MachODumper.cpp 20 KB

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  1. //===-- MachODump.cpp - Object file dumping utility for llvm --------------===//
  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. // This file implements the MachO-specific dumper for llvm-readobj.
  11. //
  12. //===----------------------------------------------------------------------===//
  13. #include "llvm-readobj.h"
  14. #include "Error.h"
  15. #include "ObjDumper.h"
  16. #include "StackMapPrinter.h"
  17. #include "StreamWriter.h"
  18. #include "llvm/ADT/SmallString.h"
  19. #include "llvm/ADT/StringExtras.h"
  20. #include "llvm/Object/MachO.h"
  21. #include "llvm/Support/Casting.h"
  22. using namespace llvm;
  23. using namespace object;
  24. namespace {
  25. class MachODumper : public ObjDumper {
  26. public:
  27. MachODumper(const MachOObjectFile *Obj, StreamWriter& Writer)
  28. : ObjDumper(Writer)
  29. , Obj(Obj) { }
  30. void printFileHeaders() override;
  31. void printSections() override;
  32. void printRelocations() override;
  33. void printSymbols() override;
  34. void printDynamicSymbols() override;
  35. void printUnwindInfo() override;
  36. void printStackMap() const override;
  37. private:
  38. template<class MachHeader>
  39. void printFileHeaders(const MachHeader &Header);
  40. void printSymbol(const SymbolRef &Symbol);
  41. void printRelocation(const RelocationRef &Reloc);
  42. void printRelocation(const MachOObjectFile *Obj, const RelocationRef &Reloc);
  43. void printSections(const MachOObjectFile *Obj);
  44. const MachOObjectFile *Obj;
  45. };
  46. } // namespace
  47. namespace llvm {
  48. std::error_code createMachODumper(const object::ObjectFile *Obj,
  49. StreamWriter &Writer,
  50. std::unique_ptr<ObjDumper> &Result) {
  51. const MachOObjectFile *MachOObj = dyn_cast<MachOObjectFile>(Obj);
  52. if (!MachOObj)
  53. return readobj_error::unsupported_obj_file_format;
  54. Result.reset(new MachODumper(MachOObj, Writer));
  55. return readobj_error::success;
  56. }
  57. } // namespace llvm
  58. static const EnumEntry<uint32_t> MachOMagics[] = {
  59. { "Magic", MachO::MH_MAGIC },
  60. { "Cigam", MachO::MH_CIGAM },
  61. { "Magic64", MachO::MH_MAGIC_64 },
  62. { "Cigam64", MachO::MH_CIGAM_64 },
  63. { "FatMagic", MachO::FAT_MAGIC },
  64. { "FatCigam", MachO::FAT_CIGAM },
  65. };
  66. static const EnumEntry<uint32_t> MachOHeaderFileTypes[] = {
  67. { "Relocatable", MachO::MH_OBJECT },
  68. { "Executable", MachO::MH_EXECUTE },
  69. { "FixedVMLibrary", MachO::MH_FVMLIB },
  70. { "Core", MachO::MH_CORE },
  71. { "PreloadedExecutable", MachO::MH_PRELOAD },
  72. { "DynamicLibrary", MachO::MH_DYLIB },
  73. { "DynamicLinker", MachO::MH_DYLINKER },
  74. { "Bundle", MachO::MH_BUNDLE },
  75. { "DynamicLibraryStub", MachO::MH_DYLIB_STUB },
  76. { "DWARFSymbol", MachO::MH_DSYM },
  77. { "KextBundle", MachO::MH_KEXT_BUNDLE },
  78. };
  79. static const EnumEntry<uint32_t> MachOHeaderCpuTypes[] = {
  80. { "Any" , static_cast<uint32_t>(MachO::CPU_TYPE_ANY) },
  81. { "X86" , MachO::CPU_TYPE_X86 },
  82. { "X86-64" , MachO::CPU_TYPE_X86_64 },
  83. { "Mc98000" , MachO::CPU_TYPE_MC98000 },
  84. { "Arm" , MachO::CPU_TYPE_ARM },
  85. { "Arm64" , MachO::CPU_TYPE_ARM64 },
  86. { "Sparc" , MachO::CPU_TYPE_SPARC },
  87. { "PowerPC" , MachO::CPU_TYPE_POWERPC },
  88. { "PowerPC64" , MachO::CPU_TYPE_POWERPC64 },
  89. };
  90. static const EnumEntry<uint32_t> MachOHeaderCpuSubtypesX86[] = {
  91. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_I386_ALL),
  92. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_386),
  93. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_486),
  94. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_486SX),
  95. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_586),
  96. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_PENTPRO),
  97. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_PENTII_M3),
  98. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_PENTII_M5),
  99. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_CELERON),
  100. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_CELERON_MOBILE),
  101. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_PENTIUM_3),
  102. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_PENTIUM_3_M),
  103. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_PENTIUM_3_XEON),
  104. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_PENTIUM_M),
  105. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_PENTIUM_4),
  106. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_PENTIUM_4_M),
  107. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ITANIUM),
  108. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ITANIUM_2),
  109. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_XEON),
  110. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_XEON_MP),
  111. };
  112. static const EnumEntry<uint32_t> MachOHeaderCpuSubtypesX64[] = {
  113. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_X86_64_ALL),
  114. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_X86_ARCH1),
  115. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_X86_64_H),
  116. };
  117. static const EnumEntry<uint32_t> MachOHeaderCpuSubtypesARM[] = {
  118. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM_ALL),
  119. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM_V4T),
  120. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM_V6),
  121. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM_V5),
  122. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM_V5TEJ),
  123. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM_XSCALE),
  124. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM_V7),
  125. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM_V7S),
  126. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM_V7K),
  127. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM_V6M),
  128. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM_V7M),
  129. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM_V7EM),
  130. };
  131. static const EnumEntry<uint32_t> MachOHeaderCpuSubtypesARM64[] = {
  132. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_ARM64_ALL),
  133. };
  134. static const EnumEntry<uint32_t> MachOHeaderCpuSubtypesSPARC[] = {
  135. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_SPARC_ALL),
  136. };
  137. static const EnumEntry<uint32_t> MachOHeaderCpuSubtypesPPC[] = {
  138. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_ALL),
  139. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_601),
  140. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_602),
  141. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_603),
  142. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_603e),
  143. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_603ev),
  144. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_604),
  145. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_604e),
  146. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_620),
  147. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_750),
  148. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_7400),
  149. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_7450),
  150. LLVM_READOBJ_ENUM_ENT(MachO, CPU_SUBTYPE_POWERPC_970),
  151. };
  152. static const EnumEntry<uint32_t> MachOHeaderFlags[] = {
  153. LLVM_READOBJ_ENUM_ENT(MachO, MH_NOUNDEFS),
  154. LLVM_READOBJ_ENUM_ENT(MachO, MH_INCRLINK),
  155. LLVM_READOBJ_ENUM_ENT(MachO, MH_DYLDLINK),
  156. LLVM_READOBJ_ENUM_ENT(MachO, MH_BINDATLOAD),
  157. LLVM_READOBJ_ENUM_ENT(MachO, MH_PREBOUND),
  158. LLVM_READOBJ_ENUM_ENT(MachO, MH_SPLIT_SEGS),
  159. LLVM_READOBJ_ENUM_ENT(MachO, MH_LAZY_INIT),
  160. LLVM_READOBJ_ENUM_ENT(MachO, MH_TWOLEVEL),
  161. LLVM_READOBJ_ENUM_ENT(MachO, MH_FORCE_FLAT),
  162. LLVM_READOBJ_ENUM_ENT(MachO, MH_NOMULTIDEFS),
  163. LLVM_READOBJ_ENUM_ENT(MachO, MH_NOFIXPREBINDING),
  164. LLVM_READOBJ_ENUM_ENT(MachO, MH_PREBINDABLE),
  165. LLVM_READOBJ_ENUM_ENT(MachO, MH_ALLMODSBOUND),
  166. LLVM_READOBJ_ENUM_ENT(MachO, MH_SUBSECTIONS_VIA_SYMBOLS),
  167. LLVM_READOBJ_ENUM_ENT(MachO, MH_CANONICAL),
  168. LLVM_READOBJ_ENUM_ENT(MachO, MH_WEAK_DEFINES),
  169. LLVM_READOBJ_ENUM_ENT(MachO, MH_BINDS_TO_WEAK),
  170. LLVM_READOBJ_ENUM_ENT(MachO, MH_ALLOW_STACK_EXECUTION),
  171. LLVM_READOBJ_ENUM_ENT(MachO, MH_ROOT_SAFE),
  172. LLVM_READOBJ_ENUM_ENT(MachO, MH_SETUID_SAFE),
  173. LLVM_READOBJ_ENUM_ENT(MachO, MH_NO_REEXPORTED_DYLIBS),
  174. LLVM_READOBJ_ENUM_ENT(MachO, MH_PIE),
  175. LLVM_READOBJ_ENUM_ENT(MachO, MH_DEAD_STRIPPABLE_DYLIB),
  176. LLVM_READOBJ_ENUM_ENT(MachO, MH_HAS_TLV_DESCRIPTORS),
  177. LLVM_READOBJ_ENUM_ENT(MachO, MH_NO_HEAP_EXECUTION),
  178. LLVM_READOBJ_ENUM_ENT(MachO, MH_APP_EXTENSION_SAFE),
  179. };
  180. static const EnumEntry<unsigned> MachOSectionAttributes[] = {
  181. { "LocReloc" , 1 << 0 /*S_ATTR_LOC_RELOC */ },
  182. { "ExtReloc" , 1 << 1 /*S_ATTR_EXT_RELOC */ },
  183. { "SomeInstructions" , 1 << 2 /*S_ATTR_SOME_INSTRUCTIONS */ },
  184. { "Debug" , 1 << 17 /*S_ATTR_DEBUG */ },
  185. { "SelfModifyingCode", 1 << 18 /*S_ATTR_SELF_MODIFYING_CODE*/ },
  186. { "LiveSupport" , 1 << 19 /*S_ATTR_LIVE_SUPPORT */ },
  187. { "NoDeadStrip" , 1 << 20 /*S_ATTR_NO_DEAD_STRIP */ },
  188. { "StripStaticSyms" , 1 << 21 /*S_ATTR_STRIP_STATIC_SYMS */ },
  189. { "NoTOC" , 1 << 22 /*S_ATTR_NO_TOC */ },
  190. { "PureInstructions" , 1 << 23 /*S_ATTR_PURE_INSTRUCTIONS */ },
  191. };
  192. static const EnumEntry<unsigned> MachOSymbolRefTypes[] = {
  193. { "UndefinedNonLazy", 0 },
  194. { "ReferenceFlagUndefinedLazy", 1 },
  195. { "ReferenceFlagDefined", 2 },
  196. { "ReferenceFlagPrivateDefined", 3 },
  197. { "ReferenceFlagPrivateUndefinedNonLazy", 4 },
  198. { "ReferenceFlagPrivateUndefinedLazy", 5 }
  199. };
  200. static const EnumEntry<unsigned> MachOSymbolFlags[] = {
  201. { "ReferencedDynamically", 0x10 },
  202. { "NoDeadStrip", 0x20 },
  203. { "WeakRef", 0x40 },
  204. { "WeakDef", 0x80 }
  205. };
  206. static const EnumEntry<unsigned> MachOSymbolTypes[] = {
  207. { "Undef", 0x0 },
  208. { "Abs", 0x2 },
  209. { "Indirect", 0xA },
  210. { "PreboundUndef", 0xC },
  211. { "Section", 0xE }
  212. };
  213. namespace {
  214. struct MachOSection {
  215. ArrayRef<char> Name;
  216. ArrayRef<char> SegmentName;
  217. uint64_t Address;
  218. uint64_t Size;
  219. uint32_t Offset;
  220. uint32_t Alignment;
  221. uint32_t RelocationTableOffset;
  222. uint32_t NumRelocationTableEntries;
  223. uint32_t Flags;
  224. uint32_t Reserved1;
  225. uint32_t Reserved2;
  226. };
  227. struct MachOSymbol {
  228. uint32_t StringIndex;
  229. uint8_t Type;
  230. uint8_t SectionIndex;
  231. uint16_t Flags;
  232. uint64_t Value;
  233. };
  234. }
  235. static void getSection(const MachOObjectFile *Obj,
  236. DataRefImpl Sec,
  237. MachOSection &Section) {
  238. if (!Obj->is64Bit()) {
  239. MachO::section Sect = Obj->getSection(Sec);
  240. Section.Address = Sect.addr;
  241. Section.Size = Sect.size;
  242. Section.Offset = Sect.offset;
  243. Section.Alignment = Sect.align;
  244. Section.RelocationTableOffset = Sect.reloff;
  245. Section.NumRelocationTableEntries = Sect.nreloc;
  246. Section.Flags = Sect.flags;
  247. Section.Reserved1 = Sect.reserved1;
  248. Section.Reserved2 = Sect.reserved2;
  249. return;
  250. }
  251. MachO::section_64 Sect = Obj->getSection64(Sec);
  252. Section.Address = Sect.addr;
  253. Section.Size = Sect.size;
  254. Section.Offset = Sect.offset;
  255. Section.Alignment = Sect.align;
  256. Section.RelocationTableOffset = Sect.reloff;
  257. Section.NumRelocationTableEntries = Sect.nreloc;
  258. Section.Flags = Sect.flags;
  259. Section.Reserved1 = Sect.reserved1;
  260. Section.Reserved2 = Sect.reserved2;
  261. }
  262. static void getSymbol(const MachOObjectFile *Obj,
  263. DataRefImpl DRI,
  264. MachOSymbol &Symbol) {
  265. if (!Obj->is64Bit()) {
  266. MachO::nlist Entry = Obj->getSymbolTableEntry(DRI);
  267. Symbol.StringIndex = Entry.n_strx;
  268. Symbol.Type = Entry.n_type;
  269. Symbol.SectionIndex = Entry.n_sect;
  270. Symbol.Flags = Entry.n_desc;
  271. Symbol.Value = Entry.n_value;
  272. return;
  273. }
  274. MachO::nlist_64 Entry = Obj->getSymbol64TableEntry(DRI);
  275. Symbol.StringIndex = Entry.n_strx;
  276. Symbol.Type = Entry.n_type;
  277. Symbol.SectionIndex = Entry.n_sect;
  278. Symbol.Flags = Entry.n_desc;
  279. Symbol.Value = Entry.n_value;
  280. }
  281. void MachODumper::printFileHeaders() {
  282. DictScope H(W, "MachHeader");
  283. if (!Obj->is64Bit()) {
  284. printFileHeaders(Obj->getHeader());
  285. } else {
  286. printFileHeaders(Obj->getHeader64());
  287. W.printHex("Reserved", Obj->getHeader64().reserved);
  288. }
  289. }
  290. template<class MachHeader>
  291. void MachODumper::printFileHeaders(const MachHeader &Header) {
  292. W.printEnum("Magic", Header.magic, makeArrayRef(MachOMagics));
  293. W.printEnum("CpuType", Header.cputype, makeArrayRef(MachOHeaderCpuTypes));
  294. uint32_t subtype = Header.cpusubtype & ~MachO::CPU_SUBTYPE_MASK;
  295. switch (Header.cputype) {
  296. case MachO::CPU_TYPE_X86:
  297. W.printEnum("CpuSubType", subtype, makeArrayRef(MachOHeaderCpuSubtypesX86));
  298. break;
  299. case MachO::CPU_TYPE_X86_64:
  300. W.printEnum("CpuSubType", subtype, makeArrayRef(MachOHeaderCpuSubtypesX64));
  301. break;
  302. case MachO::CPU_TYPE_ARM:
  303. W.printEnum("CpuSubType", subtype, makeArrayRef(MachOHeaderCpuSubtypesARM));
  304. break;
  305. case MachO::CPU_TYPE_POWERPC:
  306. W.printEnum("CpuSubType", subtype, makeArrayRef(MachOHeaderCpuSubtypesPPC));
  307. break;
  308. case MachO::CPU_TYPE_SPARC:
  309. W.printEnum("CpuSubType", subtype, makeArrayRef(MachOHeaderCpuSubtypesSPARC));
  310. break;
  311. case MachO::CPU_TYPE_ARM64:
  312. W.printEnum("CpuSubType", subtype, makeArrayRef(MachOHeaderCpuSubtypesARM64));
  313. break;
  314. case MachO::CPU_TYPE_POWERPC64:
  315. default:
  316. W.printHex("CpuSubtype", subtype);
  317. }
  318. W.printEnum("FileType", Header.filetype, makeArrayRef(MachOHeaderFileTypes));
  319. W.printNumber("NumOfLoadCommands", Header.ncmds);
  320. W.printNumber("SizeOfLoadCommands", Header.sizeofcmds);
  321. W.printFlags("Flags", Header.flags, makeArrayRef(MachOHeaderFlags));
  322. }
  323. void MachODumper::printSections() {
  324. return printSections(Obj);
  325. }
  326. void MachODumper::printSections(const MachOObjectFile *Obj) {
  327. ListScope Group(W, "Sections");
  328. int SectionIndex = -1;
  329. for (const SectionRef &Section : Obj->sections()) {
  330. ++SectionIndex;
  331. MachOSection MOSection;
  332. getSection(Obj, Section.getRawDataRefImpl(), MOSection);
  333. DataRefImpl DR = Section.getRawDataRefImpl();
  334. StringRef Name;
  335. if (error(Section.getName(Name)))
  336. Name = "";
  337. ArrayRef<char> RawName = Obj->getSectionRawName(DR);
  338. StringRef SegmentName = Obj->getSectionFinalSegmentName(DR);
  339. ArrayRef<char> RawSegmentName = Obj->getSectionRawFinalSegmentName(DR);
  340. DictScope SectionD(W, "Section");
  341. W.printNumber("Index", SectionIndex);
  342. W.printBinary("Name", Name, RawName);
  343. W.printBinary("Segment", SegmentName, RawSegmentName);
  344. W.printHex("Address", MOSection.Address);
  345. W.printHex("Size", MOSection.Size);
  346. W.printNumber("Offset", MOSection.Offset);
  347. W.printNumber("Alignment", MOSection.Alignment);
  348. W.printHex("RelocationOffset", MOSection.RelocationTableOffset);
  349. W.printNumber("RelocationCount", MOSection.NumRelocationTableEntries);
  350. W.printEnum("Type", MOSection.Flags & 0xFF,
  351. makeArrayRef(MachOSectionAttributes));
  352. W.printFlags("Attributes", MOSection.Flags >> 8,
  353. makeArrayRef(MachOSectionAttributes));
  354. W.printHex("Reserved1", MOSection.Reserved1);
  355. W.printHex("Reserved2", MOSection.Reserved2);
  356. if (opts::SectionRelocations) {
  357. ListScope D(W, "Relocations");
  358. for (const RelocationRef &Reloc : Section.relocations())
  359. printRelocation(Reloc);
  360. }
  361. if (opts::SectionSymbols) {
  362. ListScope D(W, "Symbols");
  363. for (const SymbolRef &Symbol : Obj->symbols()) {
  364. if (!Section.containsSymbol(Symbol))
  365. continue;
  366. printSymbol(Symbol);
  367. }
  368. }
  369. if (opts::SectionData) {
  370. bool IsBSS = Section.isBSS();
  371. if (!IsBSS) {
  372. StringRef Data;
  373. if (error(Section.getContents(Data)))
  374. break;
  375. W.printBinaryBlock("SectionData", Data);
  376. }
  377. }
  378. }
  379. }
  380. void MachODumper::printRelocations() {
  381. ListScope D(W, "Relocations");
  382. std::error_code EC;
  383. for (const SectionRef &Section : Obj->sections()) {
  384. StringRef Name;
  385. if (error(Section.getName(Name)))
  386. continue;
  387. bool PrintedGroup = false;
  388. for (const RelocationRef &Reloc : Section.relocations()) {
  389. if (!PrintedGroup) {
  390. W.startLine() << "Section " << Name << " {\n";
  391. W.indent();
  392. PrintedGroup = true;
  393. }
  394. printRelocation(Reloc);
  395. }
  396. if (PrintedGroup) {
  397. W.unindent();
  398. W.startLine() << "}\n";
  399. }
  400. }
  401. }
  402. void MachODumper::printRelocation(const RelocationRef &Reloc) {
  403. return printRelocation(Obj, Reloc);
  404. }
  405. void MachODumper::printRelocation(const MachOObjectFile *Obj,
  406. const RelocationRef &Reloc) {
  407. uint64_t Offset = Reloc.getOffset();
  408. SmallString<32> RelocName;
  409. Reloc.getTypeName(RelocName);
  410. DataRefImpl DR = Reloc.getRawDataRefImpl();
  411. MachO::any_relocation_info RE = Obj->getRelocation(DR);
  412. bool IsScattered = Obj->isRelocationScattered(RE);
  413. bool IsExtern = !IsScattered && Obj->getPlainRelocationExternal(RE);
  414. StringRef TargetName;
  415. if (IsExtern) {
  416. symbol_iterator Symbol = Reloc.getSymbol();
  417. if (Symbol != Obj->symbol_end()) {
  418. ErrorOr<StringRef> TargetNameOrErr = Symbol->getName();
  419. if (error(TargetNameOrErr.getError()))
  420. return;
  421. TargetName = *TargetNameOrErr;
  422. }
  423. } else if (!IsScattered) {
  424. section_iterator SecI = Obj->getRelocationSection(DR);
  425. if (SecI != Obj->section_end()) {
  426. if (error(SecI->getName(TargetName)))
  427. return;
  428. }
  429. }
  430. if (TargetName.empty())
  431. TargetName = "-";
  432. if (opts::ExpandRelocs) {
  433. DictScope Group(W, "Relocation");
  434. W.printHex("Offset", Offset);
  435. W.printNumber("PCRel", Obj->getAnyRelocationPCRel(RE));
  436. W.printNumber("Length", Obj->getAnyRelocationLength(RE));
  437. W.printNumber("Type", RelocName, Obj->getAnyRelocationType(RE));
  438. if (IsScattered) {
  439. W.printHex("Value", Obj->getScatteredRelocationValue(RE));
  440. } else {
  441. const char *Kind = IsExtern ? "Symbol" : "Section";
  442. W.printNumber(Kind, TargetName, Obj->getPlainRelocationSymbolNum(RE));
  443. }
  444. } else {
  445. SmallString<32> SymbolNameOrOffset("0x");
  446. if (IsScattered) {
  447. // Scattered relocations don't really have an associated symbol for some
  448. // reason, even if one exists in the symtab at the correct address.
  449. SymbolNameOrOffset += utohexstr(Obj->getScatteredRelocationValue(RE));
  450. } else {
  451. SymbolNameOrOffset = TargetName;
  452. }
  453. raw_ostream& OS = W.startLine();
  454. OS << W.hex(Offset)
  455. << " " << Obj->getAnyRelocationPCRel(RE)
  456. << " " << Obj->getAnyRelocationLength(RE);
  457. if (IsScattered)
  458. OS << " n/a";
  459. else
  460. OS << " " << Obj->getPlainRelocationExternal(RE);
  461. OS << " " << RelocName
  462. << " " << IsScattered
  463. << " " << SymbolNameOrOffset
  464. << "\n";
  465. }
  466. }
  467. void MachODumper::printSymbols() {
  468. ListScope Group(W, "Symbols");
  469. for (const SymbolRef &Symbol : Obj->symbols()) {
  470. printSymbol(Symbol);
  471. }
  472. }
  473. void MachODumper::printDynamicSymbols() {
  474. ListScope Group(W, "DynamicSymbols");
  475. }
  476. void MachODumper::printSymbol(const SymbolRef &Symbol) {
  477. StringRef SymbolName;
  478. if (ErrorOr<StringRef> SymbolNameOrErr = Symbol.getName())
  479. SymbolName = *SymbolNameOrErr;
  480. MachOSymbol MOSymbol;
  481. getSymbol(Obj, Symbol.getRawDataRefImpl(), MOSymbol);
  482. StringRef SectionName = "";
  483. section_iterator SecI(Obj->section_begin());
  484. if (!error(Symbol.getSection(SecI)) && SecI != Obj->section_end())
  485. error(SecI->getName(SectionName));
  486. DictScope D(W, "Symbol");
  487. W.printNumber("Name", SymbolName, MOSymbol.StringIndex);
  488. if (MOSymbol.Type & MachO::N_STAB) {
  489. W.printHex("Type", "SymDebugTable", MOSymbol.Type);
  490. } else {
  491. if (MOSymbol.Type & MachO::N_PEXT)
  492. W.startLine() << "PrivateExtern\n";
  493. if (MOSymbol.Type & MachO::N_EXT)
  494. W.startLine() << "Extern\n";
  495. W.printEnum("Type", uint8_t(MOSymbol.Type & MachO::N_TYPE),
  496. makeArrayRef(MachOSymbolTypes));
  497. }
  498. W.printHex("Section", SectionName, MOSymbol.SectionIndex);
  499. W.printEnum("RefType", static_cast<uint16_t>(MOSymbol.Flags & 0xF),
  500. makeArrayRef(MachOSymbolRefTypes));
  501. W.printFlags("Flags", static_cast<uint16_t>(MOSymbol.Flags & ~0xF),
  502. makeArrayRef(MachOSymbolFlags));
  503. W.printHex("Value", MOSymbol.Value);
  504. }
  505. void MachODumper::printUnwindInfo() {
  506. W.startLine() << "UnwindInfo not implemented.\n";
  507. }
  508. void MachODumper::printStackMap() const {
  509. object::SectionRef StackMapSection;
  510. for (auto Sec : Obj->sections()) {
  511. StringRef Name;
  512. Sec.getName(Name);
  513. if (Name == "__llvm_stackmaps") {
  514. StackMapSection = Sec;
  515. break;
  516. }
  517. }
  518. if (StackMapSection == object::SectionRef())
  519. return;
  520. StringRef StackMapContents;
  521. StackMapSection.getContents(StackMapContents);
  522. ArrayRef<uint8_t> StackMapContentsArray(
  523. reinterpret_cast<const uint8_t*>(StackMapContents.data()),
  524. StackMapContents.size());
  525. if (Obj->isLittleEndian())
  526. prettyPrintStackMap(
  527. llvm::outs(),
  528. StackMapV1Parser<support::little>(StackMapContentsArray));
  529. else
  530. prettyPrintStackMap(llvm::outs(),
  531. StackMapV1Parser<support::big>(StackMapContentsArray));
  532. }