xref: /llvm-project-15.0.7/clang/lib/Lex/Lexer.cpp (revision adf23a40)
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/Lex/CodeCompletionHandler.h"
31 #include "clang/Basic/SourceManager.h"
32 #include "llvm/ADT/StringSwitch.h"
33 #include "llvm/Support/Compiler.h"
34 #include "llvm/Support/MemoryBuffer.h"
35 #include <cstring>
36 using namespace clang;
37 
38 static void InitCharacterInfo();
39 
40 //===----------------------------------------------------------------------===//
41 // Token Class Implementation
42 //===----------------------------------------------------------------------===//
43 
44 /// isObjCAtKeyword - Return true if we have an ObjC keyword identifier.
45 bool Token::isObjCAtKeyword(tok::ObjCKeywordKind objcKey) const {
46   if (IdentifierInfo *II = getIdentifierInfo())
47     return II->getObjCKeywordID() == objcKey;
48   return false;
49 }
50 
51 /// getObjCKeywordID - Return the ObjC keyword kind.
52 tok::ObjCKeywordKind Token::getObjCKeywordID() const {
53   IdentifierInfo *specId = getIdentifierInfo();
54   return specId ? specId->getObjCKeywordID() : tok::objc_not_keyword;
55 }
56 
57 
58 //===----------------------------------------------------------------------===//
59 // Lexer Class Implementation
60 //===----------------------------------------------------------------------===//
61 
62 void Lexer::InitLexer(const char *BufStart, const char *BufPtr,
63                       const char *BufEnd) {
64   InitCharacterInfo();
65 
66   BufferStart = BufStart;
67   BufferPtr = BufPtr;
68   BufferEnd = BufEnd;
69 
70   assert(BufEnd[0] == 0 &&
71          "We assume that the input buffer has a null character at the end"
72          " to simplify lexing!");
73 
74   // Check whether we have a BOM in the beginning of the buffer. If yes - act
75   // accordingly. Right now we support only UTF-8 with and without BOM, so, just
76   // skip the UTF-8 BOM if it's present.
77   if (BufferStart == BufferPtr) {
78     // Determine the size of the BOM.
79     StringRef Buf(BufferStart, BufferEnd - BufferStart);
80     size_t BOMLength = llvm::StringSwitch<size_t>(Buf)
81       .StartsWith("\xEF\xBB\xBF", 3) // UTF-8 BOM
82       .Default(0);
83 
84     // Skip the BOM.
85     BufferPtr += BOMLength;
86   }
87 
88   Is_PragmaLexer = false;
89   IsInConflictMarker = false;
90 
91   // Start of the file is a start of line.
92   IsAtStartOfLine = true;
93 
94   // We are not after parsing a #.
95   ParsingPreprocessorDirective = false;
96 
97   // We are not after parsing #include.
98   ParsingFilename = false;
99 
100   // We are not in raw mode.  Raw mode disables diagnostics and interpretation
101   // of tokens (e.g. identifiers, thus disabling macro expansion).  It is used
102   // to quickly lex the tokens of the buffer, e.g. when handling a "#if 0" block
103   // or otherwise skipping over tokens.
104   LexingRawMode = false;
105 
106   // Default to not keeping comments.
107   ExtendedTokenMode = 0;
108 }
109 
110 /// Lexer constructor - Create a new lexer object for the specified buffer
111 /// with the specified preprocessor managing the lexing process.  This lexer
112 /// assumes that the associated file buffer and Preprocessor objects will
113 /// outlive it, so it doesn't take ownership of either of them.
114 Lexer::Lexer(FileID FID, const llvm::MemoryBuffer *InputFile, Preprocessor &PP)
115   : PreprocessorLexer(&PP, FID),
116     FileLoc(PP.getSourceManager().getLocForStartOfFile(FID)),
117     Features(PP.getLangOptions()) {
118 
119   InitLexer(InputFile->getBufferStart(), InputFile->getBufferStart(),
120             InputFile->getBufferEnd());
121 
122   // Default to keeping comments if the preprocessor wants them.
123   SetCommentRetentionState(PP.getCommentRetentionState());
124 }
125 
126 /// Lexer constructor - Create a new raw lexer object.  This object is only
127 /// suitable for calls to 'LexRawToken'.  This lexer assumes that the text
128 /// range will outlive it, so it doesn't take ownership of it.
129 Lexer::Lexer(SourceLocation fileloc, const LangOptions &features,
130              const char *BufStart, const char *BufPtr, const char *BufEnd)
131   : FileLoc(fileloc), Features(features) {
132 
133   InitLexer(BufStart, BufPtr, BufEnd);
134 
135   // We *are* in raw mode.
136   LexingRawMode = true;
137 }
138 
139 /// Lexer constructor - Create a new raw lexer object.  This object is only
140 /// suitable for calls to 'LexRawToken'.  This lexer assumes that the text
141 /// range will outlive it, so it doesn't take ownership of it.
142 Lexer::Lexer(FileID FID, const llvm::MemoryBuffer *FromFile,
143              const SourceManager &SM, const LangOptions &features)
144   : FileLoc(SM.getLocForStartOfFile(FID)), Features(features) {
145 
146   InitLexer(FromFile->getBufferStart(), FromFile->getBufferStart(),
147             FromFile->getBufferEnd());
148 
149   // We *are* in raw mode.
150   LexingRawMode = true;
151 }
152 
153 /// Create_PragmaLexer: Lexer constructor - Create a new lexer object for
154 /// _Pragma expansion.  This has a variety of magic semantics that this method
155 /// sets up.  It returns a new'd Lexer that must be delete'd when done.
156 ///
157 /// On entrance to this routine, TokStartLoc is a macro location which has a
158 /// spelling loc that indicates the bytes to be lexed for the token and an
159 /// expansion location that indicates where all lexed tokens should be
160 /// "expanded from".
161 ///
162 /// FIXME: It would really be nice to make _Pragma just be a wrapper around a
163 /// normal lexer that remaps tokens as they fly by.  This would require making
164 /// Preprocessor::Lex virtual.  Given that, we could just dump in a magic lexer
165 /// interface that could handle this stuff.  This would pull GetMappedTokenLoc
166 /// out of the critical path of the lexer!
167 ///
168 Lexer *Lexer::Create_PragmaLexer(SourceLocation SpellingLoc,
169                                  SourceLocation ExpansionLocStart,
170                                  SourceLocation ExpansionLocEnd,
171                                  unsigned TokLen, Preprocessor &PP) {
172   SourceManager &SM = PP.getSourceManager();
173 
174   // Create the lexer as if we were going to lex the file normally.
175   FileID SpellingFID = SM.getFileID(SpellingLoc);
176   const llvm::MemoryBuffer *InputFile = SM.getBuffer(SpellingFID);
177   Lexer *L = new Lexer(SpellingFID, InputFile, PP);
178 
179   // Now that the lexer is created, change the start/end locations so that we
180   // just lex the subsection of the file that we want.  This is lexing from a
181   // scratch buffer.
182   const char *StrData = SM.getCharacterData(SpellingLoc);
183 
184   L->BufferPtr = StrData;
185   L->BufferEnd = StrData+TokLen;
186   assert(L->BufferEnd[0] == 0 && "Buffer is not nul terminated!");
187 
188   // Set the SourceLocation with the remapping information.  This ensures that
189   // GetMappedTokenLoc will remap the tokens as they are lexed.
190   L->FileLoc = SM.createExpansionLoc(SM.getLocForStartOfFile(SpellingFID),
191                                      ExpansionLocStart,
192                                      ExpansionLocEnd, TokLen);
193 
194   // Ensure that the lexer thinks it is inside a directive, so that end \n will
195   // return an EOD token.
196   L->ParsingPreprocessorDirective = true;
197 
198   // This lexer really is for _Pragma.
199   L->Is_PragmaLexer = true;
200   return L;
201 }
202 
203 
204 /// Stringify - Convert the specified string into a C string, with surrounding
205 /// ""'s, and with escaped \ and " characters.
206 std::string Lexer::Stringify(const std::string &Str, bool Charify) {
207   std::string Result = Str;
208   char Quote = Charify ? '\'' : '"';
209   for (unsigned i = 0, e = Result.size(); i != e; ++i) {
210     if (Result[i] == '\\' || Result[i] == Quote) {
211       Result.insert(Result.begin()+i, '\\');
212       ++i; ++e;
213     }
214   }
215   return Result;
216 }
217 
218 /// Stringify - Convert the specified string into a C string by escaping '\'
219 /// and " characters.  This does not add surrounding ""'s to the string.
220 void Lexer::Stringify(SmallVectorImpl<char> &Str) {
221   for (unsigned i = 0, e = Str.size(); i != e; ++i) {
222     if (Str[i] == '\\' || Str[i] == '"') {
223       Str.insert(Str.begin()+i, '\\');
224       ++i; ++e;
225     }
226   }
227 }
228 
229 //===----------------------------------------------------------------------===//
230 // Token Spelling
231 //===----------------------------------------------------------------------===//
232 
233 /// getSpelling() - Return the 'spelling' of this token.  The spelling of a
234 /// token are the characters used to represent the token in the source file
235 /// after trigraph expansion and escaped-newline folding.  In particular, this
236 /// wants to get the true, uncanonicalized, spelling of things like digraphs
237 /// UCNs, etc.
238 StringRef Lexer::getSpelling(SourceLocation loc,
239                                    SmallVectorImpl<char> &buffer,
240                                    const SourceManager &SM,
241                                    const LangOptions &options,
242                                    bool *invalid) {
243   // Break down the source location.
244   std::pair<FileID, unsigned> locInfo = SM.getDecomposedLoc(loc);
245 
246   // Try to the load the file buffer.
247   bool invalidTemp = false;
248   StringRef file = SM.getBufferData(locInfo.first, &invalidTemp);
249   if (invalidTemp) {
250     if (invalid) *invalid = true;
251     return StringRef();
252   }
253 
254   const char *tokenBegin = file.data() + locInfo.second;
255 
256   // Lex from the start of the given location.
257   Lexer lexer(SM.getLocForStartOfFile(locInfo.first), options,
258               file.begin(), tokenBegin, file.end());
259   Token token;
260   lexer.LexFromRawLexer(token);
261 
262   unsigned length = token.getLength();
263 
264   // Common case:  no need for cleaning.
265   if (!token.needsCleaning())
266     return StringRef(tokenBegin, length);
267 
268   // Hard case, we need to relex the characters into the string.
269   buffer.clear();
270   buffer.reserve(length);
271 
272   for (const char *ti = tokenBegin, *te = ti + length; ti != te; ) {
273     unsigned charSize;
274     buffer.push_back(Lexer::getCharAndSizeNoWarn(ti, charSize, options));
275     ti += charSize;
276   }
277 
278   return StringRef(buffer.data(), buffer.size());
279 }
280 
281 /// getSpelling() - Return the 'spelling' of this token.  The spelling of a
282 /// token are the characters used to represent the token in the source file
283 /// after trigraph expansion and escaped-newline folding.  In particular, this
284 /// wants to get the true, uncanonicalized, spelling of things like digraphs
285 /// UCNs, etc.
286 std::string Lexer::getSpelling(const Token &Tok, const SourceManager &SourceMgr,
287                                const LangOptions &Features, bool *Invalid) {
288   assert((int)Tok.getLength() >= 0 && "Token character range is bogus!");
289 
290   // If this token contains nothing interesting, return it directly.
291   bool CharDataInvalid = false;
292   const char* TokStart = SourceMgr.getCharacterData(Tok.getLocation(),
293                                                     &CharDataInvalid);
294   if (Invalid)
295     *Invalid = CharDataInvalid;
296   if (CharDataInvalid)
297     return std::string();
298 
299   if (!Tok.needsCleaning())
300     return std::string(TokStart, TokStart+Tok.getLength());
301 
302   std::string Result;
303   Result.reserve(Tok.getLength());
304 
305   // Otherwise, hard case, relex the characters into the string.
306   for (const char *Ptr = TokStart, *End = TokStart+Tok.getLength();
307        Ptr != End; ) {
308     unsigned CharSize;
309     Result.push_back(Lexer::getCharAndSizeNoWarn(Ptr, CharSize, Features));
310     Ptr += CharSize;
311   }
312   assert(Result.size() != unsigned(Tok.getLength()) &&
313          "NeedsCleaning flag set on something that didn't need cleaning!");
314   return Result;
315 }
316 
317 /// getSpelling - This method is used to get the spelling of a token into a
318 /// preallocated buffer, instead of as an std::string.  The caller is required
319 /// to allocate enough space for the token, which is guaranteed to be at least
320 /// Tok.getLength() bytes long.  The actual length of the token is returned.
321 ///
322 /// Note that this method may do two possible things: it may either fill in
323 /// the buffer specified with characters, or it may *change the input pointer*
324 /// to point to a constant buffer with the data already in it (avoiding a
325 /// copy).  The caller is not allowed to modify the returned buffer pointer
326 /// if an internal buffer is returned.
327 unsigned Lexer::getSpelling(const Token &Tok, const char *&Buffer,
328                             const SourceManager &SourceMgr,
329                             const LangOptions &Features, bool *Invalid) {
330   assert((int)Tok.getLength() >= 0 && "Token character range is bogus!");
331 
332   const char *TokStart = 0;
333   // NOTE: this has to be checked *before* testing for an IdentifierInfo.
334   if (Tok.is(tok::raw_identifier))
335     TokStart = Tok.getRawIdentifierData();
336   else if (const IdentifierInfo *II = Tok.getIdentifierInfo()) {
337     // Just return the string from the identifier table, which is very quick.
338     Buffer = II->getNameStart();
339     return II->getLength();
340   }
341 
342   // NOTE: this can be checked even after testing for an IdentifierInfo.
343   if (Tok.isLiteral())
344     TokStart = Tok.getLiteralData();
345 
346   if (TokStart == 0) {
347     // Compute the start of the token in the input lexer buffer.
348     bool CharDataInvalid = false;
349     TokStart = SourceMgr.getCharacterData(Tok.getLocation(), &CharDataInvalid);
350     if (Invalid)
351       *Invalid = CharDataInvalid;
352     if (CharDataInvalid) {
353       Buffer = "";
354       return 0;
355     }
356   }
357 
358   // If this token contains nothing interesting, return it directly.
359   if (!Tok.needsCleaning()) {
360     Buffer = TokStart;
361     return Tok.getLength();
362   }
363 
364   // Otherwise, hard case, relex the characters into the string.
365   char *OutBuf = const_cast<char*>(Buffer);
366   for (const char *Ptr = TokStart, *End = TokStart+Tok.getLength();
367        Ptr != End; ) {
368     unsigned CharSize;
369     *OutBuf++ = Lexer::getCharAndSizeNoWarn(Ptr, CharSize, Features);
370     Ptr += CharSize;
371   }
372   assert(unsigned(OutBuf-Buffer) != Tok.getLength() &&
373          "NeedsCleaning flag set on something that didn't need cleaning!");
374 
375   return OutBuf-Buffer;
376 }
377 
378 
379 
380 static bool isWhitespace(unsigned char c);
381 
382 /// MeasureTokenLength - Relex the token at the specified location and return
383 /// its length in bytes in the input file.  If the token needs cleaning (e.g.
384 /// includes a trigraph or an escaped newline) then this count includes bytes
385 /// that are part of that.
386 unsigned Lexer::MeasureTokenLength(SourceLocation Loc,
387                                    const SourceManager &SM,
388                                    const LangOptions &LangOpts) {
389   // TODO: this could be special cased for common tokens like identifiers, ')',
390   // etc to make this faster, if it mattered.  Just look at StrData[0] to handle
391   // all obviously single-char tokens.  This could use
392   // Lexer::isObviouslySimpleCharacter for example to handle identifiers or
393   // something.
394 
395   // If this comes from a macro expansion, we really do want the macro name, not
396   // the token this macro expanded to.
397   Loc = SM.getExpansionLoc(Loc);
398   std::pair<FileID, unsigned> LocInfo = SM.getDecomposedLoc(Loc);
399   bool Invalid = false;
400   StringRef Buffer = SM.getBufferData(LocInfo.first, &Invalid);
401   if (Invalid)
402     return 0;
403 
404   const char *StrData = Buffer.data()+LocInfo.second;
405 
406   if (isWhitespace(StrData[0]))
407     return 0;
408 
409   // Create a lexer starting at the beginning of this token.
410   Lexer TheLexer(SM.getLocForStartOfFile(LocInfo.first), LangOpts,
411                  Buffer.begin(), StrData, Buffer.end());
412   TheLexer.SetCommentRetentionState(true);
413   Token TheTok;
414   TheLexer.LexFromRawLexer(TheTok);
415   return TheTok.getLength();
416 }
417 
418 static SourceLocation getBeginningOfFileToken(SourceLocation Loc,
419                                               const SourceManager &SM,
420                                               const LangOptions &LangOpts) {
421   assert(Loc.isFileID());
422   std::pair<FileID, unsigned> LocInfo = SM.getDecomposedLoc(Loc);
423   if (LocInfo.first.isInvalid())
424     return Loc;
425 
426   bool Invalid = false;
427   StringRef Buffer = SM.getBufferData(LocInfo.first, &Invalid);
428   if (Invalid)
429     return Loc;
430 
431   // Back up from the current location until we hit the beginning of a line
432   // (or the buffer). We'll relex from that point.
433   const char *BufStart = Buffer.data();
434   if (LocInfo.second >= Buffer.size())
435     return Loc;
436 
437   const char *StrData = BufStart+LocInfo.second;
438   if (StrData[0] == '\n' || StrData[0] == '\r')
439     return Loc;
440 
441   const char *LexStart = StrData;
442   while (LexStart != BufStart) {
443     if (LexStart[0] == '\n' || LexStart[0] == '\r') {
444       ++LexStart;
445       break;
446     }
447 
448     --LexStart;
449   }
450 
451   // Create a lexer starting at the beginning of this token.
452   SourceLocation LexerStartLoc = Loc.getLocWithOffset(-LocInfo.second);
453   Lexer TheLexer(LexerStartLoc, LangOpts, BufStart, LexStart, Buffer.end());
454   TheLexer.SetCommentRetentionState(true);
455 
456   // Lex tokens until we find the token that contains the source location.
457   Token TheTok;
458   do {
459     TheLexer.LexFromRawLexer(TheTok);
460 
461     if (TheLexer.getBufferLocation() > StrData) {
462       // Lexing this token has taken the lexer past the source location we're
463       // looking for. If the current token encompasses our source location,
464       // return the beginning of that token.
465       if (TheLexer.getBufferLocation() - TheTok.getLength() <= StrData)
466         return TheTok.getLocation();
467 
468       // We ended up skipping over the source location entirely, which means
469       // that it points into whitespace. We're done here.
470       break;
471     }
472   } while (TheTok.getKind() != tok::eof);
473 
474   // We've passed our source location; just return the original source location.
475   return Loc;
476 }
477 
478 SourceLocation Lexer::GetBeginningOfToken(SourceLocation Loc,
479                                           const SourceManager &SM,
480                                           const LangOptions &LangOpts) {
481  if (Loc.isFileID())
482    return getBeginningOfFileToken(Loc, SM, LangOpts);
483 
484  if (!SM.isMacroArgExpansion(Loc))
485    return Loc;
486 
487  SourceLocation FileLoc = SM.getSpellingLoc(Loc);
488  SourceLocation BeginFileLoc = getBeginningOfFileToken(FileLoc, SM, LangOpts);
489  std::pair<FileID, unsigned> FileLocInfo = SM.getDecomposedLoc(FileLoc);
490  std::pair<FileID, unsigned> BeginFileLocInfo= SM.getDecomposedLoc(BeginFileLoc);
491  assert(FileLocInfo.first == BeginFileLocInfo.first &&
492         FileLocInfo.second >= BeginFileLocInfo.second);
493  return Loc.getLocWithOffset(SM.getDecomposedLoc(BeginFileLoc).second -
494                                  SM.getDecomposedLoc(FileLoc).second);
495 }
496 
497 namespace {
498   enum PreambleDirectiveKind {
499     PDK_Skipped,
500     PDK_StartIf,
501     PDK_EndIf,
502     PDK_Unknown
503   };
504 }
505 
506 std::pair<unsigned, bool>
507 Lexer::ComputePreamble(const llvm::MemoryBuffer *Buffer,
508                        const LangOptions &Features, unsigned MaxLines) {
509   // Create a lexer starting at the beginning of the file. Note that we use a
510   // "fake" file source location at offset 1 so that the lexer will track our
511   // position within the file.
512   const unsigned StartOffset = 1;
513   SourceLocation StartLoc = SourceLocation::getFromRawEncoding(StartOffset);
514   Lexer TheLexer(StartLoc, Features, Buffer->getBufferStart(),
515                  Buffer->getBufferStart(), Buffer->getBufferEnd());
516 
517   bool InPreprocessorDirective = false;
518   Token TheTok;
519   Token IfStartTok;
520   unsigned IfCount = 0;
521 
522   unsigned MaxLineOffset = 0;
523   if (MaxLines) {
524     const char *CurPtr = Buffer->getBufferStart();
525     unsigned CurLine = 0;
526     while (CurPtr != Buffer->getBufferEnd()) {
527       char ch = *CurPtr++;
528       if (ch == '\n') {
529         ++CurLine;
530         if (CurLine == MaxLines)
531           break;
532       }
533     }
534     if (CurPtr != Buffer->getBufferEnd())
535       MaxLineOffset = CurPtr - Buffer->getBufferStart();
536   }
537 
538   do {
539     TheLexer.LexFromRawLexer(TheTok);
540 
541     if (InPreprocessorDirective) {
542       // If we've hit the end of the file, we're done.
543       if (TheTok.getKind() == tok::eof) {
544         InPreprocessorDirective = false;
545         break;
546       }
547 
548       // If we haven't hit the end of the preprocessor directive, skip this
549       // token.
550       if (!TheTok.isAtStartOfLine())
551         continue;
552 
553       // We've passed the end of the preprocessor directive, and will look
554       // at this token again below.
555       InPreprocessorDirective = false;
556     }
557 
558     // Keep track of the # of lines in the preamble.
559     if (TheTok.isAtStartOfLine()) {
560       unsigned TokOffset = TheTok.getLocation().getRawEncoding() - StartOffset;
561 
562       // If we were asked to limit the number of lines in the preamble,
563       // and we're about to exceed that limit, we're done.
564       if (MaxLineOffset && TokOffset >= MaxLineOffset)
565         break;
566     }
567 
568     // Comments are okay; skip over them.
569     if (TheTok.getKind() == tok::comment)
570       continue;
571 
572     if (TheTok.isAtStartOfLine() && TheTok.getKind() == tok::hash) {
573       // This is the start of a preprocessor directive.
574       Token HashTok = TheTok;
575       InPreprocessorDirective = true;
576 
577       // Figure out which directive this is. Since we're lexing raw tokens,
578       // we don't have an identifier table available. Instead, just look at
579       // the raw identifier to recognize and categorize preprocessor directives.
580       TheLexer.LexFromRawLexer(TheTok);
581       if (TheTok.getKind() == tok::raw_identifier && !TheTok.needsCleaning()) {
582         StringRef Keyword(TheTok.getRawIdentifierData(),
583                                 TheTok.getLength());
584         PreambleDirectiveKind PDK
585           = llvm::StringSwitch<PreambleDirectiveKind>(Keyword)
586               .Case("include", PDK_Skipped)
587               .Case("__include_macros", PDK_Skipped)
588               .Case("define", PDK_Skipped)
589               .Case("undef", PDK_Skipped)
590               .Case("line", PDK_Skipped)
591               .Case("error", PDK_Skipped)
592               .Case("pragma", PDK_Skipped)
593               .Case("import", PDK_Skipped)
594               .Case("include_next", PDK_Skipped)
595               .Case("warning", PDK_Skipped)
596               .Case("ident", PDK_Skipped)
597               .Case("sccs", PDK_Skipped)
598               .Case("assert", PDK_Skipped)
599               .Case("unassert", PDK_Skipped)
600               .Case("if", PDK_StartIf)
601               .Case("ifdef", PDK_StartIf)
602               .Case("ifndef", PDK_StartIf)
603               .Case("elif", PDK_Skipped)
604               .Case("else", PDK_Skipped)
605               .Case("endif", PDK_EndIf)
606               .Default(PDK_Unknown);
607 
608         switch (PDK) {
609         case PDK_Skipped:
610           continue;
611 
612         case PDK_StartIf:
613           if (IfCount == 0)
614             IfStartTok = HashTok;
615 
616           ++IfCount;
617           continue;
618 
619         case PDK_EndIf:
620           // Mismatched #endif. The preamble ends here.
621           if (IfCount == 0)
622             break;
623 
624           --IfCount;
625           continue;
626 
627         case PDK_Unknown:
628           // We don't know what this directive is; stop at the '#'.
629           break;
630         }
631       }
632 
633       // We only end up here if we didn't recognize the preprocessor
634       // directive or it was one that can't occur in the preamble at this
635       // point. Roll back the current token to the location of the '#'.
636       InPreprocessorDirective = false;
637       TheTok = HashTok;
638     }
639 
640     // We hit a token that we don't recognize as being in the
641     // "preprocessing only" part of the file, so we're no longer in
642     // the preamble.
643     break;
644   } while (true);
645 
646   SourceLocation End = IfCount? IfStartTok.getLocation() : TheTok.getLocation();
647   return std::make_pair(End.getRawEncoding() - StartLoc.getRawEncoding(),
648                         IfCount? IfStartTok.isAtStartOfLine()
649                                : TheTok.isAtStartOfLine());
650 }
651 
652 
653 /// AdvanceToTokenCharacter - Given a location that specifies the start of a
654 /// token, return a new location that specifies a character within the token.
655 SourceLocation Lexer::AdvanceToTokenCharacter(SourceLocation TokStart,
656                                               unsigned CharNo,
657                                               const SourceManager &SM,
658                                               const LangOptions &Features) {
659   // Figure out how many physical characters away the specified expansion
660   // character is.  This needs to take into consideration newlines and
661   // trigraphs.
662   bool Invalid = false;
663   const char *TokPtr = SM.getCharacterData(TokStart, &Invalid);
664 
665   // If they request the first char of the token, we're trivially done.
666   if (Invalid || (CharNo == 0 && Lexer::isObviouslySimpleCharacter(*TokPtr)))
667     return TokStart;
668 
669   unsigned PhysOffset = 0;
670 
671   // The usual case is that tokens don't contain anything interesting.  Skip
672   // over the uninteresting characters.  If a token only consists of simple
673   // chars, this method is extremely fast.
674   while (Lexer::isObviouslySimpleCharacter(*TokPtr)) {
675     if (CharNo == 0)
676       return TokStart.getLocWithOffset(PhysOffset);
677     ++TokPtr, --CharNo, ++PhysOffset;
678   }
679 
680   // If we have a character that may be a trigraph or escaped newline, use a
681   // lexer to parse it correctly.
682   for (; CharNo; --CharNo) {
683     unsigned Size;
684     Lexer::getCharAndSizeNoWarn(TokPtr, Size, Features);
685     TokPtr += Size;
686     PhysOffset += Size;
687   }
688 
689   // Final detail: if we end up on an escaped newline, we want to return the
690   // location of the actual byte of the token.  For example foo\<newline>bar
691   // advanced by 3 should return the location of b, not of \\.  One compounding
692   // detail of this is that the escape may be made by a trigraph.
693   if (!Lexer::isObviouslySimpleCharacter(*TokPtr))
694     PhysOffset += Lexer::SkipEscapedNewLines(TokPtr)-TokPtr;
695 
696   return TokStart.getLocWithOffset(PhysOffset);
697 }
698 
699 /// \brief Computes the source location just past the end of the
700 /// token at this source location.
701 ///
702 /// This routine can be used to produce a source location that
703 /// points just past the end of the token referenced by \p Loc, and
704 /// is generally used when a diagnostic needs to point just after a
705 /// token where it expected something different that it received. If
706 /// the returned source location would not be meaningful (e.g., if
707 /// it points into a macro), this routine returns an invalid
708 /// source location.
709 ///
710 /// \param Offset an offset from the end of the token, where the source
711 /// location should refer to. The default offset (0) produces a source
712 /// location pointing just past the end of the token; an offset of 1 produces
713 /// a source location pointing to the last character in the token, etc.
714 SourceLocation Lexer::getLocForEndOfToken(SourceLocation Loc, unsigned Offset,
715                                           const SourceManager &SM,
716                                           const LangOptions &Features) {
717   if (Loc.isInvalid())
718     return SourceLocation();
719 
720   if (Loc.isMacroID()) {
721     if (Offset > 0 || !isAtEndOfMacroExpansion(Loc, SM, Features))
722       return SourceLocation(); // Points inside the macro expansion.
723 
724     // Continue and find the location just after the macro expansion.
725     Loc = SM.getExpansionRange(Loc).second;
726   }
727 
728   unsigned Len = Lexer::MeasureTokenLength(Loc, SM, Features);
729   if (Len > Offset)
730     Len = Len - Offset;
731   else
732     return Loc;
733 
734   return Loc.getLocWithOffset(Len);
735 }
736 
737 /// \brief Returns true if the given MacroID location points at the first
738 /// token of the macro expansion.
739 bool Lexer::isAtStartOfMacroExpansion(SourceLocation loc,
740                                       const SourceManager &SM,
741                                       const LangOptions &LangOpts) {
742   assert(loc.isValid() && loc.isMacroID() && "Expected a valid macro loc");
743 
744   std::pair<FileID, unsigned> infoLoc = SM.getDecomposedLoc(loc);
745   // FIXME: If the token comes from the macro token paste operator ('##')
746   // this function will always return false;
747   if (infoLoc.second > 0)
748     return false; // Does not point at the start of token.
749 
750   SourceLocation expansionLoc =
751     SM.getSLocEntry(infoLoc.first).getExpansion().getExpansionLocStart();
752   if (expansionLoc.isFileID())
753     return true; // No other macro expansions, this is the first.
754 
755   return isAtStartOfMacroExpansion(expansionLoc, SM, LangOpts);
756 }
757 
758 /// \brief Returns true if the given MacroID location points at the last
759 /// token of the macro expansion.
760 bool Lexer::isAtEndOfMacroExpansion(SourceLocation loc,
761                                         const SourceManager &SM,
762                                         const LangOptions &LangOpts) {
763   assert(loc.isValid() && loc.isMacroID() && "Expected a valid macro loc");
764 
765   SourceLocation spellLoc = SM.getSpellingLoc(loc);
766   unsigned tokLen = MeasureTokenLength(spellLoc, SM, LangOpts);
767   if (tokLen == 0)
768     return false;
769 
770   FileID FID = SM.getFileID(loc);
771   SourceLocation afterLoc = loc.getLocWithOffset(tokLen+1);
772   if (SM.isInFileID(afterLoc, FID))
773     return false; // Still in the same FileID, does not point to the last token.
774 
775   // FIXME: If the token comes from the macro token paste operator ('##')
776   // or the stringify operator ('#') this function will always return false;
777 
778   SourceLocation expansionLoc =
779     SM.getSLocEntry(FID).getExpansion().getExpansionLocEnd();
780   if (expansionLoc.isFileID())
781     return true; // No other macro expansions.
782 
783   return isAtEndOfMacroExpansion(expansionLoc, SM, LangOpts);
784 }
785 
786 //===----------------------------------------------------------------------===//
787 // Character information.
788 //===----------------------------------------------------------------------===//
789 
790 enum {
791   CHAR_HORZ_WS  = 0x01,  // ' ', '\t', '\f', '\v'.  Note, no '\0'
792   CHAR_VERT_WS  = 0x02,  // '\r', '\n'
793   CHAR_LETTER   = 0x04,  // a-z,A-Z
794   CHAR_NUMBER   = 0x08,  // 0-9
795   CHAR_UNDER    = 0x10,  // _
796   CHAR_PERIOD   = 0x20,  // .
797   CHAR_RAWDEL   = 0x40   // {}[]#<>%:;?*+-/^&|~!=,"'
798 };
799 
800 // Statically initialize CharInfo table based on ASCII character set
801 // Reference: FreeBSD 7.2 /usr/share/misc/ascii
802 static const unsigned char CharInfo[256] =
803 {
804 // 0 NUL         1 SOH         2 STX         3 ETX
805 // 4 EOT         5 ENQ         6 ACK         7 BEL
806    0           , 0           , 0           , 0           ,
807    0           , 0           , 0           , 0           ,
808 // 8 BS          9 HT         10 NL         11 VT
809 //12 NP         13 CR         14 SO         15 SI
810    0           , CHAR_HORZ_WS, CHAR_VERT_WS, CHAR_HORZ_WS,
811    CHAR_HORZ_WS, CHAR_VERT_WS, 0           , 0           ,
812 //16 DLE        17 DC1        18 DC2        19 DC3
813 //20 DC4        21 NAK        22 SYN        23 ETB
814    0           , 0           , 0           , 0           ,
815    0           , 0           , 0           , 0           ,
816 //24 CAN        25 EM         26 SUB        27 ESC
817 //28 FS         29 GS         30 RS         31 US
818    0           , 0           , 0           , 0           ,
819    0           , 0           , 0           , 0           ,
820 //32 SP         33  !         34  "         35  #
821 //36  $         37  %         38  &         39  '
822    CHAR_HORZ_WS, CHAR_RAWDEL , CHAR_RAWDEL , CHAR_RAWDEL ,
823    0           , CHAR_RAWDEL , CHAR_RAWDEL , CHAR_RAWDEL ,
824 //40  (         41  )         42  *         43  +
825 //44  ,         45  -         46  .         47  /
826    0           , 0           , CHAR_RAWDEL , CHAR_RAWDEL ,
827    CHAR_RAWDEL , CHAR_RAWDEL , CHAR_PERIOD , CHAR_RAWDEL ,
828 //48  0         49  1         50  2         51  3
829 //52  4         53  5         54  6         55  7
830    CHAR_NUMBER , CHAR_NUMBER , CHAR_NUMBER , CHAR_NUMBER ,
831    CHAR_NUMBER , CHAR_NUMBER , CHAR_NUMBER , CHAR_NUMBER ,
832 //56  8         57  9         58  :         59  ;
833 //60  <         61  =         62  >         63  ?
834    CHAR_NUMBER , CHAR_NUMBER , CHAR_RAWDEL , CHAR_RAWDEL ,
835    CHAR_RAWDEL , CHAR_RAWDEL , CHAR_RAWDEL , CHAR_RAWDEL ,
836 //64  @         65  A         66  B         67  C
837 //68  D         69  E         70  F         71  G
838    0           , CHAR_LETTER , CHAR_LETTER , CHAR_LETTER ,
839    CHAR_LETTER , CHAR_LETTER , CHAR_LETTER , CHAR_LETTER ,
840 //72  H         73  I         74  J         75  K
841 //76  L         77  M         78  N         79  O
842    CHAR_LETTER , CHAR_LETTER , CHAR_LETTER , CHAR_LETTER ,
843    CHAR_LETTER , CHAR_LETTER , CHAR_LETTER , CHAR_LETTER ,
844 //80  P         81  Q         82  R         83  S
845 //84  T         85  U         86  V         87  W
846    CHAR_LETTER , CHAR_LETTER , CHAR_LETTER , CHAR_LETTER ,
847    CHAR_LETTER , CHAR_LETTER , CHAR_LETTER , CHAR_LETTER ,
848 //88  X         89  Y         90  Z         91  [
849 //92  \         93  ]         94  ^         95  _
850    CHAR_LETTER , CHAR_LETTER , CHAR_LETTER , CHAR_RAWDEL ,
851    0           , CHAR_RAWDEL , CHAR_RAWDEL , CHAR_UNDER  ,
852 //96  `         97  a         98  b         99  c
853 //100  d       101  e        102  f        103  g
854    0           , CHAR_LETTER , CHAR_LETTER , CHAR_LETTER ,
855    CHAR_LETTER , CHAR_LETTER , CHAR_LETTER , CHAR_LETTER ,
856 //104  h       105  i        106  j        107  k
857 //108  l       109  m        110  n        111  o
858    CHAR_LETTER , CHAR_LETTER , CHAR_LETTER , CHAR_LETTER ,
859    CHAR_LETTER , CHAR_LETTER , CHAR_LETTER , CHAR_LETTER ,
860 //112  p       113  q        114  r        115  s
861 //116  t       117  u        118  v        119  w
862    CHAR_LETTER , CHAR_LETTER , CHAR_LETTER , CHAR_LETTER ,
863    CHAR_LETTER , CHAR_LETTER , CHAR_LETTER , CHAR_LETTER ,
864 //120  x       121  y        122  z        123  {
865 //124  |       125  }        126  ~        127 DEL
866    CHAR_LETTER , CHAR_LETTER , CHAR_LETTER , CHAR_RAWDEL ,
867    CHAR_RAWDEL , CHAR_RAWDEL , CHAR_RAWDEL , 0
868 };
869 
870 static void InitCharacterInfo() {
871   static bool isInited = false;
872   if (isInited) return;
873   // check the statically-initialized CharInfo table
874   assert(CHAR_HORZ_WS == CharInfo[(int)' ']);
875   assert(CHAR_HORZ_WS == CharInfo[(int)'\t']);
876   assert(CHAR_HORZ_WS == CharInfo[(int)'\f']);
877   assert(CHAR_HORZ_WS == CharInfo[(int)'\v']);
878   assert(CHAR_VERT_WS == CharInfo[(int)'\n']);
879   assert(CHAR_VERT_WS == CharInfo[(int)'\r']);
880   assert(CHAR_UNDER   == CharInfo[(int)'_']);
881   assert(CHAR_PERIOD  == CharInfo[(int)'.']);
882   for (unsigned i = 'a'; i <= 'z'; ++i) {
883     assert(CHAR_LETTER == CharInfo[i]);
884     assert(CHAR_LETTER == CharInfo[i+'A'-'a']);
885   }
886   for (unsigned i = '0'; i <= '9'; ++i)
887     assert(CHAR_NUMBER == CharInfo[i]);
888 
889   isInited = true;
890 }
891 
892 
893 /// isIdentifierBody - Return true if this is the body character of an
894 /// identifier, which is [a-zA-Z0-9_].
895 static inline bool isIdentifierBody(unsigned char c) {
896   return (CharInfo[c] & (CHAR_LETTER|CHAR_NUMBER|CHAR_UNDER)) ? true : false;
897 }
898 
899 /// isHorizontalWhitespace - Return true if this character is horizontal
900 /// whitespace: ' ', '\t', '\f', '\v'.  Note that this returns false for '\0'.
901 static inline bool isHorizontalWhitespace(unsigned char c) {
902   return (CharInfo[c] & CHAR_HORZ_WS) ? true : false;
903 }
904 
905 /// isVerticalWhitespace - Return true if this character is vertical
906 /// whitespace: '\n', '\r'.  Note that this returns false for '\0'.
907 static inline bool isVerticalWhitespace(unsigned char c) {
908   return (CharInfo[c] & CHAR_VERT_WS) ? true : false;
909 }
910 
911 /// isWhitespace - Return true if this character is horizontal or vertical
912 /// whitespace: ' ', '\t', '\f', '\v', '\n', '\r'.  Note that this returns false
913 /// for '\0'.
914 static inline bool isWhitespace(unsigned char c) {
915   return (CharInfo[c] & (CHAR_HORZ_WS|CHAR_VERT_WS)) ? true : false;
916 }
917 
918 /// isNumberBody - Return true if this is the body character of an
919 /// preprocessing number, which is [a-zA-Z0-9_.].
920 static inline bool isNumberBody(unsigned char c) {
921   return (CharInfo[c] & (CHAR_LETTER|CHAR_NUMBER|CHAR_UNDER|CHAR_PERIOD)) ?
922     true : false;
923 }
924 
925 /// isRawStringDelimBody - Return true if this is the body character of a
926 /// raw string delimiter.
927 static inline bool isRawStringDelimBody(unsigned char c) {
928   return (CharInfo[c] &
929           (CHAR_LETTER|CHAR_NUMBER|CHAR_UNDER|CHAR_PERIOD|CHAR_RAWDEL)) ?
930     true : false;
931 }
932 
933 
934 //===----------------------------------------------------------------------===//
935 // Diagnostics forwarding code.
936 //===----------------------------------------------------------------------===//
937 
938 /// GetMappedTokenLoc - If lexing out of a 'mapped buffer', where we pretend the
939 /// lexer buffer was all expanded at a single point, perform the mapping.
940 /// This is currently only used for _Pragma implementation, so it is the slow
941 /// path of the hot getSourceLocation method.  Do not allow it to be inlined.
942 static LLVM_ATTRIBUTE_NOINLINE SourceLocation GetMappedTokenLoc(
943     Preprocessor &PP, SourceLocation FileLoc, unsigned CharNo, unsigned TokLen);
944 static SourceLocation GetMappedTokenLoc(Preprocessor &PP,
945                                         SourceLocation FileLoc,
946                                         unsigned CharNo, unsigned TokLen) {
947   assert(FileLoc.isMacroID() && "Must be a macro expansion");
948 
949   // Otherwise, we're lexing "mapped tokens".  This is used for things like
950   // _Pragma handling.  Combine the expansion location of FileLoc with the
951   // spelling location.
952   SourceManager &SM = PP.getSourceManager();
953 
954   // Create a new SLoc which is expanded from Expansion(FileLoc) but whose
955   // characters come from spelling(FileLoc)+Offset.
956   SourceLocation SpellingLoc = SM.getSpellingLoc(FileLoc);
957   SpellingLoc = SpellingLoc.getLocWithOffset(CharNo);
958 
959   // Figure out the expansion loc range, which is the range covered by the
960   // original _Pragma(...) sequence.
961   std::pair<SourceLocation,SourceLocation> II =
962     SM.getImmediateExpansionRange(FileLoc);
963 
964   return SM.createExpansionLoc(SpellingLoc, II.first, II.second, TokLen);
965 }
966 
967 /// getSourceLocation - Return a source location identifier for the specified
968 /// offset in the current file.
969 SourceLocation Lexer::getSourceLocation(const char *Loc,
970                                         unsigned TokLen) const {
971   assert(Loc >= BufferStart && Loc <= BufferEnd &&
972          "Location out of range for this buffer!");
973 
974   // In the normal case, we're just lexing from a simple file buffer, return
975   // the file id from FileLoc with the offset specified.
976   unsigned CharNo = Loc-BufferStart;
977   if (FileLoc.isFileID())
978     return FileLoc.getLocWithOffset(CharNo);
979 
980   // Otherwise, this is the _Pragma lexer case, which pretends that all of the
981   // tokens are lexed from where the _Pragma was defined.
982   assert(PP && "This doesn't work on raw lexers");
983   return GetMappedTokenLoc(*PP, FileLoc, CharNo, TokLen);
984 }
985 
986 /// Diag - Forwarding function for diagnostics.  This translate a source
987 /// position in the current buffer into a SourceLocation object for rendering.
988 DiagnosticBuilder Lexer::Diag(const char *Loc, unsigned DiagID) const {
989   return PP->Diag(getSourceLocation(Loc), DiagID);
990 }
991 
992 //===----------------------------------------------------------------------===//
993 // Trigraph and Escaped Newline Handling Code.
994 //===----------------------------------------------------------------------===//
995 
996 /// GetTrigraphCharForLetter - Given a character that occurs after a ?? pair,
997 /// return the decoded trigraph letter it corresponds to, or '\0' if nothing.
998 static char GetTrigraphCharForLetter(char Letter) {
999   switch (Letter) {
1000   default:   return 0;
1001   case '=':  return '#';
1002   case ')':  return ']';
1003   case '(':  return '[';
1004   case '!':  return '|';
1005   case '\'': return '^';
1006   case '>':  return '}';
1007   case '/':  return '\\';
1008   case '<':  return '{';
1009   case '-':  return '~';
1010   }
1011 }
1012 
1013 /// DecodeTrigraphChar - If the specified character is a legal trigraph when
1014 /// prefixed with ??, emit a trigraph warning.  If trigraphs are enabled,
1015 /// return the result character.  Finally, emit a warning about trigraph use
1016 /// whether trigraphs are enabled or not.
1017 static char DecodeTrigraphChar(const char *CP, Lexer *L) {
1018   char Res = GetTrigraphCharForLetter(*CP);
1019   if (!Res || !L) return Res;
1020 
1021   if (!L->getFeatures().Trigraphs) {
1022     if (!L->isLexingRawMode())
1023       L->Diag(CP-2, diag::trigraph_ignored);
1024     return 0;
1025   }
1026 
1027   if (!L->isLexingRawMode())
1028     L->Diag(CP-2, diag::trigraph_converted) << StringRef(&Res, 1);
1029   return Res;
1030 }
1031 
1032 /// getEscapedNewLineSize - Return the size of the specified escaped newline,
1033 /// or 0 if it is not an escaped newline. P[-1] is known to be a "\" or a
1034 /// trigraph equivalent on entry to this function.
1035 unsigned Lexer::getEscapedNewLineSize(const char *Ptr) {
1036   unsigned Size = 0;
1037   while (isWhitespace(Ptr[Size])) {
1038     ++Size;
1039 
1040     if (Ptr[Size-1] != '\n' && Ptr[Size-1] != '\r')
1041       continue;
1042 
1043     // If this is a \r\n or \n\r, skip the other half.
1044     if ((Ptr[Size] == '\r' || Ptr[Size] == '\n') &&
1045         Ptr[Size-1] != Ptr[Size])
1046       ++Size;
1047 
1048     return Size;
1049   }
1050 
1051   // Not an escaped newline, must be a \t or something else.
1052   return 0;
1053 }
1054 
1055 /// SkipEscapedNewLines - If P points to an escaped newline (or a series of
1056 /// them), skip over them and return the first non-escaped-newline found,
1057 /// otherwise return P.
1058 const char *Lexer::SkipEscapedNewLines(const char *P) {
1059   while (1) {
1060     const char *AfterEscape;
1061     if (*P == '\\') {
1062       AfterEscape = P+1;
1063     } else if (*P == '?') {
1064       // If not a trigraph for escape, bail out.
1065       if (P[1] != '?' || P[2] != '/')
1066         return P;
1067       AfterEscape = P+3;
1068     } else {
1069       return P;
1070     }
1071 
1072     unsigned NewLineSize = Lexer::getEscapedNewLineSize(AfterEscape);
1073     if (NewLineSize == 0) return P;
1074     P = AfterEscape+NewLineSize;
1075   }
1076 }
1077 
1078 /// \brief Checks that the given token is the first token that occurs after the
1079 /// given location (this excludes comments and whitespace). Returns the location
1080 /// immediately after the specified token. If the token is not found or the
1081 /// location is inside a macro, the returned source location will be invalid.
1082 SourceLocation Lexer::findLocationAfterToken(SourceLocation Loc,
1083                                         tok::TokenKind TKind,
1084                                         const SourceManager &SM,
1085                                         const LangOptions &LangOpts,
1086                                         bool SkipTrailingWhitespaceAndNewLine) {
1087   if (Loc.isMacroID()) {
1088     if (!Lexer::isAtEndOfMacroExpansion(Loc, SM, LangOpts))
1089       return SourceLocation();
1090     Loc = SM.getExpansionRange(Loc).second;
1091   }
1092   Loc = Lexer::getLocForEndOfToken(Loc, 0, SM, LangOpts);
1093 
1094   // Break down the source location.
1095   std::pair<FileID, unsigned> LocInfo = SM.getDecomposedLoc(Loc);
1096 
1097   // Try to load the file buffer.
1098   bool InvalidTemp = false;
1099   llvm::StringRef File = SM.getBufferData(LocInfo.first, &InvalidTemp);
1100   if (InvalidTemp)
1101     return SourceLocation();
1102 
1103   const char *TokenBegin = File.data() + LocInfo.second;
1104 
1105   // Lex from the start of the given location.
1106   Lexer lexer(SM.getLocForStartOfFile(LocInfo.first), LangOpts, File.begin(),
1107                                       TokenBegin, File.end());
1108   // Find the token.
1109   Token Tok;
1110   lexer.LexFromRawLexer(Tok);
1111   if (Tok.isNot(TKind))
1112     return SourceLocation();
1113   SourceLocation TokenLoc = Tok.getLocation();
1114 
1115   // Calculate how much whitespace needs to be skipped if any.
1116   unsigned NumWhitespaceChars = 0;
1117   if (SkipTrailingWhitespaceAndNewLine) {
1118     const char *TokenEnd = SM.getCharacterData(TokenLoc) +
1119                            Tok.getLength();
1120     unsigned char C = *TokenEnd;
1121     while (isHorizontalWhitespace(C)) {
1122       C = *(++TokenEnd);
1123       NumWhitespaceChars++;
1124     }
1125     if (isVerticalWhitespace(C))
1126       NumWhitespaceChars++;
1127   }
1128 
1129   return TokenLoc.getLocWithOffset(Tok.getLength() + NumWhitespaceChars);
1130 }
1131 
1132 /// getCharAndSizeSlow - Peek a single 'character' from the specified buffer,
1133 /// get its size, and return it.  This is tricky in several cases:
1134 ///   1. If currently at the start of a trigraph, we warn about the trigraph,
1135 ///      then either return the trigraph (skipping 3 chars) or the '?',
1136 ///      depending on whether trigraphs are enabled or not.
1137 ///   2. If this is an escaped newline (potentially with whitespace between
1138 ///      the backslash and newline), implicitly skip the newline and return
1139 ///      the char after it.
1140 ///   3. If this is a UCN, return it.  FIXME: C++ UCN's?
1141 ///
1142 /// This handles the slow/uncommon case of the getCharAndSize method.  Here we
1143 /// know that we can accumulate into Size, and that we have already incremented
1144 /// Ptr by Size bytes.
1145 ///
1146 /// NOTE: When this method is updated, getCharAndSizeSlowNoWarn (below) should
1147 /// be updated to match.
1148 ///
1149 char Lexer::getCharAndSizeSlow(const char *Ptr, unsigned &Size,
1150                                Token *Tok) {
1151   // If we have a slash, look for an escaped newline.
1152   if (Ptr[0] == '\\') {
1153     ++Size;
1154     ++Ptr;
1155 Slash:
1156     // Common case, backslash-char where the char is not whitespace.
1157     if (!isWhitespace(Ptr[0])) return '\\';
1158 
1159     // See if we have optional whitespace characters between the slash and
1160     // newline.
1161     if (unsigned EscapedNewLineSize = getEscapedNewLineSize(Ptr)) {
1162       // Remember that this token needs to be cleaned.
1163       if (Tok) Tok->setFlag(Token::NeedsCleaning);
1164 
1165       // Warn if there was whitespace between the backslash and newline.
1166       if (Ptr[0] != '\n' && Ptr[0] != '\r' && Tok && !isLexingRawMode())
1167         Diag(Ptr, diag::backslash_newline_space);
1168 
1169       // Found backslash<whitespace><newline>.  Parse the char after it.
1170       Size += EscapedNewLineSize;
1171       Ptr  += EscapedNewLineSize;
1172       // Use slow version to accumulate a correct size field.
1173       return getCharAndSizeSlow(Ptr, Size, Tok);
1174     }
1175 
1176     // Otherwise, this is not an escaped newline, just return the slash.
1177     return '\\';
1178   }
1179 
1180   // If this is a trigraph, process it.
1181   if (Ptr[0] == '?' && Ptr[1] == '?') {
1182     // If this is actually a legal trigraph (not something like "??x"), emit
1183     // a trigraph warning.  If so, and if trigraphs are enabled, return it.
1184     if (char C = DecodeTrigraphChar(Ptr+2, Tok ? this : 0)) {
1185       // Remember that this token needs to be cleaned.
1186       if (Tok) Tok->setFlag(Token::NeedsCleaning);
1187 
1188       Ptr += 3;
1189       Size += 3;
1190       if (C == '\\') goto Slash;
1191       return C;
1192     }
1193   }
1194 
1195   // If this is neither, return a single character.
1196   ++Size;
1197   return *Ptr;
1198 }
1199 
1200 
1201 /// getCharAndSizeSlowNoWarn - Handle the slow/uncommon case of the
1202 /// getCharAndSizeNoWarn method.  Here we know that we can accumulate into Size,
1203 /// and that we have already incremented Ptr by Size bytes.
1204 ///
1205 /// NOTE: When this method is updated, getCharAndSizeSlow (above) should
1206 /// be updated to match.
1207 char Lexer::getCharAndSizeSlowNoWarn(const char *Ptr, unsigned &Size,
1208                                      const LangOptions &Features) {
1209   // If we have a slash, look for an escaped newline.
1210   if (Ptr[0] == '\\') {
1211     ++Size;
1212     ++Ptr;
1213 Slash:
1214     // Common case, backslash-char where the char is not whitespace.
1215     if (!isWhitespace(Ptr[0])) return '\\';
1216 
1217     // See if we have optional whitespace characters followed by a newline.
1218     if (unsigned EscapedNewLineSize = getEscapedNewLineSize(Ptr)) {
1219       // Found backslash<whitespace><newline>.  Parse the char after it.
1220       Size += EscapedNewLineSize;
1221       Ptr  += EscapedNewLineSize;
1222 
1223       // Use slow version to accumulate a correct size field.
1224       return getCharAndSizeSlowNoWarn(Ptr, Size, Features);
1225     }
1226 
1227     // Otherwise, this is not an escaped newline, just return the slash.
1228     return '\\';
1229   }
1230 
1231   // If this is a trigraph, process it.
1232   if (Features.Trigraphs && Ptr[0] == '?' && Ptr[1] == '?') {
1233     // If this is actually a legal trigraph (not something like "??x"), return
1234     // it.
1235     if (char C = GetTrigraphCharForLetter(Ptr[2])) {
1236       Ptr += 3;
1237       Size += 3;
1238       if (C == '\\') goto Slash;
1239       return C;
1240     }
1241   }
1242 
1243   // If this is neither, return a single character.
1244   ++Size;
1245   return *Ptr;
1246 }
1247 
1248 //===----------------------------------------------------------------------===//
1249 // Helper methods for lexing.
1250 //===----------------------------------------------------------------------===//
1251 
1252 /// \brief Routine that indiscriminately skips bytes in the source file.
1253 void Lexer::SkipBytes(unsigned Bytes, bool StartOfLine) {
1254   BufferPtr += Bytes;
1255   if (BufferPtr > BufferEnd)
1256     BufferPtr = BufferEnd;
1257   IsAtStartOfLine = StartOfLine;
1258 }
1259 
1260 void Lexer::LexIdentifier(Token &Result, const char *CurPtr) {
1261   // Match [_A-Za-z0-9]*, we have already matched [_A-Za-z$]
1262   unsigned Size;
1263   unsigned char C = *CurPtr++;
1264   while (isIdentifierBody(C))
1265     C = *CurPtr++;
1266 
1267   --CurPtr;   // Back up over the skipped character.
1268 
1269   // Fast path, no $,\,? in identifier found.  '\' might be an escaped newline
1270   // or UCN, and ? might be a trigraph for '\', an escaped newline or UCN.
1271   // FIXME: UCNs.
1272   //
1273   // TODO: Could merge these checks into a CharInfo flag to make the comparison
1274   // cheaper
1275   if (C != '\\' && C != '?' && (C != '$' || !Features.DollarIdents)) {
1276 FinishIdentifier:
1277     const char *IdStart = BufferPtr;
1278     FormTokenWithChars(Result, CurPtr, tok::raw_identifier);
1279     Result.setRawIdentifierData(IdStart);
1280 
1281     // If we are in raw mode, return this identifier raw.  There is no need to
1282     // look up identifier information or attempt to macro expand it.
1283     if (LexingRawMode)
1284       return;
1285 
1286     // Fill in Result.IdentifierInfo and update the token kind,
1287     // looking up the identifier in the identifier table.
1288     IdentifierInfo *II = PP->LookUpIdentifierInfo(Result);
1289 
1290     // Finally, now that we know we have an identifier, pass this off to the
1291     // preprocessor, which may macro expand it or something.
1292     if (II->isHandleIdentifierCase())
1293       PP->HandleIdentifier(Result);
1294 
1295     return;
1296   }
1297 
1298   // Otherwise, $,\,? in identifier found.  Enter slower path.
1299 
1300   C = getCharAndSize(CurPtr, Size);
1301   while (1) {
1302     if (C == '$') {
1303       // If we hit a $ and they are not supported in identifiers, we are done.
1304       if (!Features.DollarIdents) goto FinishIdentifier;
1305 
1306       // Otherwise, emit a diagnostic and continue.
1307       if (!isLexingRawMode())
1308         Diag(CurPtr, diag::ext_dollar_in_identifier);
1309       CurPtr = ConsumeChar(CurPtr, Size, Result);
1310       C = getCharAndSize(CurPtr, Size);
1311       continue;
1312     } else if (!isIdentifierBody(C)) { // FIXME: UCNs.
1313       // Found end of identifier.
1314       goto FinishIdentifier;
1315     }
1316 
1317     // Otherwise, this character is good, consume it.
1318     CurPtr = ConsumeChar(CurPtr, Size, Result);
1319 
1320     C = getCharAndSize(CurPtr, Size);
1321     while (isIdentifierBody(C)) { // FIXME: UCNs.
1322       CurPtr = ConsumeChar(CurPtr, Size, Result);
1323       C = getCharAndSize(CurPtr, Size);
1324     }
1325   }
1326 }
1327 
1328 /// isHexaLiteral - Return true if Start points to a hex constant.
1329 /// in microsoft mode (where this is supposed to be several different tokens).
1330 static bool isHexaLiteral(const char *Start, const LangOptions &Features) {
1331   unsigned Size;
1332   char C1 = Lexer::getCharAndSizeNoWarn(Start, Size, Features);
1333   if (C1 != '0')
1334     return false;
1335   char C2 = Lexer::getCharAndSizeNoWarn(Start + Size, Size, Features);
1336   return (C2 == 'x' || C2 == 'X');
1337 }
1338 
1339 /// LexNumericConstant - Lex the remainder of a integer or floating point
1340 /// constant. From[-1] is the first character lexed.  Return the end of the
1341 /// constant.
1342 void Lexer::LexNumericConstant(Token &Result, const char *CurPtr) {
1343   unsigned Size;
1344   char C = getCharAndSize(CurPtr, Size);
1345   char PrevCh = 0;
1346   while (isNumberBody(C)) { // FIXME: UCNs?
1347     CurPtr = ConsumeChar(CurPtr, Size, Result);
1348     PrevCh = C;
1349     C = getCharAndSize(CurPtr, Size);
1350   }
1351 
1352   // If we fell out, check for a sign, due to 1e+12.  If we have one, continue.
1353   if ((C == '-' || C == '+') && (PrevCh == 'E' || PrevCh == 'e')) {
1354     // If we are in Microsoft mode, don't continue if the constant is hex.
1355     // For example, MSVC will accept the following as 3 tokens: 0x1234567e+1
1356     if (!Features.MicrosoftExt || !isHexaLiteral(BufferPtr, Features))
1357       return LexNumericConstant(Result, ConsumeChar(CurPtr, Size, Result));
1358   }
1359 
1360   // If we have a hex FP constant, continue.
1361   if ((C == '-' || C == '+') && (PrevCh == 'P' || PrevCh == 'p') &&
1362       !Features.CPlusPlus0x)
1363     return LexNumericConstant(Result, ConsumeChar(CurPtr, Size, Result));
1364 
1365   // Update the location of token as well as BufferPtr.
1366   const char *TokStart = BufferPtr;
1367   FormTokenWithChars(Result, CurPtr, tok::numeric_constant);
1368   Result.setLiteralData(TokStart);
1369 }
1370 
1371 /// LexStringLiteral - Lex the remainder of a string literal, after having lexed
1372 /// either " or L" or u8" or u" or U".
1373 void Lexer::LexStringLiteral(Token &Result, const char *CurPtr,
1374                              tok::TokenKind Kind) {
1375   const char *NulCharacter = 0; // Does this string contain the \0 character?
1376 
1377   char C = getAndAdvanceChar(CurPtr, Result);
1378   while (C != '"') {
1379     // Skip escaped characters.  Escaped newlines will already be processed by
1380     // getAndAdvanceChar.
1381     if (C == '\\')
1382       C = getAndAdvanceChar(CurPtr, Result);
1383 
1384     if (C == '\n' || C == '\r' ||             // Newline.
1385         (C == 0 && CurPtr-1 == BufferEnd)) {  // End of file.
1386       if (!isLexingRawMode() && !Features.AsmPreprocessor)
1387         Diag(BufferPtr, diag::warn_unterminated_string);
1388       FormTokenWithChars(Result, CurPtr-1, tok::unknown);
1389       return;
1390     }
1391 
1392     if (C == 0) {
1393       if (isCodeCompletionPoint(CurPtr-1)) {
1394         PP->CodeCompleteNaturalLanguage();
1395         FormTokenWithChars(Result, CurPtr-1, tok::unknown);
1396         return cutOffLexing();
1397       }
1398 
1399       NulCharacter = CurPtr-1;
1400     }
1401     C = getAndAdvanceChar(CurPtr, Result);
1402   }
1403 
1404   // If a nul character existed in the string, warn about it.
1405   if (NulCharacter && !isLexingRawMode())
1406     Diag(NulCharacter, diag::null_in_string);
1407 
1408   // Update the location of the token as well as the BufferPtr instance var.
1409   const char *TokStart = BufferPtr;
1410   FormTokenWithChars(Result, CurPtr, Kind);
1411   Result.setLiteralData(TokStart);
1412 }
1413 
1414 /// LexRawStringLiteral - Lex the remainder of a raw string literal, after
1415 /// having lexed R", LR", u8R", uR", or UR".
1416 void Lexer::LexRawStringLiteral(Token &Result, const char *CurPtr,
1417                                 tok::TokenKind Kind) {
1418   // This function doesn't use getAndAdvanceChar because C++0x [lex.pptoken]p3:
1419   //  Between the initial and final double quote characters of the raw string,
1420   //  any transformations performed in phases 1 and 2 (trigraphs,
1421   //  universal-character-names, and line splicing) are reverted.
1422 
1423   unsigned PrefixLen = 0;
1424 
1425   while (PrefixLen != 16 && isRawStringDelimBody(CurPtr[PrefixLen]))
1426     ++PrefixLen;
1427 
1428   // If the last character was not a '(', then we didn't lex a valid delimiter.
1429   if (CurPtr[PrefixLen] != '(') {
1430     if (!isLexingRawMode()) {
1431       const char *PrefixEnd = &CurPtr[PrefixLen];
1432       if (PrefixLen == 16) {
1433         Diag(PrefixEnd, diag::err_raw_delim_too_long);
1434       } else {
1435         Diag(PrefixEnd, diag::err_invalid_char_raw_delim)
1436           << StringRef(PrefixEnd, 1);
1437       }
1438     }
1439 
1440     // Search for the next '"' in hopes of salvaging the lexer. Unfortunately,
1441     // it's possible the '"' was intended to be part of the raw string, but
1442     // there's not much we can do about that.
1443     while (1) {
1444       char C = *CurPtr++;
1445 
1446       if (C == '"')
1447         break;
1448       if (C == 0 && CurPtr-1 == BufferEnd) {
1449         --CurPtr;
1450         break;
1451       }
1452     }
1453 
1454     FormTokenWithChars(Result, CurPtr, tok::unknown);
1455     return;
1456   }
1457 
1458   // Save prefix and move CurPtr past it
1459   const char *Prefix = CurPtr;
1460   CurPtr += PrefixLen + 1; // skip over prefix and '('
1461 
1462   while (1) {
1463     char C = *CurPtr++;
1464 
1465     if (C == ')') {
1466       // Check for prefix match and closing quote.
1467       if (strncmp(CurPtr, Prefix, PrefixLen) == 0 && CurPtr[PrefixLen] == '"') {
1468         CurPtr += PrefixLen + 1; // skip over prefix and '"'
1469         break;
1470       }
1471     } else if (C == 0 && CurPtr-1 == BufferEnd) { // End of file.
1472       if (!isLexingRawMode())
1473         Diag(BufferPtr, diag::err_unterminated_raw_string)
1474           << StringRef(Prefix, PrefixLen);
1475       FormTokenWithChars(Result, CurPtr-1, tok::unknown);
1476       return;
1477     }
1478   }
1479 
1480   // Update the location of token as well as BufferPtr.
1481   const char *TokStart = BufferPtr;
1482   FormTokenWithChars(Result, CurPtr, Kind);
1483   Result.setLiteralData(TokStart);
1484 }
1485 
1486 /// LexAngledStringLiteral - Lex the remainder of an angled string literal,
1487 /// after having lexed the '<' character.  This is used for #include filenames.
1488 void Lexer::LexAngledStringLiteral(Token &Result, const char *CurPtr) {
1489   const char *NulCharacter = 0; // Does this string contain the \0 character?
1490   const char *AfterLessPos = CurPtr;
1491   char C = getAndAdvanceChar(CurPtr, Result);
1492   while (C != '>') {
1493     // Skip escaped characters.
1494     if (C == '\\') {
1495       // Skip the escaped character.
1496       C = getAndAdvanceChar(CurPtr, Result);
1497     } else if (C == '\n' || C == '\r' ||             // Newline.
1498                (C == 0 && (CurPtr-1 == BufferEnd ||  // End of file.
1499                            isCodeCompletionPoint(CurPtr-1)))) {
1500       // If the filename is unterminated, then it must just be a lone <
1501       // character.  Return this as such.
1502       FormTokenWithChars(Result, AfterLessPos, tok::less);
1503       return;
1504     } else if (C == 0) {
1505       NulCharacter = CurPtr-1;
1506     }
1507     C = getAndAdvanceChar(CurPtr, Result);
1508   }
1509 
1510   // If a nul character existed in the string, warn about it.
1511   if (NulCharacter && !isLexingRawMode())
1512     Diag(NulCharacter, diag::null_in_string);
1513 
1514   // Update the location of token as well as BufferPtr.
1515   const char *TokStart = BufferPtr;
1516   FormTokenWithChars(Result, CurPtr, tok::angle_string_literal);
1517   Result.setLiteralData(TokStart);
1518 }
1519 
1520 
1521 /// LexCharConstant - Lex the remainder of a character constant, after having
1522 /// lexed either ' or L' or u' or U'.
1523 void Lexer::LexCharConstant(Token &Result, const char *CurPtr,
1524                             tok::TokenKind Kind) {
1525   const char *NulCharacter = 0; // Does this character contain the \0 character?
1526 
1527   char C = getAndAdvanceChar(CurPtr, Result);
1528   if (C == '\'') {
1529     if (!isLexingRawMode() && !Features.AsmPreprocessor)
1530       Diag(BufferPtr, diag::err_empty_character);
1531     FormTokenWithChars(Result, CurPtr, tok::unknown);
1532     return;
1533   }
1534 
1535   while (C != '\'') {
1536     // Skip escaped characters.
1537     if (C == '\\') {
1538       // Skip the escaped character.
1539       // FIXME: UCN's
1540       C = getAndAdvanceChar(CurPtr, Result);
1541     } else if (C == '\n' || C == '\r' ||             // Newline.
1542                (C == 0 && CurPtr-1 == BufferEnd)) {  // End of file.
1543       if (!isLexingRawMode() && !Features.AsmPreprocessor)
1544         Diag(BufferPtr, diag::warn_unterminated_char);
1545       FormTokenWithChars(Result, CurPtr-1, tok::unknown);
1546       return;
1547     } else if (C == 0) {
1548       if (isCodeCompletionPoint(CurPtr-1)) {
1549         PP->CodeCompleteNaturalLanguage();
1550         FormTokenWithChars(Result, CurPtr-1, tok::unknown);
1551         return cutOffLexing();
1552       }
1553 
1554       NulCharacter = CurPtr-1;
1555     }
1556     C = getAndAdvanceChar(CurPtr, Result);
1557   }
1558 
1559   // If a nul character existed in the character, warn about it.
1560   if (NulCharacter && !isLexingRawMode())
1561     Diag(NulCharacter, diag::null_in_char);
1562 
1563   // Update the location of token as well as BufferPtr.
1564   const char *TokStart = BufferPtr;
1565   FormTokenWithChars(Result, CurPtr, Kind);
1566   Result.setLiteralData(TokStart);
1567 }
1568 
1569 /// SkipWhitespace - Efficiently skip over a series of whitespace characters.
1570 /// Update BufferPtr to point to the next non-whitespace character and return.
1571 ///
1572 /// This method forms a token and returns true if KeepWhitespaceMode is enabled.
1573 ///
1574 bool Lexer::SkipWhitespace(Token &Result, const char *CurPtr) {
1575   // Whitespace - Skip it, then return the token after the whitespace.
1576   unsigned char Char = *CurPtr;  // Skip consequtive spaces efficiently.
1577   while (1) {
1578     // Skip horizontal whitespace very aggressively.
1579     while (isHorizontalWhitespace(Char))
1580       Char = *++CurPtr;
1581 
1582     // Otherwise if we have something other than whitespace, we're done.
1583     if (Char != '\n' && Char != '\r')
1584       break;
1585 
1586     if (ParsingPreprocessorDirective) {
1587       // End of preprocessor directive line, let LexTokenInternal handle this.
1588       BufferPtr = CurPtr;
1589       return false;
1590     }
1591 
1592     // ok, but handle newline.
1593     // The returned token is at the start of the line.
1594     Result.setFlag(Token::StartOfLine);
1595     // No leading whitespace seen so far.
1596     Result.clearFlag(Token::LeadingSpace);
1597     Char = *++CurPtr;
1598   }
1599 
1600   // If this isn't immediately after a newline, there is leading space.
1601   char PrevChar = CurPtr[-1];
1602   if (PrevChar != '\n' && PrevChar != '\r')
1603     Result.setFlag(Token::LeadingSpace);
1604 
1605   // If the client wants us to return whitespace, return it now.
1606   if (isKeepWhitespaceMode()) {
1607     FormTokenWithChars(Result, CurPtr, tok::unknown);
1608     return true;
1609   }
1610 
1611   BufferPtr = CurPtr;
1612   return false;
1613 }
1614 
1615 // SkipBCPLComment - We have just read the // characters from input.  Skip until
1616 // we find the newline character thats terminate the comment.  Then update
1617 /// BufferPtr and return.
1618 ///
1619 /// If we're in KeepCommentMode or any CommentHandler has inserted
1620 /// some tokens, this will store the first token and return true.
1621 bool Lexer::SkipBCPLComment(Token &Result, const char *CurPtr) {
1622   // If BCPL comments aren't explicitly enabled for this language, emit an
1623   // extension warning.
1624   if (!Features.BCPLComment && !isLexingRawMode()) {
1625     Diag(BufferPtr, diag::ext_bcpl_comment);
1626 
1627     // Mark them enabled so we only emit one warning for this translation
1628     // unit.
1629     Features.BCPLComment = true;
1630   }
1631 
1632   // Scan over the body of the comment.  The common case, when scanning, is that
1633   // the comment contains normal ascii characters with nothing interesting in
1634   // them.  As such, optimize for this case with the inner loop.
1635   char C;
1636   do {
1637     C = *CurPtr;
1638     // Skip over characters in the fast loop.
1639     while (C != 0 &&                // Potentially EOF.
1640            C != '\n' && C != '\r')  // Newline or DOS-style newline.
1641       C = *++CurPtr;
1642 
1643     const char *NextLine = CurPtr;
1644     if (C != 0) {
1645       // We found a newline, see if it's escaped.
1646       const char *EscapePtr = CurPtr-1;
1647       while (isHorizontalWhitespace(*EscapePtr)) // Skip whitespace.
1648         --EscapePtr;
1649 
1650       if (*EscapePtr == '\\') // Escaped newline.
1651         CurPtr = EscapePtr;
1652       else if (EscapePtr[0] == '/' && EscapePtr[-1] == '?' &&
1653                EscapePtr[-2] == '?') // Trigraph-escaped newline.
1654         CurPtr = EscapePtr-2;
1655       else
1656         break; // This is a newline, we're done.
1657 
1658       C = *CurPtr;
1659     }
1660 
1661     // Otherwise, this is a hard case.  Fall back on getAndAdvanceChar to
1662     // properly decode the character.  Read it in raw mode to avoid emitting
1663     // diagnostics about things like trigraphs.  If we see an escaped newline,
1664     // we'll handle it below.
1665     const char *OldPtr = CurPtr;
1666     bool OldRawMode = isLexingRawMode();
1667     LexingRawMode = true;
1668     C = getAndAdvanceChar(CurPtr, Result);
1669     LexingRawMode = OldRawMode;
1670 
1671     // If we only read only one character, then no special handling is needed.
1672     // We're done and can skip forward to the newline.
1673     if (C != 0 && CurPtr == OldPtr+1) {
1674       CurPtr = NextLine;
1675       break;
1676     }
1677 
1678     // If the char that we finally got was a \n, then we must have had something
1679     // like \<newline><newline>.  We don't want to have consumed the second
1680     // newline, we want CurPtr, to end up pointing to it down below.
1681     if (C == '\n' || C == '\r') {
1682       --CurPtr;
1683       C = 'x'; // doesn't matter what this is.
1684     }
1685 
1686     // If we read multiple characters, and one of those characters was a \r or
1687     // \n, then we had an escaped newline within the comment.  Emit diagnostic
1688     // unless the next line is also a // comment.
1689     if (CurPtr != OldPtr+1 && C != '/' && CurPtr[0] != '/') {
1690       for (; OldPtr != CurPtr; ++OldPtr)
1691         if (OldPtr[0] == '\n' || OldPtr[0] == '\r') {
1692           // Okay, we found a // comment that ends in a newline, if the next
1693           // line is also a // comment, but has spaces, don't emit a diagnostic.
1694           if (isWhitespace(C)) {
1695             const char *ForwardPtr = CurPtr;
1696             while (isWhitespace(*ForwardPtr))  // Skip whitespace.
1697               ++ForwardPtr;
1698             if (ForwardPtr[0] == '/' && ForwardPtr[1] == '/')
1699               break;
1700           }
1701 
1702           if (!isLexingRawMode())
1703             Diag(OldPtr-1, diag::ext_multi_line_bcpl_comment);
1704           break;
1705         }
1706     }
1707 
1708     if (CurPtr == BufferEnd+1) {
1709       --CurPtr;
1710       break;
1711     }
1712 
1713     if (C == '\0' && isCodeCompletionPoint(CurPtr-1)) {
1714       PP->CodeCompleteNaturalLanguage();
1715       cutOffLexing();
1716       return false;
1717     }
1718 
1719   } while (C != '\n' && C != '\r');
1720 
1721   // Found but did not consume the newline.  Notify comment handlers about the
1722   // comment unless we're in a #if 0 block.
1723   if (PP && !isLexingRawMode() &&
1724       PP->HandleComment(Result, SourceRange(getSourceLocation(BufferPtr),
1725                                             getSourceLocation(CurPtr)))) {
1726     BufferPtr = CurPtr;
1727     return true; // A token has to be returned.
1728   }
1729 
1730   // If we are returning comments as tokens, return this comment as a token.
1731   if (inKeepCommentMode())
1732     return SaveBCPLComment(Result, CurPtr);
1733 
1734   // If we are inside a preprocessor directive and we see the end of line,
1735   // return immediately, so that the lexer can return this as an EOD token.
1736   if (ParsingPreprocessorDirective || CurPtr == BufferEnd) {
1737     BufferPtr = CurPtr;
1738     return false;
1739   }
1740 
1741   // Otherwise, eat the \n character.  We don't care if this is a \n\r or
1742   // \r\n sequence.  This is an efficiency hack (because we know the \n can't
1743   // contribute to another token), it isn't needed for correctness.  Note that
1744   // this is ok even in KeepWhitespaceMode, because we would have returned the
1745   /// comment above in that mode.
1746   ++CurPtr;
1747 
1748   // The next returned token is at the start of the line.
1749   Result.setFlag(Token::StartOfLine);
1750   // No leading whitespace seen so far.
1751   Result.clearFlag(Token::LeadingSpace);
1752   BufferPtr = CurPtr;
1753   return false;
1754 }
1755 
1756 /// SaveBCPLComment - If in save-comment mode, package up this BCPL comment in
1757 /// an appropriate way and return it.
1758 bool Lexer::SaveBCPLComment(Token &Result, const char *CurPtr) {
1759   // If we're not in a preprocessor directive, just return the // comment
1760   // directly.
1761   FormTokenWithChars(Result, CurPtr, tok::comment);
1762 
1763   if (!ParsingPreprocessorDirective)
1764     return true;
1765 
1766   // If this BCPL-style comment is in a macro definition, transmogrify it into
1767   // a C-style block comment.
1768   bool Invalid = false;
1769   std::string Spelling = PP->getSpelling(Result, &Invalid);
1770   if (Invalid)
1771     return true;
1772 
1773   assert(Spelling[0] == '/' && Spelling[1] == '/' && "Not bcpl comment?");
1774   Spelling[1] = '*';   // Change prefix to "/*".
1775   Spelling += "*/";    // add suffix.
1776 
1777   Result.setKind(tok::comment);
1778   PP->CreateString(&Spelling[0], Spelling.size(), Result,
1779                    Result.getLocation());
1780   return true;
1781 }
1782 
1783 /// isBlockCommentEndOfEscapedNewLine - Return true if the specified newline
1784 /// character (either \n or \r) is part of an escaped newline sequence.  Issue a
1785 /// diagnostic if so.  We know that the newline is inside of a block comment.
1786 static bool isEndOfBlockCommentWithEscapedNewLine(const char *CurPtr,
1787                                                   Lexer *L) {
1788   assert(CurPtr[0] == '\n' || CurPtr[0] == '\r');
1789 
1790   // Back up off the newline.
1791   --CurPtr;
1792 
1793   // If this is a two-character newline sequence, skip the other character.
1794   if (CurPtr[0] == '\n' || CurPtr[0] == '\r') {
1795     // \n\n or \r\r -> not escaped newline.
1796     if (CurPtr[0] == CurPtr[1])
1797       return false;
1798     // \n\r or \r\n -> skip the newline.
1799     --CurPtr;
1800   }
1801 
1802   // If we have horizontal whitespace, skip over it.  We allow whitespace
1803   // between the slash and newline.
1804   bool HasSpace = false;
1805   while (isHorizontalWhitespace(*CurPtr) || *CurPtr == 0) {
1806     --CurPtr;
1807     HasSpace = true;
1808   }
1809 
1810   // If we have a slash, we know this is an escaped newline.
1811   if (*CurPtr == '\\') {
1812     if (CurPtr[-1] != '*') return false;
1813   } else {
1814     // It isn't a slash, is it the ?? / trigraph?
1815     if (CurPtr[0] != '/' || CurPtr[-1] != '?' || CurPtr[-2] != '?' ||
1816         CurPtr[-3] != '*')
1817       return false;
1818 
1819     // This is the trigraph ending the comment.  Emit a stern warning!
1820     CurPtr -= 2;
1821 
1822     // If no trigraphs are enabled, warn that we ignored this trigraph and
1823     // ignore this * character.
1824     if (!L->getFeatures().Trigraphs) {
1825       if (!L->isLexingRawMode())
1826         L->Diag(CurPtr, diag::trigraph_ignored_block_comment);
1827       return false;
1828     }
1829     if (!L->isLexingRawMode())
1830       L->Diag(CurPtr, diag::trigraph_ends_block_comment);
1831   }
1832 
1833   // Warn about having an escaped newline between the */ characters.
1834   if (!L->isLexingRawMode())
1835     L->Diag(CurPtr, diag::escaped_newline_block_comment_end);
1836 
1837   // If there was space between the backslash and newline, warn about it.
1838   if (HasSpace && !L->isLexingRawMode())
1839     L->Diag(CurPtr, diag::backslash_newline_space);
1840 
1841   return true;
1842 }
1843 
1844 #ifdef __SSE2__
1845 #include <emmintrin.h>
1846 #elif __ALTIVEC__
1847 #include <altivec.h>
1848 #undef bool
1849 #endif
1850 
1851 /// SkipBlockComment - We have just read the /* characters from input.  Read
1852 /// until we find the */ characters that terminate the comment.  Note that we
1853 /// don't bother decoding trigraphs or escaped newlines in block comments,
1854 /// because they cannot cause the comment to end.  The only thing that can
1855 /// happen is the comment could end with an escaped newline between the */ end
1856 /// of comment.
1857 ///
1858 /// If we're in KeepCommentMode or any CommentHandler has inserted
1859 /// some tokens, this will store the first token and return true.
1860 bool Lexer::SkipBlockComment(Token &Result, const char *CurPtr) {
1861   // Scan one character past where we should, looking for a '/' character.  Once
1862   // we find it, check to see if it was preceded by a *.  This common
1863   // optimization helps people who like to put a lot of * characters in their
1864   // comments.
1865 
1866   // The first character we get with newlines and trigraphs skipped to handle
1867   // the degenerate /*/ case below correctly if the * has an escaped newline
1868   // after it.
1869   unsigned CharSize;
1870   unsigned char C = getCharAndSize(CurPtr, CharSize);
1871   CurPtr += CharSize;
1872   if (C == 0 && CurPtr == BufferEnd+1) {
1873     if (!isLexingRawMode())
1874       Diag(BufferPtr, diag::err_unterminated_block_comment);
1875     --CurPtr;
1876 
1877     // KeepWhitespaceMode should return this broken comment as a token.  Since
1878     // it isn't a well formed comment, just return it as an 'unknown' token.
1879     if (isKeepWhitespaceMode()) {
1880       FormTokenWithChars(Result, CurPtr, tok::unknown);
1881       return true;
1882     }
1883 
1884     BufferPtr = CurPtr;
1885     return false;
1886   }
1887 
1888   // Check to see if the first character after the '/*' is another /.  If so,
1889   // then this slash does not end the block comment, it is part of it.
1890   if (C == '/')
1891     C = *CurPtr++;
1892 
1893   while (1) {
1894     // Skip over all non-interesting characters until we find end of buffer or a
1895     // (probably ending) '/' character.
1896     if (CurPtr + 24 < BufferEnd &&
1897         // If there is a code-completion point avoid the fast scan because it
1898         // doesn't check for '\0'.
1899         !(PP && PP->getCodeCompletionFileLoc() == FileLoc)) {
1900       // While not aligned to a 16-byte boundary.
1901       while (C != '/' && ((intptr_t)CurPtr & 0x0F) != 0)
1902         C = *CurPtr++;
1903 
1904       if (C == '/') goto FoundSlash;
1905 
1906 #ifdef __SSE2__
1907       __m128i Slashes = _mm_set_epi8('/', '/', '/', '/', '/', '/', '/', '/',
1908                                      '/', '/', '/', '/', '/', '/', '/', '/');
1909       while (CurPtr+16 <= BufferEnd &&
1910              _mm_movemask_epi8(_mm_cmpeq_epi8(*(__m128i*)CurPtr, Slashes)) == 0)
1911         CurPtr += 16;
1912 #elif __ALTIVEC__
1913       __vector unsigned char Slashes = {
1914         '/', '/', '/', '/',  '/', '/', '/', '/',
1915         '/', '/', '/', '/',  '/', '/', '/', '/'
1916       };
1917       while (CurPtr+16 <= BufferEnd &&
1918              !vec_any_eq(*(vector unsigned char*)CurPtr, Slashes))
1919         CurPtr += 16;
1920 #else
1921       // Scan for '/' quickly.  Many block comments are very large.
1922       while (CurPtr[0] != '/' &&
1923              CurPtr[1] != '/' &&
1924              CurPtr[2] != '/' &&
1925              CurPtr[3] != '/' &&
1926              CurPtr+4 < BufferEnd) {
1927         CurPtr += 4;
1928       }
1929 #endif
1930 
1931       // It has to be one of the bytes scanned, increment to it and read one.
1932       C = *CurPtr++;
1933     }
1934 
1935     // Loop to scan the remainder.
1936     while (C != '/' && C != '\0')
1937       C = *CurPtr++;
1938 
1939   FoundSlash:
1940     if (C == '/') {
1941       if (CurPtr[-2] == '*')  // We found the final */.  We're done!
1942         break;
1943 
1944       if ((CurPtr[-2] == '\n' || CurPtr[-2] == '\r')) {
1945         if (isEndOfBlockCommentWithEscapedNewLine(CurPtr-2, this)) {
1946           // We found the final */, though it had an escaped newline between the
1947           // * and /.  We're done!
1948           break;
1949         }
1950       }
1951       if (CurPtr[0] == '*' && CurPtr[1] != '/') {
1952         // If this is a /* inside of the comment, emit a warning.  Don't do this
1953         // if this is a /*/, which will end the comment.  This misses cases with
1954         // embedded escaped newlines, but oh well.
1955         if (!isLexingRawMode())
1956           Diag(CurPtr-1, diag::warn_nested_block_comment);
1957       }
1958     } else if (C == 0 && CurPtr == BufferEnd+1) {
1959       if (!isLexingRawMode())
1960         Diag(BufferPtr, diag::err_unterminated_block_comment);
1961       // Note: the user probably forgot a */.  We could continue immediately
1962       // after the /*, but this would involve lexing a lot of what really is the
1963       // comment, which surely would confuse the parser.
1964       --CurPtr;
1965 
1966       // KeepWhitespaceMode should return this broken comment as a token.  Since
1967       // it isn't a well formed comment, just return it as an 'unknown' token.
1968       if (isKeepWhitespaceMode()) {
1969         FormTokenWithChars(Result, CurPtr, tok::unknown);
1970         return true;
1971       }
1972 
1973       BufferPtr = CurPtr;
1974       return false;
1975     } else if (C == '\0' && isCodeCompletionPoint(CurPtr-1)) {
1976       PP->CodeCompleteNaturalLanguage();
1977       cutOffLexing();
1978       return false;
1979     }
1980 
1981     C = *CurPtr++;
1982   }
1983 
1984   // Notify comment handlers about the comment unless we're in a #if 0 block.
1985   if (PP && !isLexingRawMode() &&
1986       PP->HandleComment(Result, SourceRange(getSourceLocation(BufferPtr),
1987                                             getSourceLocation(CurPtr)))) {
1988     BufferPtr = CurPtr;
1989     return true; // A token has to be returned.
1990   }
1991 
1992   // If we are returning comments as tokens, return this comment as a token.
1993   if (inKeepCommentMode()) {
1994     FormTokenWithChars(Result, CurPtr, tok::comment);
1995     return true;
1996   }
1997 
1998   // It is common for the tokens immediately after a /**/ comment to be
1999   // whitespace.  Instead of going through the big switch, handle it
2000   // efficiently now.  This is safe even in KeepWhitespaceMode because we would
2001   // have already returned above with the comment as a token.
2002   if (isHorizontalWhitespace(*CurPtr)) {
2003     Result.setFlag(Token::LeadingSpace);
2004     SkipWhitespace(Result, CurPtr+1);
2005     return false;
2006   }
2007 
2008   // Otherwise, just return so that the next character will be lexed as a token.
2009   BufferPtr = CurPtr;
2010   Result.setFlag(Token::LeadingSpace);
2011   return false;
2012 }
2013 
2014 //===----------------------------------------------------------------------===//
2015 // Primary Lexing Entry Points
2016 //===----------------------------------------------------------------------===//
2017 
2018 /// ReadToEndOfLine - Read the rest of the current preprocessor line as an
2019 /// uninterpreted string.  This switches the lexer out of directive mode.
2020 std::string Lexer::ReadToEndOfLine() {
2021   assert(ParsingPreprocessorDirective && ParsingFilename == false &&
2022          "Must be in a preprocessing directive!");
2023   std::string Result;
2024   Token Tmp;
2025 
2026   // CurPtr - Cache BufferPtr in an automatic variable.
2027   const char *CurPtr = BufferPtr;
2028   while (1) {
2029     char Char = getAndAdvanceChar(CurPtr, Tmp);
2030     switch (Char) {
2031     default:
2032       Result += Char;
2033       break;
2034     case 0:  // Null.
2035       // Found end of file?
2036       if (CurPtr-1 != BufferEnd) {
2037         if (isCodeCompletionPoint(CurPtr-1)) {
2038           PP->CodeCompleteNaturalLanguage();
2039           cutOffLexing();
2040           return Result;
2041         }
2042 
2043         // Nope, normal character, continue.
2044         Result += Char;
2045         break;
2046       }
2047       // FALL THROUGH.
2048     case '\r':
2049     case '\n':
2050       // Okay, we found the end of the line. First, back up past the \0, \r, \n.
2051       assert(CurPtr[-1] == Char && "Trigraphs for newline?");
2052       BufferPtr = CurPtr-1;
2053 
2054       // Next, lex the character, which should handle the EOD transition.
2055       Lex(Tmp);
2056       if (Tmp.is(tok::code_completion)) {
2057         if (PP)
2058           PP->CodeCompleteNaturalLanguage();
2059         Lex(Tmp);
2060       }
2061       assert(Tmp.is(tok::eod) && "Unexpected token!");
2062 
2063       // Finally, we're done, return the string we found.
2064       return Result;
2065     }
2066   }
2067 }
2068 
2069 /// LexEndOfFile - CurPtr points to the end of this file.  Handle this
2070 /// condition, reporting diagnostics and handling other edge cases as required.
2071 /// This returns true if Result contains a token, false if PP.Lex should be
2072 /// called again.
2073 bool Lexer::LexEndOfFile(Token &Result, const char *CurPtr) {
2074   // If we hit the end of the file while parsing a preprocessor directive,
2075   // end the preprocessor directive first.  The next token returned will
2076   // then be the end of file.
2077   if (ParsingPreprocessorDirective) {
2078     // Done parsing the "line".
2079     ParsingPreprocessorDirective = false;
2080     // Update the location of token as well as BufferPtr.
2081     FormTokenWithChars(Result, CurPtr, tok::eod);
2082 
2083     // Restore comment saving mode, in case it was disabled for directive.
2084     SetCommentRetentionState(PP->getCommentRetentionState());
2085     return true;  // Have a token.
2086   }
2087 
2088   // If we are in raw mode, return this event as an EOF token.  Let the caller
2089   // that put us in raw mode handle the event.
2090   if (isLexingRawMode()) {
2091     Result.startToken();
2092     BufferPtr = BufferEnd;
2093     FormTokenWithChars(Result, BufferEnd, tok::eof);
2094     return true;
2095   }
2096 
2097   // Issue diagnostics for unterminated #if and missing newline.
2098 
2099   // If we are in a #if directive, emit an error.
2100   while (!ConditionalStack.empty()) {
2101     if (PP->getCodeCompletionFileLoc() != FileLoc)
2102       PP->Diag(ConditionalStack.back().IfLoc,
2103                diag::err_pp_unterminated_conditional);
2104     ConditionalStack.pop_back();
2105   }
2106 
2107   // C99 5.1.1.2p2: If the file is non-empty and didn't end in a newline, issue
2108   // a pedwarn.
2109   if (CurPtr != BufferStart && (CurPtr[-1] != '\n' && CurPtr[-1] != '\r'))
2110     Diag(BufferEnd, diag::ext_no_newline_eof)
2111       << FixItHint::CreateInsertion(getSourceLocation(BufferEnd), "\n");
2112 
2113   BufferPtr = CurPtr;
2114 
2115   // Finally, let the preprocessor handle this.
2116   return PP->HandleEndOfFile(Result);
2117 }
2118 
2119 /// isNextPPTokenLParen - Return 1 if the next unexpanded token lexed from
2120 /// the specified lexer will return a tok::l_paren token, 0 if it is something
2121 /// else and 2 if there are no more tokens in the buffer controlled by the
2122 /// lexer.
2123 unsigned Lexer::isNextPPTokenLParen() {
2124   assert(!LexingRawMode && "How can we expand a macro from a skipping buffer?");
2125 
2126   // Switch to 'skipping' mode.  This will ensure that we can lex a token
2127   // without emitting diagnostics, disables macro expansion, and will cause EOF
2128   // to return an EOF token instead of popping the include stack.
2129   LexingRawMode = true;
2130 
2131   // Save state that can be changed while lexing so that we can restore it.
2132   const char *TmpBufferPtr = BufferPtr;
2133   bool inPPDirectiveMode = ParsingPreprocessorDirective;
2134 
2135   Token Tok;
2136   Tok.startToken();
2137   LexTokenInternal(Tok);
2138 
2139   // Restore state that may have changed.
2140   BufferPtr = TmpBufferPtr;
2141   ParsingPreprocessorDirective = inPPDirectiveMode;
2142 
2143   // Restore the lexer back to non-skipping mode.
2144   LexingRawMode = false;
2145 
2146   if (Tok.is(tok::eof))
2147     return 2;
2148   return Tok.is(tok::l_paren);
2149 }
2150 
2151 /// FindConflictEnd - Find the end of a version control conflict marker.
2152 static const char *FindConflictEnd(const char *CurPtr, const char *BufferEnd) {
2153   StringRef RestOfBuffer(CurPtr+7, BufferEnd-CurPtr-7);
2154   size_t Pos = RestOfBuffer.find(">>>>>>>");
2155   while (Pos != StringRef::npos) {
2156     // Must occur at start of line.
2157     if (RestOfBuffer[Pos-1] != '\r' &&
2158         RestOfBuffer[Pos-1] != '\n') {
2159       RestOfBuffer = RestOfBuffer.substr(Pos+7);
2160       Pos = RestOfBuffer.find(">>>>>>>");
2161       continue;
2162     }
2163     return RestOfBuffer.data()+Pos;
2164   }
2165   return 0;
2166 }
2167 
2168 /// IsStartOfConflictMarker - If the specified pointer is the start of a version
2169 /// control conflict marker like '<<<<<<<', recognize it as such, emit an error
2170 /// and recover nicely.  This returns true if it is a conflict marker and false
2171 /// if not.
2172 bool Lexer::IsStartOfConflictMarker(const char *CurPtr) {
2173   // Only a conflict marker if it starts at the beginning of a line.
2174   if (CurPtr != BufferStart &&
2175       CurPtr[-1] != '\n' && CurPtr[-1] != '\r')
2176     return false;
2177 
2178   // Check to see if we have <<<<<<<.
2179   if (BufferEnd-CurPtr < 8 ||
2180       StringRef(CurPtr, 7) != "<<<<<<<")
2181     return false;
2182 
2183   // If we have a situation where we don't care about conflict markers, ignore
2184   // it.
2185   if (IsInConflictMarker || isLexingRawMode())
2186     return false;
2187 
2188   // Check to see if there is a >>>>>>> somewhere in the buffer at the start of
2189   // a line to terminate this conflict marker.
2190   if (FindConflictEnd(CurPtr, BufferEnd)) {
2191     // We found a match.  We are really in a conflict marker.
2192     // Diagnose this, and ignore to the end of line.
2193     Diag(CurPtr, diag::err_conflict_marker);
2194     IsInConflictMarker = true;
2195 
2196     // Skip ahead to the end of line.  We know this exists because the
2197     // end-of-conflict marker starts with \r or \n.
2198     while (*CurPtr != '\r' && *CurPtr != '\n') {
2199       assert(CurPtr != BufferEnd && "Didn't find end of line");
2200       ++CurPtr;
2201     }
2202     BufferPtr = CurPtr;
2203     return true;
2204   }
2205 
2206   // No end of conflict marker found.
2207   return false;
2208 }
2209 
2210 
2211 /// HandleEndOfConflictMarker - If this is a '=======' or '|||||||' or '>>>>>>>'
2212 /// marker, then it is the end of a conflict marker.  Handle it by ignoring up
2213 /// until the end of the line.  This returns true if it is a conflict marker and
2214 /// false if not.
2215 bool Lexer::HandleEndOfConflictMarker(const char *CurPtr) {
2216   // Only a conflict marker if it starts at the beginning of a line.
2217   if (CurPtr != BufferStart &&
2218       CurPtr[-1] != '\n' && CurPtr[-1] != '\r')
2219     return false;
2220 
2221   // If we have a situation where we don't care about conflict markers, ignore
2222   // it.
2223   if (!IsInConflictMarker || isLexingRawMode())
2224     return false;
2225 
2226   // Check to see if we have the marker (7 characters in a row).
2227   for (unsigned i = 1; i != 7; ++i)
2228     if (CurPtr[i] != CurPtr[0])
2229       return false;
2230 
2231   // If we do have it, search for the end of the conflict marker.  This could
2232   // fail if it got skipped with a '#if 0' or something.  Note that CurPtr might
2233   // be the end of conflict marker.
2234   if (const char *End = FindConflictEnd(CurPtr, BufferEnd)) {
2235     CurPtr = End;
2236 
2237     // Skip ahead to the end of line.
2238     while (CurPtr != BufferEnd && *CurPtr != '\r' && *CurPtr != '\n')
2239       ++CurPtr;
2240 
2241     BufferPtr = CurPtr;
2242 
2243     // No longer in the conflict marker.
2244     IsInConflictMarker = false;
2245     return true;
2246   }
2247 
2248   return false;
2249 }
2250 
2251 bool Lexer::isCodeCompletionPoint(const char *CurPtr) const {
2252   if (PP && PP->isCodeCompletionEnabled()) {
2253     SourceLocation Loc = FileLoc.getLocWithOffset(CurPtr-BufferStart);
2254     return Loc == PP->getCodeCompletionLoc();
2255   }
2256 
2257   return false;
2258 }
2259 
2260 
2261 /// LexTokenInternal - This implements a simple C family lexer.  It is an
2262 /// extremely performance critical piece of code.  This assumes that the buffer
2263 /// has a null character at the end of the file.  This returns a preprocessing
2264 /// token, not a normal token, as such, it is an internal interface.  It assumes
2265 /// that the Flags of result have been cleared before calling this.
2266 void Lexer::LexTokenInternal(Token &Result) {
2267 LexNextToken:
2268   // New token, can't need cleaning yet.
2269   Result.clearFlag(Token::NeedsCleaning);
2270   Result.setIdentifierInfo(0);
2271 
2272   // CurPtr - Cache BufferPtr in an automatic variable.
2273   const char *CurPtr = BufferPtr;
2274 
2275   // Small amounts of horizontal whitespace is very common between tokens.
2276   if ((*CurPtr == ' ') || (*CurPtr == '\t')) {
2277     ++CurPtr;
2278     while ((*CurPtr == ' ') || (*CurPtr == '\t'))
2279       ++CurPtr;
2280 
2281     // If we are keeping whitespace and other tokens, just return what we just
2282     // skipped.  The next lexer invocation will return the token after the
2283     // whitespace.
2284     if (isKeepWhitespaceMode()) {
2285       FormTokenWithChars(Result, CurPtr, tok::unknown);
2286       return;
2287     }
2288 
2289     BufferPtr = CurPtr;
2290     Result.setFlag(Token::LeadingSpace);
2291   }
2292 
2293   unsigned SizeTmp, SizeTmp2;   // Temporaries for use in cases below.
2294 
2295   // Read a character, advancing over it.
2296   char Char = getAndAdvanceChar(CurPtr, Result);
2297   tok::TokenKind Kind;
2298 
2299   switch (Char) {
2300   case 0:  // Null.
2301     // Found end of file?
2302     if (CurPtr-1 == BufferEnd) {
2303       // Read the PP instance variable into an automatic variable, because
2304       // LexEndOfFile will often delete 'this'.
2305       Preprocessor *PPCache = PP;
2306       if (LexEndOfFile(Result, CurPtr-1))  // Retreat back into the file.
2307         return;   // Got a token to return.
2308       assert(PPCache && "Raw buffer::LexEndOfFile should return a token");
2309       return PPCache->Lex(Result);
2310     }
2311 
2312     // Check if we are performing code completion.
2313     if (isCodeCompletionPoint(CurPtr-1)) {
2314       // Return the code-completion token.
2315       Result.startToken();
2316       FormTokenWithChars(Result, CurPtr, tok::code_completion);
2317       return;
2318     }
2319 
2320     if (!isLexingRawMode())
2321       Diag(CurPtr-1, diag::null_in_file);
2322     Result.setFlag(Token::LeadingSpace);
2323     if (SkipWhitespace(Result, CurPtr))
2324       return; // KeepWhitespaceMode
2325 
2326     goto LexNextToken;   // GCC isn't tail call eliminating.
2327 
2328   case 26:  // DOS & CP/M EOF: "^Z".
2329     // If we're in Microsoft extensions mode, treat this as end of file.
2330     if (Features.MicrosoftExt) {
2331       // Read the PP instance variable into an automatic variable, because
2332       // LexEndOfFile will often delete 'this'.
2333       Preprocessor *PPCache = PP;
2334       if (LexEndOfFile(Result, CurPtr-1))  // Retreat back into the file.
2335         return;   // Got a token to return.
2336       assert(PPCache && "Raw buffer::LexEndOfFile should return a token");
2337       return PPCache->Lex(Result);
2338     }
2339     // If Microsoft extensions are disabled, this is just random garbage.
2340     Kind = tok::unknown;
2341     break;
2342 
2343   case '\n':
2344   case '\r':
2345     // If we are inside a preprocessor directive and we see the end of line,
2346     // we know we are done with the directive, so return an EOD token.
2347     if (ParsingPreprocessorDirective) {
2348       // Done parsing the "line".
2349       ParsingPreprocessorDirective = false;
2350 
2351       // Restore comment saving mode, in case it was disabled for directive.
2352       SetCommentRetentionState(PP->getCommentRetentionState());
2353 
2354       // Since we consumed a newline, we are back at the start of a line.
2355       IsAtStartOfLine = true;
2356 
2357       Kind = tok::eod;
2358       break;
2359     }
2360     // The returned token is at the start of the line.
2361     Result.setFlag(Token::StartOfLine);
2362     // No leading whitespace seen so far.
2363     Result.clearFlag(Token::LeadingSpace);
2364 
2365     if (SkipWhitespace(Result, CurPtr))
2366       return; // KeepWhitespaceMode
2367     goto LexNextToken;   // GCC isn't tail call eliminating.
2368   case ' ':
2369   case '\t':
2370   case '\f':
2371   case '\v':
2372   SkipHorizontalWhitespace:
2373     Result.setFlag(Token::LeadingSpace);
2374     if (SkipWhitespace(Result, CurPtr))
2375       return; // KeepWhitespaceMode
2376 
2377   SkipIgnoredUnits:
2378     CurPtr = BufferPtr;
2379 
2380     // If the next token is obviously a // or /* */ comment, skip it efficiently
2381     // too (without going through the big switch stmt).
2382     if (CurPtr[0] == '/' && CurPtr[1] == '/' && !inKeepCommentMode() &&
2383         Features.BCPLComment && !Features.TraditionalCPP) {
2384       if (SkipBCPLComment(Result, CurPtr+2))
2385         return; // There is a token to return.
2386       goto SkipIgnoredUnits;
2387     } else if (CurPtr[0] == '/' && CurPtr[1] == '*' && !inKeepCommentMode()) {
2388       if (SkipBlockComment(Result, CurPtr+2))
2389         return; // There is a token to return.
2390       goto SkipIgnoredUnits;
2391     } else if (isHorizontalWhitespace(*CurPtr)) {
2392       goto SkipHorizontalWhitespace;
2393     }
2394     goto LexNextToken;   // GCC isn't tail call eliminating.
2395 
2396   // C99 6.4.4.1: Integer Constants.
2397   // C99 6.4.4.2: Floating Constants.
2398   case '0': case '1': case '2': case '3': case '4':
2399   case '5': case '6': case '7': case '8': case '9':
2400     // Notify MIOpt that we read a non-whitespace/non-comment token.
2401     MIOpt.ReadToken();
2402     return LexNumericConstant(Result, CurPtr);
2403 
2404   case 'u':   // Identifier (uber) or C++0x UTF-8 or UTF-16 string literal
2405     // Notify MIOpt that we read a non-whitespace/non-comment token.
2406     MIOpt.ReadToken();
2407 
2408     if (Features.CPlusPlus0x) {
2409       Char = getCharAndSize(CurPtr, SizeTmp);
2410 
2411       // UTF-16 string literal
2412       if (Char == '"')
2413         return LexStringLiteral(Result, ConsumeChar(CurPtr, SizeTmp, Result),
2414                                 tok::utf16_string_literal);
2415 
2416       // UTF-16 character constant
2417       if (Char == '\'')
2418         return LexCharConstant(Result, ConsumeChar(CurPtr, SizeTmp, Result),
2419                                tok::utf16_char_constant);
2420 
2421       // UTF-16 raw string literal
2422       if (Char == 'R' && getCharAndSize(CurPtr + SizeTmp, SizeTmp2) == '"')
2423         return LexRawStringLiteral(Result,
2424                                ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
2425                                            SizeTmp2, Result),
2426                                tok::utf16_string_literal);
2427 
2428       if (Char == '8') {
2429         char Char2 = getCharAndSize(CurPtr + SizeTmp, SizeTmp2);
2430 
2431         // UTF-8 string literal
2432         if (Char2 == '"')
2433           return LexStringLiteral(Result,
2434                                ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
2435                                            SizeTmp2, Result),
2436                                tok::utf8_string_literal);
2437 
2438         if (Char2 == 'R') {
2439           unsigned SizeTmp3;
2440           char Char3 = getCharAndSize(CurPtr + SizeTmp + SizeTmp2, SizeTmp3);
2441           // UTF-8 raw string literal
2442           if (Char3 == '"') {
2443             return LexRawStringLiteral(Result,
2444                    ConsumeChar(ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
2445                                            SizeTmp2, Result),
2446                                SizeTmp3, Result),
2447                    tok::utf8_string_literal);
2448           }
2449         }
2450       }
2451     }
2452 
2453     // treat u like the start of an identifier.
2454     return LexIdentifier(Result, CurPtr);
2455 
2456   case 'U':   // Identifier (Uber) or C++0x UTF-32 string literal
2457     // Notify MIOpt that we read a non-whitespace/non-comment token.
2458     MIOpt.ReadToken();
2459 
2460     if (Features.CPlusPlus0x) {
2461       Char = getCharAndSize(CurPtr, SizeTmp);
2462 
2463       // UTF-32 string literal
2464       if (Char == '"')
2465         return LexStringLiteral(Result, ConsumeChar(CurPtr, SizeTmp, Result),
2466                                 tok::utf32_string_literal);
2467 
2468       // UTF-32 character constant
2469       if (Char == '\'')
2470         return LexCharConstant(Result, ConsumeChar(CurPtr, SizeTmp, Result),
2471                                tok::utf32_char_constant);
2472 
2473       // UTF-32 raw string literal
2474       if (Char == 'R' && getCharAndSize(CurPtr + SizeTmp, SizeTmp2) == '"')
2475         return LexRawStringLiteral(Result,
2476                                ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
2477                                            SizeTmp2, Result),
2478                                tok::utf32_string_literal);
2479     }
2480 
2481     // treat U like the start of an identifier.
2482     return LexIdentifier(Result, CurPtr);
2483 
2484   case 'R': // Identifier or C++0x raw string literal
2485     // Notify MIOpt that we read a non-whitespace/non-comment token.
2486     MIOpt.ReadToken();
2487 
2488     if (Features.CPlusPlus0x) {
2489       Char = getCharAndSize(CurPtr, SizeTmp);
2490 
2491       if (Char == '"')
2492         return LexRawStringLiteral(Result,
2493                                    ConsumeChar(CurPtr, SizeTmp, Result),
2494                                    tok::string_literal);
2495     }
2496 
2497     // treat R like the start of an identifier.
2498     return LexIdentifier(Result, CurPtr);
2499 
2500   case 'L':   // Identifier (Loony) or wide literal (L'x' or L"xyz").
2501     // Notify MIOpt that we read a non-whitespace/non-comment token.
2502     MIOpt.ReadToken();
2503     Char = getCharAndSize(CurPtr, SizeTmp);
2504 
2505     // Wide string literal.
2506     if (Char == '"')
2507       return LexStringLiteral(Result, ConsumeChar(CurPtr, SizeTmp, Result),
2508                               tok::wide_string_literal);
2509 
2510     // Wide raw string literal.
2511     if (Features.CPlusPlus0x && Char == 'R' &&
2512         getCharAndSize(CurPtr + SizeTmp, SizeTmp2) == '"')
2513       return LexRawStringLiteral(Result,
2514                                ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
2515                                            SizeTmp2, Result),
2516                                tok::wide_string_literal);
2517 
2518     // Wide character constant.
2519     if (Char == '\'')
2520       return LexCharConstant(Result, ConsumeChar(CurPtr, SizeTmp, Result),
2521                              tok::wide_char_constant);
2522     // FALL THROUGH, treating L like the start of an identifier.
2523 
2524   // C99 6.4.2: Identifiers.
2525   case 'A': case 'B': case 'C': case 'D': case 'E': case 'F': case 'G':
2526   case 'H': case 'I': case 'J': case 'K':    /*'L'*/case 'M': case 'N':
2527   case 'O': case 'P': case 'Q':    /*'R'*/case 'S': case 'T':    /*'U'*/
2528   case 'V': case 'W': case 'X': case 'Y': case 'Z':
2529   case 'a': case 'b': case 'c': case 'd': case 'e': case 'f': case 'g':
2530   case 'h': case 'i': case 'j': case 'k': case 'l': case 'm': case 'n':
2531   case 'o': case 'p': case 'q': case 'r': case 's': case 't':    /*'u'*/
2532   case 'v': case 'w': case 'x': case 'y': case 'z':
2533   case '_':
2534     // Notify MIOpt that we read a non-whitespace/non-comment token.
2535     MIOpt.ReadToken();
2536     return LexIdentifier(Result, CurPtr);
2537 
2538   case '$':   // $ in identifiers.
2539     if (Features.DollarIdents) {
2540       if (!isLexingRawMode())
2541         Diag(CurPtr-1, diag::ext_dollar_in_identifier);
2542       // Notify MIOpt that we read a non-whitespace/non-comment token.
2543       MIOpt.ReadToken();
2544       return LexIdentifier(Result, CurPtr);
2545     }
2546 
2547     Kind = tok::unknown;
2548     break;
2549 
2550   // C99 6.4.4: Character Constants.
2551   case '\'':
2552     // Notify MIOpt that we read a non-whitespace/non-comment token.
2553     MIOpt.ReadToken();
2554     return LexCharConstant(Result, CurPtr, tok::char_constant);
2555 
2556   // C99 6.4.5: String Literals.
2557   case '"':
2558     // Notify MIOpt that we read a non-whitespace/non-comment token.
2559     MIOpt.ReadToken();
2560     return LexStringLiteral(Result, CurPtr, tok::string_literal);
2561 
2562   // C99 6.4.6: Punctuators.
2563   case '?':
2564     Kind = tok::question;
2565     break;
2566   case '[':
2567     Kind = tok::l_square;
2568     break;
2569   case ']':
2570     Kind = tok::r_square;
2571     break;
2572   case '(':
2573     Kind = tok::l_paren;
2574     break;
2575   case ')':
2576     Kind = tok::r_paren;
2577     break;
2578   case '{':
2579     Kind = tok::l_brace;
2580     break;
2581   case '}':
2582     Kind = tok::r_brace;
2583     break;
2584   case '.':
2585     Char = getCharAndSize(CurPtr, SizeTmp);
2586     if (Char >= '0' && Char <= '9') {
2587       // Notify MIOpt that we read a non-whitespace/non-comment token.
2588       MIOpt.ReadToken();
2589 
2590       return LexNumericConstant(Result, ConsumeChar(CurPtr, SizeTmp, Result));
2591     } else if (Features.CPlusPlus && Char == '*') {
2592       Kind = tok::periodstar;
2593       CurPtr += SizeTmp;
2594     } else if (Char == '.' &&
2595                getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == '.') {
2596       Kind = tok::ellipsis;
2597       CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
2598                            SizeTmp2, Result);
2599     } else {
2600       Kind = tok::period;
2601     }
2602     break;
2603   case '&':
2604     Char = getCharAndSize(CurPtr, SizeTmp);
2605     if (Char == '&') {
2606       Kind = tok::ampamp;
2607       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2608     } else if (Char == '=') {
2609       Kind = tok::ampequal;
2610       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2611     } else {
2612       Kind = tok::amp;
2613     }
2614     break;
2615   case '*':
2616     if (getCharAndSize(CurPtr, SizeTmp) == '=') {
2617       Kind = tok::starequal;
2618       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2619     } else {
2620       Kind = tok::star;
2621     }
2622     break;
2623   case '+':
2624     Char = getCharAndSize(CurPtr, SizeTmp);
2625     if (Char == '+') {
2626       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2627       Kind = tok::plusplus;
2628     } else if (Char == '=') {
2629       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2630       Kind = tok::plusequal;
2631     } else {
2632       Kind = tok::plus;
2633     }
2634     break;
2635   case '-':
2636     Char = getCharAndSize(CurPtr, SizeTmp);
2637     if (Char == '-') {      // --
2638       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2639       Kind = tok::minusminus;
2640     } else if (Char == '>' && Features.CPlusPlus &&
2641                getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == '*') {  // C++ ->*
2642       CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
2643                            SizeTmp2, Result);
2644       Kind = tok::arrowstar;
2645     } else if (Char == '>') {   // ->
2646       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2647       Kind = tok::arrow;
2648     } else if (Char == '=') {   // -=
2649       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2650       Kind = tok::minusequal;
2651     } else {
2652       Kind = tok::minus;
2653     }
2654     break;
2655   case '~':
2656     Kind = tok::tilde;
2657     break;
2658   case '!':
2659     if (getCharAndSize(CurPtr, SizeTmp) == '=') {
2660       Kind = tok::exclaimequal;
2661       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2662     } else {
2663       Kind = tok::exclaim;
2664     }
2665     break;
2666   case '/':
2667     // 6.4.9: Comments
2668     Char = getCharAndSize(CurPtr, SizeTmp);
2669     if (Char == '/') {         // BCPL comment.
2670       // Even if BCPL comments are disabled (e.g. in C89 mode), we generally
2671       // want to lex this as a comment.  There is one problem with this though,
2672       // that in one particular corner case, this can change the behavior of the
2673       // resultant program.  For example, In  "foo //**/ bar", C89 would lex
2674       // this as "foo / bar" and langauges with BCPL comments would lex it as
2675       // "foo".  Check to see if the character after the second slash is a '*'.
2676       // If so, we will lex that as a "/" instead of the start of a comment.
2677       // However, we never do this in -traditional-cpp mode.
2678       if ((Features.BCPLComment ||
2679            getCharAndSize(CurPtr+SizeTmp, SizeTmp2) != '*') &&
2680           !Features.TraditionalCPP) {
2681         if (SkipBCPLComment(Result, ConsumeChar(CurPtr, SizeTmp, Result)))
2682           return; // There is a token to return.
2683 
2684         // It is common for the tokens immediately after a // comment to be
2685         // whitespace (indentation for the next line).  Instead of going through
2686         // the big switch, handle it efficiently now.
2687         goto SkipIgnoredUnits;
2688       }
2689     }
2690 
2691     if (Char == '*') {  // /**/ comment.
2692       if (SkipBlockComment(Result, ConsumeChar(CurPtr, SizeTmp, Result)))
2693         return; // There is a token to return.
2694       goto LexNextToken;   // GCC isn't tail call eliminating.
2695     }
2696 
2697     if (Char == '=') {
2698       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2699       Kind = tok::slashequal;
2700     } else {
2701       Kind = tok::slash;
2702     }
2703     break;
2704   case '%':
2705     Char = getCharAndSize(CurPtr, SizeTmp);
2706     if (Char == '=') {
2707       Kind = tok::percentequal;
2708       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2709     } else if (Features.Digraphs && Char == '>') {
2710       Kind = tok::r_brace;                             // '%>' -> '}'
2711       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2712     } else if (Features.Digraphs && Char == ':') {
2713       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2714       Char = getCharAndSize(CurPtr, SizeTmp);
2715       if (Char == '%' && getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == ':') {
2716         Kind = tok::hashhash;                          // '%:%:' -> '##'
2717         CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
2718                              SizeTmp2, Result);
2719       } else if (Char == '@' && Features.MicrosoftExt) {// %:@ -> #@ -> Charize
2720         CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2721         if (!isLexingRawMode())
2722           Diag(BufferPtr, diag::charize_microsoft_ext);
2723         Kind = tok::hashat;
2724       } else {                                         // '%:' -> '#'
2725         // We parsed a # character.  If this occurs at the start of the line,
2726         // it's actually the start of a preprocessing directive.  Callback to
2727         // the preprocessor to handle it.
2728         // FIXME: -fpreprocessed mode??
2729         if (Result.isAtStartOfLine() && !LexingRawMode && !Is_PragmaLexer) {
2730           FormTokenWithChars(Result, CurPtr, tok::hash);
2731           PP->HandleDirective(Result);
2732 
2733           // As an optimization, if the preprocessor didn't switch lexers, tail
2734           // recurse.
2735           if (PP->isCurrentLexer(this)) {
2736             // Start a new token. If this is a #include or something, the PP may
2737             // want us starting at the beginning of the line again.  If so, set
2738             // the StartOfLine flag and clear LeadingSpace.
2739             if (IsAtStartOfLine) {
2740               Result.setFlag(Token::StartOfLine);
2741               Result.clearFlag(Token::LeadingSpace);
2742               IsAtStartOfLine = false;
2743             }
2744             goto LexNextToken;   // GCC isn't tail call eliminating.
2745           }
2746 
2747           return PP->Lex(Result);
2748         }
2749 
2750         Kind = tok::hash;
2751       }
2752     } else {
2753       Kind = tok::percent;
2754     }
2755     break;
2756   case '<':
2757     Char = getCharAndSize(CurPtr, SizeTmp);
2758     if (ParsingFilename) {
2759       return LexAngledStringLiteral(Result, CurPtr);
2760     } else if (Char == '<') {
2761       char After = getCharAndSize(CurPtr+SizeTmp, SizeTmp2);
2762       if (After == '=') {
2763         Kind = tok::lesslessequal;
2764         CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
2765                              SizeTmp2, Result);
2766       } else if (After == '<' && IsStartOfConflictMarker(CurPtr-1)) {
2767         // If this is actually a '<<<<<<<' version control conflict marker,
2768         // recognize it as such and recover nicely.
2769         goto LexNextToken;
2770       } else if (Features.CUDA && After == '<') {
2771         Kind = tok::lesslessless;
2772         CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
2773                              SizeTmp2, Result);
2774       } else {
2775         CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2776         Kind = tok::lessless;
2777       }
2778     } else if (Char == '=') {
2779       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2780       Kind = tok::lessequal;
2781     } else if (Features.Digraphs && Char == ':') {     // '<:' -> '['
2782       if (Features.CPlusPlus0x &&
2783           getCharAndSize(CurPtr + SizeTmp, SizeTmp2) == ':') {
2784         // C++0x [lex.pptoken]p3:
2785         //  Otherwise, if the next three characters are <:: and the subsequent
2786         //  character is neither : nor >, the < is treated as a preprocessor
2787         //  token by itself and not as the first character of the alternative
2788         //  token <:.
2789         unsigned SizeTmp3;
2790         char After = getCharAndSize(CurPtr + SizeTmp + SizeTmp2, SizeTmp3);
2791         if (After != ':' && After != '>') {
2792           Kind = tok::less;
2793           break;
2794         }
2795       }
2796 
2797       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2798       Kind = tok::l_square;
2799     } else if (Features.Digraphs && Char == '%') {     // '<%' -> '{'
2800       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2801       Kind = tok::l_brace;
2802     } else {
2803       Kind = tok::less;
2804     }
2805     break;
2806   case '>':
2807     Char = getCharAndSize(CurPtr, SizeTmp);
2808     if (Char == '=') {
2809       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2810       Kind = tok::greaterequal;
2811     } else if (Char == '>') {
2812       char After = getCharAndSize(CurPtr+SizeTmp, SizeTmp2);
2813       if (After == '=') {
2814         CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
2815                              SizeTmp2, Result);
2816         Kind = tok::greatergreaterequal;
2817       } else if (After == '>' && HandleEndOfConflictMarker(CurPtr-1)) {
2818         // If this is '>>>>>>>' and we're in a conflict marker, ignore it.
2819         goto LexNextToken;
2820       } else if (Features.CUDA && After == '>') {
2821         Kind = tok::greatergreatergreater;
2822         CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
2823                              SizeTmp2, Result);
2824       } else {
2825         CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2826         Kind = tok::greatergreater;
2827       }
2828 
2829     } else {
2830       Kind = tok::greater;
2831     }
2832     break;
2833   case '^':
2834     Char = getCharAndSize(CurPtr, SizeTmp);
2835     if (Char == '=') {
2836       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2837       Kind = tok::caretequal;
2838     } else {
2839       Kind = tok::caret;
2840     }
2841     break;
2842   case '|':
2843     Char = getCharAndSize(CurPtr, SizeTmp);
2844     if (Char == '=') {
2845       Kind = tok::pipeequal;
2846       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2847     } else if (Char == '|') {
2848       // If this is '|||||||' and we're in a conflict marker, ignore it.
2849       if (CurPtr[1] == '|' && HandleEndOfConflictMarker(CurPtr-1))
2850         goto LexNextToken;
2851       Kind = tok::pipepipe;
2852       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2853     } else {
2854       Kind = tok::pipe;
2855     }
2856     break;
2857   case ':':
2858     Char = getCharAndSize(CurPtr, SizeTmp);
2859     if (Features.Digraphs && Char == '>') {
2860       Kind = tok::r_square; // ':>' -> ']'
2861       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2862     } else if (Features.CPlusPlus && Char == ':') {
2863       Kind = tok::coloncolon;
2864       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2865     } else {
2866       Kind = tok::colon;
2867     }
2868     break;
2869   case ';':
2870     Kind = tok::semi;
2871     break;
2872   case '=':
2873     Char = getCharAndSize(CurPtr, SizeTmp);
2874     if (Char == '=') {
2875       // If this is '=======' and we're in a conflict marker, ignore it.
2876       if (CurPtr[1] == '=' && HandleEndOfConflictMarker(CurPtr-1))
2877         goto LexNextToken;
2878 
2879       Kind = tok::equalequal;
2880       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2881     } else {
2882       Kind = tok::equal;
2883     }
2884     break;
2885   case ',':
2886     Kind = tok::comma;
2887     break;
2888   case '#':
2889     Char = getCharAndSize(CurPtr, SizeTmp);
2890     if (Char == '#') {
2891       Kind = tok::hashhash;
2892       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2893     } else if (Char == '@' && Features.MicrosoftExt) {  // #@ -> Charize
2894       Kind = tok::hashat;
2895       if (!isLexingRawMode())
2896         Diag(BufferPtr, diag::charize_microsoft_ext);
2897       CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
2898     } else {
2899       // We parsed a # character.  If this occurs at the start of the line,
2900       // it's actually the start of a preprocessing directive.  Callback to
2901       // the preprocessor to handle it.
2902       // FIXME: -fpreprocessed mode??
2903       if (Result.isAtStartOfLine() && !LexingRawMode && !Is_PragmaLexer) {
2904         FormTokenWithChars(Result, CurPtr, tok::hash);
2905         PP->HandleDirective(Result);
2906 
2907         // As an optimization, if the preprocessor didn't switch lexers, tail
2908         // recurse.
2909         if (PP->isCurrentLexer(this)) {
2910           // Start a new token.  If this is a #include or something, the PP may
2911           // want us starting at the beginning of the line again.  If so, set
2912           // the StartOfLine flag and clear LeadingSpace.
2913           if (IsAtStartOfLine) {
2914             Result.setFlag(Token::StartOfLine);
2915             Result.clearFlag(Token::LeadingSpace);
2916             IsAtStartOfLine = false;
2917           }
2918           goto LexNextToken;   // GCC isn't tail call eliminating.
2919         }
2920         return PP->Lex(Result);
2921       }
2922 
2923       Kind = tok::hash;
2924     }
2925     break;
2926 
2927   case '@':
2928     // Objective C support.
2929     if (CurPtr[-1] == '@' && Features.ObjC1)
2930       Kind = tok::at;
2931     else
2932       Kind = tok::unknown;
2933     break;
2934 
2935   case '\\':
2936     // FIXME: UCN's.
2937     // FALL THROUGH.
2938   default:
2939     Kind = tok::unknown;
2940     break;
2941   }
2942 
2943   // Notify MIOpt that we read a non-whitespace/non-comment token.
2944   MIOpt.ReadToken();
2945 
2946   // Update the location of token as well as BufferPtr.
2947   FormTokenWithChars(Result, CurPtr, Kind);
2948 }
2949