xref: /llvm-project/clang/lib/Frontend/CompilerInstance.cpp (revision 0de18e72c607c1b52be2c60d45cf2f9fc3af4542)
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/DiagnosticOptions.h"
16 #include "clang/Basic/FileManager.h"
17 #include "clang/Basic/LangStandard.h"
18 #include "clang/Basic/SourceManager.h"
19 #include "clang/Basic/Stack.h"
20 #include "clang/Basic/TargetInfo.h"
21 #include "clang/Basic/Version.h"
22 #include "clang/Config/config.h"
23 #include "clang/Frontend/ChainedDiagnosticConsumer.h"
24 #include "clang/Frontend/FrontendAction.h"
25 #include "clang/Frontend/FrontendActions.h"
26 #include "clang/Frontend/FrontendDiagnostic.h"
27 #include "clang/Frontend/FrontendPluginRegistry.h"
28 #include "clang/Frontend/LogDiagnosticPrinter.h"
29 #include "clang/Frontend/SARIFDiagnosticPrinter.h"
30 #include "clang/Frontend/SerializedDiagnosticPrinter.h"
31 #include "clang/Frontend/TextDiagnosticPrinter.h"
32 #include "clang/Frontend/Utils.h"
33 #include "clang/Frontend/VerifyDiagnosticConsumer.h"
34 #include "clang/Lex/HeaderSearch.h"
35 #include "clang/Lex/Preprocessor.h"
36 #include "clang/Lex/PreprocessorOptions.h"
37 #include "clang/Sema/CodeCompleteConsumer.h"
38 #include "clang/Sema/Sema.h"
39 #include "clang/Serialization/ASTReader.h"
40 #include "clang/Serialization/GlobalModuleIndex.h"
41 #include "clang/Serialization/InMemoryModuleCache.h"
42 #include "llvm/ADT/IntrusiveRefCntPtr.h"
43 #include "llvm/ADT/STLExtras.h"
44 #include "llvm/ADT/ScopeExit.h"
45 #include "llvm/ADT/Statistic.h"
46 #include "llvm/Config/llvm-config.h"
47 #include "llvm/Support/BuryPointer.h"
48 #include "llvm/Support/CrashRecoveryContext.h"
49 #include "llvm/Support/Errc.h"
50 #include "llvm/Support/FileSystem.h"
51 #include "llvm/Support/LockFileManager.h"
52 #include "llvm/Support/MemoryBuffer.h"
53 #include "llvm/Support/Path.h"
54 #include "llvm/Support/Program.h"
55 #include "llvm/Support/Signals.h"
56 #include "llvm/Support/TimeProfiler.h"
57 #include "llvm/Support/Timer.h"
58 #include "llvm/Support/VirtualFileSystem.h"
59 #include "llvm/Support/raw_ostream.h"
60 #include "llvm/TargetParser/Host.h"
61 #include <optional>
62 #include <time.h>
63 #include <utility>
64 
65 using namespace clang;
66 
67 CompilerInstance::CompilerInstance(
68     std::shared_ptr<PCHContainerOperations> PCHContainerOps,
69     InMemoryModuleCache *SharedModuleCache)
70     : ModuleLoader(/* BuildingModule = */ SharedModuleCache),
71       Invocation(new CompilerInvocation()),
72       ModuleCache(SharedModuleCache ? SharedModuleCache
73                                     : new InMemoryModuleCache),
74       ThePCHContainerOperations(std::move(PCHContainerOps)) {}
75 
76 CompilerInstance::~CompilerInstance() {
77   assert(OutputFiles.empty() && "Still output files in flight?");
78 }
79 
80 void CompilerInstance::setInvocation(
81     std::shared_ptr<CompilerInvocation> Value) {
82   Invocation = std::move(Value);
83 }
84 
85 bool CompilerInstance::shouldBuildGlobalModuleIndex() const {
86   return (BuildGlobalModuleIndex ||
87           (TheASTReader && TheASTReader->isGlobalIndexUnavailable() &&
88            getFrontendOpts().GenerateGlobalModuleIndex)) &&
89          !DisableGeneratingGlobalModuleIndex;
90 }
91 
92 void CompilerInstance::setDiagnostics(DiagnosticsEngine *Value) {
93   Diagnostics = Value;
94 }
95 
96 void CompilerInstance::setVerboseOutputStream(raw_ostream &Value) {
97   OwnedVerboseOutputStream.reset();
98   VerboseOutputStream = &Value;
99 }
100 
101 void CompilerInstance::setVerboseOutputStream(std::unique_ptr<raw_ostream> Value) {
102   OwnedVerboseOutputStream.swap(Value);
103   VerboseOutputStream = OwnedVerboseOutputStream.get();
104 }
105 
106 void CompilerInstance::setTarget(TargetInfo *Value) { Target = Value; }
107 void CompilerInstance::setAuxTarget(TargetInfo *Value) { AuxTarget = Value; }
108 
109 bool CompilerInstance::createTarget() {
110   // Create the target instance.
111   setTarget(TargetInfo::CreateTargetInfo(getDiagnostics(),
112                                          getInvocation().TargetOpts));
113   if (!hasTarget())
114     return false;
115 
116   // Check whether AuxTarget exists, if not, then create TargetInfo for the
117   // other side of CUDA/OpenMP/SYCL compilation.
118   if (!getAuxTarget() &&
119       (getLangOpts().CUDA || getLangOpts().OpenMPIsTargetDevice ||
120        getLangOpts().SYCLIsDevice) &&
121       !getFrontendOpts().AuxTriple.empty()) {
122     auto TO = std::make_shared<TargetOptions>();
123     TO->Triple = llvm::Triple::normalize(getFrontendOpts().AuxTriple);
124     if (getFrontendOpts().AuxTargetCPU)
125       TO->CPU = *getFrontendOpts().AuxTargetCPU;
126     if (getFrontendOpts().AuxTargetFeatures)
127       TO->FeaturesAsWritten = *getFrontendOpts().AuxTargetFeatures;
128     TO->HostTriple = getTarget().getTriple().str();
129     setAuxTarget(TargetInfo::CreateTargetInfo(getDiagnostics(), TO));
130   }
131 
132   if (!getTarget().hasStrictFP() && !getLangOpts().ExpStrictFP) {
133     if (getLangOpts().RoundingMath) {
134       getDiagnostics().Report(diag::warn_fe_backend_unsupported_fp_rounding);
135       getLangOpts().RoundingMath = false;
136     }
137     auto FPExc = getLangOpts().getFPExceptionMode();
138     if (FPExc != LangOptions::FPE_Default && FPExc != LangOptions::FPE_Ignore) {
139       getDiagnostics().Report(diag::warn_fe_backend_unsupported_fp_exceptions);
140       getLangOpts().setFPExceptionMode(LangOptions::FPE_Ignore);
141     }
142     // FIXME: can we disable FEnvAccess?
143   }
144 
145   // We should do it here because target knows nothing about
146   // language options when it's being created.
147   if (getLangOpts().OpenCL &&
148       !getTarget().validateOpenCLTarget(getLangOpts(), getDiagnostics()))
149     return false;
150 
151   // Inform the target of the language options.
152   // FIXME: We shouldn't need to do this, the target should be immutable once
153   // created. This complexity should be lifted elsewhere.
154   getTarget().adjust(getDiagnostics(), getLangOpts());
155 
156   if (auto *Aux = getAuxTarget())
157     getTarget().setAuxTarget(Aux);
158 
159   return true;
160 }
161 
162 llvm::vfs::FileSystem &CompilerInstance::getVirtualFileSystem() const {
163   return getFileManager().getVirtualFileSystem();
164 }
165 
166 void CompilerInstance::setFileManager(FileManager *Value) {
167   FileMgr = Value;
168 }
169 
170 void CompilerInstance::setSourceManager(SourceManager *Value) {
171   SourceMgr = Value;
172 }
173 
174 void CompilerInstance::setPreprocessor(std::shared_ptr<Preprocessor> Value) {
175   PP = std::move(Value);
176 }
177 
178 void CompilerInstance::setASTContext(ASTContext *Value) {
179   Context = Value;
180 
181   if (Context && Consumer)
182     getASTConsumer().Initialize(getASTContext());
183 }
184 
185 void CompilerInstance::setSema(Sema *S) {
186   TheSema.reset(S);
187 }
188 
189 void CompilerInstance::setASTConsumer(std::unique_ptr<ASTConsumer> Value) {
190   Consumer = std::move(Value);
191 
192   if (Context && Consumer)
193     getASTConsumer().Initialize(getASTContext());
194 }
195 
196 void CompilerInstance::setCodeCompletionConsumer(CodeCompleteConsumer *Value) {
197   CompletionConsumer.reset(Value);
198 }
199 
200 std::unique_ptr<Sema> CompilerInstance::takeSema() {
201   return std::move(TheSema);
202 }
203 
204 IntrusiveRefCntPtr<ASTReader> CompilerInstance::getASTReader() const {
205   return TheASTReader;
206 }
207 void CompilerInstance::setASTReader(IntrusiveRefCntPtr<ASTReader> Reader) {
208   assert(ModuleCache.get() == &Reader->getModuleManager().getModuleCache() &&
209          "Expected ASTReader to use the same PCM cache");
210   TheASTReader = std::move(Reader);
211 }
212 
213 std::shared_ptr<ModuleDependencyCollector>
214 CompilerInstance::getModuleDepCollector() const {
215   return ModuleDepCollector;
216 }
217 
218 void CompilerInstance::setModuleDepCollector(
219     std::shared_ptr<ModuleDependencyCollector> Collector) {
220   ModuleDepCollector = std::move(Collector);
221 }
222 
223 static void collectHeaderMaps(const HeaderSearch &HS,
224                               std::shared_ptr<ModuleDependencyCollector> MDC) {
225   SmallVector<std::string, 4> HeaderMapFileNames;
226   HS.getHeaderMapFileNames(HeaderMapFileNames);
227   for (auto &Name : HeaderMapFileNames)
228     MDC->addFile(Name);
229 }
230 
231 static void collectIncludePCH(CompilerInstance &CI,
232                               std::shared_ptr<ModuleDependencyCollector> MDC) {
233   const PreprocessorOptions &PPOpts = CI.getPreprocessorOpts();
234   if (PPOpts.ImplicitPCHInclude.empty())
235     return;
236 
237   StringRef PCHInclude = PPOpts.ImplicitPCHInclude;
238   FileManager &FileMgr = CI.getFileManager();
239   auto PCHDir = FileMgr.getOptionalDirectoryRef(PCHInclude);
240   if (!PCHDir) {
241     MDC->addFile(PCHInclude);
242     return;
243   }
244 
245   std::error_code EC;
246   SmallString<128> DirNative;
247   llvm::sys::path::native(PCHDir->getName(), DirNative);
248   llvm::vfs::FileSystem &FS = FileMgr.getVirtualFileSystem();
249   SimpleASTReaderListener Validator(CI.getPreprocessor());
250   for (llvm::vfs::directory_iterator Dir = FS.dir_begin(DirNative, EC), DirEnd;
251        Dir != DirEnd && !EC; Dir.increment(EC)) {
252     // Check whether this is an AST file. ASTReader::isAcceptableASTFile is not
253     // used here since we're not interested in validating the PCH at this time,
254     // but only to check whether this is a file containing an AST.
255     if (!ASTReader::readASTFileControlBlock(
256             Dir->path(), FileMgr, CI.getModuleCache(),
257             CI.getPCHContainerReader(),
258             /*FindModuleFileExtensions=*/false, Validator,
259             /*ValidateDiagnosticOptions=*/false))
260       MDC->addFile(Dir->path());
261   }
262 }
263 
264 static void collectVFSEntries(CompilerInstance &CI,
265                               std::shared_ptr<ModuleDependencyCollector> MDC) {
266   if (CI.getHeaderSearchOpts().VFSOverlayFiles.empty())
267     return;
268 
269   // Collect all VFS found.
270   SmallVector<llvm::vfs::YAMLVFSEntry, 16> VFSEntries;
271   for (const std::string &VFSFile : CI.getHeaderSearchOpts().VFSOverlayFiles) {
272     llvm::ErrorOr<std::unique_ptr<llvm::MemoryBuffer>> Buffer =
273         llvm::MemoryBuffer::getFile(VFSFile);
274     if (!Buffer)
275       return;
276     llvm::vfs::collectVFSFromYAML(std::move(Buffer.get()),
277                                   /*DiagHandler*/ nullptr, VFSFile, VFSEntries);
278   }
279 
280   for (auto &E : VFSEntries)
281     MDC->addFile(E.VPath, E.RPath);
282 }
283 
284 // Diagnostics
285 static void SetUpDiagnosticLog(DiagnosticOptions *DiagOpts,
286                                const CodeGenOptions *CodeGenOpts,
287                                DiagnosticsEngine &Diags) {
288   std::error_code EC;
289   std::unique_ptr<raw_ostream> StreamOwner;
290   raw_ostream *OS = &llvm::errs();
291   if (DiagOpts->DiagnosticLogFile != "-") {
292     // Create the output stream.
293     auto FileOS = std::make_unique<llvm::raw_fd_ostream>(
294         DiagOpts->DiagnosticLogFile, EC,
295         llvm::sys::fs::OF_Append | llvm::sys::fs::OF_TextWithCRLF);
296     if (EC) {
297       Diags.Report(diag::warn_fe_cc_log_diagnostics_failure)
298           << DiagOpts->DiagnosticLogFile << EC.message();
299     } else {
300       FileOS->SetUnbuffered();
301       OS = FileOS.get();
302       StreamOwner = std::move(FileOS);
303     }
304   }
305 
306   // Chain in the diagnostic client which will log the diagnostics.
307   auto Logger = std::make_unique<LogDiagnosticPrinter>(*OS, DiagOpts,
308                                                         std::move(StreamOwner));
309   if (CodeGenOpts)
310     Logger->setDwarfDebugFlags(CodeGenOpts->DwarfDebugFlags);
311   if (Diags.ownsClient()) {
312     Diags.setClient(
313         new ChainedDiagnosticConsumer(Diags.takeClient(), std::move(Logger)));
314   } else {
315     Diags.setClient(
316         new ChainedDiagnosticConsumer(Diags.getClient(), std::move(Logger)));
317   }
318 }
319 
320 static void SetupSerializedDiagnostics(DiagnosticOptions *DiagOpts,
321                                        DiagnosticsEngine &Diags,
322                                        StringRef OutputFile) {
323   auto SerializedConsumer =
324       clang::serialized_diags::create(OutputFile, DiagOpts);
325 
326   if (Diags.ownsClient()) {
327     Diags.setClient(new ChainedDiagnosticConsumer(
328         Diags.takeClient(), std::move(SerializedConsumer)));
329   } else {
330     Diags.setClient(new ChainedDiagnosticConsumer(
331         Diags.getClient(), std::move(SerializedConsumer)));
332   }
333 }
334 
335 void CompilerInstance::createDiagnostics(llvm::vfs::FileSystem &VFS,
336                                          DiagnosticConsumer *Client,
337                                          bool ShouldOwnClient) {
338   Diagnostics = createDiagnostics(VFS, &getDiagnosticOpts(), Client,
339                                   ShouldOwnClient, &getCodeGenOpts());
340 }
341 
342 IntrusiveRefCntPtr<DiagnosticsEngine> CompilerInstance::createDiagnostics(
343     llvm::vfs::FileSystem &VFS, DiagnosticOptions *Opts,
344     DiagnosticConsumer *Client, bool ShouldOwnClient,
345     const CodeGenOptions *CodeGenOpts) {
346   IntrusiveRefCntPtr<DiagnosticIDs> DiagID(new DiagnosticIDs());
347   IntrusiveRefCntPtr<DiagnosticsEngine> Diags(
348       new DiagnosticsEngine(DiagID, Opts));
349 
350   // Create the diagnostic client for reporting errors or for
351   // implementing -verify.
352   if (Client) {
353     Diags->setClient(Client, ShouldOwnClient);
354   } else if (Opts->getFormat() == DiagnosticOptions::SARIF) {
355     Diags->setClient(new SARIFDiagnosticPrinter(llvm::errs(), Opts));
356   } else
357     Diags->setClient(new TextDiagnosticPrinter(llvm::errs(), Opts));
358 
359   // Chain in -verify checker, if requested.
360   if (Opts->VerifyDiagnostics)
361     Diags->setClient(new VerifyDiagnosticConsumer(*Diags));
362 
363   // Chain in -diagnostic-log-file dumper, if requested.
364   if (!Opts->DiagnosticLogFile.empty())
365     SetUpDiagnosticLog(Opts, CodeGenOpts, *Diags);
366 
367   if (!Opts->DiagnosticSerializationFile.empty())
368     SetupSerializedDiagnostics(Opts, *Diags,
369                                Opts->DiagnosticSerializationFile);
370 
371   // Configure our handling of diagnostics.
372   ProcessWarningOptions(*Diags, *Opts, VFS);
373 
374   return Diags;
375 }
376 
377 // File Manager
378 
379 FileManager *CompilerInstance::createFileManager(
380     IntrusiveRefCntPtr<llvm::vfs::FileSystem> VFS) {
381   if (!VFS)
382     VFS = FileMgr ? &FileMgr->getVirtualFileSystem()
383                   : createVFSFromCompilerInvocation(getInvocation(),
384                                                     getDiagnostics());
385   assert(VFS && "FileManager has no VFS?");
386   if (getFrontendOpts().ShowStats)
387     VFS =
388         llvm::makeIntrusiveRefCnt<llvm::vfs::TracingFileSystem>(std::move(VFS));
389   FileMgr = new FileManager(getFileSystemOpts(), std::move(VFS));
390   return FileMgr.get();
391 }
392 
393 // Source Manager
394 
395 void CompilerInstance::createSourceManager(FileManager &FileMgr) {
396   SourceMgr = new SourceManager(getDiagnostics(), FileMgr);
397 }
398 
399 // Initialize the remapping of files to alternative contents, e.g.,
400 // those specified through other files.
401 static void InitializeFileRemapping(DiagnosticsEngine &Diags,
402                                     SourceManager &SourceMgr,
403                                     FileManager &FileMgr,
404                                     const PreprocessorOptions &InitOpts) {
405   // Remap files in the source manager (with buffers).
406   for (const auto &RB : InitOpts.RemappedFileBuffers) {
407     // Create the file entry for the file that we're mapping from.
408     FileEntryRef FromFile =
409         FileMgr.getVirtualFileRef(RB.first, RB.second->getBufferSize(), 0);
410 
411     // Override the contents of the "from" file with the contents of the
412     // "to" file. If the caller owns the buffers, then pass a MemoryBufferRef;
413     // otherwise, pass as a std::unique_ptr<MemoryBuffer> to transfer ownership
414     // to the SourceManager.
415     if (InitOpts.RetainRemappedFileBuffers)
416       SourceMgr.overrideFileContents(FromFile, RB.second->getMemBufferRef());
417     else
418       SourceMgr.overrideFileContents(
419           FromFile, std::unique_ptr<llvm::MemoryBuffer>(RB.second));
420   }
421 
422   // Remap files in the source manager (with other files).
423   for (const auto &RF : InitOpts.RemappedFiles) {
424     // Find the file that we're mapping to.
425     OptionalFileEntryRef ToFile = FileMgr.getOptionalFileRef(RF.second);
426     if (!ToFile) {
427       Diags.Report(diag::err_fe_remap_missing_to_file) << RF.first << RF.second;
428       continue;
429     }
430 
431     // Create the file entry for the file that we're mapping from.
432     FileEntryRef FromFile =
433         FileMgr.getVirtualFileRef(RF.first, ToFile->getSize(), 0);
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(), getCodeGenOpts());
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);
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 namespace {
563 // Helper to recursively read the module names for all modules we're adding.
564 // We mark these as known and redirect any attempt to load that module to
565 // the files we were handed.
566 struct ReadModuleNames : ASTReaderListener {
567   Preprocessor &PP;
568   llvm::SmallVector<std::string, 8> LoadedModules;
569 
570   ReadModuleNames(Preprocessor &PP) : PP(PP) {}
571 
572   void ReadModuleName(StringRef ModuleName) override {
573     // Keep the module name as a string for now. It's not safe to create a new
574     // IdentifierInfo from an ASTReader callback.
575     LoadedModules.push_back(ModuleName.str());
576   }
577 
578   void registerAll() {
579     ModuleMap &MM = PP.getHeaderSearchInfo().getModuleMap();
580     for (const std::string &LoadedModule : LoadedModules)
581       MM.cacheModuleLoad(*PP.getIdentifierInfo(LoadedModule),
582                          MM.findModule(LoadedModule));
583     LoadedModules.clear();
584   }
585 
586   void markAllUnavailable() {
587     for (const std::string &LoadedModule : LoadedModules) {
588       if (Module *M = PP.getHeaderSearchInfo().getModuleMap().findModule(
589               LoadedModule)) {
590         M->HasIncompatibleModuleFile = true;
591 
592         // Mark module as available if the only reason it was unavailable
593         // was missing headers.
594         SmallVector<Module *, 2> Stack;
595         Stack.push_back(M);
596         while (!Stack.empty()) {
597           Module *Current = Stack.pop_back_val();
598           if (Current->IsUnimportable) continue;
599           Current->IsAvailable = true;
600           auto SubmodulesRange = Current->submodules();
601           Stack.insert(Stack.end(), SubmodulesRange.begin(),
602                        SubmodulesRange.end());
603         }
604       }
605     }
606     LoadedModules.clear();
607   }
608 };
609 } // namespace
610 
611 void CompilerInstance::createPCHExternalASTSource(
612     StringRef Path, DisableValidationForModuleKind DisableValidation,
613     bool AllowPCHWithCompilerErrors, void *DeserializationListener,
614     bool OwnDeserializationListener) {
615   bool Preamble = getPreprocessorOpts().PrecompiledPreambleBytes.first != 0;
616   TheASTReader = createPCHExternalASTSource(
617       Path, getHeaderSearchOpts().Sysroot, DisableValidation,
618       AllowPCHWithCompilerErrors, getPreprocessor(), getModuleCache(),
619       getASTContext(), getPCHContainerReader(),
620       getFrontendOpts().ModuleFileExtensions, DependencyCollectors,
621       DeserializationListener, OwnDeserializationListener, Preamble,
622       getFrontendOpts().UseGlobalModuleIndex);
623 }
624 
625 IntrusiveRefCntPtr<ASTReader> CompilerInstance::createPCHExternalASTSource(
626     StringRef Path, StringRef Sysroot,
627     DisableValidationForModuleKind DisableValidation,
628     bool AllowPCHWithCompilerErrors, Preprocessor &PP,
629     InMemoryModuleCache &ModuleCache, ASTContext &Context,
630     const PCHContainerReader &PCHContainerRdr,
631     ArrayRef<std::shared_ptr<ModuleFileExtension>> Extensions,
632     ArrayRef<std::shared_ptr<DependencyCollector>> DependencyCollectors,
633     void *DeserializationListener, bool OwnDeserializationListener,
634     bool Preamble, bool UseGlobalModuleIndex) {
635   HeaderSearchOptions &HSOpts = PP.getHeaderSearchInfo().getHeaderSearchOpts();
636 
637   IntrusiveRefCntPtr<ASTReader> Reader(new ASTReader(
638       PP, ModuleCache, &Context, PCHContainerRdr, Extensions,
639       Sysroot.empty() ? "" : Sysroot.data(), DisableValidation,
640       AllowPCHWithCompilerErrors, /*AllowConfigurationMismatch*/ false,
641       HSOpts.ModulesValidateSystemHeaders, HSOpts.ValidateASTInputFilesContent,
642       UseGlobalModuleIndex));
643 
644   // We need the external source to be set up before we read the AST, because
645   // eagerly-deserialized declarations may use it.
646   Context.setExternalSource(Reader.get());
647 
648   Reader->setDeserializationListener(
649       static_cast<ASTDeserializationListener *>(DeserializationListener),
650       /*TakeOwnership=*/OwnDeserializationListener);
651 
652   for (auto &Listener : DependencyCollectors)
653     Listener->attachToASTReader(*Reader);
654 
655   auto Listener = std::make_unique<ReadModuleNames>(PP);
656   auto &ListenerRef = *Listener;
657   ASTReader::ListenerScope ReadModuleNamesListener(*Reader,
658                                                    std::move(Listener));
659 
660   switch (Reader->ReadAST(Path,
661                           Preamble ? serialization::MK_Preamble
662                                    : serialization::MK_PCH,
663                           SourceLocation(),
664                           ASTReader::ARR_None)) {
665   case ASTReader::Success:
666     // Set the predefines buffer as suggested by the PCH reader. Typically, the
667     // predefines buffer will be empty.
668     PP.setPredefines(Reader->getSuggestedPredefines());
669     ListenerRef.registerAll();
670     return Reader;
671 
672   case ASTReader::Failure:
673     // Unrecoverable failure: don't even try to process the input file.
674     break;
675 
676   case ASTReader::Missing:
677   case ASTReader::OutOfDate:
678   case ASTReader::VersionMismatch:
679   case ASTReader::ConfigurationMismatch:
680   case ASTReader::HadErrors:
681     // No suitable PCH file could be found. Return an error.
682     break;
683   }
684 
685   ListenerRef.markAllUnavailable();
686   Context.setExternalSource(nullptr);
687   return nullptr;
688 }
689 
690 // Code Completion
691 
692 static bool EnableCodeCompletion(Preprocessor &PP,
693                                  StringRef Filename,
694                                  unsigned Line,
695                                  unsigned Column) {
696   // Tell the source manager to chop off the given file at a specific
697   // line and column.
698   auto Entry = PP.getFileManager().getOptionalFileRef(Filename);
699   if (!Entry) {
700     PP.getDiagnostics().Report(diag::err_fe_invalid_code_complete_file)
701       << Filename;
702     return true;
703   }
704 
705   // Truncate the named file at the given line/column.
706   PP.SetCodeCompletionPoint(*Entry, Line, Column);
707   return false;
708 }
709 
710 void CompilerInstance::createCodeCompletionConsumer() {
711   const ParsedSourceLocation &Loc = getFrontendOpts().CodeCompletionAt;
712   if (!CompletionConsumer) {
713     setCodeCompletionConsumer(createCodeCompletionConsumer(
714         getPreprocessor(), Loc.FileName, Loc.Line, Loc.Column,
715         getFrontendOpts().CodeCompleteOpts, llvm::outs()));
716     return;
717   } else if (EnableCodeCompletion(getPreprocessor(), Loc.FileName,
718                                   Loc.Line, Loc.Column)) {
719     setCodeCompletionConsumer(nullptr);
720     return;
721   }
722 }
723 
724 void CompilerInstance::createFrontendTimer() {
725   timerGroup.reset(new llvm::TimerGroup("clang", "Clang time report"));
726   FrontendTimer.reset(new llvm::Timer("frontend", "Front end", *timerGroup));
727 }
728 
729 CodeCompleteConsumer *
730 CompilerInstance::createCodeCompletionConsumer(Preprocessor &PP,
731                                                StringRef Filename,
732                                                unsigned Line,
733                                                unsigned Column,
734                                                const CodeCompleteOptions &Opts,
735                                                raw_ostream &OS) {
736   if (EnableCodeCompletion(PP, Filename, Line, Column))
737     return nullptr;
738 
739   // Set up the creation routine for code-completion.
740   return new PrintingCodeCompleteConsumer(Opts, OS);
741 }
742 
743 void CompilerInstance::createSema(TranslationUnitKind TUKind,
744                                   CodeCompleteConsumer *CompletionConsumer) {
745   TheSema.reset(new Sema(getPreprocessor(), getASTContext(), getASTConsumer(),
746                          TUKind, CompletionConsumer));
747 
748   // Set up API notes.
749   TheSema->APINotes.setSwiftVersion(getAPINotesOpts().SwiftVersion);
750 
751   // Attach the external sema source if there is any.
752   if (ExternalSemaSrc) {
753     TheSema->addExternalSource(ExternalSemaSrc.get());
754     ExternalSemaSrc->InitializeSema(*TheSema);
755   }
756 
757   // If we're building a module and are supposed to load API notes,
758   // notify the API notes manager.
759   if (auto *currentModule = getPreprocessor().getCurrentModule()) {
760     (void)TheSema->APINotes.loadCurrentModuleAPINotes(
761         currentModule, getLangOpts().APINotesModules,
762         getAPINotesOpts().ModuleSearchPaths);
763   }
764 }
765 
766 // Output Files
767 
768 void CompilerInstance::clearOutputFiles(bool EraseFiles) {
769   // The ASTConsumer can own streams that write to the output files.
770   assert(!hasASTConsumer() && "ASTConsumer should be reset");
771   // Ignore errors that occur when trying to discard the temp file.
772   for (OutputFile &OF : OutputFiles) {
773     if (EraseFiles) {
774       if (OF.File)
775         consumeError(OF.File->discard());
776       if (!OF.Filename.empty())
777         llvm::sys::fs::remove(OF.Filename);
778       continue;
779     }
780 
781     if (!OF.File)
782       continue;
783 
784     if (OF.File->TmpName.empty()) {
785       consumeError(OF.File->discard());
786       continue;
787     }
788 
789     llvm::Error E = OF.File->keep(OF.Filename);
790     if (!E)
791       continue;
792 
793     getDiagnostics().Report(diag::err_unable_to_rename_temp)
794         << OF.File->TmpName << OF.Filename << std::move(E);
795 
796     llvm::sys::fs::remove(OF.File->TmpName);
797   }
798   OutputFiles.clear();
799   if (DeleteBuiltModules) {
800     for (auto &Module : BuiltModules)
801       llvm::sys::fs::remove(Module.second);
802     BuiltModules.clear();
803   }
804 }
805 
806 std::unique_ptr<raw_pwrite_stream> CompilerInstance::createDefaultOutputFile(
807     bool Binary, StringRef InFile, StringRef Extension, bool RemoveFileOnSignal,
808     bool CreateMissingDirectories, bool ForceUseTemporary) {
809   StringRef OutputPath = getFrontendOpts().OutputFile;
810   std::optional<SmallString<128>> PathStorage;
811   if (OutputPath.empty()) {
812     if (InFile == "-" || Extension.empty()) {
813       OutputPath = "-";
814     } else {
815       PathStorage.emplace(InFile);
816       llvm::sys::path::replace_extension(*PathStorage, Extension);
817       OutputPath = *PathStorage;
818     }
819   }
820 
821   return createOutputFile(OutputPath, Binary, RemoveFileOnSignal,
822                           getFrontendOpts().UseTemporary || ForceUseTemporary,
823                           CreateMissingDirectories);
824 }
825 
826 std::unique_ptr<raw_pwrite_stream> CompilerInstance::createNullOutputFile() {
827   return std::make_unique<llvm::raw_null_ostream>();
828 }
829 
830 std::unique_ptr<raw_pwrite_stream>
831 CompilerInstance::createOutputFile(StringRef OutputPath, bool Binary,
832                                    bool RemoveFileOnSignal, bool UseTemporary,
833                                    bool CreateMissingDirectories) {
834   Expected<std::unique_ptr<raw_pwrite_stream>> OS =
835       createOutputFileImpl(OutputPath, Binary, RemoveFileOnSignal, UseTemporary,
836                            CreateMissingDirectories);
837   if (OS)
838     return std::move(*OS);
839   getDiagnostics().Report(diag::err_fe_unable_to_open_output)
840       << OutputPath << errorToErrorCode(OS.takeError()).message();
841   return nullptr;
842 }
843 
844 Expected<std::unique_ptr<llvm::raw_pwrite_stream>>
845 CompilerInstance::createOutputFileImpl(StringRef OutputPath, bool Binary,
846                                        bool RemoveFileOnSignal,
847                                        bool UseTemporary,
848                                        bool CreateMissingDirectories) {
849   assert((!CreateMissingDirectories || UseTemporary) &&
850          "CreateMissingDirectories is only allowed when using temporary files");
851 
852   // If '-working-directory' was passed, the output filename should be
853   // relative to that.
854   std::optional<SmallString<128>> AbsPath;
855   if (OutputPath != "-" && !llvm::sys::path::is_absolute(OutputPath)) {
856     assert(hasFileManager() &&
857            "File Manager is required to fix up relative path.\n");
858 
859     AbsPath.emplace(OutputPath);
860     FileMgr->FixupRelativePath(*AbsPath);
861     OutputPath = *AbsPath;
862   }
863 
864   std::unique_ptr<llvm::raw_fd_ostream> OS;
865   std::optional<StringRef> OSFile;
866 
867   if (UseTemporary) {
868     if (OutputPath == "-")
869       UseTemporary = false;
870     else {
871       llvm::sys::fs::file_status Status;
872       llvm::sys::fs::status(OutputPath, Status);
873       if (llvm::sys::fs::exists(Status)) {
874         // Fail early if we can't write to the final destination.
875         if (!llvm::sys::fs::can_write(OutputPath))
876           return llvm::errorCodeToError(
877               make_error_code(llvm::errc::operation_not_permitted));
878 
879         // Don't use a temporary if the output is a special file. This handles
880         // things like '-o /dev/null'
881         if (!llvm::sys::fs::is_regular_file(Status))
882           UseTemporary = false;
883       }
884     }
885   }
886 
887   std::optional<llvm::sys::fs::TempFile> Temp;
888   if (UseTemporary) {
889     // Create a temporary file.
890     // Insert -%%%%%%%% before the extension (if any), and because some tools
891     // (noticeable, clang's own GlobalModuleIndex.cpp) glob for build
892     // artifacts, also append .tmp.
893     StringRef OutputExtension = llvm::sys::path::extension(OutputPath);
894     SmallString<128> TempPath =
895         StringRef(OutputPath).drop_back(OutputExtension.size());
896     TempPath += "-%%%%%%%%";
897     TempPath += OutputExtension;
898     TempPath += ".tmp";
899     llvm::sys::fs::OpenFlags BinaryFlags =
900         Binary ? llvm::sys::fs::OF_None : llvm::sys::fs::OF_Text;
901     Expected<llvm::sys::fs::TempFile> ExpectedFile =
902         llvm::sys::fs::TempFile::create(
903             TempPath, llvm::sys::fs::all_read | llvm::sys::fs::all_write,
904             BinaryFlags);
905 
906     llvm::Error E = handleErrors(
907         ExpectedFile.takeError(), [&](const llvm::ECError &E) -> llvm::Error {
908           std::error_code EC = E.convertToErrorCode();
909           if (CreateMissingDirectories &&
910               EC == llvm::errc::no_such_file_or_directory) {
911             StringRef Parent = llvm::sys::path::parent_path(OutputPath);
912             EC = llvm::sys::fs::create_directories(Parent);
913             if (!EC) {
914               ExpectedFile = llvm::sys::fs::TempFile::create(
915                   TempPath, llvm::sys::fs::all_read | llvm::sys::fs::all_write,
916                   BinaryFlags);
917               if (!ExpectedFile)
918                 return llvm::errorCodeToError(
919                     llvm::errc::no_such_file_or_directory);
920             }
921           }
922           return llvm::errorCodeToError(EC);
923         });
924 
925     if (E) {
926       consumeError(std::move(E));
927     } else {
928       Temp = std::move(ExpectedFile.get());
929       OS.reset(new llvm::raw_fd_ostream(Temp->FD, /*shouldClose=*/false));
930       OSFile = Temp->TmpName;
931     }
932     // If we failed to create the temporary, fallback to writing to the file
933     // directly. This handles the corner case where we cannot write to the
934     // directory, but can write to the file.
935   }
936 
937   if (!OS) {
938     OSFile = OutputPath;
939     std::error_code EC;
940     OS.reset(new llvm::raw_fd_ostream(
941         *OSFile, EC,
942         (Binary ? llvm::sys::fs::OF_None : llvm::sys::fs::OF_TextWithCRLF)));
943     if (EC)
944       return llvm::errorCodeToError(EC);
945   }
946 
947   // Add the output file -- but don't try to remove "-", since this means we are
948   // using stdin.
949   OutputFiles.emplace_back(((OutputPath != "-") ? OutputPath : "").str(),
950                            std::move(Temp));
951 
952   if (!Binary || OS->supportsSeeking())
953     return std::move(OS);
954 
955   return std::make_unique<llvm::buffer_unique_ostream>(std::move(OS));
956 }
957 
958 // Initialization Utilities
959 
960 bool CompilerInstance::InitializeSourceManager(const FrontendInputFile &Input){
961   return InitializeSourceManager(Input, getDiagnostics(), getFileManager(),
962                                  getSourceManager());
963 }
964 
965 // static
966 bool CompilerInstance::InitializeSourceManager(const FrontendInputFile &Input,
967                                                DiagnosticsEngine &Diags,
968                                                FileManager &FileMgr,
969                                                SourceManager &SourceMgr) {
970   SrcMgr::CharacteristicKind Kind =
971       Input.getKind().getFormat() == InputKind::ModuleMap
972           ? Input.isSystem() ? SrcMgr::C_System_ModuleMap
973                              : SrcMgr::C_User_ModuleMap
974           : Input.isSystem() ? SrcMgr::C_System : SrcMgr::C_User;
975 
976   if (Input.isBuffer()) {
977     SourceMgr.setMainFileID(SourceMgr.createFileID(Input.getBuffer(), Kind));
978     assert(SourceMgr.getMainFileID().isValid() &&
979            "Couldn't establish MainFileID!");
980     return true;
981   }
982 
983   StringRef InputFile = Input.getFile();
984 
985   // Figure out where to get and map in the main file.
986   auto FileOrErr = InputFile == "-"
987                        ? FileMgr.getSTDIN()
988                        : FileMgr.getFileRef(InputFile, /*OpenFile=*/true);
989   if (!FileOrErr) {
990     auto EC = llvm::errorToErrorCode(FileOrErr.takeError());
991     if (InputFile != "-")
992       Diags.Report(diag::err_fe_error_reading) << InputFile << EC.message();
993     else
994       Diags.Report(diag::err_fe_error_reading_stdin) << EC.message();
995     return false;
996   }
997 
998   SourceMgr.setMainFileID(
999       SourceMgr.createFileID(*FileOrErr, SourceLocation(), Kind));
1000 
1001   assert(SourceMgr.getMainFileID().isValid() &&
1002          "Couldn't establish MainFileID!");
1003   return true;
1004 }
1005 
1006 // High-Level Operations
1007 
1008 bool CompilerInstance::ExecuteAction(FrontendAction &Act) {
1009   assert(hasDiagnostics() && "Diagnostics engine is not initialized!");
1010   assert(!getFrontendOpts().ShowHelp && "Client must handle '-help'!");
1011   assert(!getFrontendOpts().ShowVersion && "Client must handle '-version'!");
1012 
1013   // Mark this point as the bottom of the stack if we don't have somewhere
1014   // better. We generally expect frontend actions to be invoked with (nearly)
1015   // DesiredStackSpace available.
1016   noteBottomOfStack();
1017 
1018   auto FinishDiagnosticClient = llvm::make_scope_exit([&]() {
1019     // Notify the diagnostic client that all files were processed.
1020     getDiagnosticClient().finish();
1021   });
1022 
1023   raw_ostream &OS = getVerboseOutputStream();
1024 
1025   if (!Act.PrepareToExecute(*this))
1026     return false;
1027 
1028   if (!createTarget())
1029     return false;
1030 
1031   // rewriter project will change target built-in bool type from its default.
1032   if (getFrontendOpts().ProgramAction == frontend::RewriteObjC)
1033     getTarget().noSignedCharForObjCBool();
1034 
1035   // Validate/process some options.
1036   if (getHeaderSearchOpts().Verbose)
1037     OS << "clang -cc1 version " CLANG_VERSION_STRING << " based upon LLVM "
1038        << LLVM_VERSION_STRING << " default target "
1039        << llvm::sys::getDefaultTargetTriple() << "\n";
1040 
1041   if (getCodeGenOpts().TimePasses)
1042     createFrontendTimer();
1043 
1044   if (getFrontendOpts().ShowStats || !getFrontendOpts().StatsFile.empty())
1045     llvm::EnableStatistics(false);
1046 
1047   // Sort vectors containing toc data and no toc data variables to facilitate
1048   // binary search later.
1049   llvm::sort(getCodeGenOpts().TocDataVarsUserSpecified);
1050   llvm::sort(getCodeGenOpts().NoTocDataVars);
1051 
1052   for (const FrontendInputFile &FIF : getFrontendOpts().Inputs) {
1053     // Reset the ID tables if we are reusing the SourceManager and parsing
1054     // regular files.
1055     if (hasSourceManager() && !Act.isModelParsingAction())
1056       getSourceManager().clearIDTables();
1057 
1058     if (Act.BeginSourceFile(*this, FIF)) {
1059       if (llvm::Error Err = Act.Execute()) {
1060         consumeError(std::move(Err)); // FIXME this drops errors on the floor.
1061       }
1062       Act.EndSourceFile();
1063     }
1064   }
1065 
1066   printDiagnosticStats();
1067 
1068   if (getFrontendOpts().ShowStats) {
1069     if (hasFileManager()) {
1070       getFileManager().PrintStats();
1071       OS << '\n';
1072     }
1073     llvm::PrintStatistics(OS);
1074   }
1075   StringRef StatsFile = getFrontendOpts().StatsFile;
1076   if (!StatsFile.empty()) {
1077     llvm::sys::fs::OpenFlags FileFlags = llvm::sys::fs::OF_TextWithCRLF;
1078     if (getFrontendOpts().AppendStats)
1079       FileFlags |= llvm::sys::fs::OF_Append;
1080     std::error_code EC;
1081     auto StatS =
1082         std::make_unique<llvm::raw_fd_ostream>(StatsFile, EC, FileFlags);
1083     if (EC) {
1084       getDiagnostics().Report(diag::warn_fe_unable_to_open_stats_file)
1085           << StatsFile << EC.message();
1086     } else {
1087       llvm::PrintStatisticsJSON(*StatS);
1088     }
1089   }
1090 
1091   return !getDiagnostics().getClient()->getNumErrors();
1092 }
1093 
1094 void CompilerInstance::printDiagnosticStats() {
1095   if (!getDiagnosticOpts().ShowCarets)
1096     return;
1097 
1098   raw_ostream &OS = getVerboseOutputStream();
1099 
1100   // We can have multiple diagnostics sharing one diagnostic client.
1101   // Get the total number of warnings/errors from the client.
1102   unsigned NumWarnings = getDiagnostics().getClient()->getNumWarnings();
1103   unsigned NumErrors = getDiagnostics().getClient()->getNumErrors();
1104 
1105   if (NumWarnings)
1106     OS << NumWarnings << " warning" << (NumWarnings == 1 ? "" : "s");
1107   if (NumWarnings && NumErrors)
1108     OS << " and ";
1109   if (NumErrors)
1110     OS << NumErrors << " error" << (NumErrors == 1 ? "" : "s");
1111   if (NumWarnings || NumErrors) {
1112     OS << " generated";
1113     if (getLangOpts().CUDA) {
1114       if (!getLangOpts().CUDAIsDevice) {
1115         OS << " when compiling for host";
1116       } else {
1117         OS << " when compiling for " << getTargetOpts().CPU;
1118       }
1119     }
1120     OS << ".\n";
1121   }
1122 }
1123 
1124 void CompilerInstance::LoadRequestedPlugins() {
1125   // Load any requested plugins.
1126   for (const std::string &Path : getFrontendOpts().Plugins) {
1127     std::string Error;
1128     if (llvm::sys::DynamicLibrary::LoadLibraryPermanently(Path.c_str(), &Error))
1129       getDiagnostics().Report(diag::err_fe_unable_to_load_plugin)
1130           << Path << Error;
1131   }
1132 
1133   // Check if any of the loaded plugins replaces the main AST action
1134   for (const FrontendPluginRegistry::entry &Plugin :
1135        FrontendPluginRegistry::entries()) {
1136     std::unique_ptr<PluginASTAction> P(Plugin.instantiate());
1137     if (P->getActionType() == PluginASTAction::ReplaceAction) {
1138       getFrontendOpts().ProgramAction = clang::frontend::PluginAction;
1139       getFrontendOpts().ActionName = Plugin.getName().str();
1140       break;
1141     }
1142   }
1143 }
1144 
1145 /// Determine the appropriate source input kind based on language
1146 /// options.
1147 static Language getLanguageFromOptions(const LangOptions &LangOpts) {
1148   if (LangOpts.OpenCL)
1149     return Language::OpenCL;
1150   if (LangOpts.CUDA)
1151     return Language::CUDA;
1152   if (LangOpts.ObjC)
1153     return LangOpts.CPlusPlus ? Language::ObjCXX : Language::ObjC;
1154   return LangOpts.CPlusPlus ? Language::CXX : Language::C;
1155 }
1156 
1157 /// Compile a module file for the given module, using the options
1158 /// provided by the importing compiler instance. Returns true if the module
1159 /// was built without errors.
1160 static bool
1161 compileModuleImpl(CompilerInstance &ImportingInstance, SourceLocation ImportLoc,
1162                   StringRef ModuleName, FrontendInputFile Input,
1163                   StringRef OriginalModuleMapFile, StringRef ModuleFileName,
1164                   llvm::function_ref<void(CompilerInstance &)> PreBuildStep =
1165                       [](CompilerInstance &) {},
1166                   llvm::function_ref<void(CompilerInstance &)> PostBuildStep =
1167                       [](CompilerInstance &) {}) {
1168   llvm::TimeTraceScope TimeScope("Module Compile", ModuleName);
1169 
1170   // Never compile a module that's already finalized - this would cause the
1171   // existing module to be freed, causing crashes if it is later referenced
1172   if (ImportingInstance.getModuleCache().isPCMFinal(ModuleFileName)) {
1173     ImportingInstance.getDiagnostics().Report(
1174         ImportLoc, diag::err_module_rebuild_finalized)
1175         << ModuleName;
1176     return false;
1177   }
1178 
1179   // Construct a compiler invocation for creating this module.
1180   auto Invocation =
1181       std::make_shared<CompilerInvocation>(ImportingInstance.getInvocation());
1182 
1183   PreprocessorOptions &PPOpts = Invocation->getPreprocessorOpts();
1184 
1185   // For any options that aren't intended to affect how a module is built,
1186   // reset them to their default values.
1187   Invocation->resetNonModularOptions();
1188 
1189   // Remove any macro definitions that are explicitly ignored by the module.
1190   // They aren't supposed to affect how the module is built anyway.
1191   HeaderSearchOptions &HSOpts = Invocation->getHeaderSearchOpts();
1192   llvm::erase_if(PPOpts.Macros,
1193                  [&HSOpts](const std::pair<std::string, bool> &def) {
1194                    StringRef MacroDef = def.first;
1195                    return HSOpts.ModulesIgnoreMacros.contains(
1196                        llvm::CachedHashString(MacroDef.split('=').first));
1197                  });
1198 
1199   // If the original compiler invocation had -fmodule-name, pass it through.
1200   Invocation->getLangOpts().ModuleName =
1201       ImportingInstance.getInvocation().getLangOpts().ModuleName;
1202 
1203   // Note the name of the module we're building.
1204   Invocation->getLangOpts().CurrentModule = std::string(ModuleName);
1205 
1206   // If there is a module map file, build the module using the module map.
1207   // Set up the inputs/outputs so that we build the module from its umbrella
1208   // header.
1209   FrontendOptions &FrontendOpts = Invocation->getFrontendOpts();
1210   FrontendOpts.OutputFile = ModuleFileName.str();
1211   FrontendOpts.DisableFree = false;
1212   FrontendOpts.GenerateGlobalModuleIndex = false;
1213   FrontendOpts.BuildingImplicitModule = true;
1214   FrontendOpts.OriginalModuleMap = std::string(OriginalModuleMapFile);
1215   // Force implicitly-built modules to hash the content of the module file.
1216   HSOpts.ModulesHashContent = true;
1217   FrontendOpts.Inputs = {Input};
1218 
1219   // Don't free the remapped file buffers; they are owned by our caller.
1220   PPOpts.RetainRemappedFileBuffers = true;
1221 
1222   DiagnosticOptions &DiagOpts = Invocation->getDiagnosticOpts();
1223 
1224   DiagOpts.VerifyDiagnostics = 0;
1225   assert(ImportingInstance.getInvocation().getModuleHash() ==
1226          Invocation->getModuleHash() && "Module hash mismatch!");
1227 
1228   // Construct a compiler instance that will be used to actually create the
1229   // module.  Since we're sharing an in-memory module cache,
1230   // CompilerInstance::CompilerInstance is responsible for finalizing the
1231   // buffers to prevent use-after-frees.
1232   CompilerInstance Instance(ImportingInstance.getPCHContainerOperations(),
1233                             &ImportingInstance.getModuleCache());
1234   auto &Inv = *Invocation;
1235   Instance.setInvocation(std::move(Invocation));
1236 
1237   Instance.createDiagnostics(
1238       ImportingInstance.getVirtualFileSystem(),
1239       new ForwardingDiagnosticConsumer(ImportingInstance.getDiagnosticClient()),
1240       /*ShouldOwnClient=*/true);
1241 
1242   if (llvm::is_contained(DiagOpts.SystemHeaderWarningsModules, ModuleName))
1243     Instance.getDiagnostics().setSuppressSystemWarnings(false);
1244 
1245   if (FrontendOpts.ModulesShareFileManager) {
1246     Instance.setFileManager(&ImportingInstance.getFileManager());
1247   } else {
1248     Instance.createFileManager(&ImportingInstance.getVirtualFileSystem());
1249   }
1250   Instance.createSourceManager(Instance.getFileManager());
1251   SourceManager &SourceMgr = Instance.getSourceManager();
1252 
1253   // Note that this module is part of the module build stack, so that we
1254   // can detect cycles in the module graph.
1255   SourceMgr.setModuleBuildStack(
1256     ImportingInstance.getSourceManager().getModuleBuildStack());
1257   SourceMgr.pushModuleBuildStack(ModuleName,
1258     FullSourceLoc(ImportLoc, ImportingInstance.getSourceManager()));
1259 
1260   // Make sure that the failed-module structure has been allocated in
1261   // the importing instance, and propagate the pointer to the newly-created
1262   // instance.
1263   if (!ImportingInstance.hasFailedModulesSet())
1264     ImportingInstance.createFailedModulesSet();
1265   Instance.setFailedModulesSet(ImportingInstance.getFailedModulesSetPtr());
1266 
1267   // If we're collecting module dependencies, we need to share a collector
1268   // between all of the module CompilerInstances. Other than that, we don't
1269   // want to produce any dependency output from the module build.
1270   Instance.setModuleDepCollector(ImportingInstance.getModuleDepCollector());
1271   Inv.getDependencyOutputOpts() = DependencyOutputOptions();
1272 
1273   ImportingInstance.getDiagnostics().Report(ImportLoc,
1274                                             diag::remark_module_build)
1275     << ModuleName << ModuleFileName;
1276 
1277   PreBuildStep(Instance);
1278 
1279   // Execute the action to actually build the module in-place. Use a separate
1280   // thread so that we get a stack large enough.
1281   bool Crashed = !llvm::CrashRecoveryContext().RunSafelyOnThread(
1282       [&]() {
1283         GenerateModuleFromModuleMapAction Action;
1284         Instance.ExecuteAction(Action);
1285       },
1286       DesiredStackSize);
1287 
1288   PostBuildStep(Instance);
1289 
1290   ImportingInstance.getDiagnostics().Report(ImportLoc,
1291                                             diag::remark_module_build_done)
1292     << ModuleName;
1293 
1294   // Propagate the statistics to the parent FileManager.
1295   if (!FrontendOpts.ModulesShareFileManager)
1296     ImportingInstance.getFileManager().AddStats(Instance.getFileManager());
1297 
1298   if (Crashed) {
1299     // Clear the ASTConsumer if it hasn't been already, in case it owns streams
1300     // that must be closed before clearing output files.
1301     Instance.setSema(nullptr);
1302     Instance.setASTConsumer(nullptr);
1303 
1304     // Delete any remaining temporary files related to Instance.
1305     Instance.clearOutputFiles(/*EraseFiles=*/true);
1306   }
1307 
1308   // If \p AllowPCMWithCompilerErrors is set return 'success' even if errors
1309   // occurred.
1310   return !Instance.getDiagnostics().hasErrorOccurred() ||
1311          Instance.getFrontendOpts().AllowPCMWithCompilerErrors;
1312 }
1313 
1314 static OptionalFileEntryRef getPublicModuleMap(FileEntryRef File,
1315                                                FileManager &FileMgr) {
1316   StringRef Filename = llvm::sys::path::filename(File.getName());
1317   SmallString<128> PublicFilename(File.getDir().getName());
1318   if (Filename == "module_private.map")
1319     llvm::sys::path::append(PublicFilename, "module.map");
1320   else if (Filename == "module.private.modulemap")
1321     llvm::sys::path::append(PublicFilename, "module.modulemap");
1322   else
1323     return std::nullopt;
1324   return FileMgr.getOptionalFileRef(PublicFilename);
1325 }
1326 
1327 /// Compile a module file for the given module in a separate compiler instance,
1328 /// using the options provided by the importing compiler instance. Returns true
1329 /// if the module was built without errors.
1330 static bool compileModule(CompilerInstance &ImportingInstance,
1331                           SourceLocation ImportLoc, Module *Module,
1332                           StringRef ModuleFileName) {
1333   InputKind IK(getLanguageFromOptions(ImportingInstance.getLangOpts()),
1334                InputKind::ModuleMap);
1335 
1336   // Get or create the module map that we'll use to build this module.
1337   ModuleMap &ModMap
1338     = ImportingInstance.getPreprocessor().getHeaderSearchInfo().getModuleMap();
1339   SourceManager &SourceMgr = ImportingInstance.getSourceManager();
1340   bool Result;
1341   if (FileID ModuleMapFID = ModMap.getContainingModuleMapFileID(Module);
1342       ModuleMapFID.isValid()) {
1343     // We want to use the top-level module map. If we don't, the compiling
1344     // instance may think the containing module map is a top-level one, while
1345     // the importing instance knows it's included from a parent module map via
1346     // the extern directive. This mismatch could bite us later.
1347     SourceLocation Loc = SourceMgr.getIncludeLoc(ModuleMapFID);
1348     while (Loc.isValid() && isModuleMap(SourceMgr.getFileCharacteristic(Loc))) {
1349       ModuleMapFID = SourceMgr.getFileID(Loc);
1350       Loc = SourceMgr.getIncludeLoc(ModuleMapFID);
1351     }
1352 
1353     OptionalFileEntryRef ModuleMapFile =
1354         SourceMgr.getFileEntryRefForID(ModuleMapFID);
1355     assert(ModuleMapFile && "Top-level module map with no FileID");
1356 
1357     // Canonicalize compilation to start with the public module map. This is
1358     // vital for submodules declarations in the private module maps to be
1359     // correctly parsed when depending on a top level module in the public one.
1360     if (OptionalFileEntryRef PublicMMFile = getPublicModuleMap(
1361             *ModuleMapFile, ImportingInstance.getFileManager()))
1362       ModuleMapFile = PublicMMFile;
1363 
1364     StringRef ModuleMapFilePath = ModuleMapFile->getNameAsRequested();
1365 
1366     // Use the module map where this module resides.
1367     Result = compileModuleImpl(
1368         ImportingInstance, ImportLoc, Module->getTopLevelModuleName(),
1369         FrontendInputFile(ModuleMapFilePath, IK, +Module->IsSystem),
1370         ModMap.getModuleMapFileForUniquing(Module)->getName(), ModuleFileName);
1371   } else {
1372     // FIXME: We only need to fake up an input file here as a way of
1373     // transporting the module's directory to the module map parser. We should
1374     // be able to do that more directly, and parse from a memory buffer without
1375     // inventing this file.
1376     SmallString<128> FakeModuleMapFile(Module->Directory->getName());
1377     llvm::sys::path::append(FakeModuleMapFile, "__inferred_module.map");
1378 
1379     std::string InferredModuleMapContent;
1380     llvm::raw_string_ostream OS(InferredModuleMapContent);
1381     Module->print(OS);
1382 
1383     Result = compileModuleImpl(
1384         ImportingInstance, ImportLoc, Module->getTopLevelModuleName(),
1385         FrontendInputFile(FakeModuleMapFile, IK, +Module->IsSystem),
1386         ModMap.getModuleMapFileForUniquing(Module)->getName(),
1387         ModuleFileName,
1388         [&](CompilerInstance &Instance) {
1389       std::unique_ptr<llvm::MemoryBuffer> ModuleMapBuffer =
1390           llvm::MemoryBuffer::getMemBuffer(InferredModuleMapContent);
1391       FileEntryRef ModuleMapFile = Instance.getFileManager().getVirtualFileRef(
1392           FakeModuleMapFile, InferredModuleMapContent.size(), 0);
1393       Instance.getSourceManager().overrideFileContents(
1394           ModuleMapFile, std::move(ModuleMapBuffer));
1395     });
1396   }
1397 
1398   // We've rebuilt a module. If we're allowed to generate or update the global
1399   // module index, record that fact in the importing compiler instance.
1400   if (ImportingInstance.getFrontendOpts().GenerateGlobalModuleIndex) {
1401     ImportingInstance.setBuildGlobalModuleIndex(true);
1402   }
1403 
1404   return Result;
1405 }
1406 
1407 /// Read the AST right after compiling the module.
1408 static bool readASTAfterCompileModule(CompilerInstance &ImportingInstance,
1409                                       SourceLocation ImportLoc,
1410                                       SourceLocation ModuleNameLoc,
1411                                       Module *Module, StringRef ModuleFileName,
1412                                       bool *OutOfDate) {
1413   DiagnosticsEngine &Diags = ImportingInstance.getDiagnostics();
1414 
1415   unsigned ModuleLoadCapabilities = ASTReader::ARR_Missing;
1416   if (OutOfDate)
1417     ModuleLoadCapabilities |= ASTReader::ARR_OutOfDate;
1418 
1419   // Try to read the module file, now that we've compiled it.
1420   ASTReader::ASTReadResult ReadResult =
1421       ImportingInstance.getASTReader()->ReadAST(
1422           ModuleFileName, serialization::MK_ImplicitModule, ImportLoc,
1423           ModuleLoadCapabilities);
1424   if (ReadResult == ASTReader::Success)
1425     return true;
1426 
1427   // The caller wants to handle out-of-date failures.
1428   if (OutOfDate && ReadResult == ASTReader::OutOfDate) {
1429     *OutOfDate = true;
1430     return false;
1431   }
1432 
1433   // The ASTReader didn't diagnose the error, so conservatively report it.
1434   if (ReadResult == ASTReader::Missing || !Diags.hasErrorOccurred())
1435     Diags.Report(ModuleNameLoc, diag::err_module_not_built)
1436       << Module->Name << SourceRange(ImportLoc, ModuleNameLoc);
1437 
1438   return false;
1439 }
1440 
1441 /// Compile a module in a separate compiler instance and read the AST,
1442 /// returning true if the module compiles without errors.
1443 static bool compileModuleAndReadASTImpl(CompilerInstance &ImportingInstance,
1444                                         SourceLocation ImportLoc,
1445                                         SourceLocation ModuleNameLoc,
1446                                         Module *Module,
1447                                         StringRef ModuleFileName) {
1448   if (!compileModule(ImportingInstance, ModuleNameLoc, Module,
1449                      ModuleFileName)) {
1450     ImportingInstance.getDiagnostics().Report(ModuleNameLoc,
1451                                               diag::err_module_not_built)
1452         << Module->Name << SourceRange(ImportLoc, ModuleNameLoc);
1453     return false;
1454   }
1455 
1456   return readASTAfterCompileModule(ImportingInstance, ImportLoc, ModuleNameLoc,
1457                                    Module, ModuleFileName,
1458                                    /*OutOfDate=*/nullptr);
1459 }
1460 
1461 /// Compile a module in a separate compiler instance and read the AST,
1462 /// returning true if the module compiles without errors, using a lock manager
1463 /// to avoid building the same module in multiple compiler instances.
1464 ///
1465 /// Uses a lock file manager and exponential backoff to reduce the chances that
1466 /// multiple instances will compete to create the same module.  On timeout,
1467 /// deletes the lock file in order to avoid deadlock from crashing processes or
1468 /// bugs in the lock file manager.
1469 static bool compileModuleAndReadASTBehindLock(
1470     CompilerInstance &ImportingInstance, SourceLocation ImportLoc,
1471     SourceLocation ModuleNameLoc, Module *Module, StringRef ModuleFileName) {
1472   DiagnosticsEngine &Diags = ImportingInstance.getDiagnostics();
1473 
1474   Diags.Report(ModuleNameLoc, diag::remark_module_lock)
1475       << ModuleFileName << Module->Name;
1476 
1477   // FIXME: have LockFileManager return an error_code so that we can
1478   // avoid the mkdir when the directory already exists.
1479   StringRef Dir = llvm::sys::path::parent_path(ModuleFileName);
1480   llvm::sys::fs::create_directories(Dir);
1481 
1482   while (true) {
1483     llvm::LockFileManager Locked(ModuleFileName);
1484     switch (Locked) {
1485     case llvm::LockFileManager::LFS_Error:
1486       // ModuleCache takes care of correctness and locks are only necessary for
1487       // performance. Fallback to building the module in case of any lock
1488       // related errors.
1489       Diags.Report(ModuleNameLoc, diag::remark_module_lock_failure)
1490           << Module->Name << Locked.getErrorMessage();
1491       // Clear out any potential leftover.
1492       Locked.unsafeRemoveLockFile();
1493       [[fallthrough]];
1494     case llvm::LockFileManager::LFS_Owned:
1495       // We're responsible for building the module ourselves.
1496       return compileModuleAndReadASTImpl(ImportingInstance, ImportLoc,
1497                                          ModuleNameLoc, Module, ModuleFileName);
1498 
1499     case llvm::LockFileManager::LFS_Shared:
1500       break; // The interesting case.
1501     }
1502 
1503     // Someone else is responsible for building the module. Wait for them to
1504     // finish.
1505     switch (Locked.waitForUnlock()) {
1506     case llvm::LockFileManager::Res_Success:
1507       break; // The interesting case.
1508     case llvm::LockFileManager::Res_OwnerDied:
1509       continue; // try again to get the lock.
1510     case llvm::LockFileManager::Res_Timeout:
1511       // Since ModuleCache takes care of correctness, we try waiting for
1512       // another process to complete the build so clang does not do it done
1513       // twice. If case of timeout, build it ourselves.
1514       Diags.Report(ModuleNameLoc, diag::remark_module_lock_timeout)
1515           << Module->Name;
1516       // Clear the lock file so that future invocations can make progress.
1517       Locked.unsafeRemoveLockFile();
1518       continue;
1519     }
1520 
1521     // Read the module that was just written by someone else.
1522     bool OutOfDate = false;
1523     if (readASTAfterCompileModule(ImportingInstance, ImportLoc, ModuleNameLoc,
1524                                   Module, ModuleFileName, &OutOfDate))
1525       return true;
1526     if (!OutOfDate)
1527       return false;
1528 
1529     // The module may be out of date in the presence of file system races,
1530     // or if one of its imports depends on header search paths that are not
1531     // consistent with this ImportingInstance.  Try again...
1532   }
1533 }
1534 
1535 /// Compile a module in a separate compiler instance and read the AST,
1536 /// returning true if the module compiles without errors, potentially using a
1537 /// lock manager to avoid building the same module in multiple compiler
1538 /// instances.
1539 static bool compileModuleAndReadAST(CompilerInstance &ImportingInstance,
1540                                     SourceLocation ImportLoc,
1541                                     SourceLocation ModuleNameLoc,
1542                                     Module *Module, StringRef ModuleFileName) {
1543   return ImportingInstance.getInvocation()
1544                  .getFrontendOpts()
1545                  .BuildingImplicitModuleUsesLock
1546              ? compileModuleAndReadASTBehindLock(ImportingInstance, ImportLoc,
1547                                                  ModuleNameLoc, Module,
1548                                                  ModuleFileName)
1549              : compileModuleAndReadASTImpl(ImportingInstance, ImportLoc,
1550                                            ModuleNameLoc, Module,
1551                                            ModuleFileName);
1552 }
1553 
1554 /// Diagnose differences between the current definition of the given
1555 /// configuration macro and the definition provided on the command line.
1556 static void checkConfigMacro(Preprocessor &PP, StringRef ConfigMacro,
1557                              Module *Mod, SourceLocation ImportLoc) {
1558   IdentifierInfo *Id = PP.getIdentifierInfo(ConfigMacro);
1559   SourceManager &SourceMgr = PP.getSourceManager();
1560 
1561   // If this identifier has never had a macro definition, then it could
1562   // not have changed.
1563   if (!Id->hadMacroDefinition())
1564     return;
1565   auto *LatestLocalMD = PP.getLocalMacroDirectiveHistory(Id);
1566 
1567   // Find the macro definition from the command line.
1568   MacroInfo *CmdLineDefinition = nullptr;
1569   for (auto *MD = LatestLocalMD; MD; MD = MD->getPrevious()) {
1570     // We only care about the predefines buffer.
1571     FileID FID = SourceMgr.getFileID(MD->getLocation());
1572     if (FID.isInvalid() || FID != PP.getPredefinesFileID())
1573       continue;
1574     if (auto *DMD = dyn_cast<DefMacroDirective>(MD))
1575       CmdLineDefinition = DMD->getMacroInfo();
1576     break;
1577   }
1578 
1579   auto *CurrentDefinition = PP.getMacroInfo(Id);
1580   if (CurrentDefinition == CmdLineDefinition) {
1581     // Macro matches. Nothing to do.
1582   } else if (!CurrentDefinition) {
1583     // This macro was defined on the command line, then #undef'd later.
1584     // Complain.
1585     PP.Diag(ImportLoc, diag::warn_module_config_macro_undef)
1586       << true << ConfigMacro << Mod->getFullModuleName();
1587     auto LatestDef = LatestLocalMD->getDefinition();
1588     assert(LatestDef.isUndefined() &&
1589            "predefined macro went away with no #undef?");
1590     PP.Diag(LatestDef.getUndefLocation(), diag::note_module_def_undef_here)
1591       << true;
1592     return;
1593   } else if (!CmdLineDefinition) {
1594     // There was no definition for this macro in the predefines buffer,
1595     // but there was a local definition. Complain.
1596     PP.Diag(ImportLoc, diag::warn_module_config_macro_undef)
1597       << false << ConfigMacro << Mod->getFullModuleName();
1598     PP.Diag(CurrentDefinition->getDefinitionLoc(),
1599             diag::note_module_def_undef_here)
1600       << false;
1601   } else if (!CurrentDefinition->isIdenticalTo(*CmdLineDefinition, PP,
1602                                                /*Syntactically=*/true)) {
1603     // The macro definitions differ.
1604     PP.Diag(ImportLoc, diag::warn_module_config_macro_undef)
1605       << false << ConfigMacro << Mod->getFullModuleName();
1606     PP.Diag(CurrentDefinition->getDefinitionLoc(),
1607             diag::note_module_def_undef_here)
1608       << false;
1609   }
1610 }
1611 
1612 static void checkConfigMacros(Preprocessor &PP, Module *M,
1613                               SourceLocation ImportLoc) {
1614   clang::Module *TopModule = M->getTopLevelModule();
1615   for (const StringRef ConMacro : TopModule->ConfigMacros) {
1616     checkConfigMacro(PP, ConMacro, M, ImportLoc);
1617   }
1618 }
1619 
1620 /// Write a new timestamp file with the given path.
1621 static void writeTimestampFile(StringRef TimestampFile) {
1622   std::error_code EC;
1623   llvm::raw_fd_ostream Out(TimestampFile.str(), EC, llvm::sys::fs::OF_None);
1624 }
1625 
1626 /// Prune the module cache of modules that haven't been accessed in
1627 /// a long time.
1628 static void pruneModuleCache(const HeaderSearchOptions &HSOpts) {
1629   llvm::sys::fs::file_status StatBuf;
1630   llvm::SmallString<128> TimestampFile;
1631   TimestampFile = HSOpts.ModuleCachePath;
1632   assert(!TimestampFile.empty());
1633   llvm::sys::path::append(TimestampFile, "modules.timestamp");
1634 
1635   // Try to stat() the timestamp file.
1636   if (std::error_code EC = llvm::sys::fs::status(TimestampFile, StatBuf)) {
1637     // If the timestamp file wasn't there, create one now.
1638     if (EC == std::errc::no_such_file_or_directory) {
1639       writeTimestampFile(TimestampFile);
1640     }
1641     return;
1642   }
1643 
1644   // Check whether the time stamp is older than our pruning interval.
1645   // If not, do nothing.
1646   time_t TimeStampModTime =
1647       llvm::sys::toTimeT(StatBuf.getLastModificationTime());
1648   time_t CurrentTime = time(nullptr);
1649   if (CurrentTime - TimeStampModTime <= time_t(HSOpts.ModuleCachePruneInterval))
1650     return;
1651 
1652   // Write a new timestamp file so that nobody else attempts to prune.
1653   // There is a benign race condition here, if two Clang instances happen to
1654   // notice at the same time that the timestamp is out-of-date.
1655   writeTimestampFile(TimestampFile);
1656 
1657   // Walk the entire module cache, looking for unused module files and module
1658   // indices.
1659   std::error_code EC;
1660   for (llvm::sys::fs::directory_iterator Dir(HSOpts.ModuleCachePath, EC),
1661        DirEnd;
1662        Dir != DirEnd && !EC; Dir.increment(EC)) {
1663     // If we don't have a directory, there's nothing to look into.
1664     if (!llvm::sys::fs::is_directory(Dir->path()))
1665       continue;
1666 
1667     // Walk all of the files within this directory.
1668     for (llvm::sys::fs::directory_iterator File(Dir->path(), EC), FileEnd;
1669          File != FileEnd && !EC; File.increment(EC)) {
1670       // We only care about module and global module index files.
1671       StringRef Extension = llvm::sys::path::extension(File->path());
1672       if (Extension != ".pcm" && Extension != ".timestamp" &&
1673           llvm::sys::path::filename(File->path()) != "modules.idx")
1674         continue;
1675 
1676       // Look at this file. If we can't stat it, there's nothing interesting
1677       // there.
1678       if (llvm::sys::fs::status(File->path(), StatBuf))
1679         continue;
1680 
1681       // If the file has been used recently enough, leave it there.
1682       time_t FileAccessTime = llvm::sys::toTimeT(StatBuf.getLastAccessedTime());
1683       if (CurrentTime - FileAccessTime <=
1684               time_t(HSOpts.ModuleCachePruneAfter)) {
1685         continue;
1686       }
1687 
1688       // Remove the file.
1689       llvm::sys::fs::remove(File->path());
1690 
1691       // Remove the timestamp file.
1692       std::string TimpestampFilename = File->path() + ".timestamp";
1693       llvm::sys::fs::remove(TimpestampFilename);
1694     }
1695 
1696     // If we removed all of the files in the directory, remove the directory
1697     // itself.
1698     if (llvm::sys::fs::directory_iterator(Dir->path(), EC) ==
1699             llvm::sys::fs::directory_iterator() && !EC)
1700       llvm::sys::fs::remove(Dir->path());
1701   }
1702 }
1703 
1704 void CompilerInstance::createASTReader() {
1705   if (TheASTReader)
1706     return;
1707 
1708   if (!hasASTContext())
1709     createASTContext();
1710 
1711   // If we're implicitly building modules but not currently recursively
1712   // building a module, check whether we need to prune the module cache.
1713   if (getSourceManager().getModuleBuildStack().empty() &&
1714       !getPreprocessor().getHeaderSearchInfo().getModuleCachePath().empty() &&
1715       getHeaderSearchOpts().ModuleCachePruneInterval > 0 &&
1716       getHeaderSearchOpts().ModuleCachePruneAfter > 0) {
1717     pruneModuleCache(getHeaderSearchOpts());
1718   }
1719 
1720   HeaderSearchOptions &HSOpts = getHeaderSearchOpts();
1721   std::string Sysroot = HSOpts.Sysroot;
1722   const PreprocessorOptions &PPOpts = getPreprocessorOpts();
1723   const FrontendOptions &FEOpts = getFrontendOpts();
1724   std::unique_ptr<llvm::Timer> ReadTimer;
1725 
1726   if (timerGroup)
1727     ReadTimer = std::make_unique<llvm::Timer>("reading_modules",
1728                                               "Reading modules", *timerGroup);
1729   TheASTReader = new ASTReader(
1730       getPreprocessor(), getModuleCache(), &getASTContext(),
1731       getPCHContainerReader(), getFrontendOpts().ModuleFileExtensions,
1732       Sysroot.empty() ? "" : Sysroot.c_str(),
1733       PPOpts.DisablePCHOrModuleValidation,
1734       /*AllowASTWithCompilerErrors=*/FEOpts.AllowPCMWithCompilerErrors,
1735       /*AllowConfigurationMismatch=*/false, HSOpts.ModulesValidateSystemHeaders,
1736       HSOpts.ValidateASTInputFilesContent,
1737       getFrontendOpts().UseGlobalModuleIndex, std::move(ReadTimer));
1738   if (hasASTConsumer()) {
1739     TheASTReader->setDeserializationListener(
1740         getASTConsumer().GetASTDeserializationListener());
1741     getASTContext().setASTMutationListener(
1742       getASTConsumer().GetASTMutationListener());
1743   }
1744   getASTContext().setExternalSource(TheASTReader);
1745   if (hasSema())
1746     TheASTReader->InitializeSema(getSema());
1747   if (hasASTConsumer())
1748     TheASTReader->StartTranslationUnit(&getASTConsumer());
1749 
1750   for (auto &Listener : DependencyCollectors)
1751     Listener->attachToASTReader(*TheASTReader);
1752 }
1753 
1754 bool CompilerInstance::loadModuleFile(
1755     StringRef FileName, serialization::ModuleFile *&LoadedModuleFile) {
1756   llvm::Timer Timer;
1757   if (timerGroup)
1758     Timer.init("preloading." + FileName.str(), "Preloading " + FileName.str(),
1759                *timerGroup);
1760   llvm::TimeRegion TimeLoading(timerGroup ? &Timer : nullptr);
1761 
1762   // If we don't already have an ASTReader, create one now.
1763   if (!TheASTReader)
1764     createASTReader();
1765 
1766   // If -Wmodule-file-config-mismatch is mapped as an error or worse, allow the
1767   // ASTReader to diagnose it, since it can produce better errors that we can.
1768   bool ConfigMismatchIsRecoverable =
1769       getDiagnostics().getDiagnosticLevel(diag::warn_module_config_mismatch,
1770                                           SourceLocation())
1771         <= DiagnosticsEngine::Warning;
1772 
1773   auto Listener = std::make_unique<ReadModuleNames>(*PP);
1774   auto &ListenerRef = *Listener;
1775   ASTReader::ListenerScope ReadModuleNamesListener(*TheASTReader,
1776                                                    std::move(Listener));
1777 
1778   // Try to load the module file.
1779   switch (TheASTReader->ReadAST(
1780       FileName, serialization::MK_ExplicitModule, SourceLocation(),
1781       ConfigMismatchIsRecoverable ? ASTReader::ARR_ConfigurationMismatch : 0,
1782       &LoadedModuleFile)) {
1783   case ASTReader::Success:
1784     // We successfully loaded the module file; remember the set of provided
1785     // modules so that we don't try to load implicit modules for them.
1786     ListenerRef.registerAll();
1787     return true;
1788 
1789   case ASTReader::ConfigurationMismatch:
1790     // Ignore unusable module files.
1791     getDiagnostics().Report(SourceLocation(), diag::warn_module_config_mismatch)
1792         << FileName;
1793     // All modules provided by any files we tried and failed to load are now
1794     // unavailable; includes of those modules should now be handled textually.
1795     ListenerRef.markAllUnavailable();
1796     return true;
1797 
1798   default:
1799     return false;
1800   }
1801 }
1802 
1803 namespace {
1804 enum ModuleSource {
1805   MS_ModuleNotFound,
1806   MS_ModuleCache,
1807   MS_PrebuiltModulePath,
1808   MS_ModuleBuildPragma
1809 };
1810 } // end namespace
1811 
1812 /// Select a source for loading the named module and compute the filename to
1813 /// load it from.
1814 static ModuleSource selectModuleSource(
1815     Module *M, StringRef ModuleName, std::string &ModuleFilename,
1816     const std::map<std::string, std::string, std::less<>> &BuiltModules,
1817     HeaderSearch &HS) {
1818   assert(ModuleFilename.empty() && "Already has a module source?");
1819 
1820   // Check to see if the module has been built as part of this compilation
1821   // via a module build pragma.
1822   auto BuiltModuleIt = BuiltModules.find(ModuleName);
1823   if (BuiltModuleIt != BuiltModules.end()) {
1824     ModuleFilename = BuiltModuleIt->second;
1825     return MS_ModuleBuildPragma;
1826   }
1827 
1828   // Try to load the module from the prebuilt module path.
1829   const HeaderSearchOptions &HSOpts = HS.getHeaderSearchOpts();
1830   if (!HSOpts.PrebuiltModuleFiles.empty() ||
1831       !HSOpts.PrebuiltModulePaths.empty()) {
1832     ModuleFilename = HS.getPrebuiltModuleFileName(ModuleName);
1833     if (HSOpts.EnablePrebuiltImplicitModules && ModuleFilename.empty())
1834       ModuleFilename = HS.getPrebuiltImplicitModuleFileName(M);
1835     if (!ModuleFilename.empty())
1836       return MS_PrebuiltModulePath;
1837   }
1838 
1839   // Try to load the module from the module cache.
1840   if (M) {
1841     ModuleFilename = HS.getCachedModuleFileName(M);
1842     return MS_ModuleCache;
1843   }
1844 
1845   return MS_ModuleNotFound;
1846 }
1847 
1848 ModuleLoadResult CompilerInstance::findOrCompileModuleAndReadAST(
1849     StringRef ModuleName, SourceLocation ImportLoc,
1850     SourceLocation ModuleNameLoc, bool IsInclusionDirective) {
1851   // Search for a module with the given name.
1852   HeaderSearch &HS = PP->getHeaderSearchInfo();
1853   Module *M =
1854       HS.lookupModule(ModuleName, ImportLoc, true, !IsInclusionDirective);
1855 
1856   // Check for any configuration macros that have changed. This is done
1857   // immediately before potentially building a module in case this module
1858   // depends on having one of its configuration macros defined to successfully
1859   // build. If this is not done the user will never see the warning.
1860   if (M)
1861     checkConfigMacros(getPreprocessor(), M, ImportLoc);
1862 
1863   // Select the source and filename for loading the named module.
1864   std::string ModuleFilename;
1865   ModuleSource Source =
1866       selectModuleSource(M, ModuleName, ModuleFilename, BuiltModules, HS);
1867   if (Source == MS_ModuleNotFound) {
1868     // We can't find a module, error out here.
1869     getDiagnostics().Report(ModuleNameLoc, diag::err_module_not_found)
1870         << ModuleName << SourceRange(ImportLoc, ModuleNameLoc);
1871     return nullptr;
1872   }
1873   if (ModuleFilename.empty()) {
1874     if (M && M->HasIncompatibleModuleFile) {
1875       // We tried and failed to load a module file for this module. Fall
1876       // back to textual inclusion for its headers.
1877       return ModuleLoadResult::ConfigMismatch;
1878     }
1879 
1880     getDiagnostics().Report(ModuleNameLoc, diag::err_module_build_disabled)
1881         << ModuleName;
1882     return nullptr;
1883   }
1884 
1885   // Create an ASTReader on demand.
1886   if (!getASTReader())
1887     createASTReader();
1888 
1889   // Time how long it takes to load the module.
1890   llvm::Timer Timer;
1891   if (timerGroup)
1892     Timer.init("loading." + ModuleFilename, "Loading " + ModuleFilename,
1893                *timerGroup);
1894   llvm::TimeRegion TimeLoading(timerGroup ? &Timer : nullptr);
1895   llvm::TimeTraceScope TimeScope("Module Load", ModuleName);
1896 
1897   // Try to load the module file. If we are not trying to load from the
1898   // module cache, we don't know how to rebuild modules.
1899   unsigned ARRFlags = Source == MS_ModuleCache
1900                           ? ASTReader::ARR_OutOfDate | ASTReader::ARR_Missing |
1901                                 ASTReader::ARR_TreatModuleWithErrorsAsOutOfDate
1902                           : Source == MS_PrebuiltModulePath
1903                                 ? 0
1904                                 : ASTReader::ARR_ConfigurationMismatch;
1905   switch (getASTReader()->ReadAST(ModuleFilename,
1906                                   Source == MS_PrebuiltModulePath
1907                                       ? serialization::MK_PrebuiltModule
1908                                       : Source == MS_ModuleBuildPragma
1909                                             ? serialization::MK_ExplicitModule
1910                                             : serialization::MK_ImplicitModule,
1911                                   ImportLoc, ARRFlags)) {
1912   case ASTReader::Success: {
1913     if (M)
1914       return M;
1915     assert(Source != MS_ModuleCache &&
1916            "missing module, but file loaded from cache");
1917 
1918     // A prebuilt module is indexed as a ModuleFile; the Module does not exist
1919     // until the first call to ReadAST.  Look it up now.
1920     M = HS.lookupModule(ModuleName, ImportLoc, true, !IsInclusionDirective);
1921 
1922     // Check whether M refers to the file in the prebuilt module path.
1923     if (M && M->getASTFile())
1924       if (auto ModuleFile = FileMgr->getOptionalFileRef(ModuleFilename))
1925         if (*ModuleFile == M->getASTFile())
1926           return M;
1927 
1928     getDiagnostics().Report(ModuleNameLoc, diag::err_module_prebuilt)
1929         << ModuleName;
1930     return ModuleLoadResult();
1931   }
1932 
1933   case ASTReader::OutOfDate:
1934   case ASTReader::Missing:
1935     // The most interesting case.
1936     break;
1937 
1938   case ASTReader::ConfigurationMismatch:
1939     if (Source == MS_PrebuiltModulePath)
1940       // FIXME: We shouldn't be setting HadFatalFailure below if we only
1941       // produce a warning here!
1942       getDiagnostics().Report(SourceLocation(),
1943                               diag::warn_module_config_mismatch)
1944           << ModuleFilename;
1945     // Fall through to error out.
1946     [[fallthrough]];
1947   case ASTReader::VersionMismatch:
1948   case ASTReader::HadErrors:
1949     ModuleLoader::HadFatalFailure = true;
1950     // FIXME: The ASTReader will already have complained, but can we shoehorn
1951     // that diagnostic information into a more useful form?
1952     return ModuleLoadResult();
1953 
1954   case ASTReader::Failure:
1955     ModuleLoader::HadFatalFailure = true;
1956     return ModuleLoadResult();
1957   }
1958 
1959   // ReadAST returned Missing or OutOfDate.
1960   if (Source != MS_ModuleCache) {
1961     // We don't know the desired configuration for this module and don't
1962     // necessarily even have a module map. Since ReadAST already produces
1963     // diagnostics for these two cases, we simply error out here.
1964     return ModuleLoadResult();
1965   }
1966 
1967   // The module file is missing or out-of-date. Build it.
1968   assert(M && "missing module, but trying to compile for cache");
1969 
1970   // Check whether there is a cycle in the module graph.
1971   ModuleBuildStack ModPath = getSourceManager().getModuleBuildStack();
1972   ModuleBuildStack::iterator Pos = ModPath.begin(), PosEnd = ModPath.end();
1973   for (; Pos != PosEnd; ++Pos) {
1974     if (Pos->first == ModuleName)
1975       break;
1976   }
1977 
1978   if (Pos != PosEnd) {
1979     SmallString<256> CyclePath;
1980     for (; Pos != PosEnd; ++Pos) {
1981       CyclePath += Pos->first;
1982       CyclePath += " -> ";
1983     }
1984     CyclePath += ModuleName;
1985 
1986     getDiagnostics().Report(ModuleNameLoc, diag::err_module_cycle)
1987         << ModuleName << CyclePath;
1988     return nullptr;
1989   }
1990 
1991   // Check whether we have already attempted to build this module (but failed).
1992   if (FailedModules && FailedModules->hasAlreadyFailed(ModuleName)) {
1993     getDiagnostics().Report(ModuleNameLoc, diag::err_module_not_built)
1994         << ModuleName << SourceRange(ImportLoc, ModuleNameLoc);
1995     return nullptr;
1996   }
1997 
1998   // Try to compile and then read the AST.
1999   if (!compileModuleAndReadAST(*this, ImportLoc, ModuleNameLoc, M,
2000                                ModuleFilename)) {
2001     assert(getDiagnostics().hasErrorOccurred() &&
2002            "undiagnosed error in compileModuleAndReadAST");
2003     if (FailedModules)
2004       FailedModules->addFailed(ModuleName);
2005     return nullptr;
2006   }
2007 
2008   // Okay, we've rebuilt and now loaded the module.
2009   return M;
2010 }
2011 
2012 ModuleLoadResult
2013 CompilerInstance::loadModule(SourceLocation ImportLoc,
2014                              ModuleIdPath Path,
2015                              Module::NameVisibilityKind Visibility,
2016                              bool IsInclusionDirective) {
2017   // Determine what file we're searching from.
2018   StringRef ModuleName = Path[0].first->getName();
2019   SourceLocation ModuleNameLoc = Path[0].second;
2020 
2021   // If we've already handled this import, just return the cached result.
2022   // This one-element cache is important to eliminate redundant diagnostics
2023   // when both the preprocessor and parser see the same import declaration.
2024   if (ImportLoc.isValid() && LastModuleImportLoc == ImportLoc) {
2025     // Make the named module visible.
2026     if (LastModuleImportResult && ModuleName != getLangOpts().CurrentModule)
2027       TheASTReader->makeModuleVisible(LastModuleImportResult, Visibility,
2028                                       ImportLoc);
2029     return LastModuleImportResult;
2030   }
2031 
2032   // If we don't already have information on this module, load the module now.
2033   Module *Module = nullptr;
2034   ModuleMap &MM = getPreprocessor().getHeaderSearchInfo().getModuleMap();
2035   if (auto MaybeModule = MM.getCachedModuleLoad(*Path[0].first)) {
2036     // Use the cached result, which may be nullptr.
2037     Module = *MaybeModule;
2038     // Config macros are already checked before building a module, but they need
2039     // to be checked at each import location in case any of the config macros
2040     // have a new value at the current `ImportLoc`.
2041     if (Module)
2042       checkConfigMacros(getPreprocessor(), Module, ImportLoc);
2043   } else if (ModuleName == getLangOpts().CurrentModule) {
2044     // This is the module we're building.
2045     Module = PP->getHeaderSearchInfo().lookupModule(
2046         ModuleName, ImportLoc, /*AllowSearch*/ true,
2047         /*AllowExtraModuleMapSearch*/ !IsInclusionDirective);
2048 
2049     // Config macros do not need to be checked here for two reasons.
2050     // * This will always be textual inclusion, and thus the config macros
2051     //   actually do impact the content of the header.
2052     // * `Preprocessor::HandleHeaderIncludeOrImport` will never call this
2053     //   function as the `#include` or `#import` is textual.
2054 
2055     MM.cacheModuleLoad(*Path[0].first, Module);
2056   } else {
2057     ModuleLoadResult Result = findOrCompileModuleAndReadAST(
2058         ModuleName, ImportLoc, ModuleNameLoc, IsInclusionDirective);
2059     if (!Result.isNormal())
2060       return Result;
2061     if (!Result)
2062       DisableGeneratingGlobalModuleIndex = true;
2063     Module = Result;
2064     MM.cacheModuleLoad(*Path[0].first, Module);
2065   }
2066 
2067   // If we never found the module, fail.  Otherwise, verify the module and link
2068   // it up.
2069   if (!Module)
2070     return ModuleLoadResult();
2071 
2072   // Verify that the rest of the module path actually corresponds to
2073   // a submodule.
2074   bool MapPrivateSubModToTopLevel = false;
2075   for (unsigned I = 1, N = Path.size(); I != N; ++I) {
2076     StringRef Name = Path[I].first->getName();
2077     clang::Module *Sub = Module->findSubmodule(Name);
2078 
2079     // If the user is requesting Foo.Private and it doesn't exist, try to
2080     // match Foo_Private and emit a warning asking for the user to write
2081     // @import Foo_Private instead. FIXME: remove this when existing clients
2082     // migrate off of Foo.Private syntax.
2083     if (!Sub && Name == "Private" && Module == Module->getTopLevelModule()) {
2084       SmallString<128> PrivateModule(Module->Name);
2085       PrivateModule.append("_Private");
2086 
2087       SmallVector<std::pair<IdentifierInfo *, SourceLocation>, 2> PrivPath;
2088       auto &II = PP->getIdentifierTable().get(
2089           PrivateModule, PP->getIdentifierInfo(Module->Name)->getTokenID());
2090       PrivPath.push_back(std::make_pair(&II, Path[0].second));
2091 
2092       std::string FileName;
2093       // If there is a modulemap module or prebuilt module, load it.
2094       if (PP->getHeaderSearchInfo().lookupModule(PrivateModule, ImportLoc, true,
2095                                                  !IsInclusionDirective) ||
2096           selectModuleSource(nullptr, PrivateModule, FileName, BuiltModules,
2097                              PP->getHeaderSearchInfo()) != MS_ModuleNotFound)
2098         Sub = loadModule(ImportLoc, PrivPath, Visibility, IsInclusionDirective);
2099       if (Sub) {
2100         MapPrivateSubModToTopLevel = true;
2101         PP->markClangModuleAsAffecting(Module);
2102         if (!getDiagnostics().isIgnored(
2103                 diag::warn_no_priv_submodule_use_toplevel, ImportLoc)) {
2104           getDiagnostics().Report(Path[I].second,
2105                                   diag::warn_no_priv_submodule_use_toplevel)
2106               << Path[I].first << Module->getFullModuleName() << PrivateModule
2107               << SourceRange(Path[0].second, Path[I].second)
2108               << FixItHint::CreateReplacement(SourceRange(Path[0].second),
2109                                               PrivateModule);
2110           getDiagnostics().Report(Sub->DefinitionLoc,
2111                                   diag::note_private_top_level_defined);
2112         }
2113       }
2114     }
2115 
2116     if (!Sub) {
2117       // Attempt to perform typo correction to find a module name that works.
2118       SmallVector<StringRef, 2> Best;
2119       unsigned BestEditDistance = (std::numeric_limits<unsigned>::max)();
2120 
2121       for (class Module *SubModule : Module->submodules()) {
2122         unsigned ED =
2123             Name.edit_distance(SubModule->Name,
2124                                /*AllowReplacements=*/true, BestEditDistance);
2125         if (ED <= BestEditDistance) {
2126           if (ED < BestEditDistance) {
2127             Best.clear();
2128             BestEditDistance = ED;
2129           }
2130 
2131           Best.push_back(SubModule->Name);
2132         }
2133       }
2134 
2135       // If there was a clear winner, user it.
2136       if (Best.size() == 1) {
2137         getDiagnostics().Report(Path[I].second, diag::err_no_submodule_suggest)
2138             << Path[I].first << Module->getFullModuleName() << Best[0]
2139             << SourceRange(Path[0].second, Path[I - 1].second)
2140             << FixItHint::CreateReplacement(SourceRange(Path[I].second),
2141                                             Best[0]);
2142 
2143         Sub = Module->findSubmodule(Best[0]);
2144       }
2145     }
2146 
2147     if (!Sub) {
2148       // No submodule by this name. Complain, and don't look for further
2149       // submodules.
2150       getDiagnostics().Report(Path[I].second, diag::err_no_submodule)
2151           << Path[I].first << Module->getFullModuleName()
2152           << SourceRange(Path[0].second, Path[I - 1].second);
2153       break;
2154     }
2155 
2156     Module = Sub;
2157   }
2158 
2159   // Make the named module visible, if it's not already part of the module
2160   // we are parsing.
2161   if (ModuleName != getLangOpts().CurrentModule) {
2162     if (!Module->IsFromModuleFile && !MapPrivateSubModToTopLevel) {
2163       // We have an umbrella header or directory that doesn't actually include
2164       // all of the headers within the directory it covers. Complain about
2165       // this missing submodule and recover by forgetting that we ever saw
2166       // this submodule.
2167       // FIXME: Should we detect this at module load time? It seems fairly
2168       // expensive (and rare).
2169       getDiagnostics().Report(ImportLoc, diag::warn_missing_submodule)
2170         << Module->getFullModuleName()
2171         << SourceRange(Path.front().second, Path.back().second);
2172 
2173       return ModuleLoadResult(Module, ModuleLoadResult::MissingExpected);
2174     }
2175 
2176     // Check whether this module is available.
2177     if (Preprocessor::checkModuleIsAvailable(getLangOpts(), getTarget(),
2178                                              *Module, getDiagnostics())) {
2179       getDiagnostics().Report(ImportLoc, diag::note_module_import_here)
2180         << SourceRange(Path.front().second, Path.back().second);
2181       LastModuleImportLoc = ImportLoc;
2182       LastModuleImportResult = ModuleLoadResult();
2183       return ModuleLoadResult();
2184     }
2185 
2186     TheASTReader->makeModuleVisible(Module, Visibility, ImportLoc);
2187   }
2188 
2189   // Resolve any remaining module using export_as for this one.
2190   getPreprocessor()
2191       .getHeaderSearchInfo()
2192       .getModuleMap()
2193       .resolveLinkAsDependencies(Module->getTopLevelModule());
2194 
2195   LastModuleImportLoc = ImportLoc;
2196   LastModuleImportResult = ModuleLoadResult(Module);
2197   return LastModuleImportResult;
2198 }
2199 
2200 void CompilerInstance::createModuleFromSource(SourceLocation ImportLoc,
2201                                               StringRef ModuleName,
2202                                               StringRef Source) {
2203   // Avoid creating filenames with special characters.
2204   SmallString<128> CleanModuleName(ModuleName);
2205   for (auto &C : CleanModuleName)
2206     if (!isAlphanumeric(C))
2207       C = '_';
2208 
2209   // FIXME: Using a randomized filename here means that our intermediate .pcm
2210   // output is nondeterministic (as .pcm files refer to each other by name).
2211   // Can this affect the output in any way?
2212   SmallString<128> ModuleFileName;
2213   if (std::error_code EC = llvm::sys::fs::createTemporaryFile(
2214           CleanModuleName, "pcm", ModuleFileName)) {
2215     getDiagnostics().Report(ImportLoc, diag::err_fe_unable_to_open_output)
2216         << ModuleFileName << EC.message();
2217     return;
2218   }
2219   std::string ModuleMapFileName = (CleanModuleName + ".map").str();
2220 
2221   FrontendInputFile Input(
2222       ModuleMapFileName,
2223       InputKind(getLanguageFromOptions(Invocation->getLangOpts()),
2224                 InputKind::ModuleMap, /*Preprocessed*/true));
2225 
2226   std::string NullTerminatedSource(Source.str());
2227 
2228   auto PreBuildStep = [&](CompilerInstance &Other) {
2229     // Create a virtual file containing our desired source.
2230     // FIXME: We shouldn't need to do this.
2231     FileEntryRef ModuleMapFile = Other.getFileManager().getVirtualFileRef(
2232         ModuleMapFileName, NullTerminatedSource.size(), 0);
2233     Other.getSourceManager().overrideFileContents(
2234         ModuleMapFile, llvm::MemoryBuffer::getMemBuffer(NullTerminatedSource));
2235 
2236     Other.BuiltModules = std::move(BuiltModules);
2237     Other.DeleteBuiltModules = false;
2238   };
2239 
2240   auto PostBuildStep = [this](CompilerInstance &Other) {
2241     BuiltModules = std::move(Other.BuiltModules);
2242   };
2243 
2244   // Build the module, inheriting any modules that we've built locally.
2245   if (compileModuleImpl(*this, ImportLoc, ModuleName, Input, StringRef(),
2246                         ModuleFileName, PreBuildStep, PostBuildStep)) {
2247     BuiltModules[std::string(ModuleName)] = std::string(ModuleFileName);
2248     llvm::sys::RemoveFileOnSignal(ModuleFileName);
2249   }
2250 }
2251 
2252 void CompilerInstance::makeModuleVisible(Module *Mod,
2253                                          Module::NameVisibilityKind Visibility,
2254                                          SourceLocation ImportLoc) {
2255   if (!TheASTReader)
2256     createASTReader();
2257   if (!TheASTReader)
2258     return;
2259 
2260   TheASTReader->makeModuleVisible(Mod, Visibility, ImportLoc);
2261 }
2262 
2263 GlobalModuleIndex *CompilerInstance::loadGlobalModuleIndex(
2264     SourceLocation TriggerLoc) {
2265   if (getPreprocessor().getHeaderSearchInfo().getModuleCachePath().empty())
2266     return nullptr;
2267   if (!TheASTReader)
2268     createASTReader();
2269   // Can't do anything if we don't have the module manager.
2270   if (!TheASTReader)
2271     return nullptr;
2272   // Get an existing global index.  This loads it if not already
2273   // loaded.
2274   TheASTReader->loadGlobalIndex();
2275   GlobalModuleIndex *GlobalIndex = TheASTReader->getGlobalIndex();
2276   // If the global index doesn't exist, create it.
2277   if (!GlobalIndex && shouldBuildGlobalModuleIndex() && hasFileManager() &&
2278       hasPreprocessor()) {
2279     llvm::sys::fs::create_directories(
2280       getPreprocessor().getHeaderSearchInfo().getModuleCachePath());
2281     if (llvm::Error Err = GlobalModuleIndex::writeIndex(
2282             getFileManager(), getPCHContainerReader(),
2283             getPreprocessor().getHeaderSearchInfo().getModuleCachePath())) {
2284       // FIXME this drops the error on the floor. This code is only used for
2285       // typo correction and drops more than just this one source of errors
2286       // (such as the directory creation failure above). It should handle the
2287       // error.
2288       consumeError(std::move(Err));
2289       return nullptr;
2290     }
2291     TheASTReader->resetForReload();
2292     TheASTReader->loadGlobalIndex();
2293     GlobalIndex = TheASTReader->getGlobalIndex();
2294   }
2295   // For finding modules needing to be imported for fixit messages,
2296   // we need to make the global index cover all modules, so we do that here.
2297   if (!HaveFullGlobalModuleIndex && GlobalIndex && !buildingModule()) {
2298     ModuleMap &MMap = getPreprocessor().getHeaderSearchInfo().getModuleMap();
2299     bool RecreateIndex = false;
2300     for (ModuleMap::module_iterator I = MMap.module_begin(),
2301         E = MMap.module_end(); I != E; ++I) {
2302       Module *TheModule = I->second;
2303       OptionalFileEntryRef Entry = TheModule->getASTFile();
2304       if (!Entry) {
2305         SmallVector<std::pair<IdentifierInfo *, SourceLocation>, 2> Path;
2306         Path.push_back(std::make_pair(
2307             getPreprocessor().getIdentifierInfo(TheModule->Name), TriggerLoc));
2308         std::reverse(Path.begin(), Path.end());
2309         // Load a module as hidden.  This also adds it to the global index.
2310         loadModule(TheModule->DefinitionLoc, Path, Module::Hidden, false);
2311         RecreateIndex = true;
2312       }
2313     }
2314     if (RecreateIndex) {
2315       if (llvm::Error Err = GlobalModuleIndex::writeIndex(
2316               getFileManager(), getPCHContainerReader(),
2317               getPreprocessor().getHeaderSearchInfo().getModuleCachePath())) {
2318         // FIXME As above, this drops the error on the floor.
2319         consumeError(std::move(Err));
2320         return nullptr;
2321       }
2322       TheASTReader->resetForReload();
2323       TheASTReader->loadGlobalIndex();
2324       GlobalIndex = TheASTReader->getGlobalIndex();
2325     }
2326     HaveFullGlobalModuleIndex = true;
2327   }
2328   return GlobalIndex;
2329 }
2330 
2331 // Check global module index for missing imports.
2332 bool
2333 CompilerInstance::lookupMissingImports(StringRef Name,
2334                                        SourceLocation TriggerLoc) {
2335   // Look for the symbol in non-imported modules, but only if an error
2336   // actually occurred.
2337   if (!buildingModule()) {
2338     // Load global module index, or retrieve a previously loaded one.
2339     GlobalModuleIndex *GlobalIndex = loadGlobalModuleIndex(
2340       TriggerLoc);
2341 
2342     // Only if we have a global index.
2343     if (GlobalIndex) {
2344       GlobalModuleIndex::HitSet FoundModules;
2345 
2346       // Find the modules that reference the identifier.
2347       // Note that this only finds top-level modules.
2348       // We'll let diagnoseTypo find the actual declaration module.
2349       if (GlobalIndex->lookupIdentifier(Name, FoundModules))
2350         return true;
2351     }
2352   }
2353 
2354   return false;
2355 }
2356 void CompilerInstance::resetAndLeakSema() { llvm::BuryPointer(takeSema()); }
2357 
2358 void CompilerInstance::setExternalSemaSource(
2359     IntrusiveRefCntPtr<ExternalSemaSource> ESS) {
2360   ExternalSemaSrc = std::move(ESS);
2361 }
2362