1 //===--- FrontendActions.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 "clang/Frontend/FrontendActions.h" 10 #include "clang/AST/ASTConsumer.h" 11 #include "clang/AST/Decl.h" 12 #include "clang/Basic/FileManager.h" 13 #include "clang/Basic/LangStandard.h" 14 #include "clang/Basic/Module.h" 15 #include "clang/Basic/TargetInfo.h" 16 #include "clang/Frontend/ASTConsumers.h" 17 #include "clang/Frontend/CompilerInstance.h" 18 #include "clang/Frontend/FrontendDiagnostic.h" 19 #include "clang/Frontend/MultiplexConsumer.h" 20 #include "clang/Frontend/Utils.h" 21 #include "clang/Lex/DependencyDirectivesScanner.h" 22 #include "clang/Lex/HeaderSearch.h" 23 #include "clang/Lex/Preprocessor.h" 24 #include "clang/Lex/PreprocessorOptions.h" 25 #include "clang/Sema/TemplateInstCallback.h" 26 #include "clang/Serialization/ASTReader.h" 27 #include "clang/Serialization/ASTWriter.h" 28 #include "clang/Serialization/ModuleFile.h" 29 #include "llvm/Support/ErrorHandling.h" 30 #include "llvm/Support/FileSystem.h" 31 #include "llvm/Support/MemoryBuffer.h" 32 #include "llvm/Support/Path.h" 33 #include "llvm/Support/YAMLTraits.h" 34 #include "llvm/Support/raw_ostream.h" 35 #include <memory> 36 #include <optional> 37 #include <system_error> 38 39 using namespace clang; 40 41 namespace { 42 CodeCompleteConsumer *GetCodeCompletionConsumer(CompilerInstance &CI) { 43 return CI.hasCodeCompletionConsumer() ? &CI.getCodeCompletionConsumer() 44 : nullptr; 45 } 46 47 void EnsureSemaIsCreated(CompilerInstance &CI, FrontendAction &Action) { 48 if (Action.hasCodeCompletionSupport() && 49 !CI.getFrontendOpts().CodeCompletionAt.FileName.empty()) 50 CI.createCodeCompletionConsumer(); 51 52 if (!CI.hasSema()) 53 CI.createSema(Action.getTranslationUnitKind(), 54 GetCodeCompletionConsumer(CI)); 55 } 56 } // namespace 57 58 //===----------------------------------------------------------------------===// 59 // Custom Actions 60 //===----------------------------------------------------------------------===// 61 62 std::unique_ptr<ASTConsumer> 63 InitOnlyAction::CreateASTConsumer(CompilerInstance &CI, StringRef InFile) { 64 return std::make_unique<ASTConsumer>(); 65 } 66 67 void InitOnlyAction::ExecuteAction() { 68 } 69 70 // Basically PreprocessOnlyAction::ExecuteAction. 71 void ReadPCHAndPreprocessAction::ExecuteAction() { 72 Preprocessor &PP = getCompilerInstance().getPreprocessor(); 73 74 // Ignore unknown pragmas. 75 PP.IgnorePragmas(); 76 77 Token Tok; 78 // Start parsing the specified input file. 79 PP.EnterMainSourceFile(); 80 do { 81 PP.Lex(Tok); 82 } while (Tok.isNot(tok::eof)); 83 } 84 85 std::unique_ptr<ASTConsumer> 86 ReadPCHAndPreprocessAction::CreateASTConsumer(CompilerInstance &CI, 87 StringRef InFile) { 88 return std::make_unique<ASTConsumer>(); 89 } 90 91 //===----------------------------------------------------------------------===// 92 // AST Consumer Actions 93 //===----------------------------------------------------------------------===// 94 95 std::unique_ptr<ASTConsumer> 96 ASTPrintAction::CreateASTConsumer(CompilerInstance &CI, StringRef InFile) { 97 if (std::unique_ptr<raw_ostream> OS = 98 CI.createDefaultOutputFile(false, InFile)) 99 return CreateASTPrinter(std::move(OS), CI.getFrontendOpts().ASTDumpFilter); 100 return nullptr; 101 } 102 103 std::unique_ptr<ASTConsumer> 104 ASTDumpAction::CreateASTConsumer(CompilerInstance &CI, StringRef InFile) { 105 const FrontendOptions &Opts = CI.getFrontendOpts(); 106 return CreateASTDumper(nullptr /*Dump to stdout.*/, Opts.ASTDumpFilter, 107 Opts.ASTDumpDecls, Opts.ASTDumpAll, 108 Opts.ASTDumpLookups, Opts.ASTDumpDeclTypes, 109 Opts.ASTDumpFormat); 110 } 111 112 std::unique_ptr<ASTConsumer> 113 ASTDeclListAction::CreateASTConsumer(CompilerInstance &CI, StringRef InFile) { 114 return CreateASTDeclNodeLister(); 115 } 116 117 std::unique_ptr<ASTConsumer> 118 ASTViewAction::CreateASTConsumer(CompilerInstance &CI, StringRef InFile) { 119 return CreateASTViewer(); 120 } 121 122 std::unique_ptr<ASTConsumer> 123 GeneratePCHAction::CreateASTConsumer(CompilerInstance &CI, StringRef InFile) { 124 std::string Sysroot; 125 if (!ComputeASTConsumerArguments(CI, /*ref*/ Sysroot)) 126 return nullptr; 127 128 std::string OutputFile; 129 std::unique_ptr<raw_pwrite_stream> OS = 130 CreateOutputFile(CI, InFile, /*ref*/ OutputFile); 131 if (!OS) 132 return nullptr; 133 134 if (!CI.getFrontendOpts().RelocatablePCH) 135 Sysroot.clear(); 136 137 const auto &FrontendOpts = CI.getFrontendOpts(); 138 auto Buffer = std::make_shared<PCHBuffer>(); 139 std::vector<std::unique_ptr<ASTConsumer>> Consumers; 140 Consumers.push_back(std::make_unique<PCHGenerator>( 141 CI.getPreprocessor(), CI.getModuleCache(), OutputFile, Sysroot, Buffer, 142 FrontendOpts.ModuleFileExtensions, 143 CI.getPreprocessorOpts().AllowPCHWithCompilerErrors, 144 FrontendOpts.IncludeTimestamps, FrontendOpts.BuildingImplicitModule, 145 +CI.getLangOpts().CacheGeneratedPCH)); 146 Consumers.push_back(CI.getPCHContainerWriter().CreatePCHContainerGenerator( 147 CI, std::string(InFile), OutputFile, std::move(OS), Buffer)); 148 149 return std::make_unique<MultiplexConsumer>(std::move(Consumers)); 150 } 151 152 bool GeneratePCHAction::ComputeASTConsumerArguments(CompilerInstance &CI, 153 std::string &Sysroot) { 154 Sysroot = CI.getHeaderSearchOpts().Sysroot; 155 if (CI.getFrontendOpts().RelocatablePCH && Sysroot.empty()) { 156 CI.getDiagnostics().Report(diag::err_relocatable_without_isysroot); 157 return false; 158 } 159 160 return true; 161 } 162 163 std::unique_ptr<llvm::raw_pwrite_stream> 164 GeneratePCHAction::CreateOutputFile(CompilerInstance &CI, StringRef InFile, 165 std::string &OutputFile) { 166 // Because this is exposed via libclang we must disable RemoveFileOnSignal. 167 std::unique_ptr<raw_pwrite_stream> OS = CI.createDefaultOutputFile( 168 /*Binary=*/true, InFile, /*Extension=*/"", /*RemoveFileOnSignal=*/false); 169 if (!OS) 170 return nullptr; 171 172 OutputFile = CI.getFrontendOpts().OutputFile; 173 return OS; 174 } 175 176 bool GeneratePCHAction::shouldEraseOutputFiles() { 177 if (getCompilerInstance().getPreprocessorOpts().AllowPCHWithCompilerErrors) 178 return false; 179 return ASTFrontendAction::shouldEraseOutputFiles(); 180 } 181 182 bool GeneratePCHAction::BeginSourceFileAction(CompilerInstance &CI) { 183 CI.getLangOpts().CompilingPCH = true; 184 return true; 185 } 186 187 std::vector<std::unique_ptr<ASTConsumer>> 188 GenerateModuleAction::CreateMultiplexConsumer(CompilerInstance &CI, 189 StringRef InFile) { 190 std::unique_ptr<raw_pwrite_stream> OS = CreateOutputFile(CI, InFile); 191 if (!OS) 192 return {}; 193 194 std::string OutputFile = CI.getFrontendOpts().OutputFile; 195 std::string Sysroot; 196 197 auto Buffer = std::make_shared<PCHBuffer>(); 198 std::vector<std::unique_ptr<ASTConsumer>> Consumers; 199 200 Consumers.push_back(std::make_unique<PCHGenerator>( 201 CI.getPreprocessor(), CI.getModuleCache(), OutputFile, Sysroot, Buffer, 202 CI.getFrontendOpts().ModuleFileExtensions, 203 /*AllowASTWithErrors=*/ 204 +CI.getFrontendOpts().AllowPCMWithCompilerErrors, 205 /*IncludeTimestamps=*/ 206 +CI.getFrontendOpts().BuildingImplicitModule && 207 +CI.getFrontendOpts().IncludeTimestamps, 208 /*BuildingImplicitModule=*/+CI.getFrontendOpts().BuildingImplicitModule, 209 /*ShouldCacheASTInMemory=*/ 210 +CI.getFrontendOpts().BuildingImplicitModule)); 211 Consumers.push_back(CI.getPCHContainerWriter().CreatePCHContainerGenerator( 212 CI, std::string(InFile), OutputFile, std::move(OS), Buffer)); 213 return Consumers; 214 } 215 216 std::unique_ptr<ASTConsumer> 217 GenerateModuleAction::CreateASTConsumer(CompilerInstance &CI, 218 StringRef InFile) { 219 std::vector<std::unique_ptr<ASTConsumer>> Consumers = 220 CreateMultiplexConsumer(CI, InFile); 221 if (Consumers.empty()) 222 return nullptr; 223 224 return std::make_unique<MultiplexConsumer>(std::move(Consumers)); 225 } 226 227 bool GenerateModuleAction::shouldEraseOutputFiles() { 228 return !getCompilerInstance().getFrontendOpts().AllowPCMWithCompilerErrors && 229 ASTFrontendAction::shouldEraseOutputFiles(); 230 } 231 232 bool GenerateModuleFromModuleMapAction::BeginSourceFileAction( 233 CompilerInstance &CI) { 234 if (!CI.getLangOpts().Modules) { 235 CI.getDiagnostics().Report(diag::err_module_build_requires_fmodules); 236 return false; 237 } 238 239 return GenerateModuleAction::BeginSourceFileAction(CI); 240 } 241 242 std::unique_ptr<raw_pwrite_stream> 243 GenerateModuleFromModuleMapAction::CreateOutputFile(CompilerInstance &CI, 244 StringRef InFile) { 245 // If no output file was provided, figure out where this module would go 246 // in the module cache. 247 if (CI.getFrontendOpts().OutputFile.empty()) { 248 StringRef ModuleMapFile = CI.getFrontendOpts().OriginalModuleMap; 249 if (ModuleMapFile.empty()) 250 ModuleMapFile = InFile; 251 252 HeaderSearch &HS = CI.getPreprocessor().getHeaderSearchInfo(); 253 CI.getFrontendOpts().OutputFile = 254 HS.getCachedModuleFileName(CI.getLangOpts().CurrentModule, 255 ModuleMapFile); 256 } 257 258 // Because this is exposed via libclang we must disable RemoveFileOnSignal. 259 return CI.createDefaultOutputFile(/*Binary=*/true, InFile, /*Extension=*/"", 260 /*RemoveFileOnSignal=*/false, 261 /*CreateMissingDirectories=*/true, 262 /*ForceUseTemporary=*/true); 263 } 264 265 bool GenerateModuleInterfaceAction::BeginSourceFileAction( 266 CompilerInstance &CI) { 267 CI.getLangOpts().setCompilingModule(LangOptions::CMK_ModuleInterface); 268 269 return GenerateModuleAction::BeginSourceFileAction(CI); 270 } 271 272 std::unique_ptr<ASTConsumer> 273 GenerateModuleInterfaceAction::CreateASTConsumer(CompilerInstance &CI, 274 StringRef InFile) { 275 std::vector<std::unique_ptr<ASTConsumer>> Consumers; 276 277 if (CI.getFrontendOpts().GenReducedBMI && 278 !CI.getFrontendOpts().ModuleOutputPath.empty()) { 279 Consumers.push_back(std::make_unique<ReducedBMIGenerator>( 280 CI.getPreprocessor(), CI.getModuleCache(), 281 CI.getFrontendOpts().ModuleOutputPath)); 282 } 283 284 Consumers.push_back(std::make_unique<CXX20ModulesGenerator>( 285 CI.getPreprocessor(), CI.getModuleCache(), 286 CI.getFrontendOpts().OutputFile)); 287 288 return std::make_unique<MultiplexConsumer>(std::move(Consumers)); 289 } 290 291 std::unique_ptr<raw_pwrite_stream> 292 GenerateModuleInterfaceAction::CreateOutputFile(CompilerInstance &CI, 293 StringRef InFile) { 294 return CI.createDefaultOutputFile(/*Binary=*/true, InFile, "pcm"); 295 } 296 297 std::unique_ptr<ASTConsumer> 298 GenerateReducedModuleInterfaceAction::CreateASTConsumer(CompilerInstance &CI, 299 StringRef InFile) { 300 return std::make_unique<ReducedBMIGenerator>(CI.getPreprocessor(), 301 CI.getModuleCache(), 302 CI.getFrontendOpts().OutputFile); 303 } 304 305 bool GenerateHeaderUnitAction::BeginSourceFileAction(CompilerInstance &CI) { 306 if (!CI.getLangOpts().CPlusPlusModules) { 307 CI.getDiagnostics().Report(diag::err_module_interface_requires_cpp_modules); 308 return false; 309 } 310 CI.getLangOpts().setCompilingModule(LangOptions::CMK_HeaderUnit); 311 return GenerateModuleAction::BeginSourceFileAction(CI); 312 } 313 314 std::unique_ptr<raw_pwrite_stream> 315 GenerateHeaderUnitAction::CreateOutputFile(CompilerInstance &CI, 316 StringRef InFile) { 317 return CI.createDefaultOutputFile(/*Binary=*/true, InFile, "pcm"); 318 } 319 320 SyntaxOnlyAction::~SyntaxOnlyAction() { 321 } 322 323 std::unique_ptr<ASTConsumer> 324 SyntaxOnlyAction::CreateASTConsumer(CompilerInstance &CI, StringRef InFile) { 325 return std::make_unique<ASTConsumer>(); 326 } 327 328 std::unique_ptr<ASTConsumer> 329 DumpModuleInfoAction::CreateASTConsumer(CompilerInstance &CI, 330 StringRef InFile) { 331 return std::make_unique<ASTConsumer>(); 332 } 333 334 std::unique_ptr<ASTConsumer> 335 VerifyPCHAction::CreateASTConsumer(CompilerInstance &CI, StringRef InFile) { 336 return std::make_unique<ASTConsumer>(); 337 } 338 339 void VerifyPCHAction::ExecuteAction() { 340 CompilerInstance &CI = getCompilerInstance(); 341 bool Preamble = CI.getPreprocessorOpts().PrecompiledPreambleBytes.first != 0; 342 const std::string &Sysroot = CI.getHeaderSearchOpts().Sysroot; 343 std::unique_ptr<ASTReader> Reader(new ASTReader( 344 CI.getPreprocessor(), CI.getModuleCache(), &CI.getASTContext(), 345 CI.getPCHContainerReader(), CI.getFrontendOpts().ModuleFileExtensions, 346 Sysroot.empty() ? "" : Sysroot.c_str(), 347 DisableValidationForModuleKind::None, 348 /*AllowASTWithCompilerErrors*/ false, 349 /*AllowConfigurationMismatch*/ true, 350 /*ValidateSystemInputs*/ true)); 351 352 Reader->ReadAST(getCurrentFile(), 353 Preamble ? serialization::MK_Preamble 354 : serialization::MK_PCH, 355 SourceLocation(), 356 ASTReader::ARR_ConfigurationMismatch); 357 } 358 359 namespace { 360 struct TemplightEntry { 361 std::string Name; 362 std::string Kind; 363 std::string Event; 364 std::string DefinitionLocation; 365 std::string PointOfInstantiation; 366 }; 367 } // namespace 368 369 namespace llvm { 370 namespace yaml { 371 template <> struct MappingTraits<TemplightEntry> { 372 static void mapping(IO &io, TemplightEntry &fields) { 373 io.mapRequired("name", fields.Name); 374 io.mapRequired("kind", fields.Kind); 375 io.mapRequired("event", fields.Event); 376 io.mapRequired("orig", fields.DefinitionLocation); 377 io.mapRequired("poi", fields.PointOfInstantiation); 378 } 379 }; 380 } // namespace yaml 381 } // namespace llvm 382 383 namespace { 384 class DefaultTemplateInstCallback : public TemplateInstantiationCallback { 385 using CodeSynthesisContext = Sema::CodeSynthesisContext; 386 387 public: 388 void initialize(const Sema &) override {} 389 390 void finalize(const Sema &) override {} 391 392 void atTemplateBegin(const Sema &TheSema, 393 const CodeSynthesisContext &Inst) override { 394 displayTemplightEntry<true>(llvm::outs(), TheSema, Inst); 395 } 396 397 void atTemplateEnd(const Sema &TheSema, 398 const CodeSynthesisContext &Inst) override { 399 displayTemplightEntry<false>(llvm::outs(), TheSema, Inst); 400 } 401 402 private: 403 static std::string toString(CodeSynthesisContext::SynthesisKind Kind) { 404 switch (Kind) { 405 case CodeSynthesisContext::TemplateInstantiation: 406 return "TemplateInstantiation"; 407 case CodeSynthesisContext::DefaultTemplateArgumentInstantiation: 408 return "DefaultTemplateArgumentInstantiation"; 409 case CodeSynthesisContext::DefaultFunctionArgumentInstantiation: 410 return "DefaultFunctionArgumentInstantiation"; 411 case CodeSynthesisContext::ExplicitTemplateArgumentSubstitution: 412 return "ExplicitTemplateArgumentSubstitution"; 413 case CodeSynthesisContext::DeducedTemplateArgumentSubstitution: 414 return "DeducedTemplateArgumentSubstitution"; 415 case CodeSynthesisContext::LambdaExpressionSubstitution: 416 return "LambdaExpressionSubstitution"; 417 case CodeSynthesisContext::PriorTemplateArgumentSubstitution: 418 return "PriorTemplateArgumentSubstitution"; 419 case CodeSynthesisContext::DefaultTemplateArgumentChecking: 420 return "DefaultTemplateArgumentChecking"; 421 case CodeSynthesisContext::ExceptionSpecEvaluation: 422 return "ExceptionSpecEvaluation"; 423 case CodeSynthesisContext::ExceptionSpecInstantiation: 424 return "ExceptionSpecInstantiation"; 425 case CodeSynthesisContext::DeclaringSpecialMember: 426 return "DeclaringSpecialMember"; 427 case CodeSynthesisContext::DeclaringImplicitEqualityComparison: 428 return "DeclaringImplicitEqualityComparison"; 429 case CodeSynthesisContext::DefiningSynthesizedFunction: 430 return "DefiningSynthesizedFunction"; 431 case CodeSynthesisContext::RewritingOperatorAsSpaceship: 432 return "RewritingOperatorAsSpaceship"; 433 case CodeSynthesisContext::Memoization: 434 return "Memoization"; 435 case CodeSynthesisContext::ConstraintsCheck: 436 return "ConstraintsCheck"; 437 case CodeSynthesisContext::ConstraintSubstitution: 438 return "ConstraintSubstitution"; 439 case CodeSynthesisContext::ConstraintNormalization: 440 return "ConstraintNormalization"; 441 case CodeSynthesisContext::RequirementParameterInstantiation: 442 return "RequirementParameterInstantiation"; 443 case CodeSynthesisContext::ParameterMappingSubstitution: 444 return "ParameterMappingSubstitution"; 445 case CodeSynthesisContext::RequirementInstantiation: 446 return "RequirementInstantiation"; 447 case CodeSynthesisContext::NestedRequirementConstraintsCheck: 448 return "NestedRequirementConstraintsCheck"; 449 case CodeSynthesisContext::InitializingStructuredBinding: 450 return "InitializingStructuredBinding"; 451 case CodeSynthesisContext::MarkingClassDllexported: 452 return "MarkingClassDllexported"; 453 case CodeSynthesisContext::BuildingBuiltinDumpStructCall: 454 return "BuildingBuiltinDumpStructCall"; 455 case CodeSynthesisContext::BuildingDeductionGuides: 456 return "BuildingDeductionGuides"; 457 case CodeSynthesisContext::TypeAliasTemplateInstantiation: 458 return "TypeAliasTemplateInstantiation"; 459 } 460 return ""; 461 } 462 463 template <bool BeginInstantiation> 464 static void displayTemplightEntry(llvm::raw_ostream &Out, const Sema &TheSema, 465 const CodeSynthesisContext &Inst) { 466 std::string YAML; 467 { 468 llvm::raw_string_ostream OS(YAML); 469 llvm::yaml::Output YO(OS); 470 TemplightEntry Entry = 471 getTemplightEntry<BeginInstantiation>(TheSema, Inst); 472 llvm::yaml::EmptyContext Context; 473 llvm::yaml::yamlize(YO, Entry, true, Context); 474 } 475 Out << "---" << YAML << "\n"; 476 } 477 478 static void printEntryName(const Sema &TheSema, const Decl *Entity, 479 llvm::raw_string_ostream &OS) { 480 auto *NamedTemplate = cast<NamedDecl>(Entity); 481 482 PrintingPolicy Policy = TheSema.Context.getPrintingPolicy(); 483 // FIXME: Also ask for FullyQualifiedNames? 484 Policy.SuppressDefaultTemplateArgs = false; 485 NamedTemplate->getNameForDiagnostic(OS, Policy, true); 486 487 if (!OS.str().empty()) 488 return; 489 490 Decl *Ctx = Decl::castFromDeclContext(NamedTemplate->getDeclContext()); 491 NamedDecl *NamedCtx = dyn_cast_or_null<NamedDecl>(Ctx); 492 493 if (const auto *Decl = dyn_cast<TagDecl>(NamedTemplate)) { 494 if (const auto *R = dyn_cast<RecordDecl>(Decl)) { 495 if (R->isLambda()) { 496 OS << "lambda at "; 497 Decl->getLocation().print(OS, TheSema.getSourceManager()); 498 return; 499 } 500 } 501 OS << "unnamed " << Decl->getKindName(); 502 return; 503 } 504 505 assert(NamedCtx && "NamedCtx cannot be null"); 506 507 if (const auto *Decl = dyn_cast<ParmVarDecl>(NamedTemplate)) { 508 OS << "unnamed function parameter " << Decl->getFunctionScopeIndex() 509 << " "; 510 if (Decl->getFunctionScopeDepth() > 0) 511 OS << "(at depth " << Decl->getFunctionScopeDepth() << ") "; 512 OS << "of "; 513 NamedCtx->getNameForDiagnostic(OS, TheSema.getLangOpts(), true); 514 return; 515 } 516 517 if (const auto *Decl = dyn_cast<TemplateTypeParmDecl>(NamedTemplate)) { 518 if (const Type *Ty = Decl->getTypeForDecl()) { 519 if (const auto *TTPT = dyn_cast_or_null<TemplateTypeParmType>(Ty)) { 520 OS << "unnamed template type parameter " << TTPT->getIndex() << " "; 521 if (TTPT->getDepth() > 0) 522 OS << "(at depth " << TTPT->getDepth() << ") "; 523 OS << "of "; 524 NamedCtx->getNameForDiagnostic(OS, TheSema.getLangOpts(), true); 525 return; 526 } 527 } 528 } 529 530 if (const auto *Decl = dyn_cast<NonTypeTemplateParmDecl>(NamedTemplate)) { 531 OS << "unnamed template non-type parameter " << Decl->getIndex() << " "; 532 if (Decl->getDepth() > 0) 533 OS << "(at depth " << Decl->getDepth() << ") "; 534 OS << "of "; 535 NamedCtx->getNameForDiagnostic(OS, TheSema.getLangOpts(), true); 536 return; 537 } 538 539 if (const auto *Decl = dyn_cast<TemplateTemplateParmDecl>(NamedTemplate)) { 540 OS << "unnamed template template parameter " << Decl->getIndex() << " "; 541 if (Decl->getDepth() > 0) 542 OS << "(at depth " << Decl->getDepth() << ") "; 543 OS << "of "; 544 NamedCtx->getNameForDiagnostic(OS, TheSema.getLangOpts(), true); 545 return; 546 } 547 548 llvm_unreachable("Failed to retrieve a name for this entry!"); 549 OS << "unnamed identifier"; 550 } 551 552 template <bool BeginInstantiation> 553 static TemplightEntry getTemplightEntry(const Sema &TheSema, 554 const CodeSynthesisContext &Inst) { 555 TemplightEntry Entry; 556 Entry.Kind = toString(Inst.Kind); 557 Entry.Event = BeginInstantiation ? "Begin" : "End"; 558 llvm::raw_string_ostream OS(Entry.Name); 559 printEntryName(TheSema, Inst.Entity, OS); 560 const PresumedLoc DefLoc = 561 TheSema.getSourceManager().getPresumedLoc(Inst.Entity->getLocation()); 562 if (!DefLoc.isInvalid()) 563 Entry.DefinitionLocation = std::string(DefLoc.getFilename()) + ":" + 564 std::to_string(DefLoc.getLine()) + ":" + 565 std::to_string(DefLoc.getColumn()); 566 const PresumedLoc PoiLoc = 567 TheSema.getSourceManager().getPresumedLoc(Inst.PointOfInstantiation); 568 if (!PoiLoc.isInvalid()) { 569 Entry.PointOfInstantiation = std::string(PoiLoc.getFilename()) + ":" + 570 std::to_string(PoiLoc.getLine()) + ":" + 571 std::to_string(PoiLoc.getColumn()); 572 } 573 return Entry; 574 } 575 }; 576 } // namespace 577 578 std::unique_ptr<ASTConsumer> 579 TemplightDumpAction::CreateASTConsumer(CompilerInstance &CI, StringRef InFile) { 580 return std::make_unique<ASTConsumer>(); 581 } 582 583 void TemplightDumpAction::ExecuteAction() { 584 CompilerInstance &CI = getCompilerInstance(); 585 586 // This part is normally done by ASTFrontEndAction, but needs to happen 587 // before Templight observers can be created 588 // FIXME: Move the truncation aspect of this into Sema, we delayed this till 589 // here so the source manager would be initialized. 590 EnsureSemaIsCreated(CI, *this); 591 592 CI.getSema().TemplateInstCallbacks.push_back( 593 std::make_unique<DefaultTemplateInstCallback>()); 594 ASTFrontendAction::ExecuteAction(); 595 } 596 597 namespace { 598 /// AST reader listener that dumps module information for a module 599 /// file. 600 class DumpModuleInfoListener : public ASTReaderListener { 601 llvm::raw_ostream &Out; 602 603 public: 604 DumpModuleInfoListener(llvm::raw_ostream &Out) : Out(Out) { } 605 606 #define DUMP_BOOLEAN(Value, Text) \ 607 Out.indent(4) << Text << ": " << (Value? "Yes" : "No") << "\n" 608 609 bool ReadFullVersionInformation(StringRef FullVersion) override { 610 Out.indent(2) 611 << "Generated by " 612 << (FullVersion == getClangFullRepositoryVersion()? "this" 613 : "a different") 614 << " Clang: " << FullVersion << "\n"; 615 return ASTReaderListener::ReadFullVersionInformation(FullVersion); 616 } 617 618 void ReadModuleName(StringRef ModuleName) override { 619 Out.indent(2) << "Module name: " << ModuleName << "\n"; 620 } 621 void ReadModuleMapFile(StringRef ModuleMapPath) override { 622 Out.indent(2) << "Module map file: " << ModuleMapPath << "\n"; 623 } 624 625 bool ReadLanguageOptions(const LangOptions &LangOpts, 626 StringRef ModuleFilename, bool Complain, 627 bool AllowCompatibleDifferences) override { 628 Out.indent(2) << "Language options:\n"; 629 #define LANGOPT(Name, Bits, Default, Description) \ 630 DUMP_BOOLEAN(LangOpts.Name, Description); 631 #define ENUM_LANGOPT(Name, Type, Bits, Default, Description) \ 632 Out.indent(4) << Description << ": " \ 633 << static_cast<unsigned>(LangOpts.get##Name()) << "\n"; 634 #define VALUE_LANGOPT(Name, Bits, Default, Description) \ 635 Out.indent(4) << Description << ": " << LangOpts.Name << "\n"; 636 #define BENIGN_LANGOPT(Name, Bits, Default, Description) 637 #define BENIGN_ENUM_LANGOPT(Name, Type, Bits, Default, Description) 638 #include "clang/Basic/LangOptions.def" 639 640 if (!LangOpts.ModuleFeatures.empty()) { 641 Out.indent(4) << "Module features:\n"; 642 for (StringRef Feature : LangOpts.ModuleFeatures) 643 Out.indent(6) << Feature << "\n"; 644 } 645 646 return false; 647 } 648 649 bool ReadTargetOptions(const TargetOptions &TargetOpts, 650 StringRef ModuleFilename, bool Complain, 651 bool AllowCompatibleDifferences) override { 652 Out.indent(2) << "Target options:\n"; 653 Out.indent(4) << " Triple: " << TargetOpts.Triple << "\n"; 654 Out.indent(4) << " CPU: " << TargetOpts.CPU << "\n"; 655 Out.indent(4) << " TuneCPU: " << TargetOpts.TuneCPU << "\n"; 656 Out.indent(4) << " ABI: " << TargetOpts.ABI << "\n"; 657 658 if (!TargetOpts.FeaturesAsWritten.empty()) { 659 Out.indent(4) << "Target features:\n"; 660 for (unsigned I = 0, N = TargetOpts.FeaturesAsWritten.size(); 661 I != N; ++I) { 662 Out.indent(6) << TargetOpts.FeaturesAsWritten[I] << "\n"; 663 } 664 } 665 666 return false; 667 } 668 669 bool ReadDiagnosticOptions(IntrusiveRefCntPtr<DiagnosticOptions> DiagOpts, 670 StringRef ModuleFilename, 671 bool Complain) override { 672 Out.indent(2) << "Diagnostic options:\n"; 673 #define DIAGOPT(Name, Bits, Default) DUMP_BOOLEAN(DiagOpts->Name, #Name); 674 #define ENUM_DIAGOPT(Name, Type, Bits, Default) \ 675 Out.indent(4) << #Name << ": " << DiagOpts->get##Name() << "\n"; 676 #define VALUE_DIAGOPT(Name, Bits, Default) \ 677 Out.indent(4) << #Name << ": " << DiagOpts->Name << "\n"; 678 #include "clang/Basic/DiagnosticOptions.def" 679 680 Out.indent(4) << "Diagnostic flags:\n"; 681 for (const std::string &Warning : DiagOpts->Warnings) 682 Out.indent(6) << "-W" << Warning << "\n"; 683 for (const std::string &Remark : DiagOpts->Remarks) 684 Out.indent(6) << "-R" << Remark << "\n"; 685 686 return false; 687 } 688 689 bool ReadHeaderSearchOptions(const HeaderSearchOptions &HSOpts, 690 StringRef ModuleFilename, 691 StringRef SpecificModuleCachePath, 692 bool Complain) override { 693 Out.indent(2) << "Header search options:\n"; 694 Out.indent(4) << "System root [-isysroot=]: '" << HSOpts.Sysroot << "'\n"; 695 Out.indent(4) << "Resource dir [ -resource-dir=]: '" << HSOpts.ResourceDir << "'\n"; 696 Out.indent(4) << "Module Cache: '" << SpecificModuleCachePath << "'\n"; 697 DUMP_BOOLEAN(HSOpts.UseBuiltinIncludes, 698 "Use builtin include directories [-nobuiltininc]"); 699 DUMP_BOOLEAN(HSOpts.UseStandardSystemIncludes, 700 "Use standard system include directories [-nostdinc]"); 701 DUMP_BOOLEAN(HSOpts.UseStandardCXXIncludes, 702 "Use standard C++ include directories [-nostdinc++]"); 703 DUMP_BOOLEAN(HSOpts.UseLibcxx, 704 "Use libc++ (rather than libstdc++) [-stdlib=]"); 705 return false; 706 } 707 708 bool ReadHeaderSearchPaths(const HeaderSearchOptions &HSOpts, 709 bool Complain) override { 710 Out.indent(2) << "Header search paths:\n"; 711 Out.indent(4) << "User entries:\n"; 712 for (const auto &Entry : HSOpts.UserEntries) 713 Out.indent(6) << Entry.Path << "\n"; 714 Out.indent(4) << "System header prefixes:\n"; 715 for (const auto &Prefix : HSOpts.SystemHeaderPrefixes) 716 Out.indent(6) << Prefix.Prefix << "\n"; 717 Out.indent(4) << "VFS overlay files:\n"; 718 for (const auto &Overlay : HSOpts.VFSOverlayFiles) 719 Out.indent(6) << Overlay << "\n"; 720 return false; 721 } 722 723 bool ReadPreprocessorOptions(const PreprocessorOptions &PPOpts, 724 StringRef ModuleFilename, bool ReadMacros, 725 bool Complain, 726 std::string &SuggestedPredefines) override { 727 Out.indent(2) << "Preprocessor options:\n"; 728 DUMP_BOOLEAN(PPOpts.UsePredefines, 729 "Uses compiler/target-specific predefines [-undef]"); 730 DUMP_BOOLEAN(PPOpts.DetailedRecord, 731 "Uses detailed preprocessing record (for indexing)"); 732 733 if (ReadMacros) { 734 Out.indent(4) << "Predefined macros:\n"; 735 } 736 737 for (std::vector<std::pair<std::string, bool/*isUndef*/> >::const_iterator 738 I = PPOpts.Macros.begin(), IEnd = PPOpts.Macros.end(); 739 I != IEnd; ++I) { 740 Out.indent(6); 741 if (I->second) 742 Out << "-U"; 743 else 744 Out << "-D"; 745 Out << I->first << "\n"; 746 } 747 return false; 748 } 749 750 /// Indicates that a particular module file extension has been read. 751 void readModuleFileExtension( 752 const ModuleFileExtensionMetadata &Metadata) override { 753 Out.indent(2) << "Module file extension '" 754 << Metadata.BlockName << "' " << Metadata.MajorVersion 755 << "." << Metadata.MinorVersion; 756 if (!Metadata.UserInfo.empty()) { 757 Out << ": "; 758 Out.write_escaped(Metadata.UserInfo); 759 } 760 761 Out << "\n"; 762 } 763 764 /// Tells the \c ASTReaderListener that we want to receive the 765 /// input files of the AST file via \c visitInputFile. 766 bool needsInputFileVisitation() override { return true; } 767 768 /// Tells the \c ASTReaderListener that we want to receive the 769 /// input files of the AST file via \c visitInputFile. 770 bool needsSystemInputFileVisitation() override { return true; } 771 772 /// Indicates that the AST file contains particular input file. 773 /// 774 /// \returns true to continue receiving the next input file, false to stop. 775 bool visitInputFile(StringRef Filename, bool isSystem, 776 bool isOverridden, bool isExplicitModule) override { 777 778 Out.indent(2) << "Input file: " << Filename; 779 780 if (isSystem || isOverridden || isExplicitModule) { 781 Out << " ["; 782 if (isSystem) { 783 Out << "System"; 784 if (isOverridden || isExplicitModule) 785 Out << ", "; 786 } 787 if (isOverridden) { 788 Out << "Overridden"; 789 if (isExplicitModule) 790 Out << ", "; 791 } 792 if (isExplicitModule) 793 Out << "ExplicitModule"; 794 795 Out << "]"; 796 } 797 798 Out << "\n"; 799 800 return true; 801 } 802 803 /// Returns true if this \c ASTReaderListener wants to receive the 804 /// imports of the AST file via \c visitImport, false otherwise. 805 bool needsImportVisitation() const override { return true; } 806 807 /// If needsImportVisitation returns \c true, this is called for each 808 /// AST file imported by this AST file. 809 void visitImport(StringRef ModuleName, StringRef Filename) override { 810 Out.indent(2) << "Imports module '" << ModuleName 811 << "': " << Filename.str() << "\n"; 812 } 813 #undef DUMP_BOOLEAN 814 }; 815 } 816 817 bool DumpModuleInfoAction::BeginInvocation(CompilerInstance &CI) { 818 // The Object file reader also supports raw ast files and there is no point in 819 // being strict about the module file format in -module-file-info mode. 820 CI.getHeaderSearchOpts().ModuleFormat = "obj"; 821 return true; 822 } 823 824 static StringRef ModuleKindName(Module::ModuleKind MK) { 825 switch (MK) { 826 case Module::ModuleMapModule: 827 return "Module Map Module"; 828 case Module::ModuleInterfaceUnit: 829 return "Interface Unit"; 830 case Module::ModuleImplementationUnit: 831 return "Implementation Unit"; 832 case Module::ModulePartitionInterface: 833 return "Partition Interface"; 834 case Module::ModulePartitionImplementation: 835 return "Partition Implementation"; 836 case Module::ModuleHeaderUnit: 837 return "Header Unit"; 838 case Module::ExplicitGlobalModuleFragment: 839 return "Global Module Fragment"; 840 case Module::ImplicitGlobalModuleFragment: 841 return "Implicit Module Fragment"; 842 case Module::PrivateModuleFragment: 843 return "Private Module Fragment"; 844 } 845 llvm_unreachable("unknown module kind!"); 846 } 847 848 void DumpModuleInfoAction::ExecuteAction() { 849 CompilerInstance &CI = getCompilerInstance(); 850 851 // Don't process files of type other than module to avoid crash 852 if (!isCurrentFileAST()) { 853 CI.getDiagnostics().Report(diag::err_file_is_not_module) 854 << getCurrentFile(); 855 return; 856 } 857 858 // Set up the output file. 859 StringRef OutputFileName = CI.getFrontendOpts().OutputFile; 860 if (!OutputFileName.empty() && OutputFileName != "-") { 861 std::error_code EC; 862 OutputStream.reset(new llvm::raw_fd_ostream( 863 OutputFileName.str(), EC, llvm::sys::fs::OF_TextWithCRLF)); 864 } 865 llvm::raw_ostream &Out = OutputStream ? *OutputStream : llvm::outs(); 866 867 Out << "Information for module file '" << getCurrentFile() << "':\n"; 868 auto &FileMgr = CI.getFileManager(); 869 auto Buffer = FileMgr.getBufferForFile(getCurrentFile()); 870 StringRef Magic = (*Buffer)->getMemBufferRef().getBuffer(); 871 bool IsRaw = Magic.starts_with("CPCH"); 872 Out << " Module format: " << (IsRaw ? "raw" : "obj") << "\n"; 873 874 Preprocessor &PP = CI.getPreprocessor(); 875 DumpModuleInfoListener Listener(Out); 876 HeaderSearchOptions &HSOpts = PP.getHeaderSearchInfo().getHeaderSearchOpts(); 877 878 // The FrontendAction::BeginSourceFile () method loads the AST so that much 879 // of the information is already available and modules should have been 880 // loaded. 881 882 const LangOptions &LO = getCurrentASTUnit().getLangOpts(); 883 if (LO.CPlusPlusModules && !LO.CurrentModule.empty()) { 884 ASTReader *R = getCurrentASTUnit().getASTReader().get(); 885 unsigned SubModuleCount = R->getTotalNumSubmodules(); 886 serialization::ModuleFile &MF = R->getModuleManager().getPrimaryModule(); 887 Out << " ====== C++20 Module structure ======\n"; 888 889 if (MF.ModuleName != LO.CurrentModule) 890 Out << " Mismatched module names : " << MF.ModuleName << " and " 891 << LO.CurrentModule << "\n"; 892 893 struct SubModInfo { 894 unsigned Idx; 895 Module *Mod; 896 Module::ModuleKind Kind; 897 std::string &Name; 898 bool Seen; 899 }; 900 std::map<std::string, SubModInfo> SubModMap; 901 auto PrintSubMapEntry = [&](std::string Name, Module::ModuleKind Kind) { 902 Out << " " << ModuleKindName(Kind) << " '" << Name << "'"; 903 auto I = SubModMap.find(Name); 904 if (I == SubModMap.end()) 905 Out << " was not found in the sub modules!\n"; 906 else { 907 I->second.Seen = true; 908 Out << " is at index #" << I->second.Idx << "\n"; 909 } 910 }; 911 Module *Primary = nullptr; 912 for (unsigned Idx = 0; Idx <= SubModuleCount; ++Idx) { 913 Module *M = R->getModule(Idx); 914 if (!M) 915 continue; 916 if (M->Name == LO.CurrentModule) { 917 Primary = M; 918 Out << " " << ModuleKindName(M->Kind) << " '" << LO.CurrentModule 919 << "' is the Primary Module at index #" << Idx << "\n"; 920 SubModMap.insert({M->Name, {Idx, M, M->Kind, M->Name, true}}); 921 } else 922 SubModMap.insert({M->Name, {Idx, M, M->Kind, M->Name, false}}); 923 } 924 if (Primary) { 925 if (!Primary->submodules().empty()) 926 Out << " Sub Modules:\n"; 927 for (auto *MI : Primary->submodules()) { 928 PrintSubMapEntry(MI->Name, MI->Kind); 929 } 930 if (!Primary->Imports.empty()) 931 Out << " Imports:\n"; 932 for (auto *IMP : Primary->Imports) { 933 PrintSubMapEntry(IMP->Name, IMP->Kind); 934 } 935 if (!Primary->Exports.empty()) 936 Out << " Exports:\n"; 937 for (unsigned MN = 0, N = Primary->Exports.size(); MN != N; ++MN) { 938 if (Module *M = Primary->Exports[MN].getPointer()) { 939 PrintSubMapEntry(M->Name, M->Kind); 940 } 941 } 942 } 943 944 // Emit the macro definitions in the module file so that we can know how 945 // much definitions in the module file quickly. 946 // TODO: Emit the macro definition bodies completely. 947 if (auto FilteredMacros = llvm::make_filter_range( 948 R->getPreprocessor().macros(), 949 [](const auto &Macro) { return Macro.first->isFromAST(); }); 950 !FilteredMacros.empty()) { 951 Out << " Macro Definitions:\n"; 952 for (/*<IdentifierInfo *, MacroState> pair*/ const auto &Macro : 953 FilteredMacros) 954 Out << " " << Macro.first->getName() << "\n"; 955 } 956 957 // Now let's print out any modules we did not see as part of the Primary. 958 for (const auto &SM : SubModMap) { 959 if (!SM.second.Seen && SM.second.Mod) { 960 Out << " " << ModuleKindName(SM.second.Kind) << " '" << SM.first 961 << "' at index #" << SM.second.Idx 962 << " has no direct reference in the Primary\n"; 963 } 964 } 965 Out << " ====== ======\n"; 966 } 967 968 // The reminder of the output is produced from the listener as the AST 969 // FileCcontrolBlock is (re-)parsed. 970 ASTReader::readASTFileControlBlock( 971 getCurrentFile(), FileMgr, CI.getModuleCache(), 972 CI.getPCHContainerReader(), 973 /*FindModuleFileExtensions=*/true, Listener, 974 HSOpts.ModulesValidateDiagnosticOptions); 975 } 976 977 //===----------------------------------------------------------------------===// 978 // Preprocessor Actions 979 //===----------------------------------------------------------------------===// 980 981 void DumpRawTokensAction::ExecuteAction() { 982 Preprocessor &PP = getCompilerInstance().getPreprocessor(); 983 SourceManager &SM = PP.getSourceManager(); 984 985 // Start lexing the specified input file. 986 llvm::MemoryBufferRef FromFile = SM.getBufferOrFake(SM.getMainFileID()); 987 Lexer RawLex(SM.getMainFileID(), FromFile, SM, PP.getLangOpts()); 988 RawLex.SetKeepWhitespaceMode(true); 989 990 Token RawTok; 991 RawLex.LexFromRawLexer(RawTok); 992 while (RawTok.isNot(tok::eof)) { 993 PP.DumpToken(RawTok, true); 994 llvm::errs() << "\n"; 995 RawLex.LexFromRawLexer(RawTok); 996 } 997 } 998 999 void DumpTokensAction::ExecuteAction() { 1000 Preprocessor &PP = getCompilerInstance().getPreprocessor(); 1001 // Start preprocessing the specified input file. 1002 Token Tok; 1003 PP.EnterMainSourceFile(); 1004 do { 1005 PP.Lex(Tok); 1006 PP.DumpToken(Tok, true); 1007 llvm::errs() << "\n"; 1008 } while (Tok.isNot(tok::eof)); 1009 } 1010 1011 void PreprocessOnlyAction::ExecuteAction() { 1012 Preprocessor &PP = getCompilerInstance().getPreprocessor(); 1013 1014 // Ignore unknown pragmas. 1015 PP.IgnorePragmas(); 1016 1017 Token Tok; 1018 // Start parsing the specified input file. 1019 PP.EnterMainSourceFile(); 1020 do { 1021 PP.Lex(Tok); 1022 } while (Tok.isNot(tok::eof)); 1023 } 1024 1025 void PrintPreprocessedAction::ExecuteAction() { 1026 CompilerInstance &CI = getCompilerInstance(); 1027 // Output file may need to be set to 'Binary', to avoid converting Unix style 1028 // line feeds (<LF>) to Microsoft style line feeds (<CR><LF>) on Windows. 1029 // 1030 // Look to see what type of line endings the file uses. If there's a 1031 // CRLF, then we won't open the file up in binary mode. If there is 1032 // just an LF or CR, then we will open the file up in binary mode. 1033 // In this fashion, the output format should match the input format, unless 1034 // the input format has inconsistent line endings. 1035 // 1036 // This should be a relatively fast operation since most files won't have 1037 // all of their source code on a single line. However, that is still a 1038 // concern, so if we scan for too long, we'll just assume the file should 1039 // be opened in binary mode. 1040 1041 bool BinaryMode = false; 1042 if (llvm::Triple(LLVM_HOST_TRIPLE).isOSWindows()) { 1043 BinaryMode = true; 1044 const SourceManager &SM = CI.getSourceManager(); 1045 if (std::optional<llvm::MemoryBufferRef> Buffer = 1046 SM.getBufferOrNone(SM.getMainFileID())) { 1047 const char *cur = Buffer->getBufferStart(); 1048 const char *end = Buffer->getBufferEnd(); 1049 const char *next = (cur != end) ? cur + 1 : end; 1050 1051 // Limit ourselves to only scanning 256 characters into the source 1052 // file. This is mostly a check in case the file has no 1053 // newlines whatsoever. 1054 if (end - cur > 256) 1055 end = cur + 256; 1056 1057 while (next < end) { 1058 if (*cur == 0x0D) { // CR 1059 if (*next == 0x0A) // CRLF 1060 BinaryMode = false; 1061 1062 break; 1063 } else if (*cur == 0x0A) // LF 1064 break; 1065 1066 ++cur; 1067 ++next; 1068 } 1069 } 1070 } 1071 1072 std::unique_ptr<raw_ostream> OS = 1073 CI.createDefaultOutputFile(BinaryMode, getCurrentFileOrBufferName()); 1074 if (!OS) return; 1075 1076 // If we're preprocessing a module map, start by dumping the contents of the 1077 // module itself before switching to the input buffer. 1078 auto &Input = getCurrentInput(); 1079 if (Input.getKind().getFormat() == InputKind::ModuleMap) { 1080 if (Input.isFile()) { 1081 (*OS) << "# 1 \""; 1082 OS->write_escaped(Input.getFile()); 1083 (*OS) << "\"\n"; 1084 } 1085 getCurrentModule()->print(*OS); 1086 (*OS) << "#pragma clang module contents\n"; 1087 } 1088 1089 DoPrintPreprocessedInput(CI.getPreprocessor(), OS.get(), 1090 CI.getPreprocessorOutputOpts()); 1091 } 1092 1093 void PrintPreambleAction::ExecuteAction() { 1094 switch (getCurrentFileKind().getLanguage()) { 1095 case Language::C: 1096 case Language::CXX: 1097 case Language::ObjC: 1098 case Language::ObjCXX: 1099 case Language::OpenCL: 1100 case Language::OpenCLCXX: 1101 case Language::CUDA: 1102 case Language::HIP: 1103 case Language::HLSL: 1104 case Language::CIR: 1105 break; 1106 1107 case Language::Unknown: 1108 case Language::Asm: 1109 case Language::LLVM_IR: 1110 case Language::RenderScript: 1111 // We can't do anything with these. 1112 return; 1113 } 1114 1115 // We don't expect to find any #include directives in a preprocessed input. 1116 if (getCurrentFileKind().isPreprocessed()) 1117 return; 1118 1119 CompilerInstance &CI = getCompilerInstance(); 1120 auto Buffer = CI.getFileManager().getBufferForFile(getCurrentFile()); 1121 if (Buffer) { 1122 unsigned Preamble = 1123 Lexer::ComputePreamble((*Buffer)->getBuffer(), CI.getLangOpts()).Size; 1124 llvm::outs().write((*Buffer)->getBufferStart(), Preamble); 1125 } 1126 } 1127 1128 void DumpCompilerOptionsAction::ExecuteAction() { 1129 CompilerInstance &CI = getCompilerInstance(); 1130 std::unique_ptr<raw_ostream> OSP = 1131 CI.createDefaultOutputFile(false, getCurrentFile()); 1132 if (!OSP) 1133 return; 1134 1135 raw_ostream &OS = *OSP; 1136 const Preprocessor &PP = CI.getPreprocessor(); 1137 const LangOptions &LangOpts = PP.getLangOpts(); 1138 1139 // FIXME: Rather than manually format the JSON (which is awkward due to 1140 // needing to remove trailing commas), this should make use of a JSON library. 1141 // FIXME: Instead of printing enums as an integral value and specifying the 1142 // type as a separate field, use introspection to print the enumerator. 1143 1144 OS << "{\n"; 1145 OS << "\n\"features\" : [\n"; 1146 { 1147 llvm::SmallString<128> Str; 1148 #define FEATURE(Name, Predicate) \ 1149 ("\t{\"" #Name "\" : " + llvm::Twine(Predicate ? "true" : "false") + "},\n") \ 1150 .toVector(Str); 1151 #include "clang/Basic/Features.def" 1152 #undef FEATURE 1153 // Remove the newline and comma from the last entry to ensure this remains 1154 // valid JSON. 1155 OS << Str.substr(0, Str.size() - 2); 1156 } 1157 OS << "\n],\n"; 1158 1159 OS << "\n\"extensions\" : [\n"; 1160 { 1161 llvm::SmallString<128> Str; 1162 #define EXTENSION(Name, Predicate) \ 1163 ("\t{\"" #Name "\" : " + llvm::Twine(Predicate ? "true" : "false") + "},\n") \ 1164 .toVector(Str); 1165 #include "clang/Basic/Features.def" 1166 #undef EXTENSION 1167 // Remove the newline and comma from the last entry to ensure this remains 1168 // valid JSON. 1169 OS << Str.substr(0, Str.size() - 2); 1170 } 1171 OS << "\n]\n"; 1172 1173 OS << "}"; 1174 } 1175 1176 void PrintDependencyDirectivesSourceMinimizerAction::ExecuteAction() { 1177 CompilerInstance &CI = getCompilerInstance(); 1178 SourceManager &SM = CI.getPreprocessor().getSourceManager(); 1179 llvm::MemoryBufferRef FromFile = SM.getBufferOrFake(SM.getMainFileID()); 1180 1181 llvm::SmallVector<dependency_directives_scan::Token, 16> Tokens; 1182 llvm::SmallVector<dependency_directives_scan::Directive, 32> Directives; 1183 if (scanSourceForDependencyDirectives( 1184 FromFile.getBuffer(), Tokens, Directives, &CI.getDiagnostics(), 1185 SM.getLocForStartOfFile(SM.getMainFileID()))) { 1186 assert(CI.getDiagnostics().hasErrorOccurred() && 1187 "no errors reported for failure"); 1188 1189 // Preprocess the source when verifying the diagnostics to capture the 1190 // 'expected' comments. 1191 if (CI.getDiagnosticOpts().VerifyDiagnostics) { 1192 // Make sure we don't emit new diagnostics! 1193 CI.getDiagnostics().setSuppressAllDiagnostics(true); 1194 Preprocessor &PP = getCompilerInstance().getPreprocessor(); 1195 PP.EnterMainSourceFile(); 1196 Token Tok; 1197 do { 1198 PP.Lex(Tok); 1199 } while (Tok.isNot(tok::eof)); 1200 } 1201 return; 1202 } 1203 printDependencyDirectivesAsSource(FromFile.getBuffer(), Directives, 1204 llvm::outs()); 1205 } 1206 1207 void GetDependenciesByModuleNameAction::ExecuteAction() { 1208 CompilerInstance &CI = getCompilerInstance(); 1209 Preprocessor &PP = CI.getPreprocessor(); 1210 SourceManager &SM = PP.getSourceManager(); 1211 FileID MainFileID = SM.getMainFileID(); 1212 SourceLocation FileStart = SM.getLocForStartOfFile(MainFileID); 1213 SmallVector<std::pair<IdentifierInfo *, SourceLocation>, 2> Path; 1214 IdentifierInfo *ModuleID = PP.getIdentifierInfo(ModuleName); 1215 Path.push_back(std::make_pair(ModuleID, FileStart)); 1216 auto ModResult = CI.loadModule(FileStart, Path, Module::Hidden, false); 1217 PPCallbacks *CB = PP.getPPCallbacks(); 1218 CB->moduleImport(SourceLocation(), Path, ModResult); 1219 } 1220