 4);
   4880     Arr = Arr.drop_front(8);
   4881 
   4882     // Take padding size into account if present.
   4883     uint64_t PaddedSize = alignTo(DataSize, sizeof(typename ELFT::uint));
   4884     std::string str;
   4885     raw_string_ostream OS(str);
   4886     if (Arr.size() < PaddedSize) {
   4887       OS << format("<corrupt type (0x%x) datasz: 0x%x>", Type, DataSize);
   4888       Properties.push_back(OS.str());
   4889       break;
   4890     }
   4891     Properties.push_back(
   4892         getGNUProperty<ELFT>(Type, DataSize, Arr.take_front(PaddedSize)));
   4893     Arr = Arr.drop_front(PaddedSize);
   4894   }
   4895 
   4896   if (!Arr.empty())
   4897     Properties.push_back("<corrupted GNU_PROPERTY_TYPE_0>");
   4898 
   4899   return Properties;
   4900 }
   4901 
   4902 struct GNUAbiTag {
   4903   std::string OSName;
   4904   std::string ABI;
   4905   bool IsValid;
   4906 };
   4907 
   4908 template <typename ELFT> static GNUAbiTag getGNUAbiTag(ArrayRef<uint8_t> Desc) {
   4909   typedef typename ELFT::Word Elf_Word;
   4910 
   4911   ArrayRef<Elf_Word> Words(reinterpret_cast<const Elf_Word *>(Desc.begin()),
   4912                            reinterpret_cast<const Elf_Word *>(Desc.end()));
   4913 
   4914   if (Words.size() < 4)
   4915     return {"", "", /*IsValid=*/false};
   4916 
   4917   static const char *OSNames[] = {
   4918       "Linux", "Hurd", "Solaris", "FreeBSD", "NetBSD", "Syllable", "NaCl",
   4919   };
   4920   StringRef OSName = "Unknown";
   4921   if (Words[0] < array_lengthof(OSNames))
   4922     OSName = OSNames[Words[0]];
   4923   uint32_t Major = Words[1], Minor = Words[2], Patch = Words[3];
   4924   std::string str;
   4925   raw_string_ostream ABI(str);
   4926   ABI << Major << "." << Minor << "." << Patch;
   4927   return {std::string(OSName), ABI.str(), /*IsValid=*/true};
   4928 }
   4929 
   4930 static std::string getGNUBuildId(ArrayRef<uint8_t> Desc) {
   4931   std::string str;
   4932   raw_string_ostream OS(str);
   4933   for (uint8_t B : Desc)
   4934     OS << format_hex_no_prefix(B, 2);
   4935   return OS.str();
   4936 }
   4937 
   4938 static StringRef getGNUGoldVersion(ArrayRef<uint8_t> Desc) {
   4939   return StringRef(reinterpret_cast<const char *>(Desc.data()), Desc.size());
   4940 }
   4941 
   4942 template <typename ELFT>
   4943 static bool printGNUNote(raw_ostream &OS, uint32_t NoteType,
   4944                          ArrayRef<uint8_t> Desc) {
   4945   // Return true if we were able to pretty-print the note, false otherwise.
   4946   switch (NoteType) {
   4947   default:
   4948     return false;
   4949   case ELF::NT_GNU_ABI_TAG: {
   4950     const GNUAbiTag &AbiTag = getGNUAbiTag<ELFT>(Desc);
   4951     if (!AbiTag.IsValid)
   4952       OS << "    <corrupt GNU_ABI_TAG>";
   4953     else
   4954       OS << "    OS: " << AbiTag.OSName << ", ABI: " << AbiTag.ABI;
   4955     break;
   4956   }
   4957   case ELF::NT_GNU_BUILD_ID: {
   4958     OS << "    Build ID: " << getGNUBuildId(Desc);
   4959     break;
   4960   }
   4961   case ELF::NT_GNU_GOLD_VERSION:
   4962     OS << "    Version: " << getGNUGoldVersion(Desc);
   4963     break;
   4964   case ELF::NT_GNU_PROPERTY_TYPE_0:
   4965     OS << "    Properties:";
   4966     for (const std::string &Property : getGNUPropertyList<ELFT>(Desc))
   4967       OS << "    " << Property << "\n";
   4968     break;
   4969   }
   4970   OS << '\n';
   4971   return true;
   4972 }
   4973 
   4974 static const EnumEntry<unsigned> FreeBSDFeatureCtlFlags[] = {
   4975     {"ASLR_DISABLE", NT_FREEBSD_FCTL_ASLR_DISABLE},
   4976     {"PROTMAX_DISABLE", NT_FREEBSD_FCTL_PROTMAX_DISABLE},
   4977     {"STKGAP_DISABLE", NT_FREEBSD_FCTL_STKGAP_DISABLE},
   4978     {"WXNEEDED", NT_FREEBSD_FCTL_WXNEEDED},
   4979     {"LA48", NT_FREEBSD_FCTL_LA48},
   4980     {"ASG_DISABLE", NT_FREEBSD_FCTL_ASG_DISABLE},
   4981 };
   4982 
   4983 struct FreeBSDNote {
   4984   std::string Type;
   4985   std::string Value;
   4986 };
   4987 
   4988 template <typename ELFT>
   4989 static Optional<FreeBSDNote>
   4990 getFreeBSDNote(uint32_t NoteType, ArrayRef<uint8_t> Desc, bool IsCore) {
   4991   if (IsCore)
   4992     return None; // No pretty-printing yet.
   4993   switch (NoteType) {
   4994   case ELF::NT_FREEBSD_ABI_TAG:
   4995     if (Desc.size() != 4)
   4996       return None;
   4997     return FreeBSDNote{
   4998         "ABI tag",
   4999         utostr(support::endian::read32<ELFT::TargetEndianness>(Desc.data()))};
   5000   case ELF::NT_FREEBSD_ARCH_TAG:
   5001     return FreeBSDNote{"Arch tag", toStringRef(Desc).str()};
   5002   case ELF::NT_FREEBSD_FEATURE_CTL: {
   5003     if (Desc.size() != 4)
   5004       return None;
   5005     unsigned Value =
   5006         support::endian::read32<ELFT::TargetEndianness>(Desc.data());
   5007     std::string FlagsStr;
   5008     raw_string_ostream OS(FlagsStr);
   5009     printFlags(Value, makeArrayRef(FreeBSDFeatureCtlFlags), OS);
   5010     if (OS.str().empty())
   5011       OS << "0x" << utohexstr(Value);
   5012     else
   5013       OS << "(0x" << utohexstr(Value) << ")";
   5014     return FreeBSDNote{"Feature flags", OS.str()};
   5015   }
   5016   default:
   5017     return None;
   5018   }
   5019 }
   5020 
   5021 struct AMDNote {
   5022   std::string Type;
   5023   std::string Value;
   5024 };
   5025 
   5026 template <typename ELFT>
   5027 static AMDNote getAMDNote(uint32_t NoteType, ArrayRef<uint8_t> Desc) {
   5028   switch (NoteType) {
   5029   default:
   5030     return {"", ""};
   5031   case ELF::NT_AMD_HSA_CODE_OBJECT_VERSION: {
   5032     struct CodeObjectVersion {
   5033       uint32_t MajorVersion;
   5034       uint32_t MinorVersion;
   5035     };
   5036     if (Desc.size() != sizeof(CodeObjectVersion))
   5037       return {"AMD HSA Code Object Version",
   5038               "Invalid AMD HSA Code Object Version"};
   5039     std::string VersionString;
   5040     raw_string_ostream StrOS(VersionString);
   5041     auto Version = reinterpret_cast<const CodeObjectVersion *>(Desc.data());
   5042     StrOS << "[Major: " << Version->MajorVersion
   5043           << ", Minor: " << Version->MinorVersion << "]";
   5044     return {"AMD HSA Code Object Version", VersionString};
   5045   }
   5046   case ELF::NT_AMD_HSA_HSAIL: {
   5047     struct HSAILProperties {
   5048       uint32_t HSAILMajorVersion;
   5049       uint32_t HSAILMinorVersion;
   5050       uint8_t Profile;
   5051       uint8_t MachineModel;
   5052       uint8_t DefaultFloatRound;
   5053     };
   5054     if (Desc.size() != sizeof(HSAILProperties))
   5055       return {"AMD HSA HSAIL Properties", "Invalid AMD HSA HSAIL Properties"};
   5056     auto Properties = reinterpret_cast<const HSAILProperties *>(Desc.data());
   5057     std::string HSAILPropetiesString;
   5058     raw_string_ostream StrOS(HSAILPropetiesString);
   5059     StrOS << "[HSAIL Major: " << Properties->HSAILMajorVersion
   5060           << ", HSAIL Minor: " << Properties->HSAILMinorVersion
   5061           << ", Profile: " << uint32_t(Properties->Profile)
   5062           << ", Machine Model: " << uint32_t(Properties->MachineModel)
   5063           << ", Default Float Round: "
   5064           << uint32_t(Properties->DefaultFloatRound) << "]";
   5065     return {"AMD HSA HSAIL Properties", HSAILPropetiesString};
   5066   }
   5067   case ELF::NT_AMD_HSA_ISA_VERSION: {
   5068     struct IsaVersion {
   5069       uint16_t VendorNameSize;
   5070       uint16_t ArchitectureNameSize;
   5071       uint32_t Major;
   5072       uint32_t Minor;
   5073       uint32_t Stepping;
   5074     };
   5075     if (Desc.size() < sizeof(IsaVersion))
   5076       return {"AMD HSA ISA Version", "Invalid AMD HSA ISA Version"};
   5077     auto Isa = reinterpret_cast<const IsaVersion *>(Desc.data());
   5078     if (Desc.size() < sizeof(IsaVersion) +
   5079                           Isa->VendorNameSize + Isa->ArchitectureNameSize ||
   5080         Isa->VendorNameSize == 0 || Isa->ArchitectureNameSize == 0)
   5081       return {"AMD HSA ISA Version", "Invalid AMD HSA ISA Version"};
   5082     std::string IsaString;
   5083     raw_string_ostream StrOS(IsaString);
   5084     StrOS << "[Vendor: "
   5085           << StringRef((const char*)Desc.data() + sizeof(IsaVersion), Isa->VendorNameSize - 1)
   5086           << ", Architecture: "
   5087           << StringRef((const char*)Desc.data() + sizeof(IsaVersion) + Isa->VendorNameSize,
   5088                        Isa->ArchitectureNameSize - 1)
   5089           << ", Major: " << Isa->Major << ", Minor: " << Isa->Minor
   5090           << ", Stepping: " << Isa->Stepping << "]";
   5091     return {"AMD HSA ISA Version", IsaString};
   5092   }
   5093   case ELF::NT_AMD_HSA_METADATA: {
   5094     if (Desc.size() == 0)
   5095       return {"AMD HSA Metadata", ""};
   5096     return {
   5097         "AMD HSA Metadata",
   5098         std::string(reinterpret_cast<const char *>(Desc.data()), Desc.size() - 1)};
   5099   }
   5100   case ELF::NT_AMD_HSA_ISA_NAME: {
   5101     if (Desc.size() == 0)
   5102       return {"AMD HSA ISA Name", ""};
   5103     return {
   5104         "AMD HSA ISA Name",
   5105         std::string(reinterpret_cast<const char *>(Desc.data()), Desc.size())};
   5106   }
   5107   case ELF::NT_AMD_PAL_METADATA: {
   5108     struct PALMetadata {
   5109       uint32_t Key;
   5110       uint32_t Value;
   5111     };
   5112     if (Desc.size() % sizeof(PALMetadata) != 0)
   5113       return {"AMD PAL Metadata", "Invalid AMD PAL Metadata"};
   5114     auto Isa = reinterpret_cast<const PALMetadata *>(Desc.data());
   5115     std::string MetadataString;
   5116     raw_string_ostream StrOS(MetadataString);
   5117     for (size_t I = 0, E = Desc.size() / sizeof(PALMetadata); I < E; ++I) {
   5118       StrOS << "[" << Isa[I].Key << ": " << Isa[I].Value << "]";
   5119     }
   5120     return {"AMD PAL Metadata", MetadataString};
   5121   }
   5122   }
   5123 }
   5124 
   5125 struct AMDGPUNote {
   5126   std::string Type;
   5127   std::string Value;
   5128 };
   5129 
   5130 template <typename ELFT>
   5131 static AMDGPUNote getAMDGPUNote(uint32_t NoteType, ArrayRef<uint8_t> Desc) {
   5132   switch (NoteType) {
   5133   default:
   5134     return {"", ""};
   5135   case ELF::NT_AMDGPU_METADATA: {
   5136     StringRef MsgPackString =
   5137         StringRef(reinterpret_cast<const char *>(Desc.data()), Desc.size());
   5138     msgpack::Document MsgPackDoc;
   5139     if (!MsgPackDoc.readFromBlob(MsgPackString, /*Multi=*/false))
   5140       return {"", ""};
   5141 
   5142     AMDGPU::HSAMD::V3::MetadataVerifier Verifier(true);
   5143     std::string MetadataString;
   5144     if (!Verifier.verify(MsgPackDoc.getRoot()))
   5145       MetadataString = "Invalid AMDGPU Metadata\n";
   5146 
   5147     raw_string_ostream StrOS(MetadataString);
   5148     if (MsgPackDoc.getRoot().isScalar()) {
   5149       // TODO: passing a scalar root to toYAML() asserts:
   5150       // (PolymorphicTraits<T>::getKind(Val) != NodeKind::Scalar &&
   5151       //    "plain scalar documents are not supported")
   5152       // To avoid this crash we print the raw data instead.
   5153       return {"", ""};
   5154     }
   5155     MsgPackDoc.toYAML(StrOS);
   5156     return {"AMDGPU Metadata", StrOS.str()};
   5157   }
   5158   }
   5159 }
   5160 
   5161 struct CoreFileMapping {
   5162   uint64_t Start, End, Offset;
   5163   StringRef Filename;
   5164 };
   5165 
   5166 struct CoreNote {
   5167   uint64_t PageSize;
   5168   std::vector<CoreFileMapping> Mappings;
   5169 };
   5170 
   5171 static Expected<CoreNote> readCoreNote(DataExtractor Desc) {
   5172   // Expected format of the NT_FILE note description:
   5173   // 1. # of file mappings (call it N)
   5174   // 2. Page size
   5175   // 3. N (start, end, offset) triples
   5176   // 4. N packed filenames (null delimited)
   5177   // Each field is an Elf_Addr, except for filenames which are char* strings.
   5178 
   5179   CoreNote Ret;
   5180   const int Bytes = Desc.getAddressSize();
   5181 
   5182   if (!Desc.isValidOffsetForAddress(2))
   5183     return createError("the note of size 0x" + Twine::utohexstr(Desc.size()) +
   5184                        " is too short, expected at least 0x" +
   5185                        Twine::utohexstr(Bytes * 2));
   5186   if (Desc.getData().back() != 0)
   5187     return createError("the note is not NUL terminated");
   5188 
   5189   uint64_t DescOffset = 0;
   5190   uint64_t FileCount = Desc.getAddress(&DescOffset);
   5191   Ret.PageSize = Desc.getAddress(&DescOffset);
   5192 
   5193   if (!Desc.isValidOffsetForAddress(3 * FileCount * Bytes))
   5194     return createError("unable to read file mappings (found " +
   5195                        Twine(FileCount) + "): the note of size 0x" +
   5196                        Twine::utohexstr(Desc.size()) + " is too short");
   5197 
   5198   uint64_t FilenamesOffset = 0;
   5199   DataExtractor Filenames(
   5200       Desc.getData().drop_front(DescOffset + 3 * FileCount * Bytes),
   5201       Desc.isLittleEndian(), Desc.getAddressSize());
   5202 
   5203   Ret.Mappings.resize(FileCount);
   5204   size_t I = 0;
   5205   for (CoreFileMapping &Mapping : Ret.Mappings) {
   5206     ++I;
   5207     if (!Filenames.isValidOffsetForDataOfSize(FilenamesOffset, 1))
   5208       return createError(
   5209           "unable to read the file name for the mapping with index " +
   5210           Twine(I) + ": the note of size 0x" + Twine::utohexstr(Desc.size()) +
   5211           " is truncated");
   5212     Mapping.Start = Desc.getAddress(&DescOffset);
   5213     Mapping.End = Desc.getAddress(&DescOffset);
   5214     Mapping.Offset = Desc.getAddress(&DescOffset);
   5215     Mapping.Filename = Filenames.getCStrRef(&FilenamesOffset);
   5216   }
   5217 
   5218   return Ret;
   5219 }
   5220 
   5221 template <typename ELFT>
   5222 static void printCoreNote(raw_ostream &OS, const CoreNote &Note) {
   5223   // Length of "0x<address>" string.
   5224   const int FieldWidth = ELFT::Is64Bits ? 18 : 10;
   5225 
   5226   OS << "    Page size: " << format_decimal(Note.PageSize, 0) << '\n';
   5227   OS << "    " << right_justify("Start", FieldWidth) << "  "
   5228      << right_justify("End", FieldWidth) << "  "
   5229      << right_justify("Page Offset", FieldWidth) << '\n';
   5230   for (const CoreFileMapping &Mapping : Note.Mappings) {
   5231     OS << "    " << format_hex(Mapping.Start, FieldWidth) << "  "
   5232        << format_hex(Mapping.End, FieldWidth) << "  "
   5233        << format_hex(Mapping.Offset, FieldWidth) << "\n        "
   5234        << Mapping.Filename << '\n';
   5235   }
   5236 }
   5237 
   5238 static const NoteType GenericNoteTypes[] = {
   5239     {ELF::NT_VERSION, "NT_VERSION (version)"},
   5240     {ELF::NT_ARCH, "NT_ARCH (architecture)"},
   5241     {ELF::NT_GNU_BUILD_ATTRIBUTE_OPEN, "OPEN"},
   5242     {ELF::NT_GNU_BUILD_ATTRIBUTE_FUNC, "func"},
   5243 };
   5244 
   5245 static const NoteType GNUNoteTypes[] = {
   5246     {ELF::NT_GNU_ABI_TAG, "NT_GNU_ABI_TAG (ABI version tag)"},
   5247     {ELF::NT_GNU_HWCAP, "NT_GNU_HWCAP (DSO-supplied software HWCAP info)"},
   5248     {ELF::NT_GNU_BUILD_ID, "NT_GNU_BUILD_ID (unique build ID bitstring)"},
   5249     {ELF::NT_GNU_GOLD_VERSION, "NT_GNU_GOLD_VERSION (gold version)"},
   5250     {ELF::NT_GNU_PROPERTY_TYPE_0, "NT_GNU_PROPERTY_TYPE_0 (property note)"},
   5251 };
   5252 
   5253 static const NoteType FreeBSDCoreNoteTypes[] = {
   5254     {ELF::NT_FREEBSD_THRMISC, "NT_THRMISC (thrmisc structure)"},
   5255     {ELF::NT_FREEBSD_PROCSTAT_PROC, "NT_PROCSTAT_PROC (proc data)"},
   5256     {ELF::NT_FREEBSD_PROCSTAT_FILES, "NT_PROCSTAT_FILES (files data)"},
   5257     {ELF::NT_FREEBSD_PROCSTAT_VMMAP, "NT_PROCSTAT_VMMAP (vmmap data)"},
   5258     {ELF::NT_FREEBSD_PROCSTAT_GROUPS, "NT_PROCSTAT_GROUPS (groups data)"},
   5259     {ELF::NT_FREEBSD_PROCSTAT_UMASK, "NT_PROCSTAT_UMASK (umask data)"},
   5260     {ELF::NT_FREEBSD_PROCSTAT_RLIMIT, "NT_PROCSTAT_RLIMIT (rlimit data)"},
   5261     {ELF::NT_FREEBSD_PROCSTAT_OSREL, "NT_PROCSTAT_OSREL (osreldate data)"},
   5262     {ELF::NT_FREEBSD_PROCSTAT_PSSTRINGS,
   5263      "NT_PROCSTAT_PSSTRINGS (ps_strings data)"},
   5264     {ELF::NT_FREEBSD_PROCSTAT_AUXV, "NT_PROCSTAT_AUXV (auxv data)"},
   5265 };
   5266 
   5267 static const NoteType FreeBSDNoteTypes[] = {
   5268     {ELF::NT_FREEBSD_ABI_TAG, "NT_FREEBSD_ABI_TAG (ABI version tag)"},
   5269     {ELF::NT_FREEBSD_NOINIT_TAG, "NT_FREEBSD_NOINIT_TAG (no .init tag)"},
   5270     {ELF::NT_FREEBSD_ARCH_TAG, "NT_FREEBSD_ARCH_TAG (architecture tag)"},
   5271     {ELF::NT_FREEBSD_FEATURE_CTL,
   5272      "NT_FREEBSD_FEATURE_CTL (FreeBSD feature control)"},
   5273 };
   5274 
   5275 static const NoteType AMDNoteTypes[] = {
   5276     {ELF::NT_AMD_HSA_CODE_OBJECT_VERSION,
   5277      "NT_AMD_HSA_CODE_OBJECT_VERSION (AMD HSA Code Object Version)"},
   5278     {ELF::NT_AMD_HSA_HSAIL, "NT_AMD_HSA_HSAIL (AMD HSA HSAIL Properties)"},
   5279     {ELF::NT_AMD_HSA_ISA_VERSION, "NT_AMD_HSA_ISA_VERSION (AMD HSA ISA Version)"},
   5280     {ELF::NT_AMD_HSA_METADATA, "NT_AMD_HSA_METADATA (AMD HSA Metadata)"},
   5281     {ELF::NT_AMD_HSA_ISA_NAME, "NT_AMD_HSA_ISA_NAME (AMD HSA ISA Name)"},
   5282     {ELF::NT_AMD_PAL_METADATA, "NT_AMD_PAL_METADATA (AMD PAL Metadata)"},
   5283 };
   5284 
   5285 static const NoteType AMDGPUNoteTypes[] = {
   5286     {ELF::NT_AMDGPU_METADATA, "NT_AMDGPU_METADATA (AMDGPU Metadata)"},
   5287 };
   5288 
   5289 static const NoteType CoreNoteTypes[] = {
   5290     {ELF::NT_PRSTATUS, "NT_PRSTATUS (prstatus structure)"},
   5291     {ELF::NT_FPREGSET, "NT_FPREGSET (floating point registers)"},
   5292     {ELF::NT_PRPSINFO, "NT_PRPSINFO (prpsinfo structure)"},
   5293     {ELF::NT_TASKSTRUCT, "NT_TASKSTRUCT (task structure)"},
   5294     {ELF::NT_AUXV, "NT_AUXV (auxiliary vector)"},
   5295     {ELF::NT_PSTATUS, "NT_PSTATUS (pstatus structure)"},
   5296     {ELF::NT_FPREGS, "NT_FPREGS (floating point registers)"},
   5297     {ELF::NT_PSINFO, "NT_PSINFO (psinfo structure)"},
   5298     {ELF::NT_LWPSTATUS, "NT_LWPSTATUS (lwpstatus_t structure)"},
   5299     {ELF::NT_LWPSINFO, "NT_LWPSINFO (lwpsinfo_t structure)"},
   5300     {ELF::NT_WIN32PSTATUS, "NT_WIN32PSTATUS (win32_pstatus structure)"},
   5301 
   5302     {ELF::NT_PPC_VMX, "NT_PPC_VMX (ppc Altivec registers)"},
   5303     {ELF::NT_PPC_VSX, "NT_PPC_VSX (ppc VSX registers)"},
   5304     {ELF::NT_PPC_TAR, "NT_PPC_TAR (ppc TAR register)"},
   5305     {ELF::NT_PPC_PPR, "NT_PPC_PPR (ppc PPR register)"},
   5306     {ELF::NT_PPC_DSCR, "NT_PPC_DSCR (ppc DSCR register)"},
   5307     {ELF::NT_PPC_EBB, "NT_PPC_EBB (ppc EBB registers)"},
   5308     {ELF::NT_PPC_PMU, "NT_PPC_PMU (ppc PMU registers)"},
   5309     {ELF::NT_PPC_TM_CGPR, "NT_PPC_TM_CGPR (ppc checkpointed GPR registers)"},
   5310     {ELF::NT_PPC_TM_CFPR,
   5311      "NT_PPC_TM_CFPR (ppc checkpointed floating point registers)"},
   5312     {ELF::NT_PPC_TM_CVMX,
   5313      "NT_PPC_TM_CVMX (ppc checkpointed Altivec registers)"},
   5314     {ELF::NT_PPC_TM_CVSX, "NT_PPC_TM_CVSX (ppc checkpointed VSX registers)"},
   5315     {ELF::NT_PPC_TM_SPR, "NT_PPC_TM_SPR (ppc TM special purpose registers)"},
   5316     {ELF::NT_PPC_TM_CTAR, "NT_PPC_TM_CTAR (ppc checkpointed TAR register)"},
   5317     {ELF::NT_PPC_TM_CPPR, "NT_PPC_TM_CPPR (ppc checkpointed PPR register)"},
   5318     {ELF::NT_PPC_TM_CDSCR, "NT_PPC_TM_CDSCR (ppc checkpointed DSCR register)"},
   5319 
   5320     {ELF::NT_386_TLS, "NT_386_TLS (x86 TLS information)"},
   5321     {ELF::NT_386_IOPERM, "NT_386_IOPERM (x86 I/O permissions)"},
   5322     {ELF::NT_X86_XSTATE, "NT_X86_XSTATE (x86 XSAVE extended state)"},
   5323 
   5324     {ELF::NT_S390_HIGH_GPRS, "NT_S390_HIGH_GPRS (s390 upper register halves)"},
   5325     {ELF::NT_S390_TIMER, "NT_S390_TIMER (s390 timer register)"},
   5326     {ELF::NT_S390_TODCMP, "NT_S390_TODCMP (s390 TOD comparator register)"},
   5327     {ELF::NT_S390_TODPREG, "NT_S390_TODPREG (s390 TOD programmable register)"},
   5328     {ELF::NT_S390_CTRS, "NT_S390_CTRS (s390 control registers)"},
   5329     {ELF::NT_S390_PREFIX, "NT_S390_PREFIX (s390 prefix register)"},
   5330     {ELF::NT_S390_LAST_BREAK,
   5331      "NT_S390_LAST_BREAK (s390 last breaking event address)"},
   5332     {ELF::NT_S390_SYSTEM_CALL,
   5333      "NT_S390_SYSTEM_CALL (s390 system call restart data)"},
   5334     {ELF::NT_S390_TDB, "NT_S390_TDB (s390 transaction diagnostic block)"},
   5335     {ELF::NT_S390_VXRS_LOW,
   5336      "NT_S390_VXRS_LOW (s390 vector registers 0-15 upper half)"},
   5337     {ELF::NT_S390_VXRS_HIGH, "NT_S390_VXRS_HIGH (s390 vector registers 16-31)"},
   5338     {ELF::NT_S390_GS_CB, "NT_S390_GS_CB (s390 guarded-storage registers)"},
   5339     {ELF::NT_S390_GS_BC,
   5340      "NT_S390_GS_BC (s390 guarded-storage broadcast control)"},
   5341 
   5342     {ELF::NT_ARM_VFP, "NT_ARM_VFP (arm VFP registers)"},
   5343     {ELF::NT_ARM_TLS, "NT_ARM_TLS (AArch TLS registers)"},
   5344     {ELF::NT_ARM_HW_BREAK,
   5345      "NT_ARM_HW_BREAK (AArch hardware breakpoint registers)"},
   5346     {ELF::NT_ARM_HW_WATCH,
   5347      "NT_ARM_HW_WATCH (AArch hardware watchpoint registers)"},
   5348 
   5349     {ELF::NT_FILE, "NT_FILE (mapped files)"},
   5350     {ELF::NT_PRXFPREG, "NT_PRXFPREG (user_xfpregs structure)"},
   5351     {ELF::NT_SIGINFO, "NT_SIGINFO (siginfo_t data)"},
   5352 };
   5353 
   5354 template <class ELFT>
   5355 StringRef getNoteTypeName(const typename ELFT::Note &Note, unsigned ELFType) {
   5356   uint32_t Type = Note.getType();
   5357   auto FindNote = [&](ArrayRef<NoteType> V) -> StringRef {
   5358     for (const NoteType &N : V)
   5359       if (N.ID == Type)
   5360         return N.Name;
   5361     return "";
   5362   };
   5363 
   5364   StringRef Name = Note.getName();
   5365   if (Name == "GNU")
   5366     return FindNote(GNUNoteTypes);
   5367   if (Name == "FreeBSD") {
   5368     if (ELFType == ELF::ET_CORE) {
   5369       // FreeBSD also places the generic core notes in the FreeBSD namespace.
   5370       StringRef Result = FindNote(FreeBSDCoreNoteTypes);
   5371       if (!Result.empty())
   5372         return Result;
   5373       return FindNote(CoreNoteTypes);
   5374     } else {
   5375       return FindNote(FreeBSDNoteTypes);
   5376     }
   5377   }
   5378   if (Name == "AMD")
   5379     return FindNote(AMDNoteTypes);
   5380   if (Name == "AMDGPU")
   5381     return FindNote(AMDGPUNoteTypes);
   5382 
   5383   if (ELFType == ELF::ET_CORE)
   5384     return FindNote(CoreNoteTypes);
   5385   return FindNote(GenericNoteTypes);
   5386 }
   5387 
   5388 template <class ELFT>
   5389 static void printNotesHelper(
   5390     const ELFDumper<ELFT> &Dumper,
   5391     llvm::function_ref<void(Optional<StringRef>, typename ELFT::Off,
   5392                             typename ELFT::Addr)>
   5393         StartNotesFn,
   5394     llvm::function_ref<Error(const typename ELFT::Note &, bool)> ProcessNoteFn,
   5395     llvm::function_ref<void()> FinishNotesFn) {
   5396   const ELFFile<ELFT> &Obj = Dumper.getElfObject().getELFFile();
   5397   bool IsCoreFile = Obj.getHeader().e_type == ELF::ET_CORE;
   5398 
   5399   ArrayRef<typename ELFT::Shdr> Sections = cantFail(Obj.sections());
   5400   if (!IsCoreFile && !Sections.empty()) {
   5401     for (const typename ELFT::Shdr &S : Sections) {
   5402       if (S.sh_type != SHT_NOTE)
   5403         continue;
   5404       StartNotesFn(expectedToOptional(Obj.getSectionName(S)), S.sh_offset,
   5405                    S.sh_size);
   5406       Error Err = Error::success();
   5407       size_t I = 0;
   5408       for (const typename ELFT::Note Note : Obj.notes(S, Err)) {
   5409         if (Error E = ProcessNoteFn(Note, IsCoreFile))
   5410           Dumper.reportUniqueWarning(
   5411               "unable to read note with index " + Twine(I) + " from the " +
   5412               describe(Obj, S) + ": " + toString(std::move(E)));
   5413         ++I;
   5414       }
   5415       if (Err)
   5416         Dumper.reportUniqueWarning("unable to read notes from the " +
   5417                                    describe(Obj, S) + ": " +
   5418                                    toString(std::move(Err)));
   5419       FinishNotesFn();
   5420     }
   5421     return;
   5422   }
   5423 
   5424   Expected<ArrayRef<typename ELFT::Phdr>> PhdrsOrErr = Obj.program_headers();
   5425   if (!PhdrsOrErr) {
   5426     Dumper.reportUniqueWarning(
   5427         "unable to read program headers to locate the PT_NOTE segment: " +
   5428         toString(PhdrsOrErr.takeError()));
   5429     return;
   5430   }
   5431 
   5432   for (size_t I = 0, E = (*PhdrsOrErr).size(); I != E; ++I) {
   5433     const typename ELFT::Phdr &P = (*PhdrsOrErr)[I];
   5434     if (P.p_type != PT_NOTE)
   5435       continue;
   5436     StartNotesFn(/*SecName=*/None, P.p_offset, P.p_filesz);
   5437     Error Err = Error::success();
   5438     size_t Index = 0;
   5439     for (const typename ELFT::Note Note : Obj.notes(P, Err)) {
   5440       if (Error E = ProcessNoteFn(Note, IsCoreFile))
   5441         Dumper.reportUniqueWarning("unable to read note with index " +
   5442                                    Twine(Index) +
   5443                                    " from the PT_NOTE segment with index " +
   5444                                    Twine(I) + ": " + toString(std::move(E)));
   5445       ++Index;
   5446     }
   5447     if (Err)
   5448       Dumper.reportUniqueWarning(
   5449           "unable to read notes from the PT_NOTE segment with index " +
   5450           Twine(I) + ": " + toString(std::move(Err)));
   5451     FinishNotesFn();
   5452   }
   5453 }
   5454 
   5455 template <class ELFT> void GNUELFDumper<ELFT>::printNotes() {
   5456   bool IsFirstHeader = true;
   5457   auto PrintHeader = [&](Optional<StringRef> SecName,
   5458                          const typename ELFT::Off Offset,
   5459                          const typename ELFT::Addr Size) {
   5460     // Print a newline between notes sections to match GNU readelf.
   5461     if (!IsFirstHeader) {
   5462       OS << '\n';
   5463     } else {
   5464       IsFirstHeader = false;
   5465     }
   5466 
   5467     OS << "Displaying notes found ";
   5468 
   5469     if (SecName)
   5470       OS << "in: " << *SecName << "\n";
   5471     else
   5472       OS << "at file offset " << format_hex(Offset, 10) << " with length "
   5473          << format_hex(Size, 10) << ":\n";
   5474 
   5475     OS << "  Owner                Data size \tDescription\n";
   5476   };
   5477 
   5478   auto ProcessNote = [&](const Elf_Note &Note, bool IsCore) -> Error {
   5479     StringRef Name = Note.getName();
   5480     ArrayRef<uint8_t> Descriptor = Note.getDesc();
   5481     Elf_Word Type = Note.getType();
   5482 
   5483     // Print the note owner/type.
   5484     OS << "  " << left_justify(Name, 20) << ' '
   5485        << format_hex(Descriptor.size(), 10) << '\t';
   5486 
   5487     StringRef NoteType =
   5488         getNoteTypeName<ELFT>(Note, this->Obj.getHeader().e_type);
   5489     if (!NoteType.empty())
   5490       OS << NoteType << '\n';
   5491     else
   5492       OS << "Unknown note type: (" << format_hex(Type, 10) << ")\n";
   5493 
   5494     // Print the description, or fallback to printing raw bytes for unknown
   5495     // owners/if we fail to pretty-print the contents.
   5496     if (Name == "GNU") {
   5497       if (printGNUNote<ELFT>(OS, Type, Descriptor))
   5498         return Error::success();
   5499     } else if (Name == "FreeBSD") {
   5500       if (Optional<FreeBSDNote> N =
   5501               getFreeBSDNote<ELFT>(Type, Descriptor, IsCore)) {
   5502         OS << "    " << N->Type << ": " << N->Value << '\n';
   5503         return Error::success();
   5504       }
   5505     } else if (Name == "AMD") {
   5506       const AMDNote N = getAMDNote<ELFT>(Type, Descriptor);
   5507       if (!N.Type.empty()) {
   5508         OS << "    " << N.Type << ":\n        " << N.Value << '\n';
   5509         return Error::success();
   5510       }
   5511     } else if (Name == "AMDGPU") {
   5512       const AMDGPUNote N = getAMDGPUNote<ELFT>(Type, Descriptor);
   5513       if (!N.Type.empty()) {
   5514         OS << "    " << N.Type << ":\n        " << N.Value << '\n';
   5515         return Error::success();
   5516       }
   5517     } else if (Name == "CORE") {
   5518       if (Type == ELF::NT_FILE) {
   5519         DataExtractor DescExtractor(Descriptor,
   5520                                     ELFT::TargetEndianness == support::little,
   5521                                     sizeof(Elf_Addr));
   5522         if (Expected<CoreNote> NoteOrErr = readCoreNote(DescExtractor)) {
   5523           printCoreNote<ELFT>(OS, *NoteOrErr);
   5524           return Error::success();
   5525         } else {
   5526           return NoteOrErr.takeError();
   5527         }
   5528       }
   5529     }
   5530     if (!Descriptor.empty()) {
   5531       OS << "   description data:";
   5532       for (uint8_t B : Descriptor)
   5533         OS << " " << format("%02x", B);
   5534       OS << '\n';
   5535     }
   5536     return Error::success();
   5537   };
   5538 
   5539   printNotesHelper(*this, PrintHeader, ProcessNote, []() {});
   5540 }
   5541 
   5542 template <class ELFT> void GNUELFDumper<ELFT>::printELFLinkerOptions() {
   5543   OS << "printELFLinkerOptions not implemented!\n";
   5544 }
   5545 
   5546 template <class ELFT>
   5547 void ELFDumper<ELFT>::printDependentLibsHelper(
   5548     function_ref<void(const Elf_Shdr &)> OnSectionStart,
   5549     function_ref<void(StringRef, uint64_t)> OnLibEntry) {
   5550   auto Warn = [this](unsigned SecNdx, StringRef Msg) {
   5551     this->reportUniqueWarning("SHT_LLVM_DEPENDENT_LIBRARIES section at index " +
   5552                               Twine(SecNdx) + " is broken: " + Msg);
   5553   };
   5554 
   5555   unsigned I = -1;
   5556   for (const Elf_Shdr &Shdr : cantFail(Obj.sections())) {
   5557     ++I;
   5558     if (Shdr.sh_type != ELF::SHT_LLVM_DEPENDENT_LIBRARIES)
   5559       continue;
   5560 
   5561     OnSectionStart(Shdr);
   5562 
   5563     Expected<ArrayRef<uint8_t>> ContentsOrErr = Obj.getSectionContents(Shdr);
   5564     if (!ContentsOrErr) {
   5565       Warn(I, toString(ContentsOrErr.takeError()));
   5566       continue;
   5567     }
   5568 
   5569     ArrayRef<uint8_t> Contents = *ContentsOrErr;
   5570     if (!Contents.empty() && Contents.back() != 0) {
   5571       Warn(I, "the content is not null-terminated");
   5572       continue;
   5573     }
   5574 
   5575     for (const uint8_t *I = Contents.begin(), *E = Contents.end(); I < E;) {
   5576       StringRef Lib((const char *)I);
   5577       OnLibEntry(Lib, I - Contents.begin());
   5578       I += Lib.size() + 1;
   5579     }
   5580   }
   5581 }
   5582 
   5583 template <class ELFT>
   5584 void ELFDumper<ELFT>::forEachRelocationDo(
   5585     const Elf_Shdr &Sec, bool RawRelr,
   5586     llvm::function_ref<void(const Relocation<ELFT> &, unsigned,
   5587                             const Elf_Shdr &, const Elf_Shdr *)>
   5588         RelRelaFn,
   5589     llvm::function_ref<void(const Elf_Relr &)> RelrFn) {
   5590   auto Warn = [&](Error &&E,
   5591                   const Twine &Prefix = "unable to read relocations from") {
   5592     this->reportUniqueWarning(Prefix + " " + describe(Sec) + ": " +
   5593                               toString(std::move(E)));
   5594   };
   5595 
   5596   // SHT_RELR/SHT_ANDROID_RELR sections do not have an associated symbol table.
   5597   // For them we should not treat the value of the sh_link field as an index of
   5598   // a symbol table.
   5599   const Elf_Shdr *SymTab;
   5600   if (Sec.sh_type != ELF::SHT_RELR && Sec.sh_type != ELF::SHT_ANDROID_RELR) {
   5601     Expected<const Elf_Shdr *> SymTabOrErr = Obj.getSection(Sec.sh_link);
   5602     if (!SymTabOrErr) {
   5603       Warn(SymTabOrErr.takeError(), "unable to locate a symbol table for");
   5604       return;
   5605     }
   5606     SymTab = *SymTabOrErr;
   5607   }
   5608 
   5609   unsigned RelNdx = 0;
   5610   const bool IsMips64EL = this->Obj.isMips64EL();
   5611   switch (Sec.sh_type) {
   5612   case ELF::SHT_REL:
   5613     if (Expected<Elf_Rel_Range> RangeOrErr = Obj.rels(Sec)) {
   5614       for (const Elf_Rel &R : *RangeOrErr)
   5615         RelRelaFn(Relocation<ELFT>(R, IsMips64EL), RelNdx++, Sec, SymTab);
   5616     } else {
   5617       Warn(RangeOrErr.takeError());
   5618     }
   5619     break;
   5620   case ELF::SHT_RELA:
   5621     if (Expected<Elf_Rela_Range> RangeOrErr = Obj.relas(Sec)) {
   5622       for (const Elf_Rela &R : *RangeOrErr)
   5623         RelRelaFn(Relocation<ELFT>(R, IsMips64EL), RelNdx++, Sec, SymTab);
   5624     } else {
   5625       Warn(RangeOrErr.takeError());
   5626     }
   5627     break;
   5628   case ELF::SHT_RELR:
   5629   case ELF::SHT_ANDROID_RELR: {
   5630     Expected<Elf_Relr_Range> RangeOrErr = Obj.relrs(Sec);
   5631     if (!RangeOrErr) {
   5632       Warn(RangeOrErr.takeError());
   5633       break;
   5634     }
   5635     if (RawRelr) {
   5636       for (const Elf_Relr &R : *RangeOrErr)
   5637         RelrFn(R);
   5638       break;
   5639     }
   5640 
   5641     for (const Elf_Rel &R : Obj.decode_relrs(*RangeOrErr))
   5642       RelRelaFn(Relocation<ELFT>(R, IsMips64EL), RelNdx++, Sec,
   5643                 /*SymTab=*/nullptr);
   5644     break;
   5645   }
   5646   case ELF::SHT_ANDROID_REL:
   5647   case ELF::SHT_ANDROID_RELA:
   5648     if (Expected<std::vector<Elf_Rela>> RelasOrErr = Obj.android_relas(Sec)) {
   5649       for (const Elf_Rela &R : *RelasOrErr)
   5650         RelRelaFn(Relocation<ELFT>(R, IsMips64EL), RelNdx++, Sec, SymTab);
   5651     } else {
   5652       Warn(RelasOrErr.takeError());
   5653     }
   5654     break;
   5655   }
   5656 }
   5657 
   5658 template <class ELFT>
   5659 StringRef ELFDumper<ELFT>::getPrintableSectionName(const Elf_Shdr &Sec) const {
   5660   StringRef Name = "<?>";
   5661   if (Expected<StringRef> SecNameOrErr =
   5662           Obj.getSectionName(Sec, this->WarningHandler))
   5663     Name = *SecNameOrErr;
   5664   else
   5665     this->reportUniqueWarning("unable to get the name of " + describe(Sec) +
   5666                               ": " + toString(SecNameOrErr.takeError()));
   5667   return Name;
   5668 }
   5669 
   5670 template <class ELFT> void GNUELFDumper<ELFT>::printDependentLibs() {
   5671   bool SectionStarted = false;
   5672   struct NameOffset {
   5673     StringRef Name;
   5674     uint64_t Offset;
   5675   };
   5676   std::vector<NameOffset> SecEntries;
   5677   NameOffset Current;
   5678   auto PrintSection = [&]() {
   5679     OS << "Dependent libraries section " << Current.Name << " at offset "
   5680        << format_hex(Current.Offset, 1) << " contains " << SecEntries.size()
   5681        << " entries:\n";
   5682     for (NameOffset Entry : SecEntries)
   5683       OS << "  [" << format("%6" PRIx64, Entry.Offset) << "]  " << Entry.Name
   5684          << "\n";
   5685     OS << "\n";
   5686     SecEntries.clear();
   5687   };
   5688 
   5689   auto OnSectionStart = [&](const Elf_Shdr &Shdr) {
   5690     if (SectionStarted)
   5691       PrintSection();
   5692     SectionStarted = true;
   5693     Current.Offset = Shdr.sh_offset;
   5694     Current.Name = this->getPrintableSectionName(Shdr);
   5695   };
   5696   auto OnLibEntry = [&](StringRef Lib, uint64_t Offset) {
   5697     SecEntries.push_back(NameOffset{Lib, Offset});
   5698   };
   5699 
   5700   this->printDependentLibsHelper(OnSectionStart, OnLibEntry);
   5701   if (SectionStarted)
   5702     PrintSection();
   5703 }
   5704 
   5705 template <class ELFT>
   5706 bool ELFDumper<ELFT>::printFunctionStackSize(
   5707     uint64_t SymValue, Optional<const Elf_Shdr *> FunctionSec,
   5708     const Elf_Shdr &StackSizeSec, DataExtractor Data, uint64_t *Offset) {
   5709   uint32_t FuncSymIndex = 0;
   5710   if (this->DotSymtabSec) {
   5711     if (Expected<Elf_Sym_Range> SymsOrError = Obj.symbols(this->DotSymtabSec)) {
   5712       uint32_t Index = (uint32_t)-1;
   5713       for (const Elf_Sym &Sym : *SymsOrError) {
   5714         ++Index;
   5715 
   5716         if (Sym.st_shndx == ELF::SHN_UNDEF || Sym.getType() != ELF::STT_FUNC)
   5717           continue;
   5718 
   5719         if (Expected<uint64_t> SymAddrOrErr =
   5720                 ObjF.toSymbolRef(this->DotSymtabSec, Index).getAddress()) {
   5721           if (SymValue != *SymAddrOrErr)
   5722             continue;
   5723         } else {
   5724           std::string Name = this->getStaticSymbolName(Index);
   5725           reportUniqueWarning("unable to get address of symbol '" + Name +
   5726                               "': " + toString(SymAddrOrErr.takeError()));
   5727           break;
   5728         }
   5729 
   5730         // Check if the symbol is in the right section. FunctionSec == None
   5731         // means "any section".
   5732         if (FunctionSec) {
   5733           if (Expected<const Elf_Shdr *> SecOrErr =
   5734                   Obj.getSection(Sym, this->DotSymtabSec,
   5735                                  this->getShndxTable(this->DotSymtabSec))) {
   5736             if (*FunctionSec != *SecOrErr)
   5737               continue;
   5738           } else {
   5739             std::string Name = this->getStaticSymbolName(Index);
   5740             // Note: it is impossible to trigger this error currently, it is
   5741             // untested.
   5742             reportUniqueWarning("unable to get section of symbol '" + Name +
   5743                                 "': " + toString(SecOrErr.takeError()));
   5744             break;
   5745           }
   5746         }
   5747 
   5748         FuncSymIndex = Index;
   5749         break;
   5750       }
   5751     } else {
   5752       reportUniqueWarning("unable to read the symbol table: " +
   5753                           toString(SymsOrError.takeError()));
   5754     }
   5755   }
   5756 
   5757   std::string FuncName = "?";
   5758   if (!FuncSymIndex)
   5759     reportUniqueWarning(
   5760         "could not identify function symbol for stack size entry in " +
   5761         describe(StackSizeSec));
   5762   else
   5763     FuncName = this->getStaticSymbolName(FuncSymIndex);
   5764 
   5765   // Extract the size. The expectation is that Offset is pointing to the right
   5766   // place, i.e. past the function address.
   5767   Error Err = Error::success();
   5768   uint64_t StackSize = Data.getULEB128(Offset, &Err);
   5769   if (Err) {
   5770     reportUniqueWarning("could not extract a valid stack size from " +
   5771                         describe(StackSizeSec) + ": " +
   5772                         toString(std::move(Err)));
   5773     return false;
   5774   }
   5775   printStackSizeEntry(StackSize, FuncName);
   5776   return true;
   5777 }
   5778 
   5779 template <class ELFT>
   5780 void GNUELFDumper<ELFT>::printStackSizeEntry(uint64_t Size,
   5781                                              StringRef FuncName) {
   5782   OS.PadToColumn(2);
   5783   OS << format_decimal(Size, 11);
   5784   OS.PadToColumn(18);
   5785   OS << FuncName << "\n";
   5786 }
   5787 
   5788 template <class ELFT>
   5789 void ELFDumper<ELFT>::printStackSize(const Relocation<ELFT> &R,
   5790                                      const Elf_Shdr &RelocSec, unsigned Ndx,
   5791                                      const Elf_Shdr *SymTab,
   5792                                      const Elf_Shdr *FunctionSec,
   5793                                      const Elf_Shdr &StackSizeSec,
   5794                                      const RelocationResolver &Resolver,
   5795                                      DataExtractor Data) {
   5796   // This function ignores potentially erroneous input, unless it is directly
   5797   // related to stack size reporting.
   5798   const Elf_Sym *Sym = nullptr;
   5799   Expected<RelSymbol<ELFT>> TargetOrErr = this->getRelocationTarget(R, SymTab);
   5800   if (!TargetOrErr)
   5801     reportUniqueWarning("unable to get the target of relocation with index " +
   5802                         Twine(Ndx) + " in " + describe(RelocSec) + ": " +
   5803                         toString(TargetOrErr.takeError()));
   5804   else
   5805     Sym = TargetOrErr->Sym;
   5806 
   5807   uint64_t RelocSymValue = 0;
   5808   if (Sym) {
   5809     Expected<const Elf_Shdr *> SectionOrErr =
   5810         this->Obj.getSection(*Sym, SymTab, this->getShndxTable(SymTab));
   5811     if (!SectionOrErr) {
   5812       reportUniqueWarning(
   5813           "cannot identify the section for relocation symbol '" +
   5814           (*TargetOrErr).Name + "': " + toString(SectionOrErr.takeError()));
   5815     } else if (*SectionOrErr != FunctionSec) {
   5816       reportUniqueWarning("relocation symbol '" + (*TargetOrErr).Name +
   5817                           "' is not in the expected section");
   5818       // Pretend that the symbol is in the correct section and report its
   5819       // stack size anyway.
   5820       FunctionSec = *SectionOrErr;
   5821     }
   5822 
   5823     RelocSymValue = Sym->st_value;
   5824   }
   5825 
   5826   uint64_t Offset = R.Offset;
   5827   if (!Data.isValidOffsetForDataOfSize(Offset, sizeof(Elf_Addr) + 1)) {
   5828     reportUniqueWarning("found invalid relocation offset (0x" +
   5829                         Twine::utohexstr(Offset) + ") into " +
   5830                         describe(StackSizeSec) +
   5831                         " while trying to extract a stack size entry");
   5832     return;
   5833   }
   5834 
   5835   uint64_t SymValue =
   5836       Resolver(R.Type, Offset, RelocSymValue, Data.getAddress(&Offset),
   5837                R.Addend.getValueOr(0));
   5838   this->printFunctionStackSize(SymValue, FunctionSec, StackSizeSec, Data,
   5839                                &Offset);
   5840 }
   5841 
   5842 template <class ELFT>
   5843 void ELFDumper<ELFT>::printNonRelocatableStackSizes(
   5844     std::function<void()> PrintHeader) {
   5845   // This function ignores potentially erroneous input, unless it is directly
   5846   // related to stack size reporting.
   5847   for (const Elf_Shdr &Sec : cantFail(Obj.sections())) {
   5848     if (this->getPrintableSectionName(Sec) != ".stack_sizes")
   5849       continue;
   5850     PrintHeader();
   5851     ArrayRef<uint8_t> Contents =
   5852         unwrapOrError(this->FileName, Obj.getSectionContents(Sec));
   5853     DataExtractor Data(Contents, Obj.isLE(), sizeof(Elf_Addr));
   5854     uint64_t Offset = 0;
   5855     while (Offset < Contents.size()) {
   5856       // The function address is followed by a ULEB representing the stack
   5857       // size. Check for an extra byte before we try to process the entry.
   5858       if (!Data.isValidOffsetForDataOfSize(Offset, sizeof(Elf_Addr) + 1)) {
   5859         reportUniqueWarning(
   5860             describe(Sec) +
   5861             " ended while trying to extract a stack size entry");
   5862         break;
   5863       }
   5864       uint64_t SymValue = Data.getAddress(&Offset);
   5865       if (!printFunctionStackSize(SymValue, /*FunctionSec=*/None, Sec, Data,
   5866                                   &Offset))
   5867         break;
   5868     }
   5869   }
   5870 }
   5871 
   5872 template <class ELFT>
   5873 void ELFDumper<ELFT>::printRelocatableStackSizes(
   5874     std::function<void()> PrintHeader) {
   5875   // Build a map between stack size sections and their corresponding relocation
   5876   // sections.
   5877   llvm::MapVector<const Elf_Shdr *, const Elf_Shdr *> StackSizeRelocMap;
   5878   for (const Elf_Shdr &Sec : cantFail(Obj.sections())) {
   5879     StringRef SectionName;
   5880     if (Expected<StringRef> NameOrErr = Obj.getSectionName(Sec))
   5881       SectionName = *NameOrErr;
   5882     else
   5883       consumeError(NameOrErr.takeError());
   5884 
   5885     // A stack size section that we haven't encountered yet is mapped to the
   5886     // null section until we find its corresponding relocation section.
   5887     if (SectionName == ".stack_sizes")
   5888       if (StackSizeRelocMap
   5889               .insert(std::make_pair(&Sec, (const Elf_Shdr *)nullptr))
   5890               .second)
   5891         continue;
   5892 
   5893     // Check relocation sections if they are relocating contents of a
   5894     // stack sizes section.
   5895     if (Sec.sh_type != ELF::SHT_RELA && Sec.sh_type != ELF::SHT_REL)
   5896       continue;
   5897 
   5898     Expected<const Elf_Shdr *> RelSecOrErr = Obj.getSection(Sec.sh_info);
   5899     if (!RelSecOrErr) {
   5900       reportUniqueWarning(describe(Sec) +
   5901                           ": failed to get a relocated section: " +
   5902                           toString(RelSecOrErr.takeError()));
   5903       continue;
   5904     }
   5905 
   5906     const Elf_Shdr *ContentsSec = *RelSecOrErr;
   5907     if (this->getPrintableSectionName(**RelSecOrErr) != ".stack_sizes")
   5908       continue;
   5909 
   5910     // Insert a mapping from the stack sizes section to its relocation section.
   5911     StackSizeRelocMap[ContentsSec] = &Sec;
   5912   }
   5913 
   5914   for (const auto &StackSizeMapEntry : StackSizeRelocMap) {
   5915     PrintHeader();
   5916     const Elf_Shdr *StackSizesELFSec = StackSizeMapEntry.first;
   5917     const Elf_Shdr *RelocSec = StackSizeMapEntry.second;
   5918 
   5919     // Warn about stack size sections without a relocation section.
   5920     if (!RelocSec) {
   5921       reportWarning(createError(".stack_sizes (" + describe(*StackSizesELFSec) +
   5922                                 ") does not have a corresponding "
   5923                                 "relocation section"),
   5924                     FileName);
   5925       continue;
   5926     }
   5927 
   5928     // A .stack_sizes section header's sh_link field is supposed to point
   5929     // to the section that contains the functions whose stack sizes are
   5930     // described in it.
   5931     const Elf_Shdr *FunctionSec = unwrapOrError(
   5932         this->FileName, Obj.getSection(StackSizesELFSec->sh_link));
   5933 
   5934     SupportsRelocation IsSupportedFn;
   5935     RelocationResolver Resolver;
   5936     std::tie(IsSupportedFn, Resolver) = getRelocationResolver(this->ObjF);
   5937     ArrayRef<uint8_t> Contents =
   5938         unwrapOrError(this->FileName, Obj.getSectionContents(*StackSizesELFSec));
   5939     DataExtractor Data(Contents, Obj.isLE(), sizeof(Elf_Addr));
   5940 
   5941     forEachRelocationDo(
   5942         *RelocSec, /*RawRelr=*/false,
   5943         [&](const Relocation<ELFT> &R, unsigned Ndx, const Elf_Shdr &Sec,
   5944             const Elf_Shdr *SymTab) {
   5945           if (!IsSupportedFn || !IsSupportedFn(R.Type)) {
   5946             reportUniqueWarning(
   5947                 describe(*RelocSec) +
   5948                 " contains an unsupported relocation with index " + Twine(Ndx) +
   5949                 ": " + Obj.getRelocationTypeName(R.Type));
   5950             return;
   5951           }
   5952 
   5953           this->printStackSize(R, *RelocSec, Ndx, SymTab, FunctionSec,
   5954                                *StackSizesELFSec, Resolver, Data);
   5955         },
   5956         [](const Elf_Relr &) {
   5957           llvm_unreachable("can't get here, because we only support "
   5958                            "SHT_REL/SHT_RELA sections");
   5959         });
   5960   }
   5961 }
   5962 
   5963 template <class ELFT>
   5964 void GNUELFDumper<ELFT>::printStackSizes() {
   5965   bool HeaderHasBeenPrinted = false;
   5966   auto PrintHeader = [&]() {
   5967     if (HeaderHasBeenPrinted)
   5968       return;
   5969     OS << "\nStack Sizes:\n";
   5970     OS.PadToColumn(9);
   5971     OS << "Size";
   5972     OS.PadToColumn(18);
   5973     OS << "Function\n";
   5974     HeaderHasBeenPrinted = true;
   5975   };
   5976 
   5977   // For non-relocatable objects, look directly for sections whose name starts
   5978   // with .stack_sizes and process the contents.
   5979   if (this->Obj.getHeader().e_type == ELF::ET_REL)
   5980     this->printRelocatableStackSizes(PrintHeader);
   5981   else
   5982     this->printNonRelocatableStackSizes(PrintHeader);
   5983 }
   5984 
   5985 template <class ELFT>
   5986 void GNUELFDumper<ELFT>::printMipsGOT(const MipsGOTParser<ELFT> &Parser) {
   5987   size_t Bias = ELFT::Is64Bits ? 8 : 0;
   5988   auto PrintEntry = [&](const Elf_Addr *E, StringRef Purpose) {
   5989     OS.PadToColumn(2);
   5990     OS << format_hex_no_prefix(Parser.getGotAddress(E), 8 + Bias);
   5991     OS.PadToColumn(11 + Bias);
   5992     OS << format_decimal(Parser.getGotOffset(E), 6) << "(gp)";
   5993     OS.PadToColumn(22 + Bias);
   5994     OS << format_hex_no_prefix(*E, 8 + Bias);
   5995     OS.PadToColumn(31 + 2 * Bias);
   5996     OS << Purpose << "\n";
   5997   };
   5998 
   5999   OS << (Parser.IsStatic ? "Static GOT:\n" : "Primary GOT:\n");
   6000   OS << " Canonical gp value: "
   6001      << format_hex_no_prefix(Parser.getGp(), 8 + Bias) << "\n\n";
   6002 
   6003   OS << " Reserved entries:\n";
   6004   if (ELFT::Is64Bits)
   6005     OS << "           Address     Access          Initial Purpose\n";
   6006   else
   6007     OS << "   Address     Access  Initial Purpose\n";
   6008   PrintEntry(Parser.getGotLazyResolver(), "Lazy resolver");
   6009   if (Parser.getGotModulePointer())
   6010     PrintEntry(Parser.getGotModulePointer(), "Module pointer (GNU extension)");
   6011 
   6012   if (!Parser.getLocalEntries().empty()) {
   6013     OS << "\n";
   6014     OS << " Local entries:\n";
   6015     if (ELFT::Is64Bits)
   6016       OS << "           Address     Access          Initial\n";
   6017     else
   6018       OS << "   Address     Access  Initial\n";
   6019     for (auto &E : Parser.getLocalEntries())
   6020       PrintEntry(&E, "");
   6021   }
   6022 
   6023   if (Parser.IsStatic)
   6024     return;
   6025 
   6026   if (!Parser.getGlobalEntries().empty()) {
   6027     OS << "\n";
   6028     OS << " Global entries:\n";
   6029     if (ELFT::Is64Bits)
   6030       OS << "           Address     Access          Initial         Sym.Val."
   6031          << " Type    Ndx Name\n";
   6032     else
   6033       OS << "   Address     Access  Initial Sym.Val. Type    Ndx Name\n";
   6034 
   6035     DataRegion<Elf_Word> ShndxTable(
   6036         (const Elf_Word *)this->DynSymTabShndxRegion.Addr, this->Obj.end());
   6037     for (auto &E : Parser.getGlobalEntries()) {
   6038       const Elf_Sym &Sym = *Parser.getGotSym(&E);
   6039       const Elf_Sym &FirstSym = this->dynamic_symbols()[0];
   6040       std::string SymName = this->getFullSymbolName(
   6041           Sym, &Sym - &FirstSym, ShndxTable, this->DynamicStringTable, false);
   6042 
   6043       OS.PadToColumn(2);
   6044       OS << to_string(format_hex_no_prefix(Parser.getGotAddress(&E), 8 + Bias));
   6045       OS.PadToColumn(11 + Bias);
   6046       OS << to_string(format_decimal(Parser.getGotOffset(&E), 6)) + "(gp)";
   6047       OS.PadToColumn(22 + Bias);
   6048       OS << to_string(format_hex_no_prefix(E, 8 + Bias));
   6049       OS.PadToColumn(31 + 2 * Bias);
   6050       OS << to_string(format_hex_no_prefix(Sym.st_value, 8 + Bias));
   6051       OS.PadToColumn(40 + 3 * Bias);
   6052       OS << printEnum(Sym.getType(), makeArrayRef(ElfSymbolTypes));
   6053       OS.PadToColumn(48 + 3 * Bias);
   6054       OS << getSymbolSectionNdx(Sym, &Sym - this->dynamic_symbols().begin(),
   6055                                 ShndxTable);
   6056       OS.PadToColumn(52 + 3 * Bias);
   6057       OS << SymName << "\n";
   6058     }
   6059   }
   6060 
   6061   if (!Parser.getOtherEntries().empty())
   6062     OS << "\n Number of TLS and multi-GOT entries "
   6063        << Parser.getOtherEntries().size() << "\n";
   6064 }
   6065 
   6066 template <class ELFT>
   6067 void GNUELFDumper<ELFT>::printMipsPLT(const MipsGOTParser<ELFT> &Parser) {
   6068   size_t Bias = ELFT::Is64Bits ? 8 : 0;
   6069   auto PrintEntry = [&](const Elf_Addr *E, StringRef Purpose) {
   6070     OS.PadToColumn(2);
   6071     OS << format_hex_no_prefix(Parser.getPltAddress(E), 8 + Bias);
   6072     OS.PadToColumn(11 + Bias);
   6073     OS << format_hex_no_prefix(*E, 8 + Bias);
   6074     OS.PadToColumn(20 + 2 * Bias);
   6075     OS << Purpose << "\n";
   6076   };
   6077 
   6078   OS << "PLT GOT:\n\n";
   6079 
   6080   OS << " Reserved entries:\n";
   6081   OS << "   Address  Initial Purpose\n";
   6082   PrintEntry(Parser.getPltLazyResolver(), "PLT lazy resolver");
   6083   if (Parser.getPltModulePointer())
   6084     PrintEntry(Parser.getPltModulePointer(), "Module pointer");
   6085 
   6086   if (!Parser.getPltEntries().empty()) {
   6087     OS << "\n";
   6088     OS << " Entries:\n";
   6089     OS << "   Address  Initial Sym.Val. Type    Ndx Name\n";
   6090     DataRegion<Elf_Word> ShndxTable(
   6091         (const Elf_Word *)this->DynSymTabShndxRegion.Addr, this->Obj.end());
   6092     for (auto &E : Parser.getPltEntries()) {
   6093       const Elf_Sym &Sym = *Parser.getPltSym(&E);
   6094       const Elf_Sym &FirstSym = *cantFail(
   6095           this->Obj.template getEntry<Elf_Sym>(*Parser.getPltSymTable(), 0));
   6096       std::string SymName = this->getFullSymbolName(
   6097           Sym, &Sym - &FirstSym, ShndxTable, this->DynamicStringTable, false);
   6098 
   6099       OS.PadToColumn(2);
   6100       OS << to_string(format_hex_no_prefix(Parser.getPltAddress(&E), 8 + Bias));
   6101       OS.PadToColumn(11 + Bias);
   6102       OS << to_string(format_hex_no_prefix(E, 8 + Bias));
   6103       OS.PadToColumn(20 + 2 * Bias);
   6104       OS << to_string(format_hex_no_prefix(Sym.st_value, 8 + Bias));
   6105       OS.PadToColumn(29 + 3 * Bias);
   6106       OS << printEnum(Sym.getType(), makeArrayRef(ElfSymbolTypes));
   6107       OS.PadToColumn(37 + 3 * Bias);
   6108       OS << getSymbolSectionNdx(Sym, &Sym - this->dynamic_symbols().begin(),
   6109                                 ShndxTable);
   6110       OS.PadToColumn(41 + 3 * Bias);
   6111       OS << SymName << "\n";
   6112     }
   6113   }
   6114 }
   6115 
   6116 template <class ELFT>
   6117 Expected<const Elf_Mips_ABIFlags<ELFT> *>
   6118 getMipsAbiFlagsSection(const ELFDumper<ELFT> &Dumper) {
   6119   const typename ELFT::Shdr *Sec = Dumper.findSectionByName(".MIPS.abiflags");
   6120   if (Sec == nullptr)
   6121     return nullptr;
   6122 
   6123   constexpr StringRef ErrPrefix = "unable to read the .MIPS.abiflags section: ";
   6124   Expected<ArrayRef<uint8_t>> DataOrErr =
   6125       Dumper.getElfObject().getELFFile().getSectionContents(*Sec);
   6126   if (!DataOrErr)
   6127     return createError(ErrPrefix + toString(DataOrErr.takeError()));
   6128 
   6129   if (DataOrErr->size() != sizeof(Elf_Mips_ABIFlags<ELFT>))
   6130     return createError(ErrPrefix + "it has a wrong size (" +
   6131         Twine(DataOrErr->size()) + ")");
   6132   return reinterpret_cast<const Elf_Mips_ABIFlags<ELFT> *>(DataOrErr->data());
   6133 }
   6134 
   6135 template <class ELFT> void GNUELFDumper<ELFT>::printMipsABIFlags() {
   6136   const Elf_Mips_ABIFlags<ELFT> *Flags = nullptr;
   6137   if (Expected<const Elf_Mips_ABIFlags<ELFT> *> SecOrErr =
   6138           getMipsAbiFlagsSection(*this))
   6139     Flags = *SecOrErr;
   6140   else
   6141     this->reportUniqueWarning(SecOrErr.takeError());
   6142   if (!Flags)
   6143     return;
   6144 
   6145   OS << "MIPS ABI Flags Version: " << Flags->version << "\n\n";
   6146   OS << "ISA: MIPS" << int(Flags->isa_level);
   6147   if (Flags->isa_rev > 1)
   6148     OS << "r" << int(Flags->isa_rev);
   6149   OS << "\n";
   6150   OS << "GPR size: " << getMipsRegisterSize(Flags->gpr_size) << "\n";
   6151   OS << "CPR1 size: " << getMipsRegisterSize(Flags->cpr1_size) << "\n";
   6152   OS << "CPR2 size: " << getMipsRegisterSize(Flags->cpr2_size) << "\n";
   6153   OS << "FP ABI: " << printEnum(Flags->fp_abi, makeArrayRef(ElfMipsFpABIType))
   6154      << "\n";
   6155   OS << "ISA Extension: "
   6156      << printEnum(Flags->isa_ext, makeArrayRef(ElfMipsISAExtType)) << "\n";
   6157   if (Flags->ases == 0)
   6158     OS << "ASEs: None\n";
   6159   else
   6160     // FIXME: Print each flag on a separate line.
   6161     OS << "ASEs: " << printFlags(Flags->ases, makeArrayRef(ElfMipsASEFlags))
   6162        << "\n";
   6163   OS << "FLAGS 1: " << format_hex_no_prefix(Flags->flags1, 8, false) << "\n";
   6164   OS << "FLAGS 2: " << format_hex_no_prefix(Flags->flags2, 8, false) << "\n";
   6165   OS << "\n";
   6166 }
   6167 
   6168 template <class ELFT> void LLVMELFDumper<ELFT>::printFileHeaders() {
   6169   const Elf_Ehdr &E = this->Obj.getHeader();
   6170   {
   6171     DictScope D(W, "ElfHeader");
   6172     {
   6173       DictScope D(W, "Ident");
   6174       W.printBinary("Magic", makeArrayRef(E.e_ident).slice(ELF::EI_MAG0, 4));
   6175       W.printEnum("Class", E.e_ident[ELF::EI_CLASS], makeArrayRef(ElfClass));
   6176       W.printEnum("DataEncoding", E.e_ident[ELF::EI_DATA],
   6177                   makeArrayRef(ElfDataEncoding));
   6178       W.printNumber("FileVersion", E.e_ident[ELF::EI_VERSION]);
   6179 
   6180       auto OSABI = makeArrayRef(ElfOSABI);
   6181       if (E.e_ident[ELF::EI_OSABI] >= ELF::ELFOSABI_FIRST_ARCH &&
   6182           E.e_ident[ELF::EI_OSABI] <= ELF::ELFOSABI_LAST_ARCH) {
   6183         switch (E.e_machine) {
   6184         case ELF::EM_AMDGPU:
   6185           OSABI = makeArrayRef(AMDGPUElfOSABI);
   6186           break;
   6187         case ELF::EM_ARM:
   6188           OSABI = makeArrayRef(ARMElfOSABI);
   6189           break;
   6190         case ELF::EM_TI_C6000:
   6191           OSABI = makeArrayRef(C6000ElfOSABI);
   6192           break;
   6193         }
   6194       }
   6195       W.printEnum("OS/ABI", E.e_ident[ELF::EI_OSABI], OSABI);
   6196       W.printNumber("ABIVersion", E.e_ident[ELF::EI_ABIVERSION]);
   6197       W.printBinary("Unused", makeArrayRef(E.e_ident).slice(ELF::EI_PAD));
   6198     }
   6199 
   6200     std::string TypeStr;
   6201     if (const EnumEntry<unsigned> *Ent = getObjectFileEnumEntry(E.e_type)) {
   6202       TypeStr = Ent->Name.str();
   6203     } else {
   6204       if (E.e_type >= ET_LOPROC)
   6205         TypeStr = "Processor Specific";
   6206       else if (E.e_type >= ET_LOOS)
   6207         TypeStr = "OS Specific";
   6208       else
   6209         TypeStr = "Unknown";
   6210     }
   6211     W.printString("Type", TypeStr + " (0x" + to_hexString(E.e_type) + ")");
   6212 
   6213     W.printEnum("Machine", E.e_machine, makeArrayRef(ElfMachineType));
   6214     W.printNumber("Version", E.e_version);
   6215     W.printHex("Entry", E.e_entry);
   6216     W.printHex("ProgramHeaderOffset", E.e_phoff);
   6217     W.printHex("SectionHeaderOffset", E.e_shoff);
   6218     if (E.e_machine == EM_MIPS)
   6219       W.printFlags("Flags", E.e_flags, makeArrayRef(ElfHeaderMipsFlags),
   6220                    unsigned(ELF::EF_MIPS_ARCH), unsigned(ELF::EF_MIPS_ABI),
   6221                    unsigned(ELF::EF_MIPS_MACH));
   6222     else if (E.e_machine == EM_AMDGPU) {
   6223       switch (E.e_ident[ELF::EI_ABIVERSION]) {
   6224       default:
   6225         W.printHex("Flags", E.e_flags);
   6226         break;
   6227       case 0:
   6228         // ELFOSABI_AMDGPU_PAL, ELFOSABI_AMDGPU_MESA3D support *_V3 flags.
   6229         LLVM_FALLTHROUGH;
   6230       case ELF::ELFABIVERSION_AMDGPU_HSA_V3:
   6231         W.printFlags("Flags", E.e_flags,
   6232                      makeArrayRef(ElfHeaderAMDGPUFlagsABIVersion3),
   6233                      unsigned(ELF::EF_AMDGPU_MACH));
   6234         break;
   6235       case ELF::ELFABIVERSION_AMDGPU_HSA_V4:
   6236         W.printFlags("Flags", E.e_flags,
   6237                      makeArrayRef(ElfHeaderAMDGPUFlagsABIVersion4),
   6238                      unsigned(ELF::EF_AMDGPU_MACH),
   6239                      unsigned(ELF::EF_AMDGPU_FEATURE_XNACK_V4),
   6240                      unsigned(ELF::EF_AMDGPU_FEATURE_SRAMECC_V4));
   6241         break;
   6242       }
   6243     } else if (E.e_machine == EM_RISCV)
   6244       W.printFlags("Flags", E.e_flags, makeArrayRef(ElfHeaderRISCVFlags));
   6245     else if (E.e_machine == EM_AVR)
   6246       W.printFlags("Flags", E.e_flags, makeArrayRef(ElfHeaderAVRFlags),
   6247                    unsigned(ELF::EF_AVR_ARCH_MASK));
   6248     else
   6249       W.printFlags("Flags", E.e_flags);
   6250     W.printNumber("HeaderSize", E.e_ehsize);
   6251     W.printNumber("ProgramHeaderEntrySize", E.e_phentsize);
   6252     W.printNumber("ProgramHeaderCount", E.e_phnum);
   6253     W.printNumber("SectionHeaderEntrySize", E.e_shentsize);
   6254     W.printString("SectionHeaderCount",
   6255                   getSectionHeadersNumString(this->Obj, this->FileName));
   6256     W.printString("StringTableSectionIndex",
   6257                   getSectionHeaderTableIndexString(this->Obj, this->FileName));
   6258   }
   6259 }
   6260 
   6261 template <class ELFT> void LLVMELFDumper<ELFT>::printGroupSections() {
   6262   DictScope Lists(W, "Groups");
   6263   std::vector<GroupSection> V = this->getGroups();
   6264   DenseMap<uint64_t, const GroupSection *> Map = mapSectionsToGroups(V);
   6265   for (const GroupSection &G : V) {
   6266     DictScope D(W, "Group");
   6267     W.printNumber("Name", G.Name, G.ShName);
   6268     W.printNumber("Index", G.Index);
   6269     W.printNumber("Link", G.Link);
   6270     W.printNumber("Info", G.Info);
   6271     W.printHex("Type", getGroupType(G.Type), G.Type);
   6272     W.startLine() << "Signature: " << G.Signature << "\n";
   6273 
   6274     ListScope L(W, "Section(s) in group");
   6275     for (const GroupMember &GM : G.Members) {
   6276       const GroupSection *MainGroup = Map[GM.Index];
   6277       if (MainGroup != &G)
   6278         this->reportUniqueWarning(
   6279             "section with index " + Twine(GM.Index) +
   6280             ", included in the group section with index " +
   6281             Twine(MainGroup->Index) +
   6282             ", was also found in the group section with index " +
   6283             Twine(G.Index));
   6284       W.startLine() << GM.Name << " (" << GM.Index << ")\n";
   6285     }
   6286   }
   6287 
   6288   if (V.empty())
   6289     W.startLine() << "There are no group sections in the file.\n";
   6290 }
   6291 
   6292 template <class ELFT> void LLVMELFDumper<ELFT>::printRelocations() {
   6293   ListScope D(W, "Relocations");
   6294 
   6295   for (const Elf_Shdr &Sec : cantFail(this->Obj.sections())) {
   6296     if (!isRelocationSec<ELFT>(Sec))
   6297       continue;
   6298 
   6299     StringRef Name = this->getPrintableSectionName(Sec);
   6300     unsigned SecNdx = &Sec - &cantFail(this->Obj.sections()).front();
   6301     W.startLine() << "Section (" << SecNdx << ") " << Name << " {\n";
   6302     W.indent();
   6303     this->printRelocationsHelper(Sec);
   6304     W.unindent();
   6305     W.startLine() << "}\n";
   6306   }
   6307 }
   6308 
   6309 template <class ELFT>
   6310 void LLVMELFDumper<ELFT>::printRelrReloc(const Elf_Relr &R) {
   6311   W.startLine() << W.hex(R) << "\n";
   6312 }
   6313 
   6314 template <class ELFT>
   6315 void LLVMELFDumper<ELFT>::printRelRelaReloc(const Relocation<ELFT> &R,
   6316                                             const RelSymbol<ELFT> &RelSym) {
   6317   StringRef SymbolName = RelSym.Name;
   6318   SmallString<32> RelocName;
   6319   this->Obj.getRelocationTypeName(R.Type, RelocName);
   6320 
   6321   if (opts::ExpandRelocs) {
   6322     DictScope Group(W, "Relocation");
   6323     W.printHex("Offset", R.Offset);
   6324     W.printNumber("Type", RelocName, R.Type);
   6325     W.printNumber("Symbol", !SymbolName.empty() ? SymbolName : "-", R.Symbol);
   6326     if (R.Addend)
   6327       W.printHex("Addend", (uintX_t)*R.Addend);
   6328   } else {
   6329     raw_ostream &OS = W.startLine();
   6330     OS << W.hex(R.Offset) << " " << RelocName << " "
   6331        << (!SymbolName.empty() ? SymbolName : "-");
   6332     if (R.Addend)
   6333       OS << " " << W.hex((uintX_t)*R.Addend);
   6334     OS << "\n";
   6335   }
   6336 }
   6337 
   6338 template <class ELFT> void LLVMELFDumper<ELFT>::printSectionHeaders() {
   6339   ListScope SectionsD(W, "Sections");
   6340 
   6341   int SectionIndex = -1;
   6342   std::vector<EnumEntry<unsigned>> FlagsList =
   6343       getSectionFlagsForTarget(this->Obj.getHeader().e_machine);
   6344   for (const Elf_Shdr &Sec : cantFail(this->Obj.sections())) {
   6345     DictScope SectionD(W, "Section");
   6346     W.printNumber("Index", ++SectionIndex);
   6347     W.printNumber("Name", this->getPrintableSectionName(Sec), Sec.sh_name);
   6348     W.printHex("Type",
   6349                object::getELFSectionTypeName(this->Obj.getHeader().e_machine,
   6350                                              Sec.sh_type),
   6351                Sec.sh_type);
   6352     W.printFlags("Flags", Sec.sh_flags, makeArrayRef(FlagsList));
   6353     W.printHex("Address", Sec.sh_addr);
   6354     W.printHex("Offset", Sec.sh_offset);
   6355     W.printNumber("Size", Sec.sh_size);
   6356     W.printNumber("Link", Sec.sh_link);
   6357     W.printNumber("Info", Sec.sh_info);
   6358     W.printNumber("AddressAlignment", Sec.sh_addralign);
   6359     W.printNumber("EntrySize", Sec.sh_entsize);
   6360 
   6361     if (opts::SectionRelocations) {
   6362       ListScope D(W, "Relocations");
   6363       this->printRelocationsHelper(Sec);
   6364     }
   6365 
   6366     if (opts::SectionSymbols) {
   6367       ListScope D(W, "Symbols");
   6368       if (this->DotSymtabSec) {
   6369         StringRef StrTable = unwrapOrError(
   6370             this->FileName,
   6371             this->Obj.getStringTableForSymtab(*this->DotSymtabSec));
   6372         ArrayRef<Elf_Word> ShndxTable = this->getShndxTable(this->DotSymtabSec);
   6373 
   6374         typename ELFT::SymRange Symbols = unwrapOrError(
   6375             this->FileName, this->Obj.symbols(this->DotSymtabSec));
   6376         for (const Elf_Sym &Sym : Symbols) {
   6377           const Elf_Shdr *SymSec = unwrapOrError(
   6378               this->FileName,
   6379               this->Obj.getSection(Sym, this->DotSymtabSec, ShndxTable));
   6380           if (SymSec == &Sec)
   6381             printSymbol(Sym, &Sym - &Symbols[0], ShndxTable, StrTable, false,
   6382                         false);
   6383         }
   6384       }
   6385     }
   6386 
   6387     if (opts::SectionData && Sec.sh_type != ELF::SHT_NOBITS) {
   6388       ArrayRef<uint8_t> Data =
   6389           unwrapOrError(this->FileName, this->Obj.getSectionContents(Sec));
   6390       W.printBinaryBlock(
   6391           "SectionData",
   6392           StringRef(reinterpret_cast<const char *>(Data.data()), Data.size()));
   6393     }
   6394   }
   6395 }
   6396 
   6397 template <class ELFT>
   6398 void LLVMELFDumper<ELFT>::printSymbolSection(
   6399     const Elf_Sym &Symbol, unsigned SymIndex,
   6400     DataRegion<Elf_Word> ShndxTable) const {
   6401   auto GetSectionSpecialType = [&]() -> Optional<StringRef> {
   6402     if (Symbol.isUndefined())
   6403       return StringRef("Undefined");
   6404     if (Symbol.isProcessorSpecific())
   6405       return StringRef("Processor Specific");
   6406     if (Symbol.isOSSpecific())
   6407       return StringRef("Operating System Specific");
   6408     if (Symbol.isAbsolute())
   6409       return StringRef("Absolute");
   6410     if (Symbol.isCommon())
   6411       return StringRef("Common");
   6412     if (Symbol.isReserved() && Symbol.st_shndx != SHN_XINDEX)
   6413       return StringRef("Reserved");
   6414     return None;
   6415   };
   6416 
   6417   if (Optional<StringRef> Type = GetSectionSpecialType()) {
   6418     W.printHex("Section", *Type, Symbol.st_shndx);
   6419     return;
   6420   }
   6421 
   6422   Expected<unsigned> SectionIndex =
   6423       this->getSymbolSectionIndex(Symbol, SymIndex, ShndxTable);
   6424   if (!SectionIndex) {
   6425     assert(Symbol.st_shndx == SHN_XINDEX &&
   6426            "getSymbolSectionIndex should only fail due to an invalid "
   6427            "SHT_SYMTAB_SHNDX table/reference");
   6428     this->reportUniqueWarning(SectionIndex.takeError());
   6429     W.printHex("Section", "Reserved", SHN_XINDEX);
   6430     return;
   6431   }
   6432 
   6433   Expected<StringRef> SectionName =
   6434       this->getSymbolSectionName(Symbol, *SectionIndex);
   6435   if (!SectionName) {
   6436     // Don't report an invalid section name if the section headers are missing.
   6437     // In such situations, all sections will be "invalid".
   6438     if (!this->ObjF.sections().empty())
   6439       this->reportUniqueWarning(SectionName.takeError());
   6440     else
   6441       consumeError(SectionName.takeError());
   6442     W.printHex("Section", "<?>", *SectionIndex);
   6443   } else {
   6444     W.printHex("Section", *SectionName, *SectionIndex);
   6445   }
   6446 }
   6447 
   6448 template <class ELFT>
   6449 void LLVMELFDumper<ELFT>::printSymbol(const Elf_Sym &Symbol, unsigned SymIndex,
   6450                                       DataRegion<Elf_Word> ShndxTable,
   6451                                       Optional<StringRef> StrTable,
   6452                                       bool IsDynamic,
   6453                                       bool /*NonVisibilityBitsUsed*/) const {
   6454   std::string FullSymbolName = this->getFullSymbolName(
   6455       Symbol, SymIndex, ShndxTable, StrTable, IsDynamic);
   6456   unsigned char SymbolType = Symbol.getType();
   6457 
   6458   DictScope D(W, "Symbol");
   6459   W.printNumber("Name", FullSymbolName, Symbol.st_name);
   6460   W.printHex("Value", Symbol.st_value);
   6461   W.printNumber("Size", Symbol.st_size);
   6462   W.printEnum("Binding", Symbol.getBinding(), makeArrayRef(ElfSymbolBindings));
   6463   if (this->Obj.getHeader().e_machine == ELF::EM_AMDGPU &&
   6464       SymbolType >= ELF::STT_LOOS && SymbolType < ELF::STT_HIOS)
   6465     W.printEnum("Type", SymbolType, makeArrayRef(AMDGPUSymbolTypes));
   6466   else
   6467     W.printEnum("Type", SymbolType, makeArrayRef(ElfSymbolTypes));
   6468   if (Symbol.st_other == 0)
   6469     // Usually st_other flag is zero. Do not pollute the output
   6470     // by flags enumeration in that case.
   6471     W.printNumber("Other", 0);
   6472   else {
   6473     std::vector<EnumEntry<unsigned>> SymOtherFlags(std::begin(ElfSymOtherFlags),
   6474                                                    std::end(ElfSymOtherFlags));
   6475     if (this->Obj.getHeader().e_machine == EM_MIPS) {
   6476       // Someones in their infinite wisdom decided to make STO_MIPS_MIPS16
   6477       // flag overlapped with other ST_MIPS_xxx flags. So consider both
   6478       // cases separately.
   6479       if ((Symbol.st_other & STO_MIPS_MIPS16) == STO_MIPS_MIPS16)
   6480         SymOtherFlags.insert(SymOtherFlags.end(),
   6481                              std::begin(ElfMips16SymOtherFlags),
   6482                              std::end(ElfMips16SymOtherFlags));
   6483       else
   6484         SymOtherFlags.insert(SymOtherFlags.end(),
   6485                              std::begin(ElfMipsSymOtherFlags),
   6486                              std::end(ElfMipsSymOtherFlags));
   6487     } else if (this->Obj.getHeader().e_machine == EM_AARCH64) {
   6488       SymOtherFlags.insert(SymOtherFlags.end(),
   6489                            std::begin(ElfAArch64SymOtherFlags),
   6490                            std::end(ElfAArch64SymOtherFlags));
   6491     }
   6492     W.printFlags("Other", Symbol.st_other, makeArrayRef(SymOtherFlags), 0x3u);
   6493   }
   6494   printSymbolSection(Symbol, SymIndex, ShndxTable);
   6495 }
   6496 
   6497 template <class ELFT>
   6498 void LLVMELFDumper<ELFT>::printSymbols(bool PrintSymbols,
   6499                                        bool PrintDynamicSymbols) {
   6500   if (PrintSymbols) {
   6501     ListScope Group(W, "Symbols");
   6502     this->printSymbolsHelper(false);
   6503   }
   6504   if (PrintDynamicSymbols) {
   6505     ListScope Group(W, "DynamicSymbols");
   6506     this->printSymbolsHelper(true);
   6507   }
   6508 }
   6509 
   6510 template <class ELFT> void LLVMELFDumper<ELFT>::printDynamicTable() {
   6511   Elf_Dyn_Range Table = this->dynamic_table();
   6512   if (Table.empty())
   6513     return;
   6514 
   6515   W.startLine() << "DynamicSection [ (" << Table.size() << " entries)\n";
   6516 
   6517   size_t MaxTagSize = getMaxDynamicTagSize(this->Obj, Table);
   6518   // The "Name/Value" column should be indented from the "Type" column by N
   6519   // spaces, where N = MaxTagSize - length of "Type" (4) + trailing
   6520   // space (1) = -3.
   6521   W.startLine() << "  Tag" << std::string(ELFT::Is64Bits ? 16 : 8, ' ')
   6522                 << "Type" << std::string(MaxTagSize - 3, ' ') << "Name/Value\n";
   6523 
   6524   std::string ValueFmt = "%-" + std::to_string(MaxTagSize) + "s ";
   6525   for (auto Entry : Table) {
   6526     uintX_t Tag = Entry.getTag();
   6527     std::string Value = this->getDynamicEntry(Tag, Entry.getVal());
   6528     W.startLine() << "  " << format_hex(Tag, ELFT::Is64Bits ? 18 : 10, true)
   6529                   << " "
   6530                   << format(ValueFmt.c_str(),
   6531                             this->Obj.getDynamicTagAsString(Tag).c_str())
   6532                   << Value << "\n";
   6533   }
   6534   W.startLine() << "]\n";
   6535 }
   6536 
   6537 template <class ELFT> void LLVMELFDumper<ELFT>::printDynamicRelocations() {
   6538   W.startLine() << "Dynamic Relocations {\n";
   6539   W.indent();
   6540   this->printDynamicRelocationsHelper();
   6541   W.unindent();
   6542   W.startLine() << "}\n";
   6543 }
   6544 
   6545 template <class ELFT>
   6546 void LLVMELFDumper<ELFT>::printProgramHeaders(
   6547     bool PrintProgramHeaders, cl::boolOrDefault PrintSectionMapping) {
   6548   if (PrintProgramHeaders)
   6549     printProgramHeaders();
   6550   if (PrintSectionMapping == cl::BOU_TRUE)
   6551     printSectionMapping();
   6552 }
   6553 
   6554 template <class ELFT> void LLVMELFDumper<ELFT>::printProgramHeaders() {
   6555   ListScope L(W, "ProgramHeaders");
   6556 
   6557   Expected<ArrayRef<Elf_Phdr>> PhdrsOrErr = this->Obj.program_headers();
   6558   if (!PhdrsOrErr) {
   6559     this->reportUniqueWarning("unable to dump program headers: " +
   6560                               toString(PhdrsOrErr.takeError()));
   6561     return;
   6562   }
   6563 
   6564   for (const Elf_Phdr &Phdr : *PhdrsOrErr) {
   6565     DictScope P(W, "ProgramHeader");
   6566     StringRef Type =
   6567         segmentTypeToString(this->Obj.getHeader().e_machine, Phdr.p_type);
   6568 
   6569     W.printHex("Type", Type.empty() ? "Unknown" : Type, Phdr.p_type);
   6570     W.printHex("Offset", Phdr.p_offset);
   6571     W.printHex("VirtualAddress", Phdr.p_vaddr);
   6572     W.printHex("PhysicalAddress", Phdr.p_paddr);
   6573     W.printNumber("FileSize", Phdr.p_filesz);
   6574     W.printNumber("MemSize", Phdr.p_memsz);
   6575     W.printFlags("Flags", Phdr.p_flags, makeArrayRef(ElfSegmentFlags));
   6576     W.printNumber("Alignment", Phdr.p_align);
   6577   }
   6578 }
   6579 
   6580 template <class ELFT>
   6581 void LLVMELFDumper<ELFT>::printVersionSymbolSection(const Elf_Shdr *Sec) {
   6582   ListScope SS(W, "VersionSymbols");
   6583   if (!Sec)
   6584     return;
   6585 
   6586   StringRef StrTable;
   6587   ArrayRef<Elf_Sym> Syms;
   6588   const Elf_Shdr *SymTabSec;
   6589   Expected<ArrayRef<Elf_Versym>> VerTableOrErr =
   6590       this->getVersionTable(*Sec, &Syms, &StrTable, &SymTabSec);
   6591   if (!VerTableOrErr) {
   6592     this->reportUniqueWarning(VerTableOrErr.takeError());
   6593     return;
   6594   }
   6595 
   6596   if (StrTable.empty() || Syms.empty() || Syms.size() != VerTableOrErr->size())
   6597     return;
   6598 
   6599   ArrayRef<Elf_Word> ShNdxTable = this->getShndxTable(SymTabSec);
   6600   for (size_t I = 0, E = Syms.size(); I < E; ++I) {
   6601     DictScope S(W, "Symbol");
   6602     W.printNumber("Version", (*VerTableOrErr)[I].vs_index & VERSYM_VERSION);
   6603     W.printString("Name",
   6604                   this->getFullSymbolName(Syms[I], I, ShNdxTable, StrTable,
   6605                                           /*IsDynamic=*/true));
   6606   }
   6607 }
   6608 
   6609 static const EnumEntry<unsigned> SymVersionFlags[] = {
   6610     {"Base", "BASE", VER_FLG_BASE},
   6611     {"Weak", "WEAK", VER_FLG_WEAK},
   6612     {"Info", "INFO", VER_FLG_INFO}};
   6613 
   6614 template <class ELFT>
   6615 void LLVMELFDumper<ELFT>::printVersionDefinitionSection(const Elf_Shdr *Sec) {
   6616   ListScope SD(W, "VersionDefinitions");
   6617   if (!Sec)
   6618     return;
   6619 
   6620   Expected<std::vector<VerDef>> V = this->Obj.getVersionDefinitions(*Sec);
   6621   if (!V) {
   6622     this->reportUniqueWarning(V.takeError());
   6623     return;
   6624   }
   6625 
   6626   for (const VerDef &D : *V) {
   6627     DictScope Def(W, "Definition");
   6628     W.printNumber("Version", D.Version);
   6629     W.printFlags("Flags", D.Flags, makeArrayRef(SymVersionFlags));
   6630     W.printNumber("Index", D.Ndx);
   6631     W.printNumber("Hash", D.Hash);
   6632     W.printString("Name", D.Name.c_str());
   6633     W.printList(
   6634         "Predecessors", D.AuxV,
   6635         [](raw_ostream &OS, const VerdAux &Aux) { OS << Aux.Name.c_str(); });
   6636   }
   6637 }
   6638 
   6639 template <class ELFT>
   6640 void LLVMELFDumper<ELFT>::printVersionDependencySection(const Elf_Shdr *Sec) {
   6641   ListScope SD(W, "VersionRequirements");
   6642   if (!Sec)
   6643     return;
   6644 
   6645   Expected<std::vector<VerNeed>> V =
   6646       this->Obj.getVersionDependencies(*Sec, this->WarningHandler);
   6647   if (!V) {
   6648     this->reportUniqueWarning(V.takeError());
   6649     return;
   6650   }
   6651 
   6652   for (const VerNeed &VN : *V) {
   6653     DictScope Entry(W, "Dependency");
   6654     W.printNumber("Version", VN.Version);
   6655     W.printNumber("Count", VN.Cnt);
   6656     W.printString("FileName", VN.File.c_str());
   6657 
   6658     ListScope L(W, "Entries");
   6659     for (const VernAux &Aux : VN.AuxV) {
   6660       DictScope Entry(W, "Entry");
   6661       W.printNumber("Hash", Aux.Hash);
   6662       W.printFlags("Flags", Aux.Flags, makeArrayRef(SymVersionFlags));
   6663       W.printNumber("Index", Aux.Other);
   6664       W.printString("Name", Aux.Name.c_str());
   6665     }
   6666   }
   6667 }
   6668 
   6669 template <class ELFT> void LLVMELFDumper<ELFT>::printHashHistograms() {
   6670   W.startLine() << "Hash Histogram not implemented!\n";
   6671 }
   6672 
   6673 template <class ELFT> void LLVMELFDumper<ELFT>::printCGProfile() {
   6674   ListScope L(W, "CGProfile");
   6675   if (!this->DotCGProfileSec)
   6676     return;
   6677 
   6678   Expected<ArrayRef<Elf_CGProfile>> CGProfileOrErr =
   6679       this->Obj.template getSectionContentsAsArray<Elf_CGProfile>(
   6680           *this->DotCGProfileSec);
   6681   if (!CGProfileOrErr) {
   6682     this->reportUniqueWarning(
   6683         "unable to dump the SHT_LLVM_CALL_GRAPH_PROFILE section: " +
   6684         toString(CGProfileOrErr.takeError()));
   6685     return;
   6686   }
   6687 
   6688   for (const Elf_CGProfile &CGPE : *CGProfileOrErr) {
   6689     DictScope D(W, "CGProfileEntry");
   6690     W.printNumber("From", this->getStaticSymbolName(CGPE.cgp_from),
   6691                   CGPE.cgp_from);
   6692     W.printNumber("To", this->getStaticSymbolName(CGPE.cgp_to),
   6693                   CGPE.cgp_to);
   6694     W.printNumber("Weight", CGPE.cgp_weight);
   6695   }
   6696 }
   6697 
   6698 template <class ELFT> void LLVMELFDumper<ELFT>::printBBAddrMaps() {
   6699   for (const Elf_Shdr &Sec : cantFail(this->Obj.sections())) {
   6700     if (Sec.sh_type != SHT_LLVM_BB_ADDR_MAP)
   6701       continue;
   6702     ListScope L(W, "BBAddrMap");
   6703     Expected<std::vector<Elf_BBAddrMap>> BBAddrMapOrErr =
   6704         this->Obj.decodeBBAddrMap(Sec);
   6705     if (!BBAddrMapOrErr) {
   6706       this->reportUniqueWarning("unable to dump " + this->describe(Sec) + ": " +
   6707                                 toString(BBAddrMapOrErr.takeError()));
   6708       continue;
   6709     }
   6710     for (const Elf_BBAddrMap &AM : *BBAddrMapOrErr) {
   6711       DictScope D(W, "Function");
   6712       W.printHex("At", AM.Addr);
   6713       ListScope L(W, "BB entries");
   6714       for (const typename Elf_BBAddrMap::BBEntry &BBE : AM.BBEntries) {
   6715         DictScope L(W);
   6716         W.printHex("Offset", BBE.Offset);
   6717         W.printHex("Size", BBE.Size);
   6718         W.printBoolean("HasReturn", BBE.HasReturn);
   6719         W.printBoolean("HasTailCall", BBE.HasTailCall);
   6720         W.printBoolean("IsEHPad", BBE.IsEHPad);
   6721         W.printBoolean("CanFallThrough", BBE.CanFallThrough);
   6722       }
   6723     }
   6724   }
   6725 }
   6726 
   6727 template <class ELFT> void LLVMELFDumper<ELFT>::printAddrsig() {
   6728   ListScope L(W, "Addrsig");
   6729   if (!this->DotAddrsigSec)
   6730     return;
   6731 
   6732   Expected<std::vector<uint64_t>> SymsOrErr =
   6733       decodeAddrsigSection(this->Obj, *this->DotAddrsigSec);
   6734   if (!SymsOrErr) {
   6735     this->reportUniqueWarning(SymsOrErr.takeError());
   6736     return;
   6737   }
   6738 
   6739   for (uint64_t Sym : *SymsOrErr)
   6740     W.printNumber("Sym", this->getStaticSymbolName(Sym), Sym);
   6741 }
   6742 
   6743 template <typename ELFT>
   6744 static bool printGNUNoteLLVMStyle(uint32_t NoteType, ArrayRef<uint8_t> Desc,
   6745                                   ScopedPrinter &W) {
   6746   // Return true if we were able to pretty-print the note, false otherwise.
   6747   switch (NoteType) {
   6748   default:
   6749     return false;
   6750   case ELF::NT_GNU_ABI_TAG: {
   6751     const GNUAbiTag &AbiTag = getGNUAbiTag<ELFT>(Desc);
   6752     if (!AbiTag.IsValid) {
   6753       W.printString("ABI", "<corrupt GNU_ABI_TAG>");
   6754       return false;
   6755     } else {
   6756       W.printString("OS", AbiTag.OSName);
   6757       W.printString("ABI", AbiTag.ABI);
   6758     }
   6759     break;
   6760   }
   6761   case ELF::NT_GNU_BUILD_ID: {
   6762     W.printString("Build ID", getGNUBuildId(Desc));
   6763     break;
   6764   }
   6765   case ELF::NT_GNU_GOLD_VERSION:
   6766     W.printString("Version", getGNUGoldVersion(Desc));
   6767     break;
   6768   case ELF::NT_GNU_PROPERTY_TYPE_0:
   6769     ListScope D(W, "Property");
   6770     for (const std::string &Property : getGNUPropertyList<ELFT>(Desc))
   6771       W.printString(Property);
   6772     break;
   6773   }
   6774   return true;
   6775 }
   6776 
   6777 static void printCoreNoteLLVMStyle(const CoreNote &Note, ScopedPrinter &W) {
   6778   W.printNumber("Page Size", Note.PageSize);
   6779   for (const CoreFileMapping &Mapping : Note.Mappings) {
   6780     ListScope D(W, "Mapping");
   6781     W.printHex("Start", Mapping.Start);
   6782     W.printHex("End", Mapping.End);
   6783     W.printHex("Offset", Mapping.Offset);
   6784     W.printString("Filename", Mapping.Filename);
   6785   }
   6786 }
   6787 
   6788 template <class ELFT> void LLVMELFDumper<ELFT>::printNotes() {
   6789   ListScope L(W, "Notes");
   6790 
   6791   std::unique_ptr<DictScope> NoteScope;
   6792   auto StartNotes = [&](Optional<StringRef> SecName,
   6793                         const typename ELFT::Off Offset,
   6794                         const typename ELFT::Addr Size) {
   6795     NoteScope = std::make_unique<DictScope>(W, "NoteSection");
   6796     W.printString("Name", SecName ? *SecName : "<?>");
   6797     W.printHex("Offset", Offset);
   6798     W.printHex("Size", Size);
   6799   };
   6800 
   6801   auto EndNotes = [&] { NoteScope.reset(); };
   6802 
   6803   auto ProcessNote = [&](const Elf_Note &Note, bool IsCore) -> Error {
   6804     DictScope D2(W, "Note");
   6805     StringRef Name = Note.getName();
   6806     ArrayRef<uint8_t> Descriptor = Note.getDesc();
   6807     Elf_Word Type = Note.getType();
   6808 
   6809     // Print the note owner/type.
   6810     W.printString("Owner", Name);
   6811     W.printHex("Data size", Descriptor.size());
   6812 
   6813     StringRef NoteType =
   6814         getNoteTypeName<ELFT>(Note, this->Obj.getHeader().e_type);
   6815     if (!NoteType.empty())
   6816       W.printString("Type", NoteType);
   6817     else
   6818       W.printString("Type",
   6819                     "Unknown (" + to_string(format_hex(Type, 10)) + ")");
   6820 
   6821     // Print the description, or fallback to printing raw bytes for unknown
   6822     // owners/if we fail to pretty-print the contents.
   6823     if (Name == "GNU") {
   6824       if (printGNUNoteLLVMStyle<ELFT>(Type, Descriptor, W))
   6825         return Error::success();
   6826     } else if (Name == "FreeBSD") {
   6827       if (Optional<FreeBSDNote> N =
   6828               getFreeBSDNote<ELFT>(Type, Descriptor, IsCore)) {
   6829         W.printString(N->Type, N->Value);
   6830         return Error::success();
   6831       }
   6832     } else if (Name == "AMD") {
   6833       const AMDNote N = getAMDNote<ELFT>(Type, Descriptor);
   6834       if (!N.Type.empty()) {
   6835         W.printString(N.Type, N.Value);
   6836         return Error::success();
   6837       }
   6838     } else if (Name == "AMDGPU") {
   6839       const AMDGPUNote N = getAMDGPUNote<ELFT>(Type, Descriptor);
   6840       if (!N.Type.empty()) {
   6841         W.printString(N.Type, N.Value);
   6842         return Error::success();
   6843       }
   6844     } else if (Name == "CORE") {
   6845       if (Type == ELF::NT_FILE) {
   6846         DataExtractor DescExtractor(Descriptor,
   6847                                     ELFT::TargetEndianness == support::little,
   6848                                     sizeof(Elf_Addr));
   6849         if (Expected<CoreNote> N = readCoreNote(DescExtractor)) {
   6850           printCoreNoteLLVMStyle(*N, W);
   6851           return Error::success();
   6852         } else {
   6853           return N.takeError();
   6854         }
   6855       }
   6856     }
   6857     if (!Descriptor.empty()) {
   6858       W.printBinaryBlock("Description data", Descriptor);
   6859     }
   6860     return Error::success();
   6861   };
   6862 
   6863   printNotesHelper(*this, StartNotes, ProcessNote, EndNotes);
   6864 }
   6865 
   6866 template <class ELFT> void LLVMELFDumper<ELFT>::printELFLinkerOptions() {
   6867   ListScope L(W, "LinkerOptions");
   6868 
   6869   unsigned I = -1;
   6870   for (const Elf_Shdr &Shdr : cantFail(this->Obj.sections())) {
   6871     ++I;
   6872     if (Shdr.sh_type != ELF::SHT_LLVM_LINKER_OPTIONS)
   6873       continue;
   6874 
   6875     Expected<ArrayRef<uint8_t>> ContentsOrErr =
   6876         this->Obj.getSectionContents(Shdr);
   6877     if (!ContentsOrErr) {
   6878       this->reportUniqueWarning("unable to read the content of the "
   6879                                 "SHT_LLVM_LINKER_OPTIONS section: " +
   6880                                 toString(ContentsOrErr.takeError()));
   6881       continue;
   6882     }
   6883     if (ContentsOrErr->empty())
   6884       continue;
   6885 
   6886     if (ContentsOrErr->back() != 0) {
   6887       this->reportUniqueWarning("SHT_LLVM_LINKER_OPTIONS section at index " +
   6888                                 Twine(I) +
   6889                                 " is broken: the "
   6890                                 "content is not null-terminated");
   6891       continue;
   6892     }
   6893 
   6894     SmallVector<StringRef, 16> Strings;
   6895     toStringRef(ContentsOrErr->drop_back()).split(Strings, '\0');
   6896     if (Strings.size() % 2 != 0) {
   6897       this->reportUniqueWarning(
   6898           "SHT_LLVM_LINKER_OPTIONS section at index " + Twine(I) +
   6899           " is broken: an incomplete "
   6900           "key-value pair was found. The last possible key was: \"" +
   6901           Strings.back() + "\"");
   6902       continue;
   6903     }
   6904 
   6905     for (size_t I = 0; I < Strings.size(); I += 2)
   6906       W.printString(Strings[I], Strings[I + 1]);
   6907   }
   6908 }
   6909 
   6910 template <class ELFT> void LLVMELFDumper<ELFT>::printDependentLibs() {
   6911   ListScope L(W, "DependentLibs");
   6912   this->printDependentLibsHelper(
   6913       [](const Elf_Shdr &) {},
   6914       [this](StringRef Lib, uint64_t) { W.printString(Lib); });
   6915 }
   6916 
   6917 template <class ELFT> void LLVMELFDumper<ELFT>::printStackSizes() {
   6918   ListScope L(W, "StackSizes");
   6919   if (this->Obj.getHeader().e_type == ELF::ET_REL)
   6920     this->printRelocatableStackSizes([]() {});
   6921   else
   6922     this->printNonRelocatableStackSizes([]() {});
   6923 }
   6924 
   6925 template <class ELFT>
   6926 void LLVMELFDumper<ELFT>::printStackSizeEntry(uint64_t Size, StringRef FuncName) {
   6927   DictScope D(W, "Entry");
   6928   W.printString("Function", FuncName);
   6929   W.printHex("Size", Size);
   6930 }
   6931 
   6932 template <class ELFT>
   6933 void LLVMELFDumper<ELFT>::printMipsGOT(const MipsGOTParser<ELFT> &Parser) {
   6934   auto PrintEntry = [&](const Elf_Addr *E) {
   6935     W.printHex("Address", Parser.getGotAddress(E));
   6936     W.printNumber("Access", Parser.getGotOffset(E));
   6937     W.printHex("Initial", *E);
   6938   };
   6939 
   6940   DictScope GS(W, Parser.IsStatic ? "Static GOT" : "Primary GOT");
   6941 
   6942   W.printHex("Canonical gp value", Parser.getGp());
   6943   {
   6944     ListScope RS(W, "Reserved entries");
   6945     {
   6946       DictScope D(W, "Entry");
   6947       PrintEntry(Parser.getGotLazyResolver());
   6948       W.printString("Purpose", StringRef("Lazy resolver"));
   6949     }
   6950 
   6951     if (Parser.getGotModulePointer()) {
   6952       DictScope D(W, "Entry");
   6953       PrintEntry(Parser.getGotModulePointer());
   6954       W.printString("Purpose", StringRef("Module pointer (GNU extension)"));
   6955     }
   6956   }
   6957   {
   6958     ListScope LS(W, "Local entries");
   6959     for (auto &E : Parser.getLocalEntries()) {
   6960       DictScope D(W, "Entry");
   6961       PrintEntry(&E);
   6962     }
   6963   }
   6964 
   6965   if (Parser.IsStatic)
   6966     return;
   6967 
   6968   {
   6969     ListScope GS(W, "Global entries");
   6970     for (auto &E : Parser.getGlobalEntries()) {
   6971       DictScope D(W, "Entry");
   6972 
   6973       PrintEntry(&E);
   6974 
   6975       const Elf_Sym &Sym = *Parser.getGotSym(&E);
   6976       W.printHex("Value", Sym.st_value);
   6977       W.printEnum("Type", Sym.getType(), makeArrayRef(ElfSymbolTypes));
   6978 
   6979       const unsigned SymIndex = &Sym - this->dynamic_symbols().begin();
   6980       DataRegion<Elf_Word> ShndxTable(
   6981           (const Elf_Word *)this->DynSymTabShndxRegion.Addr, this->Obj.end());
   6982       printSymbolSection(Sym, SymIndex, ShndxTable);
   6983 
   6984       std::string SymName = this->getFullSymbolName(
   6985           Sym, SymIndex, ShndxTable, this->DynamicStringTable, true);
   6986       W.printNumber("Name", SymName, Sym.st_name);
   6987     }
   6988   }
   6989 
   6990   W.printNumber("Number of TLS and multi-GOT entries",
   6991                 uint64_t(Parser.getOtherEntries().size()));
   6992 }
   6993 
   6994 template <class ELFT>
   6995 void LLVMELFDumper<ELFT>::printMipsPLT(const MipsGOTParser<ELFT> &Parser) {
   6996   auto PrintEntry = [&](const Elf_Addr *E) {
   6997     W.printHex("Address", Parser.getPltAddress(E));
   6998     W.printHex("Initial", *E);
   6999   };
   7000 
   7001   DictScope GS(W, "PLT GOT");
   7002 
   7003   {
   7004     ListScope RS(W, "Reserved entries");
   7005     {
   7006       DictScope D(W, "Entry");
   7007       PrintEntry(Parser.getPltLazyResolver());
   7008       W.printString("Purpose", StringRef("PLT lazy resolver"));
   7009     }
   7010 
   7011     if (auto E = Parser.getPltModulePointer()) {
   7012       DictScope D(W, "Entry");
   7013       PrintEntry(E);
   7014       W.printString("Purpose", StringRef("Module pointer"));
   7015     }
   7016   }
   7017   {
   7018     ListScope LS(W, "Entries");
   7019     DataRegion<Elf_Word> ShndxTable(
   7020         (const Elf_Word *)this->DynSymTabShndxRegion.Addr, this->Obj.end());
   7021     for (auto &E : Parser.getPltEntries()) {
   7022       DictScope D(W, "Entry");
   7023       PrintEntry(&E);
   7024 
   7025       const Elf_Sym &Sym = *Parser.getPltSym(&E);
   7026       W.printHex("Value", Sym.st_value);
   7027       W.printEnum("Type", Sym.getType(), makeArrayRef(ElfSymbolTypes));
   7028       printSymbolSection(Sym, &Sym - this->dynamic_symbols().begin(),
   7029                          ShndxTable);
   7030 
   7031       const Elf_Sym *FirstSym = cantFail(
   7032           this->Obj.template getEntry<Elf_Sym>(*Parser.getPltSymTable(), 0));
   7033       std::string SymName = this->getFullSymbolName(
   7034           Sym, &Sym - FirstSym, ShndxTable, Parser.getPltStrTable(), true);
   7035       W.printNumber("Name", SymName, Sym.st_name);
   7036     }
   7037   }
   7038 }
   7039 
   7040 template <class ELFT> void LLVMELFDumper<ELFT>::printMipsABIFlags() {
   7041   const Elf_Mips_ABIFlags<ELFT> *Flags;
   7042   if (Expected<const Elf_Mips_ABIFlags<ELFT> *> SecOrErr =
   7043           getMipsAbiFlagsSection(*this)) {
   7044     Flags = *SecOrErr;
   7045     if (!Flags) {
   7046       W.startLine() << "There is no .MIPS.abiflags section in the file.\n";
   7047       return;
   7048     }
   7049   } else {
   7050     this->reportUniqueWarning(SecOrErr.takeError());
   7051     return;
   7052   }
   7053 
   7054   raw_ostream &OS = W.getOStream();
   7055   DictScope GS(W, "MIPS ABI Flags");
   7056 
   7057   W.printNumber("Version", Flags->version);
   7058   W.startLine() << "ISA: ";
   7059   if (Flags->isa_rev <= 1)
   7060     OS << format("MIPS%u", Flags->isa_level);
   7061   else
   7062     OS << format("MIPS%ur%u", Flags->isa_level, Flags->isa_rev);
   7063   OS << "\n";
   7064   W.printEnum("ISA Extension", Flags->isa_ext, makeArrayRef(ElfMipsISAExtType));
   7065   W.printFlags("ASEs", Flags->ases, makeArrayRef(ElfMipsASEFlags));
   7066   W.printEnum("FP ABI", Flags->fp_abi, makeArrayRef(ElfMipsFpABIType));
   7067   W.printNumber("GPR size", getMipsRegisterSize(Flags->gpr_size));
   7068   W.printNumber("CPR1 size", getMipsRegisterSize(Flags->cpr1_size));
   7069   W.printNumber("CPR2 size", getMipsRegisterSize(Flags->cpr2_size));
   7070   W.printFlags("Flags 1", Flags->flags1, makeArrayRef(ElfMipsFlags1));
   7071   W.printHex("Flags 2", Flags->flags2);
   7072 }
   7073