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George Rimar47936762016-01-16 00:49:19 +00001//===-- ELFDumper.cpp - ELF-specific dumper ---------------------*- C++ -*-===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9///
10/// \file
11/// \brief This file implements the ELF-specific dumper for llvm-readobj.
12///
13//===----------------------------------------------------------------------===//
14
15#include "llvm-readobj.h"
16#include "ARMAttributeParser.h"
17#include "ARMEHABIPrinter.h"
18#include "Error.h"
19#include "ObjDumper.h"
20#include "StackMapPrinter.h"
21#include "StreamWriter.h"
22#include "llvm/ADT/Optional.h"
23#include "llvm/ADT/SmallString.h"
24#include "llvm/ADT/StringExtras.h"
25#include "llvm/Object/ELFObjectFile.h"
26#include "llvm/Support/ARMBuildAttributes.h"
27#include "llvm/Support/Compiler.h"
28#include "llvm/Support/Format.h"
29#include "llvm/Support/MathExtras.h"
30#include "llvm/Support/MipsABIFlags.h"
31#include "llvm/Support/raw_ostream.h"
32
33using namespace llvm;
34using namespace llvm::object;
35using namespace ELF;
36
37#define LLVM_READOBJ_ENUM_CASE(ns, enum) \
38 case ns::enum: return #enum;
39
40namespace {
41
42template<typename ELFT>
43class ELFDumper : public ObjDumper {
44public:
45 ELFDumper(const ELFFile<ELFT> *Obj, StreamWriter &Writer);
46
47 void printFileHeaders() override;
48 void printSections() override;
49 void printRelocations() override;
50 void printDynamicRelocations() override;
51 void printSymbols() override;
52 void printDynamicSymbols() override;
53 void printUnwindInfo() override;
54
55 void printDynamicTable() override;
56 void printNeededLibraries() override;
57 void printProgramHeaders() override;
58 void printHashTable() override;
59 void printGnuHashTable() override;
60 void printLoadName() override;
61 void printVersionInfo() override;
62
63 void printAttributes() override;
64 void printMipsPLTGOT() override;
65 void printMipsABIFlags() override;
66 void printMipsReginfo() override;
67
68 void printStackMap() const override;
69
70private:
71 typedef ELFFile<ELFT> ELFO;
72 typedef typename ELFO::Elf_Shdr Elf_Shdr;
73 typedef typename ELFO::Elf_Sym Elf_Sym;
74 typedef typename ELFO::Elf_Dyn Elf_Dyn;
75 typedef typename ELFO::Elf_Dyn_Range Elf_Dyn_Range;
76 typedef typename ELFO::Elf_Rel Elf_Rel;
77 typedef typename ELFO::Elf_Rela Elf_Rela;
Simon Atanasyan72155c32016-01-16 22:40:09 +000078 typedef typename ELFO::Elf_Rel_Range Elf_Rel_Range;
George Rimar47936762016-01-16 00:49:19 +000079 typedef typename ELFO::Elf_Rela_Range Elf_Rela_Range;
80 typedef typename ELFO::Elf_Phdr Elf_Phdr;
81 typedef typename ELFO::Elf_Half Elf_Half;
82 typedef typename ELFO::Elf_Hash Elf_Hash;
83 typedef typename ELFO::Elf_GnuHash Elf_GnuHash;
84 typedef typename ELFO::Elf_Ehdr Elf_Ehdr;
85 typedef typename ELFO::Elf_Word Elf_Word;
86 typedef typename ELFO::uintX_t uintX_t;
87 typedef typename ELFO::Elf_Versym Elf_Versym;
88 typedef typename ELFO::Elf_Verneed Elf_Verneed;
89 typedef typename ELFO::Elf_Vernaux Elf_Vernaux;
90 typedef typename ELFO::Elf_Verdef Elf_Verdef;
91 typedef typename ELFO::Elf_Verdaux Elf_Verdaux;
92
93 /// \brief Represents a region described by entries in the .dynamic table.
94 struct DynRegionInfo {
95 DynRegionInfo() : Addr(nullptr), Size(0), EntSize(0) {}
96 /// \brief Address in current address space.
97 const void *Addr;
98 /// \brief Size in bytes of the region.
99 uintX_t Size;
100 /// \brief Size of each entity in the region.
101 uintX_t EntSize;
102 };
103
104 void printSymbolsHelper(bool IsDynamic);
105 void printSymbol(const Elf_Sym *Symbol, const Elf_Shdr *SymTab,
106 StringRef StrTable, bool IsDynamic);
107
Simon Atanasyan72155c32016-01-16 22:40:09 +0000108 void printDynamicRelocation(Elf_Rela Rel);
George Rimar47936762016-01-16 00:49:19 +0000109 void printRelocations(const Elf_Shdr *Sec);
110 void printRelocation(Elf_Rela Rel, const Elf_Shdr *SymTab);
111 void printValue(uint64_t Type, uint64_t Value);
112
Simon Atanasyan72155c32016-01-16 22:40:09 +0000113 template <typename RELA>
114 static const RELA *dyn_rela_begin(const DynRegionInfo &region);
115 template <typename RELA>
116 static const RELA *dyn_rela_end(const DynRegionInfo &region);
117 Elf_Rel_Range dyn_rels() const;
George Rimar47936762016-01-16 00:49:19 +0000118 Elf_Rela_Range dyn_relas() const;
119 StringRef getDynamicString(uint64_t Offset) const;
120 const Elf_Dyn *dynamic_table_begin() const {
121 ErrorOr<const Elf_Dyn *> Ret = Obj->dynamic_table_begin(DynamicProgHeader);
122 error(Ret.getError());
123 return *Ret;
124 }
125 const Elf_Dyn *dynamic_table_end() const {
126 ErrorOr<const Elf_Dyn *> Ret = Obj->dynamic_table_end(DynamicProgHeader);
127 error(Ret.getError());
128 return *Ret;
129 }
130 StringRef getSymbolVersion(StringRef StrTab, const Elf_Sym *symb,
131 bool &IsDefault);
132 void LoadVersionMap();
133 void LoadVersionNeeds(const Elf_Shdr *ec) const;
134 void LoadVersionDefs(const Elf_Shdr *sec) const;
135
136 const ELFO *Obj;
Simon Atanasyan72155c32016-01-16 22:40:09 +0000137 DynRegionInfo DynRelRegion;
George Rimar47936762016-01-16 00:49:19 +0000138 DynRegionInfo DynRelaRegion;
139 const Elf_Phdr *DynamicProgHeader = nullptr;
140 StringRef DynamicStringTable;
141 const Elf_Sym *DynSymStart = nullptr;
142 StringRef SOName;
143 const Elf_Hash *HashTable = nullptr;
144 const Elf_GnuHash *GnuHashTable = nullptr;
145 const Elf_Shdr *DotDynSymSec = nullptr;
146 const Elf_Shdr *DotSymtabSec = nullptr;
147 ArrayRef<Elf_Word> ShndxTable;
148
149 const Elf_Shdr *dot_gnu_version_sec = nullptr; // .gnu.version
150 const Elf_Shdr *dot_gnu_version_r_sec = nullptr; // .gnu.version_r
151 const Elf_Shdr *dot_gnu_version_d_sec = nullptr; // .gnu.version_d
152
153 // Records for each version index the corresponding Verdef or Vernaux entry.
154 // This is filled the first time LoadVersionMap() is called.
155 class VersionMapEntry : public PointerIntPair<const void *, 1> {
156 public:
157 // If the integer is 0, this is an Elf_Verdef*.
158 // If the integer is 1, this is an Elf_Vernaux*.
159 VersionMapEntry() : PointerIntPair<const void *, 1>(nullptr, 0) {}
160 VersionMapEntry(const Elf_Verdef *verdef)
161 : PointerIntPair<const void *, 1>(verdef, 0) {}
162 VersionMapEntry(const Elf_Vernaux *vernaux)
163 : PointerIntPair<const void *, 1>(vernaux, 1) {}
164 bool isNull() const { return getPointer() == nullptr; }
165 bool isVerdef() const { return !isNull() && getInt() == 0; }
166 bool isVernaux() const { return !isNull() && getInt() == 1; }
167 const Elf_Verdef *getVerdef() const {
168 return isVerdef() ? (const Elf_Verdef *)getPointer() : nullptr;
169 }
170 const Elf_Vernaux *getVernaux() const {
171 return isVernaux() ? (const Elf_Vernaux *)getPointer() : nullptr;
172 }
173 };
174 mutable SmallVector<VersionMapEntry, 16> VersionMap;
175
176public:
177 Elf_Dyn_Range dynamic_table() const {
178 ErrorOr<Elf_Dyn_Range> Ret = Obj->dynamic_table(DynamicProgHeader);
179 error(Ret.getError());
180 return *Ret;
181 }
182
183 std::string getFullSymbolName(const Elf_Sym *Symbol, StringRef StrTable,
184 bool IsDynamic);
185 const Elf_Shdr *getDotDynSymSec() const { return DotDynSymSec; }
186 const Elf_Shdr *getDotSymtabSec() const { return DotSymtabSec; }
187 ArrayRef<Elf_Word> getShndxTable() { return ShndxTable; }
188};
189
190template <class T> T errorOrDefault(ErrorOr<T> Val, T Default = T()) {
191 if (!Val) {
192 error(Val.getError());
193 return Default;
194 }
195
196 return *Val;
197}
198} // namespace
199
200namespace llvm {
201
202template <class ELFT>
203static std::error_code createELFDumper(const ELFFile<ELFT> *Obj,
204 StreamWriter &Writer,
205 std::unique_ptr<ObjDumper> &Result) {
206 Result.reset(new ELFDumper<ELFT>(Obj, Writer));
207 return readobj_error::success;
208}
209
210std::error_code createELFDumper(const object::ObjectFile *Obj,
211 StreamWriter &Writer,
212 std::unique_ptr<ObjDumper> &Result) {
213 // Little-endian 32-bit
214 if (const ELF32LEObjectFile *ELFObj = dyn_cast<ELF32LEObjectFile>(Obj))
215 return createELFDumper(ELFObj->getELFFile(), Writer, Result);
216
217 // Big-endian 32-bit
218 if (const ELF32BEObjectFile *ELFObj = dyn_cast<ELF32BEObjectFile>(Obj))
219 return createELFDumper(ELFObj->getELFFile(), Writer, Result);
220
221 // Little-endian 64-bit
222 if (const ELF64LEObjectFile *ELFObj = dyn_cast<ELF64LEObjectFile>(Obj))
223 return createELFDumper(ELFObj->getELFFile(), Writer, Result);
224
225 // Big-endian 64-bit
226 if (const ELF64BEObjectFile *ELFObj = dyn_cast<ELF64BEObjectFile>(Obj))
227 return createELFDumper(ELFObj->getELFFile(), Writer, Result);
228
229 return readobj_error::unsupported_obj_file_format;
230}
231
232} // namespace llvm
233
234// Iterate through the versions needed section, and place each Elf_Vernaux
235// in the VersionMap according to its index.
236template <class ELFT>
237void ELFDumper<ELFT>::LoadVersionNeeds(const Elf_Shdr *sec) const {
238 unsigned vn_size = sec->sh_size; // Size of section in bytes
239 unsigned vn_count = sec->sh_info; // Number of Verneed entries
240 const char *sec_start = (const char *)Obj->base() + sec->sh_offset;
241 const char *sec_end = sec_start + vn_size;
242 // The first Verneed entry is at the start of the section.
243 const char *p = sec_start;
244 for (unsigned i = 0; i < vn_count; i++) {
245 if (p + sizeof(Elf_Verneed) > sec_end)
246 report_fatal_error("Section ended unexpectedly while scanning "
247 "version needed records.");
248 const Elf_Verneed *vn = reinterpret_cast<const Elf_Verneed *>(p);
249 if (vn->vn_version != ELF::VER_NEED_CURRENT)
250 report_fatal_error("Unexpected verneed version");
251 // Iterate through the Vernaux entries
252 const char *paux = p + vn->vn_aux;
253 for (unsigned j = 0; j < vn->vn_cnt; j++) {
254 if (paux + sizeof(Elf_Vernaux) > sec_end)
255 report_fatal_error("Section ended unexpected while scanning auxiliary "
256 "version needed records.");
257 const Elf_Vernaux *vna = reinterpret_cast<const Elf_Vernaux *>(paux);
258 size_t index = vna->vna_other & ELF::VERSYM_VERSION;
259 if (index >= VersionMap.size())
260 VersionMap.resize(index + 1);
261 VersionMap[index] = VersionMapEntry(vna);
262 paux += vna->vna_next;
263 }
264 p += vn->vn_next;
265 }
266}
267
268// Iterate through the version definitions, and place each Elf_Verdef
269// in the VersionMap according to its index.
270template <class ELFT>
271void ELFDumper<ELFT>::LoadVersionDefs(const Elf_Shdr *sec) const {
272 unsigned vd_size = sec->sh_size; // Size of section in bytes
273 unsigned vd_count = sec->sh_info; // Number of Verdef entries
274 const char *sec_start = (const char *)Obj->base() + sec->sh_offset;
275 const char *sec_end = sec_start + vd_size;
276 // The first Verdef entry is at the start of the section.
277 const char *p = sec_start;
278 for (unsigned i = 0; i < vd_count; i++) {
279 if (p + sizeof(Elf_Verdef) > sec_end)
280 report_fatal_error("Section ended unexpectedly while scanning "
281 "version definitions.");
282 const Elf_Verdef *vd = reinterpret_cast<const Elf_Verdef *>(p);
283 if (vd->vd_version != ELF::VER_DEF_CURRENT)
284 report_fatal_error("Unexpected verdef version");
285 size_t index = vd->vd_ndx & ELF::VERSYM_VERSION;
286 if (index >= VersionMap.size())
287 VersionMap.resize(index + 1);
288 VersionMap[index] = VersionMapEntry(vd);
289 p += vd->vd_next;
290 }
291}
292
293template <class ELFT> void ELFDumper<ELFT>::LoadVersionMap() {
294 // If there is no dynamic symtab or version table, there is nothing to do.
295 if (!DynSymStart || !dot_gnu_version_sec)
296 return;
297
298 // Has the VersionMap already been loaded?
299 if (VersionMap.size() > 0)
300 return;
301
302 // The first two version indexes are reserved.
303 // Index 0 is LOCAL, index 1 is GLOBAL.
304 VersionMap.push_back(VersionMapEntry());
305 VersionMap.push_back(VersionMapEntry());
306
307 if (dot_gnu_version_d_sec)
308 LoadVersionDefs(dot_gnu_version_d_sec);
309
310 if (dot_gnu_version_r_sec)
311 LoadVersionNeeds(dot_gnu_version_r_sec);
312}
313
314
315template <typename ELFO, class ELFT>
316static void printVersionSymbolSection(ELFDumper<ELFT> *Dumper,
317 const ELFO *Obj,
318 const typename ELFO::Elf_Shdr *Sec,
319 StreamWriter &W) {
320 DictScope SS(W, "Version symbols");
321 if (!Sec)
322 return;
323 StringRef Name = errorOrDefault(Obj->getSectionName(Sec));
324 W.printNumber("Section Name", Name, Sec->sh_name);
325 W.printHex("Address", Sec->sh_addr);
326 W.printHex("Offset", Sec->sh_offset);
327 W.printNumber("Link", Sec->sh_link);
328
329 const typename ELFO::Elf_Shdr *DynSymSec = Dumper->getDotDynSymSec();
330 const uint8_t *P = (const uint8_t *)Obj->base() + Sec->sh_offset;
331 ErrorOr<StringRef> StrTableOrErr =
332 Obj->getStringTableForSymtab(*DynSymSec);
333 error(StrTableOrErr.getError());
334
335 // Same number of entries in the dynamic symbol table (DT_SYMTAB).
336 ListScope Syms(W, "Symbols");
337 for (const typename ELFO::Elf_Sym &Sym : Obj->symbols(DynSymSec)) {
338 DictScope S(W, "Symbol");
339 std::string FullSymbolName =
340 Dumper->getFullSymbolName(&Sym, *StrTableOrErr, true /* IsDynamic */);
341 W.printNumber("Version", *P);
342 W.printString("Name", FullSymbolName);
343 P += sizeof(typename ELFO::Elf_Half);
344 }
345}
346
347template <typename ELFO, class ELFT>
348static void printVersionDefinitionSection(ELFDumper<ELFT> *Dumper,
349 const ELFO *Obj,
350 const typename ELFO::Elf_Shdr *Sec,
351 StreamWriter &W) {
352 DictScope SD(W, "Version definition");
353 if (!Sec)
354 return;
355 StringRef Name = errorOrDefault(Obj->getSectionName(Sec));
356 W.printNumber("Section Name", Name, Sec->sh_name);
357 W.printHex("Address", Sec->sh_addr);
358 W.printHex("Offset", Sec->sh_offset);
359 W.printNumber("Link", Sec->sh_link);
360
361 unsigned verdef_entries = 0;
362 // The number of entries in the section SHT_GNU_verdef
363 // is determined by DT_VERDEFNUM tag.
364 for (const typename ELFO::Elf_Dyn &Dyn : Dumper->dynamic_table()) {
365 if (Dyn.d_tag == DT_VERDEFNUM)
366 verdef_entries = Dyn.d_un.d_val;
367 }
368 const uint8_t *SecStartAddress =
369 (const uint8_t *)Obj->base() + Sec->sh_offset;
370 const uint8_t *SecEndAddress = SecStartAddress + Sec->sh_size;
371 const uint8_t *P = SecStartAddress;
372 ErrorOr<const typename ELFO::Elf_Shdr *> StrTabOrErr =
373 Obj->getSection(Sec->sh_link);
374 error(StrTabOrErr.getError());
375
376 ListScope Entries(W, "Entries");
377 for (unsigned i = 0; i < verdef_entries; ++i) {
378 if (P + sizeof(typename ELFO::Elf_Verdef) > SecEndAddress)
379 report_fatal_error("invalid offset in the section");
380 auto *VD = reinterpret_cast<const typename ELFO::Elf_Verdef *>(P);
381 DictScope Entry(W, "Entry");
382 W.printHex("Offset", (uintptr_t)P - (uintptr_t)SecStartAddress);
383 W.printNumber("Rev", VD->vd_version);
384 // FIXME: print something more readable.
385 W.printNumber("Flags", VD->vd_flags);
386 W.printNumber("Index", VD->vd_ndx);
387 W.printNumber("Cnt", VD->vd_cnt);
388 W.printString("Name", StringRef((const char *)(Obj->base() +
389 (*StrTabOrErr)->sh_offset +
390 VD->getAux()->vda_name)));
391 P += VD->vd_next;
392 }
393}
394
395template <typename ELFT> void ELFDumper<ELFT>::printVersionInfo() {
396 // Dump version symbol section.
397 printVersionSymbolSection(this, Obj, dot_gnu_version_sec, W);
398
399 // Dump version definition section.
400 printVersionDefinitionSection(this, Obj, dot_gnu_version_d_sec, W);
401}
402
403template <typename ELFT>
404StringRef ELFDumper<ELFT>::getSymbolVersion(StringRef StrTab,
405 const Elf_Sym *symb,
406 bool &IsDefault) {
407 // This is a dynamic symbol. Look in the GNU symbol version table.
408 if (!dot_gnu_version_sec) {
409 // No version table.
410 IsDefault = false;
411 return StringRef("");
412 }
413
414 // Determine the position in the symbol table of this entry.
415 size_t entry_index = (reinterpret_cast<uintptr_t>(symb) -
416 reinterpret_cast<uintptr_t>(DynSymStart)) /
417 sizeof(Elf_Sym);
418
419 // Get the corresponding version index entry
420 const Elf_Versym *vs =
421 Obj->template getEntry<Elf_Versym>(dot_gnu_version_sec, entry_index);
422 size_t version_index = vs->vs_index & ELF::VERSYM_VERSION;
423
424 // Special markers for unversioned symbols.
425 if (version_index == ELF::VER_NDX_LOCAL ||
426 version_index == ELF::VER_NDX_GLOBAL) {
427 IsDefault = false;
428 return StringRef("");
429 }
430
431 // Lookup this symbol in the version table
432 LoadVersionMap();
433 if (version_index >= VersionMap.size() || VersionMap[version_index].isNull())
434 reportError("Invalid version entry");
435 const VersionMapEntry &entry = VersionMap[version_index];
436
437 // Get the version name string
438 size_t name_offset;
439 if (entry.isVerdef()) {
440 // The first Verdaux entry holds the name.
441 name_offset = entry.getVerdef()->getAux()->vda_name;
442 IsDefault = !(vs->vs_index & ELF::VERSYM_HIDDEN);
443 } else {
444 name_offset = entry.getVernaux()->vna_name;
445 IsDefault = false;
446 }
447 if (name_offset >= StrTab.size())
448 reportError("Invalid string offset");
449 return StringRef(StrTab.data() + name_offset);
450}
451
452template <typename ELFT>
453std::string ELFDumper<ELFT>::getFullSymbolName(const Elf_Sym *Symbol,
454 StringRef StrTable,
455 bool IsDynamic) {
456 StringRef SymbolName = errorOrDefault(Symbol->getName(StrTable));
457 if (!IsDynamic)
458 return SymbolName;
459
460 std::string FullSymbolName(SymbolName);
461
462 bool IsDefault;
463 StringRef Version = getSymbolVersion(StrTable, &*Symbol, IsDefault);
464 FullSymbolName += (IsDefault ? "@@" : "@");
465 FullSymbolName += Version;
466 return FullSymbolName;
467}
468
469template <typename ELFO>
470static void
471getSectionNameIndex(const ELFO &Obj, const typename ELFO::Elf_Sym *Symbol,
472 const typename ELFO::Elf_Shdr *SymTab,
473 ArrayRef<typename ELFO::Elf_Word> ShndxTable,
474 StringRef &SectionName, unsigned &SectionIndex) {
475 SectionIndex = Symbol->st_shndx;
476 if (Symbol->isUndefined())
477 SectionName = "Undefined";
478 else if (Symbol->isProcessorSpecific())
479 SectionName = "Processor Specific";
480 else if (Symbol->isOSSpecific())
481 SectionName = "Operating System Specific";
482 else if (Symbol->isAbsolute())
483 SectionName = "Absolute";
484 else if (Symbol->isCommon())
485 SectionName = "Common";
486 else if (Symbol->isReserved() && SectionIndex != SHN_XINDEX)
487 SectionName = "Reserved";
488 else {
489 if (SectionIndex == SHN_XINDEX)
490 SectionIndex =
491 Obj.getExtendedSymbolTableIndex(Symbol, SymTab, ShndxTable);
492 ErrorOr<const typename ELFO::Elf_Shdr *> Sec = Obj.getSection(SectionIndex);
493 error(Sec.getError());
494 SectionName = errorOrDefault(Obj.getSectionName(*Sec));
495 }
496}
497
498template <class ELFO>
499static const typename ELFO::Elf_Shdr *findSectionByAddress(const ELFO *Obj,
500 uint64_t Addr) {
501 for (const auto &Shdr : Obj->sections())
502 if (Shdr.sh_addr == Addr)
503 return &Shdr;
504 return nullptr;
505}
506
507template <class ELFO>
508static const typename ELFO::Elf_Shdr *findSectionByName(const ELFO &Obj,
509 StringRef Name) {
510 for (const auto &Shdr : Obj.sections()) {
511 if (Name == errorOrDefault(Obj.getSectionName(&Shdr)))
512 return &Shdr;
513 }
514 return nullptr;
515}
516
517static const EnumEntry<unsigned> ElfClass[] = {
518 { "None", ELF::ELFCLASSNONE },
519 { "32-bit", ELF::ELFCLASS32 },
520 { "64-bit", ELF::ELFCLASS64 },
521};
522
523static const EnumEntry<unsigned> ElfDataEncoding[] = {
524 { "None", ELF::ELFDATANONE },
525 { "LittleEndian", ELF::ELFDATA2LSB },
526 { "BigEndian", ELF::ELFDATA2MSB },
527};
528
529static const EnumEntry<unsigned> ElfObjectFileType[] = {
530 { "None", ELF::ET_NONE },
531 { "Relocatable", ELF::ET_REL },
532 { "Executable", ELF::ET_EXEC },
533 { "SharedObject", ELF::ET_DYN },
534 { "Core", ELF::ET_CORE },
535};
536
537static const EnumEntry<unsigned> ElfOSABI[] = {
538 { "SystemV", ELF::ELFOSABI_NONE },
539 { "HPUX", ELF::ELFOSABI_HPUX },
540 { "NetBSD", ELF::ELFOSABI_NETBSD },
541 { "GNU/Linux", ELF::ELFOSABI_LINUX },
542 { "GNU/Hurd", ELF::ELFOSABI_HURD },
543 { "Solaris", ELF::ELFOSABI_SOLARIS },
544 { "AIX", ELF::ELFOSABI_AIX },
545 { "IRIX", ELF::ELFOSABI_IRIX },
546 { "FreeBSD", ELF::ELFOSABI_FREEBSD },
547 { "TRU64", ELF::ELFOSABI_TRU64 },
548 { "Modesto", ELF::ELFOSABI_MODESTO },
549 { "OpenBSD", ELF::ELFOSABI_OPENBSD },
550 { "OpenVMS", ELF::ELFOSABI_OPENVMS },
551 { "NSK", ELF::ELFOSABI_NSK },
552 { "AROS", ELF::ELFOSABI_AROS },
553 { "FenixOS", ELF::ELFOSABI_FENIXOS },
554 { "CloudABI", ELF::ELFOSABI_CLOUDABI },
555 { "C6000_ELFABI", ELF::ELFOSABI_C6000_ELFABI },
556 { "C6000_LINUX" , ELF::ELFOSABI_C6000_LINUX },
557 { "ARM", ELF::ELFOSABI_ARM },
558 { "Standalone" , ELF::ELFOSABI_STANDALONE }
559};
560
561static const EnumEntry<unsigned> ElfMachineType[] = {
562 LLVM_READOBJ_ENUM_ENT(ELF, EM_NONE ),
563 LLVM_READOBJ_ENUM_ENT(ELF, EM_M32 ),
564 LLVM_READOBJ_ENUM_ENT(ELF, EM_SPARC ),
565 LLVM_READOBJ_ENUM_ENT(ELF, EM_386 ),
566 LLVM_READOBJ_ENUM_ENT(ELF, EM_68K ),
567 LLVM_READOBJ_ENUM_ENT(ELF, EM_88K ),
568 LLVM_READOBJ_ENUM_ENT(ELF, EM_IAMCU ),
569 LLVM_READOBJ_ENUM_ENT(ELF, EM_860 ),
570 LLVM_READOBJ_ENUM_ENT(ELF, EM_MIPS ),
571 LLVM_READOBJ_ENUM_ENT(ELF, EM_S370 ),
572 LLVM_READOBJ_ENUM_ENT(ELF, EM_MIPS_RS3_LE ),
573 LLVM_READOBJ_ENUM_ENT(ELF, EM_PARISC ),
574 LLVM_READOBJ_ENUM_ENT(ELF, EM_VPP500 ),
575 LLVM_READOBJ_ENUM_ENT(ELF, EM_SPARC32PLUS ),
576 LLVM_READOBJ_ENUM_ENT(ELF, EM_960 ),
577 LLVM_READOBJ_ENUM_ENT(ELF, EM_PPC ),
578 LLVM_READOBJ_ENUM_ENT(ELF, EM_PPC64 ),
579 LLVM_READOBJ_ENUM_ENT(ELF, EM_S390 ),
580 LLVM_READOBJ_ENUM_ENT(ELF, EM_SPU ),
581 LLVM_READOBJ_ENUM_ENT(ELF, EM_V800 ),
582 LLVM_READOBJ_ENUM_ENT(ELF, EM_FR20 ),
583 LLVM_READOBJ_ENUM_ENT(ELF, EM_RH32 ),
584 LLVM_READOBJ_ENUM_ENT(ELF, EM_RCE ),
585 LLVM_READOBJ_ENUM_ENT(ELF, EM_ARM ),
586 LLVM_READOBJ_ENUM_ENT(ELF, EM_ALPHA ),
587 LLVM_READOBJ_ENUM_ENT(ELF, EM_SH ),
588 LLVM_READOBJ_ENUM_ENT(ELF, EM_SPARCV9 ),
589 LLVM_READOBJ_ENUM_ENT(ELF, EM_TRICORE ),
590 LLVM_READOBJ_ENUM_ENT(ELF, EM_ARC ),
591 LLVM_READOBJ_ENUM_ENT(ELF, EM_H8_300 ),
592 LLVM_READOBJ_ENUM_ENT(ELF, EM_H8_300H ),
593 LLVM_READOBJ_ENUM_ENT(ELF, EM_H8S ),
594 LLVM_READOBJ_ENUM_ENT(ELF, EM_H8_500 ),
595 LLVM_READOBJ_ENUM_ENT(ELF, EM_IA_64 ),
596 LLVM_READOBJ_ENUM_ENT(ELF, EM_MIPS_X ),
597 LLVM_READOBJ_ENUM_ENT(ELF, EM_COLDFIRE ),
598 LLVM_READOBJ_ENUM_ENT(ELF, EM_68HC12 ),
599 LLVM_READOBJ_ENUM_ENT(ELF, EM_MMA ),
600 LLVM_READOBJ_ENUM_ENT(ELF, EM_PCP ),
601 LLVM_READOBJ_ENUM_ENT(ELF, EM_NCPU ),
602 LLVM_READOBJ_ENUM_ENT(ELF, EM_NDR1 ),
603 LLVM_READOBJ_ENUM_ENT(ELF, EM_STARCORE ),
604 LLVM_READOBJ_ENUM_ENT(ELF, EM_ME16 ),
605 LLVM_READOBJ_ENUM_ENT(ELF, EM_ST100 ),
606 LLVM_READOBJ_ENUM_ENT(ELF, EM_TINYJ ),
607 LLVM_READOBJ_ENUM_ENT(ELF, EM_X86_64 ),
608 LLVM_READOBJ_ENUM_ENT(ELF, EM_PDSP ),
609 LLVM_READOBJ_ENUM_ENT(ELF, EM_PDP10 ),
610 LLVM_READOBJ_ENUM_ENT(ELF, EM_PDP11 ),
611 LLVM_READOBJ_ENUM_ENT(ELF, EM_FX66 ),
612 LLVM_READOBJ_ENUM_ENT(ELF, EM_ST9PLUS ),
613 LLVM_READOBJ_ENUM_ENT(ELF, EM_ST7 ),
614 LLVM_READOBJ_ENUM_ENT(ELF, EM_68HC16 ),
615 LLVM_READOBJ_ENUM_ENT(ELF, EM_68HC11 ),
616 LLVM_READOBJ_ENUM_ENT(ELF, EM_68HC08 ),
617 LLVM_READOBJ_ENUM_ENT(ELF, EM_68HC05 ),
618 LLVM_READOBJ_ENUM_ENT(ELF, EM_SVX ),
619 LLVM_READOBJ_ENUM_ENT(ELF, EM_ST19 ),
620 LLVM_READOBJ_ENUM_ENT(ELF, EM_VAX ),
621 LLVM_READOBJ_ENUM_ENT(ELF, EM_CRIS ),
622 LLVM_READOBJ_ENUM_ENT(ELF, EM_JAVELIN ),
623 LLVM_READOBJ_ENUM_ENT(ELF, EM_FIREPATH ),
624 LLVM_READOBJ_ENUM_ENT(ELF, EM_ZSP ),
625 LLVM_READOBJ_ENUM_ENT(ELF, EM_MMIX ),
626 LLVM_READOBJ_ENUM_ENT(ELF, EM_HUANY ),
627 LLVM_READOBJ_ENUM_ENT(ELF, EM_PRISM ),
628 LLVM_READOBJ_ENUM_ENT(ELF, EM_AVR ),
629 LLVM_READOBJ_ENUM_ENT(ELF, EM_FR30 ),
630 LLVM_READOBJ_ENUM_ENT(ELF, EM_D10V ),
631 LLVM_READOBJ_ENUM_ENT(ELF, EM_D30V ),
632 LLVM_READOBJ_ENUM_ENT(ELF, EM_V850 ),
633 LLVM_READOBJ_ENUM_ENT(ELF, EM_M32R ),
634 LLVM_READOBJ_ENUM_ENT(ELF, EM_MN10300 ),
635 LLVM_READOBJ_ENUM_ENT(ELF, EM_MN10200 ),
636 LLVM_READOBJ_ENUM_ENT(ELF, EM_PJ ),
637 LLVM_READOBJ_ENUM_ENT(ELF, EM_OPENRISC ),
638 LLVM_READOBJ_ENUM_ENT(ELF, EM_ARC_COMPACT ),
639 LLVM_READOBJ_ENUM_ENT(ELF, EM_XTENSA ),
640 LLVM_READOBJ_ENUM_ENT(ELF, EM_VIDEOCORE ),
641 LLVM_READOBJ_ENUM_ENT(ELF, EM_TMM_GPP ),
642 LLVM_READOBJ_ENUM_ENT(ELF, EM_NS32K ),
643 LLVM_READOBJ_ENUM_ENT(ELF, EM_TPC ),
644 LLVM_READOBJ_ENUM_ENT(ELF, EM_SNP1K ),
645 LLVM_READOBJ_ENUM_ENT(ELF, EM_ST200 ),
646 LLVM_READOBJ_ENUM_ENT(ELF, EM_IP2K ),
647 LLVM_READOBJ_ENUM_ENT(ELF, EM_MAX ),
648 LLVM_READOBJ_ENUM_ENT(ELF, EM_CR ),
649 LLVM_READOBJ_ENUM_ENT(ELF, EM_F2MC16 ),
650 LLVM_READOBJ_ENUM_ENT(ELF, EM_MSP430 ),
651 LLVM_READOBJ_ENUM_ENT(ELF, EM_BLACKFIN ),
652 LLVM_READOBJ_ENUM_ENT(ELF, EM_SE_C33 ),
653 LLVM_READOBJ_ENUM_ENT(ELF, EM_SEP ),
654 LLVM_READOBJ_ENUM_ENT(ELF, EM_ARCA ),
655 LLVM_READOBJ_ENUM_ENT(ELF, EM_UNICORE ),
656 LLVM_READOBJ_ENUM_ENT(ELF, EM_EXCESS ),
657 LLVM_READOBJ_ENUM_ENT(ELF, EM_DXP ),
658 LLVM_READOBJ_ENUM_ENT(ELF, EM_ALTERA_NIOS2 ),
659 LLVM_READOBJ_ENUM_ENT(ELF, EM_CRX ),
660 LLVM_READOBJ_ENUM_ENT(ELF, EM_XGATE ),
661 LLVM_READOBJ_ENUM_ENT(ELF, EM_C166 ),
662 LLVM_READOBJ_ENUM_ENT(ELF, EM_M16C ),
663 LLVM_READOBJ_ENUM_ENT(ELF, EM_DSPIC30F ),
664 LLVM_READOBJ_ENUM_ENT(ELF, EM_CE ),
665 LLVM_READOBJ_ENUM_ENT(ELF, EM_M32C ),
666 LLVM_READOBJ_ENUM_ENT(ELF, EM_TSK3000 ),
667 LLVM_READOBJ_ENUM_ENT(ELF, EM_RS08 ),
668 LLVM_READOBJ_ENUM_ENT(ELF, EM_SHARC ),
669 LLVM_READOBJ_ENUM_ENT(ELF, EM_ECOG2 ),
670 LLVM_READOBJ_ENUM_ENT(ELF, EM_SCORE7 ),
671 LLVM_READOBJ_ENUM_ENT(ELF, EM_DSP24 ),
672 LLVM_READOBJ_ENUM_ENT(ELF, EM_VIDEOCORE3 ),
673 LLVM_READOBJ_ENUM_ENT(ELF, EM_LATTICEMICO32),
674 LLVM_READOBJ_ENUM_ENT(ELF, EM_SE_C17 ),
675 LLVM_READOBJ_ENUM_ENT(ELF, EM_TI_C6000 ),
676 LLVM_READOBJ_ENUM_ENT(ELF, EM_TI_C2000 ),
677 LLVM_READOBJ_ENUM_ENT(ELF, EM_TI_C5500 ),
678 LLVM_READOBJ_ENUM_ENT(ELF, EM_MMDSP_PLUS ),
679 LLVM_READOBJ_ENUM_ENT(ELF, EM_CYPRESS_M8C ),
680 LLVM_READOBJ_ENUM_ENT(ELF, EM_R32C ),
681 LLVM_READOBJ_ENUM_ENT(ELF, EM_TRIMEDIA ),
682 LLVM_READOBJ_ENUM_ENT(ELF, EM_HEXAGON ),
683 LLVM_READOBJ_ENUM_ENT(ELF, EM_8051 ),
684 LLVM_READOBJ_ENUM_ENT(ELF, EM_STXP7X ),
685 LLVM_READOBJ_ENUM_ENT(ELF, EM_NDS32 ),
686 LLVM_READOBJ_ENUM_ENT(ELF, EM_ECOG1 ),
687 LLVM_READOBJ_ENUM_ENT(ELF, EM_ECOG1X ),
688 LLVM_READOBJ_ENUM_ENT(ELF, EM_MAXQ30 ),
689 LLVM_READOBJ_ENUM_ENT(ELF, EM_XIMO16 ),
690 LLVM_READOBJ_ENUM_ENT(ELF, EM_MANIK ),
691 LLVM_READOBJ_ENUM_ENT(ELF, EM_CRAYNV2 ),
692 LLVM_READOBJ_ENUM_ENT(ELF, EM_RX ),
693 LLVM_READOBJ_ENUM_ENT(ELF, EM_METAG ),
694 LLVM_READOBJ_ENUM_ENT(ELF, EM_MCST_ELBRUS ),
695 LLVM_READOBJ_ENUM_ENT(ELF, EM_ECOG16 ),
696 LLVM_READOBJ_ENUM_ENT(ELF, EM_CR16 ),
697 LLVM_READOBJ_ENUM_ENT(ELF, EM_ETPU ),
698 LLVM_READOBJ_ENUM_ENT(ELF, EM_SLE9X ),
699 LLVM_READOBJ_ENUM_ENT(ELF, EM_L10M ),
700 LLVM_READOBJ_ENUM_ENT(ELF, EM_K10M ),
701 LLVM_READOBJ_ENUM_ENT(ELF, EM_AARCH64 ),
702 LLVM_READOBJ_ENUM_ENT(ELF, EM_AVR32 ),
703 LLVM_READOBJ_ENUM_ENT(ELF, EM_STM8 ),
704 LLVM_READOBJ_ENUM_ENT(ELF, EM_TILE64 ),
705 LLVM_READOBJ_ENUM_ENT(ELF, EM_TILEPRO ),
706 LLVM_READOBJ_ENUM_ENT(ELF, EM_CUDA ),
707 LLVM_READOBJ_ENUM_ENT(ELF, EM_TILEGX ),
708 LLVM_READOBJ_ENUM_ENT(ELF, EM_CLOUDSHIELD ),
709 LLVM_READOBJ_ENUM_ENT(ELF, EM_COREA_1ST ),
710 LLVM_READOBJ_ENUM_ENT(ELF, EM_COREA_2ND ),
711 LLVM_READOBJ_ENUM_ENT(ELF, EM_ARC_COMPACT2 ),
712 LLVM_READOBJ_ENUM_ENT(ELF, EM_OPEN8 ),
713 LLVM_READOBJ_ENUM_ENT(ELF, EM_RL78 ),
714 LLVM_READOBJ_ENUM_ENT(ELF, EM_VIDEOCORE5 ),
715 LLVM_READOBJ_ENUM_ENT(ELF, EM_78KOR ),
716 LLVM_READOBJ_ENUM_ENT(ELF, EM_56800EX ),
717 LLVM_READOBJ_ENUM_ENT(ELF, EM_AMDGPU ),
718 LLVM_READOBJ_ENUM_ENT(ELF, EM_WEBASSEMBLY ),
719};
720
721static const EnumEntry<unsigned> ElfSymbolBindings[] = {
722 { "Local", ELF::STB_LOCAL },
723 { "Global", ELF::STB_GLOBAL },
724 { "Weak", ELF::STB_WEAK },
725 { "Unique", ELF::STB_GNU_UNIQUE }
726};
727
728static const EnumEntry<unsigned> ElfSymbolTypes[] = {
729 { "None", ELF::STT_NOTYPE },
730 { "Object", ELF::STT_OBJECT },
731 { "Function", ELF::STT_FUNC },
732 { "Section", ELF::STT_SECTION },
733 { "File", ELF::STT_FILE },
734 { "Common", ELF::STT_COMMON },
735 { "TLS", ELF::STT_TLS },
736 { "GNU_IFunc", ELF::STT_GNU_IFUNC }
737};
738
739static const EnumEntry<unsigned> AMDGPUSymbolTypes[] = {
740 { "AMDGPU_HSA_KERNEL", ELF::STT_AMDGPU_HSA_KERNEL },
741 { "AMDGPU_HSA_INDIRECT_FUNCTION", ELF::STT_AMDGPU_HSA_INDIRECT_FUNCTION },
742 { "AMDGPU_HSA_METADATA", ELF::STT_AMDGPU_HSA_METADATA }
743};
744
745static const char *getElfSectionType(unsigned Arch, unsigned Type) {
746 switch (Arch) {
747 case ELF::EM_ARM:
748 switch (Type) {
749 LLVM_READOBJ_ENUM_CASE(ELF, SHT_ARM_EXIDX);
750 LLVM_READOBJ_ENUM_CASE(ELF, SHT_ARM_PREEMPTMAP);
751 LLVM_READOBJ_ENUM_CASE(ELF, SHT_ARM_ATTRIBUTES);
752 LLVM_READOBJ_ENUM_CASE(ELF, SHT_ARM_DEBUGOVERLAY);
753 LLVM_READOBJ_ENUM_CASE(ELF, SHT_ARM_OVERLAYSECTION);
754 }
755 case ELF::EM_HEXAGON:
756 switch (Type) { LLVM_READOBJ_ENUM_CASE(ELF, SHT_HEX_ORDERED); }
757 case ELF::EM_X86_64:
758 switch (Type) { LLVM_READOBJ_ENUM_CASE(ELF, SHT_X86_64_UNWIND); }
759 case ELF::EM_MIPS:
760 case ELF::EM_MIPS_RS3_LE:
761 switch (Type) {
762 LLVM_READOBJ_ENUM_CASE(ELF, SHT_MIPS_REGINFO);
763 LLVM_READOBJ_ENUM_CASE(ELF, SHT_MIPS_OPTIONS);
764 LLVM_READOBJ_ENUM_CASE(ELF, SHT_MIPS_ABIFLAGS);
765 }
766 }
767
768 switch (Type) {
769 LLVM_READOBJ_ENUM_CASE(ELF, SHT_NULL );
770 LLVM_READOBJ_ENUM_CASE(ELF, SHT_PROGBITS );
771 LLVM_READOBJ_ENUM_CASE(ELF, SHT_SYMTAB );
772 LLVM_READOBJ_ENUM_CASE(ELF, SHT_STRTAB );
773 LLVM_READOBJ_ENUM_CASE(ELF, SHT_RELA );
774 LLVM_READOBJ_ENUM_CASE(ELF, SHT_HASH );
775 LLVM_READOBJ_ENUM_CASE(ELF, SHT_DYNAMIC );
776 LLVM_READOBJ_ENUM_CASE(ELF, SHT_NOTE );
777 LLVM_READOBJ_ENUM_CASE(ELF, SHT_NOBITS );
778 LLVM_READOBJ_ENUM_CASE(ELF, SHT_REL );
779 LLVM_READOBJ_ENUM_CASE(ELF, SHT_SHLIB );
780 LLVM_READOBJ_ENUM_CASE(ELF, SHT_DYNSYM );
781 LLVM_READOBJ_ENUM_CASE(ELF, SHT_INIT_ARRAY );
782 LLVM_READOBJ_ENUM_CASE(ELF, SHT_FINI_ARRAY );
783 LLVM_READOBJ_ENUM_CASE(ELF, SHT_PREINIT_ARRAY );
784 LLVM_READOBJ_ENUM_CASE(ELF, SHT_GROUP );
785 LLVM_READOBJ_ENUM_CASE(ELF, SHT_SYMTAB_SHNDX );
786 LLVM_READOBJ_ENUM_CASE(ELF, SHT_GNU_ATTRIBUTES );
787 LLVM_READOBJ_ENUM_CASE(ELF, SHT_GNU_HASH );
788 LLVM_READOBJ_ENUM_CASE(ELF, SHT_GNU_verdef );
789 LLVM_READOBJ_ENUM_CASE(ELF, SHT_GNU_verneed );
790 LLVM_READOBJ_ENUM_CASE(ELF, SHT_GNU_versym );
791 default: return "";
792 }
793}
794
795static const EnumEntry<unsigned> ElfSectionFlags[] = {
796 LLVM_READOBJ_ENUM_ENT(ELF, SHF_WRITE ),
797 LLVM_READOBJ_ENUM_ENT(ELF, SHF_ALLOC ),
798 LLVM_READOBJ_ENUM_ENT(ELF, SHF_EXCLUDE ),
799 LLVM_READOBJ_ENUM_ENT(ELF, SHF_EXECINSTR ),
800 LLVM_READOBJ_ENUM_ENT(ELF, SHF_MERGE ),
801 LLVM_READOBJ_ENUM_ENT(ELF, SHF_STRINGS ),
802 LLVM_READOBJ_ENUM_ENT(ELF, SHF_INFO_LINK ),
803 LLVM_READOBJ_ENUM_ENT(ELF, SHF_LINK_ORDER ),
804 LLVM_READOBJ_ENUM_ENT(ELF, SHF_OS_NONCONFORMING),
805 LLVM_READOBJ_ENUM_ENT(ELF, SHF_GROUP ),
806 LLVM_READOBJ_ENUM_ENT(ELF, SHF_TLS ),
807 LLVM_READOBJ_ENUM_ENT(ELF, XCORE_SHF_CP_SECTION),
808 LLVM_READOBJ_ENUM_ENT(ELF, XCORE_SHF_DP_SECTION),
809 LLVM_READOBJ_ENUM_ENT(ELF, SHF_MIPS_NOSTRIP ),
810 LLVM_READOBJ_ENUM_ENT(ELF, SHF_AMDGPU_HSA_GLOBAL),
811 LLVM_READOBJ_ENUM_ENT(ELF, SHF_AMDGPU_HSA_READONLY),
812 LLVM_READOBJ_ENUM_ENT(ELF, SHF_AMDGPU_HSA_CODE),
813 LLVM_READOBJ_ENUM_ENT(ELF, SHF_AMDGPU_HSA_AGENT)
814};
815
816static const char *getElfSegmentType(unsigned Arch, unsigned Type) {
817 // Check potentially overlapped processor-specific
818 // program header type.
819 switch (Arch) {
820 case ELF::EM_AMDGPU:
821 switch (Type) {
822 LLVM_READOBJ_ENUM_CASE(ELF, PT_AMDGPU_HSA_LOAD_GLOBAL_PROGRAM);
823 LLVM_READOBJ_ENUM_CASE(ELF, PT_AMDGPU_HSA_LOAD_GLOBAL_AGENT);
824 LLVM_READOBJ_ENUM_CASE(ELF, PT_AMDGPU_HSA_LOAD_READONLY_AGENT);
825 LLVM_READOBJ_ENUM_CASE(ELF, PT_AMDGPU_HSA_LOAD_CODE_AGENT);
826 }
827 case ELF::EM_ARM:
828 switch (Type) {
829 LLVM_READOBJ_ENUM_CASE(ELF, PT_ARM_EXIDX);
830 }
831 case ELF::EM_MIPS:
832 case ELF::EM_MIPS_RS3_LE:
833 switch (Type) {
834 LLVM_READOBJ_ENUM_CASE(ELF, PT_MIPS_REGINFO);
835 LLVM_READOBJ_ENUM_CASE(ELF, PT_MIPS_RTPROC);
836 LLVM_READOBJ_ENUM_CASE(ELF, PT_MIPS_OPTIONS);
837 LLVM_READOBJ_ENUM_CASE(ELF, PT_MIPS_ABIFLAGS);
838 }
839 }
840
841 switch (Type) {
842 LLVM_READOBJ_ENUM_CASE(ELF, PT_NULL );
843 LLVM_READOBJ_ENUM_CASE(ELF, PT_LOAD );
844 LLVM_READOBJ_ENUM_CASE(ELF, PT_DYNAMIC);
845 LLVM_READOBJ_ENUM_CASE(ELF, PT_INTERP );
846 LLVM_READOBJ_ENUM_CASE(ELF, PT_NOTE );
847 LLVM_READOBJ_ENUM_CASE(ELF, PT_SHLIB );
848 LLVM_READOBJ_ENUM_CASE(ELF, PT_PHDR );
849 LLVM_READOBJ_ENUM_CASE(ELF, PT_TLS );
850
851 LLVM_READOBJ_ENUM_CASE(ELF, PT_GNU_EH_FRAME);
852 LLVM_READOBJ_ENUM_CASE(ELF, PT_SUNW_UNWIND);
853
854 LLVM_READOBJ_ENUM_CASE(ELF, PT_GNU_STACK);
855 LLVM_READOBJ_ENUM_CASE(ELF, PT_GNU_RELRO);
856 default: return "";
857 }
858}
859
860static const EnumEntry<unsigned> ElfSegmentFlags[] = {
861 LLVM_READOBJ_ENUM_ENT(ELF, PF_X),
862 LLVM_READOBJ_ENUM_ENT(ELF, PF_W),
863 LLVM_READOBJ_ENUM_ENT(ELF, PF_R)
864};
865
866static const EnumEntry<unsigned> ElfHeaderMipsFlags[] = {
867 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_NOREORDER),
868 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_PIC),
869 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_CPIC),
870 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ABI2),
871 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_32BITMODE),
872 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_FP64),
873 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_NAN2008),
874 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ABI_O32),
875 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ABI_O64),
876 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ABI_EABI32),
877 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ABI_EABI64),
878 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_3900),
879 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_4010),
880 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_4100),
881 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_4650),
882 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_4120),
883 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_4111),
884 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_SB1),
885 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_OCTEON),
886 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_XLR),
887 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_OCTEON2),
888 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_OCTEON3),
889 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_5400),
890 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_5900),
891 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_5500),
892 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_9000),
893 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_LS2E),
894 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_LS2F),
895 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MACH_LS3A),
896 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_MICROMIPS),
897 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_ASE_M16),
898 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_ASE_MDMX),
899 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_1),
900 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_2),
901 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_3),
902 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_4),
903 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_5),
904 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_32),
905 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_64),
906 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_32R2),
907 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_64R2),
908 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_32R6),
909 LLVM_READOBJ_ENUM_ENT(ELF, EF_MIPS_ARCH_64R6)
910};
911
912template <typename ELFT>
913ELFDumper<ELFT>::ELFDumper(const ELFFile<ELFT> *Obj, StreamWriter &Writer)
914 : ObjDumper(Writer), Obj(Obj) {
915
916 SmallVector<const Elf_Phdr *, 4> LoadSegments;
917 for (const Elf_Phdr &Phdr : Obj->program_headers()) {
918 if (Phdr.p_type == ELF::PT_DYNAMIC) {
919 DynamicProgHeader = &Phdr;
920 continue;
921 }
922 if (Phdr.p_type != ELF::PT_LOAD || Phdr.p_filesz == 0)
923 continue;
924 LoadSegments.push_back(&Phdr);
925 }
926
927 auto toMappedAddr = [&](uint64_t VAddr) -> const uint8_t * {
928 const Elf_Phdr **I = std::upper_bound(
929 LoadSegments.begin(), LoadSegments.end(), VAddr, compareAddr<ELFT>);
930 if (I == LoadSegments.begin())
931 report_fatal_error("Virtual address is not in any segment");
932 --I;
933 const Elf_Phdr &Phdr = **I;
934 uint64_t Delta = VAddr - Phdr.p_vaddr;
935 if (Delta >= Phdr.p_filesz)
936 report_fatal_error("Virtual address is not in any segment");
937 return Obj->base() + Phdr.p_offset + Delta;
938 };
939
940 uint64_t SONameOffset = 0;
941 const char *StringTableBegin = nullptr;
942 uint64_t StringTableSize = 0;
943 for (const Elf_Dyn &Dyn : dynamic_table()) {
944 switch (Dyn.d_tag) {
945 case ELF::DT_HASH:
946 HashTable =
947 reinterpret_cast<const Elf_Hash *>(toMappedAddr(Dyn.getPtr()));
948 break;
949 case ELF::DT_GNU_HASH:
950 GnuHashTable =
951 reinterpret_cast<const Elf_GnuHash *>(toMappedAddr(Dyn.getPtr()));
952 break;
Simon Atanasyan72155c32016-01-16 22:40:09 +0000953 case ELF::DT_REL:
954 DynRelRegion.Addr = toMappedAddr(Dyn.getPtr());
955 break;
956 case ELF::DT_RELSZ:
957 DynRelRegion.Size = Dyn.getVal();
958 break;
959 case ELF::DT_RELENT:
960 DynRelRegion.EntSize = Dyn.getVal();
961 break;
George Rimar47936762016-01-16 00:49:19 +0000962 case ELF::DT_RELA:
963 DynRelaRegion.Addr = toMappedAddr(Dyn.getPtr());
964 break;
965 case ELF::DT_RELASZ:
966 DynRelaRegion.Size = Dyn.getVal();
967 break;
968 case ELF::DT_RELAENT:
969 DynRelaRegion.EntSize = Dyn.getVal();
970 break;
971 case ELF::DT_SONAME:
972 SONameOffset = Dyn.getVal();
973 break;
974 case ELF::DT_STRTAB:
975 StringTableBegin = (const char *)toMappedAddr(Dyn.getPtr());
976 break;
977 case ELF::DT_STRSZ:
978 StringTableSize = Dyn.getVal();
979 break;
980 case ELF::DT_SYMTAB:
981 DynSymStart =
982 reinterpret_cast<const Elf_Sym *>(toMappedAddr(Dyn.getPtr()));
983 break;
984 }
985 }
986 if (StringTableBegin)
987 DynamicStringTable = StringRef(StringTableBegin, StringTableSize);
988 if (SONameOffset)
989 SOName = getDynamicString(SONameOffset);
990
991 for (const Elf_Shdr &Sec : Obj->sections()) {
992 switch (Sec.sh_type) {
993 case ELF::SHT_GNU_versym:
994 if (dot_gnu_version_sec != nullptr)
995 reportError("Multiple SHT_GNU_versym");
996 dot_gnu_version_sec = &Sec;
997 break;
998 case ELF::SHT_GNU_verdef:
999 if (dot_gnu_version_d_sec != nullptr)
1000 reportError("Multiple SHT_GNU_verdef");
1001 dot_gnu_version_d_sec = &Sec;
1002 break;
1003 case ELF::SHT_GNU_verneed:
1004 if (dot_gnu_version_r_sec != nullptr)
1005 reportError("Multilpe SHT_GNU_verneed");
1006 dot_gnu_version_r_sec = &Sec;
1007 break;
1008 case ELF::SHT_DYNSYM:
1009 if (DotDynSymSec != nullptr)
1010 reportError("Multilpe SHT_DYNSYM");
1011 DotDynSymSec = &Sec;
1012 break;
1013 case ELF::SHT_SYMTAB:
1014 if (DotSymtabSec != nullptr)
1015 reportError("Multilpe SHT_SYMTAB");
1016 DotSymtabSec = &Sec;
1017 break;
1018 case ELF::SHT_SYMTAB_SHNDX: {
1019 ErrorOr<ArrayRef<Elf_Word>> TableOrErr = Obj->getSHNDXTable(Sec);
1020 error(TableOrErr.getError());
1021 ShndxTable = *TableOrErr;
1022 break;
1023 }
1024 }
1025 }
1026}
1027
1028template <typename ELFT>
Simon Atanasyan72155c32016-01-16 22:40:09 +00001029template <typename RELA>
1030const RELA *ELFDumper<ELFT>::dyn_rela_begin(const DynRegionInfo &Region) {
1031 if (Region.Size && Region.EntSize != sizeof(RELA))
George Rimar47936762016-01-16 00:49:19 +00001032 report_fatal_error("Invalid relocation entry size");
Simon Atanasyan72155c32016-01-16 22:40:09 +00001033 return reinterpret_cast<const RELA *>(Region.Addr);
George Rimar47936762016-01-16 00:49:19 +00001034}
1035
1036template <typename ELFT>
Simon Atanasyan72155c32016-01-16 22:40:09 +00001037template <typename RELA>
1038const RELA *ELFDumper<ELFT>::dyn_rela_end(const DynRegionInfo &Region) {
1039 uint64_t Size = Region.Size;
1040 if (Size % sizeof(RELA))
George Rimar47936762016-01-16 00:49:19 +00001041 report_fatal_error("Invalid relocation table size");
Simon Atanasyan72155c32016-01-16 22:40:09 +00001042 return dyn_rela_begin<RELA>(Region) + Size / sizeof(RELA);
1043}
1044
1045template <typename ELFT>
1046typename ELFDumper<ELFT>::Elf_Rel_Range ELFDumper<ELFT>::dyn_rels() const {
1047 return make_range(dyn_rela_begin<Elf_Rel>(DynRelRegion),
1048 dyn_rela_end<Elf_Rel>(DynRelRegion));
George Rimar47936762016-01-16 00:49:19 +00001049}
1050
1051template <typename ELFT>
1052typename ELFDumper<ELFT>::Elf_Rela_Range ELFDumper<ELFT>::dyn_relas() const {
Simon Atanasyan72155c32016-01-16 22:40:09 +00001053 return make_range(dyn_rela_begin<Elf_Rela>(DynRelaRegion),
1054 dyn_rela_end<Elf_Rela>(DynRelaRegion));
George Rimar47936762016-01-16 00:49:19 +00001055}
1056
1057template<class ELFT>
1058void ELFDumper<ELFT>::printFileHeaders() {
1059 const Elf_Ehdr *Header = Obj->getHeader();
1060
1061 {
1062 DictScope D(W, "ElfHeader");
1063 {
1064 DictScope D(W, "Ident");
1065 W.printBinary("Magic", makeArrayRef(Header->e_ident).slice(ELF::EI_MAG0,
1066 4));
1067 W.printEnum ("Class", Header->e_ident[ELF::EI_CLASS],
1068 makeArrayRef(ElfClass));
1069 W.printEnum ("DataEncoding", Header->e_ident[ELF::EI_DATA],
1070 makeArrayRef(ElfDataEncoding));
1071 W.printNumber("FileVersion", Header->e_ident[ELF::EI_VERSION]);
1072
1073 // Handle architecture specific OS/ABI values.
1074 if (Header->e_machine == ELF::EM_AMDGPU &&
1075 Header->e_ident[ELF::EI_OSABI] == ELF::ELFOSABI_AMDGPU_HSA)
1076 W.printHex("OS/ABI", "AMDGPU_HSA", ELF::ELFOSABI_AMDGPU_HSA);
1077 else
1078 W.printEnum ("OS/ABI", Header->e_ident[ELF::EI_OSABI],
1079 makeArrayRef(ElfOSABI));
1080 W.printNumber("ABIVersion", Header->e_ident[ELF::EI_ABIVERSION]);
1081 W.printBinary("Unused", makeArrayRef(Header->e_ident).slice(ELF::EI_PAD));
1082 }
1083
1084 W.printEnum ("Type", Header->e_type, makeArrayRef(ElfObjectFileType));
1085 W.printEnum ("Machine", Header->e_machine, makeArrayRef(ElfMachineType));
1086 W.printNumber("Version", Header->e_version);
1087 W.printHex ("Entry", Header->e_entry);
1088 W.printHex ("ProgramHeaderOffset", Header->e_phoff);
1089 W.printHex ("SectionHeaderOffset", Header->e_shoff);
1090 if (Header->e_machine == EM_MIPS)
1091 W.printFlags("Flags", Header->e_flags, makeArrayRef(ElfHeaderMipsFlags),
1092 unsigned(ELF::EF_MIPS_ARCH), unsigned(ELF::EF_MIPS_ABI),
1093 unsigned(ELF::EF_MIPS_MACH));
1094 else
1095 W.printFlags("Flags", Header->e_flags);
1096 W.printNumber("HeaderSize", Header->e_ehsize);
1097 W.printNumber("ProgramHeaderEntrySize", Header->e_phentsize);
1098 W.printNumber("ProgramHeaderCount", Header->e_phnum);
1099 W.printNumber("SectionHeaderEntrySize", Header->e_shentsize);
1100 W.printNumber("SectionHeaderCount", Header->e_shnum);
1101 W.printNumber("StringTableSectionIndex", Header->e_shstrndx);
1102 }
1103}
1104
1105template<class ELFT>
1106void ELFDumper<ELFT>::printSections() {
1107 ListScope SectionsD(W, "Sections");
1108
1109 int SectionIndex = -1;
1110 for (const Elf_Shdr &Sec : Obj->sections()) {
1111 ++SectionIndex;
1112
1113 StringRef Name = errorOrDefault(Obj->getSectionName(&Sec));
1114
1115 DictScope SectionD(W, "Section");
1116 W.printNumber("Index", SectionIndex);
1117 W.printNumber("Name", Name, Sec.sh_name);
1118 W.printHex("Type",
1119 getElfSectionType(Obj->getHeader()->e_machine, Sec.sh_type),
1120 Sec.sh_type);
1121 W.printFlags("Flags", Sec.sh_flags, makeArrayRef(ElfSectionFlags));
1122 W.printHex("Address", Sec.sh_addr);
1123 W.printHex("Offset", Sec.sh_offset);
1124 W.printNumber("Size", Sec.sh_size);
1125 W.printNumber("Link", Sec.sh_link);
1126 W.printNumber("Info", Sec.sh_info);
1127 W.printNumber("AddressAlignment", Sec.sh_addralign);
1128 W.printNumber("EntrySize", Sec.sh_entsize);
1129
1130 if (opts::SectionRelocations) {
1131 ListScope D(W, "Relocations");
1132 printRelocations(&Sec);
1133 }
1134
1135 if (opts::SectionSymbols) {
1136 ListScope D(W, "Symbols");
1137 const Elf_Shdr *Symtab = DotSymtabSec;
1138 ErrorOr<StringRef> StrTableOrErr = Obj->getStringTableForSymtab(*Symtab);
1139 error(StrTableOrErr.getError());
1140 StringRef StrTable = *StrTableOrErr;
1141
1142 for (const Elf_Sym &Sym : Obj->symbols(Symtab)) {
1143 ErrorOr<const Elf_Shdr *> SymSec =
1144 Obj->getSection(&Sym, Symtab, ShndxTable);
1145 if (!SymSec)
1146 continue;
1147 if (*SymSec == &Sec)
1148 printSymbol(&Sym, Symtab, StrTable, false);
1149 }
1150 }
1151
1152 if (opts::SectionData && Sec.sh_type != ELF::SHT_NOBITS) {
1153 ArrayRef<uint8_t> Data = errorOrDefault(Obj->getSectionContents(&Sec));
1154 W.printBinaryBlock("SectionData",
1155 StringRef((const char *)Data.data(), Data.size()));
1156 }
1157 }
1158}
1159
1160template<class ELFT>
1161void ELFDumper<ELFT>::printRelocations() {
1162 ListScope D(W, "Relocations");
1163
1164 int SectionNumber = -1;
1165 for (const Elf_Shdr &Sec : Obj->sections()) {
1166 ++SectionNumber;
1167
1168 if (Sec.sh_type != ELF::SHT_REL && Sec.sh_type != ELF::SHT_RELA)
1169 continue;
1170
1171 StringRef Name = errorOrDefault(Obj->getSectionName(&Sec));
1172
1173 W.startLine() << "Section (" << SectionNumber << ") " << Name << " {\n";
1174 W.indent();
1175
1176 printRelocations(&Sec);
1177
1178 W.unindent();
1179 W.startLine() << "}\n";
1180 }
1181}
1182
Simon Atanasyan72155c32016-01-16 22:40:09 +00001183template <class ELFT> void ELFDumper<ELFT>::printDynamicRelocations() {
1184 if (DynRelRegion.Size && DynRelaRegion.Size)
1185 report_fatal_error("There are both REL and RELA dynamic relocations");
George Rimar47936762016-01-16 00:49:19 +00001186 W.startLine() << "Dynamic Relocations {\n";
1187 W.indent();
Simon Atanasyan72155c32016-01-16 22:40:09 +00001188 if (DynRelaRegion.Size > 0)
1189 for (const Elf_Rela &Rela : dyn_relas())
1190 printDynamicRelocation(Rela);
1191 else
1192 for (const Elf_Rel &Rel : dyn_rels()) {
1193 Elf_Rela Rela;
1194 Rela.r_offset = Rel.r_offset;
1195 Rela.r_info = Rel.r_info;
1196 Rela.r_addend = 0;
1197 printDynamicRelocation(Rela);
George Rimar47936762016-01-16 00:49:19 +00001198 }
George Rimar47936762016-01-16 00:49:19 +00001199 W.unindent();
1200 W.startLine() << "}\n";
1201}
1202
1203template <class ELFT>
1204void ELFDumper<ELFT>::printRelocations(const Elf_Shdr *Sec) {
1205 ErrorOr<const Elf_Shdr *> SymTabOrErr = Obj->getSection(Sec->sh_link);
1206 error(SymTabOrErr.getError());
1207 const Elf_Shdr *SymTab = *SymTabOrErr;
1208
1209 switch (Sec->sh_type) {
1210 case ELF::SHT_REL:
1211 for (const Elf_Rel &R : Obj->rels(Sec)) {
1212 Elf_Rela Rela;
1213 Rela.r_offset = R.r_offset;
1214 Rela.r_info = R.r_info;
1215 Rela.r_addend = 0;
1216 printRelocation(Rela, SymTab);
1217 }
1218 break;
1219 case ELF::SHT_RELA:
1220 for (const Elf_Rela &R : Obj->relas(Sec))
1221 printRelocation(R, SymTab);
1222 break;
1223 }
1224}
1225
1226template <class ELFT>
1227void ELFDumper<ELFT>::printRelocation(Elf_Rela Rel, const Elf_Shdr *SymTab) {
1228 SmallString<32> RelocName;
1229 Obj->getRelocationTypeName(Rel.getType(Obj->isMips64EL()), RelocName);
1230 StringRef TargetName;
1231 const Elf_Sym *Sym = Obj->getRelocationSymbol(&Rel, SymTab);
1232 if (Sym && Sym->getType() == ELF::STT_SECTION) {
1233 ErrorOr<const Elf_Shdr *> Sec = Obj->getSection(Sym, SymTab, ShndxTable);
1234 error(Sec.getError());
1235 ErrorOr<StringRef> SecName = Obj->getSectionName(*Sec);
1236 if (SecName)
1237 TargetName = SecName.get();
1238 } else if (Sym) {
1239 ErrorOr<StringRef> StrTableOrErr = Obj->getStringTableForSymtab(*SymTab);
1240 error(StrTableOrErr.getError());
1241 TargetName = errorOrDefault(Sym->getName(*StrTableOrErr));
1242 }
1243
1244 if (opts::ExpandRelocs) {
1245 DictScope Group(W, "Relocation");
1246 W.printHex("Offset", Rel.r_offset);
1247 W.printNumber("Type", RelocName, (int)Rel.getType(Obj->isMips64EL()));
1248 W.printNumber("Symbol", TargetName.size() > 0 ? TargetName : "-",
1249 Rel.getSymbol(Obj->isMips64EL()));
1250 W.printHex("Addend", Rel.r_addend);
1251 } else {
1252 raw_ostream& OS = W.startLine();
1253 OS << W.hex(Rel.r_offset) << " " << RelocName << " "
1254 << (TargetName.size() > 0 ? TargetName : "-") << " "
1255 << W.hex(Rel.r_addend) << "\n";
1256 }
1257}
1258
Simon Atanasyan72155c32016-01-16 22:40:09 +00001259template <class ELFT>
1260void ELFDumper<ELFT>::printDynamicRelocation(Elf_Rela Rel) {
1261 SmallString<32> RelocName;
1262 Obj->getRelocationTypeName(Rel.getType(Obj->isMips64EL()), RelocName);
1263 StringRef SymbolName;
1264 uint32_t SymIndex = Rel.getSymbol(Obj->isMips64EL());
1265 const Elf_Sym *Sym = DynSymStart + SymIndex;
1266 SymbolName = errorOrDefault(Sym->getName(DynamicStringTable));
1267 if (opts::ExpandRelocs) {
1268 DictScope Group(W, "Relocation");
1269 W.printHex("Offset", Rel.r_offset);
1270 W.printNumber("Type", RelocName, (int)Rel.getType(Obj->isMips64EL()));
1271 W.printString("Symbol", SymbolName.size() > 0 ? SymbolName : "-");
1272 W.printHex("Addend", Rel.r_addend);
1273 } else {
1274 raw_ostream &OS = W.startLine();
1275 OS << W.hex(Rel.r_offset) << " " << RelocName << " "
1276 << (SymbolName.size() > 0 ? SymbolName : "-") << " "
1277 << W.hex(Rel.r_addend) << "\n";
1278 }
1279}
1280
George Rimar47936762016-01-16 00:49:19 +00001281template<class ELFT>
1282void ELFDumper<ELFT>::printSymbolsHelper(bool IsDynamic) {
1283 const Elf_Shdr *Symtab = (IsDynamic) ? DotDynSymSec : DotSymtabSec;
1284 if (!Symtab)
1285 return;
1286 ErrorOr<StringRef> StrTableOrErr = Obj->getStringTableForSymtab(*Symtab);
1287 error(StrTableOrErr.getError());
1288 StringRef StrTable = *StrTableOrErr;
1289 for (const Elf_Sym &Sym : Obj->symbols(Symtab))
1290 printSymbol(&Sym, Symtab, StrTable, IsDynamic);
1291}
1292
1293template<class ELFT>
1294void ELFDumper<ELFT>::printSymbols() {
1295 ListScope Group(W, "Symbols");
1296 printSymbolsHelper(false);
1297}
1298
1299template<class ELFT>
1300void ELFDumper<ELFT>::printDynamicSymbols() {
1301 ListScope Group(W, "DynamicSymbols");
1302 printSymbolsHelper(true);
1303}
1304
1305template <class ELFT>
1306void ELFDumper<ELFT>::printSymbol(const Elf_Sym *Symbol, const Elf_Shdr *SymTab,
1307 StringRef StrTable, bool IsDynamic) {
1308 unsigned SectionIndex = 0;
1309 StringRef SectionName;
1310 getSectionNameIndex(*Obj, Symbol, SymTab, ShndxTable, SectionName,
1311 SectionIndex);
1312 std::string FullSymbolName = getFullSymbolName(Symbol, StrTable, IsDynamic);
1313 unsigned char SymbolType = Symbol->getType();
1314
1315 DictScope D(W, "Symbol");
1316 W.printNumber("Name", FullSymbolName, Symbol->st_name);
1317 W.printHex ("Value", Symbol->st_value);
1318 W.printNumber("Size", Symbol->st_size);
1319 W.printEnum ("Binding", Symbol->getBinding(),
1320 makeArrayRef(ElfSymbolBindings));
1321 if (Obj->getHeader()->e_machine == ELF::EM_AMDGPU &&
1322 SymbolType >= ELF::STT_LOOS && SymbolType < ELF::STT_HIOS)
1323 W.printEnum ("Type", SymbolType, makeArrayRef(AMDGPUSymbolTypes));
1324 else
1325 W.printEnum ("Type", SymbolType, makeArrayRef(ElfSymbolTypes));
1326 W.printNumber("Other", Symbol->st_other);
1327 W.printHex("Section", SectionName, SectionIndex);
1328}
1329
1330#define LLVM_READOBJ_TYPE_CASE(name) \
1331 case DT_##name: return #name
1332
1333static const char *getTypeString(uint64_t Type) {
1334 switch (Type) {
1335 LLVM_READOBJ_TYPE_CASE(BIND_NOW);
1336 LLVM_READOBJ_TYPE_CASE(DEBUG);
1337 LLVM_READOBJ_TYPE_CASE(FINI);
1338 LLVM_READOBJ_TYPE_CASE(FINI_ARRAY);
1339 LLVM_READOBJ_TYPE_CASE(FINI_ARRAYSZ);
1340 LLVM_READOBJ_TYPE_CASE(FLAGS);
1341 LLVM_READOBJ_TYPE_CASE(FLAGS_1);
1342 LLVM_READOBJ_TYPE_CASE(HASH);
1343 LLVM_READOBJ_TYPE_CASE(INIT);
1344 LLVM_READOBJ_TYPE_CASE(INIT_ARRAY);
1345 LLVM_READOBJ_TYPE_CASE(INIT_ARRAYSZ);
1346 LLVM_READOBJ_TYPE_CASE(PREINIT_ARRAY);
1347 LLVM_READOBJ_TYPE_CASE(PREINIT_ARRAYSZ);
1348 LLVM_READOBJ_TYPE_CASE(JMPREL);
1349 LLVM_READOBJ_TYPE_CASE(NEEDED);
1350 LLVM_READOBJ_TYPE_CASE(NULL);
1351 LLVM_READOBJ_TYPE_CASE(PLTGOT);
1352 LLVM_READOBJ_TYPE_CASE(PLTREL);
1353 LLVM_READOBJ_TYPE_CASE(PLTRELSZ);
1354 LLVM_READOBJ_TYPE_CASE(REL);
1355 LLVM_READOBJ_TYPE_CASE(RELA);
1356 LLVM_READOBJ_TYPE_CASE(RELENT);
1357 LLVM_READOBJ_TYPE_CASE(RELSZ);
1358 LLVM_READOBJ_TYPE_CASE(RELAENT);
1359 LLVM_READOBJ_TYPE_CASE(RELASZ);
1360 LLVM_READOBJ_TYPE_CASE(RPATH);
1361 LLVM_READOBJ_TYPE_CASE(RUNPATH);
1362 LLVM_READOBJ_TYPE_CASE(SONAME);
1363 LLVM_READOBJ_TYPE_CASE(STRSZ);
1364 LLVM_READOBJ_TYPE_CASE(STRTAB);
1365 LLVM_READOBJ_TYPE_CASE(SYMBOLIC);
1366 LLVM_READOBJ_TYPE_CASE(SYMENT);
1367 LLVM_READOBJ_TYPE_CASE(SYMTAB);
1368 LLVM_READOBJ_TYPE_CASE(TEXTREL);
1369 LLVM_READOBJ_TYPE_CASE(VERDEF);
1370 LLVM_READOBJ_TYPE_CASE(VERDEFNUM);
1371 LLVM_READOBJ_TYPE_CASE(VERNEED);
1372 LLVM_READOBJ_TYPE_CASE(VERNEEDNUM);
George Rimare05fcec2016-01-16 10:38:32 +00001373 LLVM_READOBJ_TYPE_CASE(VERSYM);
Davide Italiano8c503672016-01-16 06:06:36 +00001374 LLVM_READOBJ_TYPE_CASE(RELACOUNT);
George Rimare05fcec2016-01-16 10:38:32 +00001375 LLVM_READOBJ_TYPE_CASE(RELCOUNT);
1376 LLVM_READOBJ_TYPE_CASE(GNU_HASH);
1377 LLVM_READOBJ_TYPE_CASE(TLSDESC_PLT);
1378 LLVM_READOBJ_TYPE_CASE(TLSDESC_GOT);
1379 LLVM_READOBJ_TYPE_CASE(MIPS_RLD_VERSION);
1380 LLVM_READOBJ_TYPE_CASE(MIPS_RLD_MAP_REL);
1381 LLVM_READOBJ_TYPE_CASE(MIPS_FLAGS);
George Rimar47936762016-01-16 00:49:19 +00001382 LLVM_READOBJ_TYPE_CASE(MIPS_BASE_ADDRESS);
1383 LLVM_READOBJ_TYPE_CASE(MIPS_LOCAL_GOTNO);
1384 LLVM_READOBJ_TYPE_CASE(MIPS_SYMTABNO);
1385 LLVM_READOBJ_TYPE_CASE(MIPS_UNREFEXTNO);
1386 LLVM_READOBJ_TYPE_CASE(MIPS_GOTSYM);
1387 LLVM_READOBJ_TYPE_CASE(MIPS_RLD_MAP);
1388 LLVM_READOBJ_TYPE_CASE(MIPS_PLTGOT);
1389 LLVM_READOBJ_TYPE_CASE(MIPS_OPTIONS);
1390 default: return "unknown";
1391 }
1392}
1393
1394#undef LLVM_READOBJ_TYPE_CASE
1395
1396#define LLVM_READOBJ_DT_FLAG_ENT(prefix, enum) \
1397 { #enum, prefix##_##enum }
1398
1399static const EnumEntry<unsigned> ElfDynamicDTFlags[] = {
1400 LLVM_READOBJ_DT_FLAG_ENT(DF, ORIGIN),
1401 LLVM_READOBJ_DT_FLAG_ENT(DF, SYMBOLIC),
1402 LLVM_READOBJ_DT_FLAG_ENT(DF, TEXTREL),
1403 LLVM_READOBJ_DT_FLAG_ENT(DF, BIND_NOW),
1404 LLVM_READOBJ_DT_FLAG_ENT(DF, STATIC_TLS)
1405};
1406
1407static const EnumEntry<unsigned> ElfDynamicDTFlags1[] = {
1408 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NOW),
1409 LLVM_READOBJ_DT_FLAG_ENT(DF_1, GLOBAL),
1410 LLVM_READOBJ_DT_FLAG_ENT(DF_1, GROUP),
1411 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NODELETE),
1412 LLVM_READOBJ_DT_FLAG_ENT(DF_1, LOADFLTR),
1413 LLVM_READOBJ_DT_FLAG_ENT(DF_1, INITFIRST),
1414 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NOOPEN),
1415 LLVM_READOBJ_DT_FLAG_ENT(DF_1, ORIGIN),
1416 LLVM_READOBJ_DT_FLAG_ENT(DF_1, DIRECT),
1417 LLVM_READOBJ_DT_FLAG_ENT(DF_1, TRANS),
1418 LLVM_READOBJ_DT_FLAG_ENT(DF_1, INTERPOSE),
1419 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NODEFLIB),
1420 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NODUMP),
1421 LLVM_READOBJ_DT_FLAG_ENT(DF_1, CONFALT),
1422 LLVM_READOBJ_DT_FLAG_ENT(DF_1, ENDFILTEE),
1423 LLVM_READOBJ_DT_FLAG_ENT(DF_1, DISPRELDNE),
1424 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NODIRECT),
1425 LLVM_READOBJ_DT_FLAG_ENT(DF_1, IGNMULDEF),
1426 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NOKSYMS),
1427 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NOHDR),
1428 LLVM_READOBJ_DT_FLAG_ENT(DF_1, EDITED),
1429 LLVM_READOBJ_DT_FLAG_ENT(DF_1, NORELOC),
1430 LLVM_READOBJ_DT_FLAG_ENT(DF_1, SYMINTPOSE),
1431 LLVM_READOBJ_DT_FLAG_ENT(DF_1, GLOBAUDIT),
1432 LLVM_READOBJ_DT_FLAG_ENT(DF_1, SINGLETON)
1433};
1434
1435static const EnumEntry<unsigned> ElfDynamicDTMipsFlags[] = {
1436 LLVM_READOBJ_DT_FLAG_ENT(RHF, NONE),
1437 LLVM_READOBJ_DT_FLAG_ENT(RHF, QUICKSTART),
1438 LLVM_READOBJ_DT_FLAG_ENT(RHF, NOTPOT),
1439 LLVM_READOBJ_DT_FLAG_ENT(RHS, NO_LIBRARY_REPLACEMENT),
1440 LLVM_READOBJ_DT_FLAG_ENT(RHF, NO_MOVE),
1441 LLVM_READOBJ_DT_FLAG_ENT(RHF, SGI_ONLY),
1442 LLVM_READOBJ_DT_FLAG_ENT(RHF, GUARANTEE_INIT),
1443 LLVM_READOBJ_DT_FLAG_ENT(RHF, DELTA_C_PLUS_PLUS),
1444 LLVM_READOBJ_DT_FLAG_ENT(RHF, GUARANTEE_START_INIT),
1445 LLVM_READOBJ_DT_FLAG_ENT(RHF, PIXIE),
1446 LLVM_READOBJ_DT_FLAG_ENT(RHF, DEFAULT_DELAY_LOAD),
1447 LLVM_READOBJ_DT_FLAG_ENT(RHF, REQUICKSTART),
1448 LLVM_READOBJ_DT_FLAG_ENT(RHF, REQUICKSTARTED),
1449 LLVM_READOBJ_DT_FLAG_ENT(RHF, CORD),
1450 LLVM_READOBJ_DT_FLAG_ENT(RHF, NO_UNRES_UNDEF),
1451 LLVM_READOBJ_DT_FLAG_ENT(RHF, RLD_ORDER_SAFE)
1452};
1453
1454#undef LLVM_READOBJ_DT_FLAG_ENT
1455
1456template <typename T, typename TFlag>
1457void printFlags(T Value, ArrayRef<EnumEntry<TFlag>> Flags, raw_ostream &OS) {
1458 typedef EnumEntry<TFlag> FlagEntry;
1459 typedef SmallVector<FlagEntry, 10> FlagVector;
1460 FlagVector SetFlags;
1461
1462 for (const auto &Flag : Flags) {
1463 if (Flag.Value == 0)
1464 continue;
1465
1466 if ((Value & Flag.Value) == Flag.Value)
1467 SetFlags.push_back(Flag);
1468 }
1469
1470 for (const auto &Flag : SetFlags) {
1471 OS << Flag.Name << " ";
1472 }
1473}
1474
1475template <class ELFT>
1476StringRef ELFDumper<ELFT>::getDynamicString(uint64_t Value) const {
1477 if (Value >= DynamicStringTable.size())
1478 reportError("Invalid dynamic string table reference");
1479 return StringRef(DynamicStringTable.data() + Value);
1480}
1481
1482template <class ELFT>
1483void ELFDumper<ELFT>::printValue(uint64_t Type, uint64_t Value) {
1484 raw_ostream &OS = W.getOStream();
1485 switch (Type) {
1486 case DT_PLTREL:
1487 if (Value == DT_REL) {
1488 OS << "REL";
1489 break;
1490 } else if (Value == DT_RELA) {
1491 OS << "RELA";
1492 break;
1493 }
1494 // Fallthrough.
1495 case DT_PLTGOT:
1496 case DT_HASH:
1497 case DT_STRTAB:
1498 case DT_SYMTAB:
1499 case DT_RELA:
1500 case DT_INIT:
1501 case DT_FINI:
1502 case DT_REL:
1503 case DT_JMPREL:
1504 case DT_INIT_ARRAY:
1505 case DT_FINI_ARRAY:
1506 case DT_PREINIT_ARRAY:
1507 case DT_DEBUG:
1508 case DT_VERDEF:
1509 case DT_VERNEED:
1510 case DT_VERSYM:
1511 case DT_GNU_HASH:
1512 case DT_NULL:
1513 case DT_MIPS_BASE_ADDRESS:
1514 case DT_MIPS_GOTSYM:
1515 case DT_MIPS_RLD_MAP:
1516 case DT_MIPS_RLD_MAP_REL:
1517 case DT_MIPS_PLTGOT:
1518 case DT_MIPS_OPTIONS:
1519 OS << format("0x%" PRIX64, Value);
1520 break;
Davide Italiano8c503672016-01-16 06:06:36 +00001521 case DT_RELACOUNT:
George Rimar47936762016-01-16 00:49:19 +00001522 case DT_RELCOUNT:
1523 case DT_VERDEFNUM:
1524 case DT_VERNEEDNUM:
1525 case DT_MIPS_RLD_VERSION:
1526 case DT_MIPS_LOCAL_GOTNO:
1527 case DT_MIPS_SYMTABNO:
1528 case DT_MIPS_UNREFEXTNO:
1529 OS << Value;
1530 break;
1531 case DT_PLTRELSZ:
1532 case DT_RELASZ:
1533 case DT_RELAENT:
1534 case DT_STRSZ:
1535 case DT_SYMENT:
1536 case DT_RELSZ:
1537 case DT_RELENT:
1538 case DT_INIT_ARRAYSZ:
1539 case DT_FINI_ARRAYSZ:
1540 case DT_PREINIT_ARRAYSZ:
1541 OS << Value << " (bytes)";
1542 break;
1543 case DT_NEEDED:
1544 OS << "SharedLibrary (" << getDynamicString(Value) << ")";
1545 break;
1546 case DT_SONAME:
1547 OS << "LibrarySoname (" << getDynamicString(Value) << ")";
1548 break;
1549 case DT_RPATH:
1550 case DT_RUNPATH:
1551 OS << getDynamicString(Value);
1552 break;
1553 case DT_MIPS_FLAGS:
1554 printFlags(Value, makeArrayRef(ElfDynamicDTMipsFlags), OS);
1555 break;
1556 case DT_FLAGS:
1557 printFlags(Value, makeArrayRef(ElfDynamicDTFlags), OS);
1558 break;
1559 case DT_FLAGS_1:
1560 printFlags(Value, makeArrayRef(ElfDynamicDTFlags1), OS);
1561 break;
1562 default:
1563 OS << format("0x%" PRIX64, Value);
1564 break;
1565 }
1566}
1567
1568template<class ELFT>
1569void ELFDumper<ELFT>::printUnwindInfo() {
1570 W.startLine() << "UnwindInfo not implemented.\n";
1571}
1572
1573namespace {
1574template <> void ELFDumper<ELFType<support::little, false>>::printUnwindInfo() {
1575 const unsigned Machine = Obj->getHeader()->e_machine;
1576 if (Machine == EM_ARM) {
1577 ARM::EHABI::PrinterContext<ELFType<support::little, false>> Ctx(
1578 W, Obj, DotSymtabSec);
1579 return Ctx.PrintUnwindInformation();
1580 }
1581 W.startLine() << "UnwindInfo not implemented.\n";
1582}
1583}
1584
1585template<class ELFT>
1586void ELFDumper<ELFT>::printDynamicTable() {
1587 auto I = dynamic_table_begin();
1588 auto E = dynamic_table_end();
1589
1590 if (I == E)
1591 return;
1592
1593 --E;
1594 while (I != E && E->getTag() == ELF::DT_NULL)
1595 --E;
1596 if (E->getTag() != ELF::DT_NULL)
1597 ++E;
1598 ++E;
1599
1600 ptrdiff_t Total = std::distance(I, E);
1601 if (Total == 0)
1602 return;
1603
1604 raw_ostream &OS = W.getOStream();
1605 W.startLine() << "DynamicSection [ (" << Total << " entries)\n";
1606
1607 bool Is64 = ELFT::Is64Bits;
1608
1609 W.startLine()
1610 << " Tag" << (Is64 ? " " : " ") << "Type"
1611 << " " << "Name/Value\n";
1612 while (I != E) {
1613 const Elf_Dyn &Entry = *I;
1614 uintX_t Tag = Entry.getTag();
1615 ++I;
1616 W.startLine() << " " << format_hex(Tag, Is64 ? 18 : 10, true) << " "
1617 << format("%-21s", getTypeString(Tag));
1618 printValue(Tag, Entry.getVal());
1619 OS << "\n";
1620 }
1621
1622 W.startLine() << "]\n";
1623}
1624
1625template<class ELFT>
1626void ELFDumper<ELFT>::printNeededLibraries() {
1627 ListScope D(W, "NeededLibraries");
1628
1629 typedef std::vector<StringRef> LibsTy;
1630 LibsTy Libs;
1631
1632 for (const auto &Entry : dynamic_table())
1633 if (Entry.d_tag == ELF::DT_NEEDED)
1634 Libs.push_back(getDynamicString(Entry.d_un.d_val));
1635
1636 std::stable_sort(Libs.begin(), Libs.end());
1637
1638 for (const auto &L : Libs) {
1639 outs() << " " << L << "\n";
1640 }
1641}
1642
1643template<class ELFT>
1644void ELFDumper<ELFT>::printProgramHeaders() {
1645 ListScope L(W, "ProgramHeaders");
1646
1647 for (const Elf_Phdr &Phdr : Obj->program_headers()) {
1648 DictScope P(W, "ProgramHeader");
1649 W.printHex("Type",
1650 getElfSegmentType(Obj->getHeader()->e_machine, Phdr.p_type),
1651 Phdr.p_type);
1652 W.printHex("Offset", Phdr.p_offset);
1653 W.printHex("VirtualAddress", Phdr.p_vaddr);
1654 W.printHex("PhysicalAddress", Phdr.p_paddr);
1655 W.printNumber("FileSize", Phdr.p_filesz);
1656 W.printNumber("MemSize", Phdr.p_memsz);
1657 W.printFlags("Flags", Phdr.p_flags, makeArrayRef(ElfSegmentFlags));
1658 W.printNumber("Alignment", Phdr.p_align);
1659 }
1660}
1661
1662template <typename ELFT>
1663void ELFDumper<ELFT>::printHashTable() {
1664 DictScope D(W, "HashTable");
1665 if (!HashTable)
1666 return;
1667 W.printNumber("Num Buckets", HashTable->nbucket);
1668 W.printNumber("Num Chains", HashTable->nchain);
1669 W.printList("Buckets", HashTable->buckets());
1670 W.printList("Chains", HashTable->chains());
1671}
1672
1673template <typename ELFT>
1674void ELFDumper<ELFT>::printGnuHashTable() {
1675 DictScope D(W, "GnuHashTable");
1676 if (!GnuHashTable)
1677 return;
1678 W.printNumber("Num Buckets", GnuHashTable->nbuckets);
1679 W.printNumber("First Hashed Symbol Index", GnuHashTable->symndx);
1680 W.printNumber("Num Mask Words", GnuHashTable->maskwords);
1681 W.printNumber("Shift Count", GnuHashTable->shift2);
1682 W.printHexList("Bloom Filter", GnuHashTable->filter());
1683 W.printList("Buckets", GnuHashTable->buckets());
1684 if (!DotDynSymSec)
1685 reportError("No dynamic symbol section");
1686 W.printHexList("Values",
1687 GnuHashTable->values(DotDynSymSec->getEntityCount()));
1688}
1689
1690template <typename ELFT> void ELFDumper<ELFT>::printLoadName() {
1691 outs() << "LoadName: " << SOName << '\n';
1692}
1693
1694template <class ELFT>
1695void ELFDumper<ELFT>::printAttributes() {
1696 W.startLine() << "Attributes not implemented.\n";
1697}
1698
1699namespace {
1700template <> void ELFDumper<ELFType<support::little, false>>::printAttributes() {
1701 if (Obj->getHeader()->e_machine != EM_ARM) {
1702 W.startLine() << "Attributes not implemented.\n";
1703 return;
1704 }
1705
1706 DictScope BA(W, "BuildAttributes");
1707 for (const ELFO::Elf_Shdr &Sec : Obj->sections()) {
1708 if (Sec.sh_type != ELF::SHT_ARM_ATTRIBUTES)
1709 continue;
1710
1711 ErrorOr<ArrayRef<uint8_t>> Contents = Obj->getSectionContents(&Sec);
1712 if (!Contents)
1713 continue;
1714
1715 if ((*Contents)[0] != ARMBuildAttrs::Format_Version) {
1716 errs() << "unrecognised FormatVersion: 0x" << utohexstr((*Contents)[0])
1717 << '\n';
1718 continue;
1719 }
1720
1721 W.printHex("FormatVersion", (*Contents)[0]);
1722 if (Contents->size() == 1)
1723 continue;
1724
1725 ARMAttributeParser(W).Parse(*Contents);
1726 }
1727}
1728}
1729
1730namespace {
1731template <class ELFT> class MipsGOTParser {
1732public:
1733 typedef object::ELFFile<ELFT> ELFO;
1734 typedef typename ELFO::Elf_Shdr Elf_Shdr;
1735 typedef typename ELFO::Elf_Sym Elf_Sym;
1736 typedef typename ELFO::Elf_Dyn_Range Elf_Dyn_Range;
1737 typedef typename ELFO::Elf_Addr GOTEntry;
1738 typedef typename ELFO::Elf_Rel Elf_Rel;
1739 typedef typename ELFO::Elf_Rela Elf_Rela;
1740
1741 MipsGOTParser(ELFDumper<ELFT> *Dumper, const ELFO *Obj,
1742 Elf_Dyn_Range DynTable, StreamWriter &W);
1743
1744 void parseGOT();
1745 void parsePLT();
1746
1747private:
1748 ELFDumper<ELFT> *Dumper;
1749 const ELFO *Obj;
1750 StreamWriter &W;
1751 llvm::Optional<uint64_t> DtPltGot;
1752 llvm::Optional<uint64_t> DtLocalGotNum;
1753 llvm::Optional<uint64_t> DtGotSym;
1754 llvm::Optional<uint64_t> DtMipsPltGot;
1755 llvm::Optional<uint64_t> DtJmpRel;
1756
1757 std::size_t getGOTTotal(ArrayRef<uint8_t> GOT) const;
1758 const GOTEntry *makeGOTIter(ArrayRef<uint8_t> GOT, std::size_t EntryNum);
1759
1760 void printGotEntry(uint64_t GotAddr, const GOTEntry *BeginIt,
1761 const GOTEntry *It);
1762 void printGlobalGotEntry(uint64_t GotAddr, const GOTEntry *BeginIt,
1763 const GOTEntry *It, const Elf_Sym *Sym,
1764 StringRef StrTable, bool IsDynamic);
1765 void printPLTEntry(uint64_t PLTAddr, const GOTEntry *BeginIt,
1766 const GOTEntry *It, StringRef Purpose);
1767 void printPLTEntry(uint64_t PLTAddr, const GOTEntry *BeginIt,
1768 const GOTEntry *It, StringRef StrTable,
1769 const Elf_Sym *Sym);
1770};
1771}
1772
1773template <class ELFT>
1774MipsGOTParser<ELFT>::MipsGOTParser(ELFDumper<ELFT> *Dumper, const ELFO *Obj,
1775 Elf_Dyn_Range DynTable, StreamWriter &W)
1776 : Dumper(Dumper), Obj(Obj), W(W) {
1777 for (const auto &Entry : DynTable) {
1778 switch (Entry.getTag()) {
1779 case ELF::DT_PLTGOT:
1780 DtPltGot = Entry.getVal();
1781 break;
1782 case ELF::DT_MIPS_LOCAL_GOTNO:
1783 DtLocalGotNum = Entry.getVal();
1784 break;
1785 case ELF::DT_MIPS_GOTSYM:
1786 DtGotSym = Entry.getVal();
1787 break;
1788 case ELF::DT_MIPS_PLTGOT:
1789 DtMipsPltGot = Entry.getVal();
1790 break;
1791 case ELF::DT_JMPREL:
1792 DtJmpRel = Entry.getVal();
1793 break;
1794 }
1795 }
1796}
1797
1798template <class ELFT> void MipsGOTParser<ELFT>::parseGOT() {
1799 // See "Global Offset Table" in Chapter 5 in the following document
1800 // for detailed GOT description.
1801 // ftp://www.linux-mips.org/pub/linux/mips/doc/ABI/mipsabi.pdf
1802 if (!DtPltGot) {
1803 W.startLine() << "Cannot find PLTGOT dynamic table tag.\n";
1804 return;
1805 }
1806 if (!DtLocalGotNum) {
1807 W.startLine() << "Cannot find MIPS_LOCAL_GOTNO dynamic table tag.\n";
1808 return;
1809 }
1810 if (!DtGotSym) {
1811 W.startLine() << "Cannot find MIPS_GOTSYM dynamic table tag.\n";
1812 return;
1813 }
1814
1815 const Elf_Shdr *GOTShdr = findSectionByAddress(Obj, *DtPltGot);
1816 if (!GOTShdr) {
1817 W.startLine() << "There is no .got section in the file.\n";
1818 return;
1819 }
1820
1821 ErrorOr<ArrayRef<uint8_t>> GOT = Obj->getSectionContents(GOTShdr);
1822 if (!GOT) {
1823 W.startLine() << "The .got section is empty.\n";
1824 return;
1825 }
1826
1827 if (*DtLocalGotNum > getGOTTotal(*GOT)) {
1828 W.startLine() << "MIPS_LOCAL_GOTNO exceeds a number of GOT entries.\n";
1829 return;
1830 }
1831
1832 const Elf_Shdr *DynSymSec = Dumper->getDotDynSymSec();
1833 ErrorOr<StringRef> StrTable = Obj->getStringTableForSymtab(*DynSymSec);
1834 error(StrTable.getError());
1835 const Elf_Sym *DynSymBegin = Obj->symbol_begin(DynSymSec);
1836 const Elf_Sym *DynSymEnd = Obj->symbol_end(DynSymSec);
1837 std::size_t DynSymTotal = std::size_t(std::distance(DynSymBegin, DynSymEnd));
1838
1839 if (*DtGotSym > DynSymTotal) {
1840 W.startLine() << "MIPS_GOTSYM exceeds a number of dynamic symbols.\n";
1841 return;
1842 }
1843
1844 std::size_t GlobalGotNum = DynSymTotal - *DtGotSym;
1845
1846 if (*DtLocalGotNum + GlobalGotNum > getGOTTotal(*GOT)) {
1847 W.startLine() << "Number of global GOT entries exceeds the size of GOT.\n";
1848 return;
1849 }
1850
1851 const GOTEntry *GotBegin = makeGOTIter(*GOT, 0);
1852 const GOTEntry *GotLocalEnd = makeGOTIter(*GOT, *DtLocalGotNum);
1853 const GOTEntry *It = GotBegin;
1854
1855 DictScope GS(W, "Primary GOT");
1856
1857 W.printHex("Canonical gp value", GOTShdr->sh_addr + 0x7ff0);
1858 {
1859 ListScope RS(W, "Reserved entries");
1860
1861 {
1862 DictScope D(W, "Entry");
1863 printGotEntry(GOTShdr->sh_addr, GotBegin, It++);
1864 W.printString("Purpose", StringRef("Lazy resolver"));
1865 }
1866
1867 if (It != GotLocalEnd && (*It >> (sizeof(GOTEntry) * 8 - 1)) != 0) {
1868 DictScope D(W, "Entry");
1869 printGotEntry(GOTShdr->sh_addr, GotBegin, It++);
1870 W.printString("Purpose", StringRef("Module pointer (GNU extension)"));
1871 }
1872 }
1873 {
1874 ListScope LS(W, "Local entries");
1875 for (; It != GotLocalEnd; ++It) {
1876 DictScope D(W, "Entry");
1877 printGotEntry(GOTShdr->sh_addr, GotBegin, It);
1878 }
1879 }
1880 {
1881 ListScope GS(W, "Global entries");
1882
1883 const GOTEntry *GotGlobalEnd =
1884 makeGOTIter(*GOT, *DtLocalGotNum + GlobalGotNum);
1885 const Elf_Sym *GotDynSym = DynSymBegin + *DtGotSym;
1886 for (; It != GotGlobalEnd; ++It) {
1887 DictScope D(W, "Entry");
1888 printGlobalGotEntry(GOTShdr->sh_addr, GotBegin, It, GotDynSym++,
1889 *StrTable, true);
1890 }
1891 }
1892
1893 std::size_t SpecGotNum = getGOTTotal(*GOT) - *DtLocalGotNum - GlobalGotNum;
1894 W.printNumber("Number of TLS and multi-GOT entries", uint64_t(SpecGotNum));
1895}
1896
1897template <class ELFT> void MipsGOTParser<ELFT>::parsePLT() {
1898 if (!DtMipsPltGot) {
1899 W.startLine() << "Cannot find MIPS_PLTGOT dynamic table tag.\n";
1900 return;
1901 }
1902 if (!DtJmpRel) {
1903 W.startLine() << "Cannot find JMPREL dynamic table tag.\n";
1904 return;
1905 }
1906
1907 const Elf_Shdr *PLTShdr = findSectionByAddress(Obj, *DtMipsPltGot);
1908 if (!PLTShdr) {
1909 W.startLine() << "There is no .got.plt section in the file.\n";
1910 return;
1911 }
1912 ErrorOr<ArrayRef<uint8_t>> PLT = Obj->getSectionContents(PLTShdr);
1913 if (!PLT) {
1914 W.startLine() << "The .got.plt section is empty.\n";
1915 return;
1916 }
1917
1918 const Elf_Shdr *PLTRelShdr = findSectionByAddress(Obj, *DtJmpRel);
1919 if (!PLTShdr) {
1920 W.startLine() << "There is no .rel.plt section in the file.\n";
1921 return;
1922 }
1923 ErrorOr<const Elf_Shdr *> SymTableOrErr =
1924 Obj->getSection(PLTRelShdr->sh_link);
1925 error(SymTableOrErr.getError());
1926 const Elf_Shdr *SymTable = *SymTableOrErr;
1927 ErrorOr<StringRef> StrTable = Obj->getStringTableForSymtab(*SymTable);
1928 error(StrTable.getError());
1929
1930 const GOTEntry *PLTBegin = makeGOTIter(*PLT, 0);
1931 const GOTEntry *PLTEnd = makeGOTIter(*PLT, getGOTTotal(*PLT));
1932 const GOTEntry *It = PLTBegin;
1933
1934 DictScope GS(W, "PLT GOT");
1935 {
1936 ListScope RS(W, "Reserved entries");
1937 printPLTEntry(PLTShdr->sh_addr, PLTBegin, It++, "PLT lazy resolver");
1938 if (It != PLTEnd)
1939 printPLTEntry(PLTShdr->sh_addr, PLTBegin, It++, "Module pointer");
1940 }
1941 {
1942 ListScope GS(W, "Entries");
1943
1944 switch (PLTRelShdr->sh_type) {
1945 case ELF::SHT_REL:
1946 for (const Elf_Rel *RI = Obj->rel_begin(PLTRelShdr),
1947 *RE = Obj->rel_end(PLTRelShdr);
1948 RI != RE && It != PLTEnd; ++RI, ++It) {
1949 const Elf_Sym *Sym = Obj->getRelocationSymbol(&*RI, SymTable);
1950 printPLTEntry(PLTShdr->sh_addr, PLTBegin, It, *StrTable, Sym);
1951 }
1952 break;
1953 case ELF::SHT_RELA:
1954 for (const Elf_Rela *RI = Obj->rela_begin(PLTRelShdr),
1955 *RE = Obj->rela_end(PLTRelShdr);
1956 RI != RE && It != PLTEnd; ++RI, ++It) {
1957 const Elf_Sym *Sym = Obj->getRelocationSymbol(&*RI, SymTable);
1958 printPLTEntry(PLTShdr->sh_addr, PLTBegin, It, *StrTable, Sym);
1959 }
1960 break;
1961 }
1962 }
1963}
1964
1965template <class ELFT>
1966std::size_t MipsGOTParser<ELFT>::getGOTTotal(ArrayRef<uint8_t> GOT) const {
1967 return GOT.size() / sizeof(GOTEntry);
1968}
1969
1970template <class ELFT>
1971const typename MipsGOTParser<ELFT>::GOTEntry *
1972MipsGOTParser<ELFT>::makeGOTIter(ArrayRef<uint8_t> GOT, std::size_t EntryNum) {
1973 const char *Data = reinterpret_cast<const char *>(GOT.data());
1974 return reinterpret_cast<const GOTEntry *>(Data + EntryNum * sizeof(GOTEntry));
1975}
1976
1977template <class ELFT>
1978void MipsGOTParser<ELFT>::printGotEntry(uint64_t GotAddr,
1979 const GOTEntry *BeginIt,
1980 const GOTEntry *It) {
1981 int64_t Offset = std::distance(BeginIt, It) * sizeof(GOTEntry);
1982 W.printHex("Address", GotAddr + Offset);
1983 W.printNumber("Access", Offset - 0x7ff0);
1984 W.printHex("Initial", *It);
1985}
1986
1987template <class ELFT>
1988void MipsGOTParser<ELFT>::printGlobalGotEntry(
1989 uint64_t GotAddr, const GOTEntry *BeginIt, const GOTEntry *It,
1990 const Elf_Sym *Sym, StringRef StrTable, bool IsDynamic) {
1991 printGotEntry(GotAddr, BeginIt, It);
1992
1993 W.printHex("Value", Sym->st_value);
1994 W.printEnum("Type", Sym->getType(), makeArrayRef(ElfSymbolTypes));
1995
1996 unsigned SectionIndex = 0;
1997 StringRef SectionName;
1998 getSectionNameIndex(*Obj, Sym, Dumper->getDotDynSymSec(),
1999 Dumper->getShndxTable(), SectionName, SectionIndex);
2000 W.printHex("Section", SectionName, SectionIndex);
2001
2002 std::string FullSymbolName =
2003 Dumper->getFullSymbolName(Sym, StrTable, IsDynamic);
2004 W.printNumber("Name", FullSymbolName, Sym->st_name);
2005}
2006
2007template <class ELFT>
2008void MipsGOTParser<ELFT>::printPLTEntry(uint64_t PLTAddr,
2009 const GOTEntry *BeginIt,
2010 const GOTEntry *It, StringRef Purpose) {
2011 DictScope D(W, "Entry");
2012 int64_t Offset = std::distance(BeginIt, It) * sizeof(GOTEntry);
2013 W.printHex("Address", PLTAddr + Offset);
2014 W.printHex("Initial", *It);
2015 W.printString("Purpose", Purpose);
2016}
2017
2018template <class ELFT>
2019void MipsGOTParser<ELFT>::printPLTEntry(uint64_t PLTAddr,
2020 const GOTEntry *BeginIt,
2021 const GOTEntry *It, StringRef StrTable,
2022 const Elf_Sym *Sym) {
2023 DictScope D(W, "Entry");
2024 int64_t Offset = std::distance(BeginIt, It) * sizeof(GOTEntry);
2025 W.printHex("Address", PLTAddr + Offset);
2026 W.printHex("Initial", *It);
2027 W.printHex("Value", Sym->st_value);
2028 W.printEnum("Type", Sym->getType(), makeArrayRef(ElfSymbolTypes));
2029
2030 unsigned SectionIndex = 0;
2031 StringRef SectionName;
2032 getSectionNameIndex(*Obj, Sym, Dumper->getDotDynSymSec(),
2033 Dumper->getShndxTable(), SectionName, SectionIndex);
2034 W.printHex("Section", SectionName, SectionIndex);
2035
2036 std::string FullSymbolName = Dumper->getFullSymbolName(Sym, StrTable, true);
2037 W.printNumber("Name", FullSymbolName, Sym->st_name);
2038}
2039
2040template <class ELFT> void ELFDumper<ELFT>::printMipsPLTGOT() {
2041 if (Obj->getHeader()->e_machine != EM_MIPS) {
2042 W.startLine() << "MIPS PLT GOT is available for MIPS targets only.\n";
2043 return;
2044 }
2045
2046 MipsGOTParser<ELFT> GOTParser(this, Obj, dynamic_table(), W);
2047 GOTParser.parseGOT();
2048 GOTParser.parsePLT();
2049}
2050
2051static const EnumEntry<unsigned> ElfMipsISAExtType[] = {
2052 {"None", Mips::AFL_EXT_NONE},
2053 {"Broadcom SB-1", Mips::AFL_EXT_SB1},
2054 {"Cavium Networks Octeon", Mips::AFL_EXT_OCTEON},
2055 {"Cavium Networks Octeon2", Mips::AFL_EXT_OCTEON2},
2056 {"Cavium Networks OcteonP", Mips::AFL_EXT_OCTEONP},
2057 {"Cavium Networks Octeon3", Mips::AFL_EXT_OCTEON3},
2058 {"LSI R4010", Mips::AFL_EXT_4010},
2059 {"Loongson 2E", Mips::AFL_EXT_LOONGSON_2E},
2060 {"Loongson 2F", Mips::AFL_EXT_LOONGSON_2F},
2061 {"Loongson 3A", Mips::AFL_EXT_LOONGSON_3A},
2062 {"MIPS R4650", Mips::AFL_EXT_4650},
2063 {"MIPS R5900", Mips::AFL_EXT_5900},
2064 {"MIPS R10000", Mips::AFL_EXT_10000},
2065 {"NEC VR4100", Mips::AFL_EXT_4100},
2066 {"NEC VR4111/VR4181", Mips::AFL_EXT_4111},
2067 {"NEC VR4120", Mips::AFL_EXT_4120},
2068 {"NEC VR5400", Mips::AFL_EXT_5400},
2069 {"NEC VR5500", Mips::AFL_EXT_5500},
2070 {"RMI Xlr", Mips::AFL_EXT_XLR},
2071 {"Toshiba R3900", Mips::AFL_EXT_3900}
2072};
2073
2074static const EnumEntry<unsigned> ElfMipsASEFlags[] = {
2075 {"DSP", Mips::AFL_ASE_DSP},
2076 {"DSPR2", Mips::AFL_ASE_DSPR2},
2077 {"Enhanced VA Scheme", Mips::AFL_ASE_EVA},
2078 {"MCU", Mips::AFL_ASE_MCU},
2079 {"MDMX", Mips::AFL_ASE_MDMX},
2080 {"MIPS-3D", Mips::AFL_ASE_MIPS3D},
2081 {"MT", Mips::AFL_ASE_MT},
2082 {"SmartMIPS", Mips::AFL_ASE_SMARTMIPS},
2083 {"VZ", Mips::AFL_ASE_VIRT},
2084 {"MSA", Mips::AFL_ASE_MSA},
2085 {"MIPS16", Mips::AFL_ASE_MIPS16},
2086 {"microMIPS", Mips::AFL_ASE_MICROMIPS},
2087 {"XPA", Mips::AFL_ASE_XPA}
2088};
2089
2090static const EnumEntry<unsigned> ElfMipsFpABIType[] = {
2091 {"Hard or soft float", Mips::Val_GNU_MIPS_ABI_FP_ANY},
2092 {"Hard float (double precision)", Mips::Val_GNU_MIPS_ABI_FP_DOUBLE},
2093 {"Hard float (single precision)", Mips::Val_GNU_MIPS_ABI_FP_SINGLE},
2094 {"Soft float", Mips::Val_GNU_MIPS_ABI_FP_SOFT},
2095 {"Hard float (MIPS32r2 64-bit FPU 12 callee-saved)",
2096 Mips::Val_GNU_MIPS_ABI_FP_OLD_64},
2097 {"Hard float (32-bit CPU, Any FPU)", Mips::Val_GNU_MIPS_ABI_FP_XX},
2098 {"Hard float (32-bit CPU, 64-bit FPU)", Mips::Val_GNU_MIPS_ABI_FP_64},
2099 {"Hard float compat (32-bit CPU, 64-bit FPU)",
2100 Mips::Val_GNU_MIPS_ABI_FP_64A}
2101};
2102
2103static const EnumEntry<unsigned> ElfMipsFlags1[] {
2104 {"ODDSPREG", Mips::AFL_FLAGS1_ODDSPREG},
2105};
2106
2107static int getMipsRegisterSize(uint8_t Flag) {
2108 switch (Flag) {
2109 case Mips::AFL_REG_NONE:
2110 return 0;
2111 case Mips::AFL_REG_32:
2112 return 32;
2113 case Mips::AFL_REG_64:
2114 return 64;
2115 case Mips::AFL_REG_128:
2116 return 128;
2117 default:
2118 return -1;
2119 }
2120}
2121
2122template <class ELFT> void ELFDumper<ELFT>::printMipsABIFlags() {
2123 const Elf_Shdr *Shdr = findSectionByName(*Obj, ".MIPS.abiflags");
2124 if (!Shdr) {
2125 W.startLine() << "There is no .MIPS.abiflags section in the file.\n";
2126 return;
2127 }
2128 ErrorOr<ArrayRef<uint8_t>> Sec = Obj->getSectionContents(Shdr);
2129 if (!Sec) {
2130 W.startLine() << "The .MIPS.abiflags section is empty.\n";
2131 return;
2132 }
2133 if (Sec->size() != sizeof(Elf_Mips_ABIFlags<ELFT>)) {
2134 W.startLine() << "The .MIPS.abiflags section has a wrong size.\n";
2135 return;
2136 }
2137
2138 auto *Flags = reinterpret_cast<const Elf_Mips_ABIFlags<ELFT> *>(Sec->data());
2139
2140 raw_ostream &OS = W.getOStream();
2141 DictScope GS(W, "MIPS ABI Flags");
2142
2143 W.printNumber("Version", Flags->version);
2144 W.startLine() << "ISA: ";
2145 if (Flags->isa_rev <= 1)
2146 OS << format("MIPS%u", Flags->isa_level);
2147 else
2148 OS << format("MIPS%ur%u", Flags->isa_level, Flags->isa_rev);
2149 OS << "\n";
2150 W.printEnum("ISA Extension", Flags->isa_ext, makeArrayRef(ElfMipsISAExtType));
2151 W.printFlags("ASEs", Flags->ases, makeArrayRef(ElfMipsASEFlags));
2152 W.printEnum("FP ABI", Flags->fp_abi, makeArrayRef(ElfMipsFpABIType));
2153 W.printNumber("GPR size", getMipsRegisterSize(Flags->gpr_size));
2154 W.printNumber("CPR1 size", getMipsRegisterSize(Flags->cpr1_size));
2155 W.printNumber("CPR2 size", getMipsRegisterSize(Flags->cpr2_size));
2156 W.printFlags("Flags 1", Flags->flags1, makeArrayRef(ElfMipsFlags1));
2157 W.printHex("Flags 2", Flags->flags2);
2158}
2159
2160template <class ELFT> void ELFDumper<ELFT>::printMipsReginfo() {
2161 const Elf_Shdr *Shdr = findSectionByName(*Obj, ".reginfo");
2162 if (!Shdr) {
2163 W.startLine() << "There is no .reginfo section in the file.\n";
2164 return;
2165 }
2166 ErrorOr<ArrayRef<uint8_t>> Sec = Obj->getSectionContents(Shdr);
2167 if (!Sec) {
2168 W.startLine() << "The .reginfo section is empty.\n";
2169 return;
2170 }
2171 if (Sec->size() != sizeof(Elf_Mips_RegInfo<ELFT>)) {
2172 W.startLine() << "The .reginfo section has a wrong size.\n";
2173 return;
2174 }
2175
2176 auto *Reginfo = reinterpret_cast<const Elf_Mips_RegInfo<ELFT> *>(Sec->data());
2177
2178 DictScope GS(W, "MIPS RegInfo");
2179 W.printHex("GP", Reginfo->ri_gp_value);
2180 W.printHex("General Mask", Reginfo->ri_gprmask);
2181 W.printHex("Co-Proc Mask0", Reginfo->ri_cprmask[0]);
2182 W.printHex("Co-Proc Mask1", Reginfo->ri_cprmask[1]);
2183 W.printHex("Co-Proc Mask2", Reginfo->ri_cprmask[2]);
2184 W.printHex("Co-Proc Mask3", Reginfo->ri_cprmask[3]);
2185}
2186
2187template <class ELFT> void ELFDumper<ELFT>::printStackMap() const {
2188 const Elf_Shdr *StackMapSection = nullptr;
2189 for (const auto &Sec : Obj->sections()) {
2190 ErrorOr<StringRef> Name = Obj->getSectionName(&Sec);
2191 if (*Name == ".llvm_stackmaps") {
2192 StackMapSection = &Sec;
2193 break;
2194 }
2195 }
2196
2197 if (!StackMapSection)
2198 return;
2199
2200 StringRef StackMapContents;
2201 ErrorOr<ArrayRef<uint8_t>> StackMapContentsArray =
2202 Obj->getSectionContents(StackMapSection);
2203
2204 prettyPrintStackMap(
2205 llvm::outs(),
2206 StackMapV1Parser<ELFT::TargetEndianness>(*StackMapContentsArray));
2207}