1 //=== DWARFLinker.cpp -----------------------------------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 9 #include "llvm/DWARFLinker/DWARFLinker.h" 10 #include "llvm/ADT/ArrayRef.h" 11 #include "llvm/ADT/BitVector.h" 12 #include "llvm/ADT/STLExtras.h" 13 #include "llvm/CodeGen/NonRelocatableStringpool.h" 14 #include "llvm/DWARFLinker/DWARFLinkerDeclContext.h" 15 #include "llvm/DebugInfo/DWARF/DWARFAbbreviationDeclaration.h" 16 #include "llvm/DebugInfo/DWARF/DWARFContext.h" 17 #include "llvm/DebugInfo/DWARF/DWARFDataExtractor.h" 18 #include "llvm/DebugInfo/DWARF/DWARFDebugLine.h" 19 #include "llvm/DebugInfo/DWARF/DWARFDebugRangeList.h" 20 #include "llvm/DebugInfo/DWARF/DWARFDie.h" 21 #include "llvm/DebugInfo/DWARF/DWARFExpression.h" 22 #include "llvm/DebugInfo/DWARF/DWARFFormValue.h" 23 #include "llvm/DebugInfo/DWARF/DWARFSection.h" 24 #include "llvm/DebugInfo/DWARF/DWARFUnit.h" 25 #include "llvm/MC/MCDwarf.h" 26 #include "llvm/Support/DataExtractor.h" 27 #include "llvm/Support/Error.h" 28 #include "llvm/Support/ErrorHandling.h" 29 #include "llvm/Support/ErrorOr.h" 30 #include "llvm/Support/FormatVariadic.h" 31 #include "llvm/Support/LEB128.h" 32 #include "llvm/Support/Path.h" 33 #include "llvm/Support/ThreadPool.h" 34 #include <vector> 35 36 namespace llvm { 37 38 /// Hold the input and output of the debug info size in bytes. 39 struct DebugInfoSize { 40 uint64_t Input; 41 uint64_t Output; 42 }; 43 44 /// Compute the total size of the debug info. 45 static uint64_t getDebugInfoSize(DWARFContext &Dwarf) { 46 uint64_t Size = 0; 47 for (auto &Unit : Dwarf.compile_units()) { 48 Size += Unit->getLength(); 49 } 50 return Size; 51 } 52 53 /// Similar to DWARFUnitSection::getUnitForOffset(), but returning our 54 /// CompileUnit object instead. 55 static CompileUnit *getUnitForOffset(const UnitListTy &Units, uint64_t Offset) { 56 auto CU = llvm::upper_bound( 57 Units, Offset, [](uint64_t LHS, const std::unique_ptr<CompileUnit> &RHS) { 58 return LHS < RHS->getOrigUnit().getNextUnitOffset(); 59 }); 60 return CU != Units.end() ? CU->get() : nullptr; 61 } 62 63 /// Resolve the DIE attribute reference that has been extracted in \p RefValue. 64 /// The resulting DIE might be in another CompileUnit which is stored into \p 65 /// ReferencedCU. \returns null if resolving fails for any reason. 66 DWARFDie DWARFLinker::resolveDIEReference(const DWARFFile &File, 67 const UnitListTy &Units, 68 const DWARFFormValue &RefValue, 69 const DWARFDie &DIE, 70 CompileUnit *&RefCU) { 71 assert(RefValue.isFormClass(DWARFFormValue::FC_Reference)); 72 uint64_t RefOffset = *RefValue.getAsReference(); 73 if ((RefCU = getUnitForOffset(Units, RefOffset))) 74 if (const auto RefDie = RefCU->getOrigUnit().getDIEForOffset(RefOffset)) { 75 // In a file with broken references, an attribute might point to a NULL 76 // DIE. 77 if (!RefDie.isNULL()) 78 return RefDie; 79 } 80 81 reportWarning("could not find referenced DIE", File, &DIE); 82 return DWARFDie(); 83 } 84 85 /// \returns whether the passed \a Attr type might contain a DIE reference 86 /// suitable for ODR uniquing. 87 static bool isODRAttribute(uint16_t Attr) { 88 switch (Attr) { 89 default: 90 return false; 91 case dwarf::DW_AT_type: 92 case dwarf::DW_AT_containing_type: 93 case dwarf::DW_AT_specification: 94 case dwarf::DW_AT_abstract_origin: 95 case dwarf::DW_AT_import: 96 return true; 97 } 98 llvm_unreachable("Improper attribute."); 99 } 100 101 static bool isTypeTag(uint16_t Tag) { 102 switch (Tag) { 103 case dwarf::DW_TAG_array_type: 104 case dwarf::DW_TAG_class_type: 105 case dwarf::DW_TAG_enumeration_type: 106 case dwarf::DW_TAG_pointer_type: 107 case dwarf::DW_TAG_reference_type: 108 case dwarf::DW_TAG_string_type: 109 case dwarf::DW_TAG_structure_type: 110 case dwarf::DW_TAG_subroutine_type: 111 case dwarf::DW_TAG_typedef: 112 case dwarf::DW_TAG_union_type: 113 case dwarf::DW_TAG_ptr_to_member_type: 114 case dwarf::DW_TAG_set_type: 115 case dwarf::DW_TAG_subrange_type: 116 case dwarf::DW_TAG_base_type: 117 case dwarf::DW_TAG_const_type: 118 case dwarf::DW_TAG_constant: 119 case dwarf::DW_TAG_file_type: 120 case dwarf::DW_TAG_namelist: 121 case dwarf::DW_TAG_packed_type: 122 case dwarf::DW_TAG_volatile_type: 123 case dwarf::DW_TAG_restrict_type: 124 case dwarf::DW_TAG_atomic_type: 125 case dwarf::DW_TAG_interface_type: 126 case dwarf::DW_TAG_unspecified_type: 127 case dwarf::DW_TAG_shared_type: 128 case dwarf::DW_TAG_immutable_type: 129 return true; 130 default: 131 break; 132 } 133 return false; 134 } 135 136 AddressesMap::~AddressesMap() = default; 137 138 DwarfEmitter::~DwarfEmitter() = default; 139 140 static Optional<StringRef> StripTemplateParameters(StringRef Name) { 141 // We are looking for template parameters to strip from Name. e.g. 142 // 143 // operator<<B> 144 // 145 // We look for > at the end but if it does not contain any < then we 146 // have something like operator>>. We check for the operator<=> case. 147 if (!Name.endswith(">") || Name.count("<") == 0 || Name.endswith("<=>")) 148 return {}; 149 150 // How many < until we have the start of the template parameters. 151 size_t NumLeftAnglesToSkip = 1; 152 153 // If we have operator<=> then we need to skip its < as well. 154 NumLeftAnglesToSkip += Name.count("<=>"); 155 156 size_t RightAngleCount = Name.count('>'); 157 size_t LeftAngleCount = Name.count('<'); 158 159 // If we have more < than > we have operator< or operator<< 160 // we to account for their < as well. 161 if (LeftAngleCount > RightAngleCount) 162 NumLeftAnglesToSkip += LeftAngleCount - RightAngleCount; 163 164 size_t StartOfTemplate = 0; 165 while (NumLeftAnglesToSkip--) 166 StartOfTemplate = Name.find('<', StartOfTemplate) + 1; 167 168 return Name.substr(0, StartOfTemplate - 1); 169 } 170 171 bool DWARFLinker::DIECloner::getDIENames(const DWARFDie &Die, 172 AttributesInfo &Info, 173 OffsetsStringPool &StringPool, 174 bool StripTemplate) { 175 // This function will be called on DIEs having low_pcs and 176 // ranges. As getting the name might be more expansive, filter out 177 // blocks directly. 178 if (Die.getTag() == dwarf::DW_TAG_lexical_block) 179 return false; 180 181 if (!Info.MangledName) 182 if (const char *MangledName = Die.getLinkageName()) 183 Info.MangledName = StringPool.getEntry(MangledName); 184 185 if (!Info.Name) 186 if (const char *Name = Die.getShortName()) 187 Info.Name = StringPool.getEntry(Name); 188 189 if (!Info.MangledName) 190 Info.MangledName = Info.Name; 191 192 if (StripTemplate && Info.Name && Info.MangledName != Info.Name) { 193 StringRef Name = Info.Name.getString(); 194 if (Optional<StringRef> StrippedName = StripTemplateParameters(Name)) 195 Info.NameWithoutTemplate = StringPool.getEntry(*StrippedName); 196 } 197 198 return Info.Name || Info.MangledName; 199 } 200 201 /// Resolve the relative path to a build artifact referenced by DWARF by 202 /// applying DW_AT_comp_dir. 203 static void resolveRelativeObjectPath(SmallVectorImpl<char> &Buf, DWARFDie CU) { 204 sys::path::append(Buf, dwarf::toString(CU.find(dwarf::DW_AT_comp_dir), "")); 205 } 206 207 /// Collect references to parseable Swift interfaces in imported 208 /// DW_TAG_module blocks. 209 static void analyzeImportedModule( 210 const DWARFDie &DIE, CompileUnit &CU, 211 swiftInterfacesMap *ParseableSwiftInterfaces, 212 std::function<void(const Twine &, const DWARFDie &)> ReportWarning) { 213 if (CU.getLanguage() != dwarf::DW_LANG_Swift) 214 return; 215 216 if (!ParseableSwiftInterfaces) 217 return; 218 219 StringRef Path = dwarf::toStringRef(DIE.find(dwarf::DW_AT_LLVM_include_path)); 220 if (!Path.endswith(".swiftinterface")) 221 return; 222 // Don't track interfaces that are part of the SDK. 223 StringRef SysRoot = dwarf::toStringRef(DIE.find(dwarf::DW_AT_LLVM_sysroot)); 224 if (SysRoot.empty()) 225 SysRoot = CU.getSysRoot(); 226 if (!SysRoot.empty() && Path.startswith(SysRoot)) 227 return; 228 Optional<const char*> Name = dwarf::toString(DIE.find(dwarf::DW_AT_name)); 229 if (!Name) 230 return; 231 auto &Entry = (*ParseableSwiftInterfaces)[*Name]; 232 // The prepend path is applied later when copying. 233 DWARFDie CUDie = CU.getOrigUnit().getUnitDIE(); 234 SmallString<128> ResolvedPath; 235 if (sys::path::is_relative(Path)) 236 resolveRelativeObjectPath(ResolvedPath, CUDie); 237 sys::path::append(ResolvedPath, Path); 238 if (!Entry.empty() && Entry != ResolvedPath) 239 ReportWarning(Twine("Conflicting parseable interfaces for Swift Module ") + 240 *Name + ": " + Entry + " and " + Path, 241 DIE); 242 Entry = std::string(ResolvedPath.str()); 243 } 244 245 /// The distinct types of work performed by the work loop in 246 /// analyzeContextInfo. 247 enum class ContextWorklistItemType : uint8_t { 248 AnalyzeContextInfo, 249 UpdateChildPruning, 250 UpdatePruning, 251 }; 252 253 /// This class represents an item in the work list. The type defines what kind 254 /// of work needs to be performed when processing the current item. Everything 255 /// but the Type and Die fields are optional based on the type. 256 struct ContextWorklistItem { 257 DWARFDie Die; 258 unsigned ParentIdx; 259 union { 260 CompileUnit::DIEInfo *OtherInfo; 261 DeclContext *Context; 262 }; 263 ContextWorklistItemType Type; 264 bool InImportedModule; 265 266 ContextWorklistItem(DWARFDie Die, ContextWorklistItemType T, 267 CompileUnit::DIEInfo *OtherInfo = nullptr) 268 : Die(Die), ParentIdx(0), OtherInfo(OtherInfo), Type(T), 269 InImportedModule(false) {} 270 271 ContextWorklistItem(DWARFDie Die, DeclContext *Context, unsigned ParentIdx, 272 bool InImportedModule) 273 : Die(Die), ParentIdx(ParentIdx), Context(Context), 274 Type(ContextWorklistItemType::AnalyzeContextInfo), 275 InImportedModule(InImportedModule) {} 276 }; 277 278 static bool updatePruning(const DWARFDie &Die, CompileUnit &CU, 279 uint64_t ModulesEndOffset) { 280 CompileUnit::DIEInfo &Info = CU.getInfo(Die); 281 282 // Prune this DIE if it is either a forward declaration inside a 283 // DW_TAG_module or a DW_TAG_module that contains nothing but 284 // forward declarations. 285 Info.Prune &= (Die.getTag() == dwarf::DW_TAG_module) || 286 (isTypeTag(Die.getTag()) && 287 dwarf::toUnsigned(Die.find(dwarf::DW_AT_declaration), 0)); 288 289 // Only prune forward declarations inside a DW_TAG_module for which a 290 // definition exists elsewhere. 291 if (ModulesEndOffset == 0) 292 Info.Prune &= Info.Ctxt && Info.Ctxt->getCanonicalDIEOffset(); 293 else 294 Info.Prune &= Info.Ctxt && Info.Ctxt->getCanonicalDIEOffset() > 0 && 295 Info.Ctxt->getCanonicalDIEOffset() <= ModulesEndOffset; 296 297 return Info.Prune; 298 } 299 300 static void updateChildPruning(const DWARFDie &Die, CompileUnit &CU, 301 CompileUnit::DIEInfo &ChildInfo) { 302 CompileUnit::DIEInfo &Info = CU.getInfo(Die); 303 Info.Prune &= ChildInfo.Prune; 304 } 305 306 /// Recursive helper to build the global DeclContext information and 307 /// gather the child->parent relationships in the original compile unit. 308 /// 309 /// This function uses the same work list approach as lookForDIEsToKeep. 310 /// 311 /// \return true when this DIE and all of its children are only 312 /// forward declarations to types defined in external clang modules 313 /// (i.e., forward declarations that are children of a DW_TAG_module). 314 static bool analyzeContextInfo( 315 const DWARFDie &DIE, unsigned ParentIdx, CompileUnit &CU, 316 DeclContext *CurrentDeclContext, DeclContextTree &Contexts, 317 uint64_t ModulesEndOffset, swiftInterfacesMap *ParseableSwiftInterfaces, 318 std::function<void(const Twine &, const DWARFDie &)> ReportWarning, 319 bool InImportedModule = false) { 320 // LIFO work list. 321 std::vector<ContextWorklistItem> Worklist; 322 Worklist.emplace_back(DIE, CurrentDeclContext, ParentIdx, InImportedModule); 323 324 while (!Worklist.empty()) { 325 ContextWorklistItem Current = Worklist.back(); 326 Worklist.pop_back(); 327 328 switch (Current.Type) { 329 case ContextWorklistItemType::UpdatePruning: 330 updatePruning(Current.Die, CU, ModulesEndOffset); 331 continue; 332 case ContextWorklistItemType::UpdateChildPruning: 333 updateChildPruning(Current.Die, CU, *Current.OtherInfo); 334 continue; 335 case ContextWorklistItemType::AnalyzeContextInfo: 336 break; 337 } 338 339 unsigned Idx = CU.getOrigUnit().getDIEIndex(Current.Die); 340 CompileUnit::DIEInfo &Info = CU.getInfo(Idx); 341 342 // Clang imposes an ODR on modules(!) regardless of the language: 343 // "The module-id should consist of only a single identifier, 344 // which provides the name of the module being defined. Each 345 // module shall have a single definition." 346 // 347 // This does not extend to the types inside the modules: 348 // "[I]n C, this implies that if two structs are defined in 349 // different submodules with the same name, those two types are 350 // distinct types (but may be compatible types if their 351 // definitions match)." 352 // 353 // We treat non-C++ modules like namespaces for this reason. 354 if (Current.Die.getTag() == dwarf::DW_TAG_module && 355 Current.ParentIdx == 0 && 356 dwarf::toString(Current.Die.find(dwarf::DW_AT_name), "") != 357 CU.getClangModuleName()) { 358 Current.InImportedModule = true; 359 analyzeImportedModule(Current.Die, CU, ParseableSwiftInterfaces, 360 ReportWarning); 361 } 362 363 Info.ParentIdx = Current.ParentIdx; 364 Info.InModuleScope = CU.isClangModule() || Current.InImportedModule; 365 if (CU.hasODR() || Info.InModuleScope) { 366 if (Current.Context) { 367 auto PtrInvalidPair = Contexts.getChildDeclContext( 368 *Current.Context, Current.Die, CU, Info.InModuleScope); 369 Current.Context = PtrInvalidPair.getPointer(); 370 Info.Ctxt = 371 PtrInvalidPair.getInt() ? nullptr : PtrInvalidPair.getPointer(); 372 if (Info.Ctxt) 373 Info.Ctxt->setDefinedInClangModule(Info.InModuleScope); 374 } else 375 Info.Ctxt = Current.Context = nullptr; 376 } 377 378 Info.Prune = Current.InImportedModule; 379 // Add children in reverse order to the worklist to effectively process 380 // them in order. 381 Worklist.emplace_back(Current.Die, ContextWorklistItemType::UpdatePruning); 382 for (auto Child : reverse(Current.Die.children())) { 383 CompileUnit::DIEInfo &ChildInfo = CU.getInfo(Child); 384 Worklist.emplace_back( 385 Current.Die, ContextWorklistItemType::UpdateChildPruning, &ChildInfo); 386 Worklist.emplace_back(Child, Current.Context, Idx, 387 Current.InImportedModule); 388 } 389 } 390 391 return CU.getInfo(DIE).Prune; 392 } 393 394 static bool dieNeedsChildrenToBeMeaningful(uint32_t Tag) { 395 switch (Tag) { 396 default: 397 return false; 398 case dwarf::DW_TAG_class_type: 399 case dwarf::DW_TAG_common_block: 400 case dwarf::DW_TAG_lexical_block: 401 case dwarf::DW_TAG_structure_type: 402 case dwarf::DW_TAG_subprogram: 403 case dwarf::DW_TAG_subroutine_type: 404 case dwarf::DW_TAG_union_type: 405 return true; 406 } 407 llvm_unreachable("Invalid Tag"); 408 } 409 410 void DWARFLinker::cleanupAuxiliarryData(LinkContext &Context) { 411 Context.clear(); 412 413 for (DIEBlock *I : DIEBlocks) 414 I->~DIEBlock(); 415 for (DIELoc *I : DIELocs) 416 I->~DIELoc(); 417 418 DIEBlocks.clear(); 419 DIELocs.clear(); 420 DIEAlloc.Reset(); 421 } 422 423 /// Check if a variable describing DIE should be kept. 424 /// \returns updated TraversalFlags. 425 unsigned DWARFLinker::shouldKeepVariableDIE(AddressesMap &RelocMgr, 426 const DWARFDie &DIE, 427 CompileUnit::DIEInfo &MyInfo, 428 unsigned Flags) { 429 const auto *Abbrev = DIE.getAbbreviationDeclarationPtr(); 430 431 // Global variables with constant value can always be kept. 432 if (!(Flags & TF_InFunctionScope) && 433 Abbrev->findAttributeIndex(dwarf::DW_AT_const_value)) { 434 MyInfo.InDebugMap = true; 435 return Flags | TF_Keep; 436 } 437 438 // See if there is a relocation to a valid debug map entry inside this 439 // variable's location. The order is important here. We want to always check 440 // if the variable has a valid relocation, so that the DIEInfo is filled. 441 // However, we don't want a static variable in a function to force us to keep 442 // the enclosing function, unless requested explicitly. 443 const bool HasLiveMemoryLocation = RelocMgr.isLiveVariable(DIE, MyInfo); 444 if (!HasLiveMemoryLocation || ((Flags & TF_InFunctionScope) && 445 !LLVM_UNLIKELY(Options.KeepFunctionForStatic))) 446 return Flags; 447 448 if (Options.Verbose) { 449 outs() << "Keeping variable DIE:"; 450 DIDumpOptions DumpOpts; 451 DumpOpts.ChildRecurseDepth = 0; 452 DumpOpts.Verbose = Options.Verbose; 453 DIE.dump(outs(), 8 /* Indent */, DumpOpts); 454 } 455 456 return Flags | TF_Keep; 457 } 458 459 /// Check if a function describing DIE should be kept. 460 /// \returns updated TraversalFlags. 461 unsigned DWARFLinker::shouldKeepSubprogramDIE( 462 AddressesMap &RelocMgr, RangesTy &Ranges, const DWARFDie &DIE, 463 const DWARFFile &File, CompileUnit &Unit, CompileUnit::DIEInfo &MyInfo, 464 unsigned Flags) { 465 Flags |= TF_InFunctionScope; 466 467 auto LowPc = dwarf::toAddress(DIE.find(dwarf::DW_AT_low_pc)); 468 if (!LowPc) 469 return Flags; 470 471 assert(LowPc && "low_pc attribute is not an address."); 472 if (!RelocMgr.isLiveSubprogram(DIE, MyInfo)) 473 return Flags; 474 475 if (Options.Verbose) { 476 outs() << "Keeping subprogram DIE:"; 477 DIDumpOptions DumpOpts; 478 DumpOpts.ChildRecurseDepth = 0; 479 DumpOpts.Verbose = Options.Verbose; 480 DIE.dump(outs(), 8 /* Indent */, DumpOpts); 481 } 482 483 if (DIE.getTag() == dwarf::DW_TAG_label) { 484 if (Unit.hasLabelAt(*LowPc)) 485 return Flags; 486 487 DWARFUnit &OrigUnit = Unit.getOrigUnit(); 488 // FIXME: dsymutil-classic compat. dsymutil-classic doesn't consider labels 489 // that don't fall into the CU's aranges. This is wrong IMO. Debug info 490 // generation bugs aside, this is really wrong in the case of labels, where 491 // a label marking the end of a function will have a PC == CU's high_pc. 492 if (dwarf::toAddress(OrigUnit.getUnitDIE().find(dwarf::DW_AT_high_pc)) 493 .value_or(UINT64_MAX) <= LowPc) 494 return Flags; 495 Unit.addLabelLowPc(*LowPc, MyInfo.AddrAdjust); 496 return Flags | TF_Keep; 497 } 498 499 Flags |= TF_Keep; 500 501 Optional<uint64_t> HighPc = DIE.getHighPC(*LowPc); 502 if (!HighPc) { 503 reportWarning("Function without high_pc. Range will be discarded.\n", File, 504 &DIE); 505 return Flags; 506 } 507 if (*LowPc > *HighPc) { 508 reportWarning("low_pc greater than high_pc. Range will be discarded.\n", 509 File, &DIE); 510 return Flags; 511 } 512 513 // Replace the debug map range with a more accurate one. 514 Ranges.insert({*LowPc, *HighPc}, MyInfo.AddrAdjust); 515 Unit.addFunctionRange(*LowPc, *HighPc, MyInfo.AddrAdjust); 516 return Flags; 517 } 518 519 /// Check if a DIE should be kept. 520 /// \returns updated TraversalFlags. 521 unsigned DWARFLinker::shouldKeepDIE(AddressesMap &RelocMgr, RangesTy &Ranges, 522 const DWARFDie &DIE, const DWARFFile &File, 523 CompileUnit &Unit, 524 CompileUnit::DIEInfo &MyInfo, 525 unsigned Flags) { 526 switch (DIE.getTag()) { 527 case dwarf::DW_TAG_constant: 528 case dwarf::DW_TAG_variable: 529 return shouldKeepVariableDIE(RelocMgr, DIE, MyInfo, Flags); 530 case dwarf::DW_TAG_subprogram: 531 case dwarf::DW_TAG_label: 532 return shouldKeepSubprogramDIE(RelocMgr, Ranges, DIE, File, Unit, MyInfo, 533 Flags); 534 case dwarf::DW_TAG_base_type: 535 // DWARF Expressions may reference basic types, but scanning them 536 // is expensive. Basic types are tiny, so just keep all of them. 537 case dwarf::DW_TAG_imported_module: 538 case dwarf::DW_TAG_imported_declaration: 539 case dwarf::DW_TAG_imported_unit: 540 // We always want to keep these. 541 return Flags | TF_Keep; 542 default: 543 break; 544 } 545 546 return Flags; 547 } 548 549 /// Helper that updates the completeness of the current DIE based on the 550 /// completeness of one of its children. It depends on the incompleteness of 551 /// the children already being computed. 552 static void updateChildIncompleteness(const DWARFDie &Die, CompileUnit &CU, 553 CompileUnit::DIEInfo &ChildInfo) { 554 switch (Die.getTag()) { 555 case dwarf::DW_TAG_structure_type: 556 case dwarf::DW_TAG_class_type: 557 case dwarf::DW_TAG_union_type: 558 break; 559 default: 560 return; 561 } 562 563 CompileUnit::DIEInfo &MyInfo = CU.getInfo(Die); 564 565 if (ChildInfo.Incomplete || ChildInfo.Prune) 566 MyInfo.Incomplete = true; 567 } 568 569 /// Helper that updates the completeness of the current DIE based on the 570 /// completeness of the DIEs it references. It depends on the incompleteness of 571 /// the referenced DIE already being computed. 572 static void updateRefIncompleteness(const DWARFDie &Die, CompileUnit &CU, 573 CompileUnit::DIEInfo &RefInfo) { 574 switch (Die.getTag()) { 575 case dwarf::DW_TAG_typedef: 576 case dwarf::DW_TAG_member: 577 case dwarf::DW_TAG_reference_type: 578 case dwarf::DW_TAG_ptr_to_member_type: 579 case dwarf::DW_TAG_pointer_type: 580 break; 581 default: 582 return; 583 } 584 585 CompileUnit::DIEInfo &MyInfo = CU.getInfo(Die); 586 587 if (MyInfo.Incomplete) 588 return; 589 590 if (RefInfo.Incomplete) 591 MyInfo.Incomplete = true; 592 } 593 594 /// Look at the children of the given DIE and decide whether they should be 595 /// kept. 596 void DWARFLinker::lookForChildDIEsToKeep( 597 const DWARFDie &Die, CompileUnit &CU, unsigned Flags, 598 SmallVectorImpl<WorklistItem> &Worklist) { 599 // The TF_ParentWalk flag tells us that we are currently walking up the 600 // parent chain of a required DIE, and we don't want to mark all the children 601 // of the parents as kept (consider for example a DW_TAG_namespace node in 602 // the parent chain). There are however a set of DIE types for which we want 603 // to ignore that directive and still walk their children. 604 if (dieNeedsChildrenToBeMeaningful(Die.getTag())) 605 Flags &= ~DWARFLinker::TF_ParentWalk; 606 607 // We're finished if this DIE has no children or we're walking the parent 608 // chain. 609 if (!Die.hasChildren() || (Flags & DWARFLinker::TF_ParentWalk)) 610 return; 611 612 // Add children in reverse order to the worklist to effectively process them 613 // in order. 614 for (auto Child : reverse(Die.children())) { 615 // Add a worklist item before every child to calculate incompleteness right 616 // after the current child is processed. 617 CompileUnit::DIEInfo &ChildInfo = CU.getInfo(Child); 618 Worklist.emplace_back(Die, CU, WorklistItemType::UpdateChildIncompleteness, 619 &ChildInfo); 620 Worklist.emplace_back(Child, CU, Flags); 621 } 622 } 623 624 static bool isODRCanonicalCandidate(const DWARFDie &Die, CompileUnit &CU) { 625 CompileUnit::DIEInfo &Info = CU.getInfo(Die); 626 627 if (!Info.Ctxt || (Die.getTag() == dwarf::DW_TAG_namespace)) 628 return false; 629 630 if (!CU.hasODR() && !Info.InModuleScope) 631 return false; 632 633 return !Info.Incomplete && Info.Ctxt != CU.getInfo(Info.ParentIdx).Ctxt; 634 } 635 636 void DWARFLinker::markODRCanonicalDie(const DWARFDie &Die, CompileUnit &CU) { 637 CompileUnit::DIEInfo &Info = CU.getInfo(Die); 638 639 Info.ODRMarkingDone = true; 640 if (Info.Keep && isODRCanonicalCandidate(Die, CU) && 641 !Info.Ctxt->hasCanonicalDIE()) 642 Info.Ctxt->setHasCanonicalDIE(); 643 } 644 645 /// Look at DIEs referenced by the given DIE and decide whether they should be 646 /// kept. All DIEs referenced though attributes should be kept. 647 void DWARFLinker::lookForRefDIEsToKeep( 648 const DWARFDie &Die, CompileUnit &CU, unsigned Flags, 649 const UnitListTy &Units, const DWARFFile &File, 650 SmallVectorImpl<WorklistItem> &Worklist) { 651 bool UseOdr = (Flags & DWARFLinker::TF_DependencyWalk) 652 ? (Flags & DWARFLinker::TF_ODR) 653 : CU.hasODR(); 654 DWARFUnit &Unit = CU.getOrigUnit(); 655 DWARFDataExtractor Data = Unit.getDebugInfoExtractor(); 656 const auto *Abbrev = Die.getAbbreviationDeclarationPtr(); 657 uint64_t Offset = Die.getOffset() + getULEB128Size(Abbrev->getCode()); 658 659 SmallVector<std::pair<DWARFDie, CompileUnit &>, 4> ReferencedDIEs; 660 for (const auto &AttrSpec : Abbrev->attributes()) { 661 DWARFFormValue Val(AttrSpec.Form); 662 if (!Val.isFormClass(DWARFFormValue::FC_Reference) || 663 AttrSpec.Attr == dwarf::DW_AT_sibling) { 664 DWARFFormValue::skipValue(AttrSpec.Form, Data, &Offset, 665 Unit.getFormParams()); 666 continue; 667 } 668 669 Val.extractValue(Data, &Offset, Unit.getFormParams(), &Unit); 670 CompileUnit *ReferencedCU; 671 if (auto RefDie = 672 resolveDIEReference(File, Units, Val, Die, ReferencedCU)) { 673 CompileUnit::DIEInfo &Info = ReferencedCU->getInfo(RefDie); 674 // If the referenced DIE has a DeclContext that has already been 675 // emitted, then do not keep the one in this CU. We'll link to 676 // the canonical DIE in cloneDieReferenceAttribute. 677 // 678 // FIXME: compatibility with dsymutil-classic. UseODR shouldn't 679 // be necessary and could be advantageously replaced by 680 // ReferencedCU->hasODR() && CU.hasODR(). 681 // 682 // FIXME: compatibility with dsymutil-classic. There is no 683 // reason not to unique ref_addr references. 684 if (AttrSpec.Form != dwarf::DW_FORM_ref_addr && 685 isODRAttribute(AttrSpec.Attr) && Info.Ctxt && 686 Info.Ctxt->hasCanonicalDIE()) 687 continue; 688 689 // Keep a module forward declaration if there is no definition. 690 if (!(isODRAttribute(AttrSpec.Attr) && Info.Ctxt && 691 Info.Ctxt->hasCanonicalDIE())) 692 Info.Prune = false; 693 ReferencedDIEs.emplace_back(RefDie, *ReferencedCU); 694 } 695 } 696 697 unsigned ODRFlag = UseOdr ? DWARFLinker::TF_ODR : 0; 698 699 // Add referenced DIEs in reverse order to the worklist to effectively 700 // process them in order. 701 for (auto &P : reverse(ReferencedDIEs)) { 702 // Add a worklist item before every child to calculate incompleteness right 703 // after the current child is processed. 704 CompileUnit::DIEInfo &Info = P.second.getInfo(P.first); 705 Worklist.emplace_back(Die, CU, WorklistItemType::UpdateRefIncompleteness, 706 &Info); 707 Worklist.emplace_back(P.first, P.second, 708 DWARFLinker::TF_Keep | 709 DWARFLinker::TF_DependencyWalk | ODRFlag); 710 } 711 } 712 713 /// Look at the parent of the given DIE and decide whether they should be kept. 714 void DWARFLinker::lookForParentDIEsToKeep( 715 unsigned AncestorIdx, CompileUnit &CU, unsigned Flags, 716 SmallVectorImpl<WorklistItem> &Worklist) { 717 // Stop if we encounter an ancestor that's already marked as kept. 718 if (CU.getInfo(AncestorIdx).Keep) 719 return; 720 721 DWARFUnit &Unit = CU.getOrigUnit(); 722 DWARFDie ParentDIE = Unit.getDIEAtIndex(AncestorIdx); 723 Worklist.emplace_back(CU.getInfo(AncestorIdx).ParentIdx, CU, Flags); 724 Worklist.emplace_back(ParentDIE, CU, Flags); 725 } 726 727 /// Recursively walk the \p DIE tree and look for DIEs to keep. Store that 728 /// information in \p CU's DIEInfo. 729 /// 730 /// This function is the entry point of the DIE selection algorithm. It is 731 /// expected to walk the DIE tree in file order and (though the mediation of 732 /// its helper) call hasValidRelocation() on each DIE that might be a 'root 733 /// DIE' (See DwarfLinker class comment). 734 /// 735 /// While walking the dependencies of root DIEs, this function is also called, 736 /// but during these dependency walks the file order is not respected. The 737 /// TF_DependencyWalk flag tells us which kind of traversal we are currently 738 /// doing. 739 /// 740 /// The recursive algorithm is implemented iteratively as a work list because 741 /// very deep recursion could exhaust the stack for large projects. The work 742 /// list acts as a scheduler for different types of work that need to be 743 /// performed. 744 /// 745 /// The recursive nature of the algorithm is simulated by running the "main" 746 /// algorithm (LookForDIEsToKeep) followed by either looking at more DIEs 747 /// (LookForChildDIEsToKeep, LookForRefDIEsToKeep, LookForParentDIEsToKeep) or 748 /// fixing up a computed property (UpdateChildIncompleteness, 749 /// UpdateRefIncompleteness). 750 /// 751 /// The return value indicates whether the DIE is incomplete. 752 void DWARFLinker::lookForDIEsToKeep(AddressesMap &AddressesMap, 753 RangesTy &Ranges, const UnitListTy &Units, 754 const DWARFDie &Die, const DWARFFile &File, 755 CompileUnit &Cu, unsigned Flags) { 756 // LIFO work list. 757 SmallVector<WorklistItem, 4> Worklist; 758 Worklist.emplace_back(Die, Cu, Flags); 759 760 while (!Worklist.empty()) { 761 WorklistItem Current = Worklist.pop_back_val(); 762 763 // Look at the worklist type to decide what kind of work to perform. 764 switch (Current.Type) { 765 case WorklistItemType::UpdateChildIncompleteness: 766 updateChildIncompleteness(Current.Die, Current.CU, *Current.OtherInfo); 767 continue; 768 case WorklistItemType::UpdateRefIncompleteness: 769 updateRefIncompleteness(Current.Die, Current.CU, *Current.OtherInfo); 770 continue; 771 case WorklistItemType::LookForChildDIEsToKeep: 772 lookForChildDIEsToKeep(Current.Die, Current.CU, Current.Flags, Worklist); 773 continue; 774 case WorklistItemType::LookForRefDIEsToKeep: 775 lookForRefDIEsToKeep(Current.Die, Current.CU, Current.Flags, Units, File, 776 Worklist); 777 continue; 778 case WorklistItemType::LookForParentDIEsToKeep: 779 lookForParentDIEsToKeep(Current.AncestorIdx, Current.CU, Current.Flags, 780 Worklist); 781 continue; 782 case WorklistItemType::MarkODRCanonicalDie: 783 markODRCanonicalDie(Current.Die, Current.CU); 784 continue; 785 case WorklistItemType::LookForDIEsToKeep: 786 break; 787 } 788 789 unsigned Idx = Current.CU.getOrigUnit().getDIEIndex(Current.Die); 790 CompileUnit::DIEInfo &MyInfo = Current.CU.getInfo(Idx); 791 792 if (MyInfo.Prune) 793 continue; 794 795 // If the Keep flag is set, we are marking a required DIE's dependencies. 796 // If our target is already marked as kept, we're all set. 797 bool AlreadyKept = MyInfo.Keep; 798 if ((Current.Flags & TF_DependencyWalk) && AlreadyKept) 799 continue; 800 801 // We must not call shouldKeepDIE while called from keepDIEAndDependencies, 802 // because it would screw up the relocation finding logic. 803 if (!(Current.Flags & TF_DependencyWalk)) 804 Current.Flags = shouldKeepDIE(AddressesMap, Ranges, Current.Die, File, 805 Current.CU, MyInfo, Current.Flags); 806 807 // We need to mark context for the canonical die in the end of normal 808 // traversing(not TF_DependencyWalk) or after normal traversing if die 809 // was not marked as kept. 810 if (!(Current.Flags & TF_DependencyWalk) || 811 (MyInfo.ODRMarkingDone && !MyInfo.Keep)) { 812 if (Current.CU.hasODR() || MyInfo.InModuleScope) 813 Worklist.emplace_back(Current.Die, Current.CU, 814 WorklistItemType::MarkODRCanonicalDie); 815 } 816 817 // Finish by looking for child DIEs. Because of the LIFO worklist we need 818 // to schedule that work before any subsequent items are added to the 819 // worklist. 820 Worklist.emplace_back(Current.Die, Current.CU, Current.Flags, 821 WorklistItemType::LookForChildDIEsToKeep); 822 823 if (AlreadyKept || !(Current.Flags & TF_Keep)) 824 continue; 825 826 // If it is a newly kept DIE mark it as well as all its dependencies as 827 // kept. 828 MyInfo.Keep = true; 829 830 // We're looking for incomplete types. 831 MyInfo.Incomplete = 832 Current.Die.getTag() != dwarf::DW_TAG_subprogram && 833 Current.Die.getTag() != dwarf::DW_TAG_member && 834 dwarf::toUnsigned(Current.Die.find(dwarf::DW_AT_declaration), 0); 835 836 // After looking at the parent chain, look for referenced DIEs. Because of 837 // the LIFO worklist we need to schedule that work before any subsequent 838 // items are added to the worklist. 839 Worklist.emplace_back(Current.Die, Current.CU, Current.Flags, 840 WorklistItemType::LookForRefDIEsToKeep); 841 842 bool UseOdr = (Current.Flags & TF_DependencyWalk) ? (Current.Flags & TF_ODR) 843 : Current.CU.hasODR(); 844 unsigned ODRFlag = UseOdr ? TF_ODR : 0; 845 unsigned ParFlags = TF_ParentWalk | TF_Keep | TF_DependencyWalk | ODRFlag; 846 847 // Now schedule the parent walk. 848 Worklist.emplace_back(MyInfo.ParentIdx, Current.CU, ParFlags); 849 } 850 } 851 852 /// Assign an abbreviation number to \p Abbrev. 853 /// 854 /// Our DIEs get freed after every DebugMapObject has been processed, 855 /// thus the FoldingSet we use to unique DIEAbbrevs cannot refer to 856 /// the instances hold by the DIEs. When we encounter an abbreviation 857 /// that we don't know, we create a permanent copy of it. 858 void DWARFLinker::assignAbbrev(DIEAbbrev &Abbrev) { 859 // Check the set for priors. 860 FoldingSetNodeID ID; 861 Abbrev.Profile(ID); 862 void *InsertToken; 863 DIEAbbrev *InSet = AbbreviationsSet.FindNodeOrInsertPos(ID, InsertToken); 864 865 // If it's newly added. 866 if (InSet) { 867 // Assign existing abbreviation number. 868 Abbrev.setNumber(InSet->getNumber()); 869 } else { 870 // Add to abbreviation list. 871 Abbreviations.push_back( 872 std::make_unique<DIEAbbrev>(Abbrev.getTag(), Abbrev.hasChildren())); 873 for (const auto &Attr : Abbrev.getData()) 874 Abbreviations.back()->AddAttribute(Attr.getAttribute(), Attr.getForm()); 875 AbbreviationsSet.InsertNode(Abbreviations.back().get(), InsertToken); 876 // Assign the unique abbreviation number. 877 Abbrev.setNumber(Abbreviations.size()); 878 Abbreviations.back()->setNumber(Abbreviations.size()); 879 } 880 } 881 882 unsigned DWARFLinker::DIECloner::cloneStringAttribute( 883 DIE &Die, AttributeSpec AttrSpec, const DWARFFormValue &Val, 884 const DWARFUnit &, OffsetsStringPool &StringPool, AttributesInfo &Info) { 885 Optional<const char *> String = dwarf::toString(Val); 886 if (!String) 887 return 0; 888 889 // Switch everything to out of line strings. 890 auto StringEntry = StringPool.getEntry(*String); 891 892 // Update attributes info. 893 if (AttrSpec.Attr == dwarf::DW_AT_name) 894 Info.Name = StringEntry; 895 else if (AttrSpec.Attr == dwarf::DW_AT_MIPS_linkage_name || 896 AttrSpec.Attr == dwarf::DW_AT_linkage_name) 897 Info.MangledName = StringEntry; 898 899 Die.addValue(DIEAlloc, dwarf::Attribute(AttrSpec.Attr), dwarf::DW_FORM_strp, 900 DIEInteger(StringEntry.getOffset())); 901 902 return 4; 903 } 904 905 unsigned DWARFLinker::DIECloner::cloneDieReferenceAttribute( 906 DIE &Die, const DWARFDie &InputDIE, AttributeSpec AttrSpec, 907 unsigned AttrSize, const DWARFFormValue &Val, const DWARFFile &File, 908 CompileUnit &Unit) { 909 const DWARFUnit &U = Unit.getOrigUnit(); 910 uint64_t Ref = *Val.getAsReference(); 911 912 DIE *NewRefDie = nullptr; 913 CompileUnit *RefUnit = nullptr; 914 915 DWARFDie RefDie = 916 Linker.resolveDIEReference(File, CompileUnits, Val, InputDIE, RefUnit); 917 918 // If the referenced DIE is not found, drop the attribute. 919 if (!RefDie || AttrSpec.Attr == dwarf::DW_AT_sibling) 920 return 0; 921 922 CompileUnit::DIEInfo &RefInfo = RefUnit->getInfo(RefDie); 923 924 // If we already have emitted an equivalent DeclContext, just point 925 // at it. 926 if (isODRAttribute(AttrSpec.Attr) && RefInfo.Ctxt && 927 RefInfo.Ctxt->getCanonicalDIEOffset()) { 928 assert(RefInfo.Ctxt->hasCanonicalDIE() && 929 "Offset to canonical die is set, but context is not marked"); 930 DIEInteger Attr(RefInfo.Ctxt->getCanonicalDIEOffset()); 931 Die.addValue(DIEAlloc, dwarf::Attribute(AttrSpec.Attr), 932 dwarf::DW_FORM_ref_addr, Attr); 933 return U.getRefAddrByteSize(); 934 } 935 936 if (!RefInfo.Clone) { 937 assert(Ref > InputDIE.getOffset()); 938 // We haven't cloned this DIE yet. Just create an empty one and 939 // store it. It'll get really cloned when we process it. 940 RefInfo.Clone = DIE::get(DIEAlloc, dwarf::Tag(RefDie.getTag())); 941 } 942 NewRefDie = RefInfo.Clone; 943 944 if (AttrSpec.Form == dwarf::DW_FORM_ref_addr || 945 (Unit.hasODR() && isODRAttribute(AttrSpec.Attr))) { 946 // We cannot currently rely on a DIEEntry to emit ref_addr 947 // references, because the implementation calls back to DwarfDebug 948 // to find the unit offset. (We don't have a DwarfDebug) 949 // FIXME: we should be able to design DIEEntry reliance on 950 // DwarfDebug away. 951 uint64_t Attr; 952 if (Ref < InputDIE.getOffset()) { 953 // We must have already cloned that DIE. 954 uint32_t NewRefOffset = 955 RefUnit->getStartOffset() + NewRefDie->getOffset(); 956 Attr = NewRefOffset; 957 Die.addValue(DIEAlloc, dwarf::Attribute(AttrSpec.Attr), 958 dwarf::DW_FORM_ref_addr, DIEInteger(Attr)); 959 } else { 960 // A forward reference. Note and fixup later. 961 Attr = 0xBADDEF; 962 Unit.noteForwardReference( 963 NewRefDie, RefUnit, RefInfo.Ctxt, 964 Die.addValue(DIEAlloc, dwarf::Attribute(AttrSpec.Attr), 965 dwarf::DW_FORM_ref_addr, DIEInteger(Attr))); 966 } 967 return U.getRefAddrByteSize(); 968 } 969 970 Die.addValue(DIEAlloc, dwarf::Attribute(AttrSpec.Attr), 971 dwarf::Form(AttrSpec.Form), DIEEntry(*NewRefDie)); 972 973 return AttrSize; 974 } 975 976 void DWARFLinker::DIECloner::cloneExpression( 977 DataExtractor &Data, DWARFExpression Expression, const DWARFFile &File, 978 CompileUnit &Unit, SmallVectorImpl<uint8_t> &OutputBuffer) { 979 using Encoding = DWARFExpression::Operation::Encoding; 980 981 uint64_t OpOffset = 0; 982 for (auto &Op : Expression) { 983 auto Description = Op.getDescription(); 984 // DW_OP_const_type is variable-length and has 3 985 // operands. DWARFExpression thus far only supports 2. 986 auto Op0 = Description.Op[0]; 987 auto Op1 = Description.Op[1]; 988 if ((Op0 == Encoding::BaseTypeRef && Op1 != Encoding::SizeNA) || 989 (Op1 == Encoding::BaseTypeRef && Op0 != Encoding::Size1)) 990 Linker.reportWarning("Unsupported DW_OP encoding.", File); 991 992 if ((Op0 == Encoding::BaseTypeRef && Op1 == Encoding::SizeNA) || 993 (Op1 == Encoding::BaseTypeRef && Op0 == Encoding::Size1)) { 994 // This code assumes that the other non-typeref operand fits into 1 byte. 995 assert(OpOffset < Op.getEndOffset()); 996 uint32_t ULEBsize = Op.getEndOffset() - OpOffset - 1; 997 assert(ULEBsize <= 16); 998 999 // Copy over the operation. 1000 OutputBuffer.push_back(Op.getCode()); 1001 uint64_t RefOffset; 1002 if (Op1 == Encoding::SizeNA) { 1003 RefOffset = Op.getRawOperand(0); 1004 } else { 1005 OutputBuffer.push_back(Op.getRawOperand(0)); 1006 RefOffset = Op.getRawOperand(1); 1007 } 1008 uint32_t Offset = 0; 1009 // Look up the base type. For DW_OP_convert, the operand may be 0 to 1010 // instead indicate the generic type. The same holds for 1011 // DW_OP_reinterpret, which is currently not supported. 1012 if (RefOffset > 0 || Op.getCode() != dwarf::DW_OP_convert) { 1013 RefOffset += Unit.getOrigUnit().getOffset(); 1014 auto RefDie = Unit.getOrigUnit().getDIEForOffset(RefOffset); 1015 CompileUnit::DIEInfo &Info = Unit.getInfo(RefDie); 1016 if (DIE *Clone = Info.Clone) 1017 Offset = Clone->getOffset(); 1018 else 1019 Linker.reportWarning( 1020 "base type ref doesn't point to DW_TAG_base_type.", File); 1021 } 1022 uint8_t ULEB[16]; 1023 unsigned RealSize = encodeULEB128(Offset, ULEB, ULEBsize); 1024 if (RealSize > ULEBsize) { 1025 // Emit the generic type as a fallback. 1026 RealSize = encodeULEB128(0, ULEB, ULEBsize); 1027 Linker.reportWarning("base type ref doesn't fit.", File); 1028 } 1029 assert(RealSize == ULEBsize && "padding failed"); 1030 ArrayRef<uint8_t> ULEBbytes(ULEB, ULEBsize); 1031 OutputBuffer.append(ULEBbytes.begin(), ULEBbytes.end()); 1032 } else { 1033 // Copy over everything else unmodified. 1034 StringRef Bytes = Data.getData().slice(OpOffset, Op.getEndOffset()); 1035 OutputBuffer.append(Bytes.begin(), Bytes.end()); 1036 } 1037 OpOffset = Op.getEndOffset(); 1038 } 1039 } 1040 1041 unsigned DWARFLinker::DIECloner::cloneBlockAttribute( 1042 DIE &Die, const DWARFFile &File, CompileUnit &Unit, AttributeSpec AttrSpec, 1043 const DWARFFormValue &Val, unsigned AttrSize, bool IsLittleEndian) { 1044 DIEValueList *Attr; 1045 DIEValue Value; 1046 DIELoc *Loc = nullptr; 1047 DIEBlock *Block = nullptr; 1048 if (AttrSpec.Form == dwarf::DW_FORM_exprloc) { 1049 Loc = new (DIEAlloc) DIELoc; 1050 Linker.DIELocs.push_back(Loc); 1051 } else { 1052 Block = new (DIEAlloc) DIEBlock; 1053 Linker.DIEBlocks.push_back(Block); 1054 } 1055 Attr = Loc ? static_cast<DIEValueList *>(Loc) 1056 : static_cast<DIEValueList *>(Block); 1057 1058 if (Loc) 1059 Value = DIEValue(dwarf::Attribute(AttrSpec.Attr), 1060 dwarf::Form(AttrSpec.Form), Loc); 1061 else 1062 Value = DIEValue(dwarf::Attribute(AttrSpec.Attr), 1063 dwarf::Form(AttrSpec.Form), Block); 1064 1065 // If the block is a DWARF Expression, clone it into the temporary 1066 // buffer using cloneExpression(), otherwise copy the data directly. 1067 SmallVector<uint8_t, 32> Buffer; 1068 ArrayRef<uint8_t> Bytes = *Val.getAsBlock(); 1069 if (DWARFAttribute::mayHaveLocationExpr(AttrSpec.Attr) && 1070 (Val.isFormClass(DWARFFormValue::FC_Block) || 1071 Val.isFormClass(DWARFFormValue::FC_Exprloc))) { 1072 DWARFUnit &OrigUnit = Unit.getOrigUnit(); 1073 DataExtractor Data(StringRef((const char *)Bytes.data(), Bytes.size()), 1074 IsLittleEndian, OrigUnit.getAddressByteSize()); 1075 DWARFExpression Expr(Data, OrigUnit.getAddressByteSize(), 1076 OrigUnit.getFormParams().Format); 1077 cloneExpression(Data, Expr, File, Unit, Buffer); 1078 Bytes = Buffer; 1079 } 1080 for (auto Byte : Bytes) 1081 Attr->addValue(DIEAlloc, static_cast<dwarf::Attribute>(0), 1082 dwarf::DW_FORM_data1, DIEInteger(Byte)); 1083 1084 // FIXME: If DIEBlock and DIELoc just reuses the Size field of 1085 // the DIE class, this "if" could be replaced by 1086 // Attr->setSize(Bytes.size()). 1087 if (Loc) 1088 Loc->setSize(Bytes.size()); 1089 else 1090 Block->setSize(Bytes.size()); 1091 1092 Die.addValue(DIEAlloc, Value); 1093 return AttrSize; 1094 } 1095 1096 unsigned DWARFLinker::DIECloner::cloneAddressAttribute( 1097 DIE &Die, AttributeSpec AttrSpec, const DWARFFormValue &Val, 1098 const CompileUnit &Unit, AttributesInfo &Info) { 1099 if (LLVM_UNLIKELY(Linker.Options.Update)) { 1100 if (AttrSpec.Attr == dwarf::DW_AT_low_pc) 1101 Info.HasLowPc = true; 1102 Die.addValue(DIEAlloc, dwarf::Attribute(AttrSpec.Attr), 1103 dwarf::Form(AttrSpec.Form), DIEInteger(Val.getRawUValue())); 1104 return Unit.getOrigUnit().getAddressByteSize(); 1105 } 1106 1107 dwarf::Form Form = AttrSpec.Form; 1108 uint64_t Addr = 0; 1109 if (Form == dwarf::DW_FORM_addrx) { 1110 if (Optional<uint64_t> AddrOffsetSectionBase = 1111 Unit.getOrigUnit().getAddrOffsetSectionBase()) { 1112 uint64_t StartOffset = *AddrOffsetSectionBase + Val.getRawUValue(); 1113 uint64_t EndOffset = 1114 StartOffset + Unit.getOrigUnit().getAddressByteSize(); 1115 if (llvm::Expected<uint64_t> RelocAddr = 1116 ObjFile.Addresses->relocateIndexedAddr(StartOffset, EndOffset)) 1117 Addr = *RelocAddr; 1118 else 1119 Linker.reportWarning(toString(RelocAddr.takeError()), ObjFile); 1120 } else 1121 Linker.reportWarning("no base offset for address table", ObjFile); 1122 1123 // If this is an indexed address emit the debug_info address. 1124 Form = dwarf::DW_FORM_addr; 1125 } else 1126 Addr = *Val.getAsAddress(); 1127 1128 if (AttrSpec.Attr == dwarf::DW_AT_low_pc) { 1129 if (Die.getTag() == dwarf::DW_TAG_inlined_subroutine || 1130 Die.getTag() == dwarf::DW_TAG_lexical_block || 1131 Die.getTag() == dwarf::DW_TAG_label) { 1132 // The low_pc of a block or inline subroutine might get 1133 // relocated because it happens to match the low_pc of the 1134 // enclosing subprogram. To prevent issues with that, always use 1135 // the low_pc from the input DIE if relocations have been applied. 1136 Addr = (Info.OrigLowPc != std::numeric_limits<uint64_t>::max() 1137 ? Info.OrigLowPc 1138 : Addr) + 1139 Info.PCOffset; 1140 } else if (Die.getTag() == dwarf::DW_TAG_compile_unit) { 1141 Addr = Unit.getLowPc(); 1142 if (Addr == std::numeric_limits<uint64_t>::max()) 1143 return 0; 1144 } 1145 Info.HasLowPc = true; 1146 } else if (AttrSpec.Attr == dwarf::DW_AT_high_pc) { 1147 if (Die.getTag() == dwarf::DW_TAG_compile_unit) { 1148 if (uint64_t HighPc = Unit.getHighPc()) 1149 Addr = HighPc; 1150 else 1151 return 0; 1152 } else 1153 // If we have a high_pc recorded for the input DIE, use 1154 // it. Otherwise (when no relocations where applied) just use the 1155 // one we just decoded. 1156 Addr = (Info.OrigHighPc ? Info.OrigHighPc : Addr) + Info.PCOffset; 1157 } else if (AttrSpec.Attr == dwarf::DW_AT_call_return_pc) { 1158 // Relocate a return PC address within a call site entry. 1159 if (Die.getTag() == dwarf::DW_TAG_call_site) 1160 Addr = (Info.OrigCallReturnPc ? Info.OrigCallReturnPc : Addr) + 1161 Info.PCOffset; 1162 } else if (AttrSpec.Attr == dwarf::DW_AT_call_pc) { 1163 // Relocate the address of a branch instruction within a call site entry. 1164 if (Die.getTag() == dwarf::DW_TAG_call_site) 1165 Addr = (Info.OrigCallPc ? Info.OrigCallPc : Addr) + Info.PCOffset; 1166 } 1167 1168 Die.addValue(DIEAlloc, static_cast<dwarf::Attribute>(AttrSpec.Attr), 1169 static_cast<dwarf::Form>(Form), DIEInteger(Addr)); 1170 return Unit.getOrigUnit().getAddressByteSize(); 1171 } 1172 1173 unsigned DWARFLinker::DIECloner::cloneScalarAttribute( 1174 DIE &Die, const DWARFDie &InputDIE, const DWARFFile &File, 1175 CompileUnit &Unit, AttributeSpec AttrSpec, const DWARFFormValue &Val, 1176 unsigned AttrSize, AttributesInfo &Info) { 1177 uint64_t Value; 1178 1179 if (LLVM_UNLIKELY(Linker.Options.Update)) { 1180 if (auto OptionalValue = Val.getAsUnsignedConstant()) 1181 Value = *OptionalValue; 1182 else if (auto OptionalValue = Val.getAsSignedConstant()) 1183 Value = *OptionalValue; 1184 else if (auto OptionalValue = Val.getAsSectionOffset()) 1185 Value = *OptionalValue; 1186 else { 1187 Linker.reportWarning( 1188 "Unsupported scalar attribute form. Dropping attribute.", File, 1189 &InputDIE); 1190 return 0; 1191 } 1192 if (AttrSpec.Attr == dwarf::DW_AT_declaration && Value) 1193 Info.IsDeclaration = true; 1194 Die.addValue(DIEAlloc, dwarf::Attribute(AttrSpec.Attr), 1195 dwarf::Form(AttrSpec.Form), DIEInteger(Value)); 1196 return AttrSize; 1197 } 1198 1199 if (AttrSpec.Attr == dwarf::DW_AT_high_pc && 1200 Die.getTag() == dwarf::DW_TAG_compile_unit) { 1201 if (Unit.getLowPc() == -1ULL) 1202 return 0; 1203 // Dwarf >= 4 high_pc is an size, not an address. 1204 Value = Unit.getHighPc() - Unit.getLowPc(); 1205 } else if (AttrSpec.Form == dwarf::DW_FORM_sec_offset) 1206 Value = *Val.getAsSectionOffset(); 1207 else if (AttrSpec.Form == dwarf::DW_FORM_sdata) 1208 Value = *Val.getAsSignedConstant(); 1209 else if (auto OptionalValue = Val.getAsUnsignedConstant()) 1210 Value = *OptionalValue; 1211 else { 1212 Linker.reportWarning( 1213 "Unsupported scalar attribute form. Dropping attribute.", File, 1214 &InputDIE); 1215 return 0; 1216 } 1217 PatchLocation Patch = 1218 Die.addValue(DIEAlloc, dwarf::Attribute(AttrSpec.Attr), 1219 dwarf::Form(AttrSpec.Form), DIEInteger(Value)); 1220 if (AttrSpec.Attr == dwarf::DW_AT_ranges) { 1221 Unit.noteRangeAttribute(Die, Patch); 1222 Info.HasRanges = true; 1223 } 1224 1225 // A more generic way to check for location attributes would be 1226 // nice, but it's very unlikely that any other attribute needs a 1227 // location list. 1228 // FIXME: use DWARFAttribute::mayHaveLocationDescription(). 1229 else if (AttrSpec.Attr == dwarf::DW_AT_location || 1230 AttrSpec.Attr == dwarf::DW_AT_frame_base) { 1231 Unit.noteLocationAttribute(Patch, Info.PCOffset); 1232 } else if (AttrSpec.Attr == dwarf::DW_AT_declaration && Value) 1233 Info.IsDeclaration = true; 1234 1235 return AttrSize; 1236 } 1237 1238 /// Clone \p InputDIE's attribute described by \p AttrSpec with 1239 /// value \p Val, and add it to \p Die. 1240 /// \returns the size of the cloned attribute. 1241 unsigned DWARFLinker::DIECloner::cloneAttribute( 1242 DIE &Die, const DWARFDie &InputDIE, const DWARFFile &File, 1243 CompileUnit &Unit, OffsetsStringPool &StringPool, const DWARFFormValue &Val, 1244 const AttributeSpec AttrSpec, unsigned AttrSize, AttributesInfo &Info, 1245 bool IsLittleEndian) { 1246 const DWARFUnit &U = Unit.getOrigUnit(); 1247 1248 switch (AttrSpec.Form) { 1249 case dwarf::DW_FORM_strp: 1250 case dwarf::DW_FORM_string: 1251 case dwarf::DW_FORM_strx: 1252 case dwarf::DW_FORM_strx1: 1253 case dwarf::DW_FORM_strx2: 1254 case dwarf::DW_FORM_strx3: 1255 case dwarf::DW_FORM_strx4: 1256 return cloneStringAttribute(Die, AttrSpec, Val, U, StringPool, Info); 1257 case dwarf::DW_FORM_ref_addr: 1258 case dwarf::DW_FORM_ref1: 1259 case dwarf::DW_FORM_ref2: 1260 case dwarf::DW_FORM_ref4: 1261 case dwarf::DW_FORM_ref8: 1262 return cloneDieReferenceAttribute(Die, InputDIE, AttrSpec, AttrSize, Val, 1263 File, Unit); 1264 case dwarf::DW_FORM_block: 1265 case dwarf::DW_FORM_block1: 1266 case dwarf::DW_FORM_block2: 1267 case dwarf::DW_FORM_block4: 1268 case dwarf::DW_FORM_exprloc: 1269 return cloneBlockAttribute(Die, File, Unit, AttrSpec, Val, AttrSize, 1270 IsLittleEndian); 1271 case dwarf::DW_FORM_addr: 1272 case dwarf::DW_FORM_addrx: 1273 return cloneAddressAttribute(Die, AttrSpec, Val, Unit, Info); 1274 case dwarf::DW_FORM_data1: 1275 case dwarf::DW_FORM_data2: 1276 case dwarf::DW_FORM_data4: 1277 case dwarf::DW_FORM_data8: 1278 case dwarf::DW_FORM_udata: 1279 case dwarf::DW_FORM_sdata: 1280 case dwarf::DW_FORM_sec_offset: 1281 case dwarf::DW_FORM_flag: 1282 case dwarf::DW_FORM_flag_present: 1283 return cloneScalarAttribute(Die, InputDIE, File, Unit, AttrSpec, Val, 1284 AttrSize, Info); 1285 default: 1286 Linker.reportWarning("Unsupported attribute form " + 1287 dwarf::FormEncodingString(AttrSpec.Form) + 1288 " in cloneAttribute. Dropping.", 1289 File, &InputDIE); 1290 } 1291 1292 return 0; 1293 } 1294 1295 static bool isObjCSelector(StringRef Name) { 1296 return Name.size() > 2 && (Name[0] == '-' || Name[0] == '+') && 1297 (Name[1] == '['); 1298 } 1299 1300 void DWARFLinker::DIECloner::addObjCAccelerator(CompileUnit &Unit, 1301 const DIE *Die, 1302 DwarfStringPoolEntryRef Name, 1303 OffsetsStringPool &StringPool, 1304 bool SkipPubSection) { 1305 assert(isObjCSelector(Name.getString()) && "not an objc selector"); 1306 // Objective C method or class function. 1307 // "- [Class(Category) selector :withArg ...]" 1308 StringRef ClassNameStart(Name.getString().drop_front(2)); 1309 size_t FirstSpace = ClassNameStart.find(' '); 1310 if (FirstSpace == StringRef::npos) 1311 return; 1312 1313 StringRef SelectorStart(ClassNameStart.data() + FirstSpace + 1); 1314 if (!SelectorStart.size()) 1315 return; 1316 1317 StringRef Selector(SelectorStart.data(), SelectorStart.size() - 1); 1318 Unit.addNameAccelerator(Die, StringPool.getEntry(Selector), SkipPubSection); 1319 1320 // Add an entry for the class name that points to this 1321 // method/class function. 1322 StringRef ClassName(ClassNameStart.data(), FirstSpace); 1323 Unit.addObjCAccelerator(Die, StringPool.getEntry(ClassName), SkipPubSection); 1324 1325 if (ClassName[ClassName.size() - 1] == ')') { 1326 size_t OpenParens = ClassName.find('('); 1327 if (OpenParens != StringRef::npos) { 1328 StringRef ClassNameNoCategory(ClassName.data(), OpenParens); 1329 Unit.addObjCAccelerator(Die, StringPool.getEntry(ClassNameNoCategory), 1330 SkipPubSection); 1331 1332 std::string MethodNameNoCategory(Name.getString().data(), OpenParens + 2); 1333 // FIXME: The missing space here may be a bug, but 1334 // dsymutil-classic also does it this way. 1335 MethodNameNoCategory.append(std::string(SelectorStart)); 1336 Unit.addNameAccelerator(Die, StringPool.getEntry(MethodNameNoCategory), 1337 SkipPubSection); 1338 } 1339 } 1340 } 1341 1342 static bool 1343 shouldSkipAttribute(DWARFAbbreviationDeclaration::AttributeSpec AttrSpec, 1344 uint16_t Tag, bool InDebugMap, bool SkipPC, 1345 bool InFunctionScope) { 1346 switch (AttrSpec.Attr) { 1347 default: 1348 return false; 1349 case dwarf::DW_AT_low_pc: 1350 case dwarf::DW_AT_high_pc: 1351 case dwarf::DW_AT_ranges: 1352 return SkipPC; 1353 case dwarf::DW_AT_str_offsets_base: 1354 // FIXME: Use the string offset table with Dwarf 5. 1355 return true; 1356 case dwarf::DW_AT_location: 1357 case dwarf::DW_AT_frame_base: 1358 // FIXME: for some reason dsymutil-classic keeps the location attributes 1359 // when they are of block type (i.e. not location lists). This is totally 1360 // wrong for globals where we will keep a wrong address. It is mostly 1361 // harmless for locals, but there is no point in keeping these anyway when 1362 // the function wasn't linked. 1363 return (SkipPC || (!InFunctionScope && Tag == dwarf::DW_TAG_variable && 1364 !InDebugMap)) && 1365 !DWARFFormValue(AttrSpec.Form).isFormClass(DWARFFormValue::FC_Block); 1366 } 1367 } 1368 1369 DIE *DWARFLinker::DIECloner::cloneDIE(const DWARFDie &InputDIE, 1370 const DWARFFile &File, CompileUnit &Unit, 1371 OffsetsStringPool &StringPool, 1372 int64_t PCOffset, uint32_t OutOffset, 1373 unsigned Flags, bool IsLittleEndian, 1374 DIE *Die) { 1375 DWARFUnit &U = Unit.getOrigUnit(); 1376 unsigned Idx = U.getDIEIndex(InputDIE); 1377 CompileUnit::DIEInfo &Info = Unit.getInfo(Idx); 1378 1379 // Should the DIE appear in the output? 1380 if (!Unit.getInfo(Idx).Keep) 1381 return nullptr; 1382 1383 uint64_t Offset = InputDIE.getOffset(); 1384 assert(!(Die && Info.Clone) && "Can't supply a DIE and a cloned DIE"); 1385 if (!Die) { 1386 // The DIE might have been already created by a forward reference 1387 // (see cloneDieReferenceAttribute()). 1388 if (!Info.Clone) 1389 Info.Clone = DIE::get(DIEAlloc, dwarf::Tag(InputDIE.getTag())); 1390 Die = Info.Clone; 1391 } 1392 1393 assert(Die->getTag() == InputDIE.getTag()); 1394 Die->setOffset(OutOffset); 1395 if (isODRCanonicalCandidate(InputDIE, Unit) && Info.Ctxt && 1396 (Info.Ctxt->getCanonicalDIEOffset() == 0)) { 1397 if (!Info.Ctxt->hasCanonicalDIE()) 1398 Info.Ctxt->setHasCanonicalDIE(); 1399 // We are about to emit a DIE that is the root of its own valid 1400 // DeclContext tree. Make the current offset the canonical offset 1401 // for this context. 1402 Info.Ctxt->setCanonicalDIEOffset(OutOffset + Unit.getStartOffset()); 1403 } 1404 1405 // Extract and clone every attribute. 1406 DWARFDataExtractor Data = U.getDebugInfoExtractor(); 1407 // Point to the next DIE (generally there is always at least a NULL 1408 // entry after the current one). If this is a lone 1409 // DW_TAG_compile_unit without any children, point to the next unit. 1410 uint64_t NextOffset = (Idx + 1 < U.getNumDIEs()) 1411 ? U.getDIEAtIndex(Idx + 1).getOffset() 1412 : U.getNextUnitOffset(); 1413 AttributesInfo AttrInfo; 1414 1415 // We could copy the data only if we need to apply a relocation to it. After 1416 // testing, it seems there is no performance downside to doing the copy 1417 // unconditionally, and it makes the code simpler. 1418 SmallString<40> DIECopy(Data.getData().substr(Offset, NextOffset - Offset)); 1419 Data = 1420 DWARFDataExtractor(DIECopy, Data.isLittleEndian(), Data.getAddressSize()); 1421 1422 // Modify the copy with relocated addresses. 1423 if (ObjFile.Addresses->applyValidRelocs(DIECopy, Offset, 1424 Data.isLittleEndian())) { 1425 // If we applied relocations, we store the value of high_pc that was 1426 // potentially stored in the input DIE. If high_pc is an address 1427 // (Dwarf version == 2), then it might have been relocated to a 1428 // totally unrelated value (because the end address in the object 1429 // file might be start address of another function which got moved 1430 // independently by the linker). The computation of the actual 1431 // high_pc value is done in cloneAddressAttribute(). 1432 AttrInfo.OrigHighPc = 1433 dwarf::toAddress(InputDIE.find(dwarf::DW_AT_high_pc), 0); 1434 // Also store the low_pc. It might get relocated in an 1435 // inline_subprogram that happens at the beginning of its 1436 // inlining function. 1437 AttrInfo.OrigLowPc = dwarf::toAddress(InputDIE.find(dwarf::DW_AT_low_pc), 1438 std::numeric_limits<uint64_t>::max()); 1439 AttrInfo.OrigCallReturnPc = 1440 dwarf::toAddress(InputDIE.find(dwarf::DW_AT_call_return_pc), 0); 1441 AttrInfo.OrigCallPc = 1442 dwarf::toAddress(InputDIE.find(dwarf::DW_AT_call_pc), 0); 1443 } 1444 1445 // Reset the Offset to 0 as we will be working on the local copy of 1446 // the data. 1447 Offset = 0; 1448 1449 const auto *Abbrev = InputDIE.getAbbreviationDeclarationPtr(); 1450 Offset += getULEB128Size(Abbrev->getCode()); 1451 1452 // We are entering a subprogram. Get and propagate the PCOffset. 1453 if (Die->getTag() == dwarf::DW_TAG_subprogram) 1454 PCOffset = Info.AddrAdjust; 1455 AttrInfo.PCOffset = PCOffset; 1456 1457 if (Abbrev->getTag() == dwarf::DW_TAG_subprogram) { 1458 Flags |= TF_InFunctionScope; 1459 if (!Info.InDebugMap && LLVM_LIKELY(!Update)) 1460 Flags |= TF_SkipPC; 1461 } else if (Abbrev->getTag() == dwarf::DW_TAG_variable) { 1462 // Function-local globals could be in the debug map even when the function 1463 // is not, e.g., inlined functions. 1464 if ((Flags & TF_InFunctionScope) && Info.InDebugMap) 1465 Flags &= ~TF_SkipPC; 1466 } 1467 1468 for (const auto &AttrSpec : Abbrev->attributes()) { 1469 if (LLVM_LIKELY(!Update) && 1470 shouldSkipAttribute(AttrSpec, Die->getTag(), Info.InDebugMap, 1471 Flags & TF_SkipPC, Flags & TF_InFunctionScope)) { 1472 DWARFFormValue::skipValue(AttrSpec.Form, Data, &Offset, 1473 U.getFormParams()); 1474 continue; 1475 } 1476 1477 DWARFFormValue Val(AttrSpec.Form); 1478 uint64_t AttrSize = Offset; 1479 Val.extractValue(Data, &Offset, U.getFormParams(), &U); 1480 AttrSize = Offset - AttrSize; 1481 1482 OutOffset += cloneAttribute(*Die, InputDIE, File, Unit, StringPool, Val, 1483 AttrSpec, AttrSize, AttrInfo, IsLittleEndian); 1484 } 1485 1486 // Look for accelerator entries. 1487 uint16_t Tag = InputDIE.getTag(); 1488 // FIXME: This is slightly wrong. An inline_subroutine without a 1489 // low_pc, but with AT_ranges might be interesting to get into the 1490 // accelerator tables too. For now stick with dsymutil's behavior. 1491 if ((Info.InDebugMap || AttrInfo.HasLowPc || AttrInfo.HasRanges) && 1492 Tag != dwarf::DW_TAG_compile_unit && 1493 getDIENames(InputDIE, AttrInfo, StringPool, 1494 Tag != dwarf::DW_TAG_inlined_subroutine)) { 1495 if (AttrInfo.MangledName && AttrInfo.MangledName != AttrInfo.Name) 1496 Unit.addNameAccelerator(Die, AttrInfo.MangledName, 1497 Tag == dwarf::DW_TAG_inlined_subroutine); 1498 if (AttrInfo.Name) { 1499 if (AttrInfo.NameWithoutTemplate) 1500 Unit.addNameAccelerator(Die, AttrInfo.NameWithoutTemplate, 1501 /* SkipPubSection */ true); 1502 Unit.addNameAccelerator(Die, AttrInfo.Name, 1503 Tag == dwarf::DW_TAG_inlined_subroutine); 1504 } 1505 if (AttrInfo.Name && isObjCSelector(AttrInfo.Name.getString())) 1506 addObjCAccelerator(Unit, Die, AttrInfo.Name, StringPool, 1507 /* SkipPubSection =*/true); 1508 1509 } else if (Tag == dwarf::DW_TAG_namespace) { 1510 if (!AttrInfo.Name) 1511 AttrInfo.Name = StringPool.getEntry("(anonymous namespace)"); 1512 Unit.addNamespaceAccelerator(Die, AttrInfo.Name); 1513 } else if (isTypeTag(Tag) && !AttrInfo.IsDeclaration && 1514 getDIENames(InputDIE, AttrInfo, StringPool) && AttrInfo.Name && 1515 AttrInfo.Name.getString()[0]) { 1516 uint32_t Hash = hashFullyQualifiedName(InputDIE, Unit, File); 1517 uint64_t RuntimeLang = 1518 dwarf::toUnsigned(InputDIE.find(dwarf::DW_AT_APPLE_runtime_class)) 1519 .value_or(0); 1520 bool ObjCClassIsImplementation = 1521 (RuntimeLang == dwarf::DW_LANG_ObjC || 1522 RuntimeLang == dwarf::DW_LANG_ObjC_plus_plus) && 1523 dwarf::toUnsigned(InputDIE.find(dwarf::DW_AT_APPLE_objc_complete_type)) 1524 .value_or(0); 1525 Unit.addTypeAccelerator(Die, AttrInfo.Name, ObjCClassIsImplementation, 1526 Hash); 1527 } 1528 1529 // Determine whether there are any children that we want to keep. 1530 bool HasChildren = false; 1531 for (auto Child : InputDIE.children()) { 1532 unsigned Idx = U.getDIEIndex(Child); 1533 if (Unit.getInfo(Idx).Keep) { 1534 HasChildren = true; 1535 break; 1536 } 1537 } 1538 1539 DIEAbbrev NewAbbrev = Die->generateAbbrev(); 1540 if (HasChildren) 1541 NewAbbrev.setChildrenFlag(dwarf::DW_CHILDREN_yes); 1542 // Assign a permanent abbrev number 1543 Linker.assignAbbrev(NewAbbrev); 1544 Die->setAbbrevNumber(NewAbbrev.getNumber()); 1545 1546 // Add the size of the abbreviation number to the output offset. 1547 OutOffset += getULEB128Size(Die->getAbbrevNumber()); 1548 1549 if (!HasChildren) { 1550 // Update our size. 1551 Die->setSize(OutOffset - Die->getOffset()); 1552 return Die; 1553 } 1554 1555 // Recursively clone children. 1556 for (auto Child : InputDIE.children()) { 1557 if (DIE *Clone = cloneDIE(Child, File, Unit, StringPool, PCOffset, 1558 OutOffset, Flags, IsLittleEndian)) { 1559 Die->addChild(Clone); 1560 OutOffset = Clone->getOffset() + Clone->getSize(); 1561 } 1562 } 1563 1564 // Account for the end of children marker. 1565 OutOffset += sizeof(int8_t); 1566 // Update our size. 1567 Die->setSize(OutOffset - Die->getOffset()); 1568 return Die; 1569 } 1570 1571 /// Patch the input object file relevant debug_ranges entries 1572 /// and emit them in the output file. Update the relevant attributes 1573 /// to point at the new entries. 1574 void DWARFLinker::patchRangesForUnit(const CompileUnit &Unit, 1575 DWARFContext &OrigDwarf, 1576 const DWARFFile &File) const { 1577 DWARFDebugRangeList RangeList; 1578 const auto &FunctionRanges = Unit.getFunctionRanges(); 1579 unsigned AddressSize = Unit.getOrigUnit().getAddressByteSize(); 1580 DWARFDataExtractor RangeExtractor(OrigDwarf.getDWARFObj(), 1581 OrigDwarf.getDWARFObj().getRangesSection(), 1582 OrigDwarf.isLittleEndian(), AddressSize); 1583 Optional<std::pair<AddressRange, int64_t>> CurrRange; 1584 DWARFUnit &OrigUnit = Unit.getOrigUnit(); 1585 auto OrigUnitDie = OrigUnit.getUnitDIE(false); 1586 uint64_t OrigLowPc = 1587 dwarf::toAddress(OrigUnitDie.find(dwarf::DW_AT_low_pc), -1ULL); 1588 // Ranges addresses are based on the unit's low_pc. Compute the 1589 // offset we need to apply to adapt to the new unit's low_pc. 1590 int64_t UnitPcOffset = 0; 1591 if (OrigLowPc != -1ULL) 1592 UnitPcOffset = int64_t(OrigLowPc) - Unit.getLowPc(); 1593 1594 for (const auto &RangeAttribute : Unit.getRangesAttributes()) { 1595 uint64_t Offset = RangeAttribute.get(); 1596 RangeAttribute.set(TheDwarfEmitter->getRangesSectionSize()); 1597 if (Error E = RangeList.extract(RangeExtractor, &Offset)) { 1598 llvm::consumeError(std::move(E)); 1599 reportWarning("invalid range list ignored.", File); 1600 RangeList.clear(); 1601 } 1602 const auto &Entries = RangeList.getEntries(); 1603 if (!Entries.empty()) { 1604 const DWARFDebugRangeList::RangeListEntry &First = Entries.front(); 1605 1606 if (!CurrRange || 1607 !CurrRange->first.contains(First.StartAddress + OrigLowPc)) { 1608 CurrRange = FunctionRanges.getRangeValueThatContains( 1609 First.StartAddress + OrigLowPc); 1610 if (!CurrRange) { 1611 reportWarning("no mapping for range.", File); 1612 continue; 1613 } 1614 } 1615 } 1616 1617 TheDwarfEmitter->emitRangesEntries(UnitPcOffset, OrigLowPc, CurrRange, 1618 Entries, AddressSize); 1619 } 1620 } 1621 1622 /// Generate the debug_aranges entries for \p Unit and if the 1623 /// unit has a DW_AT_ranges attribute, also emit the debug_ranges 1624 /// contribution for this attribute. 1625 /// FIXME: this could actually be done right in patchRangesForUnit, 1626 /// but for the sake of initial bit-for-bit compatibility with legacy 1627 /// dsymutil, we have to do it in a delayed pass. 1628 void DWARFLinker::generateUnitRanges(CompileUnit &Unit) const { 1629 auto Attr = Unit.getUnitRangesAttribute(); 1630 if (Attr) 1631 Attr->set(TheDwarfEmitter->getRangesSectionSize()); 1632 TheDwarfEmitter->emitUnitRangesEntries(Unit, static_cast<bool>(Attr)); 1633 } 1634 1635 /// Insert the new line info sequence \p Seq into the current 1636 /// set of already linked line info \p Rows. 1637 static void insertLineSequence(std::vector<DWARFDebugLine::Row> &Seq, 1638 std::vector<DWARFDebugLine::Row> &Rows) { 1639 if (Seq.empty()) 1640 return; 1641 1642 if (!Rows.empty() && Rows.back().Address < Seq.front().Address) { 1643 llvm::append_range(Rows, Seq); 1644 Seq.clear(); 1645 return; 1646 } 1647 1648 object::SectionedAddress Front = Seq.front().Address; 1649 auto InsertPoint = partition_point( 1650 Rows, [=](const DWARFDebugLine::Row &O) { return O.Address < Front; }); 1651 1652 // FIXME: this only removes the unneeded end_sequence if the 1653 // sequences have been inserted in order. Using a global sort like 1654 // described in patchLineTableForUnit() and delaying the end_sequene 1655 // elimination to emitLineTableForUnit() we can get rid of all of them. 1656 if (InsertPoint != Rows.end() && InsertPoint->Address == Front && 1657 InsertPoint->EndSequence) { 1658 *InsertPoint = Seq.front(); 1659 Rows.insert(InsertPoint + 1, Seq.begin() + 1, Seq.end()); 1660 } else { 1661 Rows.insert(InsertPoint, Seq.begin(), Seq.end()); 1662 } 1663 1664 Seq.clear(); 1665 } 1666 1667 static void patchStmtList(DIE &Die, DIEInteger Offset) { 1668 for (auto &V : Die.values()) 1669 if (V.getAttribute() == dwarf::DW_AT_stmt_list) { 1670 V = DIEValue(V.getAttribute(), V.getForm(), Offset); 1671 return; 1672 } 1673 1674 llvm_unreachable("Didn't find DW_AT_stmt_list in cloned DIE!"); 1675 } 1676 1677 /// Extract the line table for \p Unit from \p OrigDwarf, and 1678 /// recreate a relocated version of these for the address ranges that 1679 /// are present in the binary. 1680 void DWARFLinker::patchLineTableForUnit(CompileUnit &Unit, 1681 DWARFContext &OrigDwarf, 1682 const DWARFFile &File) { 1683 DWARFDie CUDie = Unit.getOrigUnit().getUnitDIE(); 1684 auto StmtList = dwarf::toSectionOffset(CUDie.find(dwarf::DW_AT_stmt_list)); 1685 if (!StmtList) 1686 return; 1687 1688 // Update the cloned DW_AT_stmt_list with the correct debug_line offset. 1689 if (auto *OutputDIE = Unit.getOutputUnitDIE()) 1690 patchStmtList(*OutputDIE, 1691 DIEInteger(TheDwarfEmitter->getLineSectionSize())); 1692 1693 RangesTy &Ranges = File.Addresses->getValidAddressRanges(); 1694 1695 // Parse the original line info for the unit. 1696 DWARFDebugLine::LineTable LineTable; 1697 uint64_t StmtOffset = *StmtList; 1698 DWARFDataExtractor LineExtractor( 1699 OrigDwarf.getDWARFObj(), OrigDwarf.getDWARFObj().getLineSection(), 1700 OrigDwarf.isLittleEndian(), Unit.getOrigUnit().getAddressByteSize()); 1701 if (needToTranslateStrings()) 1702 return TheDwarfEmitter->translateLineTable(LineExtractor, StmtOffset); 1703 1704 if (Error Err = 1705 LineTable.parse(LineExtractor, &StmtOffset, OrigDwarf, 1706 &Unit.getOrigUnit(), OrigDwarf.getWarningHandler())) 1707 OrigDwarf.getWarningHandler()(std::move(Err)); 1708 1709 // This vector is the output line table. 1710 std::vector<DWARFDebugLine::Row> NewRows; 1711 NewRows.reserve(LineTable.Rows.size()); 1712 1713 // Current sequence of rows being extracted, before being inserted 1714 // in NewRows. 1715 std::vector<DWARFDebugLine::Row> Seq; 1716 const auto &FunctionRanges = Unit.getFunctionRanges(); 1717 Optional<std::pair<AddressRange, int64_t>> CurrRange; 1718 1719 // FIXME: This logic is meant to generate exactly the same output as 1720 // Darwin's classic dsymutil. There is a nicer way to implement this 1721 // by simply putting all the relocated line info in NewRows and simply 1722 // sorting NewRows before passing it to emitLineTableForUnit. This 1723 // should be correct as sequences for a function should stay 1724 // together in the sorted output. There are a few corner cases that 1725 // look suspicious though, and that required to implement the logic 1726 // this way. Revisit that once initial validation is finished. 1727 1728 // Iterate over the object file line info and extract the sequences 1729 // that correspond to linked functions. 1730 for (auto &Row : LineTable.Rows) { 1731 // Check whether we stepped out of the range. The range is 1732 // half-open, but consider accept the end address of the range if 1733 // it is marked as end_sequence in the input (because in that 1734 // case, the relocation offset is accurate and that entry won't 1735 // serve as the start of another function). 1736 if (!CurrRange || !CurrRange->first.contains(Row.Address.Address) || 1737 (Row.Address.Address == CurrRange->first.end() && !Row.EndSequence)) { 1738 // We just stepped out of a known range. Insert a end_sequence 1739 // corresponding to the end of the range. 1740 uint64_t StopAddress = 1741 CurrRange ? CurrRange->first.end() + CurrRange->second : -1ULL; 1742 CurrRange = FunctionRanges.getRangeValueThatContains(Row.Address.Address); 1743 if (!CurrRange) { 1744 if (StopAddress != -1ULL) { 1745 // Try harder by looking in the Address ranges map. 1746 // There are corner cases where this finds a 1747 // valid entry. It's unclear if this is right or wrong, but 1748 // for now do as dsymutil. 1749 // FIXME: Understand exactly what cases this addresses and 1750 // potentially remove it along with the Ranges map. 1751 if (Optional<std::pair<AddressRange, int64_t>> Range = 1752 Ranges.getRangeValueThatContains(Row.Address.Address)) 1753 StopAddress = Row.Address.Address + (*Range).second; 1754 } 1755 } 1756 if (StopAddress != -1ULL && !Seq.empty()) { 1757 // Insert end sequence row with the computed end address, but 1758 // the same line as the previous one. 1759 auto NextLine = Seq.back(); 1760 NextLine.Address.Address = StopAddress; 1761 NextLine.EndSequence = 1; 1762 NextLine.PrologueEnd = 0; 1763 NextLine.BasicBlock = 0; 1764 NextLine.EpilogueBegin = 0; 1765 Seq.push_back(NextLine); 1766 insertLineSequence(Seq, NewRows); 1767 } 1768 1769 if (!CurrRange) 1770 continue; 1771 } 1772 1773 // Ignore empty sequences. 1774 if (Row.EndSequence && Seq.empty()) 1775 continue; 1776 1777 // Relocate row address and add it to the current sequence. 1778 Row.Address.Address += CurrRange->second; 1779 Seq.emplace_back(Row); 1780 1781 if (Row.EndSequence) 1782 insertLineSequence(Seq, NewRows); 1783 } 1784 1785 // Finished extracting, now emit the line tables. 1786 // FIXME: LLVM hard-codes its prologue values. We just copy the 1787 // prologue over and that works because we act as both producer and 1788 // consumer. It would be nicer to have a real configurable line 1789 // table emitter. 1790 if (LineTable.Prologue.getVersion() < 2 || 1791 LineTable.Prologue.getVersion() > 5 || 1792 LineTable.Prologue.DefaultIsStmt != DWARF2_LINE_DEFAULT_IS_STMT || 1793 LineTable.Prologue.OpcodeBase > 13) 1794 reportWarning("line table parameters mismatch. Cannot emit.", File); 1795 else { 1796 uint32_t PrologueEnd = *StmtList + 10 + LineTable.Prologue.PrologueLength; 1797 // DWARF v5 has an extra 2 bytes of information before the header_length 1798 // field. 1799 if (LineTable.Prologue.getVersion() == 5) 1800 PrologueEnd += 2; 1801 StringRef LineData = OrigDwarf.getDWARFObj().getLineSection().Data; 1802 MCDwarfLineTableParams Params; 1803 Params.DWARF2LineOpcodeBase = LineTable.Prologue.OpcodeBase; 1804 Params.DWARF2LineBase = LineTable.Prologue.LineBase; 1805 Params.DWARF2LineRange = LineTable.Prologue.LineRange; 1806 TheDwarfEmitter->emitLineTableForUnit( 1807 Params, LineData.slice(*StmtList + 4, PrologueEnd), 1808 LineTable.Prologue.MinInstLength, NewRows, 1809 Unit.getOrigUnit().getAddressByteSize()); 1810 } 1811 } 1812 1813 void DWARFLinker::emitAcceleratorEntriesForUnit(CompileUnit &Unit) { 1814 switch (Options.TheAccelTableKind) { 1815 case DwarfLinkerAccelTableKind::None: 1816 // Nothing to do. 1817 break; 1818 case DwarfLinkerAccelTableKind::Apple: 1819 emitAppleAcceleratorEntriesForUnit(Unit); 1820 break; 1821 case DwarfLinkerAccelTableKind::Dwarf: 1822 emitDwarfAcceleratorEntriesForUnit(Unit); 1823 break; 1824 case DwarfLinkerAccelTableKind::Pub: 1825 emitPubAcceleratorEntriesForUnit(Unit); 1826 break; 1827 case DwarfLinkerAccelTableKind::Default: 1828 llvm_unreachable("The default must be updated to a concrete value."); 1829 break; 1830 } 1831 } 1832 1833 void DWARFLinker::emitAppleAcceleratorEntriesForUnit(CompileUnit &Unit) { 1834 // Add namespaces. 1835 for (const auto &Namespace : Unit.getNamespaces()) 1836 AppleNamespaces.addName(Namespace.Name, 1837 Namespace.Die->getOffset() + Unit.getStartOffset()); 1838 1839 /// Add names. 1840 for (const auto &Pubname : Unit.getPubnames()) 1841 AppleNames.addName(Pubname.Name, 1842 Pubname.Die->getOffset() + Unit.getStartOffset()); 1843 1844 /// Add types. 1845 for (const auto &Pubtype : Unit.getPubtypes()) 1846 AppleTypes.addName( 1847 Pubtype.Name, Pubtype.Die->getOffset() + Unit.getStartOffset(), 1848 Pubtype.Die->getTag(), 1849 Pubtype.ObjcClassImplementation ? dwarf::DW_FLAG_type_implementation 1850 : 0, 1851 Pubtype.QualifiedNameHash); 1852 1853 /// Add ObjC names. 1854 for (const auto &ObjC : Unit.getObjC()) 1855 AppleObjc.addName(ObjC.Name, ObjC.Die->getOffset() + Unit.getStartOffset()); 1856 } 1857 1858 void DWARFLinker::emitDwarfAcceleratorEntriesForUnit(CompileUnit &Unit) { 1859 for (const auto &Namespace : Unit.getNamespaces()) 1860 DebugNames.addName(Namespace.Name, Namespace.Die->getOffset(), 1861 Namespace.Die->getTag(), Unit.getUniqueID()); 1862 for (const auto &Pubname : Unit.getPubnames()) 1863 DebugNames.addName(Pubname.Name, Pubname.Die->getOffset(), 1864 Pubname.Die->getTag(), Unit.getUniqueID()); 1865 for (const auto &Pubtype : Unit.getPubtypes()) 1866 DebugNames.addName(Pubtype.Name, Pubtype.Die->getOffset(), 1867 Pubtype.Die->getTag(), Unit.getUniqueID()); 1868 } 1869 1870 void DWARFLinker::emitPubAcceleratorEntriesForUnit(CompileUnit &Unit) { 1871 TheDwarfEmitter->emitPubNamesForUnit(Unit); 1872 TheDwarfEmitter->emitPubTypesForUnit(Unit); 1873 } 1874 1875 /// Read the frame info stored in the object, and emit the 1876 /// patched frame descriptions for the resulting file. 1877 /// 1878 /// This is actually pretty easy as the data of the CIEs and FDEs can 1879 /// be considered as black boxes and moved as is. The only thing to do 1880 /// is to patch the addresses in the headers. 1881 void DWARFLinker::patchFrameInfoForObject(const DWARFFile &File, 1882 RangesTy &Ranges, 1883 DWARFContext &OrigDwarf, 1884 unsigned AddrSize) { 1885 StringRef FrameData = OrigDwarf.getDWARFObj().getFrameSection().Data; 1886 if (FrameData.empty()) 1887 return; 1888 1889 DataExtractor Data(FrameData, OrigDwarf.isLittleEndian(), 0); 1890 uint64_t InputOffset = 0; 1891 1892 // Store the data of the CIEs defined in this object, keyed by their 1893 // offsets. 1894 DenseMap<uint64_t, StringRef> LocalCIES; 1895 1896 while (Data.isValidOffset(InputOffset)) { 1897 uint64_t EntryOffset = InputOffset; 1898 uint32_t InitialLength = Data.getU32(&InputOffset); 1899 if (InitialLength == 0xFFFFFFFF) 1900 return reportWarning("Dwarf64 bits no supported", File); 1901 1902 uint32_t CIEId = Data.getU32(&InputOffset); 1903 if (CIEId == 0xFFFFFFFF) { 1904 // This is a CIE, store it. 1905 StringRef CIEData = FrameData.substr(EntryOffset, InitialLength + 4); 1906 LocalCIES[EntryOffset] = CIEData; 1907 // The -4 is to account for the CIEId we just read. 1908 InputOffset += InitialLength - 4; 1909 continue; 1910 } 1911 1912 uint32_t Loc = Data.getUnsigned(&InputOffset, AddrSize); 1913 1914 // Some compilers seem to emit frame info that doesn't start at 1915 // the function entry point, thus we can't just lookup the address 1916 // in the debug map. Use the AddressInfo's range map to see if the FDE 1917 // describes something that we can relocate. 1918 Optional<std::pair<AddressRange, int64_t>> Range = 1919 Ranges.getRangeValueThatContains(Loc); 1920 if (!Range) { 1921 // The +4 is to account for the size of the InitialLength field itself. 1922 InputOffset = EntryOffset + InitialLength + 4; 1923 continue; 1924 } 1925 1926 // This is an FDE, and we have a mapping. 1927 // Have we already emitted a corresponding CIE? 1928 StringRef CIEData = LocalCIES[CIEId]; 1929 if (CIEData.empty()) 1930 return reportWarning("Inconsistent debug_frame content. Dropping.", File); 1931 1932 // Look if we already emitted a CIE that corresponds to the 1933 // referenced one (the CIE data is the key of that lookup). 1934 auto IteratorInserted = EmittedCIEs.insert( 1935 std::make_pair(CIEData, TheDwarfEmitter->getFrameSectionSize())); 1936 // If there is no CIE yet for this ID, emit it. 1937 if (IteratorInserted.second) { 1938 LastCIEOffset = TheDwarfEmitter->getFrameSectionSize(); 1939 IteratorInserted.first->getValue() = LastCIEOffset; 1940 TheDwarfEmitter->emitCIE(CIEData); 1941 } 1942 1943 // Emit the FDE with updated address and CIE pointer. 1944 // (4 + AddrSize) is the size of the CIEId + initial_location 1945 // fields that will get reconstructed by emitFDE(). 1946 unsigned FDERemainingBytes = InitialLength - (4 + AddrSize); 1947 TheDwarfEmitter->emitFDE(IteratorInserted.first->getValue(), AddrSize, 1948 Loc + Range->second, 1949 FrameData.substr(InputOffset, FDERemainingBytes)); 1950 InputOffset += FDERemainingBytes; 1951 } 1952 } 1953 1954 uint32_t DWARFLinker::DIECloner::hashFullyQualifiedName(DWARFDie DIE, 1955 CompileUnit &U, 1956 const DWARFFile &File, 1957 int ChildRecurseDepth) { 1958 const char *Name = nullptr; 1959 DWARFUnit *OrigUnit = &U.getOrigUnit(); 1960 CompileUnit *CU = &U; 1961 Optional<DWARFFormValue> Ref; 1962 1963 while (true) { 1964 if (const char *CurrentName = DIE.getName(DINameKind::ShortName)) 1965 Name = CurrentName; 1966 1967 if (!(Ref = DIE.find(dwarf::DW_AT_specification)) && 1968 !(Ref = DIE.find(dwarf::DW_AT_abstract_origin))) 1969 break; 1970 1971 if (!Ref->isFormClass(DWARFFormValue::FC_Reference)) 1972 break; 1973 1974 CompileUnit *RefCU; 1975 if (auto RefDIE = 1976 Linker.resolveDIEReference(File, CompileUnits, *Ref, DIE, RefCU)) { 1977 CU = RefCU; 1978 OrigUnit = &RefCU->getOrigUnit(); 1979 DIE = RefDIE; 1980 } 1981 } 1982 1983 unsigned Idx = OrigUnit->getDIEIndex(DIE); 1984 if (!Name && DIE.getTag() == dwarf::DW_TAG_namespace) 1985 Name = "(anonymous namespace)"; 1986 1987 if (CU->getInfo(Idx).ParentIdx == 0 || 1988 // FIXME: dsymutil-classic compatibility. Ignore modules. 1989 CU->getOrigUnit().getDIEAtIndex(CU->getInfo(Idx).ParentIdx).getTag() == 1990 dwarf::DW_TAG_module) 1991 return djbHash(Name ? Name : "", djbHash(ChildRecurseDepth ? "" : "::")); 1992 1993 DWARFDie Die = OrigUnit->getDIEAtIndex(CU->getInfo(Idx).ParentIdx); 1994 return djbHash( 1995 (Name ? Name : ""), 1996 djbHash((Name ? "::" : ""), 1997 hashFullyQualifiedName(Die, *CU, File, ++ChildRecurseDepth))); 1998 } 1999 2000 static uint64_t getDwoId(const DWARFDie &CUDie, const DWARFUnit &Unit) { 2001 auto DwoId = dwarf::toUnsigned( 2002 CUDie.find({dwarf::DW_AT_dwo_id, dwarf::DW_AT_GNU_dwo_id})); 2003 if (DwoId) 2004 return *DwoId; 2005 return 0; 2006 } 2007 2008 static std::string remapPath(StringRef Path, 2009 const objectPrefixMap &ObjectPrefixMap) { 2010 if (ObjectPrefixMap.empty()) 2011 return Path.str(); 2012 2013 SmallString<256> p = Path; 2014 for (const auto &Entry : ObjectPrefixMap) 2015 if (llvm::sys::path::replace_path_prefix(p, Entry.first, Entry.second)) 2016 break; 2017 return p.str().str(); 2018 } 2019 2020 bool DWARFLinker::registerModuleReference(DWARFDie CUDie, const DWARFUnit &Unit, 2021 const DWARFFile &File, 2022 OffsetsStringPool &StringPool, 2023 DeclContextTree &ODRContexts, 2024 uint64_t ModulesEndOffset, 2025 unsigned &UnitID, bool IsLittleEndian, 2026 unsigned Indent, bool Quiet) { 2027 std::string PCMfile = dwarf::toString( 2028 CUDie.find({dwarf::DW_AT_dwo_name, dwarf::DW_AT_GNU_dwo_name}), ""); 2029 if (PCMfile.empty()) 2030 return false; 2031 if (Options.ObjectPrefixMap) 2032 PCMfile = remapPath(PCMfile, *Options.ObjectPrefixMap); 2033 2034 // Clang module DWARF skeleton CUs abuse this for the path to the module. 2035 uint64_t DwoId = getDwoId(CUDie, Unit); 2036 2037 std::string Name = dwarf::toString(CUDie.find(dwarf::DW_AT_name), ""); 2038 if (Name.empty()) { 2039 if (!Quiet) 2040 reportWarning("Anonymous module skeleton CU for " + PCMfile, File); 2041 return true; 2042 } 2043 2044 if (!Quiet && Options.Verbose) { 2045 outs().indent(Indent); 2046 outs() << "Found clang module reference " << PCMfile; 2047 } 2048 2049 auto Cached = ClangModules.find(PCMfile); 2050 if (Cached != ClangModules.end()) { 2051 // FIXME: Until PR27449 (https://llvm.org/bugs/show_bug.cgi?id=27449) is 2052 // fixed in clang, only warn about DWO_id mismatches in verbose mode. 2053 // ASTFileSignatures will change randomly when a module is rebuilt. 2054 if (!Quiet && Options.Verbose && (Cached->second != DwoId)) 2055 reportWarning(Twine("hash mismatch: this object file was built against a " 2056 "different version of the module ") + 2057 PCMfile, 2058 File); 2059 if (!Quiet && Options.Verbose) 2060 outs() << " [cached].\n"; 2061 return true; 2062 } 2063 if (!Quiet && Options.Verbose) 2064 outs() << " ...\n"; 2065 2066 // Cyclic dependencies are disallowed by Clang, but we still 2067 // shouldn't run into an infinite loop, so mark it as processed now. 2068 ClangModules.insert({PCMfile, DwoId}); 2069 2070 if (Error E = loadClangModule(CUDie, PCMfile, Name, DwoId, File, StringPool, 2071 ODRContexts, ModulesEndOffset, UnitID, 2072 IsLittleEndian, Indent + 2, Quiet)) { 2073 consumeError(std::move(E)); 2074 return false; 2075 } 2076 return true; 2077 } 2078 2079 Error DWARFLinker::loadClangModule( 2080 DWARFDie CUDie, StringRef Filename, StringRef ModuleName, uint64_t DwoId, 2081 const DWARFFile &File, OffsetsStringPool &StringPool, 2082 DeclContextTree &ODRContexts, uint64_t ModulesEndOffset, unsigned &UnitID, 2083 bool IsLittleEndian, unsigned Indent, bool Quiet) { 2084 /// Using a SmallString<0> because loadClangModule() is recursive. 2085 SmallString<0> Path(Options.PrependPath); 2086 if (sys::path::is_relative(Filename)) 2087 resolveRelativeObjectPath(Path, CUDie); 2088 sys::path::append(Path, Filename); 2089 // Don't use the cached binary holder because we have no thread-safety 2090 // guarantee and the lifetime is limited. 2091 2092 if (Options.ObjFileLoader == nullptr) 2093 return Error::success(); 2094 2095 auto ErrOrObj = Options.ObjFileLoader(File.FileName, Path); 2096 if (!ErrOrObj) 2097 return Error::success(); 2098 2099 std::unique_ptr<CompileUnit> Unit; 2100 2101 for (const auto &CU : ErrOrObj->Dwarf->compile_units()) { 2102 updateDwarfVersion(CU->getVersion()); 2103 // Recursively get all modules imported by this one. 2104 auto CUDie = CU->getUnitDIE(false); 2105 if (!CUDie) 2106 continue; 2107 if (!registerModuleReference(CUDie, *CU, File, StringPool, ODRContexts, 2108 ModulesEndOffset, UnitID, IsLittleEndian, 2109 Indent, Quiet)) { 2110 if (Unit) { 2111 std::string Err = 2112 (Filename + 2113 ": Clang modules are expected to have exactly 1 compile unit.\n") 2114 .str(); 2115 reportError(Err, File); 2116 return make_error<StringError>(Err, inconvertibleErrorCode()); 2117 } 2118 // FIXME: Until PR27449 (https://llvm.org/bugs/show_bug.cgi?id=27449) is 2119 // fixed in clang, only warn about DWO_id mismatches in verbose mode. 2120 // ASTFileSignatures will change randomly when a module is rebuilt. 2121 uint64_t PCMDwoId = getDwoId(CUDie, *CU); 2122 if (PCMDwoId != DwoId) { 2123 if (!Quiet && Options.Verbose) 2124 reportWarning( 2125 Twine("hash mismatch: this object file was built against a " 2126 "different version of the module ") + 2127 Filename, 2128 File); 2129 // Update the cache entry with the DwoId of the module loaded from disk. 2130 ClangModules[Filename] = PCMDwoId; 2131 } 2132 2133 // Add this module. 2134 Unit = std::make_unique<CompileUnit>(*CU, UnitID++, !Options.NoODR, 2135 ModuleName); 2136 analyzeContextInfo(CUDie, 0, *Unit, &ODRContexts.getRoot(), ODRContexts, 2137 ModulesEndOffset, Options.ParseableSwiftInterfaces, 2138 [&](const Twine &Warning, const DWARFDie &DIE) { 2139 reportWarning(Warning, File, &DIE); 2140 }); 2141 // Keep everything. 2142 Unit->markEverythingAsKept(); 2143 } 2144 } 2145 assert(Unit && "CompileUnit is not set!"); 2146 if (!Unit->getOrigUnit().getUnitDIE().hasChildren()) 2147 return Error::success(); 2148 if (!Quiet && Options.Verbose) { 2149 outs().indent(Indent); 2150 outs() << "cloning .debug_info from " << Filename << "\n"; 2151 } 2152 2153 UnitListTy CompileUnits; 2154 CompileUnits.push_back(std::move(Unit)); 2155 assert(TheDwarfEmitter); 2156 DIECloner(*this, TheDwarfEmitter, *ErrOrObj, DIEAlloc, CompileUnits, 2157 Options.Update) 2158 .cloneAllCompileUnits(*(ErrOrObj->Dwarf), File, StringPool, 2159 IsLittleEndian); 2160 return Error::success(); 2161 } 2162 2163 uint64_t DWARFLinker::DIECloner::cloneAllCompileUnits( 2164 DWARFContext &DwarfContext, const DWARFFile &File, 2165 OffsetsStringPool &StringPool, bool IsLittleEndian) { 2166 uint64_t OutputDebugInfoSize = 2167 Linker.Options.NoOutput ? 0 : Emitter->getDebugInfoSectionSize(); 2168 const uint64_t StartOutputDebugInfoSize = OutputDebugInfoSize; 2169 2170 for (auto &CurrentUnit : CompileUnits) { 2171 const uint16_t DwarfVersion = CurrentUnit->getOrigUnit().getVersion(); 2172 const uint32_t UnitHeaderSize = DwarfVersion >= 5 ? 12 : 11; 2173 auto InputDIE = CurrentUnit->getOrigUnit().getUnitDIE(); 2174 CurrentUnit->setStartOffset(OutputDebugInfoSize); 2175 if (!InputDIE) { 2176 OutputDebugInfoSize = CurrentUnit->computeNextUnitOffset(DwarfVersion); 2177 continue; 2178 } 2179 if (CurrentUnit->getInfo(0).Keep) { 2180 // Clone the InputDIE into your Unit DIE in our compile unit since it 2181 // already has a DIE inside of it. 2182 CurrentUnit->createOutputDIE(); 2183 cloneDIE(InputDIE, File, *CurrentUnit, StringPool, 0 /* PC offset */, 2184 UnitHeaderSize, 0, IsLittleEndian, 2185 CurrentUnit->getOutputUnitDIE()); 2186 } 2187 2188 OutputDebugInfoSize = CurrentUnit->computeNextUnitOffset(DwarfVersion); 2189 2190 if (!Linker.Options.NoOutput) { 2191 assert(Emitter); 2192 2193 if (LLVM_LIKELY(!Linker.Options.Update) || 2194 Linker.needToTranslateStrings()) 2195 Linker.patchLineTableForUnit(*CurrentUnit, DwarfContext, File); 2196 2197 Linker.emitAcceleratorEntriesForUnit(*CurrentUnit); 2198 2199 if (LLVM_UNLIKELY(Linker.Options.Update)) 2200 continue; 2201 2202 Linker.patchRangesForUnit(*CurrentUnit, DwarfContext, File); 2203 auto ProcessExpr = [&](StringRef Bytes, 2204 SmallVectorImpl<uint8_t> &Buffer) { 2205 DWARFUnit &OrigUnit = CurrentUnit->getOrigUnit(); 2206 DataExtractor Data(Bytes, IsLittleEndian, 2207 OrigUnit.getAddressByteSize()); 2208 cloneExpression(Data, 2209 DWARFExpression(Data, OrigUnit.getAddressByteSize(), 2210 OrigUnit.getFormParams().Format), 2211 File, *CurrentUnit, Buffer); 2212 }; 2213 Emitter->emitLocationsForUnit(*CurrentUnit, DwarfContext, ProcessExpr); 2214 } 2215 } 2216 2217 if (!Linker.Options.NoOutput) { 2218 assert(Emitter); 2219 // Emit all the compile unit's debug information. 2220 for (auto &CurrentUnit : CompileUnits) { 2221 if (LLVM_LIKELY(!Linker.Options.Update)) 2222 Linker.generateUnitRanges(*CurrentUnit); 2223 2224 CurrentUnit->fixupForwardReferences(); 2225 2226 if (!CurrentUnit->getOutputUnitDIE()) 2227 continue; 2228 2229 unsigned DwarfVersion = CurrentUnit->getOrigUnit().getVersion(); 2230 2231 assert(Emitter->getDebugInfoSectionSize() == 2232 CurrentUnit->getStartOffset()); 2233 Emitter->emitCompileUnitHeader(*CurrentUnit, DwarfVersion); 2234 Emitter->emitDIE(*CurrentUnit->getOutputUnitDIE()); 2235 assert(Emitter->getDebugInfoSectionSize() == 2236 CurrentUnit->computeNextUnitOffset(DwarfVersion)); 2237 } 2238 } 2239 2240 return OutputDebugInfoSize - StartOutputDebugInfoSize; 2241 } 2242 2243 void DWARFLinker::updateAccelKind(DWARFContext &Dwarf) { 2244 if (Options.TheAccelTableKind != DwarfLinkerAccelTableKind::Default) 2245 return; 2246 2247 auto &DwarfObj = Dwarf.getDWARFObj(); 2248 2249 if (!AtLeastOneDwarfAccelTable && 2250 (!DwarfObj.getAppleNamesSection().Data.empty() || 2251 !DwarfObj.getAppleTypesSection().Data.empty() || 2252 !DwarfObj.getAppleNamespacesSection().Data.empty() || 2253 !DwarfObj.getAppleObjCSection().Data.empty())) { 2254 AtLeastOneAppleAccelTable = true; 2255 } 2256 2257 if (!AtLeastOneDwarfAccelTable && !DwarfObj.getNamesSection().Data.empty()) { 2258 AtLeastOneDwarfAccelTable = true; 2259 } 2260 } 2261 2262 bool DWARFLinker::emitPaperTrailWarnings(const DWARFFile &File, 2263 OffsetsStringPool &StringPool) { 2264 2265 if (File.Warnings.empty()) 2266 return false; 2267 2268 DIE *CUDie = DIE::get(DIEAlloc, dwarf::DW_TAG_compile_unit); 2269 CUDie->setOffset(11); 2270 StringRef Producer; 2271 StringRef WarningHeader; 2272 2273 switch (DwarfLinkerClientID) { 2274 case DwarfLinkerClient::Dsymutil: 2275 Producer = StringPool.internString("dsymutil"); 2276 WarningHeader = "dsymutil_warning"; 2277 break; 2278 2279 default: 2280 Producer = StringPool.internString("dwarfopt"); 2281 WarningHeader = "dwarfopt_warning"; 2282 break; 2283 } 2284 2285 StringRef FileName = StringPool.internString(File.FileName); 2286 CUDie->addValue(DIEAlloc, dwarf::DW_AT_producer, dwarf::DW_FORM_strp, 2287 DIEInteger(StringPool.getStringOffset(Producer))); 2288 DIEBlock *String = new (DIEAlloc) DIEBlock(); 2289 DIEBlocks.push_back(String); 2290 for (auto &C : FileName) 2291 String->addValue(DIEAlloc, dwarf::Attribute(0), dwarf::DW_FORM_data1, 2292 DIEInteger(C)); 2293 String->addValue(DIEAlloc, dwarf::Attribute(0), dwarf::DW_FORM_data1, 2294 DIEInteger(0)); 2295 2296 CUDie->addValue(DIEAlloc, dwarf::DW_AT_name, dwarf::DW_FORM_string, String); 2297 for (const auto &Warning : File.Warnings) { 2298 DIE &ConstDie = CUDie->addChild(DIE::get(DIEAlloc, dwarf::DW_TAG_constant)); 2299 ConstDie.addValue(DIEAlloc, dwarf::DW_AT_name, dwarf::DW_FORM_strp, 2300 DIEInteger(StringPool.getStringOffset(WarningHeader))); 2301 ConstDie.addValue(DIEAlloc, dwarf::DW_AT_artificial, dwarf::DW_FORM_flag, 2302 DIEInteger(1)); 2303 ConstDie.addValue(DIEAlloc, dwarf::DW_AT_const_value, dwarf::DW_FORM_strp, 2304 DIEInteger(StringPool.getStringOffset(Warning))); 2305 } 2306 unsigned Size = 4 /* FORM_strp */ + FileName.size() + 1 + 2307 File.Warnings.size() * (4 + 1 + 4) + 1 /* End of children */; 2308 DIEAbbrev Abbrev = CUDie->generateAbbrev(); 2309 assignAbbrev(Abbrev); 2310 CUDie->setAbbrevNumber(Abbrev.getNumber()); 2311 Size += getULEB128Size(Abbrev.getNumber()); 2312 // Abbreviation ordering needed for classic compatibility. 2313 for (auto &Child : CUDie->children()) { 2314 Abbrev = Child.generateAbbrev(); 2315 assignAbbrev(Abbrev); 2316 Child.setAbbrevNumber(Abbrev.getNumber()); 2317 Size += getULEB128Size(Abbrev.getNumber()); 2318 } 2319 CUDie->setSize(Size); 2320 TheDwarfEmitter->emitPaperTrailWarningsDie(*CUDie); 2321 2322 return true; 2323 } 2324 2325 void DWARFLinker::copyInvariantDebugSection(DWARFContext &Dwarf) { 2326 if (!needToTranslateStrings()) 2327 TheDwarfEmitter->emitSectionContents( 2328 Dwarf.getDWARFObj().getLineSection().Data, "debug_line"); 2329 TheDwarfEmitter->emitSectionContents(Dwarf.getDWARFObj().getLocSection().Data, 2330 "debug_loc"); 2331 TheDwarfEmitter->emitSectionContents( 2332 Dwarf.getDWARFObj().getRangesSection().Data, "debug_ranges"); 2333 TheDwarfEmitter->emitSectionContents( 2334 Dwarf.getDWARFObj().getFrameSection().Data, "debug_frame"); 2335 TheDwarfEmitter->emitSectionContents(Dwarf.getDWARFObj().getArangesSection(), 2336 "debug_aranges"); 2337 } 2338 2339 void DWARFLinker::addObjectFile(DWARFFile &File) { 2340 ObjectContexts.emplace_back(LinkContext(File)); 2341 2342 if (ObjectContexts.back().File.Dwarf) 2343 updateAccelKind(*ObjectContexts.back().File.Dwarf); 2344 } 2345 2346 bool DWARFLinker::link() { 2347 assert(Options.NoOutput || TheDwarfEmitter); 2348 2349 // A unique ID that identifies each compile unit. 2350 unsigned UnitID = 0; 2351 2352 // First populate the data structure we need for each iteration of the 2353 // parallel loop. 2354 unsigned NumObjects = ObjectContexts.size(); 2355 2356 // This Dwarf string pool which is used for emission. It must be used 2357 // serially as the order of calling getStringOffset matters for 2358 // reproducibility. 2359 OffsetsStringPool OffsetsStringPool(StringsTranslator, true); 2360 2361 // ODR Contexts for the optimize. 2362 DeclContextTree ODRContexts; 2363 2364 // If we haven't decided on an accelerator table kind yet, we base ourselves 2365 // on the DWARF we have seen so far. At this point we haven't pulled in debug 2366 // information from modules yet, so it is technically possible that they 2367 // would affect the decision. However, as they're built with the same 2368 // compiler and flags, it is safe to assume that they will follow the 2369 // decision made here. 2370 if (Options.TheAccelTableKind == DwarfLinkerAccelTableKind::Default) { 2371 if (AtLeastOneDwarfAccelTable && !AtLeastOneAppleAccelTable) 2372 Options.TheAccelTableKind = DwarfLinkerAccelTableKind::Dwarf; 2373 else 2374 Options.TheAccelTableKind = DwarfLinkerAccelTableKind::Apple; 2375 } 2376 2377 for (LinkContext &OptContext : ObjectContexts) { 2378 if (Options.Verbose) { 2379 if (DwarfLinkerClientID == DwarfLinkerClient::Dsymutil) 2380 outs() << "DEBUG MAP OBJECT: " << OptContext.File.FileName << "\n"; 2381 else 2382 outs() << "OBJECT FILE: " << OptContext.File.FileName << "\n"; 2383 } 2384 2385 if (emitPaperTrailWarnings(OptContext.File, OffsetsStringPool)) 2386 continue; 2387 2388 if (!OptContext.File.Dwarf) 2389 continue; 2390 2391 if (Options.VerifyInputDWARF) 2392 verify(OptContext.File); 2393 2394 // Look for relocations that correspond to address map entries. 2395 2396 // there was findvalidrelocations previously ... probably we need to gather 2397 // info here 2398 if (LLVM_LIKELY(!Options.Update) && 2399 !OptContext.File.Addresses->hasValidRelocs()) { 2400 if (Options.Verbose) 2401 outs() << "No valid relocations found. Skipping.\n"; 2402 2403 // Set "Skip" flag as a signal to other loops that we should not 2404 // process this iteration. 2405 OptContext.Skip = true; 2406 continue; 2407 } 2408 2409 // Setup access to the debug info. 2410 if (!OptContext.File.Dwarf) 2411 continue; 2412 2413 // In a first phase, just read in the debug info and load all clang modules. 2414 OptContext.CompileUnits.reserve( 2415 OptContext.File.Dwarf->getNumCompileUnits()); 2416 2417 for (const auto &CU : OptContext.File.Dwarf->compile_units()) { 2418 updateDwarfVersion(CU->getVersion()); 2419 auto CUDie = CU->getUnitDIE(false); 2420 if (Options.Verbose) { 2421 outs() << "Input compilation unit:"; 2422 DIDumpOptions DumpOpts; 2423 DumpOpts.ChildRecurseDepth = 0; 2424 DumpOpts.Verbose = Options.Verbose; 2425 CUDie.dump(outs(), 0, DumpOpts); 2426 } 2427 if (CUDie && !LLVM_UNLIKELY(Options.Update)) 2428 registerModuleReference(CUDie, *CU, OptContext.File, OffsetsStringPool, 2429 ODRContexts, 0, UnitID, 2430 OptContext.File.Dwarf->isLittleEndian()); 2431 } 2432 } 2433 2434 // If we haven't seen any CUs, pick an arbitrary valid Dwarf version anyway. 2435 if (MaxDwarfVersion == 0) 2436 MaxDwarfVersion = 3; 2437 2438 // At this point we know how much data we have emitted. We use this value to 2439 // compare canonical DIE offsets in analyzeContextInfo to see if a definition 2440 // is already emitted, without being affected by canonical die offsets set 2441 // later. This prevents undeterminism when analyze and clone execute 2442 // concurrently, as clone set the canonical DIE offset and analyze reads it. 2443 const uint64_t ModulesEndOffset = 2444 Options.NoOutput ? 0 : TheDwarfEmitter->getDebugInfoSectionSize(); 2445 2446 // These variables manage the list of processed object files. 2447 // The mutex and condition variable are to ensure that this is thread safe. 2448 std::mutex ProcessedFilesMutex; 2449 std::condition_variable ProcessedFilesConditionVariable; 2450 BitVector ProcessedFiles(NumObjects, false); 2451 2452 // Analyzing the context info is particularly expensive so it is executed in 2453 // parallel with emitting the previous compile unit. 2454 auto AnalyzeLambda = [&](size_t I) { 2455 auto &Context = ObjectContexts[I]; 2456 2457 if (Context.Skip || !Context.File.Dwarf) 2458 return; 2459 2460 for (const auto &CU : Context.File.Dwarf->compile_units()) { 2461 updateDwarfVersion(CU->getVersion()); 2462 // The !registerModuleReference() condition effectively skips 2463 // over fully resolved skeleton units. This second pass of 2464 // registerModuleReferences doesn't do any new work, but it 2465 // will collect top-level errors, which are suppressed. Module 2466 // warnings were already displayed in the first iteration. 2467 bool Quiet = true; 2468 auto CUDie = CU->getUnitDIE(false); 2469 if (!CUDie || LLVM_UNLIKELY(Options.Update) || 2470 !registerModuleReference(CUDie, *CU, Context.File, OffsetsStringPool, 2471 ODRContexts, ModulesEndOffset, UnitID, 2472 Quiet)) { 2473 Context.CompileUnits.push_back(std::make_unique<CompileUnit>( 2474 *CU, UnitID++, !Options.NoODR && !Options.Update, "")); 2475 } 2476 } 2477 2478 // Now build the DIE parent links that we will use during the next phase. 2479 for (auto &CurrentUnit : Context.CompileUnits) { 2480 auto CUDie = CurrentUnit->getOrigUnit().getUnitDIE(); 2481 if (!CUDie) 2482 continue; 2483 analyzeContextInfo(CurrentUnit->getOrigUnit().getUnitDIE(), 0, 2484 *CurrentUnit, &ODRContexts.getRoot(), ODRContexts, 2485 ModulesEndOffset, Options.ParseableSwiftInterfaces, 2486 [&](const Twine &Warning, const DWARFDie &DIE) { 2487 reportWarning(Warning, Context.File, &DIE); 2488 }); 2489 } 2490 }; 2491 2492 // For each object file map how many bytes were emitted. 2493 StringMap<DebugInfoSize> SizeByObject; 2494 2495 // And then the remaining work in serial again. 2496 // Note, although this loop runs in serial, it can run in parallel with 2497 // the analyzeContextInfo loop so long as we process files with indices >= 2498 // than those processed by analyzeContextInfo. 2499 auto CloneLambda = [&](size_t I) { 2500 auto &OptContext = ObjectContexts[I]; 2501 if (OptContext.Skip || !OptContext.File.Dwarf) 2502 return; 2503 2504 // Then mark all the DIEs that need to be present in the generated output 2505 // and collect some information about them. 2506 // Note that this loop can not be merged with the previous one because 2507 // cross-cu references require the ParentIdx to be setup for every CU in 2508 // the object file before calling this. 2509 if (LLVM_UNLIKELY(Options.Update)) { 2510 for (auto &CurrentUnit : OptContext.CompileUnits) 2511 CurrentUnit->markEverythingAsKept(); 2512 copyInvariantDebugSection(*OptContext.File.Dwarf); 2513 } else { 2514 for (auto &CurrentUnit : OptContext.CompileUnits) 2515 lookForDIEsToKeep(*OptContext.File.Addresses, 2516 OptContext.File.Addresses->getValidAddressRanges(), 2517 OptContext.CompileUnits, 2518 CurrentUnit->getOrigUnit().getUnitDIE(), 2519 OptContext.File, *CurrentUnit, 0); 2520 } 2521 2522 // The calls to applyValidRelocs inside cloneDIE will walk the reloc 2523 // array again (in the same way findValidRelocsInDebugInfo() did). We 2524 // need to reset the NextValidReloc index to the beginning. 2525 if (OptContext.File.Addresses->hasValidRelocs() || 2526 LLVM_UNLIKELY(Options.Update)) { 2527 SizeByObject[OptContext.File.FileName].Input = 2528 getDebugInfoSize(*OptContext.File.Dwarf); 2529 SizeByObject[OptContext.File.FileName].Output = 2530 DIECloner(*this, TheDwarfEmitter, OptContext.File, DIEAlloc, 2531 OptContext.CompileUnits, Options.Update) 2532 .cloneAllCompileUnits(*OptContext.File.Dwarf, OptContext.File, 2533 OffsetsStringPool, 2534 OptContext.File.Dwarf->isLittleEndian()); 2535 } 2536 if (!Options.NoOutput && !OptContext.CompileUnits.empty() && 2537 LLVM_LIKELY(!Options.Update)) 2538 patchFrameInfoForObject( 2539 OptContext.File, OptContext.File.Addresses->getValidAddressRanges(), 2540 *OptContext.File.Dwarf, 2541 OptContext.CompileUnits[0]->getOrigUnit().getAddressByteSize()); 2542 2543 // Clean-up before starting working on the next object. 2544 cleanupAuxiliarryData(OptContext); 2545 }; 2546 2547 auto EmitLambda = [&]() { 2548 // Emit everything that's global. 2549 if (!Options.NoOutput) { 2550 TheDwarfEmitter->emitAbbrevs(Abbreviations, MaxDwarfVersion); 2551 TheDwarfEmitter->emitStrings(OffsetsStringPool); 2552 switch (Options.TheAccelTableKind) { 2553 case DwarfLinkerAccelTableKind::None: 2554 // Nothing to do. 2555 break; 2556 case DwarfLinkerAccelTableKind::Apple: 2557 TheDwarfEmitter->emitAppleNames(AppleNames); 2558 TheDwarfEmitter->emitAppleNamespaces(AppleNamespaces); 2559 TheDwarfEmitter->emitAppleTypes(AppleTypes); 2560 TheDwarfEmitter->emitAppleObjc(AppleObjc); 2561 break; 2562 case DwarfLinkerAccelTableKind::Dwarf: 2563 TheDwarfEmitter->emitDebugNames(DebugNames); 2564 break; 2565 case DwarfLinkerAccelTableKind::Pub: 2566 // Already emitted by emitPubAcceleratorEntriesForUnit. 2567 break; 2568 case DwarfLinkerAccelTableKind::Default: 2569 llvm_unreachable("Default should have already been resolved."); 2570 break; 2571 } 2572 } 2573 }; 2574 2575 auto AnalyzeAll = [&]() { 2576 for (unsigned I = 0, E = NumObjects; I != E; ++I) { 2577 AnalyzeLambda(I); 2578 2579 std::unique_lock<std::mutex> LockGuard(ProcessedFilesMutex); 2580 ProcessedFiles.set(I); 2581 ProcessedFilesConditionVariable.notify_one(); 2582 } 2583 }; 2584 2585 auto CloneAll = [&]() { 2586 for (unsigned I = 0, E = NumObjects; I != E; ++I) { 2587 { 2588 std::unique_lock<std::mutex> LockGuard(ProcessedFilesMutex); 2589 if (!ProcessedFiles[I]) { 2590 ProcessedFilesConditionVariable.wait( 2591 LockGuard, [&]() { return ProcessedFiles[I]; }); 2592 } 2593 } 2594 2595 CloneLambda(I); 2596 } 2597 EmitLambda(); 2598 }; 2599 2600 // To limit memory usage in the single threaded case, analyze and clone are 2601 // run sequentially so the OptContext is freed after processing each object 2602 // in endDebugObject. 2603 if (Options.Threads == 1) { 2604 for (unsigned I = 0, E = NumObjects; I != E; ++I) { 2605 AnalyzeLambda(I); 2606 CloneLambda(I); 2607 } 2608 EmitLambda(); 2609 } else { 2610 ThreadPool Pool(hardware_concurrency(2)); 2611 Pool.async(AnalyzeAll); 2612 Pool.async(CloneAll); 2613 Pool.wait(); 2614 } 2615 2616 if (Options.Statistics) { 2617 // Create a vector sorted in descending order by output size. 2618 std::vector<std::pair<StringRef, DebugInfoSize>> Sorted; 2619 for (auto &E : SizeByObject) 2620 Sorted.emplace_back(E.first(), E.second); 2621 llvm::sort(Sorted, [](auto &LHS, auto &RHS) { 2622 return LHS.second.Output > RHS.second.Output; 2623 }); 2624 2625 auto ComputePercentange = [](int64_t Input, int64_t Output) -> float { 2626 const float Difference = Output - Input; 2627 const float Sum = Input + Output; 2628 if (Sum == 0) 2629 return 0; 2630 return (Difference / (Sum / 2)); 2631 }; 2632 2633 int64_t InputTotal = 0; 2634 int64_t OutputTotal = 0; 2635 const char *FormatStr = "{0,-45} {1,10}b {2,10}b {3,8:P}\n"; 2636 2637 // Print header. 2638 outs() << ".debug_info section size (in bytes)\n"; 2639 outs() << "----------------------------------------------------------------" 2640 "---------------\n"; 2641 outs() << "Filename Object " 2642 " dSYM Change\n"; 2643 outs() << "----------------------------------------------------------------" 2644 "---------------\n"; 2645 2646 // Print body. 2647 for (auto &E : Sorted) { 2648 InputTotal += E.second.Input; 2649 OutputTotal += E.second.Output; 2650 llvm::outs() << formatv( 2651 FormatStr, sys::path::filename(E.first).take_back(45), E.second.Input, 2652 E.second.Output, ComputePercentange(E.second.Input, E.second.Output)); 2653 } 2654 // Print total and footer. 2655 outs() << "----------------------------------------------------------------" 2656 "---------------\n"; 2657 llvm::outs() << formatv(FormatStr, "Total", InputTotal, OutputTotal, 2658 ComputePercentange(InputTotal, OutputTotal)); 2659 outs() << "----------------------------------------------------------------" 2660 "---------------\n\n"; 2661 } 2662 2663 return true; 2664 } 2665 2666 bool DWARFLinker::verify(const DWARFFile &File) { 2667 assert(File.Dwarf); 2668 2669 DIDumpOptions DumpOpts; 2670 if (!File.Dwarf->verify(llvm::outs(), DumpOpts.noImplicitRecursion())) { 2671 reportWarning("input verification failed", File); 2672 return false; 2673 } 2674 return true; 2675 } 2676 2677 } // namespace llvm 2678