1 //===- Preprocessor.cpp - C Language Family Preprocessor Implementation ---===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file implements the Preprocessor interface. 10 // 11 //===----------------------------------------------------------------------===// 12 // 13 // Options to support: 14 // -H - Print the name of each header file used. 15 // -d[DNI] - Dump various things. 16 // -fworking-directory - #line's with preprocessor's working dir. 17 // -fpreprocessed 18 // -dependency-file,-M,-MM,-MF,-MG,-MP,-MT,-MQ,-MD,-MMD 19 // -W* 20 // -w 21 // 22 // Messages to emit: 23 // "Multiple include guards may be useful for:\n" 24 // 25 //===----------------------------------------------------------------------===// 26 27 #include "clang/Lex/Preprocessor.h" 28 #include "clang/Basic/Builtins.h" 29 #include "clang/Basic/FileManager.h" 30 #include "clang/Basic/FileSystemStatCache.h" 31 #include "clang/Basic/IdentifierTable.h" 32 #include "clang/Basic/LLVM.h" 33 #include "clang/Basic/LangOptions.h" 34 #include "clang/Basic/Module.h" 35 #include "clang/Basic/SourceLocation.h" 36 #include "clang/Basic/SourceManager.h" 37 #include "clang/Basic/TargetInfo.h" 38 #include "clang/Lex/CodeCompletionHandler.h" 39 #include "clang/Lex/ExternalPreprocessorSource.h" 40 #include "clang/Lex/HeaderSearch.h" 41 #include "clang/Lex/LexDiagnostic.h" 42 #include "clang/Lex/Lexer.h" 43 #include "clang/Lex/LiteralSupport.h" 44 #include "clang/Lex/MacroArgs.h" 45 #include "clang/Lex/MacroInfo.h" 46 #include "clang/Lex/ModuleLoader.h" 47 #include "clang/Lex/Pragma.h" 48 #include "clang/Lex/PreprocessingRecord.h" 49 #include "clang/Lex/PreprocessorLexer.h" 50 #include "clang/Lex/PreprocessorOptions.h" 51 #include "clang/Lex/ScratchBuffer.h" 52 #include "clang/Lex/Token.h" 53 #include "clang/Lex/TokenLexer.h" 54 #include "llvm/ADT/APInt.h" 55 #include "llvm/ADT/ArrayRef.h" 56 #include "llvm/ADT/DenseMap.h" 57 #include "llvm/ADT/STLExtras.h" 58 #include "llvm/ADT/SmallString.h" 59 #include "llvm/ADT/SmallVector.h" 60 #include "llvm/ADT/StringRef.h" 61 #include "llvm/ADT/StringSwitch.h" 62 #include "llvm/Support/Capacity.h" 63 #include "llvm/Support/ErrorHandling.h" 64 #include "llvm/Support/MemoryBuffer.h" 65 #include "llvm/Support/raw_ostream.h" 66 #include <algorithm> 67 #include <cassert> 68 #include <memory> 69 #include <string> 70 #include <utility> 71 #include <vector> 72 73 using namespace clang; 74 75 LLVM_INSTANTIATE_REGISTRY(PragmaHandlerRegistry) 76 77 ExternalPreprocessorSource::~ExternalPreprocessorSource() = default; 78 79 Preprocessor::Preprocessor(std::shared_ptr<PreprocessorOptions> PPOpts, 80 DiagnosticsEngine &diags, LangOptions &opts, 81 SourceManager &SM, HeaderSearch &Headers, 82 ModuleLoader &TheModuleLoader, 83 IdentifierInfoLookup *IILookup, bool OwnsHeaders, 84 TranslationUnitKind TUKind) 85 : PPOpts(std::move(PPOpts)), Diags(&diags), LangOpts(opts), 86 FileMgr(Headers.getFileMgr()), SourceMgr(SM), 87 ScratchBuf(new ScratchBuffer(SourceMgr)), HeaderInfo(Headers), 88 TheModuleLoader(TheModuleLoader), ExternalSource(nullptr), 89 // As the language options may have not been loaded yet (when 90 // deserializing an ASTUnit), adding keywords to the identifier table is 91 // deferred to Preprocessor::Initialize(). 92 Identifiers(IILookup), PragmaHandlers(new PragmaNamespace(StringRef())), 93 TUKind(TUKind), SkipMainFilePreamble(0, true), 94 CurSubmoduleState(&NullSubmoduleState) { 95 OwnsHeaderSearch = OwnsHeaders; 96 97 // Default to discarding comments. 98 KeepComments = false; 99 KeepMacroComments = false; 100 SuppressIncludeNotFoundError = false; 101 102 // Macro expansion is enabled. 103 DisableMacroExpansion = false; 104 MacroExpansionInDirectivesOverride = false; 105 InMacroArgs = false; 106 ArgMacro = nullptr; 107 InMacroArgPreExpansion = false; 108 NumCachedTokenLexers = 0; 109 PragmasEnabled = true; 110 ParsingIfOrElifDirective = false; 111 PreprocessedOutput = false; 112 113 // We haven't read anything from the external source. 114 ReadMacrosFromExternalSource = false; 115 116 BuiltinInfo = std::make_unique<Builtin::Context>(); 117 118 // "Poison" __VA_ARGS__, __VA_OPT__ which can only appear in the expansion of 119 // a macro. They get unpoisoned where it is allowed. 120 (Ident__VA_ARGS__ = getIdentifierInfo("__VA_ARGS__"))->setIsPoisoned(); 121 SetPoisonReason(Ident__VA_ARGS__,diag::ext_pp_bad_vaargs_use); 122 (Ident__VA_OPT__ = getIdentifierInfo("__VA_OPT__"))->setIsPoisoned(); 123 SetPoisonReason(Ident__VA_OPT__,diag::ext_pp_bad_vaopt_use); 124 125 // Initialize the pragma handlers. 126 RegisterBuiltinPragmas(); 127 128 // Initialize builtin macros like __LINE__ and friends. 129 RegisterBuiltinMacros(); 130 131 if(LangOpts.Borland) { 132 Ident__exception_info = getIdentifierInfo("_exception_info"); 133 Ident___exception_info = getIdentifierInfo("__exception_info"); 134 Ident_GetExceptionInfo = getIdentifierInfo("GetExceptionInformation"); 135 Ident__exception_code = getIdentifierInfo("_exception_code"); 136 Ident___exception_code = getIdentifierInfo("__exception_code"); 137 Ident_GetExceptionCode = getIdentifierInfo("GetExceptionCode"); 138 Ident__abnormal_termination = getIdentifierInfo("_abnormal_termination"); 139 Ident___abnormal_termination = getIdentifierInfo("__abnormal_termination"); 140 Ident_AbnormalTermination = getIdentifierInfo("AbnormalTermination"); 141 } else { 142 Ident__exception_info = Ident__exception_code = nullptr; 143 Ident__abnormal_termination = Ident___exception_info = nullptr; 144 Ident___exception_code = Ident___abnormal_termination = nullptr; 145 Ident_GetExceptionInfo = Ident_GetExceptionCode = nullptr; 146 Ident_AbnormalTermination = nullptr; 147 } 148 149 // If using a PCH where a #pragma hdrstop is expected, start skipping tokens. 150 if (usingPCHWithPragmaHdrStop()) 151 SkippingUntilPragmaHdrStop = true; 152 153 // If using a PCH with a through header, start skipping tokens. 154 if (!this->PPOpts->PCHThroughHeader.empty() && 155 !this->PPOpts->ImplicitPCHInclude.empty()) 156 SkippingUntilPCHThroughHeader = true; 157 158 if (this->PPOpts->GeneratePreamble) 159 PreambleConditionalStack.startRecording(); 160 161 ExcludedConditionalDirectiveSkipMappings = 162 this->PPOpts->ExcludedConditionalDirectiveSkipMappings; 163 if (ExcludedConditionalDirectiveSkipMappings) 164 ExcludedConditionalDirectiveSkipMappings->clear(); 165 166 MaxTokens = LangOpts.MaxTokens; 167 } 168 169 Preprocessor::~Preprocessor() { 170 assert(BacktrackPositions.empty() && "EnableBacktrack/Backtrack imbalance!"); 171 172 IncludeMacroStack.clear(); 173 174 // Destroy any macro definitions. 175 while (MacroInfoChain *I = MIChainHead) { 176 MIChainHead = I->Next; 177 I->~MacroInfoChain(); 178 } 179 180 // Free any cached macro expanders. 181 // This populates MacroArgCache, so all TokenLexers need to be destroyed 182 // before the code below that frees up the MacroArgCache list. 183 std::fill(TokenLexerCache, TokenLexerCache + NumCachedTokenLexers, nullptr); 184 CurTokenLexer.reset(); 185 186 // Free any cached MacroArgs. 187 for (MacroArgs *ArgList = MacroArgCache; ArgList;) 188 ArgList = ArgList->deallocate(); 189 190 // Delete the header search info, if we own it. 191 if (OwnsHeaderSearch) 192 delete &HeaderInfo; 193 } 194 195 void Preprocessor::Initialize(const TargetInfo &Target, 196 const TargetInfo *AuxTarget) { 197 assert((!this->Target || this->Target == &Target) && 198 "Invalid override of target information"); 199 this->Target = &Target; 200 201 assert((!this->AuxTarget || this->AuxTarget == AuxTarget) && 202 "Invalid override of aux target information."); 203 this->AuxTarget = AuxTarget; 204 205 // Initialize information about built-ins. 206 BuiltinInfo->InitializeTarget(Target, AuxTarget); 207 HeaderInfo.setTarget(Target); 208 209 // Populate the identifier table with info about keywords for the current language. 210 Identifiers.AddKeywords(LangOpts); 211 } 212 213 void Preprocessor::InitializeForModelFile() { 214 NumEnteredSourceFiles = 0; 215 216 // Reset pragmas 217 PragmaHandlersBackup = std::move(PragmaHandlers); 218 PragmaHandlers = std::make_unique<PragmaNamespace>(StringRef()); 219 RegisterBuiltinPragmas(); 220 221 // Reset PredefinesFileID 222 PredefinesFileID = FileID(); 223 } 224 225 void Preprocessor::FinalizeForModelFile() { 226 NumEnteredSourceFiles = 1; 227 228 PragmaHandlers = std::move(PragmaHandlersBackup); 229 } 230 231 void Preprocessor::DumpToken(const Token &Tok, bool DumpFlags) const { 232 llvm::errs() << tok::getTokenName(Tok.getKind()) << " '" 233 << getSpelling(Tok) << "'"; 234 235 if (!DumpFlags) return; 236 237 llvm::errs() << "\t"; 238 if (Tok.isAtStartOfLine()) 239 llvm::errs() << " [StartOfLine]"; 240 if (Tok.hasLeadingSpace()) 241 llvm::errs() << " [LeadingSpace]"; 242 if (Tok.isExpandDisabled()) 243 llvm::errs() << " [ExpandDisabled]"; 244 if (Tok.needsCleaning()) { 245 const char *Start = SourceMgr.getCharacterData(Tok.getLocation()); 246 llvm::errs() << " [UnClean='" << StringRef(Start, Tok.getLength()) 247 << "']"; 248 } 249 250 llvm::errs() << "\tLoc=<"; 251 DumpLocation(Tok.getLocation()); 252 llvm::errs() << ">"; 253 } 254 255 void Preprocessor::DumpLocation(SourceLocation Loc) const { 256 Loc.print(llvm::errs(), SourceMgr); 257 } 258 259 void Preprocessor::DumpMacro(const MacroInfo &MI) const { 260 llvm::errs() << "MACRO: "; 261 for (unsigned i = 0, e = MI.getNumTokens(); i != e; ++i) { 262 DumpToken(MI.getReplacementToken(i)); 263 llvm::errs() << " "; 264 } 265 llvm::errs() << "\n"; 266 } 267 268 void Preprocessor::PrintStats() { 269 llvm::errs() << "\n*** Preprocessor Stats:\n"; 270 llvm::errs() << NumDirectives << " directives found:\n"; 271 llvm::errs() << " " << NumDefined << " #define.\n"; 272 llvm::errs() << " " << NumUndefined << " #undef.\n"; 273 llvm::errs() << " #include/#include_next/#import:\n"; 274 llvm::errs() << " " << NumEnteredSourceFiles << " source files entered.\n"; 275 llvm::errs() << " " << MaxIncludeStackDepth << " max include stack depth\n"; 276 llvm::errs() << " " << NumIf << " #if/#ifndef/#ifdef.\n"; 277 llvm::errs() << " " << NumElse << " #else/#elif/#elifdef/#elifndef.\n"; 278 llvm::errs() << " " << NumEndif << " #endif.\n"; 279 llvm::errs() << " " << NumPragma << " #pragma.\n"; 280 llvm::errs() << NumSkipped << " #if/#ifndef#ifdef regions skipped\n"; 281 282 llvm::errs() << NumMacroExpanded << "/" << NumFnMacroExpanded << "/" 283 << NumBuiltinMacroExpanded << " obj/fn/builtin macros expanded, " 284 << NumFastMacroExpanded << " on the fast path.\n"; 285 llvm::errs() << (NumFastTokenPaste+NumTokenPaste) 286 << " token paste (##) operations performed, " 287 << NumFastTokenPaste << " on the fast path.\n"; 288 289 llvm::errs() << "\nPreprocessor Memory: " << getTotalMemory() << "B total"; 290 291 llvm::errs() << "\n BumpPtr: " << BP.getTotalMemory(); 292 llvm::errs() << "\n Macro Expanded Tokens: " 293 << llvm::capacity_in_bytes(MacroExpandedTokens); 294 llvm::errs() << "\n Predefines Buffer: " << Predefines.capacity(); 295 // FIXME: List information for all submodules. 296 llvm::errs() << "\n Macros: " 297 << llvm::capacity_in_bytes(CurSubmoduleState->Macros); 298 llvm::errs() << "\n #pragma push_macro Info: " 299 << llvm::capacity_in_bytes(PragmaPushMacroInfo); 300 llvm::errs() << "\n Poison Reasons: " 301 << llvm::capacity_in_bytes(PoisonReasons); 302 llvm::errs() << "\n Comment Handlers: " 303 << llvm::capacity_in_bytes(CommentHandlers) << "\n"; 304 } 305 306 Preprocessor::macro_iterator 307 Preprocessor::macro_begin(bool IncludeExternalMacros) const { 308 if (IncludeExternalMacros && ExternalSource && 309 !ReadMacrosFromExternalSource) { 310 ReadMacrosFromExternalSource = true; 311 ExternalSource->ReadDefinedMacros(); 312 } 313 314 // Make sure we cover all macros in visible modules. 315 for (const ModuleMacro &Macro : ModuleMacros) 316 CurSubmoduleState->Macros.insert(std::make_pair(Macro.II, MacroState())); 317 318 return CurSubmoduleState->Macros.begin(); 319 } 320 321 size_t Preprocessor::getTotalMemory() const { 322 return BP.getTotalMemory() 323 + llvm::capacity_in_bytes(MacroExpandedTokens) 324 + Predefines.capacity() /* Predefines buffer. */ 325 // FIXME: Include sizes from all submodules, and include MacroInfo sizes, 326 // and ModuleMacros. 327 + llvm::capacity_in_bytes(CurSubmoduleState->Macros) 328 + llvm::capacity_in_bytes(PragmaPushMacroInfo) 329 + llvm::capacity_in_bytes(PoisonReasons) 330 + llvm::capacity_in_bytes(CommentHandlers); 331 } 332 333 Preprocessor::macro_iterator 334 Preprocessor::macro_end(bool IncludeExternalMacros) const { 335 if (IncludeExternalMacros && ExternalSource && 336 !ReadMacrosFromExternalSource) { 337 ReadMacrosFromExternalSource = true; 338 ExternalSource->ReadDefinedMacros(); 339 } 340 341 return CurSubmoduleState->Macros.end(); 342 } 343 344 /// Compares macro tokens with a specified token value sequence. 345 static bool MacroDefinitionEquals(const MacroInfo *MI, 346 ArrayRef<TokenValue> Tokens) { 347 return Tokens.size() == MI->getNumTokens() && 348 std::equal(Tokens.begin(), Tokens.end(), MI->tokens_begin()); 349 } 350 351 StringRef Preprocessor::getLastMacroWithSpelling( 352 SourceLocation Loc, 353 ArrayRef<TokenValue> Tokens) const { 354 SourceLocation BestLocation; 355 StringRef BestSpelling; 356 for (Preprocessor::macro_iterator I = macro_begin(), E = macro_end(); 357 I != E; ++I) { 358 const MacroDirective::DefInfo 359 Def = I->second.findDirectiveAtLoc(Loc, SourceMgr); 360 if (!Def || !Def.getMacroInfo()) 361 continue; 362 if (!Def.getMacroInfo()->isObjectLike()) 363 continue; 364 if (!MacroDefinitionEquals(Def.getMacroInfo(), Tokens)) 365 continue; 366 SourceLocation Location = Def.getLocation(); 367 // Choose the macro defined latest. 368 if (BestLocation.isInvalid() || 369 (Location.isValid() && 370 SourceMgr.isBeforeInTranslationUnit(BestLocation, Location))) { 371 BestLocation = Location; 372 BestSpelling = I->first->getName(); 373 } 374 } 375 return BestSpelling; 376 } 377 378 void Preprocessor::recomputeCurLexerKind() { 379 if (CurLexer) 380 CurLexerKind = CLK_Lexer; 381 else if (CurTokenLexer) 382 CurLexerKind = CLK_TokenLexer; 383 else 384 CurLexerKind = CLK_CachingLexer; 385 } 386 387 bool Preprocessor::SetCodeCompletionPoint(const FileEntry *File, 388 unsigned CompleteLine, 389 unsigned CompleteColumn) { 390 assert(File); 391 assert(CompleteLine && CompleteColumn && "Starts from 1:1"); 392 assert(!CodeCompletionFile && "Already set"); 393 394 // Load the actual file's contents. 395 Optional<llvm::MemoryBufferRef> Buffer = 396 SourceMgr.getMemoryBufferForFileOrNone(File); 397 if (!Buffer) 398 return true; 399 400 // Find the byte position of the truncation point. 401 const char *Position = Buffer->getBufferStart(); 402 for (unsigned Line = 1; Line < CompleteLine; ++Line) { 403 for (; *Position; ++Position) { 404 if (*Position != '\r' && *Position != '\n') 405 continue; 406 407 // Eat \r\n or \n\r as a single line. 408 if ((Position[1] == '\r' || Position[1] == '\n') && 409 Position[0] != Position[1]) 410 ++Position; 411 ++Position; 412 break; 413 } 414 } 415 416 Position += CompleteColumn - 1; 417 418 // If pointing inside the preamble, adjust the position at the beginning of 419 // the file after the preamble. 420 if (SkipMainFilePreamble.first && 421 SourceMgr.getFileEntryForID(SourceMgr.getMainFileID()) == File) { 422 if (Position - Buffer->getBufferStart() < SkipMainFilePreamble.first) 423 Position = Buffer->getBufferStart() + SkipMainFilePreamble.first; 424 } 425 426 if (Position > Buffer->getBufferEnd()) 427 Position = Buffer->getBufferEnd(); 428 429 CodeCompletionFile = File; 430 CodeCompletionOffset = Position - Buffer->getBufferStart(); 431 432 auto NewBuffer = llvm::WritableMemoryBuffer::getNewUninitMemBuffer( 433 Buffer->getBufferSize() + 1, Buffer->getBufferIdentifier()); 434 char *NewBuf = NewBuffer->getBufferStart(); 435 char *NewPos = std::copy(Buffer->getBufferStart(), Position, NewBuf); 436 *NewPos = '\0'; 437 std::copy(Position, Buffer->getBufferEnd(), NewPos+1); 438 SourceMgr.overrideFileContents(File, std::move(NewBuffer)); 439 440 return false; 441 } 442 443 void Preprocessor::CodeCompleteIncludedFile(llvm::StringRef Dir, 444 bool IsAngled) { 445 setCodeCompletionReached(); 446 if (CodeComplete) 447 CodeComplete->CodeCompleteIncludedFile(Dir, IsAngled); 448 } 449 450 void Preprocessor::CodeCompleteNaturalLanguage() { 451 setCodeCompletionReached(); 452 if (CodeComplete) 453 CodeComplete->CodeCompleteNaturalLanguage(); 454 } 455 456 /// getSpelling - This method is used to get the spelling of a token into a 457 /// SmallVector. Note that the returned StringRef may not point to the 458 /// supplied buffer if a copy can be avoided. 459 StringRef Preprocessor::getSpelling(const Token &Tok, 460 SmallVectorImpl<char> &Buffer, 461 bool *Invalid) const { 462 // NOTE: this has to be checked *before* testing for an IdentifierInfo. 463 if (Tok.isNot(tok::raw_identifier) && !Tok.hasUCN()) { 464 // Try the fast path. 465 if (const IdentifierInfo *II = Tok.getIdentifierInfo()) 466 return II->getName(); 467 } 468 469 // Resize the buffer if we need to copy into it. 470 if (Tok.needsCleaning()) 471 Buffer.resize(Tok.getLength()); 472 473 const char *Ptr = Buffer.data(); 474 unsigned Len = getSpelling(Tok, Ptr, Invalid); 475 return StringRef(Ptr, Len); 476 } 477 478 /// CreateString - Plop the specified string into a scratch buffer and return a 479 /// location for it. If specified, the source location provides a source 480 /// location for the token. 481 void Preprocessor::CreateString(StringRef Str, Token &Tok, 482 SourceLocation ExpansionLocStart, 483 SourceLocation ExpansionLocEnd) { 484 Tok.setLength(Str.size()); 485 486 const char *DestPtr; 487 SourceLocation Loc = ScratchBuf->getToken(Str.data(), Str.size(), DestPtr); 488 489 if (ExpansionLocStart.isValid()) 490 Loc = SourceMgr.createExpansionLoc(Loc, ExpansionLocStart, 491 ExpansionLocEnd, Str.size()); 492 Tok.setLocation(Loc); 493 494 // If this is a raw identifier or a literal token, set the pointer data. 495 if (Tok.is(tok::raw_identifier)) 496 Tok.setRawIdentifierData(DestPtr); 497 else if (Tok.isLiteral()) 498 Tok.setLiteralData(DestPtr); 499 } 500 501 SourceLocation Preprocessor::SplitToken(SourceLocation Loc, unsigned Length) { 502 auto &SM = getSourceManager(); 503 SourceLocation SpellingLoc = SM.getSpellingLoc(Loc); 504 std::pair<FileID, unsigned> LocInfo = SM.getDecomposedLoc(SpellingLoc); 505 bool Invalid = false; 506 StringRef Buffer = SM.getBufferData(LocInfo.first, &Invalid); 507 if (Invalid) 508 return SourceLocation(); 509 510 // FIXME: We could consider re-using spelling for tokens we see repeatedly. 511 const char *DestPtr; 512 SourceLocation Spelling = 513 ScratchBuf->getToken(Buffer.data() + LocInfo.second, Length, DestPtr); 514 return SM.createTokenSplitLoc(Spelling, Loc, Loc.getLocWithOffset(Length)); 515 } 516 517 Module *Preprocessor::getCurrentModule() { 518 if (!getLangOpts().isCompilingModule()) 519 return nullptr; 520 521 return getHeaderSearchInfo().lookupModule(getLangOpts().CurrentModule); 522 } 523 524 //===----------------------------------------------------------------------===// 525 // Preprocessor Initialization Methods 526 //===----------------------------------------------------------------------===// 527 528 /// EnterMainSourceFile - Enter the specified FileID as the main source file, 529 /// which implicitly adds the builtin defines etc. 530 void Preprocessor::EnterMainSourceFile() { 531 // We do not allow the preprocessor to reenter the main file. Doing so will 532 // cause FileID's to accumulate information from both runs (e.g. #line 533 // information) and predefined macros aren't guaranteed to be set properly. 534 assert(NumEnteredSourceFiles == 0 && "Cannot reenter the main file!"); 535 FileID MainFileID = SourceMgr.getMainFileID(); 536 537 // If MainFileID is loaded it means we loaded an AST file, no need to enter 538 // a main file. 539 if (!SourceMgr.isLoadedFileID(MainFileID)) { 540 // Enter the main file source buffer. 541 EnterSourceFile(MainFileID, nullptr, SourceLocation()); 542 543 // If we've been asked to skip bytes in the main file (e.g., as part of a 544 // precompiled preamble), do so now. 545 if (SkipMainFilePreamble.first > 0) 546 CurLexer->SetByteOffset(SkipMainFilePreamble.first, 547 SkipMainFilePreamble.second); 548 549 // Tell the header info that the main file was entered. If the file is later 550 // #imported, it won't be re-entered. 551 if (const FileEntry *FE = SourceMgr.getFileEntryForID(MainFileID)) 552 markIncluded(FE); 553 } 554 555 // Preprocess Predefines to populate the initial preprocessor state. 556 std::unique_ptr<llvm::MemoryBuffer> SB = 557 llvm::MemoryBuffer::getMemBufferCopy(Predefines, "<built-in>"); 558 assert(SB && "Cannot create predefined source buffer"); 559 FileID FID = SourceMgr.createFileID(std::move(SB)); 560 assert(FID.isValid() && "Could not create FileID for predefines?"); 561 setPredefinesFileID(FID); 562 563 // Start parsing the predefines. 564 EnterSourceFile(FID, nullptr, SourceLocation()); 565 566 if (!PPOpts->PCHThroughHeader.empty()) { 567 // Lookup and save the FileID for the through header. If it isn't found 568 // in the search path, it's a fatal error. 569 Optional<FileEntryRef> File = LookupFile( 570 SourceLocation(), PPOpts->PCHThroughHeader, 571 /*isAngled=*/false, /*FromDir=*/nullptr, /*FromFile=*/nullptr, 572 /*CurDir=*/nullptr, /*SearchPath=*/nullptr, /*RelativePath=*/nullptr, 573 /*SuggestedModule=*/nullptr, /*IsMapped=*/nullptr, 574 /*IsFrameworkFound=*/nullptr); 575 if (!File) { 576 Diag(SourceLocation(), diag::err_pp_through_header_not_found) 577 << PPOpts->PCHThroughHeader; 578 return; 579 } 580 setPCHThroughHeaderFileID( 581 SourceMgr.createFileID(*File, SourceLocation(), SrcMgr::C_User)); 582 } 583 584 // Skip tokens from the Predefines and if needed the main file. 585 if ((usingPCHWithThroughHeader() && SkippingUntilPCHThroughHeader) || 586 (usingPCHWithPragmaHdrStop() && SkippingUntilPragmaHdrStop)) 587 SkipTokensWhileUsingPCH(); 588 } 589 590 void Preprocessor::setPCHThroughHeaderFileID(FileID FID) { 591 assert(PCHThroughHeaderFileID.isInvalid() && 592 "PCHThroughHeaderFileID already set!"); 593 PCHThroughHeaderFileID = FID; 594 } 595 596 bool Preprocessor::isPCHThroughHeader(const FileEntry *FE) { 597 assert(PCHThroughHeaderFileID.isValid() && 598 "Invalid PCH through header FileID"); 599 return FE == SourceMgr.getFileEntryForID(PCHThroughHeaderFileID); 600 } 601 602 bool Preprocessor::creatingPCHWithThroughHeader() { 603 return TUKind == TU_Prefix && !PPOpts->PCHThroughHeader.empty() && 604 PCHThroughHeaderFileID.isValid(); 605 } 606 607 bool Preprocessor::usingPCHWithThroughHeader() { 608 return TUKind != TU_Prefix && !PPOpts->PCHThroughHeader.empty() && 609 PCHThroughHeaderFileID.isValid(); 610 } 611 612 bool Preprocessor::creatingPCHWithPragmaHdrStop() { 613 return TUKind == TU_Prefix && PPOpts->PCHWithHdrStop; 614 } 615 616 bool Preprocessor::usingPCHWithPragmaHdrStop() { 617 return TUKind != TU_Prefix && PPOpts->PCHWithHdrStop; 618 } 619 620 /// Skip tokens until after the #include of the through header or 621 /// until after a #pragma hdrstop is seen. Tokens in the predefines file 622 /// and the main file may be skipped. If the end of the predefines file 623 /// is reached, skipping continues into the main file. If the end of the 624 /// main file is reached, it's a fatal error. 625 void Preprocessor::SkipTokensWhileUsingPCH() { 626 bool ReachedMainFileEOF = false; 627 bool UsingPCHThroughHeader = SkippingUntilPCHThroughHeader; 628 bool UsingPragmaHdrStop = SkippingUntilPragmaHdrStop; 629 Token Tok; 630 while (true) { 631 bool InPredefines = 632 (CurLexer && CurLexer->getFileID() == getPredefinesFileID()); 633 switch (CurLexerKind) { 634 case CLK_Lexer: 635 CurLexer->Lex(Tok); 636 break; 637 case CLK_TokenLexer: 638 CurTokenLexer->Lex(Tok); 639 break; 640 case CLK_CachingLexer: 641 CachingLex(Tok); 642 break; 643 case CLK_LexAfterModuleImport: 644 LexAfterModuleImport(Tok); 645 break; 646 } 647 if (Tok.is(tok::eof) && !InPredefines) { 648 ReachedMainFileEOF = true; 649 break; 650 } 651 if (UsingPCHThroughHeader && !SkippingUntilPCHThroughHeader) 652 break; 653 if (UsingPragmaHdrStop && !SkippingUntilPragmaHdrStop) 654 break; 655 } 656 if (ReachedMainFileEOF) { 657 if (UsingPCHThroughHeader) 658 Diag(SourceLocation(), diag::err_pp_through_header_not_seen) 659 << PPOpts->PCHThroughHeader << 1; 660 else if (!PPOpts->PCHWithHdrStopCreate) 661 Diag(SourceLocation(), diag::err_pp_pragma_hdrstop_not_seen); 662 } 663 } 664 665 void Preprocessor::replayPreambleConditionalStack() { 666 // Restore the conditional stack from the preamble, if there is one. 667 if (PreambleConditionalStack.isReplaying()) { 668 assert(CurPPLexer && 669 "CurPPLexer is null when calling replayPreambleConditionalStack."); 670 CurPPLexer->setConditionalLevels(PreambleConditionalStack.getStack()); 671 PreambleConditionalStack.doneReplaying(); 672 if (PreambleConditionalStack.reachedEOFWhileSkipping()) 673 SkipExcludedConditionalBlock( 674 PreambleConditionalStack.SkipInfo->HashTokenLoc, 675 PreambleConditionalStack.SkipInfo->IfTokenLoc, 676 PreambleConditionalStack.SkipInfo->FoundNonSkipPortion, 677 PreambleConditionalStack.SkipInfo->FoundElse, 678 PreambleConditionalStack.SkipInfo->ElseLoc); 679 } 680 } 681 682 void Preprocessor::EndSourceFile() { 683 // Notify the client that we reached the end of the source file. 684 if (Callbacks) 685 Callbacks->EndOfMainFile(); 686 } 687 688 //===----------------------------------------------------------------------===// 689 // Lexer Event Handling. 690 //===----------------------------------------------------------------------===// 691 692 /// LookUpIdentifierInfo - Given a tok::raw_identifier token, look up the 693 /// identifier information for the token and install it into the token, 694 /// updating the token kind accordingly. 695 IdentifierInfo *Preprocessor::LookUpIdentifierInfo(Token &Identifier) const { 696 assert(!Identifier.getRawIdentifier().empty() && "No raw identifier data!"); 697 698 // Look up this token, see if it is a macro, or if it is a language keyword. 699 IdentifierInfo *II; 700 if (!Identifier.needsCleaning() && !Identifier.hasUCN()) { 701 // No cleaning needed, just use the characters from the lexed buffer. 702 II = getIdentifierInfo(Identifier.getRawIdentifier()); 703 } else { 704 // Cleaning needed, alloca a buffer, clean into it, then use the buffer. 705 SmallString<64> IdentifierBuffer; 706 StringRef CleanedStr = getSpelling(Identifier, IdentifierBuffer); 707 708 if (Identifier.hasUCN()) { 709 SmallString<64> UCNIdentifierBuffer; 710 expandUCNs(UCNIdentifierBuffer, CleanedStr); 711 II = getIdentifierInfo(UCNIdentifierBuffer); 712 } else { 713 II = getIdentifierInfo(CleanedStr); 714 } 715 } 716 717 // Update the token info (identifier info and appropriate token kind). 718 // FIXME: the raw_identifier may contain leading whitespace which is removed 719 // from the cleaned identifier token. The SourceLocation should be updated to 720 // refer to the non-whitespace character. For instance, the text "\\\nB" (a 721 // line continuation before 'B') is parsed as a single tok::raw_identifier and 722 // is cleaned to tok::identifier "B". After cleaning the token's length is 723 // still 3 and the SourceLocation refers to the location of the backslash. 724 Identifier.setIdentifierInfo(II); 725 Identifier.setKind(II->getTokenID()); 726 727 return II; 728 } 729 730 void Preprocessor::SetPoisonReason(IdentifierInfo *II, unsigned DiagID) { 731 PoisonReasons[II] = DiagID; 732 } 733 734 void Preprocessor::PoisonSEHIdentifiers(bool Poison) { 735 assert(Ident__exception_code && Ident__exception_info); 736 assert(Ident___exception_code && Ident___exception_info); 737 Ident__exception_code->setIsPoisoned(Poison); 738 Ident___exception_code->setIsPoisoned(Poison); 739 Ident_GetExceptionCode->setIsPoisoned(Poison); 740 Ident__exception_info->setIsPoisoned(Poison); 741 Ident___exception_info->setIsPoisoned(Poison); 742 Ident_GetExceptionInfo->setIsPoisoned(Poison); 743 Ident__abnormal_termination->setIsPoisoned(Poison); 744 Ident___abnormal_termination->setIsPoisoned(Poison); 745 Ident_AbnormalTermination->setIsPoisoned(Poison); 746 } 747 748 void Preprocessor::HandlePoisonedIdentifier(Token & Identifier) { 749 assert(Identifier.getIdentifierInfo() && 750 "Can't handle identifiers without identifier info!"); 751 llvm::DenseMap<IdentifierInfo*,unsigned>::const_iterator it = 752 PoisonReasons.find(Identifier.getIdentifierInfo()); 753 if(it == PoisonReasons.end()) 754 Diag(Identifier, diag::err_pp_used_poisoned_id); 755 else 756 Diag(Identifier,it->second) << Identifier.getIdentifierInfo(); 757 } 758 759 /// Returns a diagnostic message kind for reporting a future keyword as 760 /// appropriate for the identifier and specified language. 761 static diag::kind getFutureCompatDiagKind(const IdentifierInfo &II, 762 const LangOptions &LangOpts) { 763 assert(II.isFutureCompatKeyword() && "diagnostic should not be needed"); 764 765 if (LangOpts.CPlusPlus) 766 return llvm::StringSwitch<diag::kind>(II.getName()) 767 #define CXX11_KEYWORD(NAME, FLAGS) \ 768 .Case(#NAME, diag::warn_cxx11_keyword) 769 #define CXX20_KEYWORD(NAME, FLAGS) \ 770 .Case(#NAME, diag::warn_cxx20_keyword) 771 #include "clang/Basic/TokenKinds.def" 772 // char8_t is not modeled as a CXX20_KEYWORD because it's not 773 // unconditionally enabled in C++20 mode. (It can be disabled 774 // by -fno-char8_t.) 775 .Case("char8_t", diag::warn_cxx20_keyword) 776 ; 777 778 llvm_unreachable( 779 "Keyword not known to come from a newer Standard or proposed Standard"); 780 } 781 782 void Preprocessor::updateOutOfDateIdentifier(IdentifierInfo &II) const { 783 assert(II.isOutOfDate() && "not out of date"); 784 getExternalSource()->updateOutOfDateIdentifier(II); 785 } 786 787 /// HandleIdentifier - This callback is invoked when the lexer reads an 788 /// identifier. This callback looks up the identifier in the map and/or 789 /// potentially macro expands it or turns it into a named token (like 'for'). 790 /// 791 /// Note that callers of this method are guarded by checking the 792 /// IdentifierInfo's 'isHandleIdentifierCase' bit. If this method changes, the 793 /// IdentifierInfo methods that compute these properties will need to change to 794 /// match. 795 bool Preprocessor::HandleIdentifier(Token &Identifier) { 796 assert(Identifier.getIdentifierInfo() && 797 "Can't handle identifiers without identifier info!"); 798 799 IdentifierInfo &II = *Identifier.getIdentifierInfo(); 800 801 // If the information about this identifier is out of date, update it from 802 // the external source. 803 // We have to treat __VA_ARGS__ in a special way, since it gets 804 // serialized with isPoisoned = true, but our preprocessor may have 805 // unpoisoned it if we're defining a C99 macro. 806 if (II.isOutOfDate()) { 807 bool CurrentIsPoisoned = false; 808 const bool IsSpecialVariadicMacro = 809 &II == Ident__VA_ARGS__ || &II == Ident__VA_OPT__; 810 if (IsSpecialVariadicMacro) 811 CurrentIsPoisoned = II.isPoisoned(); 812 813 updateOutOfDateIdentifier(II); 814 Identifier.setKind(II.getTokenID()); 815 816 if (IsSpecialVariadicMacro) 817 II.setIsPoisoned(CurrentIsPoisoned); 818 } 819 820 // If this identifier was poisoned, and if it was not produced from a macro 821 // expansion, emit an error. 822 if (II.isPoisoned() && CurPPLexer) { 823 HandlePoisonedIdentifier(Identifier); 824 } 825 826 // If this is a macro to be expanded, do it. 827 if (MacroDefinition MD = getMacroDefinition(&II)) { 828 auto *MI = MD.getMacroInfo(); 829 assert(MI && "macro definition with no macro info?"); 830 if (!DisableMacroExpansion) { 831 if (!Identifier.isExpandDisabled() && MI->isEnabled()) { 832 // C99 6.10.3p10: If the preprocessing token immediately after the 833 // macro name isn't a '(', this macro should not be expanded. 834 if (!MI->isFunctionLike() || isNextPPTokenLParen()) 835 return HandleMacroExpandedIdentifier(Identifier, MD); 836 } else { 837 // C99 6.10.3.4p2 says that a disabled macro may never again be 838 // expanded, even if it's in a context where it could be expanded in the 839 // future. 840 Identifier.setFlag(Token::DisableExpand); 841 if (MI->isObjectLike() || isNextPPTokenLParen()) 842 Diag(Identifier, diag::pp_disabled_macro_expansion); 843 } 844 } 845 } 846 847 // If this identifier is a keyword in a newer Standard or proposed Standard, 848 // produce a warning. Don't warn if we're not considering macro expansion, 849 // since this identifier might be the name of a macro. 850 // FIXME: This warning is disabled in cases where it shouldn't be, like 851 // "#define constexpr constexpr", "int constexpr;" 852 if (II.isFutureCompatKeyword() && !DisableMacroExpansion) { 853 Diag(Identifier, getFutureCompatDiagKind(II, getLangOpts())) 854 << II.getName(); 855 // Don't diagnose this keyword again in this translation unit. 856 II.setIsFutureCompatKeyword(false); 857 } 858 859 // If this is an extension token, diagnose its use. 860 // We avoid diagnosing tokens that originate from macro definitions. 861 // FIXME: This warning is disabled in cases where it shouldn't be, 862 // like "#define TY typeof", "TY(1) x". 863 if (II.isExtensionToken() && !DisableMacroExpansion) 864 Diag(Identifier, diag::ext_token_used); 865 866 // If this is the 'import' contextual keyword following an '@', note 867 // that the next token indicates a module name. 868 // 869 // Note that we do not treat 'import' as a contextual 870 // keyword when we're in a caching lexer, because caching lexers only get 871 // used in contexts where import declarations are disallowed. 872 // 873 // Likewise if this is the C++ Modules TS import keyword. 874 if (((LastTokenWasAt && II.isModulesImport()) || 875 Identifier.is(tok::kw_import)) && 876 !InMacroArgs && !DisableMacroExpansion && 877 (getLangOpts().Modules || getLangOpts().DebuggerSupport) && 878 CurLexerKind != CLK_CachingLexer) { 879 ModuleImportLoc = Identifier.getLocation(); 880 ModuleImportPath.clear(); 881 ModuleImportExpectsIdentifier = true; 882 CurLexerKind = CLK_LexAfterModuleImport; 883 } 884 return true; 885 } 886 887 void Preprocessor::Lex(Token &Result) { 888 ++LexLevel; 889 890 // We loop here until a lex function returns a token; this avoids recursion. 891 bool ReturnedToken; 892 do { 893 switch (CurLexerKind) { 894 case CLK_Lexer: 895 ReturnedToken = CurLexer->Lex(Result); 896 break; 897 case CLK_TokenLexer: 898 ReturnedToken = CurTokenLexer->Lex(Result); 899 break; 900 case CLK_CachingLexer: 901 CachingLex(Result); 902 ReturnedToken = true; 903 break; 904 case CLK_LexAfterModuleImport: 905 ReturnedToken = LexAfterModuleImport(Result); 906 break; 907 } 908 } while (!ReturnedToken); 909 910 if (Result.is(tok::unknown) && TheModuleLoader.HadFatalFailure) 911 return; 912 913 if (Result.is(tok::code_completion) && Result.getIdentifierInfo()) { 914 // Remember the identifier before code completion token. 915 setCodeCompletionIdentifierInfo(Result.getIdentifierInfo()); 916 setCodeCompletionTokenRange(Result.getLocation(), Result.getEndLoc()); 917 // Set IdenfitierInfo to null to avoid confusing code that handles both 918 // identifiers and completion tokens. 919 Result.setIdentifierInfo(nullptr); 920 } 921 922 // Update ImportSeqState to track our position within a C++20 import-seq 923 // if this token is being produced as a result of phase 4 of translation. 924 if (getLangOpts().CPlusPlusModules && LexLevel == 1 && 925 !Result.getFlag(Token::IsReinjected)) { 926 switch (Result.getKind()) { 927 case tok::l_paren: case tok::l_square: case tok::l_brace: 928 ImportSeqState.handleOpenBracket(); 929 break; 930 case tok::r_paren: case tok::r_square: 931 ImportSeqState.handleCloseBracket(); 932 break; 933 case tok::r_brace: 934 ImportSeqState.handleCloseBrace(); 935 break; 936 case tok::semi: 937 ImportSeqState.handleSemi(); 938 break; 939 case tok::header_name: 940 case tok::annot_header_unit: 941 ImportSeqState.handleHeaderName(); 942 break; 943 case tok::kw_export: 944 ImportSeqState.handleExport(); 945 break; 946 case tok::identifier: 947 if (Result.getIdentifierInfo()->isModulesImport()) { 948 ImportSeqState.handleImport(); 949 if (ImportSeqState.afterImportSeq()) { 950 ModuleImportLoc = Result.getLocation(); 951 ModuleImportPath.clear(); 952 ModuleImportExpectsIdentifier = true; 953 CurLexerKind = CLK_LexAfterModuleImport; 954 } 955 break; 956 } 957 LLVM_FALLTHROUGH; 958 default: 959 ImportSeqState.handleMisc(); 960 break; 961 } 962 } 963 964 LastTokenWasAt = Result.is(tok::at); 965 --LexLevel; 966 967 if ((LexLevel == 0 || PreprocessToken) && 968 !Result.getFlag(Token::IsReinjected)) { 969 if (LexLevel == 0) 970 ++TokenCount; 971 if (OnToken) 972 OnToken(Result); 973 } 974 } 975 976 /// Lex a header-name token (including one formed from header-name-tokens if 977 /// \p AllowConcatenation is \c true). 978 /// 979 /// \param FilenameTok Filled in with the next token. On success, this will 980 /// be either a header_name token. On failure, it will be whatever other 981 /// token was found instead. 982 /// \param AllowMacroExpansion If \c true, allow the header name to be formed 983 /// by macro expansion (concatenating tokens as necessary if the first 984 /// token is a '<'). 985 /// \return \c true if we reached EOD or EOF while looking for a > token in 986 /// a concatenated header name and diagnosed it. \c false otherwise. 987 bool Preprocessor::LexHeaderName(Token &FilenameTok, bool AllowMacroExpansion) { 988 // Lex using header-name tokenization rules if tokens are being lexed from 989 // a file. Just grab a token normally if we're in a macro expansion. 990 if (CurPPLexer) 991 CurPPLexer->LexIncludeFilename(FilenameTok); 992 else 993 Lex(FilenameTok); 994 995 // This could be a <foo/bar.h> file coming from a macro expansion. In this 996 // case, glue the tokens together into an angle_string_literal token. 997 SmallString<128> FilenameBuffer; 998 if (FilenameTok.is(tok::less) && AllowMacroExpansion) { 999 bool StartOfLine = FilenameTok.isAtStartOfLine(); 1000 bool LeadingSpace = FilenameTok.hasLeadingSpace(); 1001 bool LeadingEmptyMacro = FilenameTok.hasLeadingEmptyMacro(); 1002 1003 SourceLocation Start = FilenameTok.getLocation(); 1004 SourceLocation End; 1005 FilenameBuffer.push_back('<'); 1006 1007 // Consume tokens until we find a '>'. 1008 // FIXME: A header-name could be formed starting or ending with an 1009 // alternative token. It's not clear whether that's ill-formed in all 1010 // cases. 1011 while (FilenameTok.isNot(tok::greater)) { 1012 Lex(FilenameTok); 1013 if (FilenameTok.isOneOf(tok::eod, tok::eof)) { 1014 Diag(FilenameTok.getLocation(), diag::err_expected) << tok::greater; 1015 Diag(Start, diag::note_matching) << tok::less; 1016 return true; 1017 } 1018 1019 End = FilenameTok.getLocation(); 1020 1021 // FIXME: Provide code completion for #includes. 1022 if (FilenameTok.is(tok::code_completion)) { 1023 setCodeCompletionReached(); 1024 Lex(FilenameTok); 1025 continue; 1026 } 1027 1028 // Append the spelling of this token to the buffer. If there was a space 1029 // before it, add it now. 1030 if (FilenameTok.hasLeadingSpace()) 1031 FilenameBuffer.push_back(' '); 1032 1033 // Get the spelling of the token, directly into FilenameBuffer if 1034 // possible. 1035 size_t PreAppendSize = FilenameBuffer.size(); 1036 FilenameBuffer.resize(PreAppendSize + FilenameTok.getLength()); 1037 1038 const char *BufPtr = &FilenameBuffer[PreAppendSize]; 1039 unsigned ActualLen = getSpelling(FilenameTok, BufPtr); 1040 1041 // If the token was spelled somewhere else, copy it into FilenameBuffer. 1042 if (BufPtr != &FilenameBuffer[PreAppendSize]) 1043 memcpy(&FilenameBuffer[PreAppendSize], BufPtr, ActualLen); 1044 1045 // Resize FilenameBuffer to the correct size. 1046 if (FilenameTok.getLength() != ActualLen) 1047 FilenameBuffer.resize(PreAppendSize + ActualLen); 1048 } 1049 1050 FilenameTok.startToken(); 1051 FilenameTok.setKind(tok::header_name); 1052 FilenameTok.setFlagValue(Token::StartOfLine, StartOfLine); 1053 FilenameTok.setFlagValue(Token::LeadingSpace, LeadingSpace); 1054 FilenameTok.setFlagValue(Token::LeadingEmptyMacro, LeadingEmptyMacro); 1055 CreateString(FilenameBuffer, FilenameTok, Start, End); 1056 } else if (FilenameTok.is(tok::string_literal) && AllowMacroExpansion) { 1057 // Convert a string-literal token of the form " h-char-sequence " 1058 // (produced by macro expansion) into a header-name token. 1059 // 1060 // The rules for header-names don't quite match the rules for 1061 // string-literals, but all the places where they differ result in 1062 // undefined behavior, so we can and do treat them the same. 1063 // 1064 // A string-literal with a prefix or suffix is not translated into a 1065 // header-name. This could theoretically be observable via the C++20 1066 // context-sensitive header-name formation rules. 1067 StringRef Str = getSpelling(FilenameTok, FilenameBuffer); 1068 if (Str.size() >= 2 && Str.front() == '"' && Str.back() == '"') 1069 FilenameTok.setKind(tok::header_name); 1070 } 1071 1072 return false; 1073 } 1074 1075 /// Collect the tokens of a C++20 pp-import-suffix. 1076 void Preprocessor::CollectPpImportSuffix(SmallVectorImpl<Token> &Toks) { 1077 // FIXME: For error recovery, consider recognizing attribute syntax here 1078 // and terminating / diagnosing a missing semicolon if we find anything 1079 // else? (Can we leave that to the parser?) 1080 unsigned BracketDepth = 0; 1081 while (true) { 1082 Toks.emplace_back(); 1083 Lex(Toks.back()); 1084 1085 switch (Toks.back().getKind()) { 1086 case tok::l_paren: case tok::l_square: case tok::l_brace: 1087 ++BracketDepth; 1088 break; 1089 1090 case tok::r_paren: case tok::r_square: case tok::r_brace: 1091 if (BracketDepth == 0) 1092 return; 1093 --BracketDepth; 1094 break; 1095 1096 case tok::semi: 1097 if (BracketDepth == 0) 1098 return; 1099 break; 1100 1101 case tok::eof: 1102 return; 1103 1104 default: 1105 break; 1106 } 1107 } 1108 } 1109 1110 1111 /// Lex a token following the 'import' contextual keyword. 1112 /// 1113 /// pp-import: [C++20] 1114 /// import header-name pp-import-suffix[opt] ; 1115 /// import header-name-tokens pp-import-suffix[opt] ; 1116 /// [ObjC] @ import module-name ; 1117 /// [Clang] import module-name ; 1118 /// 1119 /// header-name-tokens: 1120 /// string-literal 1121 /// < [any sequence of preprocessing-tokens other than >] > 1122 /// 1123 /// module-name: 1124 /// module-name-qualifier[opt] identifier 1125 /// 1126 /// module-name-qualifier 1127 /// module-name-qualifier[opt] identifier . 1128 /// 1129 /// We respond to a pp-import by importing macros from the named module. 1130 bool Preprocessor::LexAfterModuleImport(Token &Result) { 1131 // Figure out what kind of lexer we actually have. 1132 recomputeCurLexerKind(); 1133 1134 // Lex the next token. The header-name lexing rules are used at the start of 1135 // a pp-import. 1136 // 1137 // For now, we only support header-name imports in C++20 mode. 1138 // FIXME: Should we allow this in all language modes that support an import 1139 // declaration as an extension? 1140 if (ModuleImportPath.empty() && getLangOpts().CPlusPlusModules) { 1141 if (LexHeaderName(Result)) 1142 return true; 1143 } else { 1144 Lex(Result); 1145 } 1146 1147 // Allocate a holding buffer for a sequence of tokens and introduce it into 1148 // the token stream. 1149 auto EnterTokens = [this](ArrayRef<Token> Toks) { 1150 auto ToksCopy = std::make_unique<Token[]>(Toks.size()); 1151 std::copy(Toks.begin(), Toks.end(), ToksCopy.get()); 1152 EnterTokenStream(std::move(ToksCopy), Toks.size(), 1153 /*DisableMacroExpansion*/ true, /*IsReinject*/ false); 1154 }; 1155 1156 // Check for a header-name. 1157 SmallVector<Token, 32> Suffix; 1158 if (Result.is(tok::header_name)) { 1159 // Enter the header-name token into the token stream; a Lex action cannot 1160 // both return a token and cache tokens (doing so would corrupt the token 1161 // cache if the call to Lex comes from CachingLex / PeekAhead). 1162 Suffix.push_back(Result); 1163 1164 // Consume the pp-import-suffix and expand any macros in it now. We'll add 1165 // it back into the token stream later. 1166 CollectPpImportSuffix(Suffix); 1167 if (Suffix.back().isNot(tok::semi)) { 1168 // This is not a pp-import after all. 1169 EnterTokens(Suffix); 1170 return false; 1171 } 1172 1173 // C++2a [cpp.module]p1: 1174 // The ';' preprocessing-token terminating a pp-import shall not have 1175 // been produced by macro replacement. 1176 SourceLocation SemiLoc = Suffix.back().getLocation(); 1177 if (SemiLoc.isMacroID()) 1178 Diag(SemiLoc, diag::err_header_import_semi_in_macro); 1179 1180 // Reconstitute the import token. 1181 Token ImportTok; 1182 ImportTok.startToken(); 1183 ImportTok.setKind(tok::kw_import); 1184 ImportTok.setLocation(ModuleImportLoc); 1185 ImportTok.setIdentifierInfo(getIdentifierInfo("import")); 1186 ImportTok.setLength(6); 1187 1188 auto Action = HandleHeaderIncludeOrImport( 1189 /*HashLoc*/ SourceLocation(), ImportTok, Suffix.front(), SemiLoc); 1190 switch (Action.Kind) { 1191 case ImportAction::None: 1192 break; 1193 1194 case ImportAction::ModuleBegin: 1195 // Let the parser know we're textually entering the module. 1196 Suffix.emplace_back(); 1197 Suffix.back().startToken(); 1198 Suffix.back().setKind(tok::annot_module_begin); 1199 Suffix.back().setLocation(SemiLoc); 1200 Suffix.back().setAnnotationEndLoc(SemiLoc); 1201 Suffix.back().setAnnotationValue(Action.ModuleForHeader); 1202 LLVM_FALLTHROUGH; 1203 1204 case ImportAction::ModuleImport: 1205 case ImportAction::SkippedModuleImport: 1206 // We chose to import (or textually enter) the file. Convert the 1207 // header-name token into a header unit annotation token. 1208 Suffix[0].setKind(tok::annot_header_unit); 1209 Suffix[0].setAnnotationEndLoc(Suffix[0].getLocation()); 1210 Suffix[0].setAnnotationValue(Action.ModuleForHeader); 1211 // FIXME: Call the moduleImport callback? 1212 break; 1213 case ImportAction::Failure: 1214 assert(TheModuleLoader.HadFatalFailure && 1215 "This should be an early exit only to a fatal error"); 1216 Result.setKind(tok::eof); 1217 CurLexer->cutOffLexing(); 1218 EnterTokens(Suffix); 1219 return true; 1220 } 1221 1222 EnterTokens(Suffix); 1223 return false; 1224 } 1225 1226 // The token sequence 1227 // 1228 // import identifier (. identifier)* 1229 // 1230 // indicates a module import directive. We already saw the 'import' 1231 // contextual keyword, so now we're looking for the identifiers. 1232 if (ModuleImportExpectsIdentifier && Result.getKind() == tok::identifier) { 1233 // We expected to see an identifier here, and we did; continue handling 1234 // identifiers. 1235 ModuleImportPath.push_back(std::make_pair(Result.getIdentifierInfo(), 1236 Result.getLocation())); 1237 ModuleImportExpectsIdentifier = false; 1238 CurLexerKind = CLK_LexAfterModuleImport; 1239 return true; 1240 } 1241 1242 // If we're expecting a '.' or a ';', and we got a '.', then wait until we 1243 // see the next identifier. (We can also see a '[[' that begins an 1244 // attribute-specifier-seq here under the C++ Modules TS.) 1245 if (!ModuleImportExpectsIdentifier && Result.getKind() == tok::period) { 1246 ModuleImportExpectsIdentifier = true; 1247 CurLexerKind = CLK_LexAfterModuleImport; 1248 return true; 1249 } 1250 1251 // If we didn't recognize a module name at all, this is not a (valid) import. 1252 if (ModuleImportPath.empty() || Result.is(tok::eof)) 1253 return true; 1254 1255 // Consume the pp-import-suffix and expand any macros in it now, if we're not 1256 // at the semicolon already. 1257 SourceLocation SemiLoc = Result.getLocation(); 1258 if (Result.isNot(tok::semi)) { 1259 Suffix.push_back(Result); 1260 CollectPpImportSuffix(Suffix); 1261 if (Suffix.back().isNot(tok::semi)) { 1262 // This is not an import after all. 1263 EnterTokens(Suffix); 1264 return false; 1265 } 1266 SemiLoc = Suffix.back().getLocation(); 1267 } 1268 1269 // Under the Modules TS, the dot is just part of the module name, and not 1270 // a real hierarchy separator. Flatten such module names now. 1271 // 1272 // FIXME: Is this the right level to be performing this transformation? 1273 std::string FlatModuleName; 1274 if (getLangOpts().ModulesTS || getLangOpts().CPlusPlusModules) { 1275 for (auto &Piece : ModuleImportPath) { 1276 if (!FlatModuleName.empty()) 1277 FlatModuleName += "."; 1278 FlatModuleName += Piece.first->getName(); 1279 } 1280 SourceLocation FirstPathLoc = ModuleImportPath[0].second; 1281 ModuleImportPath.clear(); 1282 ModuleImportPath.push_back( 1283 std::make_pair(getIdentifierInfo(FlatModuleName), FirstPathLoc)); 1284 } 1285 1286 Module *Imported = nullptr; 1287 if (getLangOpts().Modules) { 1288 Imported = TheModuleLoader.loadModule(ModuleImportLoc, 1289 ModuleImportPath, 1290 Module::Hidden, 1291 /*IsInclusionDirective=*/false); 1292 if (Imported) 1293 makeModuleVisible(Imported, SemiLoc); 1294 } 1295 if (Callbacks) 1296 Callbacks->moduleImport(ModuleImportLoc, ModuleImportPath, Imported); 1297 1298 if (!Suffix.empty()) { 1299 EnterTokens(Suffix); 1300 return false; 1301 } 1302 return true; 1303 } 1304 1305 void Preprocessor::makeModuleVisible(Module *M, SourceLocation Loc) { 1306 CurSubmoduleState->VisibleModules.setVisible( 1307 M, Loc, [](Module *) {}, 1308 [&](ArrayRef<Module *> Path, Module *Conflict, StringRef Message) { 1309 // FIXME: Include the path in the diagnostic. 1310 // FIXME: Include the import location for the conflicting module. 1311 Diag(ModuleImportLoc, diag::warn_module_conflict) 1312 << Path[0]->getFullModuleName() 1313 << Conflict->getFullModuleName() 1314 << Message; 1315 }); 1316 1317 // Add this module to the imports list of the currently-built submodule. 1318 if (!BuildingSubmoduleStack.empty() && M != BuildingSubmoduleStack.back().M) 1319 BuildingSubmoduleStack.back().M->Imports.insert(M); 1320 } 1321 1322 bool Preprocessor::FinishLexStringLiteral(Token &Result, std::string &String, 1323 const char *DiagnosticTag, 1324 bool AllowMacroExpansion) { 1325 // We need at least one string literal. 1326 if (Result.isNot(tok::string_literal)) { 1327 Diag(Result, diag::err_expected_string_literal) 1328 << /*Source='in...'*/0 << DiagnosticTag; 1329 return false; 1330 } 1331 1332 // Lex string literal tokens, optionally with macro expansion. 1333 SmallVector<Token, 4> StrToks; 1334 do { 1335 StrToks.push_back(Result); 1336 1337 if (Result.hasUDSuffix()) 1338 Diag(Result, diag::err_invalid_string_udl); 1339 1340 if (AllowMacroExpansion) 1341 Lex(Result); 1342 else 1343 LexUnexpandedToken(Result); 1344 } while (Result.is(tok::string_literal)); 1345 1346 // Concatenate and parse the strings. 1347 StringLiteralParser Literal(StrToks, *this); 1348 assert(Literal.isAscii() && "Didn't allow wide strings in"); 1349 1350 if (Literal.hadError) 1351 return false; 1352 1353 if (Literal.Pascal) { 1354 Diag(StrToks[0].getLocation(), diag::err_expected_string_literal) 1355 << /*Source='in...'*/0 << DiagnosticTag; 1356 return false; 1357 } 1358 1359 String = std::string(Literal.GetString()); 1360 return true; 1361 } 1362 1363 bool Preprocessor::parseSimpleIntegerLiteral(Token &Tok, uint64_t &Value) { 1364 assert(Tok.is(tok::numeric_constant)); 1365 SmallString<8> IntegerBuffer; 1366 bool NumberInvalid = false; 1367 StringRef Spelling = getSpelling(Tok, IntegerBuffer, &NumberInvalid); 1368 if (NumberInvalid) 1369 return false; 1370 NumericLiteralParser Literal(Spelling, Tok.getLocation(), getSourceManager(), 1371 getLangOpts(), getTargetInfo(), 1372 getDiagnostics()); 1373 if (Literal.hadError || !Literal.isIntegerLiteral() || Literal.hasUDSuffix()) 1374 return false; 1375 llvm::APInt APVal(64, 0); 1376 if (Literal.GetIntegerValue(APVal)) 1377 return false; 1378 Lex(Tok); 1379 Value = APVal.getLimitedValue(); 1380 return true; 1381 } 1382 1383 void Preprocessor::addCommentHandler(CommentHandler *Handler) { 1384 assert(Handler && "NULL comment handler"); 1385 assert(!llvm::is_contained(CommentHandlers, Handler) && 1386 "Comment handler already registered"); 1387 CommentHandlers.push_back(Handler); 1388 } 1389 1390 void Preprocessor::removeCommentHandler(CommentHandler *Handler) { 1391 std::vector<CommentHandler *>::iterator Pos = 1392 llvm::find(CommentHandlers, Handler); 1393 assert(Pos != CommentHandlers.end() && "Comment handler not registered"); 1394 CommentHandlers.erase(Pos); 1395 } 1396 1397 bool Preprocessor::HandleComment(Token &result, SourceRange Comment) { 1398 bool AnyPendingTokens = false; 1399 for (std::vector<CommentHandler *>::iterator H = CommentHandlers.begin(), 1400 HEnd = CommentHandlers.end(); 1401 H != HEnd; ++H) { 1402 if ((*H)->HandleComment(*this, Comment)) 1403 AnyPendingTokens = true; 1404 } 1405 if (!AnyPendingTokens || getCommentRetentionState()) 1406 return false; 1407 Lex(result); 1408 return true; 1409 } 1410 1411 void Preprocessor::emitMacroDeprecationWarning(const Token &Identifier) const { 1412 const MacroAnnotations &A = 1413 getMacroAnnotations(Identifier.getIdentifierInfo()); 1414 assert(A.DeprecationInfo && 1415 "Macro deprecation warning without recorded annotation!"); 1416 const MacroAnnotationInfo &Info = *A.DeprecationInfo; 1417 if (Info.Message.empty()) 1418 Diag(Identifier, diag::warn_pragma_deprecated_macro_use) 1419 << Identifier.getIdentifierInfo() << 0; 1420 else 1421 Diag(Identifier, diag::warn_pragma_deprecated_macro_use) 1422 << Identifier.getIdentifierInfo() << 1 << Info.Message; 1423 Diag(Info.Location, diag::note_pp_macro_annotation) << 0; 1424 } 1425 1426 void Preprocessor::emitRestrictExpansionWarning(const Token &Identifier) const { 1427 const MacroAnnotations &A = 1428 getMacroAnnotations(Identifier.getIdentifierInfo()); 1429 assert(A.RestrictExpansionInfo && 1430 "Macro restricted expansion warning without recorded annotation!"); 1431 const MacroAnnotationInfo &Info = *A.RestrictExpansionInfo; 1432 if (Info.Message.empty()) 1433 Diag(Identifier, diag::warn_pragma_restrict_expansion_macro_use) 1434 << Identifier.getIdentifierInfo() << 0; 1435 else 1436 Diag(Identifier, diag::warn_pragma_restrict_expansion_macro_use) 1437 << Identifier.getIdentifierInfo() << 1 << Info.Message; 1438 Diag(Info.Location, diag::note_pp_macro_annotation) << 1; 1439 } 1440 1441 void Preprocessor::emitFinalMacroWarning(const Token &Identifier, 1442 bool IsUndef) const { 1443 const MacroAnnotations &A = 1444 getMacroAnnotations(Identifier.getIdentifierInfo()); 1445 assert(A.FinalAnnotationLoc && 1446 "Final macro warning without recorded annotation!"); 1447 1448 Diag(Identifier, diag::warn_pragma_final_macro) 1449 << Identifier.getIdentifierInfo() << (IsUndef ? 0 : 1); 1450 Diag(*A.FinalAnnotationLoc, diag::note_pp_macro_annotation) << 2; 1451 } 1452 1453 ModuleLoader::~ModuleLoader() = default; 1454 1455 CommentHandler::~CommentHandler() = default; 1456 1457 EmptylineHandler::~EmptylineHandler() = default; 1458 1459 CodeCompletionHandler::~CodeCompletionHandler() = default; 1460 1461 void Preprocessor::createPreprocessingRecord() { 1462 if (Record) 1463 return; 1464 1465 Record = new PreprocessingRecord(getSourceManager()); 1466 addPPCallbacks(std::unique_ptr<PPCallbacks>(Record)); 1467 } 1468