1 //===-- llvm-objdump.cpp - Object file dumping utility for llvm -----------===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 // This program is a utility that works like binutils "objdump", that is, it
10 // dumps out a plethora of information about an object file depending on the
11 // flags.
12 //
13 // The flags and output of this program should be near identical to those of
14 // binutils objdump.
15 //
16 //===----------------------------------------------------------------------===//
17 
18 #include "llvm-objdump.h"
19 #include "COFFDump.h"
20 #include "ELFDump.h"
21 #include "MachODump.h"
22 #include "WasmDump.h"
23 #include "XCOFFDump.h"
24 #include "llvm/ADT/Optional.h"
25 #include "llvm/ADT/STLExtras.h"
26 #include "llvm/ADT/SetOperations.h"
27 #include "llvm/ADT/StringExtras.h"
28 #include "llvm/ADT/StringSet.h"
29 #include "llvm/ADT/Triple.h"
30 #include "llvm/CodeGen/FaultMaps.h"
31 #include "llvm/DebugInfo/DWARF/DWARFContext.h"
32 #include "llvm/DebugInfo/Symbolize/Symbolize.h"
33 #include "llvm/Demangle/Demangle.h"
34 #include "llvm/MC/MCAsmInfo.h"
35 #include "llvm/MC/MCContext.h"
36 #include "llvm/MC/MCDisassembler/MCDisassembler.h"
37 #include "llvm/MC/MCDisassembler/MCRelocationInfo.h"
38 #include "llvm/MC/MCInst.h"
39 #include "llvm/MC/MCInstPrinter.h"
40 #include "llvm/MC/MCInstrAnalysis.h"
41 #include "llvm/MC/MCInstrInfo.h"
42 #include "llvm/MC/MCObjectFileInfo.h"
43 #include "llvm/MC/MCRegisterInfo.h"
44 #include "llvm/MC/MCSubtargetInfo.h"
45 #include "llvm/MC/MCTargetOptions.h"
46 #include "llvm/Object/Archive.h"
47 #include "llvm/Object/COFF.h"
48 #include "llvm/Object/COFFImportFile.h"
49 #include "llvm/Object/ELFObjectFile.h"
50 #include "llvm/Object/MachO.h"
51 #include "llvm/Object/MachOUniversal.h"
52 #include "llvm/Object/ObjectFile.h"
53 #include "llvm/Object/Wasm.h"
54 #include "llvm/Support/Casting.h"
55 #include "llvm/Support/CommandLine.h"
56 #include "llvm/Support/Debug.h"
57 #include "llvm/Support/Errc.h"
58 #include "llvm/Support/FileSystem.h"
59 #include "llvm/Support/Format.h"
60 #include "llvm/Support/FormatVariadic.h"
61 #include "llvm/Support/GraphWriter.h"
62 #include "llvm/Support/Host.h"
63 #include "llvm/Support/InitLLVM.h"
64 #include "llvm/Support/MemoryBuffer.h"
65 #include "llvm/Support/SourceMgr.h"
66 #include "llvm/Support/StringSaver.h"
67 #include "llvm/Support/TargetRegistry.h"
68 #include "llvm/Support/TargetSelect.h"
69 #include "llvm/Support/WithColor.h"
70 #include "llvm/Support/raw_ostream.h"
71 #include <algorithm>
72 #include <cctype>
73 #include <cstring>
74 #include <system_error>
75 #include <unordered_map>
76 #include <utility>
77 
78 using namespace llvm;
79 using namespace llvm::object;
80 using namespace llvm::objdump;
81 
82 static cl::OptionCategory ObjdumpCat("llvm-objdump Options");
83 
84 static cl::opt<uint64_t> AdjustVMA(
85     "adjust-vma",
86     cl::desc("Increase the displayed address by the specified offset"),
87     cl::value_desc("offset"), cl::init(0), cl::cat(ObjdumpCat));
88 
89 static cl::opt<bool>
90     AllHeaders("all-headers",
91                cl::desc("Display all available header information"),
92                cl::cat(ObjdumpCat));
93 static cl::alias AllHeadersShort("x", cl::desc("Alias for --all-headers"),
94                                  cl::NotHidden, cl::Grouping,
95                                  cl::aliasopt(AllHeaders));
96 
97 static cl::opt<std::string>
98     ArchName("arch-name",
99              cl::desc("Target arch to disassemble for, "
100                       "see -version for available targets"),
101              cl::cat(ObjdumpCat));
102 
103 cl::opt<bool>
104     objdump::ArchiveHeaders("archive-headers",
105                             cl::desc("Display archive header information"),
106                             cl::cat(ObjdumpCat));
107 static cl::alias ArchiveHeadersShort("a",
108                                      cl::desc("Alias for --archive-headers"),
109                                      cl::NotHidden, cl::Grouping,
110                                      cl::aliasopt(ArchiveHeaders));
111 
112 cl::opt<bool> objdump::Demangle("demangle", cl::desc("Demangle symbols names"),
113                                 cl::init(false), cl::cat(ObjdumpCat));
114 static cl::alias DemangleShort("C", cl::desc("Alias for --demangle"),
115                                cl::NotHidden, cl::Grouping,
116                                cl::aliasopt(Demangle));
117 
118 cl::opt<bool> objdump::Disassemble(
119     "disassemble",
120     cl::desc("Display assembler mnemonics for the machine instructions"),
121     cl::cat(ObjdumpCat));
122 static cl::alias DisassembleShort("d", cl::desc("Alias for --disassemble"),
123                                   cl::NotHidden, cl::Grouping,
124                                   cl::aliasopt(Disassemble));
125 
126 cl::opt<bool> objdump::DisassembleAll(
127     "disassemble-all",
128     cl::desc("Display assembler mnemonics for the machine instructions"),
129     cl::cat(ObjdumpCat));
130 static cl::alias DisassembleAllShort("D",
131                                      cl::desc("Alias for --disassemble-all"),
132                                      cl::NotHidden, cl::Grouping,
133                                      cl::aliasopt(DisassembleAll));
134 
135 cl::opt<bool> objdump::SymbolDescription(
136     "symbol-description",
137     cl::desc("Add symbol description for disassembly. This "
138              "option is for XCOFF files only"),
139     cl::init(false), cl::cat(ObjdumpCat));
140 
141 static cl::list<std::string>
142     DisassembleSymbols("disassemble-symbols", cl::CommaSeparated,
143                        cl::desc("List of symbols to disassemble. "
144                                 "Accept demangled names when --demangle is "
145                                 "specified, otherwise accept mangled names"),
146                        cl::cat(ObjdumpCat));
147 
148 static cl::opt<bool> DisassembleZeroes(
149     "disassemble-zeroes",
150     cl::desc("Do not skip blocks of zeroes when disassembling"),
151     cl::cat(ObjdumpCat));
152 static cl::alias
153     DisassembleZeroesShort("z", cl::desc("Alias for --disassemble-zeroes"),
154                            cl::NotHidden, cl::Grouping,
155                            cl::aliasopt(DisassembleZeroes));
156 
157 static cl::list<std::string>
158     DisassemblerOptions("disassembler-options",
159                         cl::desc("Pass target specific disassembler options"),
160                         cl::value_desc("options"), cl::CommaSeparated,
161                         cl::cat(ObjdumpCat));
162 static cl::alias
163     DisassemblerOptionsShort("M", cl::desc("Alias for --disassembler-options"),
164                              cl::NotHidden, cl::Grouping, cl::Prefix,
165                              cl::CommaSeparated,
166                              cl::aliasopt(DisassemblerOptions));
167 
168 cl::opt<DIDumpType> objdump::DwarfDumpType(
169     "dwarf", cl::init(DIDT_Null), cl::desc("Dump of dwarf debug sections:"),
170     cl::values(clEnumValN(DIDT_DebugFrame, "frames", ".debug_frame")),
171     cl::cat(ObjdumpCat));
172 
173 static cl::opt<bool> DynamicRelocations(
174     "dynamic-reloc",
175     cl::desc("Display the dynamic relocation entries in the file"),
176     cl::cat(ObjdumpCat));
177 static cl::alias DynamicRelocationShort("R",
178                                         cl::desc("Alias for --dynamic-reloc"),
179                                         cl::NotHidden, cl::Grouping,
180                                         cl::aliasopt(DynamicRelocations));
181 
182 static cl::opt<bool>
183     FaultMapSection("fault-map-section",
184                     cl::desc("Display contents of faultmap section"),
185                     cl::cat(ObjdumpCat));
186 
187 static cl::opt<bool>
188     FileHeaders("file-headers",
189                 cl::desc("Display the contents of the overall file header"),
190                 cl::cat(ObjdumpCat));
191 static cl::alias FileHeadersShort("f", cl::desc("Alias for --file-headers"),
192                                   cl::NotHidden, cl::Grouping,
193                                   cl::aliasopt(FileHeaders));
194 
195 cl::opt<bool>
196     objdump::SectionContents("full-contents",
197                              cl::desc("Display the content of each section"),
198                              cl::cat(ObjdumpCat));
199 static cl::alias SectionContentsShort("s",
200                                       cl::desc("Alias for --full-contents"),
201                                       cl::NotHidden, cl::Grouping,
202                                       cl::aliasopt(SectionContents));
203 
204 static cl::list<std::string> InputFilenames(cl::Positional,
205                                             cl::desc("<input object files>"),
206                                             cl::ZeroOrMore,
207                                             cl::cat(ObjdumpCat));
208 
209 static cl::opt<bool>
210     PrintLines("line-numbers",
211                cl::desc("Display source line numbers with "
212                         "disassembly. Implies disassemble object"),
213                cl::cat(ObjdumpCat));
214 static cl::alias PrintLinesShort("l", cl::desc("Alias for --line-numbers"),
215                                  cl::NotHidden, cl::Grouping,
216                                  cl::aliasopt(PrintLines));
217 
218 static cl::opt<bool> MachOOpt("macho",
219                               cl::desc("Use MachO specific object file parser"),
220                               cl::cat(ObjdumpCat));
221 static cl::alias MachOm("m", cl::desc("Alias for --macho"), cl::NotHidden,
222                         cl::Grouping, cl::aliasopt(MachOOpt));
223 
224 cl::opt<std::string> objdump::MCPU(
225     "mcpu", cl::desc("Target a specific cpu type (-mcpu=help for details)"),
226     cl::value_desc("cpu-name"), cl::init(""), cl::cat(ObjdumpCat));
227 
228 cl::list<std::string> objdump::MAttrs("mattr", cl::CommaSeparated,
229                                       cl::desc("Target specific attributes"),
230                                       cl::value_desc("a1,+a2,-a3,..."),
231                                       cl::cat(ObjdumpCat));
232 
233 cl::opt<bool> objdump::NoShowRawInsn(
234     "no-show-raw-insn",
235     cl::desc(
236         "When disassembling instructions, do not print the instruction bytes."),
237     cl::cat(ObjdumpCat));
238 
239 cl::opt<bool> objdump::NoLeadingAddr("no-leading-addr",
240                                      cl::desc("Print no leading address"),
241                                      cl::cat(ObjdumpCat));
242 
243 static cl::opt<bool> RawClangAST(
244     "raw-clang-ast",
245     cl::desc("Dump the raw binary contents of the clang AST section"),
246     cl::cat(ObjdumpCat));
247 
248 cl::opt<bool>
249     objdump::Relocations("reloc",
250                          cl::desc("Display the relocation entries in the file"),
251                          cl::cat(ObjdumpCat));
252 static cl::alias RelocationsShort("r", cl::desc("Alias for --reloc"),
253                                   cl::NotHidden, cl::Grouping,
254                                   cl::aliasopt(Relocations));
255 
256 cl::opt<bool>
257     objdump::PrintImmHex("print-imm-hex",
258                          cl::desc("Use hex format for immediate values"),
259                          cl::cat(ObjdumpCat));
260 
261 cl::opt<bool>
262     objdump::PrivateHeaders("private-headers",
263                             cl::desc("Display format specific file headers"),
264                             cl::cat(ObjdumpCat));
265 static cl::alias PrivateHeadersShort("p",
266                                      cl::desc("Alias for --private-headers"),
267                                      cl::NotHidden, cl::Grouping,
268                                      cl::aliasopt(PrivateHeaders));
269 
270 cl::list<std::string>
271     objdump::FilterSections("section",
272                             cl::desc("Operate on the specified sections only. "
273                                      "With -macho dump segment,section"),
274                             cl::cat(ObjdumpCat));
275 static cl::alias FilterSectionsj("j", cl::desc("Alias for --section"),
276                                  cl::NotHidden, cl::Grouping, cl::Prefix,
277                                  cl::aliasopt(FilterSections));
278 
279 cl::opt<bool> objdump::SectionHeaders(
280     "section-headers",
281     cl::desc("Display summaries of the headers for each section."),
282     cl::cat(ObjdumpCat));
283 static cl::alias SectionHeadersShort("headers",
284                                      cl::desc("Alias for --section-headers"),
285                                      cl::NotHidden,
286                                      cl::aliasopt(SectionHeaders));
287 static cl::alias SectionHeadersShorter("h",
288                                        cl::desc("Alias for --section-headers"),
289                                        cl::NotHidden, cl::Grouping,
290                                        cl::aliasopt(SectionHeaders));
291 
292 static cl::opt<bool>
293     ShowLMA("show-lma",
294             cl::desc("Display LMA column when dumping ELF section headers"),
295             cl::cat(ObjdumpCat));
296 
297 static cl::opt<bool> PrintSource(
298     "source",
299     cl::desc(
300         "Display source inlined with disassembly. Implies disassemble object"),
301     cl::cat(ObjdumpCat));
302 static cl::alias PrintSourceShort("S", cl::desc("Alias for -source"),
303                                   cl::NotHidden, cl::Grouping,
304                                   cl::aliasopt(PrintSource));
305 
306 static cl::opt<uint64_t>
307     StartAddress("start-address", cl::desc("Disassemble beginning at address"),
308                  cl::value_desc("address"), cl::init(0), cl::cat(ObjdumpCat));
309 static cl::opt<uint64_t> StopAddress("stop-address",
310                                      cl::desc("Stop disassembly at address"),
311                                      cl::value_desc("address"),
312                                      cl::init(UINT64_MAX), cl::cat(ObjdumpCat));
313 
314 cl::opt<bool> objdump::SymbolTable("syms", cl::desc("Display the symbol table"),
315                                    cl::cat(ObjdumpCat));
316 static cl::alias SymbolTableShort("t", cl::desc("Alias for --syms"),
317                                   cl::NotHidden, cl::Grouping,
318                                   cl::aliasopt(SymbolTable));
319 
320 static cl::opt<bool> DynamicSymbolTable(
321     "dynamic-syms",
322     cl::desc("Display the contents of the dynamic symbol table"),
323     cl::cat(ObjdumpCat));
324 static cl::alias DynamicSymbolTableShort("T",
325                                          cl::desc("Alias for --dynamic-syms"),
326                                          cl::NotHidden, cl::Grouping,
327                                          cl::aliasopt(DynamicSymbolTable));
328 
329 cl::opt<std::string> objdump::TripleName(
330     "triple",
331     cl::desc(
332         "Target triple to disassemble for, see -version for available targets"),
333     cl::cat(ObjdumpCat));
334 
335 cl::opt<bool> objdump::UnwindInfo("unwind-info",
336                                   cl::desc("Display unwind information"),
337                                   cl::cat(ObjdumpCat));
338 static cl::alias UnwindInfoShort("u", cl::desc("Alias for --unwind-info"),
339                                  cl::NotHidden, cl::Grouping,
340                                  cl::aliasopt(UnwindInfo));
341 
342 static cl::opt<bool>
343     Wide("wide", cl::desc("Ignored for compatibility with GNU objdump"),
344          cl::cat(ObjdumpCat));
345 static cl::alias WideShort("w", cl::Grouping, cl::aliasopt(Wide));
346 
347 static cl::extrahelp
348     HelpResponse("\nPass @FILE as argument to read options from FILE.\n");
349 
350 static StringSet<> DisasmSymbolSet;
351 StringSet<> objdump::FoundSectionSet;
352 static StringRef ToolName;
353 
354 namespace {
355 struct FilterResult {
356   // True if the section should not be skipped.
357   bool Keep;
358 
359   // True if the index counter should be incremented, even if the section should
360   // be skipped. For example, sections may be skipped if they are not included
361   // in the --section flag, but we still want those to count toward the section
362   // count.
363   bool IncrementIndex;
364 };
365 } // namespace
366 
367 static FilterResult checkSectionFilter(object::SectionRef S) {
368   if (FilterSections.empty())
369     return {/*Keep=*/true, /*IncrementIndex=*/true};
370 
371   Expected<StringRef> SecNameOrErr = S.getName();
372   if (!SecNameOrErr) {
373     consumeError(SecNameOrErr.takeError());
374     return {/*Keep=*/false, /*IncrementIndex=*/false};
375   }
376   StringRef SecName = *SecNameOrErr;
377 
378   // StringSet does not allow empty key so avoid adding sections with
379   // no name (such as the section with index 0) here.
380   if (!SecName.empty())
381     FoundSectionSet.insert(SecName);
382 
383   // Only show the section if it's in the FilterSections list, but always
384   // increment so the indexing is stable.
385   return {/*Keep=*/is_contained(FilterSections, SecName),
386           /*IncrementIndex=*/true};
387 }
388 
389 namespace llvm {
390 
391 SectionFilter ToolSectionFilter(object::ObjectFile const &O, uint64_t *Idx) {
392   // Start at UINT64_MAX so that the first index returned after an increment is
393   // zero (after the unsigned wrap).
394   if (Idx)
395     *Idx = UINT64_MAX;
396   return SectionFilter(
397       [Idx](object::SectionRef S) {
398         FilterResult Result = checkSectionFilter(S);
399         if (Idx != nullptr && Result.IncrementIndex)
400           *Idx += 1;
401         return Result.Keep;
402       },
403       O);
404 }
405 
406 std::string getFileNameForError(const object::Archive::Child &C,
407                                 unsigned Index) {
408   Expected<StringRef> NameOrErr = C.getName();
409   if (NameOrErr)
410     return std::string(NameOrErr.get());
411   // If we have an error getting the name then we print the index of the archive
412   // member. Since we are already in an error state, we just ignore this error.
413   consumeError(NameOrErr.takeError());
414   return "<file index: " + std::to_string(Index) + ">";
415 }
416 
417 void reportWarning(Twine Message, StringRef File) {
418   // Output order between errs() and outs() matters especially for archive
419   // files where the output is per member object.
420   outs().flush();
421   WithColor::warning(errs(), ToolName)
422       << "'" << File << "': " << Message << "\n";
423   errs().flush();
424 }
425 
426 LLVM_ATTRIBUTE_NORETURN void reportError(StringRef File, Twine Message) {
427   WithColor::error(errs(), ToolName) << "'" << File << "': " << Message << "\n";
428   exit(1);
429 }
430 
431 LLVM_ATTRIBUTE_NORETURN void reportError(Error E, StringRef FileName,
432                                          StringRef ArchiveName,
433                                          StringRef ArchitectureName) {
434   assert(E);
435   WithColor::error(errs(), ToolName);
436   if (ArchiveName != "")
437     errs() << ArchiveName << "(" << FileName << ")";
438   else
439     errs() << "'" << FileName << "'";
440   if (!ArchitectureName.empty())
441     errs() << " (for architecture " << ArchitectureName << ")";
442   std::string Buf;
443   raw_string_ostream OS(Buf);
444   logAllUnhandledErrors(std::move(E), OS);
445   OS.flush();
446   errs() << ": " << Buf;
447   exit(1);
448 }
449 
450 static void reportCmdLineWarning(Twine Message) {
451   WithColor::warning(errs(), ToolName) << Message << "\n";
452 }
453 
454 LLVM_ATTRIBUTE_NORETURN static void reportCmdLineError(Twine Message) {
455   WithColor::error(errs(), ToolName) << Message << "\n";
456   exit(1);
457 }
458 
459 static void warnOnNoMatchForSections() {
460   SetVector<StringRef> MissingSections;
461   for (StringRef S : FilterSections) {
462     if (FoundSectionSet.count(S))
463       return;
464     // User may specify a unnamed section. Don't warn for it.
465     if (!S.empty())
466       MissingSections.insert(S);
467   }
468 
469   // Warn only if no section in FilterSections is matched.
470   for (StringRef S : MissingSections)
471     reportCmdLineWarning("section '" + S +
472                          "' mentioned in a -j/--section option, but not "
473                          "found in any input file");
474 }
475 
476 static const Target *getTarget(const ObjectFile *Obj) {
477   // Figure out the target triple.
478   Triple TheTriple("unknown-unknown-unknown");
479   if (TripleName.empty()) {
480     TheTriple = Obj->makeTriple();
481   } else {
482     TheTriple.setTriple(Triple::normalize(TripleName));
483     auto Arch = Obj->getArch();
484     if (Arch == Triple::arm || Arch == Triple::armeb)
485       Obj->setARMSubArch(TheTriple);
486   }
487 
488   // Get the target specific parser.
489   std::string Error;
490   const Target *TheTarget = TargetRegistry::lookupTarget(ArchName, TheTriple,
491                                                          Error);
492   if (!TheTarget)
493     reportError(Obj->getFileName(), "can't find target: " + Error);
494 
495   // Update the triple name and return the found target.
496   TripleName = TheTriple.getTriple();
497   return TheTarget;
498 }
499 
500 bool isRelocAddressLess(RelocationRef A, RelocationRef B) {
501   return A.getOffset() < B.getOffset();
502 }
503 
504 static Error getRelocationValueString(const RelocationRef &Rel,
505                                       SmallVectorImpl<char> &Result) {
506   const ObjectFile *Obj = Rel.getObject();
507   if (auto *ELF = dyn_cast<ELFObjectFileBase>(Obj))
508     return getELFRelocationValueString(ELF, Rel, Result);
509   if (auto *COFF = dyn_cast<COFFObjectFile>(Obj))
510     return getCOFFRelocationValueString(COFF, Rel, Result);
511   if (auto *Wasm = dyn_cast<WasmObjectFile>(Obj))
512     return getWasmRelocationValueString(Wasm, Rel, Result);
513   if (auto *MachO = dyn_cast<MachOObjectFile>(Obj))
514     return getMachORelocationValueString(MachO, Rel, Result);
515   if (auto *XCOFF = dyn_cast<XCOFFObjectFile>(Obj))
516     return getXCOFFRelocationValueString(XCOFF, Rel, Result);
517   llvm_unreachable("unknown object file format");
518 }
519 
520 /// Indicates whether this relocation should hidden when listing
521 /// relocations, usually because it is the trailing part of a multipart
522 /// relocation that will be printed as part of the leading relocation.
523 static bool getHidden(RelocationRef RelRef) {
524   auto *MachO = dyn_cast<MachOObjectFile>(RelRef.getObject());
525   if (!MachO)
526     return false;
527 
528   unsigned Arch = MachO->getArch();
529   DataRefImpl Rel = RelRef.getRawDataRefImpl();
530   uint64_t Type = MachO->getRelocationType(Rel);
531 
532   // On arches that use the generic relocations, GENERIC_RELOC_PAIR
533   // is always hidden.
534   if (Arch == Triple::x86 || Arch == Triple::arm || Arch == Triple::ppc)
535     return Type == MachO::GENERIC_RELOC_PAIR;
536 
537   if (Arch == Triple::x86_64) {
538     // On x86_64, X86_64_RELOC_UNSIGNED is hidden only when it follows
539     // an X86_64_RELOC_SUBTRACTOR.
540     if (Type == MachO::X86_64_RELOC_UNSIGNED && Rel.d.a > 0) {
541       DataRefImpl RelPrev = Rel;
542       RelPrev.d.a--;
543       uint64_t PrevType = MachO->getRelocationType(RelPrev);
544       if (PrevType == MachO::X86_64_RELOC_SUBTRACTOR)
545         return true;
546     }
547   }
548 
549   return false;
550 }
551 
552 namespace {
553 class SourcePrinter {
554 protected:
555   DILineInfo OldLineInfo;
556   const ObjectFile *Obj = nullptr;
557   std::unique_ptr<symbolize::LLVMSymbolizer> Symbolizer;
558   // File name to file contents of source.
559   std::unordered_map<std::string, std::unique_ptr<MemoryBuffer>> SourceCache;
560   // Mark the line endings of the cached source.
561   std::unordered_map<std::string, std::vector<StringRef>> LineCache;
562   // Keep track of missing sources.
563   StringSet<> MissingSources;
564   // Only emit 'no debug info' warning once.
565   bool WarnedNoDebugInfo;
566 
567 private:
568   bool cacheSource(const DILineInfo& LineInfoFile);
569 
570   void printLines(raw_ostream &OS, const DILineInfo &LineInfo,
571                   StringRef Delimiter);
572 
573   void printSources(raw_ostream &OS, const DILineInfo &LineInfo,
574                     StringRef ObjectFilename, StringRef Delimiter);
575 
576 public:
577   SourcePrinter() = default;
578   SourcePrinter(const ObjectFile *Obj, StringRef DefaultArch)
579       : Obj(Obj), WarnedNoDebugInfo(false) {
580     symbolize::LLVMSymbolizer::Options SymbolizerOpts;
581     SymbolizerOpts.PrintFunctions =
582         DILineInfoSpecifier::FunctionNameKind::LinkageName;
583     SymbolizerOpts.Demangle = Demangle;
584     SymbolizerOpts.DefaultArch = std::string(DefaultArch);
585     Symbolizer.reset(new symbolize::LLVMSymbolizer(SymbolizerOpts));
586   }
587   virtual ~SourcePrinter() = default;
588   virtual void printSourceLine(raw_ostream &OS,
589                                object::SectionedAddress Address,
590                                StringRef ObjectFilename,
591                                StringRef Delimiter = "; ");
592 };
593 
594 bool SourcePrinter::cacheSource(const DILineInfo &LineInfo) {
595   std::unique_ptr<MemoryBuffer> Buffer;
596   if (LineInfo.Source) {
597     Buffer = MemoryBuffer::getMemBuffer(*LineInfo.Source);
598   } else {
599     auto BufferOrError = MemoryBuffer::getFile(LineInfo.FileName);
600     if (!BufferOrError) {
601       if (MissingSources.insert(LineInfo.FileName).second)
602         reportWarning("failed to find source " + LineInfo.FileName,
603                       Obj->getFileName());
604       return false;
605     }
606     Buffer = std::move(*BufferOrError);
607   }
608   // Chomp the file to get lines
609   const char *BufferStart = Buffer->getBufferStart(),
610              *BufferEnd = Buffer->getBufferEnd();
611   std::vector<StringRef> &Lines = LineCache[LineInfo.FileName];
612   const char *Start = BufferStart;
613   for (const char *I = BufferStart; I != BufferEnd; ++I)
614     if (*I == '\n') {
615       Lines.emplace_back(Start, I - Start - (BufferStart < I && I[-1] == '\r'));
616       Start = I + 1;
617     }
618   if (Start < BufferEnd)
619     Lines.emplace_back(Start, BufferEnd - Start);
620   SourceCache[LineInfo.FileName] = std::move(Buffer);
621   return true;
622 }
623 
624 void SourcePrinter::printSourceLine(raw_ostream &OS,
625                                     object::SectionedAddress Address,
626                                     StringRef ObjectFilename,
627                                     StringRef Delimiter) {
628   if (!Symbolizer)
629     return;
630 
631   DILineInfo LineInfo = DILineInfo();
632   auto ExpectedLineInfo = Symbolizer->symbolizeCode(*Obj, Address);
633   std::string ErrorMessage;
634   if (!ExpectedLineInfo)
635     ErrorMessage = toString(ExpectedLineInfo.takeError());
636   else
637     LineInfo = *ExpectedLineInfo;
638 
639   if (LineInfo.FileName == DILineInfo::BadString) {
640     if (!WarnedNoDebugInfo) {
641       std::string Warning =
642           "failed to parse debug information for " + ObjectFilename.str();
643       if (!ErrorMessage.empty())
644         Warning += ": " + ErrorMessage;
645       reportWarning(Warning, ObjectFilename);
646       WarnedNoDebugInfo = true;
647     }
648   }
649 
650   if (PrintLines)
651     printLines(OS, LineInfo, Delimiter);
652   if (PrintSource)
653     printSources(OS, LineInfo, ObjectFilename, Delimiter);
654   OldLineInfo = LineInfo;
655 }
656 
657 void SourcePrinter::printLines(raw_ostream &OS, const DILineInfo &LineInfo,
658                                StringRef Delimiter) {
659   bool PrintFunctionName = LineInfo.FunctionName != DILineInfo::BadString &&
660                            LineInfo.FunctionName != OldLineInfo.FunctionName;
661   if (PrintFunctionName) {
662     OS << Delimiter << LineInfo.FunctionName;
663     // If demangling is successful, FunctionName will end with "()". Print it
664     // only if demangling did not run or was unsuccessful.
665     if (!StringRef(LineInfo.FunctionName).endswith("()"))
666       OS << "()";
667     OS << ":\n";
668   }
669   if (LineInfo.FileName != DILineInfo::BadString && LineInfo.Line != 0 &&
670       (OldLineInfo.Line != LineInfo.Line ||
671        OldLineInfo.FileName != LineInfo.FileName || PrintFunctionName))
672     OS << Delimiter << LineInfo.FileName << ":" << LineInfo.Line << "\n";
673 }
674 
675 void SourcePrinter::printSources(raw_ostream &OS, const DILineInfo &LineInfo,
676                                  StringRef ObjectFilename,
677                                  StringRef Delimiter) {
678   if (LineInfo.FileName == DILineInfo::BadString || LineInfo.Line == 0 ||
679       (OldLineInfo.Line == LineInfo.Line &&
680        OldLineInfo.FileName == LineInfo.FileName))
681     return;
682 
683   if (SourceCache.find(LineInfo.FileName) == SourceCache.end())
684     if (!cacheSource(LineInfo))
685       return;
686   auto LineBuffer = LineCache.find(LineInfo.FileName);
687   if (LineBuffer != LineCache.end()) {
688     if (LineInfo.Line > LineBuffer->second.size()) {
689       reportWarning(
690           formatv(
691               "debug info line number {0} exceeds the number of lines in {1}",
692               LineInfo.Line, LineInfo.FileName),
693           ObjectFilename);
694       return;
695     }
696     // Vector begins at 0, line numbers are non-zero
697     OS << Delimiter << LineBuffer->second[LineInfo.Line - 1] << '\n';
698   }
699 }
700 
701 static bool isAArch64Elf(const ObjectFile *Obj) {
702   const auto *Elf = dyn_cast<ELFObjectFileBase>(Obj);
703   return Elf && Elf->getEMachine() == ELF::EM_AARCH64;
704 }
705 
706 static bool isArmElf(const ObjectFile *Obj) {
707   const auto *Elf = dyn_cast<ELFObjectFileBase>(Obj);
708   return Elf && Elf->getEMachine() == ELF::EM_ARM;
709 }
710 
711 static bool hasMappingSymbols(const ObjectFile *Obj) {
712   return isArmElf(Obj) || isAArch64Elf(Obj);
713 }
714 
715 static void printRelocation(StringRef FileName, const RelocationRef &Rel,
716                             uint64_t Address, bool Is64Bits) {
717   StringRef Fmt = Is64Bits ? "\t\t%016" PRIx64 ":  " : "\t\t\t%08" PRIx64 ":  ";
718   SmallString<16> Name;
719   SmallString<32> Val;
720   Rel.getTypeName(Name);
721   if (Error E = getRelocationValueString(Rel, Val))
722     reportError(std::move(E), FileName);
723   outs() << format(Fmt.data(), Address) << Name << "\t" << Val << "\n";
724 }
725 
726 class PrettyPrinter {
727 public:
728   virtual ~PrettyPrinter() = default;
729   virtual void printInst(MCInstPrinter &IP, const MCInst *MI,
730                          ArrayRef<uint8_t> Bytes,
731                          object::SectionedAddress Address, raw_ostream &OS,
732                          StringRef Annot, MCSubtargetInfo const &STI,
733                          SourcePrinter *SP, StringRef ObjectFilename,
734                          std::vector<RelocationRef> *Rels = nullptr) {
735     if (SP && (PrintSource || PrintLines))
736       SP->printSourceLine(OS, Address, ObjectFilename);
737 
738     size_t Start = OS.tell();
739     if (!NoLeadingAddr)
740       OS << format("%8" PRIx64 ":", Address.Address);
741     if (!NoShowRawInsn) {
742       OS << ' ';
743       dumpBytes(Bytes, OS);
744     }
745 
746     // The output of printInst starts with a tab. Print some spaces so that
747     // the tab has 1 column and advances to the target tab stop.
748     unsigned TabStop = NoShowRawInsn ? 16 : 40;
749     unsigned Column = OS.tell() - Start;
750     OS.indent(Column < TabStop - 1 ? TabStop - 1 - Column : 7 - Column % 8);
751 
752     if (MI) {
753       // See MCInstPrinter::printInst. On targets where a PC relative immediate
754       // is relative to the next instruction and the length of a MCInst is
755       // difficult to measure (x86), this is the address of the next
756       // instruction.
757       uint64_t Addr =
758           Address.Address + (STI.getTargetTriple().isX86() ? Bytes.size() : 0);
759       IP.printInst(MI, Addr, "", STI, OS);
760     } else
761       OS << "\t<unknown>";
762   }
763 };
764 PrettyPrinter PrettyPrinterInst;
765 
766 class HexagonPrettyPrinter : public PrettyPrinter {
767 public:
768   void printLead(ArrayRef<uint8_t> Bytes, uint64_t Address,
769                  raw_ostream &OS) {
770     uint32_t opcode =
771       (Bytes[3] << 24) | (Bytes[2] << 16) | (Bytes[1] << 8) | Bytes[0];
772     if (!NoLeadingAddr)
773       OS << format("%8" PRIx64 ":", Address);
774     if (!NoShowRawInsn) {
775       OS << "\t";
776       dumpBytes(Bytes.slice(0, 4), OS);
777       OS << format("\t%08" PRIx32, opcode);
778     }
779   }
780   void printInst(MCInstPrinter &IP, const MCInst *MI, ArrayRef<uint8_t> Bytes,
781                  object::SectionedAddress Address, raw_ostream &OS,
782                  StringRef Annot, MCSubtargetInfo const &STI, SourcePrinter *SP,
783                  StringRef ObjectFilename,
784                  std::vector<RelocationRef> *Rels) override {
785     if (SP && (PrintSource || PrintLines))
786       SP->printSourceLine(OS, Address, ObjectFilename, "");
787     if (!MI) {
788       printLead(Bytes, Address.Address, OS);
789       OS << " <unknown>";
790       return;
791     }
792     std::string Buffer;
793     {
794       raw_string_ostream TempStream(Buffer);
795       IP.printInst(MI, Address.Address, "", STI, TempStream);
796     }
797     StringRef Contents(Buffer);
798     // Split off bundle attributes
799     auto PacketBundle = Contents.rsplit('\n');
800     // Split off first instruction from the rest
801     auto HeadTail = PacketBundle.first.split('\n');
802     auto Preamble = " { ";
803     auto Separator = "";
804 
805     // Hexagon's packets require relocations to be inline rather than
806     // clustered at the end of the packet.
807     std::vector<RelocationRef>::const_iterator RelCur = Rels->begin();
808     std::vector<RelocationRef>::const_iterator RelEnd = Rels->end();
809     auto PrintReloc = [&]() -> void {
810       while ((RelCur != RelEnd) && (RelCur->getOffset() <= Address.Address)) {
811         if (RelCur->getOffset() == Address.Address) {
812           printRelocation(ObjectFilename, *RelCur, Address.Address, false);
813           return;
814         }
815         ++RelCur;
816       }
817     };
818 
819     while (!HeadTail.first.empty()) {
820       OS << Separator;
821       Separator = "\n";
822       if (SP && (PrintSource || PrintLines))
823         SP->printSourceLine(OS, Address, ObjectFilename, "");
824       printLead(Bytes, Address.Address, OS);
825       OS << Preamble;
826       Preamble = "   ";
827       StringRef Inst;
828       auto Duplex = HeadTail.first.split('\v');
829       if (!Duplex.second.empty()) {
830         OS << Duplex.first;
831         OS << "; ";
832         Inst = Duplex.second;
833       }
834       else
835         Inst = HeadTail.first;
836       OS << Inst;
837       HeadTail = HeadTail.second.split('\n');
838       if (HeadTail.first.empty())
839         OS << " } " << PacketBundle.second;
840       PrintReloc();
841       Bytes = Bytes.slice(4);
842       Address.Address += 4;
843     }
844   }
845 };
846 HexagonPrettyPrinter HexagonPrettyPrinterInst;
847 
848 class AMDGCNPrettyPrinter : public PrettyPrinter {
849 public:
850   void printInst(MCInstPrinter &IP, const MCInst *MI, ArrayRef<uint8_t> Bytes,
851                  object::SectionedAddress Address, raw_ostream &OS,
852                  StringRef Annot, MCSubtargetInfo const &STI, SourcePrinter *SP,
853                  StringRef ObjectFilename,
854                  std::vector<RelocationRef> *Rels) override {
855     if (SP && (PrintSource || PrintLines))
856       SP->printSourceLine(OS, Address, ObjectFilename);
857 
858     if (MI) {
859       SmallString<40> InstStr;
860       raw_svector_ostream IS(InstStr);
861 
862       IP.printInst(MI, Address.Address, "", STI, IS);
863 
864       OS << left_justify(IS.str(), 60);
865     } else {
866       // an unrecognized encoding - this is probably data so represent it
867       // using the .long directive, or .byte directive if fewer than 4 bytes
868       // remaining
869       if (Bytes.size() >= 4) {
870         OS << format("\t.long 0x%08" PRIx32 " ",
871                      support::endian::read32<support::little>(Bytes.data()));
872         OS.indent(42);
873       } else {
874           OS << format("\t.byte 0x%02" PRIx8, Bytes[0]);
875           for (unsigned int i = 1; i < Bytes.size(); i++)
876             OS << format(", 0x%02" PRIx8, Bytes[i]);
877           OS.indent(55 - (6 * Bytes.size()));
878       }
879     }
880 
881     OS << format("// %012" PRIX64 ":", Address.Address);
882     if (Bytes.size() >= 4) {
883       // D should be casted to uint32_t here as it is passed by format to
884       // snprintf as vararg.
885       for (uint32_t D : makeArrayRef(
886                reinterpret_cast<const support::little32_t *>(Bytes.data()),
887                Bytes.size() / 4))
888         OS << format(" %08" PRIX32, D);
889     } else {
890       for (unsigned char B : Bytes)
891         OS << format(" %02" PRIX8, B);
892     }
893 
894     if (!Annot.empty())
895       OS << " // " << Annot;
896   }
897 };
898 AMDGCNPrettyPrinter AMDGCNPrettyPrinterInst;
899 
900 class BPFPrettyPrinter : public PrettyPrinter {
901 public:
902   void printInst(MCInstPrinter &IP, const MCInst *MI, ArrayRef<uint8_t> Bytes,
903                  object::SectionedAddress Address, raw_ostream &OS,
904                  StringRef Annot, MCSubtargetInfo const &STI, SourcePrinter *SP,
905                  StringRef ObjectFilename,
906                  std::vector<RelocationRef> *Rels) override {
907     if (SP && (PrintSource || PrintLines))
908       SP->printSourceLine(OS, Address, ObjectFilename);
909     if (!NoLeadingAddr)
910       OS << format("%8" PRId64 ":", Address.Address / 8);
911     if (!NoShowRawInsn) {
912       OS << "\t";
913       dumpBytes(Bytes, OS);
914     }
915     if (MI)
916       IP.printInst(MI, Address.Address, "", STI, OS);
917     else
918       OS << "\t<unknown>";
919   }
920 };
921 BPFPrettyPrinter BPFPrettyPrinterInst;
922 
923 PrettyPrinter &selectPrettyPrinter(Triple const &Triple) {
924   switch(Triple.getArch()) {
925   default:
926     return PrettyPrinterInst;
927   case Triple::hexagon:
928     return HexagonPrettyPrinterInst;
929   case Triple::amdgcn:
930     return AMDGCNPrettyPrinterInst;
931   case Triple::bpfel:
932   case Triple::bpfeb:
933     return BPFPrettyPrinterInst;
934   }
935 }
936 }
937 
938 static uint8_t getElfSymbolType(const ObjectFile *Obj, const SymbolRef &Sym) {
939   assert(Obj->isELF());
940   if (auto *Elf32LEObj = dyn_cast<ELF32LEObjectFile>(Obj))
941     return Elf32LEObj->getSymbol(Sym.getRawDataRefImpl())->getType();
942   if (auto *Elf64LEObj = dyn_cast<ELF64LEObjectFile>(Obj))
943     return Elf64LEObj->getSymbol(Sym.getRawDataRefImpl())->getType();
944   if (auto *Elf32BEObj = dyn_cast<ELF32BEObjectFile>(Obj))
945     return Elf32BEObj->getSymbol(Sym.getRawDataRefImpl())->getType();
946   if (auto *Elf64BEObj = cast<ELF64BEObjectFile>(Obj))
947     return Elf64BEObj->getSymbol(Sym.getRawDataRefImpl())->getType();
948   llvm_unreachable("Unsupported binary format");
949 }
950 
951 template <class ELFT> static void
952 addDynamicElfSymbols(const ELFObjectFile<ELFT> *Obj,
953                      std::map<SectionRef, SectionSymbolsTy> &AllSymbols) {
954   for (auto Symbol : Obj->getDynamicSymbolIterators()) {
955     uint8_t SymbolType = Symbol.getELFType();
956     if (SymbolType == ELF::STT_SECTION)
957       continue;
958 
959     uint64_t Address = unwrapOrError(Symbol.getAddress(), Obj->getFileName());
960     // ELFSymbolRef::getAddress() returns size instead of value for common
961     // symbols which is not desirable for disassembly output. Overriding.
962     if (SymbolType == ELF::STT_COMMON)
963       Address = Obj->getSymbol(Symbol.getRawDataRefImpl())->st_value;
964 
965     StringRef Name = unwrapOrError(Symbol.getName(), Obj->getFileName());
966     if (Name.empty())
967       continue;
968 
969     section_iterator SecI =
970         unwrapOrError(Symbol.getSection(), Obj->getFileName());
971     if (SecI == Obj->section_end())
972       continue;
973 
974     AllSymbols[*SecI].emplace_back(Address, Name, SymbolType);
975   }
976 }
977 
978 static void
979 addDynamicElfSymbols(const ObjectFile *Obj,
980                      std::map<SectionRef, SectionSymbolsTy> &AllSymbols) {
981   assert(Obj->isELF());
982   if (auto *Elf32LEObj = dyn_cast<ELF32LEObjectFile>(Obj))
983     addDynamicElfSymbols(Elf32LEObj, AllSymbols);
984   else if (auto *Elf64LEObj = dyn_cast<ELF64LEObjectFile>(Obj))
985     addDynamicElfSymbols(Elf64LEObj, AllSymbols);
986   else if (auto *Elf32BEObj = dyn_cast<ELF32BEObjectFile>(Obj))
987     addDynamicElfSymbols(Elf32BEObj, AllSymbols);
988   else if (auto *Elf64BEObj = cast<ELF64BEObjectFile>(Obj))
989     addDynamicElfSymbols(Elf64BEObj, AllSymbols);
990   else
991     llvm_unreachable("Unsupported binary format");
992 }
993 
994 static void addPltEntries(const ObjectFile *Obj,
995                           std::map<SectionRef, SectionSymbolsTy> &AllSymbols,
996                           StringSaver &Saver) {
997   Optional<SectionRef> Plt = None;
998   for (const SectionRef &Section : Obj->sections()) {
999     Expected<StringRef> SecNameOrErr = Section.getName();
1000     if (!SecNameOrErr) {
1001       consumeError(SecNameOrErr.takeError());
1002       continue;
1003     }
1004     if (*SecNameOrErr == ".plt")
1005       Plt = Section;
1006   }
1007   if (!Plt)
1008     return;
1009   if (auto *ElfObj = dyn_cast<ELFObjectFileBase>(Obj)) {
1010     for (auto PltEntry : ElfObj->getPltAddresses()) {
1011       SymbolRef Symbol(PltEntry.first, ElfObj);
1012       uint8_t SymbolType = getElfSymbolType(Obj, Symbol);
1013 
1014       StringRef Name = unwrapOrError(Symbol.getName(), Obj->getFileName());
1015       if (!Name.empty())
1016         AllSymbols[*Plt].emplace_back(
1017             PltEntry.second, Saver.save((Name + "@plt").str()), SymbolType);
1018     }
1019   }
1020 }
1021 
1022 // Normally the disassembly output will skip blocks of zeroes. This function
1023 // returns the number of zero bytes that can be skipped when dumping the
1024 // disassembly of the instructions in Buf.
1025 static size_t countSkippableZeroBytes(ArrayRef<uint8_t> Buf) {
1026   // Find the number of leading zeroes.
1027   size_t N = 0;
1028   while (N < Buf.size() && !Buf[N])
1029     ++N;
1030 
1031   // We may want to skip blocks of zero bytes, but unless we see
1032   // at least 8 of them in a row.
1033   if (N < 8)
1034     return 0;
1035 
1036   // We skip zeroes in multiples of 4 because do not want to truncate an
1037   // instruction if it starts with a zero byte.
1038   return N & ~0x3;
1039 }
1040 
1041 // Returns a map from sections to their relocations.
1042 static std::map<SectionRef, std::vector<RelocationRef>>
1043 getRelocsMap(object::ObjectFile const &Obj) {
1044   std::map<SectionRef, std::vector<RelocationRef>> Ret;
1045   uint64_t I = (uint64_t)-1;
1046   for (SectionRef Sec : Obj.sections()) {
1047     ++I;
1048     Expected<section_iterator> RelocatedOrErr = Sec.getRelocatedSection();
1049     if (!RelocatedOrErr)
1050       reportError(Obj.getFileName(),
1051                   "section (" + Twine(I) +
1052                       "): failed to get a relocated section: " +
1053                       toString(RelocatedOrErr.takeError()));
1054 
1055     section_iterator Relocated = *RelocatedOrErr;
1056     if (Relocated == Obj.section_end() || !checkSectionFilter(*Relocated).Keep)
1057       continue;
1058     std::vector<RelocationRef> &V = Ret[*Relocated];
1059     for (const RelocationRef &R : Sec.relocations())
1060       V.push_back(R);
1061     // Sort relocations by address.
1062     llvm::stable_sort(V, isRelocAddressLess);
1063   }
1064   return Ret;
1065 }
1066 
1067 // Used for --adjust-vma to check if address should be adjusted by the
1068 // specified value for a given section.
1069 // For ELF we do not adjust non-allocatable sections like debug ones,
1070 // because they are not loadable.
1071 // TODO: implement for other file formats.
1072 static bool shouldAdjustVA(const SectionRef &Section) {
1073   const ObjectFile *Obj = Section.getObject();
1074   if (Obj->isELF())
1075     return ELFSectionRef(Section).getFlags() & ELF::SHF_ALLOC;
1076   return false;
1077 }
1078 
1079 
1080 typedef std::pair<uint64_t, char> MappingSymbolPair;
1081 static char getMappingSymbolKind(ArrayRef<MappingSymbolPair> MappingSymbols,
1082                                  uint64_t Address) {
1083   auto It =
1084       partition_point(MappingSymbols, [Address](const MappingSymbolPair &Val) {
1085         return Val.first <= Address;
1086       });
1087   // Return zero for any address before the first mapping symbol; this means
1088   // we should use the default disassembly mode, depending on the target.
1089   if (It == MappingSymbols.begin())
1090     return '\x00';
1091   return (It - 1)->second;
1092 }
1093 
1094 static uint64_t
1095 dumpARMELFData(uint64_t SectionAddr, uint64_t Index, uint64_t End,
1096                const ObjectFile *Obj, ArrayRef<uint8_t> Bytes,
1097                ArrayRef<MappingSymbolPair> MappingSymbols) {
1098   support::endianness Endian =
1099       Obj->isLittleEndian() ? support::little : support::big;
1100   while (Index < End) {
1101     outs() << format("%8" PRIx64 ":", SectionAddr + Index);
1102     outs() << "\t";
1103     if (Index + 4 <= End) {
1104       dumpBytes(Bytes.slice(Index, 4), outs());
1105       outs() << "\t.word\t"
1106              << format_hex(
1107                     support::endian::read32(Bytes.data() + Index, Endian), 10);
1108       Index += 4;
1109     } else if (Index + 2 <= End) {
1110       dumpBytes(Bytes.slice(Index, 2), outs());
1111       outs() << "\t\t.short\t"
1112              << format_hex(
1113                     support::endian::read16(Bytes.data() + Index, Endian), 6);
1114       Index += 2;
1115     } else {
1116       dumpBytes(Bytes.slice(Index, 1), outs());
1117       outs() << "\t\t.byte\t" << format_hex(Bytes[0], 4);
1118       ++Index;
1119     }
1120     outs() << "\n";
1121     if (getMappingSymbolKind(MappingSymbols, Index) != 'd')
1122       break;
1123   }
1124   return Index;
1125 }
1126 
1127 static void dumpELFData(uint64_t SectionAddr, uint64_t Index, uint64_t End,
1128                         ArrayRef<uint8_t> Bytes) {
1129   // print out data up to 8 bytes at a time in hex and ascii
1130   uint8_t AsciiData[9] = {'\0'};
1131   uint8_t Byte;
1132   int NumBytes = 0;
1133 
1134   for (; Index < End; ++Index) {
1135     if (NumBytes == 0)
1136       outs() << format("%8" PRIx64 ":", SectionAddr + Index);
1137     Byte = Bytes.slice(Index)[0];
1138     outs() << format(" %02x", Byte);
1139     AsciiData[NumBytes] = isPrint(Byte) ? Byte : '.';
1140 
1141     uint8_t IndentOffset = 0;
1142     NumBytes++;
1143     if (Index == End - 1 || NumBytes > 8) {
1144       // Indent the space for less than 8 bytes data.
1145       // 2 spaces for byte and one for space between bytes
1146       IndentOffset = 3 * (8 - NumBytes);
1147       for (int Excess = NumBytes; Excess < 8; Excess++)
1148         AsciiData[Excess] = '\0';
1149       NumBytes = 8;
1150     }
1151     if (NumBytes == 8) {
1152       AsciiData[8] = '\0';
1153       outs() << std::string(IndentOffset, ' ') << "         ";
1154       outs() << reinterpret_cast<char *>(AsciiData);
1155       outs() << '\n';
1156       NumBytes = 0;
1157     }
1158   }
1159 }
1160 
1161 SymbolInfoTy createSymbolInfo(const ObjectFile *Obj, const SymbolRef &Symbol) {
1162   const StringRef FileName = Obj->getFileName();
1163   const uint64_t Addr = unwrapOrError(Symbol.getAddress(), FileName);
1164   const StringRef Name = unwrapOrError(Symbol.getName(), FileName);
1165 
1166   if (Obj->isXCOFF() && SymbolDescription) {
1167     const auto *XCOFFObj = cast<XCOFFObjectFile>(Obj);
1168     DataRefImpl SymbolDRI = Symbol.getRawDataRefImpl();
1169 
1170     const uint32_t SymbolIndex = XCOFFObj->getSymbolIndex(SymbolDRI.p);
1171     Optional<XCOFF::StorageMappingClass> Smc =
1172         getXCOFFSymbolCsectSMC(XCOFFObj, Symbol);
1173     return SymbolInfoTy(Addr, Name, Smc, SymbolIndex,
1174                         isLabel(XCOFFObj, Symbol));
1175   } else
1176     return SymbolInfoTy(Addr, Name,
1177                         Obj->isELF() ? getElfSymbolType(Obj, Symbol)
1178                                      : (uint8_t)ELF::STT_NOTYPE);
1179 }
1180 
1181 SymbolInfoTy createDummySymbolInfo(const ObjectFile *Obj, const uint64_t Addr,
1182                                    StringRef &Name, uint8_t Type) {
1183   if (Obj->isXCOFF() && SymbolDescription)
1184     return SymbolInfoTy(Addr, Name, None, None, false);
1185   else
1186     return SymbolInfoTy(Addr, Name, Type);
1187 }
1188 
1189 static void disassembleObject(const Target *TheTarget, const ObjectFile *Obj,
1190                               MCContext &Ctx, MCDisassembler *PrimaryDisAsm,
1191                               MCDisassembler *SecondaryDisAsm,
1192                               const MCInstrAnalysis *MIA, MCInstPrinter *IP,
1193                               const MCSubtargetInfo *PrimarySTI,
1194                               const MCSubtargetInfo *SecondarySTI,
1195                               PrettyPrinter &PIP,
1196                               SourcePrinter &SP, bool InlineRelocs) {
1197   const MCSubtargetInfo *STI = PrimarySTI;
1198   MCDisassembler *DisAsm = PrimaryDisAsm;
1199   bool PrimaryIsThumb = false;
1200   if (isArmElf(Obj))
1201     PrimaryIsThumb = STI->checkFeatures("+thumb-mode");
1202 
1203   std::map<SectionRef, std::vector<RelocationRef>> RelocMap;
1204   if (InlineRelocs)
1205     RelocMap = getRelocsMap(*Obj);
1206   bool Is64Bits = Obj->getBytesInAddress() > 4;
1207 
1208   // Create a mapping from virtual address to symbol name.  This is used to
1209   // pretty print the symbols while disassembling.
1210   std::map<SectionRef, SectionSymbolsTy> AllSymbols;
1211   SectionSymbolsTy AbsoluteSymbols;
1212   const StringRef FileName = Obj->getFileName();
1213   const MachOObjectFile *MachO = dyn_cast<const MachOObjectFile>(Obj);
1214   for (const SymbolRef &Symbol : Obj->symbols()) {
1215     StringRef Name = unwrapOrError(Symbol.getName(), FileName);
1216     if (Name.empty() && !(Obj->isXCOFF() && SymbolDescription))
1217       continue;
1218 
1219     if (Obj->isELF() && getElfSymbolType(Obj, Symbol) == ELF::STT_SECTION)
1220       continue;
1221 
1222     // Don't ask a Mach-O STAB symbol for its section unless you know that
1223     // STAB symbol's section field refers to a valid section index. Otherwise
1224     // the symbol may error trying to load a section that does not exist.
1225     if (MachO) {
1226       DataRefImpl SymDRI = Symbol.getRawDataRefImpl();
1227       uint8_t NType = (MachO->is64Bit() ?
1228                        MachO->getSymbol64TableEntry(SymDRI).n_type:
1229                        MachO->getSymbolTableEntry(SymDRI).n_type);
1230       if (NType & MachO::N_STAB)
1231         continue;
1232     }
1233 
1234     section_iterator SecI = unwrapOrError(Symbol.getSection(), FileName);
1235     if (SecI != Obj->section_end())
1236       AllSymbols[*SecI].push_back(createSymbolInfo(Obj, Symbol));
1237     else
1238       AbsoluteSymbols.push_back(createSymbolInfo(Obj, Symbol));
1239   }
1240 
1241   if (AllSymbols.empty() && Obj->isELF())
1242     addDynamicElfSymbols(Obj, AllSymbols);
1243 
1244   BumpPtrAllocator A;
1245   StringSaver Saver(A);
1246   addPltEntries(Obj, AllSymbols, Saver);
1247 
1248   // Create a mapping from virtual address to section. An empty section can
1249   // cause more than one section at the same address. Sort such sections to be
1250   // before same-addressed non-empty sections so that symbol lookups prefer the
1251   // non-empty section.
1252   std::vector<std::pair<uint64_t, SectionRef>> SectionAddresses;
1253   for (SectionRef Sec : Obj->sections())
1254     SectionAddresses.emplace_back(Sec.getAddress(), Sec);
1255   llvm::stable_sort(SectionAddresses, [](const auto &LHS, const auto &RHS) {
1256     if (LHS.first != RHS.first)
1257       return LHS.first < RHS.first;
1258     return LHS.second.getSize() < RHS.second.getSize();
1259   });
1260 
1261   // Linked executables (.exe and .dll files) typically don't include a real
1262   // symbol table but they might contain an export table.
1263   if (const auto *COFFObj = dyn_cast<COFFObjectFile>(Obj)) {
1264     for (const auto &ExportEntry : COFFObj->export_directories()) {
1265       StringRef Name;
1266       if (std::error_code EC = ExportEntry.getSymbolName(Name))
1267         reportError(errorCodeToError(EC), Obj->getFileName());
1268       if (Name.empty())
1269         continue;
1270 
1271       uint32_t RVA;
1272       if (std::error_code EC = ExportEntry.getExportRVA(RVA))
1273         reportError(errorCodeToError(EC), Obj->getFileName());
1274 
1275       uint64_t VA = COFFObj->getImageBase() + RVA;
1276       auto Sec = partition_point(
1277           SectionAddresses, [VA](const std::pair<uint64_t, SectionRef> &O) {
1278             return O.first <= VA;
1279           });
1280       if (Sec != SectionAddresses.begin()) {
1281         --Sec;
1282         AllSymbols[Sec->second].emplace_back(VA, Name, ELF::STT_NOTYPE);
1283       } else
1284         AbsoluteSymbols.emplace_back(VA, Name, ELF::STT_NOTYPE);
1285     }
1286   }
1287 
1288   // Sort all the symbols, this allows us to use a simple binary search to find
1289   // Multiple symbols can have the same address. Use a stable sort to stabilize
1290   // the output.
1291   StringSet<> FoundDisasmSymbolSet;
1292   for (std::pair<const SectionRef, SectionSymbolsTy> &SecSyms : AllSymbols)
1293     stable_sort(SecSyms.second);
1294   stable_sort(AbsoluteSymbols);
1295 
1296   for (const SectionRef &Section : ToolSectionFilter(*Obj)) {
1297     if (FilterSections.empty() && !DisassembleAll &&
1298         (!Section.isText() || Section.isVirtual()))
1299       continue;
1300 
1301     uint64_t SectionAddr = Section.getAddress();
1302     uint64_t SectSize = Section.getSize();
1303     if (!SectSize)
1304       continue;
1305 
1306     // Get the list of all the symbols in this section.
1307     SectionSymbolsTy &Symbols = AllSymbols[Section];
1308     std::vector<MappingSymbolPair> MappingSymbols;
1309     if (hasMappingSymbols(Obj)) {
1310       for (const auto &Symb : Symbols) {
1311         uint64_t Address = Symb.Addr;
1312         StringRef Name = Symb.Name;
1313         if (Name.startswith("$d"))
1314           MappingSymbols.emplace_back(Address - SectionAddr, 'd');
1315         if (Name.startswith("$x"))
1316           MappingSymbols.emplace_back(Address - SectionAddr, 'x');
1317         if (Name.startswith("$a"))
1318           MappingSymbols.emplace_back(Address - SectionAddr, 'a');
1319         if (Name.startswith("$t"))
1320           MappingSymbols.emplace_back(Address - SectionAddr, 't');
1321       }
1322     }
1323 
1324     llvm::sort(MappingSymbols);
1325 
1326     if (Obj->isELF() && Obj->getArch() == Triple::amdgcn) {
1327       // AMDGPU disassembler uses symbolizer for printing labels
1328       std::unique_ptr<MCRelocationInfo> RelInfo(
1329         TheTarget->createMCRelocationInfo(TripleName, Ctx));
1330       if (RelInfo) {
1331         std::unique_ptr<MCSymbolizer> Symbolizer(
1332           TheTarget->createMCSymbolizer(
1333             TripleName, nullptr, nullptr, &Symbols, &Ctx, std::move(RelInfo)));
1334         DisAsm->setSymbolizer(std::move(Symbolizer));
1335       }
1336     }
1337 
1338     StringRef SegmentName = "";
1339     if (MachO) {
1340       DataRefImpl DR = Section.getRawDataRefImpl();
1341       SegmentName = MachO->getSectionFinalSegmentName(DR);
1342     }
1343 
1344     StringRef SectionName = unwrapOrError(Section.getName(), Obj->getFileName());
1345     // If the section has no symbol at the start, just insert a dummy one.
1346     if (Symbols.empty() || Symbols[0].Addr != 0) {
1347       Symbols.insert(Symbols.begin(),
1348                      createDummySymbolInfo(Obj, SectionAddr, SectionName,
1349                                            Section.isText() ? ELF::STT_FUNC
1350                                                             : ELF::STT_OBJECT));
1351     }
1352 
1353     SmallString<40> Comments;
1354     raw_svector_ostream CommentStream(Comments);
1355 
1356     ArrayRef<uint8_t> Bytes = arrayRefFromStringRef(
1357         unwrapOrError(Section.getContents(), Obj->getFileName()));
1358 
1359     uint64_t VMAAdjustment = 0;
1360     if (shouldAdjustVA(Section))
1361       VMAAdjustment = AdjustVMA;
1362 
1363     uint64_t Size;
1364     uint64_t Index;
1365     bool PrintedSection = false;
1366     std::vector<RelocationRef> Rels = RelocMap[Section];
1367     std::vector<RelocationRef>::const_iterator RelCur = Rels.begin();
1368     std::vector<RelocationRef>::const_iterator RelEnd = Rels.end();
1369     // Disassemble symbol by symbol.
1370     for (unsigned SI = 0, SE = Symbols.size(); SI != SE; ++SI) {
1371       std::string SymbolName = Symbols[SI].Name.str();
1372       if (Demangle)
1373         SymbolName = demangle(SymbolName);
1374 
1375       // Skip if --disassemble-symbols is not empty and the symbol is not in
1376       // the list.
1377       if (!DisasmSymbolSet.empty() && !DisasmSymbolSet.count(SymbolName))
1378         continue;
1379 
1380       uint64_t Start = Symbols[SI].Addr;
1381       if (Start < SectionAddr || StopAddress <= Start)
1382         continue;
1383       else
1384         FoundDisasmSymbolSet.insert(SymbolName);
1385 
1386       // The end is the section end, the beginning of the next symbol, or
1387       // --stop-address.
1388       uint64_t End = std::min<uint64_t>(SectionAddr + SectSize, StopAddress);
1389       if (SI + 1 < SE)
1390         End = std::min(End, Symbols[SI + 1].Addr);
1391       if (Start >= End || End <= StartAddress)
1392         continue;
1393       Start -= SectionAddr;
1394       End -= SectionAddr;
1395 
1396       if (!PrintedSection) {
1397         PrintedSection = true;
1398         outs() << "\nDisassembly of section ";
1399         if (!SegmentName.empty())
1400           outs() << SegmentName << ",";
1401         outs() << SectionName << ":\n";
1402       }
1403 
1404       if (Obj->isELF() && Obj->getArch() == Triple::amdgcn) {
1405         if (Symbols[SI].Type == ELF::STT_AMDGPU_HSA_KERNEL) {
1406           // skip amd_kernel_code_t at the begining of kernel symbol (256 bytes)
1407           Start += 256;
1408         }
1409         if (SI == SE - 1 ||
1410             Symbols[SI + 1].Type == ELF::STT_AMDGPU_HSA_KERNEL) {
1411           // cut trailing zeroes at the end of kernel
1412           // cut up to 256 bytes
1413           const uint64_t EndAlign = 256;
1414           const auto Limit = End - (std::min)(EndAlign, End - Start);
1415           while (End > Limit &&
1416             *reinterpret_cast<const support::ulittle32_t*>(&Bytes[End - 4]) == 0)
1417             End -= 4;
1418         }
1419       }
1420 
1421       outs() << '\n';
1422       if (!NoLeadingAddr)
1423         outs() << format(Is64Bits ? "%016" PRIx64 " " : "%08" PRIx64 " ",
1424                          SectionAddr + Start + VMAAdjustment);
1425       if (Obj->isXCOFF() && SymbolDescription) {
1426         outs() << getXCOFFSymbolDescription(Symbols[SI], SymbolName) << ":\n";
1427       } else
1428         outs() << '<' << SymbolName << ">:\n";
1429 
1430       // Don't print raw contents of a virtual section. A virtual section
1431       // doesn't have any contents in the file.
1432       if (Section.isVirtual()) {
1433         outs() << "...\n";
1434         continue;
1435       }
1436 
1437       // Some targets (like WebAssembly) have a special prelude at the start
1438       // of each symbol.
1439       DisAsm->onSymbolStart(SymbolName, Size, Bytes.slice(Start, End - Start),
1440                             SectionAddr + Start, CommentStream);
1441       Start += Size;
1442 
1443       Index = Start;
1444       if (SectionAddr < StartAddress)
1445         Index = std::max<uint64_t>(Index, StartAddress - SectionAddr);
1446 
1447       // If there is a data/common symbol inside an ELF text section and we are
1448       // only disassembling text (applicable all architectures), we are in a
1449       // situation where we must print the data and not disassemble it.
1450       if (Obj->isELF() && !DisassembleAll && Section.isText()) {
1451         uint8_t SymTy = Symbols[SI].Type;
1452         if (SymTy == ELF::STT_OBJECT || SymTy == ELF::STT_COMMON) {
1453           dumpELFData(SectionAddr, Index, End, Bytes);
1454           Index = End;
1455         }
1456       }
1457 
1458       bool CheckARMELFData = hasMappingSymbols(Obj) &&
1459                              Symbols[SI].Type != ELF::STT_OBJECT &&
1460                              !DisassembleAll;
1461       while (Index < End) {
1462         // ARM and AArch64 ELF binaries can interleave data and text in the
1463         // same section. We rely on the markers introduced to understand what
1464         // we need to dump. If the data marker is within a function, it is
1465         // denoted as a word/short etc.
1466         if (CheckARMELFData &&
1467             getMappingSymbolKind(MappingSymbols, Index) == 'd') {
1468           Index = dumpARMELFData(SectionAddr, Index, End, Obj, Bytes,
1469                                  MappingSymbols);
1470           continue;
1471         }
1472 
1473         // When -z or --disassemble-zeroes are given we always dissasemble
1474         // them. Otherwise we might want to skip zero bytes we see.
1475         if (!DisassembleZeroes) {
1476           uint64_t MaxOffset = End - Index;
1477           // For --reloc: print zero blocks patched by relocations, so that
1478           // relocations can be shown in the dump.
1479           if (RelCur != RelEnd)
1480             MaxOffset = RelCur->getOffset() - Index;
1481 
1482           if (size_t N =
1483                   countSkippableZeroBytes(Bytes.slice(Index, MaxOffset))) {
1484             outs() << "\t\t..." << '\n';
1485             Index += N;
1486             continue;
1487           }
1488         }
1489 
1490         if (SecondarySTI) {
1491           if (getMappingSymbolKind(MappingSymbols, Index) == 'a') {
1492             STI = PrimaryIsThumb ? SecondarySTI : PrimarySTI;
1493             DisAsm = PrimaryIsThumb ? SecondaryDisAsm : PrimaryDisAsm;
1494           } else if (getMappingSymbolKind(MappingSymbols, Index) == 't') {
1495             STI = PrimaryIsThumb ? PrimarySTI : SecondarySTI;
1496             DisAsm = PrimaryIsThumb ? PrimaryDisAsm : SecondaryDisAsm;
1497           }
1498         }
1499 
1500         // Disassemble a real instruction or a data when disassemble all is
1501         // provided
1502         MCInst Inst;
1503         bool Disassembled = DisAsm->getInstruction(
1504             Inst, Size, Bytes.slice(Index), SectionAddr + Index, CommentStream);
1505         if (Size == 0)
1506           Size = 1;
1507 
1508         PIP.printInst(*IP, Disassembled ? &Inst : nullptr,
1509                       Bytes.slice(Index, Size),
1510                       {SectionAddr + Index + VMAAdjustment, Section.getIndex()},
1511                       outs(), "", *STI, &SP, Obj->getFileName(), &Rels);
1512         outs() << CommentStream.str();
1513         Comments.clear();
1514 
1515         // If disassembly has failed, avoid analysing invalid/incomplete
1516         // instruction information. Otherwise, try to resolve the target address
1517         // (jump target or memory operand address) and print it on the right of
1518         // the instruction.
1519         if (Disassembled && MIA) {
1520           uint64_t Target;
1521           bool PrintTarget =
1522               MIA->evaluateBranch(Inst, SectionAddr + Index, Size, Target);
1523           if (!PrintTarget)
1524             if (Optional<uint64_t> MaybeTarget =
1525                     MIA->evaluateMemoryOperandAddress(Inst, SectionAddr + Index,
1526                                                       Size)) {
1527               Target = *MaybeTarget;
1528               PrintTarget = true;
1529               outs() << "  # " << Twine::utohexstr(Target);
1530             }
1531           if (PrintTarget) {
1532             // In a relocatable object, the target's section must reside in
1533             // the same section as the call instruction or it is accessed
1534             // through a relocation.
1535             //
1536             // In a non-relocatable object, the target may be in any section.
1537             // In that case, locate the section(s) containing the target address
1538             // and find the symbol in one of those, if possible.
1539             //
1540             // N.B. We don't walk the relocations in the relocatable case yet.
1541             std::vector<const SectionSymbolsTy *> TargetSectionSymbols;
1542             if (!Obj->isRelocatableObject()) {
1543               auto It = llvm::partition_point(
1544                   SectionAddresses,
1545                   [=](const std::pair<uint64_t, SectionRef> &O) {
1546                     return O.first <= Target;
1547                   });
1548               uint64_t TargetSecAddr = 0;
1549               while (It != SectionAddresses.begin()) {
1550                 --It;
1551                 if (TargetSecAddr == 0)
1552                   TargetSecAddr = It->first;
1553                 if (It->first != TargetSecAddr)
1554                   break;
1555                 TargetSectionSymbols.push_back(&AllSymbols[It->second]);
1556               }
1557             } else {
1558               TargetSectionSymbols.push_back(&Symbols);
1559             }
1560             TargetSectionSymbols.push_back(&AbsoluteSymbols);
1561 
1562             // Find the last symbol in the first candidate section whose offset
1563             // is less than or equal to the target. If there are no such
1564             // symbols, try in the next section and so on, before finally using
1565             // the nearest preceding absolute symbol (if any), if there are no
1566             // other valid symbols.
1567             const SymbolInfoTy *TargetSym = nullptr;
1568             for (const SectionSymbolsTy *TargetSymbols : TargetSectionSymbols) {
1569               auto It = llvm::partition_point(
1570                   *TargetSymbols,
1571                   [=](const SymbolInfoTy &O) { return O.Addr <= Target; });
1572               if (It != TargetSymbols->begin()) {
1573                 TargetSym = &*(It - 1);
1574                 break;
1575               }
1576             }
1577 
1578             if (TargetSym != nullptr) {
1579               uint64_t TargetAddress = TargetSym->Addr;
1580               std::string TargetName = TargetSym->Name.str();
1581               if (Demangle)
1582                 TargetName = demangle(TargetName);
1583 
1584               outs() << " <" << TargetName;
1585               uint64_t Disp = Target - TargetAddress;
1586               if (Disp)
1587                 outs() << "+0x" << Twine::utohexstr(Disp);
1588               outs() << '>';
1589             }
1590           }
1591         }
1592         outs() << "\n";
1593 
1594         // Hexagon does this in pretty printer
1595         if (Obj->getArch() != Triple::hexagon) {
1596           // Print relocation for instruction and data.
1597           while (RelCur != RelEnd) {
1598             uint64_t Offset = RelCur->getOffset();
1599             // If this relocation is hidden, skip it.
1600             if (getHidden(*RelCur) || SectionAddr + Offset < StartAddress) {
1601               ++RelCur;
1602               continue;
1603             }
1604 
1605             // Stop when RelCur's offset is past the disassembled
1606             // instruction/data. Note that it's possible the disassembled data
1607             // is not the complete data: we might see the relocation printed in
1608             // the middle of the data, but this matches the binutils objdump
1609             // output.
1610             if (Offset >= Index + Size)
1611               break;
1612 
1613             // When --adjust-vma is used, update the address printed.
1614             if (RelCur->getSymbol() != Obj->symbol_end()) {
1615               Expected<section_iterator> SymSI =
1616                   RelCur->getSymbol()->getSection();
1617               if (SymSI && *SymSI != Obj->section_end() &&
1618                   shouldAdjustVA(**SymSI))
1619                 Offset += AdjustVMA;
1620             }
1621 
1622             printRelocation(Obj->getFileName(), *RelCur, SectionAddr + Offset,
1623                             Is64Bits);
1624             ++RelCur;
1625           }
1626         }
1627 
1628         Index += Size;
1629       }
1630     }
1631   }
1632   StringSet<> MissingDisasmSymbolSet =
1633       set_difference(DisasmSymbolSet, FoundDisasmSymbolSet);
1634   for (StringRef Sym : MissingDisasmSymbolSet.keys())
1635     reportWarning("failed to disassemble missing symbol " + Sym, FileName);
1636 }
1637 
1638 static void disassembleObject(const ObjectFile *Obj, bool InlineRelocs) {
1639   const Target *TheTarget = getTarget(Obj);
1640 
1641   // Package up features to be passed to target/subtarget
1642   SubtargetFeatures Features = Obj->getFeatures();
1643   if (!MAttrs.empty())
1644     for (unsigned I = 0; I != MAttrs.size(); ++I)
1645       Features.AddFeature(MAttrs[I]);
1646 
1647   std::unique_ptr<const MCRegisterInfo> MRI(
1648       TheTarget->createMCRegInfo(TripleName));
1649   if (!MRI)
1650     reportError(Obj->getFileName(),
1651                 "no register info for target " + TripleName);
1652 
1653   // Set up disassembler.
1654   MCTargetOptions MCOptions;
1655   std::unique_ptr<const MCAsmInfo> AsmInfo(
1656       TheTarget->createMCAsmInfo(*MRI, TripleName, MCOptions));
1657   if (!AsmInfo)
1658     reportError(Obj->getFileName(),
1659                 "no assembly info for target " + TripleName);
1660   std::unique_ptr<const MCSubtargetInfo> STI(
1661       TheTarget->createMCSubtargetInfo(TripleName, MCPU, Features.getString()));
1662   if (!STI)
1663     reportError(Obj->getFileName(),
1664                 "no subtarget info for target " + TripleName);
1665   std::unique_ptr<const MCInstrInfo> MII(TheTarget->createMCInstrInfo());
1666   if (!MII)
1667     reportError(Obj->getFileName(),
1668                 "no instruction info for target " + TripleName);
1669   MCObjectFileInfo MOFI;
1670   MCContext Ctx(AsmInfo.get(), MRI.get(), &MOFI);
1671   // FIXME: for now initialize MCObjectFileInfo with default values
1672   MOFI.InitMCObjectFileInfo(Triple(TripleName), false, Ctx);
1673 
1674   std::unique_ptr<MCDisassembler> DisAsm(
1675       TheTarget->createMCDisassembler(*STI, Ctx));
1676   if (!DisAsm)
1677     reportError(Obj->getFileName(), "no disassembler for target " + TripleName);
1678 
1679   // If we have an ARM object file, we need a second disassembler, because
1680   // ARM CPUs have two different instruction sets: ARM mode, and Thumb mode.
1681   // We use mapping symbols to switch between the two assemblers, where
1682   // appropriate.
1683   std::unique_ptr<MCDisassembler> SecondaryDisAsm;
1684   std::unique_ptr<const MCSubtargetInfo> SecondarySTI;
1685   if (isArmElf(Obj) && !STI->checkFeatures("+mclass")) {
1686     if (STI->checkFeatures("+thumb-mode"))
1687       Features.AddFeature("-thumb-mode");
1688     else
1689       Features.AddFeature("+thumb-mode");
1690     SecondarySTI.reset(TheTarget->createMCSubtargetInfo(TripleName, MCPU,
1691                                                         Features.getString()));
1692     SecondaryDisAsm.reset(TheTarget->createMCDisassembler(*SecondarySTI, Ctx));
1693   }
1694 
1695   std::unique_ptr<const MCInstrAnalysis> MIA(
1696       TheTarget->createMCInstrAnalysis(MII.get()));
1697 
1698   int AsmPrinterVariant = AsmInfo->getAssemblerDialect();
1699   std::unique_ptr<MCInstPrinter> IP(TheTarget->createMCInstPrinter(
1700       Triple(TripleName), AsmPrinterVariant, *AsmInfo, *MII, *MRI));
1701   if (!IP)
1702     reportError(Obj->getFileName(),
1703                 "no instruction printer for target " + TripleName);
1704   IP->setPrintImmHex(PrintImmHex);
1705   IP->setPrintBranchImmAsAddress(true);
1706 
1707   PrettyPrinter &PIP = selectPrettyPrinter(Triple(TripleName));
1708   SourcePrinter SP(Obj, TheTarget->getName());
1709 
1710   for (StringRef Opt : DisassemblerOptions)
1711     if (!IP->applyTargetSpecificCLOption(Opt))
1712       reportError(Obj->getFileName(),
1713                   "Unrecognized disassembler option: " + Opt);
1714 
1715   disassembleObject(TheTarget, Obj, Ctx, DisAsm.get(), SecondaryDisAsm.get(),
1716                     MIA.get(), IP.get(), STI.get(), SecondarySTI.get(), PIP,
1717                     SP, InlineRelocs);
1718 }
1719 
1720 void printRelocations(const ObjectFile *Obj) {
1721   StringRef Fmt = Obj->getBytesInAddress() > 4 ? "%016" PRIx64 :
1722                                                  "%08" PRIx64;
1723   // Regular objdump doesn't print relocations in non-relocatable object
1724   // files.
1725   if (!Obj->isRelocatableObject())
1726     return;
1727 
1728   // Build a mapping from relocation target to a vector of relocation
1729   // sections. Usually, there is an only one relocation section for
1730   // each relocated section.
1731   MapVector<SectionRef, std::vector<SectionRef>> SecToRelSec;
1732   uint64_t Ndx;
1733   for (const SectionRef &Section : ToolSectionFilter(*Obj, &Ndx)) {
1734     if (Section.relocation_begin() == Section.relocation_end())
1735       continue;
1736     Expected<section_iterator> SecOrErr = Section.getRelocatedSection();
1737     if (!SecOrErr)
1738       reportError(Obj->getFileName(),
1739                   "section (" + Twine(Ndx) +
1740                       "): unable to get a relocation target: " +
1741                       toString(SecOrErr.takeError()));
1742     SecToRelSec[**SecOrErr].push_back(Section);
1743   }
1744 
1745   for (std::pair<SectionRef, std::vector<SectionRef>> &P : SecToRelSec) {
1746     StringRef SecName = unwrapOrError(P.first.getName(), Obj->getFileName());
1747     outs() << "RELOCATION RECORDS FOR [" << SecName << "]:\n";
1748     uint32_t OffsetPadding = (Obj->getBytesInAddress() > 4 ? 16 : 8);
1749     uint32_t TypePadding = 24;
1750     outs() << left_justify("OFFSET", OffsetPadding) << " "
1751            << left_justify("TYPE", TypePadding) << " "
1752            << "VALUE\n";
1753 
1754     for (SectionRef Section : P.second) {
1755       for (const RelocationRef &Reloc : Section.relocations()) {
1756         uint64_t Address = Reloc.getOffset();
1757         SmallString<32> RelocName;
1758         SmallString<32> ValueStr;
1759         if (Address < StartAddress || Address > StopAddress || getHidden(Reloc))
1760           continue;
1761         Reloc.getTypeName(RelocName);
1762         if (Error E = getRelocationValueString(Reloc, ValueStr))
1763           reportError(std::move(E), Obj->getFileName());
1764 
1765         outs() << format(Fmt.data(), Address) << " "
1766                << left_justify(RelocName, TypePadding) << " " << ValueStr
1767                << "\n";
1768       }
1769     }
1770     outs() << "\n";
1771   }
1772 }
1773 
1774 void printDynamicRelocations(const ObjectFile *Obj) {
1775   // For the moment, this option is for ELF only
1776   if (!Obj->isELF())
1777     return;
1778 
1779   const auto *Elf = dyn_cast<ELFObjectFileBase>(Obj);
1780   if (!Elf || Elf->getEType() != ELF::ET_DYN) {
1781     reportError(Obj->getFileName(), "not a dynamic object");
1782     return;
1783   }
1784 
1785   std::vector<SectionRef> DynRelSec = Obj->dynamic_relocation_sections();
1786   if (DynRelSec.empty())
1787     return;
1788 
1789   outs() << "DYNAMIC RELOCATION RECORDS\n";
1790   StringRef Fmt = Obj->getBytesInAddress() > 4 ? "%016" PRIx64 : "%08" PRIx64;
1791   for (const SectionRef &Section : DynRelSec)
1792     for (const RelocationRef &Reloc : Section.relocations()) {
1793       uint64_t Address = Reloc.getOffset();
1794       SmallString<32> RelocName;
1795       SmallString<32> ValueStr;
1796       Reloc.getTypeName(RelocName);
1797       if (Error E = getRelocationValueString(Reloc, ValueStr))
1798         reportError(std::move(E), Obj->getFileName());
1799       outs() << format(Fmt.data(), Address) << " " << RelocName << " "
1800              << ValueStr << "\n";
1801     }
1802 }
1803 
1804 // Returns true if we need to show LMA column when dumping section headers. We
1805 // show it only when the platform is ELF and either we have at least one section
1806 // whose VMA and LMA are different and/or when --show-lma flag is used.
1807 static bool shouldDisplayLMA(const ObjectFile *Obj) {
1808   if (!Obj->isELF())
1809     return false;
1810   for (const SectionRef &S : ToolSectionFilter(*Obj))
1811     if (S.getAddress() != getELFSectionLMA(S))
1812       return true;
1813   return ShowLMA;
1814 }
1815 
1816 static size_t getMaxSectionNameWidth(const ObjectFile *Obj) {
1817   // Default column width for names is 13 even if no names are that long.
1818   size_t MaxWidth = 13;
1819   for (const SectionRef &Section : ToolSectionFilter(*Obj)) {
1820     StringRef Name = unwrapOrError(Section.getName(), Obj->getFileName());
1821     MaxWidth = std::max(MaxWidth, Name.size());
1822   }
1823   return MaxWidth;
1824 }
1825 
1826 void printSectionHeaders(const ObjectFile *Obj) {
1827   size_t NameWidth = getMaxSectionNameWidth(Obj);
1828   size_t AddressWidth = 2 * Obj->getBytesInAddress();
1829   bool HasLMAColumn = shouldDisplayLMA(Obj);
1830   if (HasLMAColumn)
1831     outs() << "Sections:\n"
1832               "Idx "
1833            << left_justify("Name", NameWidth) << " Size     "
1834            << left_justify("VMA", AddressWidth) << " "
1835            << left_justify("LMA", AddressWidth) << " Type\n";
1836   else
1837     outs() << "Sections:\n"
1838               "Idx "
1839            << left_justify("Name", NameWidth) << " Size     "
1840            << left_justify("VMA", AddressWidth) << " Type\n";
1841 
1842   uint64_t Idx;
1843   for (const SectionRef &Section : ToolSectionFilter(*Obj, &Idx)) {
1844     StringRef Name = unwrapOrError(Section.getName(), Obj->getFileName());
1845     uint64_t VMA = Section.getAddress();
1846     if (shouldAdjustVA(Section))
1847       VMA += AdjustVMA;
1848 
1849     uint64_t Size = Section.getSize();
1850 
1851     std::string Type = Section.isText() ? "TEXT" : "";
1852     if (Section.isData())
1853       Type += Type.empty() ? "DATA" : " DATA";
1854     if (Section.isBSS())
1855       Type += Type.empty() ? "BSS" : " BSS";
1856 
1857     if (HasLMAColumn)
1858       outs() << format("%3" PRIu64 " %-*s %08" PRIx64 " ", Idx, NameWidth,
1859                        Name.str().c_str(), Size)
1860              << format_hex_no_prefix(VMA, AddressWidth) << " "
1861              << format_hex_no_prefix(getELFSectionLMA(Section), AddressWidth)
1862              << " " << Type << "\n";
1863     else
1864       outs() << format("%3" PRIu64 " %-*s %08" PRIx64 " ", Idx, NameWidth,
1865                        Name.str().c_str(), Size)
1866              << format_hex_no_prefix(VMA, AddressWidth) << " " << Type << "\n";
1867   }
1868   outs() << "\n";
1869 }
1870 
1871 void printSectionContents(const ObjectFile *Obj) {
1872   for (const SectionRef &Section : ToolSectionFilter(*Obj)) {
1873     StringRef Name = unwrapOrError(Section.getName(), Obj->getFileName());
1874     uint64_t BaseAddr = Section.getAddress();
1875     uint64_t Size = Section.getSize();
1876     if (!Size)
1877       continue;
1878 
1879     outs() << "Contents of section " << Name << ":\n";
1880     if (Section.isBSS()) {
1881       outs() << format("<skipping contents of bss section at [%04" PRIx64
1882                        ", %04" PRIx64 ")>\n",
1883                        BaseAddr, BaseAddr + Size);
1884       continue;
1885     }
1886 
1887     StringRef Contents = unwrapOrError(Section.getContents(), Obj->getFileName());
1888 
1889     // Dump out the content as hex and printable ascii characters.
1890     for (std::size_t Addr = 0, End = Contents.size(); Addr < End; Addr += 16) {
1891       outs() << format(" %04" PRIx64 " ", BaseAddr + Addr);
1892       // Dump line of hex.
1893       for (std::size_t I = 0; I < 16; ++I) {
1894         if (I != 0 && I % 4 == 0)
1895           outs() << ' ';
1896         if (Addr + I < End)
1897           outs() << hexdigit((Contents[Addr + I] >> 4) & 0xF, true)
1898                  << hexdigit(Contents[Addr + I] & 0xF, true);
1899         else
1900           outs() << "  ";
1901       }
1902       // Print ascii.
1903       outs() << "  ";
1904       for (std::size_t I = 0; I < 16 && Addr + I < End; ++I) {
1905         if (isPrint(static_cast<unsigned char>(Contents[Addr + I]) & 0xFF))
1906           outs() << Contents[Addr + I];
1907         else
1908           outs() << ".";
1909       }
1910       outs() << "\n";
1911     }
1912   }
1913 }
1914 
1915 void printSymbolTable(const ObjectFile *O, StringRef ArchiveName,
1916                       StringRef ArchitectureName, bool DumpDynamic) {
1917   if (O->isCOFF() && !DumpDynamic) {
1918     outs() << "SYMBOL TABLE:\n";
1919     printCOFFSymbolTable(cast<const COFFObjectFile>(O));
1920     return;
1921   }
1922 
1923   const StringRef FileName = O->getFileName();
1924 
1925   if (!DumpDynamic) {
1926     outs() << "SYMBOL TABLE:\n";
1927     for (auto I = O->symbol_begin(); I != O->symbol_end(); ++I)
1928       printSymbol(O, *I, FileName, ArchiveName, ArchitectureName, DumpDynamic);
1929     return;
1930   }
1931 
1932   outs() << "DYNAMIC SYMBOL TABLE:\n";
1933   if (!O->isELF()) {
1934     reportWarning(
1935         "this operation is not currently supported for this file format",
1936         FileName);
1937     return;
1938   }
1939 
1940   const ELFObjectFileBase *ELF = cast<const ELFObjectFileBase>(O);
1941   for (auto I = ELF->getDynamicSymbolIterators().begin();
1942        I != ELF->getDynamicSymbolIterators().end(); ++I)
1943     printSymbol(O, *I, FileName, ArchiveName, ArchitectureName, DumpDynamic);
1944 }
1945 
1946 void printSymbol(const ObjectFile *O, const SymbolRef &Symbol,
1947                  StringRef FileName, StringRef ArchiveName,
1948                  StringRef ArchitectureName, bool DumpDynamic) {
1949   const MachOObjectFile *MachO = dyn_cast<const MachOObjectFile>(O);
1950   uint64_t Address = unwrapOrError(Symbol.getAddress(), FileName, ArchiveName,
1951                                    ArchitectureName);
1952   if ((Address < StartAddress) || (Address > StopAddress))
1953     return;
1954   SymbolRef::Type Type =
1955       unwrapOrError(Symbol.getType(), FileName, ArchiveName, ArchitectureName);
1956   uint32_t Flags =
1957       unwrapOrError(Symbol.getFlags(), FileName, ArchiveName, ArchitectureName);
1958 
1959   // Don't ask a Mach-O STAB symbol for its section unless you know that
1960   // STAB symbol's section field refers to a valid section index. Otherwise
1961   // the symbol may error trying to load a section that does not exist.
1962   bool IsSTAB = false;
1963   if (MachO) {
1964     DataRefImpl SymDRI = Symbol.getRawDataRefImpl();
1965     uint8_t NType =
1966         (MachO->is64Bit() ? MachO->getSymbol64TableEntry(SymDRI).n_type
1967                           : MachO->getSymbolTableEntry(SymDRI).n_type);
1968     if (NType & MachO::N_STAB)
1969       IsSTAB = true;
1970   }
1971   section_iterator Section = IsSTAB
1972                                  ? O->section_end()
1973                                  : unwrapOrError(Symbol.getSection(), FileName,
1974                                                  ArchiveName, ArchitectureName);
1975 
1976   StringRef Name;
1977   if (Type == SymbolRef::ST_Debug && Section != O->section_end()) {
1978     if (Expected<StringRef> NameOrErr = Section->getName())
1979       Name = *NameOrErr;
1980     else
1981       consumeError(NameOrErr.takeError());
1982 
1983   } else {
1984     Name = unwrapOrError(Symbol.getName(), FileName, ArchiveName,
1985                          ArchitectureName);
1986   }
1987 
1988   bool Global = Flags & SymbolRef::SF_Global;
1989   bool Weak = Flags & SymbolRef::SF_Weak;
1990   bool Absolute = Flags & SymbolRef::SF_Absolute;
1991   bool Common = Flags & SymbolRef::SF_Common;
1992   bool Hidden = Flags & SymbolRef::SF_Hidden;
1993 
1994   char GlobLoc = ' ';
1995   if ((Section != O->section_end() || Absolute) && !Weak)
1996     GlobLoc = Global ? 'g' : 'l';
1997   char IFunc = ' ';
1998   if (O->isELF()) {
1999     if (ELFSymbolRef(Symbol).getELFType() == ELF::STT_GNU_IFUNC)
2000       IFunc = 'i';
2001     if (ELFSymbolRef(Symbol).getBinding() == ELF::STB_GNU_UNIQUE)
2002       GlobLoc = 'u';
2003   }
2004 
2005   char Debug = ' ';
2006   if (DumpDynamic)
2007     Debug = 'D';
2008   else if (Type == SymbolRef::ST_Debug || Type == SymbolRef::ST_File)
2009     Debug = 'd';
2010 
2011   char FileFunc = ' ';
2012   if (Type == SymbolRef::ST_File)
2013     FileFunc = 'f';
2014   else if (Type == SymbolRef::ST_Function)
2015     FileFunc = 'F';
2016   else if (Type == SymbolRef::ST_Data)
2017     FileFunc = 'O';
2018 
2019   const char *Fmt = O->getBytesInAddress() > 4 ? "%016" PRIx64 : "%08" PRIx64;
2020 
2021   outs() << format(Fmt, Address) << " "
2022          << GlobLoc            // Local -> 'l', Global -> 'g', Neither -> ' '
2023          << (Weak ? 'w' : ' ') // Weak?
2024          << ' '                // Constructor. Not supported yet.
2025          << ' '                // Warning. Not supported yet.
2026          << IFunc              // Indirect reference to another symbol.
2027          << Debug              // Debugging (d) or dynamic (D) symbol.
2028          << FileFunc           // Name of function (F), file (f) or object (O).
2029          << ' ';
2030   if (Absolute) {
2031     outs() << "*ABS*";
2032   } else if (Common) {
2033     outs() << "*COM*";
2034   } else if (Section == O->section_end()) {
2035     outs() << "*UND*";
2036   } else {
2037     if (MachO) {
2038       DataRefImpl DR = Section->getRawDataRefImpl();
2039       StringRef SegmentName = MachO->getSectionFinalSegmentName(DR);
2040       outs() << SegmentName << ",";
2041     }
2042     StringRef SectionName = unwrapOrError(Section->getName(), FileName);
2043     outs() << SectionName;
2044   }
2045 
2046   if (Common || O->isELF()) {
2047     uint64_t Val =
2048         Common ? Symbol.getAlignment() : ELFSymbolRef(Symbol).getSize();
2049     outs() << '\t' << format(Fmt, Val);
2050   }
2051 
2052   if (O->isELF()) {
2053     uint8_t Other = ELFSymbolRef(Symbol).getOther();
2054     switch (Other) {
2055     case ELF::STV_DEFAULT:
2056       break;
2057     case ELF::STV_INTERNAL:
2058       outs() << " .internal";
2059       break;
2060     case ELF::STV_HIDDEN:
2061       outs() << " .hidden";
2062       break;
2063     case ELF::STV_PROTECTED:
2064       outs() << " .protected";
2065       break;
2066     default:
2067       outs() << format(" 0x%02x", Other);
2068       break;
2069     }
2070   } else if (Hidden) {
2071     outs() << " .hidden";
2072   }
2073 
2074   if (Demangle)
2075     outs() << ' ' << demangle(std::string(Name)) << '\n';
2076   else
2077     outs() << ' ' << Name << '\n';
2078 }
2079 
2080 static void printUnwindInfo(const ObjectFile *O) {
2081   outs() << "Unwind info:\n\n";
2082 
2083   if (const COFFObjectFile *Coff = dyn_cast<COFFObjectFile>(O))
2084     printCOFFUnwindInfo(Coff);
2085   else if (const MachOObjectFile *MachO = dyn_cast<MachOObjectFile>(O))
2086     printMachOUnwindInfo(MachO);
2087   else
2088     // TODO: Extract DWARF dump tool to objdump.
2089     WithColor::error(errs(), ToolName)
2090         << "This operation is only currently supported "
2091            "for COFF and MachO object files.\n";
2092 }
2093 
2094 /// Dump the raw contents of the __clangast section so the output can be piped
2095 /// into llvm-bcanalyzer.
2096 void printRawClangAST(const ObjectFile *Obj) {
2097   if (outs().is_displayed()) {
2098     WithColor::error(errs(), ToolName)
2099         << "The -raw-clang-ast option will dump the raw binary contents of "
2100            "the clang ast section.\n"
2101            "Please redirect the output to a file or another program such as "
2102            "llvm-bcanalyzer.\n";
2103     return;
2104   }
2105 
2106   StringRef ClangASTSectionName("__clangast");
2107   if (Obj->isCOFF()) {
2108     ClangASTSectionName = "clangast";
2109   }
2110 
2111   Optional<object::SectionRef> ClangASTSection;
2112   for (auto Sec : ToolSectionFilter(*Obj)) {
2113     StringRef Name;
2114     if (Expected<StringRef> NameOrErr = Sec.getName())
2115       Name = *NameOrErr;
2116     else
2117       consumeError(NameOrErr.takeError());
2118 
2119     if (Name == ClangASTSectionName) {
2120       ClangASTSection = Sec;
2121       break;
2122     }
2123   }
2124   if (!ClangASTSection)
2125     return;
2126 
2127   StringRef ClangASTContents = unwrapOrError(
2128       ClangASTSection.getValue().getContents(), Obj->getFileName());
2129   outs().write(ClangASTContents.data(), ClangASTContents.size());
2130 }
2131 
2132 static void printFaultMaps(const ObjectFile *Obj) {
2133   StringRef FaultMapSectionName;
2134 
2135   if (Obj->isELF()) {
2136     FaultMapSectionName = ".llvm_faultmaps";
2137   } else if (Obj->isMachO()) {
2138     FaultMapSectionName = "__llvm_faultmaps";
2139   } else {
2140     WithColor::error(errs(), ToolName)
2141         << "This operation is only currently supported "
2142            "for ELF and Mach-O executable files.\n";
2143     return;
2144   }
2145 
2146   Optional<object::SectionRef> FaultMapSection;
2147 
2148   for (auto Sec : ToolSectionFilter(*Obj)) {
2149     StringRef Name;
2150     if (Expected<StringRef> NameOrErr = Sec.getName())
2151       Name = *NameOrErr;
2152     else
2153       consumeError(NameOrErr.takeError());
2154 
2155     if (Name == FaultMapSectionName) {
2156       FaultMapSection = Sec;
2157       break;
2158     }
2159   }
2160 
2161   outs() << "FaultMap table:\n";
2162 
2163   if (!FaultMapSection.hasValue()) {
2164     outs() << "<not found>\n";
2165     return;
2166   }
2167 
2168   StringRef FaultMapContents =
2169       unwrapOrError(FaultMapSection.getValue().getContents(), Obj->getFileName());
2170   FaultMapParser FMP(FaultMapContents.bytes_begin(),
2171                      FaultMapContents.bytes_end());
2172 
2173   outs() << FMP;
2174 }
2175 
2176 static void printPrivateFileHeaders(const ObjectFile *O, bool OnlyFirst) {
2177   if (O->isELF()) {
2178     printELFFileHeader(O);
2179     printELFDynamicSection(O);
2180     printELFSymbolVersionInfo(O);
2181     return;
2182   }
2183   if (O->isCOFF())
2184     return printCOFFFileHeader(O);
2185   if (O->isWasm())
2186     return printWasmFileHeader(O);
2187   if (O->isMachO()) {
2188     printMachOFileHeader(O);
2189     if (!OnlyFirst)
2190       printMachOLoadCommands(O);
2191     return;
2192   }
2193   reportError(O->getFileName(), "Invalid/Unsupported object file format");
2194 }
2195 
2196 static void printFileHeaders(const ObjectFile *O) {
2197   if (!O->isELF() && !O->isCOFF())
2198     reportError(O->getFileName(), "Invalid/Unsupported object file format");
2199 
2200   Triple::ArchType AT = O->getArch();
2201   outs() << "architecture: " << Triple::getArchTypeName(AT) << "\n";
2202   uint64_t Address = unwrapOrError(O->getStartAddress(), O->getFileName());
2203 
2204   StringRef Fmt = O->getBytesInAddress() > 4 ? "%016" PRIx64 : "%08" PRIx64;
2205   outs() << "start address: "
2206          << "0x" << format(Fmt.data(), Address) << "\n\n";
2207 }
2208 
2209 static void printArchiveChild(StringRef Filename, const Archive::Child &C) {
2210   Expected<sys::fs::perms> ModeOrErr = C.getAccessMode();
2211   if (!ModeOrErr) {
2212     WithColor::error(errs(), ToolName) << "ill-formed archive entry.\n";
2213     consumeError(ModeOrErr.takeError());
2214     return;
2215   }
2216   sys::fs::perms Mode = ModeOrErr.get();
2217   outs() << ((Mode & sys::fs::owner_read) ? "r" : "-");
2218   outs() << ((Mode & sys::fs::owner_write) ? "w" : "-");
2219   outs() << ((Mode & sys::fs::owner_exe) ? "x" : "-");
2220   outs() << ((Mode & sys::fs::group_read) ? "r" : "-");
2221   outs() << ((Mode & sys::fs::group_write) ? "w" : "-");
2222   outs() << ((Mode & sys::fs::group_exe) ? "x" : "-");
2223   outs() << ((Mode & sys::fs::others_read) ? "r" : "-");
2224   outs() << ((Mode & sys::fs::others_write) ? "w" : "-");
2225   outs() << ((Mode & sys::fs::others_exe) ? "x" : "-");
2226 
2227   outs() << " ";
2228 
2229   outs() << format("%d/%d %6" PRId64 " ", unwrapOrError(C.getUID(), Filename),
2230                    unwrapOrError(C.getGID(), Filename),
2231                    unwrapOrError(C.getRawSize(), Filename));
2232 
2233   StringRef RawLastModified = C.getRawLastModified();
2234   unsigned Seconds;
2235   if (RawLastModified.getAsInteger(10, Seconds))
2236     outs() << "(date: \"" << RawLastModified
2237            << "\" contains non-decimal chars) ";
2238   else {
2239     // Since ctime(3) returns a 26 character string of the form:
2240     // "Sun Sep 16 01:03:52 1973\n\0"
2241     // just print 24 characters.
2242     time_t t = Seconds;
2243     outs() << format("%.24s ", ctime(&t));
2244   }
2245 
2246   StringRef Name = "";
2247   Expected<StringRef> NameOrErr = C.getName();
2248   if (!NameOrErr) {
2249     consumeError(NameOrErr.takeError());
2250     Name = unwrapOrError(C.getRawName(), Filename);
2251   } else {
2252     Name = NameOrErr.get();
2253   }
2254   outs() << Name << "\n";
2255 }
2256 
2257 // For ELF only now.
2258 static bool shouldWarnForInvalidStartStopAddress(ObjectFile *Obj) {
2259   if (const auto *Elf = dyn_cast<ELFObjectFileBase>(Obj)) {
2260     if (Elf->getEType() != ELF::ET_REL)
2261       return true;
2262   }
2263   return false;
2264 }
2265 
2266 static void checkForInvalidStartStopAddress(ObjectFile *Obj,
2267                                             uint64_t Start, uint64_t Stop) {
2268   if (!shouldWarnForInvalidStartStopAddress(Obj))
2269     return;
2270 
2271   for (const SectionRef &Section : Obj->sections())
2272     if (ELFSectionRef(Section).getFlags() & ELF::SHF_ALLOC) {
2273       uint64_t BaseAddr = Section.getAddress();
2274       uint64_t Size = Section.getSize();
2275       if ((Start < BaseAddr + Size) && Stop > BaseAddr)
2276         return;
2277     }
2278 
2279   if (StartAddress.getNumOccurrences() == 0)
2280     reportWarning("no section has address less than 0x" +
2281                       Twine::utohexstr(Stop) + " specified by --stop-address",
2282                   Obj->getFileName());
2283   else if (StopAddress.getNumOccurrences() == 0)
2284     reportWarning("no section has address greater than or equal to 0x" +
2285                       Twine::utohexstr(Start) + " specified by --start-address",
2286                   Obj->getFileName());
2287   else
2288     reportWarning("no section overlaps the range [0x" +
2289                       Twine::utohexstr(Start) + ",0x" + Twine::utohexstr(Stop) +
2290                       ") specified by --start-address/--stop-address",
2291                   Obj->getFileName());
2292 }
2293 
2294 static void dumpObject(ObjectFile *O, const Archive *A = nullptr,
2295                        const Archive::Child *C = nullptr) {
2296   // Avoid other output when using a raw option.
2297   if (!RawClangAST) {
2298     outs() << '\n';
2299     if (A)
2300       outs() << A->getFileName() << "(" << O->getFileName() << ")";
2301     else
2302       outs() << O->getFileName();
2303     outs() << ":\tfile format " << O->getFileFormatName().lower() << "\n\n";
2304   }
2305 
2306   if (StartAddress.getNumOccurrences() || StopAddress.getNumOccurrences())
2307     checkForInvalidStartStopAddress(O, StartAddress, StopAddress);
2308 
2309   // Note: the order here matches GNU objdump for compatability.
2310   StringRef ArchiveName = A ? A->getFileName() : "";
2311   if (ArchiveHeaders && !MachOOpt && C)
2312     printArchiveChild(ArchiveName, *C);
2313   if (FileHeaders)
2314     printFileHeaders(O);
2315   if (PrivateHeaders || FirstPrivateHeader)
2316     printPrivateFileHeaders(O, FirstPrivateHeader);
2317   if (SectionHeaders)
2318     printSectionHeaders(O);
2319   if (SymbolTable)
2320     printSymbolTable(O, ArchiveName);
2321   if (DynamicSymbolTable)
2322     printSymbolTable(O, ArchiveName, /*ArchitectureName=*/"",
2323                      /*DumpDynamic=*/true);
2324   if (DwarfDumpType != DIDT_Null) {
2325     std::unique_ptr<DIContext> DICtx = DWARFContext::create(*O);
2326     // Dump the complete DWARF structure.
2327     DIDumpOptions DumpOpts;
2328     DumpOpts.DumpType = DwarfDumpType;
2329     DICtx->dump(outs(), DumpOpts);
2330   }
2331   if (Relocations && !Disassemble)
2332     printRelocations(O);
2333   if (DynamicRelocations)
2334     printDynamicRelocations(O);
2335   if (SectionContents)
2336     printSectionContents(O);
2337   if (Disassemble)
2338     disassembleObject(O, Relocations);
2339   if (UnwindInfo)
2340     printUnwindInfo(O);
2341 
2342   // Mach-O specific options:
2343   if (ExportsTrie)
2344     printExportsTrie(O);
2345   if (Rebase)
2346     printRebaseTable(O);
2347   if (Bind)
2348     printBindTable(O);
2349   if (LazyBind)
2350     printLazyBindTable(O);
2351   if (WeakBind)
2352     printWeakBindTable(O);
2353 
2354   // Other special sections:
2355   if (RawClangAST)
2356     printRawClangAST(O);
2357   if (FaultMapSection)
2358     printFaultMaps(O);
2359 }
2360 
2361 static void dumpObject(const COFFImportFile *I, const Archive *A,
2362                        const Archive::Child *C = nullptr) {
2363   StringRef ArchiveName = A ? A->getFileName() : "";
2364 
2365   // Avoid other output when using a raw option.
2366   if (!RawClangAST)
2367     outs() << '\n'
2368            << ArchiveName << "(" << I->getFileName() << ")"
2369            << ":\tfile format COFF-import-file"
2370            << "\n\n";
2371 
2372   if (ArchiveHeaders && !MachOOpt && C)
2373     printArchiveChild(ArchiveName, *C);
2374   if (SymbolTable)
2375     printCOFFSymbolTable(I);
2376 }
2377 
2378 /// Dump each object file in \a a;
2379 static void dumpArchive(const Archive *A) {
2380   Error Err = Error::success();
2381   unsigned I = -1;
2382   for (auto &C : A->children(Err)) {
2383     ++I;
2384     Expected<std::unique_ptr<Binary>> ChildOrErr = C.getAsBinary();
2385     if (!ChildOrErr) {
2386       if (auto E = isNotObjectErrorInvalidFileType(ChildOrErr.takeError()))
2387         reportError(std::move(E), getFileNameForError(C, I), A->getFileName());
2388       continue;
2389     }
2390     if (ObjectFile *O = dyn_cast<ObjectFile>(&*ChildOrErr.get()))
2391       dumpObject(O, A, &C);
2392     else if (COFFImportFile *I = dyn_cast<COFFImportFile>(&*ChildOrErr.get()))
2393       dumpObject(I, A, &C);
2394     else
2395       reportError(errorCodeToError(object_error::invalid_file_type),
2396                   A->getFileName());
2397   }
2398   if (Err)
2399     reportError(std::move(Err), A->getFileName());
2400 }
2401 
2402 /// Open file and figure out how to dump it.
2403 static void dumpInput(StringRef file) {
2404   // If we are using the Mach-O specific object file parser, then let it parse
2405   // the file and process the command line options.  So the -arch flags can
2406   // be used to select specific slices, etc.
2407   if (MachOOpt) {
2408     parseInputMachO(file);
2409     return;
2410   }
2411 
2412   // Attempt to open the binary.
2413   OwningBinary<Binary> OBinary = unwrapOrError(createBinary(file), file);
2414   Binary &Binary = *OBinary.getBinary();
2415 
2416   if (Archive *A = dyn_cast<Archive>(&Binary))
2417     dumpArchive(A);
2418   else if (ObjectFile *O = dyn_cast<ObjectFile>(&Binary))
2419     dumpObject(O);
2420   else if (MachOUniversalBinary *UB = dyn_cast<MachOUniversalBinary>(&Binary))
2421     parseInputMachO(UB);
2422   else
2423     reportError(errorCodeToError(object_error::invalid_file_type), file);
2424 }
2425 } // namespace llvm
2426 
2427 int main(int argc, char **argv) {
2428   using namespace llvm;
2429   InitLLVM X(argc, argv);
2430   const cl::OptionCategory *OptionFilters[] = {&ObjdumpCat, &MachOCat};
2431   cl::HideUnrelatedOptions(OptionFilters);
2432 
2433   // Initialize targets and assembly printers/parsers.
2434   InitializeAllTargetInfos();
2435   InitializeAllTargetMCs();
2436   InitializeAllDisassemblers();
2437 
2438   // Register the target printer for --version.
2439   cl::AddExtraVersionPrinter(TargetRegistry::printRegisteredTargetsForVersion);
2440 
2441   cl::ParseCommandLineOptions(argc, argv, "llvm object file dumper\n", nullptr,
2442                               /*EnvVar=*/nullptr,
2443                               /*LongOptionsUseDoubleDash=*/true);
2444 
2445   if (StartAddress >= StopAddress)
2446     reportCmdLineError("start address should be less than stop address");
2447 
2448   ToolName = argv[0];
2449 
2450   // Defaults to a.out if no filenames specified.
2451   if (InputFilenames.empty())
2452     InputFilenames.push_back("a.out");
2453 
2454   if (AllHeaders)
2455     ArchiveHeaders = FileHeaders = PrivateHeaders = Relocations =
2456         SectionHeaders = SymbolTable = true;
2457 
2458   if (DisassembleAll || PrintSource || PrintLines ||
2459       !DisassembleSymbols.empty())
2460     Disassemble = true;
2461 
2462   if (!ArchiveHeaders && !Disassemble && DwarfDumpType == DIDT_Null &&
2463       !DynamicRelocations && !FileHeaders && !PrivateHeaders && !RawClangAST &&
2464       !Relocations && !SectionHeaders && !SectionContents && !SymbolTable &&
2465       !DynamicSymbolTable && !UnwindInfo && !FaultMapSection &&
2466       !(MachOOpt &&
2467         (Bind || DataInCode || DylibId || DylibsUsed || ExportsTrie ||
2468          FirstPrivateHeader || IndirectSymbols || InfoPlist || LazyBind ||
2469          LinkOptHints || ObjcMetaData || Rebase || UniversalHeaders ||
2470          WeakBind || !FilterSections.empty()))) {
2471     cl::PrintHelpMessage();
2472     return 2;
2473   }
2474 
2475   DisasmSymbolSet.insert(DisassembleSymbols.begin(), DisassembleSymbols.end());
2476 
2477   llvm::for_each(InputFilenames, dumpInput);
2478 
2479   warnOnNoMatchForSections();
2480 
2481   return EXIT_SUCCESS;
2482 }
2483