1 //===--- Lexer.cpp - C Language Family Lexer ------------------------------===// 2 // 3 // The LLVM Compiler Infrastructure 4 // 5 // This file is distributed under the University of Illinois Open Source 6 // License. See LICENSE.TXT for details. 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file implements the Lexer and Token interfaces. 11 // 12 //===----------------------------------------------------------------------===// 13 // 14 // TODO: GCC Diagnostics emitted by the lexer: 15 // PEDWARN: (form feed|vertical tab) in preprocessing directive 16 // 17 // Universal characters, unicode, char mapping: 18 // WARNING: `%.*s' is not in NFKC 19 // WARNING: `%.*s' is not in NFC 20 // 21 // Other: 22 // TODO: Options to support: 23 // -fexec-charset,-fwide-exec-charset 24 // 25 //===----------------------------------------------------------------------===// 26 27 #include "clang/Lex/Lexer.h" 28 #include "clang/Lex/Preprocessor.h" 29 #include "clang/Lex/LexDiagnostic.h" 30 #include "clang/Basic/SourceManager.h" 31 #include "llvm/Support/Compiler.h" 32 #include "llvm/Support/MemoryBuffer.h" 33 #include <cctype> 34 using namespace clang; 35 36 static void InitCharacterInfo(); 37 38 //===----------------------------------------------------------------------===// 39 // Token Class Implementation 40 //===----------------------------------------------------------------------===// 41 42 /// isObjCAtKeyword - Return true if we have an ObjC keyword identifier. 43 bool Token::isObjCAtKeyword(tok::ObjCKeywordKind objcKey) const { 44 if (IdentifierInfo *II = getIdentifierInfo()) 45 return II->getObjCKeywordID() == objcKey; 46 return false; 47 } 48 49 /// getObjCKeywordID - Return the ObjC keyword kind. 50 tok::ObjCKeywordKind Token::getObjCKeywordID() const { 51 IdentifierInfo *specId = getIdentifierInfo(); 52 return specId ? specId->getObjCKeywordID() : tok::objc_not_keyword; 53 } 54 55 56 //===----------------------------------------------------------------------===// 57 // Lexer Class Implementation 58 //===----------------------------------------------------------------------===// 59 60 void Lexer::InitLexer(const char *BufStart, const char *BufPtr, 61 const char *BufEnd) { 62 InitCharacterInfo(); 63 64 BufferStart = BufStart; 65 BufferPtr = BufPtr; 66 BufferEnd = BufEnd; 67 68 assert(BufEnd[0] == 0 && 69 "We assume that the input buffer has a null character at the end" 70 " to simplify lexing!"); 71 72 Is_PragmaLexer = false; 73 74 // Start of the file is a start of line. 75 IsAtStartOfLine = true; 76 77 // We are not after parsing a #. 78 ParsingPreprocessorDirective = false; 79 80 // We are not after parsing #include. 81 ParsingFilename = false; 82 83 // We are not in raw mode. Raw mode disables diagnostics and interpretation 84 // of tokens (e.g. identifiers, thus disabling macro expansion). It is used 85 // to quickly lex the tokens of the buffer, e.g. when handling a "#if 0" block 86 // or otherwise skipping over tokens. 87 LexingRawMode = false; 88 89 // Default to not keeping comments. 90 ExtendedTokenMode = 0; 91 } 92 93 /// Lexer constructor - Create a new lexer object for the specified buffer 94 /// with the specified preprocessor managing the lexing process. This lexer 95 /// assumes that the associated file buffer and Preprocessor objects will 96 /// outlive it, so it doesn't take ownership of either of them. 97 Lexer::Lexer(FileID FID, Preprocessor &PP) 98 : PreprocessorLexer(&PP, FID), 99 FileLoc(PP.getSourceManager().getLocForStartOfFile(FID)), 100 Features(PP.getLangOptions()) { 101 102 const llvm::MemoryBuffer *InputFile = PP.getSourceManager().getBuffer(FID); 103 104 InitLexer(InputFile->getBufferStart(), InputFile->getBufferStart(), 105 InputFile->getBufferEnd()); 106 107 // Default to keeping comments if the preprocessor wants them. 108 SetCommentRetentionState(PP.getCommentRetentionState()); 109 } 110 111 /// Lexer constructor - Create a new raw lexer object. This object is only 112 /// suitable for calls to 'LexRawToken'. This lexer assumes that the text 113 /// range will outlive it, so it doesn't take ownership of it. 114 Lexer::Lexer(SourceLocation fileloc, const LangOptions &features, 115 const char *BufStart, const char *BufPtr, const char *BufEnd) 116 : FileLoc(fileloc), Features(features) { 117 118 InitLexer(BufStart, BufPtr, BufEnd); 119 120 // We *are* in raw mode. 121 LexingRawMode = true; 122 } 123 124 /// Lexer constructor - Create a new raw lexer object. This object is only 125 /// suitable for calls to 'LexRawToken'. This lexer assumes that the text 126 /// range will outlive it, so it doesn't take ownership of it. 127 Lexer::Lexer(FileID FID, const SourceManager &SM, const LangOptions &features) 128 : FileLoc(SM.getLocForStartOfFile(FID)), Features(features) { 129 const llvm::MemoryBuffer *FromFile = SM.getBuffer(FID); 130 131 InitLexer(FromFile->getBufferStart(), FromFile->getBufferStart(), 132 FromFile->getBufferEnd()); 133 134 // We *are* in raw mode. 135 LexingRawMode = true; 136 } 137 138 /// Create_PragmaLexer: Lexer constructor - Create a new lexer object for 139 /// _Pragma expansion. This has a variety of magic semantics that this method 140 /// sets up. It returns a new'd Lexer that must be delete'd when done. 141 /// 142 /// On entrance to this routine, TokStartLoc is a macro location which has a 143 /// spelling loc that indicates the bytes to be lexed for the token and an 144 /// instantiation location that indicates where all lexed tokens should be 145 /// "expanded from". 146 /// 147 /// FIXME: It would really be nice to make _Pragma just be a wrapper around a 148 /// normal lexer that remaps tokens as they fly by. This would require making 149 /// Preprocessor::Lex virtual. Given that, we could just dump in a magic lexer 150 /// interface that could handle this stuff. This would pull GetMappedTokenLoc 151 /// out of the critical path of the lexer! 152 /// 153 Lexer *Lexer::Create_PragmaLexer(SourceLocation SpellingLoc, 154 SourceLocation InstantiationLocStart, 155 SourceLocation InstantiationLocEnd, 156 unsigned TokLen, Preprocessor &PP) { 157 SourceManager &SM = PP.getSourceManager(); 158 159 // Create the lexer as if we were going to lex the file normally. 160 FileID SpellingFID = SM.getFileID(SpellingLoc); 161 Lexer *L = new Lexer(SpellingFID, PP); 162 163 // Now that the lexer is created, change the start/end locations so that we 164 // just lex the subsection of the file that we want. This is lexing from a 165 // scratch buffer. 166 const char *StrData = SM.getCharacterData(SpellingLoc); 167 168 L->BufferPtr = StrData; 169 L->BufferEnd = StrData+TokLen; 170 assert(L->BufferEnd[0] == 0 && "Buffer is not nul terminated!"); 171 172 // Set the SourceLocation with the remapping information. This ensures that 173 // GetMappedTokenLoc will remap the tokens as they are lexed. 174 L->FileLoc = SM.createInstantiationLoc(SM.getLocForStartOfFile(SpellingFID), 175 InstantiationLocStart, 176 InstantiationLocEnd, TokLen); 177 178 // Ensure that the lexer thinks it is inside a directive, so that end \n will 179 // return an EOM token. 180 L->ParsingPreprocessorDirective = true; 181 182 // This lexer really is for _Pragma. 183 L->Is_PragmaLexer = true; 184 return L; 185 } 186 187 188 /// Stringify - Convert the specified string into a C string, with surrounding 189 /// ""'s, and with escaped \ and " characters. 190 std::string Lexer::Stringify(const std::string &Str, bool Charify) { 191 std::string Result = Str; 192 char Quote = Charify ? '\'' : '"'; 193 for (unsigned i = 0, e = Result.size(); i != e; ++i) { 194 if (Result[i] == '\\' || Result[i] == Quote) { 195 Result.insert(Result.begin()+i, '\\'); 196 ++i; ++e; 197 } 198 } 199 return Result; 200 } 201 202 /// Stringify - Convert the specified string into a C string by escaping '\' 203 /// and " characters. This does not add surrounding ""'s to the string. 204 void Lexer::Stringify(llvm::SmallVectorImpl<char> &Str) { 205 for (unsigned i = 0, e = Str.size(); i != e; ++i) { 206 if (Str[i] == '\\' || Str[i] == '"') { 207 Str.insert(Str.begin()+i, '\\'); 208 ++i; ++e; 209 } 210 } 211 } 212 213 214 /// MeasureTokenLength - Relex the token at the specified location and return 215 /// its length in bytes in the input file. If the token needs cleaning (e.g. 216 /// includes a trigraph or an escaped newline) then this count includes bytes 217 /// that are part of that. 218 unsigned Lexer::MeasureTokenLength(SourceLocation Loc, 219 const SourceManager &SM, 220 const LangOptions &LangOpts) { 221 // TODO: this could be special cased for common tokens like identifiers, ')', 222 // etc to make this faster, if it mattered. Just look at StrData[0] to handle 223 // all obviously single-char tokens. This could use 224 // Lexer::isObviouslySimpleCharacter for example to handle identifiers or 225 // something. 226 227 // If this comes from a macro expansion, we really do want the macro name, not 228 // the token this macro expanded to. 229 Loc = SM.getInstantiationLoc(Loc); 230 std::pair<FileID, unsigned> LocInfo = SM.getDecomposedLoc(Loc); 231 std::pair<const char *,const char *> Buffer = SM.getBufferData(LocInfo.first); 232 const char *StrData = Buffer.first+LocInfo.second; 233 234 // Create a lexer starting at the beginning of this token. 235 Lexer TheLexer(Loc, LangOpts, Buffer.first, StrData, Buffer.second); 236 Token TheTok; 237 TheLexer.LexFromRawLexer(TheTok); 238 return TheTok.getLength(); 239 } 240 241 //===----------------------------------------------------------------------===// 242 // Character information. 243 //===----------------------------------------------------------------------===// 244 245 static unsigned char CharInfo[256]; 246 247 enum { 248 CHAR_HORZ_WS = 0x01, // ' ', '\t', '\f', '\v'. Note, no '\0' 249 CHAR_VERT_WS = 0x02, // '\r', '\n' 250 CHAR_LETTER = 0x04, // a-z,A-Z 251 CHAR_NUMBER = 0x08, // 0-9 252 CHAR_UNDER = 0x10, // _ 253 CHAR_PERIOD = 0x20 // . 254 }; 255 256 static void InitCharacterInfo() { 257 static bool isInited = false; 258 if (isInited) return; 259 isInited = true; 260 261 // Intiialize the CharInfo table. 262 // TODO: statically initialize this. 263 CharInfo[(int)' '] = CharInfo[(int)'\t'] = 264 CharInfo[(int)'\f'] = CharInfo[(int)'\v'] = CHAR_HORZ_WS; 265 CharInfo[(int)'\n'] = CharInfo[(int)'\r'] = CHAR_VERT_WS; 266 267 CharInfo[(int)'_'] = CHAR_UNDER; 268 CharInfo[(int)'.'] = CHAR_PERIOD; 269 for (unsigned i = 'a'; i <= 'z'; ++i) 270 CharInfo[i] = CharInfo[i+'A'-'a'] = CHAR_LETTER; 271 for (unsigned i = '0'; i <= '9'; ++i) 272 CharInfo[i] = CHAR_NUMBER; 273 } 274 275 /// isIdentifierBody - Return true if this is the body character of an 276 /// identifier, which is [a-zA-Z0-9_]. 277 static inline bool isIdentifierBody(unsigned char c) { 278 return (CharInfo[c] & (CHAR_LETTER|CHAR_NUMBER|CHAR_UNDER)) ? true : false; 279 } 280 281 /// isHorizontalWhitespace - Return true if this character is horizontal 282 /// whitespace: ' ', '\t', '\f', '\v'. Note that this returns false for '\0'. 283 static inline bool isHorizontalWhitespace(unsigned char c) { 284 return (CharInfo[c] & CHAR_HORZ_WS) ? true : false; 285 } 286 287 /// isWhitespace - Return true if this character is horizontal or vertical 288 /// whitespace: ' ', '\t', '\f', '\v', '\n', '\r'. Note that this returns false 289 /// for '\0'. 290 static inline bool isWhitespace(unsigned char c) { 291 return (CharInfo[c] & (CHAR_HORZ_WS|CHAR_VERT_WS)) ? true : false; 292 } 293 294 /// isNumberBody - Return true if this is the body character of an 295 /// preprocessing number, which is [a-zA-Z0-9_.]. 296 static inline bool isNumberBody(unsigned char c) { 297 return (CharInfo[c] & (CHAR_LETTER|CHAR_NUMBER|CHAR_UNDER|CHAR_PERIOD)) ? 298 true : false; 299 } 300 301 302 //===----------------------------------------------------------------------===// 303 // Diagnostics forwarding code. 304 //===----------------------------------------------------------------------===// 305 306 /// GetMappedTokenLoc - If lexing out of a 'mapped buffer', where we pretend the 307 /// lexer buffer was all instantiated at a single point, perform the mapping. 308 /// This is currently only used for _Pragma implementation, so it is the slow 309 /// path of the hot getSourceLocation method. Do not allow it to be inlined. 310 static SourceLocation GetMappedTokenLoc(Preprocessor &PP, 311 SourceLocation FileLoc, 312 unsigned CharNo, 313 unsigned TokLen) DISABLE_INLINE; 314 static SourceLocation GetMappedTokenLoc(Preprocessor &PP, 315 SourceLocation FileLoc, 316 unsigned CharNo, unsigned TokLen) { 317 assert(FileLoc.isMacroID() && "Must be an instantiation"); 318 319 // Otherwise, we're lexing "mapped tokens". This is used for things like 320 // _Pragma handling. Combine the instantiation location of FileLoc with the 321 // spelling location. 322 SourceManager &SM = PP.getSourceManager(); 323 324 // Create a new SLoc which is expanded from Instantiation(FileLoc) but whose 325 // characters come from spelling(FileLoc)+Offset. 326 SourceLocation SpellingLoc = SM.getSpellingLoc(FileLoc); 327 SpellingLoc = SpellingLoc.getFileLocWithOffset(CharNo); 328 329 // Figure out the expansion loc range, which is the range covered by the 330 // original _Pragma(...) sequence. 331 std::pair<SourceLocation,SourceLocation> II = 332 SM.getImmediateInstantiationRange(FileLoc); 333 334 return SM.createInstantiationLoc(SpellingLoc, II.first, II.second, TokLen); 335 } 336 337 /// getSourceLocation - Return a source location identifier for the specified 338 /// offset in the current file. 339 SourceLocation Lexer::getSourceLocation(const char *Loc, 340 unsigned TokLen) const { 341 assert(Loc >= BufferStart && Loc <= BufferEnd && 342 "Location out of range for this buffer!"); 343 344 // In the normal case, we're just lexing from a simple file buffer, return 345 // the file id from FileLoc with the offset specified. 346 unsigned CharNo = Loc-BufferStart; 347 if (FileLoc.isFileID()) 348 return FileLoc.getFileLocWithOffset(CharNo); 349 350 // Otherwise, this is the _Pragma lexer case, which pretends that all of the 351 // tokens are lexed from where the _Pragma was defined. 352 assert(PP && "This doesn't work on raw lexers"); 353 return GetMappedTokenLoc(*PP, FileLoc, CharNo, TokLen); 354 } 355 356 /// Diag - Forwarding function for diagnostics. This translate a source 357 /// position in the current buffer into a SourceLocation object for rendering. 358 DiagnosticBuilder Lexer::Diag(const char *Loc, unsigned DiagID) const { 359 return PP->Diag(getSourceLocation(Loc), DiagID); 360 } 361 362 //===----------------------------------------------------------------------===// 363 // Trigraph and Escaped Newline Handling Code. 364 //===----------------------------------------------------------------------===// 365 366 /// GetTrigraphCharForLetter - Given a character that occurs after a ?? pair, 367 /// return the decoded trigraph letter it corresponds to, or '\0' if nothing. 368 static char GetTrigraphCharForLetter(char Letter) { 369 switch (Letter) { 370 default: return 0; 371 case '=': return '#'; 372 case ')': return ']'; 373 case '(': return '['; 374 case '!': return '|'; 375 case '\'': return '^'; 376 case '>': return '}'; 377 case '/': return '\\'; 378 case '<': return '{'; 379 case '-': return '~'; 380 } 381 } 382 383 /// DecodeTrigraphChar - If the specified character is a legal trigraph when 384 /// prefixed with ??, emit a trigraph warning. If trigraphs are enabled, 385 /// return the result character. Finally, emit a warning about trigraph use 386 /// whether trigraphs are enabled or not. 387 static char DecodeTrigraphChar(const char *CP, Lexer *L) { 388 char Res = GetTrigraphCharForLetter(*CP); 389 if (!Res || !L) return Res; 390 391 if (!L->getFeatures().Trigraphs) { 392 if (!L->isLexingRawMode()) 393 L->Diag(CP-2, diag::trigraph_ignored); 394 return 0; 395 } 396 397 if (!L->isLexingRawMode()) 398 L->Diag(CP-2, diag::trigraph_converted) << std::string()+Res; 399 return Res; 400 } 401 402 /// getEscapedNewLineSize - Return the size of the specified escaped newline, 403 /// or 0 if it is not an escaped newline. P[-1] is known to be a "\" or a 404 /// trigraph equivalent on entry to this function. 405 unsigned Lexer::getEscapedNewLineSize(const char *Ptr) { 406 unsigned Size = 0; 407 while (isWhitespace(Ptr[Size])) { 408 ++Size; 409 410 if (Ptr[Size-1] != '\n' && Ptr[Size-1] != '\r') 411 continue; 412 413 // If this is a \r\n or \n\r, skip the other half. 414 if ((Ptr[Size] == '\r' || Ptr[Size] == '\n') && 415 Ptr[Size-1] != Ptr[Size]) 416 ++Size; 417 418 return Size; 419 } 420 421 // Not an escaped newline, must be a \t or something else. 422 return 0; 423 } 424 425 /// SkipEscapedNewLines - If P points to an escaped newline (or a series of 426 /// them), skip over them and return the first non-escaped-newline found, 427 /// otherwise return P. 428 const char *Lexer::SkipEscapedNewLines(const char *P) { 429 while (1) { 430 const char *AfterEscape; 431 if (*P == '\\') { 432 AfterEscape = P+1; 433 } else if (*P == '?') { 434 // If not a trigraph for escape, bail out. 435 if (P[1] != '?' || P[2] != '/') 436 return P; 437 AfterEscape = P+3; 438 } else { 439 return P; 440 } 441 442 unsigned NewLineSize = Lexer::getEscapedNewLineSize(AfterEscape); 443 if (NewLineSize == 0) return P; 444 P = AfterEscape+NewLineSize; 445 } 446 } 447 448 449 /// getCharAndSizeSlow - Peek a single 'character' from the specified buffer, 450 /// get its size, and return it. This is tricky in several cases: 451 /// 1. If currently at the start of a trigraph, we warn about the trigraph, 452 /// then either return the trigraph (skipping 3 chars) or the '?', 453 /// depending on whether trigraphs are enabled or not. 454 /// 2. If this is an escaped newline (potentially with whitespace between 455 /// the backslash and newline), implicitly skip the newline and return 456 /// the char after it. 457 /// 3. If this is a UCN, return it. FIXME: C++ UCN's? 458 /// 459 /// This handles the slow/uncommon case of the getCharAndSize method. Here we 460 /// know that we can accumulate into Size, and that we have already incremented 461 /// Ptr by Size bytes. 462 /// 463 /// NOTE: When this method is updated, getCharAndSizeSlowNoWarn (below) should 464 /// be updated to match. 465 /// 466 char Lexer::getCharAndSizeSlow(const char *Ptr, unsigned &Size, 467 Token *Tok) { 468 // If we have a slash, look for an escaped newline. 469 if (Ptr[0] == '\\') { 470 ++Size; 471 ++Ptr; 472 Slash: 473 // Common case, backslash-char where the char is not whitespace. 474 if (!isWhitespace(Ptr[0])) return '\\'; 475 476 // See if we have optional whitespace characters between the slash and 477 // newline. 478 if (unsigned EscapedNewLineSize = getEscapedNewLineSize(Ptr)) { 479 // Remember that this token needs to be cleaned. 480 if (Tok) Tok->setFlag(Token::NeedsCleaning); 481 482 // Warn if there was whitespace between the backslash and newline. 483 if (Ptr[0] != '\n' && Ptr[0] != '\r' && Tok && !isLexingRawMode()) 484 Diag(Ptr, diag::backslash_newline_space); 485 486 // Found backslash<whitespace><newline>. Parse the char after it. 487 Size += EscapedNewLineSize; 488 Ptr += EscapedNewLineSize; 489 // Use slow version to accumulate a correct size field. 490 return getCharAndSizeSlow(Ptr, Size, Tok); 491 } 492 493 // Otherwise, this is not an escaped newline, just return the slash. 494 return '\\'; 495 } 496 497 // If this is a trigraph, process it. 498 if (Ptr[0] == '?' && Ptr[1] == '?') { 499 // If this is actually a legal trigraph (not something like "??x"), emit 500 // a trigraph warning. If so, and if trigraphs are enabled, return it. 501 if (char C = DecodeTrigraphChar(Ptr+2, Tok ? this : 0)) { 502 // Remember that this token needs to be cleaned. 503 if (Tok) Tok->setFlag(Token::NeedsCleaning); 504 505 Ptr += 3; 506 Size += 3; 507 if (C == '\\') goto Slash; 508 return C; 509 } 510 } 511 512 // If this is neither, return a single character. 513 ++Size; 514 return *Ptr; 515 } 516 517 518 /// getCharAndSizeSlowNoWarn - Handle the slow/uncommon case of the 519 /// getCharAndSizeNoWarn method. Here we know that we can accumulate into Size, 520 /// and that we have already incremented Ptr by Size bytes. 521 /// 522 /// NOTE: When this method is updated, getCharAndSizeSlow (above) should 523 /// be updated to match. 524 char Lexer::getCharAndSizeSlowNoWarn(const char *Ptr, unsigned &Size, 525 const LangOptions &Features) { 526 // If we have a slash, look for an escaped newline. 527 if (Ptr[0] == '\\') { 528 ++Size; 529 ++Ptr; 530 Slash: 531 // Common case, backslash-char where the char is not whitespace. 532 if (!isWhitespace(Ptr[0])) return '\\'; 533 534 // See if we have optional whitespace characters followed by a newline. 535 if (unsigned EscapedNewLineSize = getEscapedNewLineSize(Ptr)) { 536 // Found backslash<whitespace><newline>. Parse the char after it. 537 Size += EscapedNewLineSize; 538 Ptr += EscapedNewLineSize; 539 540 // Use slow version to accumulate a correct size field. 541 return getCharAndSizeSlowNoWarn(Ptr, Size, Features); 542 } 543 544 // Otherwise, this is not an escaped newline, just return the slash. 545 return '\\'; 546 } 547 548 // If this is a trigraph, process it. 549 if (Features.Trigraphs && Ptr[0] == '?' && Ptr[1] == '?') { 550 // If this is actually a legal trigraph (not something like "??x"), return 551 // it. 552 if (char C = GetTrigraphCharForLetter(Ptr[2])) { 553 Ptr += 3; 554 Size += 3; 555 if (C == '\\') goto Slash; 556 return C; 557 } 558 } 559 560 // If this is neither, return a single character. 561 ++Size; 562 return *Ptr; 563 } 564 565 //===----------------------------------------------------------------------===// 566 // Helper methods for lexing. 567 //===----------------------------------------------------------------------===// 568 569 void Lexer::LexIdentifier(Token &Result, const char *CurPtr) { 570 // Match [_A-Za-z0-9]*, we have already matched [_A-Za-z$] 571 unsigned Size; 572 unsigned char C = *CurPtr++; 573 while (isIdentifierBody(C)) { 574 C = *CurPtr++; 575 } 576 --CurPtr; // Back up over the skipped character. 577 578 // Fast path, no $,\,? in identifier found. '\' might be an escaped newline 579 // or UCN, and ? might be a trigraph for '\', an escaped newline or UCN. 580 // FIXME: UCNs. 581 if (C != '\\' && C != '?' && (C != '$' || !Features.DollarIdents)) { 582 FinishIdentifier: 583 const char *IdStart = BufferPtr; 584 FormTokenWithChars(Result, CurPtr, tok::identifier); 585 586 // If we are in raw mode, return this identifier raw. There is no need to 587 // look up identifier information or attempt to macro expand it. 588 if (LexingRawMode) return; 589 590 // Fill in Result.IdentifierInfo, looking up the identifier in the 591 // identifier table. 592 IdentifierInfo *II = PP->LookUpIdentifierInfo(Result, IdStart); 593 594 // Change the kind of this identifier to the appropriate token kind, e.g. 595 // turning "for" into a keyword. 596 Result.setKind(II->getTokenID()); 597 598 // Finally, now that we know we have an identifier, pass this off to the 599 // preprocessor, which may macro expand it or something. 600 if (II->isHandleIdentifierCase()) 601 PP->HandleIdentifier(Result); 602 return; 603 } 604 605 // Otherwise, $,\,? in identifier found. Enter slower path. 606 607 C = getCharAndSize(CurPtr, Size); 608 while (1) { 609 if (C == '$') { 610 // If we hit a $ and they are not supported in identifiers, we are done. 611 if (!Features.DollarIdents) goto FinishIdentifier; 612 613 // Otherwise, emit a diagnostic and continue. 614 if (!isLexingRawMode()) 615 Diag(CurPtr, diag::ext_dollar_in_identifier); 616 CurPtr = ConsumeChar(CurPtr, Size, Result); 617 C = getCharAndSize(CurPtr, Size); 618 continue; 619 } else if (!isIdentifierBody(C)) { // FIXME: UCNs. 620 // Found end of identifier. 621 goto FinishIdentifier; 622 } 623 624 // Otherwise, this character is good, consume it. 625 CurPtr = ConsumeChar(CurPtr, Size, Result); 626 627 C = getCharAndSize(CurPtr, Size); 628 while (isIdentifierBody(C)) { // FIXME: UCNs. 629 CurPtr = ConsumeChar(CurPtr, Size, Result); 630 C = getCharAndSize(CurPtr, Size); 631 } 632 } 633 } 634 635 636 /// LexNumericConstant - Lex the remainder of a integer or floating point 637 /// constant. From[-1] is the first character lexed. Return the end of the 638 /// constant. 639 void Lexer::LexNumericConstant(Token &Result, const char *CurPtr) { 640 unsigned Size; 641 char C = getCharAndSize(CurPtr, Size); 642 char PrevCh = 0; 643 while (isNumberBody(C)) { // FIXME: UCNs? 644 CurPtr = ConsumeChar(CurPtr, Size, Result); 645 PrevCh = C; 646 C = getCharAndSize(CurPtr, Size); 647 } 648 649 // If we fell out, check for a sign, due to 1e+12. If we have one, continue. 650 if ((C == '-' || C == '+') && (PrevCh == 'E' || PrevCh == 'e')) 651 return LexNumericConstant(Result, ConsumeChar(CurPtr, Size, Result)); 652 653 // If we have a hex FP constant, continue. 654 if ((C == '-' || C == '+') && (PrevCh == 'P' || PrevCh == 'p')) 655 return LexNumericConstant(Result, ConsumeChar(CurPtr, Size, Result)); 656 657 // Update the location of token as well as BufferPtr. 658 const char *TokStart = BufferPtr; 659 FormTokenWithChars(Result, CurPtr, tok::numeric_constant); 660 Result.setLiteralData(TokStart); 661 } 662 663 /// LexStringLiteral - Lex the remainder of a string literal, after having lexed 664 /// either " or L". 665 void Lexer::LexStringLiteral(Token &Result, const char *CurPtr, bool Wide) { 666 const char *NulCharacter = 0; // Does this string contain the \0 character? 667 668 char C = getAndAdvanceChar(CurPtr, Result); 669 while (C != '"') { 670 // Skip escaped characters. 671 if (C == '\\') { 672 // Skip the escaped character. 673 C = getAndAdvanceChar(CurPtr, Result); 674 } else if (C == '\n' || C == '\r' || // Newline. 675 (C == 0 && CurPtr-1 == BufferEnd)) { // End of file. 676 if (!isLexingRawMode() && !Features.AsmPreprocessor) 677 Diag(BufferPtr, diag::err_unterminated_string); 678 FormTokenWithChars(Result, CurPtr-1, tok::unknown); 679 return; 680 } else if (C == 0) { 681 NulCharacter = CurPtr-1; 682 } 683 C = getAndAdvanceChar(CurPtr, Result); 684 } 685 686 // If a nul character existed in the string, warn about it. 687 if (NulCharacter && !isLexingRawMode()) 688 Diag(NulCharacter, diag::null_in_string); 689 690 // Update the location of the token as well as the BufferPtr instance var. 691 const char *TokStart = BufferPtr; 692 FormTokenWithChars(Result, CurPtr, 693 Wide ? tok::wide_string_literal : tok::string_literal); 694 Result.setLiteralData(TokStart); 695 } 696 697 /// LexAngledStringLiteral - Lex the remainder of an angled string literal, 698 /// after having lexed the '<' character. This is used for #include filenames. 699 void Lexer::LexAngledStringLiteral(Token &Result, const char *CurPtr) { 700 const char *NulCharacter = 0; // Does this string contain the \0 character? 701 const char *AfterLessPos = CurPtr; 702 char C = getAndAdvanceChar(CurPtr, Result); 703 while (C != '>') { 704 // Skip escaped characters. 705 if (C == '\\') { 706 // Skip the escaped character. 707 C = getAndAdvanceChar(CurPtr, Result); 708 } else if (C == '\n' || C == '\r' || // Newline. 709 (C == 0 && CurPtr-1 == BufferEnd)) { // End of file. 710 // If the filename is unterminated, then it must just be a lone < 711 // character. Return this as such. 712 FormTokenWithChars(Result, AfterLessPos, tok::less); 713 return; 714 } else if (C == 0) { 715 NulCharacter = CurPtr-1; 716 } 717 C = getAndAdvanceChar(CurPtr, Result); 718 } 719 720 // If a nul character existed in the string, warn about it. 721 if (NulCharacter && !isLexingRawMode()) 722 Diag(NulCharacter, diag::null_in_string); 723 724 // Update the location of token as well as BufferPtr. 725 const char *TokStart = BufferPtr; 726 FormTokenWithChars(Result, CurPtr, tok::angle_string_literal); 727 Result.setLiteralData(TokStart); 728 } 729 730 731 /// LexCharConstant - Lex the remainder of a character constant, after having 732 /// lexed either ' or L'. 733 void Lexer::LexCharConstant(Token &Result, const char *CurPtr) { 734 const char *NulCharacter = 0; // Does this character contain the \0 character? 735 736 // Handle the common case of 'x' and '\y' efficiently. 737 char C = getAndAdvanceChar(CurPtr, Result); 738 if (C == '\'') { 739 if (!isLexingRawMode() && !Features.AsmPreprocessor) 740 Diag(BufferPtr, diag::err_empty_character); 741 FormTokenWithChars(Result, CurPtr, tok::unknown); 742 return; 743 } else if (C == '\\') { 744 // Skip the escaped character. 745 // FIXME: UCN's. 746 C = getAndAdvanceChar(CurPtr, Result); 747 } 748 749 if (C && C != '\n' && C != '\r' && CurPtr[0] == '\'') { 750 ++CurPtr; 751 } else { 752 // Fall back on generic code for embedded nulls, newlines, wide chars. 753 do { 754 // Skip escaped characters. 755 if (C == '\\') { 756 // Skip the escaped character. 757 C = getAndAdvanceChar(CurPtr, Result); 758 } else if (C == '\n' || C == '\r' || // Newline. 759 (C == 0 && CurPtr-1 == BufferEnd)) { // End of file. 760 if (!isLexingRawMode() && !Features.AsmPreprocessor) 761 Diag(BufferPtr, diag::err_unterminated_char); 762 FormTokenWithChars(Result, CurPtr-1, tok::unknown); 763 return; 764 } else if (C == 0) { 765 NulCharacter = CurPtr-1; 766 } 767 C = getAndAdvanceChar(CurPtr, Result); 768 } while (C != '\''); 769 } 770 771 if (NulCharacter && !isLexingRawMode()) 772 Diag(NulCharacter, diag::null_in_char); 773 774 // Update the location of token as well as BufferPtr. 775 const char *TokStart = BufferPtr; 776 FormTokenWithChars(Result, CurPtr, tok::char_constant); 777 Result.setLiteralData(TokStart); 778 } 779 780 /// SkipWhitespace - Efficiently skip over a series of whitespace characters. 781 /// Update BufferPtr to point to the next non-whitespace character and return. 782 /// 783 /// This method forms a token and returns true if KeepWhitespaceMode is enabled. 784 /// 785 bool Lexer::SkipWhitespace(Token &Result, const char *CurPtr) { 786 // Whitespace - Skip it, then return the token after the whitespace. 787 unsigned char Char = *CurPtr; // Skip consequtive spaces efficiently. 788 while (1) { 789 // Skip horizontal whitespace very aggressively. 790 while (isHorizontalWhitespace(Char)) 791 Char = *++CurPtr; 792 793 // Otherwise if we have something other than whitespace, we're done. 794 if (Char != '\n' && Char != '\r') 795 break; 796 797 if (ParsingPreprocessorDirective) { 798 // End of preprocessor directive line, let LexTokenInternal handle this. 799 BufferPtr = CurPtr; 800 return false; 801 } 802 803 // ok, but handle newline. 804 // The returned token is at the start of the line. 805 Result.setFlag(Token::StartOfLine); 806 // No leading whitespace seen so far. 807 Result.clearFlag(Token::LeadingSpace); 808 Char = *++CurPtr; 809 } 810 811 // If this isn't immediately after a newline, there is leading space. 812 char PrevChar = CurPtr[-1]; 813 if (PrevChar != '\n' && PrevChar != '\r') 814 Result.setFlag(Token::LeadingSpace); 815 816 // If the client wants us to return whitespace, return it now. 817 if (isKeepWhitespaceMode()) { 818 FormTokenWithChars(Result, CurPtr, tok::unknown); 819 return true; 820 } 821 822 BufferPtr = CurPtr; 823 return false; 824 } 825 826 // SkipBCPLComment - We have just read the // characters from input. Skip until 827 // we find the newline character thats terminate the comment. Then update 828 /// BufferPtr and return. If we're in KeepCommentMode, this will form the token 829 /// and return true. 830 bool Lexer::SkipBCPLComment(Token &Result, const char *CurPtr) { 831 // If BCPL comments aren't explicitly enabled for this language, emit an 832 // extension warning. 833 if (!Features.BCPLComment && !isLexingRawMode()) { 834 Diag(BufferPtr, diag::ext_bcpl_comment); 835 836 // Mark them enabled so we only emit one warning for this translation 837 // unit. 838 Features.BCPLComment = true; 839 } 840 841 // Scan over the body of the comment. The common case, when scanning, is that 842 // the comment contains normal ascii characters with nothing interesting in 843 // them. As such, optimize for this case with the inner loop. 844 char C; 845 do { 846 C = *CurPtr; 847 // FIXME: Speedup BCPL comment lexing. Just scan for a \n or \r character. 848 // If we find a \n character, scan backwards, checking to see if it's an 849 // escaped newline, like we do for block comments. 850 851 // Skip over characters in the fast loop. 852 while (C != 0 && // Potentially EOF. 853 C != '\\' && // Potentially escaped newline. 854 C != '?' && // Potentially trigraph. 855 C != '\n' && C != '\r') // Newline or DOS-style newline. 856 C = *++CurPtr; 857 858 // If this is a newline, we're done. 859 if (C == '\n' || C == '\r') 860 break; // Found the newline? Break out! 861 862 // Otherwise, this is a hard case. Fall back on getAndAdvanceChar to 863 // properly decode the character. Read it in raw mode to avoid emitting 864 // diagnostics about things like trigraphs. If we see an escaped newline, 865 // we'll handle it below. 866 const char *OldPtr = CurPtr; 867 bool OldRawMode = isLexingRawMode(); 868 LexingRawMode = true; 869 C = getAndAdvanceChar(CurPtr, Result); 870 LexingRawMode = OldRawMode; 871 872 // If the char that we finally got was a \n, then we must have had something 873 // like \<newline><newline>. We don't want to have consumed the second 874 // newline, we want CurPtr, to end up pointing to it down below. 875 if (C == '\n' || C == '\r') { 876 --CurPtr; 877 C = 'x'; // doesn't matter what this is. 878 } 879 880 // If we read multiple characters, and one of those characters was a \r or 881 // \n, then we had an escaped newline within the comment. Emit diagnostic 882 // unless the next line is also a // comment. 883 if (CurPtr != OldPtr+1 && C != '/' && CurPtr[0] != '/') { 884 for (; OldPtr != CurPtr; ++OldPtr) 885 if (OldPtr[0] == '\n' || OldPtr[0] == '\r') { 886 // Okay, we found a // comment that ends in a newline, if the next 887 // line is also a // comment, but has spaces, don't emit a diagnostic. 888 if (isspace(C)) { 889 const char *ForwardPtr = CurPtr; 890 while (isspace(*ForwardPtr)) // Skip whitespace. 891 ++ForwardPtr; 892 if (ForwardPtr[0] == '/' && ForwardPtr[1] == '/') 893 break; 894 } 895 896 if (!isLexingRawMode()) 897 Diag(OldPtr-1, diag::ext_multi_line_bcpl_comment); 898 break; 899 } 900 } 901 902 if (CurPtr == BufferEnd+1) { --CurPtr; break; } 903 } while (C != '\n' && C != '\r'); 904 905 // Found but did not consume the newline. 906 if (PP) 907 PP->HandleComment(SourceRange(getSourceLocation(BufferPtr), 908 getSourceLocation(CurPtr))); 909 910 // If we are returning comments as tokens, return this comment as a token. 911 if (inKeepCommentMode()) 912 return SaveBCPLComment(Result, CurPtr); 913 914 // If we are inside a preprocessor directive and we see the end of line, 915 // return immediately, so that the lexer can return this as an EOM token. 916 if (ParsingPreprocessorDirective || CurPtr == BufferEnd) { 917 BufferPtr = CurPtr; 918 return false; 919 } 920 921 // Otherwise, eat the \n character. We don't care if this is a \n\r or 922 // \r\n sequence. This is an efficiency hack (because we know the \n can't 923 // contribute to another token), it isn't needed for correctness. Note that 924 // this is ok even in KeepWhitespaceMode, because we would have returned the 925 /// comment above in that mode. 926 ++CurPtr; 927 928 // The next returned token is at the start of the line. 929 Result.setFlag(Token::StartOfLine); 930 // No leading whitespace seen so far. 931 Result.clearFlag(Token::LeadingSpace); 932 BufferPtr = CurPtr; 933 return false; 934 } 935 936 /// SaveBCPLComment - If in save-comment mode, package up this BCPL comment in 937 /// an appropriate way and return it. 938 bool Lexer::SaveBCPLComment(Token &Result, const char *CurPtr) { 939 // If we're not in a preprocessor directive, just return the // comment 940 // directly. 941 FormTokenWithChars(Result, CurPtr, tok::comment); 942 943 if (!ParsingPreprocessorDirective) 944 return true; 945 946 // If this BCPL-style comment is in a macro definition, transmogrify it into 947 // a C-style block comment. 948 std::string Spelling = PP->getSpelling(Result); 949 assert(Spelling[0] == '/' && Spelling[1] == '/' && "Not bcpl comment?"); 950 Spelling[1] = '*'; // Change prefix to "/*". 951 Spelling += "*/"; // add suffix. 952 953 Result.setKind(tok::comment); 954 PP->CreateString(&Spelling[0], Spelling.size(), Result, 955 Result.getLocation()); 956 return true; 957 } 958 959 /// isBlockCommentEndOfEscapedNewLine - Return true if the specified newline 960 /// character (either \n or \r) is part of an escaped newline sequence. Issue a 961 /// diagnostic if so. We know that the newline is inside of a block comment. 962 static bool isEndOfBlockCommentWithEscapedNewLine(const char *CurPtr, 963 Lexer *L) { 964 assert(CurPtr[0] == '\n' || CurPtr[0] == '\r'); 965 966 // Back up off the newline. 967 --CurPtr; 968 969 // If this is a two-character newline sequence, skip the other character. 970 if (CurPtr[0] == '\n' || CurPtr[0] == '\r') { 971 // \n\n or \r\r -> not escaped newline. 972 if (CurPtr[0] == CurPtr[1]) 973 return false; 974 // \n\r or \r\n -> skip the newline. 975 --CurPtr; 976 } 977 978 // If we have horizontal whitespace, skip over it. We allow whitespace 979 // between the slash and newline. 980 bool HasSpace = false; 981 while (isHorizontalWhitespace(*CurPtr) || *CurPtr == 0) { 982 --CurPtr; 983 HasSpace = true; 984 } 985 986 // If we have a slash, we know this is an escaped newline. 987 if (*CurPtr == '\\') { 988 if (CurPtr[-1] != '*') return false; 989 } else { 990 // It isn't a slash, is it the ?? / trigraph? 991 if (CurPtr[0] != '/' || CurPtr[-1] != '?' || CurPtr[-2] != '?' || 992 CurPtr[-3] != '*') 993 return false; 994 995 // This is the trigraph ending the comment. Emit a stern warning! 996 CurPtr -= 2; 997 998 // If no trigraphs are enabled, warn that we ignored this trigraph and 999 // ignore this * character. 1000 if (!L->getFeatures().Trigraphs) { 1001 if (!L->isLexingRawMode()) 1002 L->Diag(CurPtr, diag::trigraph_ignored_block_comment); 1003 return false; 1004 } 1005 if (!L->isLexingRawMode()) 1006 L->Diag(CurPtr, diag::trigraph_ends_block_comment); 1007 } 1008 1009 // Warn about having an escaped newline between the */ characters. 1010 if (!L->isLexingRawMode()) 1011 L->Diag(CurPtr, diag::escaped_newline_block_comment_end); 1012 1013 // If there was space between the backslash and newline, warn about it. 1014 if (HasSpace && !L->isLexingRawMode()) 1015 L->Diag(CurPtr, diag::backslash_newline_space); 1016 1017 return true; 1018 } 1019 1020 #ifdef __SSE2__ 1021 #include <emmintrin.h> 1022 #elif __ALTIVEC__ 1023 #include <altivec.h> 1024 #undef bool 1025 #endif 1026 1027 /// SkipBlockComment - We have just read the /* characters from input. Read 1028 /// until we find the */ characters that terminate the comment. Note that we 1029 /// don't bother decoding trigraphs or escaped newlines in block comments, 1030 /// because they cannot cause the comment to end. The only thing that can 1031 /// happen is the comment could end with an escaped newline between the */ end 1032 /// of comment. 1033 /// 1034 /// If KeepCommentMode is enabled, this forms a token from the comment and 1035 /// returns true. 1036 bool Lexer::SkipBlockComment(Token &Result, const char *CurPtr) { 1037 // Scan one character past where we should, looking for a '/' character. Once 1038 // we find it, check to see if it was preceeded by a *. This common 1039 // optimization helps people who like to put a lot of * characters in their 1040 // comments. 1041 1042 // The first character we get with newlines and trigraphs skipped to handle 1043 // the degenerate /*/ case below correctly if the * has an escaped newline 1044 // after it. 1045 unsigned CharSize; 1046 unsigned char C = getCharAndSize(CurPtr, CharSize); 1047 CurPtr += CharSize; 1048 if (C == 0 && CurPtr == BufferEnd+1) { 1049 if (!isLexingRawMode()) 1050 Diag(BufferPtr, diag::err_unterminated_block_comment); 1051 --CurPtr; 1052 1053 // KeepWhitespaceMode should return this broken comment as a token. Since 1054 // it isn't a well formed comment, just return it as an 'unknown' token. 1055 if (isKeepWhitespaceMode()) { 1056 FormTokenWithChars(Result, CurPtr, tok::unknown); 1057 return true; 1058 } 1059 1060 BufferPtr = CurPtr; 1061 return false; 1062 } 1063 1064 // Check to see if the first character after the '/*' is another /. If so, 1065 // then this slash does not end the block comment, it is part of it. 1066 if (C == '/') 1067 C = *CurPtr++; 1068 1069 while (1) { 1070 // Skip over all non-interesting characters until we find end of buffer or a 1071 // (probably ending) '/' character. 1072 if (CurPtr + 24 < BufferEnd) { 1073 // While not aligned to a 16-byte boundary. 1074 while (C != '/' && ((intptr_t)CurPtr & 0x0F) != 0) 1075 C = *CurPtr++; 1076 1077 if (C == '/') goto FoundSlash; 1078 1079 #ifdef __SSE2__ 1080 __m128i Slashes = _mm_set_epi8('/', '/', '/', '/', '/', '/', '/', '/', 1081 '/', '/', '/', '/', '/', '/', '/', '/'); 1082 while (CurPtr+16 <= BufferEnd && 1083 _mm_movemask_epi8(_mm_cmpeq_epi8(*(__m128i*)CurPtr, Slashes)) == 0) 1084 CurPtr += 16; 1085 #elif __ALTIVEC__ 1086 __vector unsigned char Slashes = { 1087 '/', '/', '/', '/', '/', '/', '/', '/', 1088 '/', '/', '/', '/', '/', '/', '/', '/' 1089 }; 1090 while (CurPtr+16 <= BufferEnd && 1091 !vec_any_eq(*(vector unsigned char*)CurPtr, Slashes)) 1092 CurPtr += 16; 1093 #else 1094 // Scan for '/' quickly. Many block comments are very large. 1095 while (CurPtr[0] != '/' && 1096 CurPtr[1] != '/' && 1097 CurPtr[2] != '/' && 1098 CurPtr[3] != '/' && 1099 CurPtr+4 < BufferEnd) { 1100 CurPtr += 4; 1101 } 1102 #endif 1103 1104 // It has to be one of the bytes scanned, increment to it and read one. 1105 C = *CurPtr++; 1106 } 1107 1108 // Loop to scan the remainder. 1109 while (C != '/' && C != '\0') 1110 C = *CurPtr++; 1111 1112 FoundSlash: 1113 if (C == '/') { 1114 if (CurPtr[-2] == '*') // We found the final */. We're done! 1115 break; 1116 1117 if ((CurPtr[-2] == '\n' || CurPtr[-2] == '\r')) { 1118 if (isEndOfBlockCommentWithEscapedNewLine(CurPtr-2, this)) { 1119 // We found the final */, though it had an escaped newline between the 1120 // * and /. We're done! 1121 break; 1122 } 1123 } 1124 if (CurPtr[0] == '*' && CurPtr[1] != '/') { 1125 // If this is a /* inside of the comment, emit a warning. Don't do this 1126 // if this is a /*/, which will end the comment. This misses cases with 1127 // embedded escaped newlines, but oh well. 1128 if (!isLexingRawMode()) 1129 Diag(CurPtr-1, diag::warn_nested_block_comment); 1130 } 1131 } else if (C == 0 && CurPtr == BufferEnd+1) { 1132 if (!isLexingRawMode()) 1133 Diag(BufferPtr, diag::err_unterminated_block_comment); 1134 // Note: the user probably forgot a */. We could continue immediately 1135 // after the /*, but this would involve lexing a lot of what really is the 1136 // comment, which surely would confuse the parser. 1137 --CurPtr; 1138 1139 // KeepWhitespaceMode should return this broken comment as a token. Since 1140 // it isn't a well formed comment, just return it as an 'unknown' token. 1141 if (isKeepWhitespaceMode()) { 1142 FormTokenWithChars(Result, CurPtr, tok::unknown); 1143 return true; 1144 } 1145 1146 BufferPtr = CurPtr; 1147 return false; 1148 } 1149 C = *CurPtr++; 1150 } 1151 1152 if (PP) 1153 PP->HandleComment(SourceRange(getSourceLocation(BufferPtr), 1154 getSourceLocation(CurPtr))); 1155 1156 // If we are returning comments as tokens, return this comment as a token. 1157 if (inKeepCommentMode()) { 1158 FormTokenWithChars(Result, CurPtr, tok::comment); 1159 return true; 1160 } 1161 1162 // It is common for the tokens immediately after a /**/ comment to be 1163 // whitespace. Instead of going through the big switch, handle it 1164 // efficiently now. This is safe even in KeepWhitespaceMode because we would 1165 // have already returned above with the comment as a token. 1166 if (isHorizontalWhitespace(*CurPtr)) { 1167 Result.setFlag(Token::LeadingSpace); 1168 SkipWhitespace(Result, CurPtr+1); 1169 return false; 1170 } 1171 1172 // Otherwise, just return so that the next character will be lexed as a token. 1173 BufferPtr = CurPtr; 1174 Result.setFlag(Token::LeadingSpace); 1175 return false; 1176 } 1177 1178 //===----------------------------------------------------------------------===// 1179 // Primary Lexing Entry Points 1180 //===----------------------------------------------------------------------===// 1181 1182 /// ReadToEndOfLine - Read the rest of the current preprocessor line as an 1183 /// uninterpreted string. This switches the lexer out of directive mode. 1184 std::string Lexer::ReadToEndOfLine() { 1185 assert(ParsingPreprocessorDirective && ParsingFilename == false && 1186 "Must be in a preprocessing directive!"); 1187 std::string Result; 1188 Token Tmp; 1189 1190 // CurPtr - Cache BufferPtr in an automatic variable. 1191 const char *CurPtr = BufferPtr; 1192 while (1) { 1193 char Char = getAndAdvanceChar(CurPtr, Tmp); 1194 switch (Char) { 1195 default: 1196 Result += Char; 1197 break; 1198 case 0: // Null. 1199 // Found end of file? 1200 if (CurPtr-1 != BufferEnd) { 1201 // Nope, normal character, continue. 1202 Result += Char; 1203 break; 1204 } 1205 // FALL THROUGH. 1206 case '\r': 1207 case '\n': 1208 // Okay, we found the end of the line. First, back up past the \0, \r, \n. 1209 assert(CurPtr[-1] == Char && "Trigraphs for newline?"); 1210 BufferPtr = CurPtr-1; 1211 1212 // Next, lex the character, which should handle the EOM transition. 1213 Lex(Tmp); 1214 assert(Tmp.is(tok::eom) && "Unexpected token!"); 1215 1216 // Finally, we're done, return the string we found. 1217 return Result; 1218 } 1219 } 1220 } 1221 1222 /// LexEndOfFile - CurPtr points to the end of this file. Handle this 1223 /// condition, reporting diagnostics and handling other edge cases as required. 1224 /// This returns true if Result contains a token, false if PP.Lex should be 1225 /// called again. 1226 bool Lexer::LexEndOfFile(Token &Result, const char *CurPtr) { 1227 // If we hit the end of the file while parsing a preprocessor directive, 1228 // end the preprocessor directive first. The next token returned will 1229 // then be the end of file. 1230 if (ParsingPreprocessorDirective) { 1231 // Done parsing the "line". 1232 ParsingPreprocessorDirective = false; 1233 // Update the location of token as well as BufferPtr. 1234 FormTokenWithChars(Result, CurPtr, tok::eom); 1235 1236 // Restore comment saving mode, in case it was disabled for directive. 1237 SetCommentRetentionState(PP->getCommentRetentionState()); 1238 return true; // Have a token. 1239 } 1240 1241 // If we are in raw mode, return this event as an EOF token. Let the caller 1242 // that put us in raw mode handle the event. 1243 if (isLexingRawMode()) { 1244 Result.startToken(); 1245 BufferPtr = BufferEnd; 1246 FormTokenWithChars(Result, BufferEnd, tok::eof); 1247 return true; 1248 } 1249 1250 // Otherwise, issue diagnostics for unterminated #if and missing newline. 1251 1252 // If we are in a #if directive, emit an error. 1253 while (!ConditionalStack.empty()) { 1254 PP->Diag(ConditionalStack.back().IfLoc, 1255 diag::err_pp_unterminated_conditional); 1256 ConditionalStack.pop_back(); 1257 } 1258 1259 // C99 5.1.1.2p2: If the file is non-empty and didn't end in a newline, issue 1260 // a pedwarn. 1261 if (CurPtr != BufferStart && (CurPtr[-1] != '\n' && CurPtr[-1] != '\r')) 1262 Diag(BufferEnd, diag::ext_no_newline_eof) 1263 << CodeModificationHint::CreateInsertion(getSourceLocation(BufferEnd), 1264 "\n"); 1265 1266 BufferPtr = CurPtr; 1267 1268 // Finally, let the preprocessor handle this. 1269 return PP->HandleEndOfFile(Result); 1270 } 1271 1272 /// isNextPPTokenLParen - Return 1 if the next unexpanded token lexed from 1273 /// the specified lexer will return a tok::l_paren token, 0 if it is something 1274 /// else and 2 if there are no more tokens in the buffer controlled by the 1275 /// lexer. 1276 unsigned Lexer::isNextPPTokenLParen() { 1277 assert(!LexingRawMode && "How can we expand a macro from a skipping buffer?"); 1278 1279 // Switch to 'skipping' mode. This will ensure that we can lex a token 1280 // without emitting diagnostics, disables macro expansion, and will cause EOF 1281 // to return an EOF token instead of popping the include stack. 1282 LexingRawMode = true; 1283 1284 // Save state that can be changed while lexing so that we can restore it. 1285 const char *TmpBufferPtr = BufferPtr; 1286 bool inPPDirectiveMode = ParsingPreprocessorDirective; 1287 1288 Token Tok; 1289 Tok.startToken(); 1290 LexTokenInternal(Tok); 1291 1292 // Restore state that may have changed. 1293 BufferPtr = TmpBufferPtr; 1294 ParsingPreprocessorDirective = inPPDirectiveMode; 1295 1296 // Restore the lexer back to non-skipping mode. 1297 LexingRawMode = false; 1298 1299 if (Tok.is(tok::eof)) 1300 return 2; 1301 return Tok.is(tok::l_paren); 1302 } 1303 1304 1305 /// LexTokenInternal - This implements a simple C family lexer. It is an 1306 /// extremely performance critical piece of code. This assumes that the buffer 1307 /// has a null character at the end of the file. Return true if an error 1308 /// occurred and compilation should terminate, false if normal. This returns a 1309 /// preprocessing token, not a normal token, as such, it is an internal 1310 /// interface. It assumes that the Flags of result have been cleared before 1311 /// calling this. 1312 void Lexer::LexTokenInternal(Token &Result) { 1313 LexNextToken: 1314 // New token, can't need cleaning yet. 1315 Result.clearFlag(Token::NeedsCleaning); 1316 Result.setIdentifierInfo(0); 1317 1318 // CurPtr - Cache BufferPtr in an automatic variable. 1319 const char *CurPtr = BufferPtr; 1320 1321 // Small amounts of horizontal whitespace is very common between tokens. 1322 if ((*CurPtr == ' ') || (*CurPtr == '\t')) { 1323 ++CurPtr; 1324 while ((*CurPtr == ' ') || (*CurPtr == '\t')) 1325 ++CurPtr; 1326 1327 // If we are keeping whitespace and other tokens, just return what we just 1328 // skipped. The next lexer invocation will return the token after the 1329 // whitespace. 1330 if (isKeepWhitespaceMode()) { 1331 FormTokenWithChars(Result, CurPtr, tok::unknown); 1332 return; 1333 } 1334 1335 BufferPtr = CurPtr; 1336 Result.setFlag(Token::LeadingSpace); 1337 } 1338 1339 unsigned SizeTmp, SizeTmp2; // Temporaries for use in cases below. 1340 1341 // Read a character, advancing over it. 1342 char Char = getAndAdvanceChar(CurPtr, Result); 1343 tok::TokenKind Kind; 1344 1345 switch (Char) { 1346 case 0: // Null. 1347 // Found end of file? 1348 if (CurPtr-1 == BufferEnd) { 1349 // Read the PP instance variable into an automatic variable, because 1350 // LexEndOfFile will often delete 'this'. 1351 Preprocessor *PPCache = PP; 1352 if (LexEndOfFile(Result, CurPtr-1)) // Retreat back into the file. 1353 return; // Got a token to return. 1354 assert(PPCache && "Raw buffer::LexEndOfFile should return a token"); 1355 return PPCache->Lex(Result); 1356 } 1357 1358 if (!isLexingRawMode()) 1359 Diag(CurPtr-1, diag::null_in_file); 1360 Result.setFlag(Token::LeadingSpace); 1361 if (SkipWhitespace(Result, CurPtr)) 1362 return; // KeepWhitespaceMode 1363 1364 goto LexNextToken; // GCC isn't tail call eliminating. 1365 case '\n': 1366 case '\r': 1367 // If we are inside a preprocessor directive and we see the end of line, 1368 // we know we are done with the directive, so return an EOM token. 1369 if (ParsingPreprocessorDirective) { 1370 // Done parsing the "line". 1371 ParsingPreprocessorDirective = false; 1372 1373 // Restore comment saving mode, in case it was disabled for directive. 1374 SetCommentRetentionState(PP->getCommentRetentionState()); 1375 1376 // Since we consumed a newline, we are back at the start of a line. 1377 IsAtStartOfLine = true; 1378 1379 Kind = tok::eom; 1380 break; 1381 } 1382 // The returned token is at the start of the line. 1383 Result.setFlag(Token::StartOfLine); 1384 // No leading whitespace seen so far. 1385 Result.clearFlag(Token::LeadingSpace); 1386 1387 if (SkipWhitespace(Result, CurPtr)) 1388 return; // KeepWhitespaceMode 1389 goto LexNextToken; // GCC isn't tail call eliminating. 1390 case ' ': 1391 case '\t': 1392 case '\f': 1393 case '\v': 1394 SkipHorizontalWhitespace: 1395 Result.setFlag(Token::LeadingSpace); 1396 if (SkipWhitespace(Result, CurPtr)) 1397 return; // KeepWhitespaceMode 1398 1399 SkipIgnoredUnits: 1400 CurPtr = BufferPtr; 1401 1402 // If the next token is obviously a // or /* */ comment, skip it efficiently 1403 // too (without going through the big switch stmt). 1404 if (CurPtr[0] == '/' && CurPtr[1] == '/' && !inKeepCommentMode() && 1405 Features.BCPLComment) { 1406 SkipBCPLComment(Result, CurPtr+2); 1407 goto SkipIgnoredUnits; 1408 } else if (CurPtr[0] == '/' && CurPtr[1] == '*' && !inKeepCommentMode()) { 1409 SkipBlockComment(Result, CurPtr+2); 1410 goto SkipIgnoredUnits; 1411 } else if (isHorizontalWhitespace(*CurPtr)) { 1412 goto SkipHorizontalWhitespace; 1413 } 1414 goto LexNextToken; // GCC isn't tail call eliminating. 1415 1416 // C99 6.4.4.1: Integer Constants. 1417 // C99 6.4.4.2: Floating Constants. 1418 case '0': case '1': case '2': case '3': case '4': 1419 case '5': case '6': case '7': case '8': case '9': 1420 // Notify MIOpt that we read a non-whitespace/non-comment token. 1421 MIOpt.ReadToken(); 1422 return LexNumericConstant(Result, CurPtr); 1423 1424 case 'L': // Identifier (Loony) or wide literal (L'x' or L"xyz"). 1425 // Notify MIOpt that we read a non-whitespace/non-comment token. 1426 MIOpt.ReadToken(); 1427 Char = getCharAndSize(CurPtr, SizeTmp); 1428 1429 // Wide string literal. 1430 if (Char == '"') 1431 return LexStringLiteral(Result, ConsumeChar(CurPtr, SizeTmp, Result), 1432 true); 1433 1434 // Wide character constant. 1435 if (Char == '\'') 1436 return LexCharConstant(Result, ConsumeChar(CurPtr, SizeTmp, Result)); 1437 // FALL THROUGH, treating L like the start of an identifier. 1438 1439 // C99 6.4.2: Identifiers. 1440 case 'A': case 'B': case 'C': case 'D': case 'E': case 'F': case 'G': 1441 case 'H': case 'I': case 'J': case 'K': /*'L'*/case 'M': case 'N': 1442 case 'O': case 'P': case 'Q': case 'R': case 'S': case 'T': case 'U': 1443 case 'V': case 'W': case 'X': case 'Y': case 'Z': 1444 case 'a': case 'b': case 'c': case 'd': case 'e': case 'f': case 'g': 1445 case 'h': case 'i': case 'j': case 'k': case 'l': case 'm': case 'n': 1446 case 'o': case 'p': case 'q': case 'r': case 's': case 't': case 'u': 1447 case 'v': case 'w': case 'x': case 'y': case 'z': 1448 case '_': 1449 // Notify MIOpt that we read a non-whitespace/non-comment token. 1450 MIOpt.ReadToken(); 1451 return LexIdentifier(Result, CurPtr); 1452 1453 case '$': // $ in identifiers. 1454 if (Features.DollarIdents) { 1455 if (!isLexingRawMode()) 1456 Diag(CurPtr-1, diag::ext_dollar_in_identifier); 1457 // Notify MIOpt that we read a non-whitespace/non-comment token. 1458 MIOpt.ReadToken(); 1459 return LexIdentifier(Result, CurPtr); 1460 } 1461 1462 Kind = tok::unknown; 1463 break; 1464 1465 // C99 6.4.4: Character Constants. 1466 case '\'': 1467 // Notify MIOpt that we read a non-whitespace/non-comment token. 1468 MIOpt.ReadToken(); 1469 return LexCharConstant(Result, CurPtr); 1470 1471 // C99 6.4.5: String Literals. 1472 case '"': 1473 // Notify MIOpt that we read a non-whitespace/non-comment token. 1474 MIOpt.ReadToken(); 1475 return LexStringLiteral(Result, CurPtr, false); 1476 1477 // C99 6.4.6: Punctuators. 1478 case '?': 1479 Kind = tok::question; 1480 break; 1481 case '[': 1482 Kind = tok::l_square; 1483 break; 1484 case ']': 1485 Kind = tok::r_square; 1486 break; 1487 case '(': 1488 Kind = tok::l_paren; 1489 break; 1490 case ')': 1491 Kind = tok::r_paren; 1492 break; 1493 case '{': 1494 Kind = tok::l_brace; 1495 break; 1496 case '}': 1497 Kind = tok::r_brace; 1498 break; 1499 case '.': 1500 Char = getCharAndSize(CurPtr, SizeTmp); 1501 if (Char >= '0' && Char <= '9') { 1502 // Notify MIOpt that we read a non-whitespace/non-comment token. 1503 MIOpt.ReadToken(); 1504 1505 return LexNumericConstant(Result, ConsumeChar(CurPtr, SizeTmp, Result)); 1506 } else if (Features.CPlusPlus && Char == '*') { 1507 Kind = tok::periodstar; 1508 CurPtr += SizeTmp; 1509 } else if (Char == '.' && 1510 getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == '.') { 1511 Kind = tok::ellipsis; 1512 CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result), 1513 SizeTmp2, Result); 1514 } else { 1515 Kind = tok::period; 1516 } 1517 break; 1518 case '&': 1519 Char = getCharAndSize(CurPtr, SizeTmp); 1520 if (Char == '&') { 1521 Kind = tok::ampamp; 1522 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1523 } else if (Char == '=') { 1524 Kind = tok::ampequal; 1525 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1526 } else { 1527 Kind = tok::amp; 1528 } 1529 break; 1530 case '*': 1531 if (getCharAndSize(CurPtr, SizeTmp) == '=') { 1532 Kind = tok::starequal; 1533 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1534 } else { 1535 Kind = tok::star; 1536 } 1537 break; 1538 case '+': 1539 Char = getCharAndSize(CurPtr, SizeTmp); 1540 if (Char == '+') { 1541 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1542 Kind = tok::plusplus; 1543 } else if (Char == '=') { 1544 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1545 Kind = tok::plusequal; 1546 } else { 1547 Kind = tok::plus; 1548 } 1549 break; 1550 case '-': 1551 Char = getCharAndSize(CurPtr, SizeTmp); 1552 if (Char == '-') { // -- 1553 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1554 Kind = tok::minusminus; 1555 } else if (Char == '>' && Features.CPlusPlus && 1556 getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == '*') { // C++ ->* 1557 CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result), 1558 SizeTmp2, Result); 1559 Kind = tok::arrowstar; 1560 } else if (Char == '>') { // -> 1561 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1562 Kind = tok::arrow; 1563 } else if (Char == '=') { // -= 1564 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1565 Kind = tok::minusequal; 1566 } else { 1567 Kind = tok::minus; 1568 } 1569 break; 1570 case '~': 1571 Kind = tok::tilde; 1572 break; 1573 case '!': 1574 if (getCharAndSize(CurPtr, SizeTmp) == '=') { 1575 Kind = tok::exclaimequal; 1576 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1577 } else { 1578 Kind = tok::exclaim; 1579 } 1580 break; 1581 case '/': 1582 // 6.4.9: Comments 1583 Char = getCharAndSize(CurPtr, SizeTmp); 1584 if (Char == '/') { // BCPL comment. 1585 // Even if BCPL comments are disabled (e.g. in C89 mode), we generally 1586 // want to lex this as a comment. There is one problem with this though, 1587 // that in one particular corner case, this can change the behavior of the 1588 // resultant program. For example, In "foo //**/ bar", C89 would lex 1589 // this as "foo / bar" and langauges with BCPL comments would lex it as 1590 // "foo". Check to see if the character after the second slash is a '*'. 1591 // If so, we will lex that as a "/" instead of the start of a comment. 1592 if (Features.BCPLComment || 1593 getCharAndSize(CurPtr+SizeTmp, SizeTmp2) != '*') { 1594 if (SkipBCPLComment(Result, ConsumeChar(CurPtr, SizeTmp, Result))) 1595 return; // KeepCommentMode 1596 1597 // It is common for the tokens immediately after a // comment to be 1598 // whitespace (indentation for the next line). Instead of going through 1599 // the big switch, handle it efficiently now. 1600 goto SkipIgnoredUnits; 1601 } 1602 } 1603 1604 if (Char == '*') { // /**/ comment. 1605 if (SkipBlockComment(Result, ConsumeChar(CurPtr, SizeTmp, Result))) 1606 return; // KeepCommentMode 1607 goto LexNextToken; // GCC isn't tail call eliminating. 1608 } 1609 1610 if (Char == '=') { 1611 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1612 Kind = tok::slashequal; 1613 } else { 1614 Kind = tok::slash; 1615 } 1616 break; 1617 case '%': 1618 Char = getCharAndSize(CurPtr, SizeTmp); 1619 if (Char == '=') { 1620 Kind = tok::percentequal; 1621 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1622 } else if (Features.Digraphs && Char == '>') { 1623 Kind = tok::r_brace; // '%>' -> '}' 1624 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1625 } else if (Features.Digraphs && Char == ':') { 1626 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1627 Char = getCharAndSize(CurPtr, SizeTmp); 1628 if (Char == '%' && getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == ':') { 1629 Kind = tok::hashhash; // '%:%:' -> '##' 1630 CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result), 1631 SizeTmp2, Result); 1632 } else if (Char == '@' && Features.Microsoft) { // %:@ -> #@ -> Charize 1633 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1634 if (!isLexingRawMode()) 1635 Diag(BufferPtr, diag::charize_microsoft_ext); 1636 Kind = tok::hashat; 1637 } else { // '%:' -> '#' 1638 // We parsed a # character. If this occurs at the start of the line, 1639 // it's actually the start of a preprocessing directive. Callback to 1640 // the preprocessor to handle it. 1641 // FIXME: -fpreprocessed mode?? 1642 if (Result.isAtStartOfLine() && !LexingRawMode && !Is_PragmaLexer) { 1643 FormTokenWithChars(Result, CurPtr, tok::hash); 1644 PP->HandleDirective(Result); 1645 1646 // As an optimization, if the preprocessor didn't switch lexers, tail 1647 // recurse. 1648 if (PP->isCurrentLexer(this)) { 1649 // Start a new token. If this is a #include or something, the PP may 1650 // want us starting at the beginning of the line again. If so, set 1651 // the StartOfLine flag. 1652 if (IsAtStartOfLine) { 1653 Result.setFlag(Token::StartOfLine); 1654 IsAtStartOfLine = false; 1655 } 1656 goto LexNextToken; // GCC isn't tail call eliminating. 1657 } 1658 1659 return PP->Lex(Result); 1660 } 1661 1662 Kind = tok::hash; 1663 } 1664 } else { 1665 Kind = tok::percent; 1666 } 1667 break; 1668 case '<': 1669 Char = getCharAndSize(CurPtr, SizeTmp); 1670 if (ParsingFilename) { 1671 return LexAngledStringLiteral(Result, CurPtr); 1672 } else if (Char == '<' && 1673 getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == '=') { 1674 Kind = tok::lesslessequal; 1675 CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result), 1676 SizeTmp2, Result); 1677 } else if (Char == '<') { 1678 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1679 Kind = tok::lessless; 1680 } else if (Char == '=') { 1681 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1682 Kind = tok::lessequal; 1683 } else if (Features.Digraphs && Char == ':') { // '<:' -> '[' 1684 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1685 Kind = tok::l_square; 1686 } else if (Features.Digraphs && Char == '%') { // '<%' -> '{' 1687 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1688 Kind = tok::l_brace; 1689 } else { 1690 Kind = tok::less; 1691 } 1692 break; 1693 case '>': 1694 Char = getCharAndSize(CurPtr, SizeTmp); 1695 if (Char == '=') { 1696 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1697 Kind = tok::greaterequal; 1698 } else if (Char == '>' && 1699 getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == '=') { 1700 CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result), 1701 SizeTmp2, Result); 1702 Kind = tok::greatergreaterequal; 1703 } else if (Char == '>') { 1704 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1705 Kind = tok::greatergreater; 1706 } else { 1707 Kind = tok::greater; 1708 } 1709 break; 1710 case '^': 1711 Char = getCharAndSize(CurPtr, SizeTmp); 1712 if (Char == '=') { 1713 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1714 Kind = tok::caretequal; 1715 } else { 1716 Kind = tok::caret; 1717 } 1718 break; 1719 case '|': 1720 Char = getCharAndSize(CurPtr, SizeTmp); 1721 if (Char == '=') { 1722 Kind = tok::pipeequal; 1723 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1724 } else if (Char == '|') { 1725 Kind = tok::pipepipe; 1726 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1727 } else { 1728 Kind = tok::pipe; 1729 } 1730 break; 1731 case ':': 1732 Char = getCharAndSize(CurPtr, SizeTmp); 1733 if (Features.Digraphs && Char == '>') { 1734 Kind = tok::r_square; // ':>' -> ']' 1735 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1736 } else if (Features.CPlusPlus && Char == ':') { 1737 Kind = tok::coloncolon; 1738 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1739 } else { 1740 Kind = tok::colon; 1741 } 1742 break; 1743 case ';': 1744 Kind = tok::semi; 1745 break; 1746 case '=': 1747 Char = getCharAndSize(CurPtr, SizeTmp); 1748 if (Char == '=') { 1749 Kind = tok::equalequal; 1750 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1751 } else { 1752 Kind = tok::equal; 1753 } 1754 break; 1755 case ',': 1756 Kind = tok::comma; 1757 break; 1758 case '#': 1759 Char = getCharAndSize(CurPtr, SizeTmp); 1760 if (Char == '#') { 1761 Kind = tok::hashhash; 1762 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1763 } else if (Char == '@' && Features.Microsoft) { // #@ -> Charize 1764 Kind = tok::hashat; 1765 if (!isLexingRawMode()) 1766 Diag(BufferPtr, diag::charize_microsoft_ext); 1767 CurPtr = ConsumeChar(CurPtr, SizeTmp, Result); 1768 } else { 1769 // We parsed a # character. If this occurs at the start of the line, 1770 // it's actually the start of a preprocessing directive. Callback to 1771 // the preprocessor to handle it. 1772 // FIXME: -fpreprocessed mode?? 1773 if (Result.isAtStartOfLine() && !LexingRawMode && !Is_PragmaLexer) { 1774 FormTokenWithChars(Result, CurPtr, tok::hash); 1775 PP->HandleDirective(Result); 1776 1777 // As an optimization, if the preprocessor didn't switch lexers, tail 1778 // recurse. 1779 if (PP->isCurrentLexer(this)) { 1780 // Start a new token. If this is a #include or something, the PP may 1781 // want us starting at the beginning of the line again. If so, set 1782 // the StartOfLine flag. 1783 if (IsAtStartOfLine) { 1784 Result.setFlag(Token::StartOfLine); 1785 IsAtStartOfLine = false; 1786 } 1787 goto LexNextToken; // GCC isn't tail call eliminating. 1788 } 1789 return PP->Lex(Result); 1790 } 1791 1792 Kind = tok::hash; 1793 } 1794 break; 1795 1796 case '@': 1797 // Objective C support. 1798 if (CurPtr[-1] == '@' && Features.ObjC1) 1799 Kind = tok::at; 1800 else 1801 Kind = tok::unknown; 1802 break; 1803 1804 case '\\': 1805 // FIXME: UCN's. 1806 // FALL THROUGH. 1807 default: 1808 Kind = tok::unknown; 1809 break; 1810 } 1811 1812 // Notify MIOpt that we read a non-whitespace/non-comment token. 1813 MIOpt.ReadToken(); 1814 1815 // Update the location of token as well as BufferPtr. 1816 FormTokenWithChars(Result, CurPtr, Kind); 1817 } 1818