1 //===--- CompilerInstance.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/CompilerInstance.h" 10 #include "clang/AST/ASTConsumer.h" 11 #include "clang/AST/ASTContext.h" 12 #include "clang/AST/Decl.h" 13 #include "clang/Basic/CharInfo.h" 14 #include "clang/Basic/Diagnostic.h" 15 #include "clang/Basic/FileManager.h" 16 #include "clang/Basic/LangStandard.h" 17 #include "clang/Basic/SourceManager.h" 18 #include "clang/Basic/Stack.h" 19 #include "clang/Basic/TargetInfo.h" 20 #include "clang/Basic/Version.h" 21 #include "clang/Config/config.h" 22 #include "clang/Frontend/ChainedDiagnosticConsumer.h" 23 #include "clang/Frontend/FrontendAction.h" 24 #include "clang/Frontend/FrontendActions.h" 25 #include "clang/Frontend/FrontendDiagnostic.h" 26 #include "clang/Frontend/FrontendPluginRegistry.h" 27 #include "clang/Frontend/LogDiagnosticPrinter.h" 28 #include "clang/Frontend/SerializedDiagnosticPrinter.h" 29 #include "clang/Frontend/TextDiagnosticPrinter.h" 30 #include "clang/Frontend/Utils.h" 31 #include "clang/Frontend/VerifyDiagnosticConsumer.h" 32 #include "clang/Lex/HeaderSearch.h" 33 #include "clang/Lex/Preprocessor.h" 34 #include "clang/Lex/PreprocessorOptions.h" 35 #include "clang/Sema/CodeCompleteConsumer.h" 36 #include "clang/Sema/Sema.h" 37 #include "clang/Serialization/ASTReader.h" 38 #include "clang/Serialization/GlobalModuleIndex.h" 39 #include "clang/Serialization/InMemoryModuleCache.h" 40 #include "llvm/ADT/Statistic.h" 41 #include "llvm/Support/BuryPointer.h" 42 #include "llvm/Support/CrashRecoveryContext.h" 43 #include "llvm/Support/Errc.h" 44 #include "llvm/Support/FileSystem.h" 45 #include "llvm/Support/Host.h" 46 #include "llvm/Support/LockFileManager.h" 47 #include "llvm/Support/MemoryBuffer.h" 48 #include "llvm/Support/Path.h" 49 #include "llvm/Support/Program.h" 50 #include "llvm/Support/Signals.h" 51 #include "llvm/Support/TimeProfiler.h" 52 #include "llvm/Support/Timer.h" 53 #include "llvm/Support/raw_ostream.h" 54 #include <time.h> 55 #include <utility> 56 57 using namespace clang; 58 59 CompilerInstance::CompilerInstance( 60 std::shared_ptr<PCHContainerOperations> PCHContainerOps, 61 InMemoryModuleCache *SharedModuleCache) 62 : ModuleLoader(/* BuildingModule = */ SharedModuleCache), 63 Invocation(new CompilerInvocation()), 64 ModuleCache(SharedModuleCache ? SharedModuleCache 65 : new InMemoryModuleCache), 66 ThePCHContainerOperations(std::move(PCHContainerOps)) {} 67 68 CompilerInstance::~CompilerInstance() { 69 assert(OutputFiles.empty() && "Still output files in flight?"); 70 } 71 72 void CompilerInstance::setInvocation( 73 std::shared_ptr<CompilerInvocation> Value) { 74 Invocation = std::move(Value); 75 } 76 77 bool CompilerInstance::shouldBuildGlobalModuleIndex() const { 78 return (BuildGlobalModuleIndex || 79 (TheASTReader && TheASTReader->isGlobalIndexUnavailable() && 80 getFrontendOpts().GenerateGlobalModuleIndex)) && 81 !DisableGeneratingGlobalModuleIndex; 82 } 83 84 void CompilerInstance::setDiagnostics(DiagnosticsEngine *Value) { 85 Diagnostics = Value; 86 } 87 88 void CompilerInstance::setVerboseOutputStream(raw_ostream &Value) { 89 OwnedVerboseOutputStream.reset(); 90 VerboseOutputStream = &Value; 91 } 92 93 void CompilerInstance::setVerboseOutputStream(std::unique_ptr<raw_ostream> Value) { 94 OwnedVerboseOutputStream.swap(Value); 95 VerboseOutputStream = OwnedVerboseOutputStream.get(); 96 } 97 98 void CompilerInstance::setTarget(TargetInfo *Value) { Target = Value; } 99 void CompilerInstance::setAuxTarget(TargetInfo *Value) { AuxTarget = Value; } 100 101 bool CompilerInstance::createTarget() { 102 // Create the target instance. 103 setTarget(TargetInfo::CreateTargetInfo(getDiagnostics(), 104 getInvocation().TargetOpts)); 105 if (!hasTarget()) 106 return false; 107 108 // Check whether AuxTarget exists, if not, then create TargetInfo for the 109 // other side of CUDA/OpenMP/SYCL compilation. 110 if (!getAuxTarget() && 111 (getLangOpts().CUDA || getLangOpts().OpenMPIsDevice || 112 getLangOpts().SYCLIsDevice) && 113 !getFrontendOpts().AuxTriple.empty()) { 114 auto TO = std::make_shared<TargetOptions>(); 115 TO->Triple = llvm::Triple::normalize(getFrontendOpts().AuxTriple); 116 if (getFrontendOpts().AuxTargetCPU) 117 TO->CPU = getFrontendOpts().AuxTargetCPU.getValue(); 118 if (getFrontendOpts().AuxTargetFeatures) 119 TO->FeaturesAsWritten = getFrontendOpts().AuxTargetFeatures.getValue(); 120 TO->HostTriple = getTarget().getTriple().str(); 121 setAuxTarget(TargetInfo::CreateTargetInfo(getDiagnostics(), TO)); 122 } 123 124 if (!getTarget().hasStrictFP() && !getLangOpts().ExpStrictFP) { 125 if (getLangOpts().getFPRoundingMode() != 126 llvm::RoundingMode::NearestTiesToEven) { 127 getDiagnostics().Report(diag::warn_fe_backend_unsupported_fp_rounding); 128 getLangOpts().setFPRoundingMode(llvm::RoundingMode::NearestTiesToEven); 129 } 130 if (getLangOpts().getFPExceptionMode() != LangOptions::FPE_Ignore) { 131 getDiagnostics().Report(diag::warn_fe_backend_unsupported_fp_exceptions); 132 getLangOpts().setFPExceptionMode(LangOptions::FPE_Ignore); 133 } 134 // FIXME: can we disable FEnvAccess? 135 } 136 137 // We should do it here because target knows nothing about 138 // language options when it's being created. 139 if (getLangOpts().OpenCL && 140 !getTarget().validateOpenCLTarget(getLangOpts(), getDiagnostics())) 141 return false; 142 143 // Inform the target of the language options. 144 // FIXME: We shouldn't need to do this, the target should be immutable once 145 // created. This complexity should be lifted elsewhere. 146 getTarget().adjust(getDiagnostics(), getLangOpts()); 147 148 // Adjust target options based on codegen options. 149 getTarget().adjustTargetOptions(getCodeGenOpts(), getTargetOpts()); 150 151 if (auto *Aux = getAuxTarget()) 152 getTarget().setAuxTarget(Aux); 153 154 return true; 155 } 156 157 llvm::vfs::FileSystem &CompilerInstance::getVirtualFileSystem() const { 158 return getFileManager().getVirtualFileSystem(); 159 } 160 161 void CompilerInstance::setFileManager(FileManager *Value) { 162 FileMgr = Value; 163 } 164 165 void CompilerInstance::setSourceManager(SourceManager *Value) { 166 SourceMgr = Value; 167 } 168 169 void CompilerInstance::setPreprocessor(std::shared_ptr<Preprocessor> Value) { 170 PP = std::move(Value); 171 } 172 173 void CompilerInstance::setASTContext(ASTContext *Value) { 174 Context = Value; 175 176 if (Context && Consumer) 177 getASTConsumer().Initialize(getASTContext()); 178 } 179 180 void CompilerInstance::setSema(Sema *S) { 181 TheSema.reset(S); 182 } 183 184 void CompilerInstance::setASTConsumer(std::unique_ptr<ASTConsumer> Value) { 185 Consumer = std::move(Value); 186 187 if (Context && Consumer) 188 getASTConsumer().Initialize(getASTContext()); 189 } 190 191 void CompilerInstance::setCodeCompletionConsumer(CodeCompleteConsumer *Value) { 192 CompletionConsumer.reset(Value); 193 } 194 195 std::unique_ptr<Sema> CompilerInstance::takeSema() { 196 return std::move(TheSema); 197 } 198 199 IntrusiveRefCntPtr<ASTReader> CompilerInstance::getASTReader() const { 200 return TheASTReader; 201 } 202 void CompilerInstance::setASTReader(IntrusiveRefCntPtr<ASTReader> Reader) { 203 assert(ModuleCache.get() == &Reader->getModuleManager().getModuleCache() && 204 "Expected ASTReader to use the same PCM cache"); 205 TheASTReader = std::move(Reader); 206 } 207 208 std::shared_ptr<ModuleDependencyCollector> 209 CompilerInstance::getModuleDepCollector() const { 210 return ModuleDepCollector; 211 } 212 213 void CompilerInstance::setModuleDepCollector( 214 std::shared_ptr<ModuleDependencyCollector> Collector) { 215 ModuleDepCollector = std::move(Collector); 216 } 217 218 static void collectHeaderMaps(const HeaderSearch &HS, 219 std::shared_ptr<ModuleDependencyCollector> MDC) { 220 SmallVector<std::string, 4> HeaderMapFileNames; 221 HS.getHeaderMapFileNames(HeaderMapFileNames); 222 for (auto &Name : HeaderMapFileNames) 223 MDC->addFile(Name); 224 } 225 226 static void collectIncludePCH(CompilerInstance &CI, 227 std::shared_ptr<ModuleDependencyCollector> MDC) { 228 const PreprocessorOptions &PPOpts = CI.getPreprocessorOpts(); 229 if (PPOpts.ImplicitPCHInclude.empty()) 230 return; 231 232 StringRef PCHInclude = PPOpts.ImplicitPCHInclude; 233 FileManager &FileMgr = CI.getFileManager(); 234 auto PCHDir = FileMgr.getDirectory(PCHInclude); 235 if (!PCHDir) { 236 MDC->addFile(PCHInclude); 237 return; 238 } 239 240 std::error_code EC; 241 SmallString<128> DirNative; 242 llvm::sys::path::native((*PCHDir)->getName(), DirNative); 243 llvm::vfs::FileSystem &FS = FileMgr.getVirtualFileSystem(); 244 SimpleASTReaderListener Validator(CI.getPreprocessor()); 245 for (llvm::vfs::directory_iterator Dir = FS.dir_begin(DirNative, EC), DirEnd; 246 Dir != DirEnd && !EC; Dir.increment(EC)) { 247 // Check whether this is an AST file. ASTReader::isAcceptableASTFile is not 248 // used here since we're not interested in validating the PCH at this time, 249 // but only to check whether this is a file containing an AST. 250 if (!ASTReader::readASTFileControlBlock( 251 Dir->path(), FileMgr, CI.getPCHContainerReader(), 252 /*FindModuleFileExtensions=*/false, Validator, 253 /*ValidateDiagnosticOptions=*/false)) 254 MDC->addFile(Dir->path()); 255 } 256 } 257 258 static void collectVFSEntries(CompilerInstance &CI, 259 std::shared_ptr<ModuleDependencyCollector> MDC) { 260 if (CI.getHeaderSearchOpts().VFSOverlayFiles.empty()) 261 return; 262 263 // Collect all VFS found. 264 SmallVector<llvm::vfs::YAMLVFSEntry, 16> VFSEntries; 265 for (const std::string &VFSFile : CI.getHeaderSearchOpts().VFSOverlayFiles) { 266 llvm::ErrorOr<std::unique_ptr<llvm::MemoryBuffer>> Buffer = 267 llvm::MemoryBuffer::getFile(VFSFile); 268 if (!Buffer) 269 return; 270 llvm::vfs::collectVFSFromYAML(std::move(Buffer.get()), 271 /*DiagHandler*/ nullptr, VFSFile, VFSEntries); 272 } 273 274 for (auto &E : VFSEntries) 275 MDC->addFile(E.VPath, E.RPath); 276 } 277 278 // Diagnostics 279 static void SetUpDiagnosticLog(DiagnosticOptions *DiagOpts, 280 const CodeGenOptions *CodeGenOpts, 281 DiagnosticsEngine &Diags) { 282 std::error_code EC; 283 std::unique_ptr<raw_ostream> StreamOwner; 284 raw_ostream *OS = &llvm::errs(); 285 if (DiagOpts->DiagnosticLogFile != "-") { 286 // Create the output stream. 287 auto FileOS = std::make_unique<llvm::raw_fd_ostream>( 288 DiagOpts->DiagnosticLogFile, EC, 289 llvm::sys::fs::OF_Append | llvm::sys::fs::OF_TextWithCRLF); 290 if (EC) { 291 Diags.Report(diag::warn_fe_cc_log_diagnostics_failure) 292 << DiagOpts->DiagnosticLogFile << EC.message(); 293 } else { 294 FileOS->SetUnbuffered(); 295 OS = FileOS.get(); 296 StreamOwner = std::move(FileOS); 297 } 298 } 299 300 // Chain in the diagnostic client which will log the diagnostics. 301 auto Logger = std::make_unique<LogDiagnosticPrinter>(*OS, DiagOpts, 302 std::move(StreamOwner)); 303 if (CodeGenOpts) 304 Logger->setDwarfDebugFlags(CodeGenOpts->DwarfDebugFlags); 305 if (Diags.ownsClient()) { 306 Diags.setClient( 307 new ChainedDiagnosticConsumer(Diags.takeClient(), std::move(Logger))); 308 } else { 309 Diags.setClient( 310 new ChainedDiagnosticConsumer(Diags.getClient(), std::move(Logger))); 311 } 312 } 313 314 static void SetupSerializedDiagnostics(DiagnosticOptions *DiagOpts, 315 DiagnosticsEngine &Diags, 316 StringRef OutputFile) { 317 auto SerializedConsumer = 318 clang::serialized_diags::create(OutputFile, DiagOpts); 319 320 if (Diags.ownsClient()) { 321 Diags.setClient(new ChainedDiagnosticConsumer( 322 Diags.takeClient(), std::move(SerializedConsumer))); 323 } else { 324 Diags.setClient(new ChainedDiagnosticConsumer( 325 Diags.getClient(), std::move(SerializedConsumer))); 326 } 327 } 328 329 void CompilerInstance::createDiagnostics(DiagnosticConsumer *Client, 330 bool ShouldOwnClient) { 331 Diagnostics = createDiagnostics(&getDiagnosticOpts(), Client, 332 ShouldOwnClient, &getCodeGenOpts()); 333 } 334 335 IntrusiveRefCntPtr<DiagnosticsEngine> 336 CompilerInstance::createDiagnostics(DiagnosticOptions *Opts, 337 DiagnosticConsumer *Client, 338 bool ShouldOwnClient, 339 const CodeGenOptions *CodeGenOpts) { 340 IntrusiveRefCntPtr<DiagnosticIDs> DiagID(new DiagnosticIDs()); 341 IntrusiveRefCntPtr<DiagnosticsEngine> 342 Diags(new DiagnosticsEngine(DiagID, Opts)); 343 344 // Create the diagnostic client for reporting errors or for 345 // implementing -verify. 346 if (Client) { 347 Diags->setClient(Client, ShouldOwnClient); 348 } else 349 Diags->setClient(new TextDiagnosticPrinter(llvm::errs(), Opts)); 350 351 // Chain in -verify checker, if requested. 352 if (Opts->VerifyDiagnostics) 353 Diags->setClient(new VerifyDiagnosticConsumer(*Diags)); 354 355 // Chain in -diagnostic-log-file dumper, if requested. 356 if (!Opts->DiagnosticLogFile.empty()) 357 SetUpDiagnosticLog(Opts, CodeGenOpts, *Diags); 358 359 if (!Opts->DiagnosticSerializationFile.empty()) 360 SetupSerializedDiagnostics(Opts, *Diags, 361 Opts->DiagnosticSerializationFile); 362 363 // Configure our handling of diagnostics. 364 ProcessWarningOptions(*Diags, *Opts); 365 366 return Diags; 367 } 368 369 // File Manager 370 371 FileManager *CompilerInstance::createFileManager( 372 IntrusiveRefCntPtr<llvm::vfs::FileSystem> VFS) { 373 if (!VFS) 374 VFS = FileMgr ? &FileMgr->getVirtualFileSystem() 375 : createVFSFromCompilerInvocation(getInvocation(), 376 getDiagnostics()); 377 assert(VFS && "FileManager has no VFS?"); 378 FileMgr = new FileManager(getFileSystemOpts(), std::move(VFS)); 379 return FileMgr.get(); 380 } 381 382 // Source Manager 383 384 void CompilerInstance::createSourceManager(FileManager &FileMgr) { 385 SourceMgr = new SourceManager(getDiagnostics(), FileMgr); 386 } 387 388 // Initialize the remapping of files to alternative contents, e.g., 389 // those specified through other files. 390 static void InitializeFileRemapping(DiagnosticsEngine &Diags, 391 SourceManager &SourceMgr, 392 FileManager &FileMgr, 393 const PreprocessorOptions &InitOpts) { 394 // Remap files in the source manager (with buffers). 395 for (const auto &RB : InitOpts.RemappedFileBuffers) { 396 // Create the file entry for the file that we're mapping from. 397 const FileEntry *FromFile = 398 FileMgr.getVirtualFile(RB.first, RB.second->getBufferSize(), 0); 399 if (!FromFile) { 400 Diags.Report(diag::err_fe_remap_missing_from_file) << RB.first; 401 if (!InitOpts.RetainRemappedFileBuffers) 402 delete RB.second; 403 continue; 404 } 405 406 // Override the contents of the "from" file with the contents of the 407 // "to" file. If the caller owns the buffers, then pass a MemoryBufferRef; 408 // otherwise, pass as a std::unique_ptr<MemoryBuffer> to transfer ownership 409 // to the SourceManager. 410 if (InitOpts.RetainRemappedFileBuffers) 411 SourceMgr.overrideFileContents(FromFile, RB.second->getMemBufferRef()); 412 else 413 SourceMgr.overrideFileContents( 414 FromFile, std::unique_ptr<llvm::MemoryBuffer>( 415 const_cast<llvm::MemoryBuffer *>(RB.second))); 416 } 417 418 // Remap files in the source manager (with other files). 419 for (const auto &RF : InitOpts.RemappedFiles) { 420 // Find the file that we're mapping to. 421 auto ToFile = FileMgr.getFile(RF.second); 422 if (!ToFile) { 423 Diags.Report(diag::err_fe_remap_missing_to_file) << RF.first << RF.second; 424 continue; 425 } 426 427 // Create the file entry for the file that we're mapping from. 428 const FileEntry *FromFile = 429 FileMgr.getVirtualFile(RF.first, (*ToFile)->getSize(), 0); 430 if (!FromFile) { 431 Diags.Report(diag::err_fe_remap_missing_from_file) << RF.first; 432 continue; 433 } 434 435 // Override the contents of the "from" file with the contents of 436 // the "to" file. 437 SourceMgr.overrideFileContents(FromFile, *ToFile); 438 } 439 440 SourceMgr.setOverridenFilesKeepOriginalName( 441 InitOpts.RemappedFilesKeepOriginalName); 442 } 443 444 // Preprocessor 445 446 void CompilerInstance::createPreprocessor(TranslationUnitKind TUKind) { 447 const PreprocessorOptions &PPOpts = getPreprocessorOpts(); 448 449 // The AST reader holds a reference to the old preprocessor (if any). 450 TheASTReader.reset(); 451 452 // Create the Preprocessor. 453 HeaderSearch *HeaderInfo = 454 new HeaderSearch(getHeaderSearchOptsPtr(), getSourceManager(), 455 getDiagnostics(), getLangOpts(), &getTarget()); 456 PP = std::make_shared<Preprocessor>(Invocation->getPreprocessorOptsPtr(), 457 getDiagnostics(), getLangOpts(), 458 getSourceManager(), *HeaderInfo, *this, 459 /*IdentifierInfoLookup=*/nullptr, 460 /*OwnsHeaderSearch=*/true, TUKind); 461 getTarget().adjust(getDiagnostics(), getLangOpts()); 462 PP->Initialize(getTarget(), getAuxTarget()); 463 464 if (PPOpts.DetailedRecord) 465 PP->createPreprocessingRecord(); 466 467 // Apply remappings to the source manager. 468 InitializeFileRemapping(PP->getDiagnostics(), PP->getSourceManager(), 469 PP->getFileManager(), PPOpts); 470 471 // Predefine macros and configure the preprocessor. 472 InitializePreprocessor(*PP, PPOpts, getPCHContainerReader(), 473 getFrontendOpts()); 474 475 // Initialize the header search object. In CUDA compilations, we use the aux 476 // triple (the host triple) to initialize our header search, since we need to 477 // find the host headers in order to compile the CUDA code. 478 const llvm::Triple *HeaderSearchTriple = &PP->getTargetInfo().getTriple(); 479 if (PP->getTargetInfo().getTriple().getOS() == llvm::Triple::CUDA && 480 PP->getAuxTargetInfo()) 481 HeaderSearchTriple = &PP->getAuxTargetInfo()->getTriple(); 482 483 ApplyHeaderSearchOptions(PP->getHeaderSearchInfo(), getHeaderSearchOpts(), 484 PP->getLangOpts(), *HeaderSearchTriple); 485 486 PP->setPreprocessedOutput(getPreprocessorOutputOpts().ShowCPP); 487 488 if (PP->getLangOpts().Modules && PP->getLangOpts().ImplicitModules) { 489 std::string ModuleHash = getInvocation().getModuleHash(); 490 PP->getHeaderSearchInfo().setModuleHash(ModuleHash); 491 PP->getHeaderSearchInfo().setModuleCachePath( 492 getSpecificModuleCachePath(ModuleHash)); 493 } 494 495 // Handle generating dependencies, if requested. 496 const DependencyOutputOptions &DepOpts = getDependencyOutputOpts(); 497 if (!DepOpts.OutputFile.empty()) 498 addDependencyCollector(std::make_shared<DependencyFileGenerator>(DepOpts)); 499 if (!DepOpts.DOTOutputFile.empty()) 500 AttachDependencyGraphGen(*PP, DepOpts.DOTOutputFile, 501 getHeaderSearchOpts().Sysroot); 502 503 // If we don't have a collector, but we are collecting module dependencies, 504 // then we're the top level compiler instance and need to create one. 505 if (!ModuleDepCollector && !DepOpts.ModuleDependencyOutputDir.empty()) { 506 ModuleDepCollector = std::make_shared<ModuleDependencyCollector>( 507 DepOpts.ModuleDependencyOutputDir); 508 } 509 510 // If there is a module dep collector, register with other dep collectors 511 // and also (a) collect header maps and (b) TODO: input vfs overlay files. 512 if (ModuleDepCollector) { 513 addDependencyCollector(ModuleDepCollector); 514 collectHeaderMaps(PP->getHeaderSearchInfo(), ModuleDepCollector); 515 collectIncludePCH(*this, ModuleDepCollector); 516 collectVFSEntries(*this, ModuleDepCollector); 517 } 518 519 for (auto &Listener : DependencyCollectors) 520 Listener->attachToPreprocessor(*PP); 521 522 // Handle generating header include information, if requested. 523 if (DepOpts.ShowHeaderIncludes) 524 AttachHeaderIncludeGen(*PP, DepOpts); 525 if (!DepOpts.HeaderIncludeOutputFile.empty()) { 526 StringRef OutputPath = DepOpts.HeaderIncludeOutputFile; 527 if (OutputPath == "-") 528 OutputPath = ""; 529 AttachHeaderIncludeGen(*PP, DepOpts, 530 /*ShowAllHeaders=*/true, OutputPath, 531 /*ShowDepth=*/false); 532 } 533 534 if (DepOpts.ShowIncludesDest != ShowIncludesDestination::None) { 535 AttachHeaderIncludeGen(*PP, DepOpts, 536 /*ShowAllHeaders=*/true, /*OutputPath=*/"", 537 /*ShowDepth=*/true, /*MSStyle=*/true); 538 } 539 } 540 541 std::string CompilerInstance::getSpecificModuleCachePath(StringRef ModuleHash) { 542 // Set up the module path, including the hash for the module-creation options. 543 SmallString<256> SpecificModuleCache(getHeaderSearchOpts().ModuleCachePath); 544 if (!SpecificModuleCache.empty() && !getHeaderSearchOpts().DisableModuleHash) 545 llvm::sys::path::append(SpecificModuleCache, ModuleHash); 546 return std::string(SpecificModuleCache.str()); 547 } 548 549 // ASTContext 550 551 void CompilerInstance::createASTContext() { 552 Preprocessor &PP = getPreprocessor(); 553 auto *Context = new ASTContext(getLangOpts(), PP.getSourceManager(), 554 PP.getIdentifierTable(), PP.getSelectorTable(), 555 PP.getBuiltinInfo(), PP.TUKind); 556 Context->InitBuiltinTypes(getTarget(), getAuxTarget()); 557 setASTContext(Context); 558 } 559 560 // ExternalASTSource 561 562 void CompilerInstance::createPCHExternalASTSource( 563 StringRef Path, DisableValidationForModuleKind DisableValidation, 564 bool AllowPCHWithCompilerErrors, void *DeserializationListener, 565 bool OwnDeserializationListener) { 566 bool Preamble = getPreprocessorOpts().PrecompiledPreambleBytes.first != 0; 567 TheASTReader = createPCHExternalASTSource( 568 Path, getHeaderSearchOpts().Sysroot, DisableValidation, 569 AllowPCHWithCompilerErrors, getPreprocessor(), getModuleCache(), 570 getASTContext(), getPCHContainerReader(), 571 getFrontendOpts().ModuleFileExtensions, DependencyCollectors, 572 DeserializationListener, OwnDeserializationListener, Preamble, 573 getFrontendOpts().UseGlobalModuleIndex); 574 } 575 576 IntrusiveRefCntPtr<ASTReader> CompilerInstance::createPCHExternalASTSource( 577 StringRef Path, StringRef Sysroot, 578 DisableValidationForModuleKind DisableValidation, 579 bool AllowPCHWithCompilerErrors, Preprocessor &PP, 580 InMemoryModuleCache &ModuleCache, ASTContext &Context, 581 const PCHContainerReader &PCHContainerRdr, 582 ArrayRef<std::shared_ptr<ModuleFileExtension>> Extensions, 583 ArrayRef<std::shared_ptr<DependencyCollector>> DependencyCollectors, 584 void *DeserializationListener, bool OwnDeserializationListener, 585 bool Preamble, bool UseGlobalModuleIndex) { 586 HeaderSearchOptions &HSOpts = PP.getHeaderSearchInfo().getHeaderSearchOpts(); 587 588 IntrusiveRefCntPtr<ASTReader> Reader(new ASTReader( 589 PP, ModuleCache, &Context, PCHContainerRdr, Extensions, 590 Sysroot.empty() ? "" : Sysroot.data(), DisableValidation, 591 AllowPCHWithCompilerErrors, /*AllowConfigurationMismatch*/ false, 592 HSOpts.ModulesValidateSystemHeaders, HSOpts.ValidateASTInputFilesContent, 593 UseGlobalModuleIndex)); 594 595 // We need the external source to be set up before we read the AST, because 596 // eagerly-deserialized declarations may use it. 597 Context.setExternalSource(Reader.get()); 598 599 Reader->setDeserializationListener( 600 static_cast<ASTDeserializationListener *>(DeserializationListener), 601 /*TakeOwnership=*/OwnDeserializationListener); 602 603 for (auto &Listener : DependencyCollectors) 604 Listener->attachToASTReader(*Reader); 605 606 switch (Reader->ReadAST(Path, 607 Preamble ? serialization::MK_Preamble 608 : serialization::MK_PCH, 609 SourceLocation(), 610 ASTReader::ARR_None)) { 611 case ASTReader::Success: 612 // Set the predefines buffer as suggested by the PCH reader. Typically, the 613 // predefines buffer will be empty. 614 PP.setPredefines(Reader->getSuggestedPredefines()); 615 return Reader; 616 617 case ASTReader::Failure: 618 // Unrecoverable failure: don't even try to process the input file. 619 break; 620 621 case ASTReader::Missing: 622 case ASTReader::OutOfDate: 623 case ASTReader::VersionMismatch: 624 case ASTReader::ConfigurationMismatch: 625 case ASTReader::HadErrors: 626 // No suitable PCH file could be found. Return an error. 627 break; 628 } 629 630 Context.setExternalSource(nullptr); 631 return nullptr; 632 } 633 634 // Code Completion 635 636 static bool EnableCodeCompletion(Preprocessor &PP, 637 StringRef Filename, 638 unsigned Line, 639 unsigned Column) { 640 // Tell the source manager to chop off the given file at a specific 641 // line and column. 642 auto Entry = PP.getFileManager().getFile(Filename); 643 if (!Entry) { 644 PP.getDiagnostics().Report(diag::err_fe_invalid_code_complete_file) 645 << Filename; 646 return true; 647 } 648 649 // Truncate the named file at the given line/column. 650 PP.SetCodeCompletionPoint(*Entry, Line, Column); 651 return false; 652 } 653 654 void CompilerInstance::createCodeCompletionConsumer() { 655 const ParsedSourceLocation &Loc = getFrontendOpts().CodeCompletionAt; 656 if (!CompletionConsumer) { 657 setCodeCompletionConsumer( 658 createCodeCompletionConsumer(getPreprocessor(), 659 Loc.FileName, Loc.Line, Loc.Column, 660 getFrontendOpts().CodeCompleteOpts, 661 llvm::outs())); 662 if (!CompletionConsumer) 663 return; 664 } else if (EnableCodeCompletion(getPreprocessor(), Loc.FileName, 665 Loc.Line, Loc.Column)) { 666 setCodeCompletionConsumer(nullptr); 667 return; 668 } 669 } 670 671 void CompilerInstance::createFrontendTimer() { 672 FrontendTimerGroup.reset( 673 new llvm::TimerGroup("frontend", "Clang front-end time report")); 674 FrontendTimer.reset( 675 new llvm::Timer("frontend", "Clang front-end timer", 676 *FrontendTimerGroup)); 677 } 678 679 CodeCompleteConsumer * 680 CompilerInstance::createCodeCompletionConsumer(Preprocessor &PP, 681 StringRef Filename, 682 unsigned Line, 683 unsigned Column, 684 const CodeCompleteOptions &Opts, 685 raw_ostream &OS) { 686 if (EnableCodeCompletion(PP, Filename, Line, Column)) 687 return nullptr; 688 689 // Set up the creation routine for code-completion. 690 return new PrintingCodeCompleteConsumer(Opts, OS); 691 } 692 693 void CompilerInstance::createSema(TranslationUnitKind TUKind, 694 CodeCompleteConsumer *CompletionConsumer) { 695 TheSema.reset(new Sema(getPreprocessor(), getASTContext(), getASTConsumer(), 696 TUKind, CompletionConsumer)); 697 // Attach the external sema source if there is any. 698 if (ExternalSemaSrc) { 699 TheSema->addExternalSource(ExternalSemaSrc.get()); 700 ExternalSemaSrc->InitializeSema(*TheSema); 701 } 702 } 703 704 // Output Files 705 706 void CompilerInstance::clearOutputFiles(bool EraseFiles) { 707 // Ignore errors that occur when trying to discard the temp file. 708 for (OutputFile &OF : OutputFiles) { 709 if (EraseFiles) { 710 if (OF.File) 711 consumeError(OF.File->discard()); 712 if (!OF.Filename.empty()) 713 llvm::sys::fs::remove(OF.Filename); 714 continue; 715 } 716 717 if (!OF.File) 718 continue; 719 720 if (OF.File->TmpName.empty()) { 721 consumeError(OF.File->discard()); 722 continue; 723 } 724 725 // If '-working-directory' was passed, the output filename should be 726 // relative to that. 727 SmallString<128> NewOutFile(OF.Filename); 728 FileMgr->FixupRelativePath(NewOutFile); 729 730 llvm::Error E = OF.File->keep(NewOutFile); 731 if (!E) 732 continue; 733 734 getDiagnostics().Report(diag::err_unable_to_rename_temp) 735 << OF.File->TmpName << OF.Filename << std::move(E); 736 737 llvm::sys::fs::remove(OF.File->TmpName); 738 } 739 OutputFiles.clear(); 740 if (DeleteBuiltModules) { 741 for (auto &Module : BuiltModules) 742 llvm::sys::fs::remove(Module.second); 743 BuiltModules.clear(); 744 } 745 } 746 747 std::unique_ptr<raw_pwrite_stream> CompilerInstance::createDefaultOutputFile( 748 bool Binary, StringRef InFile, StringRef Extension, bool RemoveFileOnSignal, 749 bool CreateMissingDirectories, bool ForceUseTemporary) { 750 StringRef OutputPath = getFrontendOpts().OutputFile; 751 Optional<SmallString<128>> PathStorage; 752 if (OutputPath.empty()) { 753 if (InFile == "-" || Extension.empty()) { 754 OutputPath = "-"; 755 } else { 756 PathStorage.emplace(InFile); 757 llvm::sys::path::replace_extension(*PathStorage, Extension); 758 OutputPath = *PathStorage; 759 } 760 } 761 762 return createOutputFile(OutputPath, Binary, RemoveFileOnSignal, 763 getFrontendOpts().UseTemporary || ForceUseTemporary, 764 CreateMissingDirectories); 765 } 766 767 std::unique_ptr<raw_pwrite_stream> CompilerInstance::createNullOutputFile() { 768 return std::make_unique<llvm::raw_null_ostream>(); 769 } 770 771 std::unique_ptr<raw_pwrite_stream> 772 CompilerInstance::createOutputFile(StringRef OutputPath, bool Binary, 773 bool RemoveFileOnSignal, bool UseTemporary, 774 bool CreateMissingDirectories) { 775 Expected<std::unique_ptr<raw_pwrite_stream>> OS = 776 createOutputFileImpl(OutputPath, Binary, RemoveFileOnSignal, UseTemporary, 777 CreateMissingDirectories); 778 if (OS) 779 return std::move(*OS); 780 getDiagnostics().Report(diag::err_fe_unable_to_open_output) 781 << OutputPath << errorToErrorCode(OS.takeError()).message(); 782 return nullptr; 783 } 784 785 Expected<std::unique_ptr<llvm::raw_pwrite_stream>> 786 CompilerInstance::createOutputFileImpl(StringRef OutputPath, bool Binary, 787 bool RemoveFileOnSignal, 788 bool UseTemporary, 789 bool CreateMissingDirectories) { 790 assert((!CreateMissingDirectories || UseTemporary) && 791 "CreateMissingDirectories is only allowed when using temporary files"); 792 793 std::unique_ptr<llvm::raw_fd_ostream> OS; 794 Optional<StringRef> OSFile; 795 796 if (UseTemporary) { 797 if (OutputPath == "-") 798 UseTemporary = false; 799 else { 800 llvm::sys::fs::file_status Status; 801 llvm::sys::fs::status(OutputPath, Status); 802 if (llvm::sys::fs::exists(Status)) { 803 // Fail early if we can't write to the final destination. 804 if (!llvm::sys::fs::can_write(OutputPath)) 805 return llvm::errorCodeToError( 806 make_error_code(llvm::errc::operation_not_permitted)); 807 808 // Don't use a temporary if the output is a special file. This handles 809 // things like '-o /dev/null' 810 if (!llvm::sys::fs::is_regular_file(Status)) 811 UseTemporary = false; 812 } 813 } 814 } 815 816 Optional<llvm::sys::fs::TempFile> Temp; 817 if (UseTemporary) { 818 // Create a temporary file. 819 // Insert -%%%%%%%% before the extension (if any), and because some tools 820 // (noticeable, clang's own GlobalModuleIndex.cpp) glob for build 821 // artifacts, also append .tmp. 822 StringRef OutputExtension = llvm::sys::path::extension(OutputPath); 823 SmallString<128> TempPath = 824 StringRef(OutputPath).drop_back(OutputExtension.size()); 825 TempPath += "-%%%%%%%%"; 826 TempPath += OutputExtension; 827 TempPath += ".tmp"; 828 Expected<llvm::sys::fs::TempFile> ExpectedFile = 829 llvm::sys::fs::TempFile::create( 830 TempPath, llvm::sys::fs::all_read | llvm::sys::fs::all_write, 831 Binary ? llvm::sys::fs::OF_None : llvm::sys::fs::OF_Text); 832 833 llvm::Error E = handleErrors( 834 ExpectedFile.takeError(), [&](const llvm::ECError &E) -> llvm::Error { 835 std::error_code EC = E.convertToErrorCode(); 836 if (CreateMissingDirectories && 837 EC == llvm::errc::no_such_file_or_directory) { 838 StringRef Parent = llvm::sys::path::parent_path(OutputPath); 839 EC = llvm::sys::fs::create_directories(Parent); 840 if (!EC) { 841 ExpectedFile = llvm::sys::fs::TempFile::create(TempPath); 842 if (!ExpectedFile) 843 return llvm::errorCodeToError( 844 llvm::errc::no_such_file_or_directory); 845 } 846 } 847 return llvm::errorCodeToError(EC); 848 }); 849 850 if (E) { 851 consumeError(std::move(E)); 852 } else { 853 Temp = std::move(ExpectedFile.get()); 854 OS.reset(new llvm::raw_fd_ostream(Temp->FD, /*shouldClose=*/false)); 855 OSFile = Temp->TmpName; 856 } 857 // If we failed to create the temporary, fallback to writing to the file 858 // directly. This handles the corner case where we cannot write to the 859 // directory, but can write to the file. 860 } 861 862 if (!OS) { 863 OSFile = OutputPath; 864 std::error_code EC; 865 OS.reset(new llvm::raw_fd_ostream( 866 *OSFile, EC, 867 (Binary ? llvm::sys::fs::OF_None : llvm::sys::fs::OF_TextWithCRLF))); 868 if (EC) 869 return llvm::errorCodeToError(EC); 870 } 871 872 // Add the output file -- but don't try to remove "-", since this means we are 873 // using stdin. 874 OutputFiles.emplace_back(((OutputPath != "-") ? OutputPath : "").str(), 875 std::move(Temp)); 876 877 if (!Binary || OS->supportsSeeking()) 878 return std::move(OS); 879 880 return std::make_unique<llvm::buffer_unique_ostream>(std::move(OS)); 881 } 882 883 // Initialization Utilities 884 885 bool CompilerInstance::InitializeSourceManager(const FrontendInputFile &Input){ 886 return InitializeSourceManager(Input, getDiagnostics(), getFileManager(), 887 getSourceManager()); 888 } 889 890 // static 891 bool CompilerInstance::InitializeSourceManager(const FrontendInputFile &Input, 892 DiagnosticsEngine &Diags, 893 FileManager &FileMgr, 894 SourceManager &SourceMgr) { 895 SrcMgr::CharacteristicKind Kind = 896 Input.getKind().getFormat() == InputKind::ModuleMap 897 ? Input.isSystem() ? SrcMgr::C_System_ModuleMap 898 : SrcMgr::C_User_ModuleMap 899 : Input.isSystem() ? SrcMgr::C_System : SrcMgr::C_User; 900 901 if (Input.isBuffer()) { 902 SourceMgr.setMainFileID(SourceMgr.createFileID(Input.getBuffer(), Kind)); 903 assert(SourceMgr.getMainFileID().isValid() && 904 "Couldn't establish MainFileID!"); 905 return true; 906 } 907 908 StringRef InputFile = Input.getFile(); 909 910 // Figure out where to get and map in the main file. 911 auto FileOrErr = InputFile == "-" 912 ? FileMgr.getSTDIN() 913 : FileMgr.getFileRef(InputFile, /*OpenFile=*/true); 914 if (!FileOrErr) { 915 // FIXME: include the error in the diagnostic even when it's not stdin. 916 auto EC = llvm::errorToErrorCode(FileOrErr.takeError()); 917 if (InputFile != "-") 918 Diags.Report(diag::err_fe_error_reading) << InputFile; 919 else 920 Diags.Report(diag::err_fe_error_reading_stdin) << EC.message(); 921 return false; 922 } 923 924 SourceMgr.setMainFileID( 925 SourceMgr.createFileID(*FileOrErr, SourceLocation(), Kind)); 926 927 assert(SourceMgr.getMainFileID().isValid() && 928 "Couldn't establish MainFileID!"); 929 return true; 930 } 931 932 // High-Level Operations 933 934 bool CompilerInstance::ExecuteAction(FrontendAction &Act) { 935 assert(hasDiagnostics() && "Diagnostics engine is not initialized!"); 936 assert(!getFrontendOpts().ShowHelp && "Client must handle '-help'!"); 937 assert(!getFrontendOpts().ShowVersion && "Client must handle '-version'!"); 938 939 // Mark this point as the bottom of the stack if we don't have somewhere 940 // better. We generally expect frontend actions to be invoked with (nearly) 941 // DesiredStackSpace available. 942 noteBottomOfStack(); 943 944 raw_ostream &OS = getVerboseOutputStream(); 945 946 if (!Act.PrepareToExecute(*this)) 947 return false; 948 949 if (!createTarget()) 950 return false; 951 952 // rewriter project will change target built-in bool type from its default. 953 if (getFrontendOpts().ProgramAction == frontend::RewriteObjC) 954 getTarget().noSignedCharForObjCBool(); 955 956 // Validate/process some options. 957 if (getHeaderSearchOpts().Verbose) 958 OS << "clang -cc1 version " CLANG_VERSION_STRING 959 << " based upon " << BACKEND_PACKAGE_STRING 960 << " default target " << llvm::sys::getDefaultTargetTriple() << "\n"; 961 962 if (getCodeGenOpts().TimePasses) 963 createFrontendTimer(); 964 965 if (getFrontendOpts().ShowStats || !getFrontendOpts().StatsFile.empty()) 966 llvm::EnableStatistics(false); 967 968 for (const FrontendInputFile &FIF : getFrontendOpts().Inputs) { 969 // Reset the ID tables if we are reusing the SourceManager and parsing 970 // regular files. 971 if (hasSourceManager() && !Act.isModelParsingAction()) 972 getSourceManager().clearIDTables(); 973 974 if (Act.BeginSourceFile(*this, FIF)) { 975 if (llvm::Error Err = Act.Execute()) { 976 consumeError(std::move(Err)); // FIXME this drops errors on the floor. 977 } 978 Act.EndSourceFile(); 979 } 980 } 981 982 // Notify the diagnostic client that all files were processed. 983 getDiagnostics().getClient()->finish(); 984 985 if (getDiagnosticOpts().ShowCarets) { 986 // We can have multiple diagnostics sharing one diagnostic client. 987 // Get the total number of warnings/errors from the client. 988 unsigned NumWarnings = getDiagnostics().getClient()->getNumWarnings(); 989 unsigned NumErrors = getDiagnostics().getClient()->getNumErrors(); 990 991 if (NumWarnings) 992 OS << NumWarnings << " warning" << (NumWarnings == 1 ? "" : "s"); 993 if (NumWarnings && NumErrors) 994 OS << " and "; 995 if (NumErrors) 996 OS << NumErrors << " error" << (NumErrors == 1 ? "" : "s"); 997 if (NumWarnings || NumErrors) { 998 OS << " generated"; 999 if (getLangOpts().CUDA) { 1000 if (!getLangOpts().CUDAIsDevice) { 1001 OS << " when compiling for host"; 1002 } else { 1003 OS << " when compiling for " << getTargetOpts().CPU; 1004 } 1005 } 1006 OS << ".\n"; 1007 } 1008 } 1009 1010 if (getFrontendOpts().ShowStats) { 1011 if (hasFileManager()) { 1012 getFileManager().PrintStats(); 1013 OS << '\n'; 1014 } 1015 llvm::PrintStatistics(OS); 1016 } 1017 StringRef StatsFile = getFrontendOpts().StatsFile; 1018 if (!StatsFile.empty()) { 1019 std::error_code EC; 1020 auto StatS = std::make_unique<llvm::raw_fd_ostream>( 1021 StatsFile, EC, llvm::sys::fs::OF_TextWithCRLF); 1022 if (EC) { 1023 getDiagnostics().Report(diag::warn_fe_unable_to_open_stats_file) 1024 << StatsFile << EC.message(); 1025 } else { 1026 llvm::PrintStatisticsJSON(*StatS); 1027 } 1028 } 1029 1030 return !getDiagnostics().getClient()->getNumErrors(); 1031 } 1032 1033 void CompilerInstance::LoadRequestedPlugins() { 1034 // Load any requested plugins. 1035 for (const std::string &Path : getFrontendOpts().Plugins) { 1036 std::string Error; 1037 if (llvm::sys::DynamicLibrary::LoadLibraryPermanently(Path.c_str(), &Error)) 1038 getDiagnostics().Report(diag::err_fe_unable_to_load_plugin) 1039 << Path << Error; 1040 } 1041 1042 // Check if any of the loaded plugins replaces the main AST action 1043 for (const FrontendPluginRegistry::entry &Plugin : 1044 FrontendPluginRegistry::entries()) { 1045 std::unique_ptr<PluginASTAction> P(Plugin.instantiate()); 1046 if (P->getActionType() == PluginASTAction::ReplaceAction) { 1047 getFrontendOpts().ProgramAction = clang::frontend::PluginAction; 1048 getFrontendOpts().ActionName = Plugin.getName().str(); 1049 break; 1050 } 1051 } 1052 } 1053 1054 /// Determine the appropriate source input kind based on language 1055 /// options. 1056 static Language getLanguageFromOptions(const LangOptions &LangOpts) { 1057 if (LangOpts.OpenCL) 1058 return Language::OpenCL; 1059 if (LangOpts.CUDA) 1060 return Language::CUDA; 1061 if (LangOpts.ObjC) 1062 return LangOpts.CPlusPlus ? Language::ObjCXX : Language::ObjC; 1063 return LangOpts.CPlusPlus ? Language::CXX : Language::C; 1064 } 1065 1066 /// Compile a module file for the given module, using the options 1067 /// provided by the importing compiler instance. Returns true if the module 1068 /// was built without errors. 1069 static bool 1070 compileModuleImpl(CompilerInstance &ImportingInstance, SourceLocation ImportLoc, 1071 StringRef ModuleName, FrontendInputFile Input, 1072 StringRef OriginalModuleMapFile, StringRef ModuleFileName, 1073 llvm::function_ref<void(CompilerInstance &)> PreBuildStep = 1074 [](CompilerInstance &) {}, 1075 llvm::function_ref<void(CompilerInstance &)> PostBuildStep = 1076 [](CompilerInstance &) {}) { 1077 llvm::TimeTraceScope TimeScope("Module Compile", ModuleName); 1078 1079 // Never compile a module that's already finalized - this would cause the 1080 // existing module to be freed, causing crashes if it is later referenced 1081 if (ImportingInstance.getModuleCache().isPCMFinal(ModuleFileName)) { 1082 ImportingInstance.getDiagnostics().Report( 1083 ImportLoc, diag::err_module_rebuild_finalized) 1084 << ModuleName; 1085 return false; 1086 } 1087 1088 // Construct a compiler invocation for creating this module. 1089 auto Invocation = 1090 std::make_shared<CompilerInvocation>(ImportingInstance.getInvocation()); 1091 1092 PreprocessorOptions &PPOpts = Invocation->getPreprocessorOpts(); 1093 1094 // For any options that aren't intended to affect how a module is built, 1095 // reset them to their default values. 1096 Invocation->getLangOpts()->resetNonModularOptions(); 1097 PPOpts.resetNonModularOptions(); 1098 1099 // Remove any macro definitions that are explicitly ignored by the module. 1100 // They aren't supposed to affect how the module is built anyway. 1101 HeaderSearchOptions &HSOpts = Invocation->getHeaderSearchOpts(); 1102 PPOpts.Macros.erase( 1103 std::remove_if(PPOpts.Macros.begin(), PPOpts.Macros.end(), 1104 [&HSOpts](const std::pair<std::string, bool> &def) { 1105 StringRef MacroDef = def.first; 1106 return HSOpts.ModulesIgnoreMacros.count( 1107 llvm::CachedHashString(MacroDef.split('=').first)) > 0; 1108 }), 1109 PPOpts.Macros.end()); 1110 1111 // If the original compiler invocation had -fmodule-name, pass it through. 1112 Invocation->getLangOpts()->ModuleName = 1113 ImportingInstance.getInvocation().getLangOpts()->ModuleName; 1114 1115 // Note the name of the module we're building. 1116 Invocation->getLangOpts()->CurrentModule = std::string(ModuleName); 1117 1118 // Make sure that the failed-module structure has been allocated in 1119 // the importing instance, and propagate the pointer to the newly-created 1120 // instance. 1121 PreprocessorOptions &ImportingPPOpts 1122 = ImportingInstance.getInvocation().getPreprocessorOpts(); 1123 if (!ImportingPPOpts.FailedModules) 1124 ImportingPPOpts.FailedModules = 1125 std::make_shared<PreprocessorOptions::FailedModulesSet>(); 1126 PPOpts.FailedModules = ImportingPPOpts.FailedModules; 1127 1128 // If there is a module map file, build the module using the module map. 1129 // Set up the inputs/outputs so that we build the module from its umbrella 1130 // header. 1131 FrontendOptions &FrontendOpts = Invocation->getFrontendOpts(); 1132 FrontendOpts.OutputFile = ModuleFileName.str(); 1133 FrontendOpts.DisableFree = false; 1134 FrontendOpts.GenerateGlobalModuleIndex = false; 1135 FrontendOpts.BuildingImplicitModule = true; 1136 FrontendOpts.OriginalModuleMap = std::string(OriginalModuleMapFile); 1137 // Force implicitly-built modules to hash the content of the module file. 1138 HSOpts.ModulesHashContent = true; 1139 FrontendOpts.Inputs = {Input}; 1140 1141 // Don't free the remapped file buffers; they are owned by our caller. 1142 PPOpts.RetainRemappedFileBuffers = true; 1143 1144 Invocation->getDiagnosticOpts().VerifyDiagnostics = 0; 1145 assert(ImportingInstance.getInvocation().getModuleHash() == 1146 Invocation->getModuleHash() && "Module hash mismatch!"); 1147 1148 // Construct a compiler instance that will be used to actually create the 1149 // module. Since we're sharing an in-memory module cache, 1150 // CompilerInstance::CompilerInstance is responsible for finalizing the 1151 // buffers to prevent use-after-frees. 1152 CompilerInstance Instance(ImportingInstance.getPCHContainerOperations(), 1153 &ImportingInstance.getModuleCache()); 1154 auto &Inv = *Invocation; 1155 Instance.setInvocation(std::move(Invocation)); 1156 1157 Instance.createDiagnostics(new ForwardingDiagnosticConsumer( 1158 ImportingInstance.getDiagnosticClient()), 1159 /*ShouldOwnClient=*/true); 1160 1161 // Note that this module is part of the module build stack, so that we 1162 // can detect cycles in the module graph. 1163 Instance.setFileManager(&ImportingInstance.getFileManager()); 1164 Instance.createSourceManager(Instance.getFileManager()); 1165 SourceManager &SourceMgr = Instance.getSourceManager(); 1166 SourceMgr.setModuleBuildStack( 1167 ImportingInstance.getSourceManager().getModuleBuildStack()); 1168 SourceMgr.pushModuleBuildStack(ModuleName, 1169 FullSourceLoc(ImportLoc, ImportingInstance.getSourceManager())); 1170 1171 // If we're collecting module dependencies, we need to share a collector 1172 // between all of the module CompilerInstances. Other than that, we don't 1173 // want to produce any dependency output from the module build. 1174 Instance.setModuleDepCollector(ImportingInstance.getModuleDepCollector()); 1175 Inv.getDependencyOutputOpts() = DependencyOutputOptions(); 1176 1177 ImportingInstance.getDiagnostics().Report(ImportLoc, 1178 diag::remark_module_build) 1179 << ModuleName << ModuleFileName; 1180 1181 PreBuildStep(Instance); 1182 1183 // Execute the action to actually build the module in-place. Use a separate 1184 // thread so that we get a stack large enough. 1185 llvm::CrashRecoveryContext CRC; 1186 CRC.RunSafelyOnThread( 1187 [&]() { 1188 GenerateModuleFromModuleMapAction Action; 1189 Instance.ExecuteAction(Action); 1190 }, 1191 DesiredStackSize); 1192 1193 PostBuildStep(Instance); 1194 1195 ImportingInstance.getDiagnostics().Report(ImportLoc, 1196 diag::remark_module_build_done) 1197 << ModuleName; 1198 1199 // Delete any remaining temporary files related to Instance, in case the 1200 // module generation thread crashed. 1201 Instance.clearOutputFiles(/*EraseFiles=*/true); 1202 1203 // If \p AllowPCMWithCompilerErrors is set return 'success' even if errors 1204 // occurred. 1205 return !Instance.getDiagnostics().hasErrorOccurred() || 1206 Instance.getFrontendOpts().AllowPCMWithCompilerErrors; 1207 } 1208 1209 static const FileEntry *getPublicModuleMap(const FileEntry *File, 1210 FileManager &FileMgr) { 1211 StringRef Filename = llvm::sys::path::filename(File->getName()); 1212 SmallString<128> PublicFilename(File->getDir()->getName()); 1213 if (Filename == "module_private.map") 1214 llvm::sys::path::append(PublicFilename, "module.map"); 1215 else if (Filename == "module.private.modulemap") 1216 llvm::sys::path::append(PublicFilename, "module.modulemap"); 1217 else 1218 return nullptr; 1219 if (auto FE = FileMgr.getFile(PublicFilename)) 1220 return *FE; 1221 return nullptr; 1222 } 1223 1224 /// Compile a module file for the given module in a separate compiler instance, 1225 /// using the options provided by the importing compiler instance. Returns true 1226 /// if the module was built without errors. 1227 static bool compileModule(CompilerInstance &ImportingInstance, 1228 SourceLocation ImportLoc, Module *Module, 1229 StringRef ModuleFileName) { 1230 InputKind IK(getLanguageFromOptions(ImportingInstance.getLangOpts()), 1231 InputKind::ModuleMap); 1232 1233 // Get or create the module map that we'll use to build this module. 1234 ModuleMap &ModMap 1235 = ImportingInstance.getPreprocessor().getHeaderSearchInfo().getModuleMap(); 1236 bool Result; 1237 if (const FileEntry *ModuleMapFile = 1238 ModMap.getContainingModuleMapFile(Module)) { 1239 // Canonicalize compilation to start with the public module map. This is 1240 // vital for submodules declarations in the private module maps to be 1241 // correctly parsed when depending on a top level module in the public one. 1242 if (const FileEntry *PublicMMFile = getPublicModuleMap( 1243 ModuleMapFile, ImportingInstance.getFileManager())) 1244 ModuleMapFile = PublicMMFile; 1245 1246 // Use the module map where this module resides. 1247 Result = compileModuleImpl( 1248 ImportingInstance, ImportLoc, Module->getTopLevelModuleName(), 1249 FrontendInputFile(ModuleMapFile->getName(), IK, +Module->IsSystem), 1250 ModMap.getModuleMapFileForUniquing(Module)->getName(), 1251 ModuleFileName); 1252 } else { 1253 // FIXME: We only need to fake up an input file here as a way of 1254 // transporting the module's directory to the module map parser. We should 1255 // be able to do that more directly, and parse from a memory buffer without 1256 // inventing this file. 1257 SmallString<128> FakeModuleMapFile(Module->Directory->getName()); 1258 llvm::sys::path::append(FakeModuleMapFile, "__inferred_module.map"); 1259 1260 std::string InferredModuleMapContent; 1261 llvm::raw_string_ostream OS(InferredModuleMapContent); 1262 Module->print(OS); 1263 OS.flush(); 1264 1265 Result = compileModuleImpl( 1266 ImportingInstance, ImportLoc, Module->getTopLevelModuleName(), 1267 FrontendInputFile(FakeModuleMapFile, IK, +Module->IsSystem), 1268 ModMap.getModuleMapFileForUniquing(Module)->getName(), 1269 ModuleFileName, 1270 [&](CompilerInstance &Instance) { 1271 std::unique_ptr<llvm::MemoryBuffer> ModuleMapBuffer = 1272 llvm::MemoryBuffer::getMemBuffer(InferredModuleMapContent); 1273 ModuleMapFile = Instance.getFileManager().getVirtualFile( 1274 FakeModuleMapFile, InferredModuleMapContent.size(), 0); 1275 Instance.getSourceManager().overrideFileContents( 1276 ModuleMapFile, std::move(ModuleMapBuffer)); 1277 }); 1278 } 1279 1280 // We've rebuilt a module. If we're allowed to generate or update the global 1281 // module index, record that fact in the importing compiler instance. 1282 if (ImportingInstance.getFrontendOpts().GenerateGlobalModuleIndex) { 1283 ImportingInstance.setBuildGlobalModuleIndex(true); 1284 } 1285 1286 return Result; 1287 } 1288 1289 /// Read the AST right after compiling the module. 1290 static bool readASTAfterCompileModule(CompilerInstance &ImportingInstance, 1291 SourceLocation ImportLoc, 1292 SourceLocation ModuleNameLoc, 1293 Module *Module, StringRef ModuleFileName, 1294 bool *OutOfDate) { 1295 DiagnosticsEngine &Diags = ImportingInstance.getDiagnostics(); 1296 1297 unsigned ModuleLoadCapabilities = ASTReader::ARR_Missing; 1298 if (OutOfDate) 1299 ModuleLoadCapabilities |= ASTReader::ARR_OutOfDate; 1300 1301 // Try to read the module file, now that we've compiled it. 1302 ASTReader::ASTReadResult ReadResult = 1303 ImportingInstance.getASTReader()->ReadAST( 1304 ModuleFileName, serialization::MK_ImplicitModule, ImportLoc, 1305 ModuleLoadCapabilities); 1306 if (ReadResult == ASTReader::Success) 1307 return true; 1308 1309 // The caller wants to handle out-of-date failures. 1310 if (OutOfDate && ReadResult == ASTReader::OutOfDate) { 1311 *OutOfDate = true; 1312 return false; 1313 } 1314 1315 // The ASTReader didn't diagnose the error, so conservatively report it. 1316 if (ReadResult == ASTReader::Missing || !Diags.hasErrorOccurred()) 1317 Diags.Report(ModuleNameLoc, diag::err_module_not_built) 1318 << Module->Name << SourceRange(ImportLoc, ModuleNameLoc); 1319 1320 return false; 1321 } 1322 1323 /// Compile a module in a separate compiler instance and read the AST, 1324 /// returning true if the module compiles without errors. 1325 static bool compileModuleAndReadASTImpl(CompilerInstance &ImportingInstance, 1326 SourceLocation ImportLoc, 1327 SourceLocation ModuleNameLoc, 1328 Module *Module, 1329 StringRef ModuleFileName) { 1330 if (!compileModule(ImportingInstance, ModuleNameLoc, Module, 1331 ModuleFileName)) { 1332 ImportingInstance.getDiagnostics().Report(ModuleNameLoc, 1333 diag::err_module_not_built) 1334 << Module->Name << SourceRange(ImportLoc, ModuleNameLoc); 1335 return false; 1336 } 1337 1338 return readASTAfterCompileModule(ImportingInstance, ImportLoc, ModuleNameLoc, 1339 Module, ModuleFileName, 1340 /*OutOfDate=*/nullptr); 1341 } 1342 1343 /// Compile a module in a separate compiler instance and read the AST, 1344 /// returning true if the module compiles without errors, using a lock manager 1345 /// to avoid building the same module in multiple compiler instances. 1346 /// 1347 /// Uses a lock file manager and exponential backoff to reduce the chances that 1348 /// multiple instances will compete to create the same module. On timeout, 1349 /// deletes the lock file in order to avoid deadlock from crashing processes or 1350 /// bugs in the lock file manager. 1351 static bool compileModuleAndReadASTBehindLock( 1352 CompilerInstance &ImportingInstance, SourceLocation ImportLoc, 1353 SourceLocation ModuleNameLoc, Module *Module, StringRef ModuleFileName) { 1354 DiagnosticsEngine &Diags = ImportingInstance.getDiagnostics(); 1355 1356 Diags.Report(ModuleNameLoc, diag::remark_module_lock) 1357 << ModuleFileName << Module->Name; 1358 1359 // FIXME: have LockFileManager return an error_code so that we can 1360 // avoid the mkdir when the directory already exists. 1361 StringRef Dir = llvm::sys::path::parent_path(ModuleFileName); 1362 llvm::sys::fs::create_directories(Dir); 1363 1364 while (1) { 1365 llvm::LockFileManager Locked(ModuleFileName); 1366 switch (Locked) { 1367 case llvm::LockFileManager::LFS_Error: 1368 // ModuleCache takes care of correctness and locks are only necessary for 1369 // performance. Fallback to building the module in case of any lock 1370 // related errors. 1371 Diags.Report(ModuleNameLoc, diag::remark_module_lock_failure) 1372 << Module->Name << Locked.getErrorMessage(); 1373 // Clear out any potential leftover. 1374 Locked.unsafeRemoveLockFile(); 1375 LLVM_FALLTHROUGH; 1376 case llvm::LockFileManager::LFS_Owned: 1377 // We're responsible for building the module ourselves. 1378 return compileModuleAndReadASTImpl(ImportingInstance, ImportLoc, 1379 ModuleNameLoc, Module, ModuleFileName); 1380 1381 case llvm::LockFileManager::LFS_Shared: 1382 break; // The interesting case. 1383 } 1384 1385 // Someone else is responsible for building the module. Wait for them to 1386 // finish. 1387 switch (Locked.waitForUnlock()) { 1388 case llvm::LockFileManager::Res_Success: 1389 break; // The interesting case. 1390 case llvm::LockFileManager::Res_OwnerDied: 1391 continue; // try again to get the lock. 1392 case llvm::LockFileManager::Res_Timeout: 1393 // Since ModuleCache takes care of correctness, we try waiting for 1394 // another process to complete the build so clang does not do it done 1395 // twice. If case of timeout, build it ourselves. 1396 Diags.Report(ModuleNameLoc, diag::remark_module_lock_timeout) 1397 << Module->Name; 1398 // Clear the lock file so that future invocations can make progress. 1399 Locked.unsafeRemoveLockFile(); 1400 continue; 1401 } 1402 1403 // Read the module that was just written by someone else. 1404 bool OutOfDate = false; 1405 if (readASTAfterCompileModule(ImportingInstance, ImportLoc, ModuleNameLoc, 1406 Module, ModuleFileName, &OutOfDate)) 1407 return true; 1408 if (!OutOfDate) 1409 return false; 1410 1411 // The module may be out of date in the presence of file system races, 1412 // or if one of its imports depends on header search paths that are not 1413 // consistent with this ImportingInstance. Try again... 1414 } 1415 } 1416 1417 /// Compile a module in a separate compiler instance and read the AST, 1418 /// returning true if the module compiles without errors, potentially using a 1419 /// lock manager to avoid building the same module in multiple compiler 1420 /// instances. 1421 static bool compileModuleAndReadAST(CompilerInstance &ImportingInstance, 1422 SourceLocation ImportLoc, 1423 SourceLocation ModuleNameLoc, 1424 Module *Module, StringRef ModuleFileName) { 1425 return ImportingInstance.getInvocation() 1426 .getFrontendOpts() 1427 .BuildingImplicitModuleUsesLock 1428 ? compileModuleAndReadASTBehindLock(ImportingInstance, ImportLoc, 1429 ModuleNameLoc, Module, 1430 ModuleFileName) 1431 : compileModuleAndReadASTImpl(ImportingInstance, ImportLoc, 1432 ModuleNameLoc, Module, 1433 ModuleFileName); 1434 } 1435 1436 /// Diagnose differences between the current definition of the given 1437 /// configuration macro and the definition provided on the command line. 1438 static void checkConfigMacro(Preprocessor &PP, StringRef ConfigMacro, 1439 Module *Mod, SourceLocation ImportLoc) { 1440 IdentifierInfo *Id = PP.getIdentifierInfo(ConfigMacro); 1441 SourceManager &SourceMgr = PP.getSourceManager(); 1442 1443 // If this identifier has never had a macro definition, then it could 1444 // not have changed. 1445 if (!Id->hadMacroDefinition()) 1446 return; 1447 auto *LatestLocalMD = PP.getLocalMacroDirectiveHistory(Id); 1448 1449 // Find the macro definition from the command line. 1450 MacroInfo *CmdLineDefinition = nullptr; 1451 for (auto *MD = LatestLocalMD; MD; MD = MD->getPrevious()) { 1452 // We only care about the predefines buffer. 1453 FileID FID = SourceMgr.getFileID(MD->getLocation()); 1454 if (FID.isInvalid() || FID != PP.getPredefinesFileID()) 1455 continue; 1456 if (auto *DMD = dyn_cast<DefMacroDirective>(MD)) 1457 CmdLineDefinition = DMD->getMacroInfo(); 1458 break; 1459 } 1460 1461 auto *CurrentDefinition = PP.getMacroInfo(Id); 1462 if (CurrentDefinition == CmdLineDefinition) { 1463 // Macro matches. Nothing to do. 1464 } else if (!CurrentDefinition) { 1465 // This macro was defined on the command line, then #undef'd later. 1466 // Complain. 1467 PP.Diag(ImportLoc, diag::warn_module_config_macro_undef) 1468 << true << ConfigMacro << Mod->getFullModuleName(); 1469 auto LatestDef = LatestLocalMD->getDefinition(); 1470 assert(LatestDef.isUndefined() && 1471 "predefined macro went away with no #undef?"); 1472 PP.Diag(LatestDef.getUndefLocation(), diag::note_module_def_undef_here) 1473 << true; 1474 return; 1475 } else if (!CmdLineDefinition) { 1476 // There was no definition for this macro in the predefines buffer, 1477 // but there was a local definition. Complain. 1478 PP.Diag(ImportLoc, diag::warn_module_config_macro_undef) 1479 << false << ConfigMacro << Mod->getFullModuleName(); 1480 PP.Diag(CurrentDefinition->getDefinitionLoc(), 1481 diag::note_module_def_undef_here) 1482 << false; 1483 } else if (!CurrentDefinition->isIdenticalTo(*CmdLineDefinition, PP, 1484 /*Syntactically=*/true)) { 1485 // The macro definitions differ. 1486 PP.Diag(ImportLoc, diag::warn_module_config_macro_undef) 1487 << false << ConfigMacro << Mod->getFullModuleName(); 1488 PP.Diag(CurrentDefinition->getDefinitionLoc(), 1489 diag::note_module_def_undef_here) 1490 << false; 1491 } 1492 } 1493 1494 /// Write a new timestamp file with the given path. 1495 static void writeTimestampFile(StringRef TimestampFile) { 1496 std::error_code EC; 1497 llvm::raw_fd_ostream Out(TimestampFile.str(), EC, llvm::sys::fs::OF_None); 1498 } 1499 1500 /// Prune the module cache of modules that haven't been accessed in 1501 /// a long time. 1502 static void pruneModuleCache(const HeaderSearchOptions &HSOpts) { 1503 llvm::sys::fs::file_status StatBuf; 1504 llvm::SmallString<128> TimestampFile; 1505 TimestampFile = HSOpts.ModuleCachePath; 1506 assert(!TimestampFile.empty()); 1507 llvm::sys::path::append(TimestampFile, "modules.timestamp"); 1508 1509 // Try to stat() the timestamp file. 1510 if (std::error_code EC = llvm::sys::fs::status(TimestampFile, StatBuf)) { 1511 // If the timestamp file wasn't there, create one now. 1512 if (EC == std::errc::no_such_file_or_directory) { 1513 writeTimestampFile(TimestampFile); 1514 } 1515 return; 1516 } 1517 1518 // Check whether the time stamp is older than our pruning interval. 1519 // If not, do nothing. 1520 time_t TimeStampModTime = 1521 llvm::sys::toTimeT(StatBuf.getLastModificationTime()); 1522 time_t CurrentTime = time(nullptr); 1523 if (CurrentTime - TimeStampModTime <= time_t(HSOpts.ModuleCachePruneInterval)) 1524 return; 1525 1526 // Write a new timestamp file so that nobody else attempts to prune. 1527 // There is a benign race condition here, if two Clang instances happen to 1528 // notice at the same time that the timestamp is out-of-date. 1529 writeTimestampFile(TimestampFile); 1530 1531 // Walk the entire module cache, looking for unused module files and module 1532 // indices. 1533 std::error_code EC; 1534 SmallString<128> ModuleCachePathNative; 1535 llvm::sys::path::native(HSOpts.ModuleCachePath, ModuleCachePathNative); 1536 for (llvm::sys::fs::directory_iterator Dir(ModuleCachePathNative, EC), DirEnd; 1537 Dir != DirEnd && !EC; Dir.increment(EC)) { 1538 // If we don't have a directory, there's nothing to look into. 1539 if (!llvm::sys::fs::is_directory(Dir->path())) 1540 continue; 1541 1542 // Walk all of the files within this directory. 1543 for (llvm::sys::fs::directory_iterator File(Dir->path(), EC), FileEnd; 1544 File != FileEnd && !EC; File.increment(EC)) { 1545 // We only care about module and global module index files. 1546 StringRef Extension = llvm::sys::path::extension(File->path()); 1547 if (Extension != ".pcm" && Extension != ".timestamp" && 1548 llvm::sys::path::filename(File->path()) != "modules.idx") 1549 continue; 1550 1551 // Look at this file. If we can't stat it, there's nothing interesting 1552 // there. 1553 if (llvm::sys::fs::status(File->path(), StatBuf)) 1554 continue; 1555 1556 // If the file has been used recently enough, leave it there. 1557 time_t FileAccessTime = llvm::sys::toTimeT(StatBuf.getLastAccessedTime()); 1558 if (CurrentTime - FileAccessTime <= 1559 time_t(HSOpts.ModuleCachePruneAfter)) { 1560 continue; 1561 } 1562 1563 // Remove the file. 1564 llvm::sys::fs::remove(File->path()); 1565 1566 // Remove the timestamp file. 1567 std::string TimpestampFilename = File->path() + ".timestamp"; 1568 llvm::sys::fs::remove(TimpestampFilename); 1569 } 1570 1571 // If we removed all of the files in the directory, remove the directory 1572 // itself. 1573 if (llvm::sys::fs::directory_iterator(Dir->path(), EC) == 1574 llvm::sys::fs::directory_iterator() && !EC) 1575 llvm::sys::fs::remove(Dir->path()); 1576 } 1577 } 1578 1579 void CompilerInstance::createASTReader() { 1580 if (TheASTReader) 1581 return; 1582 1583 if (!hasASTContext()) 1584 createASTContext(); 1585 1586 // If we're implicitly building modules but not currently recursively 1587 // building a module, check whether we need to prune the module cache. 1588 if (getSourceManager().getModuleBuildStack().empty() && 1589 !getPreprocessor().getHeaderSearchInfo().getModuleCachePath().empty() && 1590 getHeaderSearchOpts().ModuleCachePruneInterval > 0 && 1591 getHeaderSearchOpts().ModuleCachePruneAfter > 0) { 1592 pruneModuleCache(getHeaderSearchOpts()); 1593 } 1594 1595 HeaderSearchOptions &HSOpts = getHeaderSearchOpts(); 1596 std::string Sysroot = HSOpts.Sysroot; 1597 const PreprocessorOptions &PPOpts = getPreprocessorOpts(); 1598 const FrontendOptions &FEOpts = getFrontendOpts(); 1599 std::unique_ptr<llvm::Timer> ReadTimer; 1600 1601 if (FrontendTimerGroup) 1602 ReadTimer = std::make_unique<llvm::Timer>("reading_modules", 1603 "Reading modules", 1604 *FrontendTimerGroup); 1605 TheASTReader = new ASTReader( 1606 getPreprocessor(), getModuleCache(), &getASTContext(), 1607 getPCHContainerReader(), getFrontendOpts().ModuleFileExtensions, 1608 Sysroot.empty() ? "" : Sysroot.c_str(), 1609 PPOpts.DisablePCHOrModuleValidation, 1610 /*AllowASTWithCompilerErrors=*/FEOpts.AllowPCMWithCompilerErrors, 1611 /*AllowConfigurationMismatch=*/false, HSOpts.ModulesValidateSystemHeaders, 1612 HSOpts.ValidateASTInputFilesContent, 1613 getFrontendOpts().UseGlobalModuleIndex, std::move(ReadTimer)); 1614 if (hasASTConsumer()) { 1615 TheASTReader->setDeserializationListener( 1616 getASTConsumer().GetASTDeserializationListener()); 1617 getASTContext().setASTMutationListener( 1618 getASTConsumer().GetASTMutationListener()); 1619 } 1620 getASTContext().setExternalSource(TheASTReader); 1621 if (hasSema()) 1622 TheASTReader->InitializeSema(getSema()); 1623 if (hasASTConsumer()) 1624 TheASTReader->StartTranslationUnit(&getASTConsumer()); 1625 1626 for (auto &Listener : DependencyCollectors) 1627 Listener->attachToASTReader(*TheASTReader); 1628 } 1629 1630 bool CompilerInstance::loadModuleFile(StringRef FileName) { 1631 llvm::Timer Timer; 1632 if (FrontendTimerGroup) 1633 Timer.init("preloading." + FileName.str(), "Preloading " + FileName.str(), 1634 *FrontendTimerGroup); 1635 llvm::TimeRegion TimeLoading(FrontendTimerGroup ? &Timer : nullptr); 1636 1637 // Helper to recursively read the module names for all modules we're adding. 1638 // We mark these as known and redirect any attempt to load that module to 1639 // the files we were handed. 1640 struct ReadModuleNames : ASTReaderListener { 1641 CompilerInstance &CI; 1642 llvm::SmallVector<IdentifierInfo*, 8> LoadedModules; 1643 1644 ReadModuleNames(CompilerInstance &CI) : CI(CI) {} 1645 1646 void ReadModuleName(StringRef ModuleName) override { 1647 LoadedModules.push_back( 1648 CI.getPreprocessor().getIdentifierInfo(ModuleName)); 1649 } 1650 1651 void registerAll() { 1652 ModuleMap &MM = CI.getPreprocessor().getHeaderSearchInfo().getModuleMap(); 1653 for (auto *II : LoadedModules) 1654 MM.cacheModuleLoad(*II, MM.findModule(II->getName())); 1655 LoadedModules.clear(); 1656 } 1657 1658 void markAllUnavailable() { 1659 for (auto *II : LoadedModules) { 1660 if (Module *M = CI.getPreprocessor() 1661 .getHeaderSearchInfo() 1662 .getModuleMap() 1663 .findModule(II->getName())) { 1664 M->HasIncompatibleModuleFile = true; 1665 1666 // Mark module as available if the only reason it was unavailable 1667 // was missing headers. 1668 SmallVector<Module *, 2> Stack; 1669 Stack.push_back(M); 1670 while (!Stack.empty()) { 1671 Module *Current = Stack.pop_back_val(); 1672 if (Current->IsUnimportable) continue; 1673 Current->IsAvailable = true; 1674 Stack.insert(Stack.end(), 1675 Current->submodule_begin(), Current->submodule_end()); 1676 } 1677 } 1678 } 1679 LoadedModules.clear(); 1680 } 1681 }; 1682 1683 // If we don't already have an ASTReader, create one now. 1684 if (!TheASTReader) 1685 createASTReader(); 1686 1687 // If -Wmodule-file-config-mismatch is mapped as an error or worse, allow the 1688 // ASTReader to diagnose it, since it can produce better errors that we can. 1689 bool ConfigMismatchIsRecoverable = 1690 getDiagnostics().getDiagnosticLevel(diag::warn_module_config_mismatch, 1691 SourceLocation()) 1692 <= DiagnosticsEngine::Warning; 1693 1694 auto Listener = std::make_unique<ReadModuleNames>(*this); 1695 auto &ListenerRef = *Listener; 1696 ASTReader::ListenerScope ReadModuleNamesListener(*TheASTReader, 1697 std::move(Listener)); 1698 1699 // Try to load the module file. 1700 switch (TheASTReader->ReadAST( 1701 FileName, serialization::MK_ExplicitModule, SourceLocation(), 1702 ConfigMismatchIsRecoverable ? ASTReader::ARR_ConfigurationMismatch : 0)) { 1703 case ASTReader::Success: 1704 // We successfully loaded the module file; remember the set of provided 1705 // modules so that we don't try to load implicit modules for them. 1706 ListenerRef.registerAll(); 1707 return true; 1708 1709 case ASTReader::ConfigurationMismatch: 1710 // Ignore unusable module files. 1711 getDiagnostics().Report(SourceLocation(), diag::warn_module_config_mismatch) 1712 << FileName; 1713 // All modules provided by any files we tried and failed to load are now 1714 // unavailable; includes of those modules should now be handled textually. 1715 ListenerRef.markAllUnavailable(); 1716 return true; 1717 1718 default: 1719 return false; 1720 } 1721 } 1722 1723 namespace { 1724 enum ModuleSource { 1725 MS_ModuleNotFound, 1726 MS_ModuleCache, 1727 MS_PrebuiltModulePath, 1728 MS_ModuleBuildPragma 1729 }; 1730 } // end namespace 1731 1732 /// Select a source for loading the named module and compute the filename to 1733 /// load it from. 1734 static ModuleSource selectModuleSource( 1735 Module *M, StringRef ModuleName, std::string &ModuleFilename, 1736 const std::map<std::string, std::string, std::less<>> &BuiltModules, 1737 HeaderSearch &HS) { 1738 assert(ModuleFilename.empty() && "Already has a module source?"); 1739 1740 // Check to see if the module has been built as part of this compilation 1741 // via a module build pragma. 1742 auto BuiltModuleIt = BuiltModules.find(ModuleName); 1743 if (BuiltModuleIt != BuiltModules.end()) { 1744 ModuleFilename = BuiltModuleIt->second; 1745 return MS_ModuleBuildPragma; 1746 } 1747 1748 // Try to load the module from the prebuilt module path. 1749 const HeaderSearchOptions &HSOpts = HS.getHeaderSearchOpts(); 1750 if (!HSOpts.PrebuiltModuleFiles.empty() || 1751 !HSOpts.PrebuiltModulePaths.empty()) { 1752 ModuleFilename = HS.getPrebuiltModuleFileName(ModuleName); 1753 if (HSOpts.EnablePrebuiltImplicitModules && ModuleFilename.empty()) 1754 ModuleFilename = HS.getPrebuiltImplicitModuleFileName(M); 1755 if (!ModuleFilename.empty()) 1756 return MS_PrebuiltModulePath; 1757 } 1758 1759 // Try to load the module from the module cache. 1760 if (M) { 1761 ModuleFilename = HS.getCachedModuleFileName(M); 1762 return MS_ModuleCache; 1763 } 1764 1765 return MS_ModuleNotFound; 1766 } 1767 1768 ModuleLoadResult CompilerInstance::findOrCompileModuleAndReadAST( 1769 StringRef ModuleName, SourceLocation ImportLoc, 1770 SourceLocation ModuleNameLoc, bool IsInclusionDirective) { 1771 // Search for a module with the given name. 1772 HeaderSearch &HS = PP->getHeaderSearchInfo(); 1773 Module *M = HS.lookupModule(ModuleName, true, !IsInclusionDirective); 1774 1775 // Select the source and filename for loading the named module. 1776 std::string ModuleFilename; 1777 ModuleSource Source = 1778 selectModuleSource(M, ModuleName, ModuleFilename, BuiltModules, HS); 1779 if (Source == MS_ModuleNotFound) { 1780 // We can't find a module, error out here. 1781 getDiagnostics().Report(ModuleNameLoc, diag::err_module_not_found) 1782 << ModuleName << SourceRange(ImportLoc, ModuleNameLoc); 1783 return nullptr; 1784 } 1785 if (ModuleFilename.empty()) { 1786 if (M && M->HasIncompatibleModuleFile) { 1787 // We tried and failed to load a module file for this module. Fall 1788 // back to textual inclusion for its headers. 1789 return ModuleLoadResult::ConfigMismatch; 1790 } 1791 1792 getDiagnostics().Report(ModuleNameLoc, diag::err_module_build_disabled) 1793 << ModuleName; 1794 return nullptr; 1795 } 1796 1797 // Create an ASTReader on demand. 1798 if (!getASTReader()) 1799 createASTReader(); 1800 1801 // Time how long it takes to load the module. 1802 llvm::Timer Timer; 1803 if (FrontendTimerGroup) 1804 Timer.init("loading." + ModuleFilename, "Loading " + ModuleFilename, 1805 *FrontendTimerGroup); 1806 llvm::TimeRegion TimeLoading(FrontendTimerGroup ? &Timer : nullptr); 1807 llvm::TimeTraceScope TimeScope("Module Load", ModuleName); 1808 1809 // Try to load the module file. If we are not trying to load from the 1810 // module cache, we don't know how to rebuild modules. 1811 unsigned ARRFlags = Source == MS_ModuleCache 1812 ? ASTReader::ARR_OutOfDate | ASTReader::ARR_Missing | 1813 ASTReader::ARR_TreatModuleWithErrorsAsOutOfDate 1814 : Source == MS_PrebuiltModulePath 1815 ? 0 1816 : ASTReader::ARR_ConfigurationMismatch; 1817 switch (getASTReader()->ReadAST(ModuleFilename, 1818 Source == MS_PrebuiltModulePath 1819 ? serialization::MK_PrebuiltModule 1820 : Source == MS_ModuleBuildPragma 1821 ? serialization::MK_ExplicitModule 1822 : serialization::MK_ImplicitModule, 1823 ImportLoc, ARRFlags)) { 1824 case ASTReader::Success: { 1825 if (M) 1826 return M; 1827 assert(Source != MS_ModuleCache && 1828 "missing module, but file loaded from cache"); 1829 1830 // A prebuilt module is indexed as a ModuleFile; the Module does not exist 1831 // until the first call to ReadAST. Look it up now. 1832 M = HS.lookupModule(ModuleName, true, !IsInclusionDirective); 1833 1834 // Check whether M refers to the file in the prebuilt module path. 1835 if (M && M->getASTFile()) 1836 if (auto ModuleFile = FileMgr->getFile(ModuleFilename)) 1837 if (*ModuleFile == M->getASTFile()) 1838 return M; 1839 1840 getDiagnostics().Report(ModuleNameLoc, diag::err_module_prebuilt) 1841 << ModuleName; 1842 return ModuleLoadResult(); 1843 } 1844 1845 case ASTReader::OutOfDate: 1846 case ASTReader::Missing: 1847 // The most interesting case. 1848 break; 1849 1850 case ASTReader::ConfigurationMismatch: 1851 if (Source == MS_PrebuiltModulePath) 1852 // FIXME: We shouldn't be setting HadFatalFailure below if we only 1853 // produce a warning here! 1854 getDiagnostics().Report(SourceLocation(), 1855 diag::warn_module_config_mismatch) 1856 << ModuleFilename; 1857 // Fall through to error out. 1858 LLVM_FALLTHROUGH; 1859 case ASTReader::VersionMismatch: 1860 case ASTReader::HadErrors: 1861 ModuleLoader::HadFatalFailure = true; 1862 // FIXME: The ASTReader will already have complained, but can we shoehorn 1863 // that diagnostic information into a more useful form? 1864 return ModuleLoadResult(); 1865 1866 case ASTReader::Failure: 1867 ModuleLoader::HadFatalFailure = true; 1868 return ModuleLoadResult(); 1869 } 1870 1871 // ReadAST returned Missing or OutOfDate. 1872 if (Source != MS_ModuleCache) { 1873 // We don't know the desired configuration for this module and don't 1874 // necessarily even have a module map. Since ReadAST already produces 1875 // diagnostics for these two cases, we simply error out here. 1876 return ModuleLoadResult(); 1877 } 1878 1879 // The module file is missing or out-of-date. Build it. 1880 assert(M && "missing module, but trying to compile for cache"); 1881 1882 // Check whether there is a cycle in the module graph. 1883 ModuleBuildStack ModPath = getSourceManager().getModuleBuildStack(); 1884 ModuleBuildStack::iterator Pos = ModPath.begin(), PosEnd = ModPath.end(); 1885 for (; Pos != PosEnd; ++Pos) { 1886 if (Pos->first == ModuleName) 1887 break; 1888 } 1889 1890 if (Pos != PosEnd) { 1891 SmallString<256> CyclePath; 1892 for (; Pos != PosEnd; ++Pos) { 1893 CyclePath += Pos->first; 1894 CyclePath += " -> "; 1895 } 1896 CyclePath += ModuleName; 1897 1898 getDiagnostics().Report(ModuleNameLoc, diag::err_module_cycle) 1899 << ModuleName << CyclePath; 1900 return nullptr; 1901 } 1902 1903 // Check whether we have already attempted to build this module (but 1904 // failed). 1905 if (getPreprocessorOpts().FailedModules && 1906 getPreprocessorOpts().FailedModules->hasAlreadyFailed(ModuleName)) { 1907 getDiagnostics().Report(ModuleNameLoc, diag::err_module_not_built) 1908 << ModuleName << SourceRange(ImportLoc, ModuleNameLoc); 1909 return nullptr; 1910 } 1911 1912 // Try to compile and then read the AST. 1913 if (!compileModuleAndReadAST(*this, ImportLoc, ModuleNameLoc, M, 1914 ModuleFilename)) { 1915 assert(getDiagnostics().hasErrorOccurred() && 1916 "undiagnosed error in compileModuleAndReadAST"); 1917 if (getPreprocessorOpts().FailedModules) 1918 getPreprocessorOpts().FailedModules->addFailed(ModuleName); 1919 return nullptr; 1920 } 1921 1922 // Okay, we've rebuilt and now loaded the module. 1923 return M; 1924 } 1925 1926 ModuleLoadResult 1927 CompilerInstance::loadModule(SourceLocation ImportLoc, 1928 ModuleIdPath Path, 1929 Module::NameVisibilityKind Visibility, 1930 bool IsInclusionDirective) { 1931 // Determine what file we're searching from. 1932 StringRef ModuleName = Path[0].first->getName(); 1933 SourceLocation ModuleNameLoc = Path[0].second; 1934 1935 // If we've already handled this import, just return the cached result. 1936 // This one-element cache is important to eliminate redundant diagnostics 1937 // when both the preprocessor and parser see the same import declaration. 1938 if (ImportLoc.isValid() && LastModuleImportLoc == ImportLoc) { 1939 // Make the named module visible. 1940 if (LastModuleImportResult && ModuleName != getLangOpts().CurrentModule) 1941 TheASTReader->makeModuleVisible(LastModuleImportResult, Visibility, 1942 ImportLoc); 1943 return LastModuleImportResult; 1944 } 1945 1946 // If we don't already have information on this module, load the module now. 1947 Module *Module = nullptr; 1948 ModuleMap &MM = getPreprocessor().getHeaderSearchInfo().getModuleMap(); 1949 if (auto MaybeModule = MM.getCachedModuleLoad(*Path[0].first)) { 1950 // Use the cached result, which may be nullptr. 1951 Module = *MaybeModule; 1952 } else if (ModuleName == getLangOpts().CurrentModule) { 1953 // This is the module we're building. 1954 Module = PP->getHeaderSearchInfo().lookupModule( 1955 ModuleName, /*AllowSearch*/ true, 1956 /*AllowExtraModuleMapSearch*/ !IsInclusionDirective); 1957 /// FIXME: perhaps we should (a) look for a module using the module name 1958 // to file map (PrebuiltModuleFiles) and (b) diagnose if still not found? 1959 //if (Module == nullptr) { 1960 // getDiagnostics().Report(ModuleNameLoc, diag::err_module_not_found) 1961 // << ModuleName; 1962 // DisableGeneratingGlobalModuleIndex = true; 1963 // return ModuleLoadResult(); 1964 //} 1965 MM.cacheModuleLoad(*Path[0].first, Module); 1966 } else { 1967 ModuleLoadResult Result = findOrCompileModuleAndReadAST( 1968 ModuleName, ImportLoc, ModuleNameLoc, IsInclusionDirective); 1969 if (!Result.isNormal()) 1970 return Result; 1971 if (!Result) 1972 DisableGeneratingGlobalModuleIndex = true; 1973 Module = Result; 1974 MM.cacheModuleLoad(*Path[0].first, Module); 1975 } 1976 1977 // If we never found the module, fail. Otherwise, verify the module and link 1978 // it up. 1979 if (!Module) 1980 return ModuleLoadResult(); 1981 1982 // Verify that the rest of the module path actually corresponds to 1983 // a submodule. 1984 bool MapPrivateSubModToTopLevel = false; 1985 if (Path.size() > 1) { 1986 for (unsigned I = 1, N = Path.size(); I != N; ++I) { 1987 StringRef Name = Path[I].first->getName(); 1988 clang::Module *Sub = Module->findSubmodule(Name); 1989 1990 // If the user is requesting Foo.Private and it doesn't exist, try to 1991 // match Foo_Private and emit a warning asking for the user to write 1992 // @import Foo_Private instead. FIXME: remove this when existing clients 1993 // migrate off of Foo.Private syntax. 1994 if (!Sub && PP->getLangOpts().ImplicitModules && Name == "Private" && 1995 Module == Module->getTopLevelModule()) { 1996 SmallString<128> PrivateModule(Module->Name); 1997 PrivateModule.append("_Private"); 1998 1999 SmallVector<std::pair<IdentifierInfo *, SourceLocation>, 2> PrivPath; 2000 auto &II = PP->getIdentifierTable().get( 2001 PrivateModule, PP->getIdentifierInfo(Module->Name)->getTokenID()); 2002 PrivPath.push_back(std::make_pair(&II, Path[0].second)); 2003 2004 if (PP->getHeaderSearchInfo().lookupModule(PrivateModule, true, 2005 !IsInclusionDirective)) 2006 Sub = 2007 loadModule(ImportLoc, PrivPath, Visibility, IsInclusionDirective); 2008 if (Sub) { 2009 MapPrivateSubModToTopLevel = true; 2010 if (!getDiagnostics().isIgnored( 2011 diag::warn_no_priv_submodule_use_toplevel, ImportLoc)) { 2012 getDiagnostics().Report(Path[I].second, 2013 diag::warn_no_priv_submodule_use_toplevel) 2014 << Path[I].first << Module->getFullModuleName() << PrivateModule 2015 << SourceRange(Path[0].second, Path[I].second) 2016 << FixItHint::CreateReplacement(SourceRange(Path[0].second), 2017 PrivateModule); 2018 getDiagnostics().Report(Sub->DefinitionLoc, 2019 diag::note_private_top_level_defined); 2020 } 2021 } 2022 } 2023 2024 if (!Sub) { 2025 // Attempt to perform typo correction to find a module name that works. 2026 SmallVector<StringRef, 2> Best; 2027 unsigned BestEditDistance = (std::numeric_limits<unsigned>::max)(); 2028 2029 for (clang::Module::submodule_iterator J = Module->submodule_begin(), 2030 JEnd = Module->submodule_end(); 2031 J != JEnd; ++J) { 2032 unsigned ED = Name.edit_distance((*J)->Name, 2033 /*AllowReplacements=*/true, 2034 BestEditDistance); 2035 if (ED <= BestEditDistance) { 2036 if (ED < BestEditDistance) { 2037 Best.clear(); 2038 BestEditDistance = ED; 2039 } 2040 2041 Best.push_back((*J)->Name); 2042 } 2043 } 2044 2045 // If there was a clear winner, user it. 2046 if (Best.size() == 1) { 2047 getDiagnostics().Report(Path[I].second, 2048 diag::err_no_submodule_suggest) 2049 << Path[I].first << Module->getFullModuleName() << Best[0] 2050 << SourceRange(Path[0].second, Path[I-1].second) 2051 << FixItHint::CreateReplacement(SourceRange(Path[I].second), 2052 Best[0]); 2053 2054 Sub = Module->findSubmodule(Best[0]); 2055 } 2056 } 2057 2058 if (!Sub) { 2059 // No submodule by this name. Complain, and don't look for further 2060 // submodules. 2061 getDiagnostics().Report(Path[I].second, diag::err_no_submodule) 2062 << Path[I].first << Module->getFullModuleName() 2063 << SourceRange(Path[0].second, Path[I-1].second); 2064 break; 2065 } 2066 2067 Module = Sub; 2068 } 2069 } 2070 2071 // Make the named module visible, if it's not already part of the module 2072 // we are parsing. 2073 if (ModuleName != getLangOpts().CurrentModule) { 2074 if (!Module->IsFromModuleFile && !MapPrivateSubModToTopLevel) { 2075 // We have an umbrella header or directory that doesn't actually include 2076 // all of the headers within the directory it covers. Complain about 2077 // this missing submodule and recover by forgetting that we ever saw 2078 // this submodule. 2079 // FIXME: Should we detect this at module load time? It seems fairly 2080 // expensive (and rare). 2081 getDiagnostics().Report(ImportLoc, diag::warn_missing_submodule) 2082 << Module->getFullModuleName() 2083 << SourceRange(Path.front().second, Path.back().second); 2084 2085 return ModuleLoadResult::MissingExpected; 2086 } 2087 2088 // Check whether this module is available. 2089 if (Preprocessor::checkModuleIsAvailable(getLangOpts(), getTarget(), 2090 getDiagnostics(), Module)) { 2091 getDiagnostics().Report(ImportLoc, diag::note_module_import_here) 2092 << SourceRange(Path.front().second, Path.back().second); 2093 LastModuleImportLoc = ImportLoc; 2094 LastModuleImportResult = ModuleLoadResult(); 2095 return ModuleLoadResult(); 2096 } 2097 2098 TheASTReader->makeModuleVisible(Module, Visibility, ImportLoc); 2099 } 2100 2101 // Check for any configuration macros that have changed. 2102 clang::Module *TopModule = Module->getTopLevelModule(); 2103 for (unsigned I = 0, N = TopModule->ConfigMacros.size(); I != N; ++I) { 2104 checkConfigMacro(getPreprocessor(), TopModule->ConfigMacros[I], 2105 Module, ImportLoc); 2106 } 2107 2108 // Resolve any remaining module using export_as for this one. 2109 getPreprocessor() 2110 .getHeaderSearchInfo() 2111 .getModuleMap() 2112 .resolveLinkAsDependencies(TopModule); 2113 2114 LastModuleImportLoc = ImportLoc; 2115 LastModuleImportResult = ModuleLoadResult(Module); 2116 return LastModuleImportResult; 2117 } 2118 2119 void CompilerInstance::createModuleFromSource(SourceLocation ImportLoc, 2120 StringRef ModuleName, 2121 StringRef Source) { 2122 // Avoid creating filenames with special characters. 2123 SmallString<128> CleanModuleName(ModuleName); 2124 for (auto &C : CleanModuleName) 2125 if (!isAlphanumeric(C)) 2126 C = '_'; 2127 2128 // FIXME: Using a randomized filename here means that our intermediate .pcm 2129 // output is nondeterministic (as .pcm files refer to each other by name). 2130 // Can this affect the output in any way? 2131 SmallString<128> ModuleFileName; 2132 if (std::error_code EC = llvm::sys::fs::createTemporaryFile( 2133 CleanModuleName, "pcm", ModuleFileName)) { 2134 getDiagnostics().Report(ImportLoc, diag::err_fe_unable_to_open_output) 2135 << ModuleFileName << EC.message(); 2136 return; 2137 } 2138 std::string ModuleMapFileName = (CleanModuleName + ".map").str(); 2139 2140 FrontendInputFile Input( 2141 ModuleMapFileName, 2142 InputKind(getLanguageFromOptions(*Invocation->getLangOpts()), 2143 InputKind::ModuleMap, /*Preprocessed*/true)); 2144 2145 std::string NullTerminatedSource(Source.str()); 2146 2147 auto PreBuildStep = [&](CompilerInstance &Other) { 2148 // Create a virtual file containing our desired source. 2149 // FIXME: We shouldn't need to do this. 2150 const FileEntry *ModuleMapFile = Other.getFileManager().getVirtualFile( 2151 ModuleMapFileName, NullTerminatedSource.size(), 0); 2152 Other.getSourceManager().overrideFileContents( 2153 ModuleMapFile, llvm::MemoryBuffer::getMemBuffer(NullTerminatedSource)); 2154 2155 Other.BuiltModules = std::move(BuiltModules); 2156 Other.DeleteBuiltModules = false; 2157 }; 2158 2159 auto PostBuildStep = [this](CompilerInstance &Other) { 2160 BuiltModules = std::move(Other.BuiltModules); 2161 }; 2162 2163 // Build the module, inheriting any modules that we've built locally. 2164 if (compileModuleImpl(*this, ImportLoc, ModuleName, Input, StringRef(), 2165 ModuleFileName, PreBuildStep, PostBuildStep)) { 2166 BuiltModules[std::string(ModuleName)] = std::string(ModuleFileName.str()); 2167 llvm::sys::RemoveFileOnSignal(ModuleFileName); 2168 } 2169 } 2170 2171 void CompilerInstance::makeModuleVisible(Module *Mod, 2172 Module::NameVisibilityKind Visibility, 2173 SourceLocation ImportLoc) { 2174 if (!TheASTReader) 2175 createASTReader(); 2176 if (!TheASTReader) 2177 return; 2178 2179 TheASTReader->makeModuleVisible(Mod, Visibility, ImportLoc); 2180 } 2181 2182 GlobalModuleIndex *CompilerInstance::loadGlobalModuleIndex( 2183 SourceLocation TriggerLoc) { 2184 if (getPreprocessor().getHeaderSearchInfo().getModuleCachePath().empty()) 2185 return nullptr; 2186 if (!TheASTReader) 2187 createASTReader(); 2188 // Can't do anything if we don't have the module manager. 2189 if (!TheASTReader) 2190 return nullptr; 2191 // Get an existing global index. This loads it if not already 2192 // loaded. 2193 TheASTReader->loadGlobalIndex(); 2194 GlobalModuleIndex *GlobalIndex = TheASTReader->getGlobalIndex(); 2195 // If the global index doesn't exist, create it. 2196 if (!GlobalIndex && shouldBuildGlobalModuleIndex() && hasFileManager() && 2197 hasPreprocessor()) { 2198 llvm::sys::fs::create_directories( 2199 getPreprocessor().getHeaderSearchInfo().getModuleCachePath()); 2200 if (llvm::Error Err = GlobalModuleIndex::writeIndex( 2201 getFileManager(), getPCHContainerReader(), 2202 getPreprocessor().getHeaderSearchInfo().getModuleCachePath())) { 2203 // FIXME this drops the error on the floor. This code is only used for 2204 // typo correction and drops more than just this one source of errors 2205 // (such as the directory creation failure above). It should handle the 2206 // error. 2207 consumeError(std::move(Err)); 2208 return nullptr; 2209 } 2210 TheASTReader->resetForReload(); 2211 TheASTReader->loadGlobalIndex(); 2212 GlobalIndex = TheASTReader->getGlobalIndex(); 2213 } 2214 // For finding modules needing to be imported for fixit messages, 2215 // we need to make the global index cover all modules, so we do that here. 2216 if (!HaveFullGlobalModuleIndex && GlobalIndex && !buildingModule()) { 2217 ModuleMap &MMap = getPreprocessor().getHeaderSearchInfo().getModuleMap(); 2218 bool RecreateIndex = false; 2219 for (ModuleMap::module_iterator I = MMap.module_begin(), 2220 E = MMap.module_end(); I != E; ++I) { 2221 Module *TheModule = I->second; 2222 const FileEntry *Entry = TheModule->getASTFile(); 2223 if (!Entry) { 2224 SmallVector<std::pair<IdentifierInfo *, SourceLocation>, 2> Path; 2225 Path.push_back(std::make_pair( 2226 getPreprocessor().getIdentifierInfo(TheModule->Name), TriggerLoc)); 2227 std::reverse(Path.begin(), Path.end()); 2228 // Load a module as hidden. This also adds it to the global index. 2229 loadModule(TheModule->DefinitionLoc, Path, Module::Hidden, false); 2230 RecreateIndex = true; 2231 } 2232 } 2233 if (RecreateIndex) { 2234 if (llvm::Error Err = GlobalModuleIndex::writeIndex( 2235 getFileManager(), getPCHContainerReader(), 2236 getPreprocessor().getHeaderSearchInfo().getModuleCachePath())) { 2237 // FIXME As above, this drops the error on the floor. 2238 consumeError(std::move(Err)); 2239 return nullptr; 2240 } 2241 TheASTReader->resetForReload(); 2242 TheASTReader->loadGlobalIndex(); 2243 GlobalIndex = TheASTReader->getGlobalIndex(); 2244 } 2245 HaveFullGlobalModuleIndex = true; 2246 } 2247 return GlobalIndex; 2248 } 2249 2250 // Check global module index for missing imports. 2251 bool 2252 CompilerInstance::lookupMissingImports(StringRef Name, 2253 SourceLocation TriggerLoc) { 2254 // Look for the symbol in non-imported modules, but only if an error 2255 // actually occurred. 2256 if (!buildingModule()) { 2257 // Load global module index, or retrieve a previously loaded one. 2258 GlobalModuleIndex *GlobalIndex = loadGlobalModuleIndex( 2259 TriggerLoc); 2260 2261 // Only if we have a global index. 2262 if (GlobalIndex) { 2263 GlobalModuleIndex::HitSet FoundModules; 2264 2265 // Find the modules that reference the identifier. 2266 // Note that this only finds top-level modules. 2267 // We'll let diagnoseTypo find the actual declaration module. 2268 if (GlobalIndex->lookupIdentifier(Name, FoundModules)) 2269 return true; 2270 } 2271 } 2272 2273 return false; 2274 } 2275 void CompilerInstance::resetAndLeakSema() { llvm::BuryPointer(takeSema()); } 2276 2277 void CompilerInstance::setExternalSemaSource( 2278 IntrusiveRefCntPtr<ExternalSemaSource> ESS) { 2279 ExternalSemaSrc = std::move(ESS); 2280 } 2281