Coverage Report

Created: 2024-01-17 10:31

/src/llvm-project/clang/lib/Lex/Pragma.cpp
Line
Count
Source (jump to first uncovered line)
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//===- Pragma.cpp - Pragma registration and handling ----------------------===//
2
//
3
// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4
// See https://llvm.org/LICENSE.txt for license information.
5
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
7
//===----------------------------------------------------------------------===//
8
//
9
// This file implements the PragmaHandler/PragmaTable interfaces and implements
10
// pragma related methods of the Preprocessor class.
11
//
12
//===----------------------------------------------------------------------===//
13
14
#include "clang/Lex/Pragma.h"
15
#include "clang/Basic/CLWarnings.h"
16
#include "clang/Basic/Diagnostic.h"
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#include "clang/Basic/FileManager.h"
18
#include "clang/Basic/IdentifierTable.h"
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#include "clang/Basic/LLVM.h"
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#include "clang/Basic/LangOptions.h"
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#include "clang/Basic/Module.h"
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#include "clang/Basic/SourceLocation.h"
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#include "clang/Basic/SourceManager.h"
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#include "clang/Basic/TokenKinds.h"
25
#include "clang/Lex/HeaderSearch.h"
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#include "clang/Lex/LexDiagnostic.h"
27
#include "clang/Lex/Lexer.h"
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#include "clang/Lex/LiteralSupport.h"
29
#include "clang/Lex/MacroInfo.h"
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#include "clang/Lex/ModuleLoader.h"
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#include "clang/Lex/PPCallbacks.h"
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#include "clang/Lex/Preprocessor.h"
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#include "clang/Lex/PreprocessorLexer.h"
34
#include "clang/Lex/PreprocessorOptions.h"
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#include "clang/Lex/Token.h"
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#include "clang/Lex/TokenLexer.h"
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#include "llvm/ADT/ArrayRef.h"
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#include "llvm/ADT/DenseMap.h"
39
#include "llvm/ADT/STLExtras.h"
40
#include "llvm/ADT/SmallString.h"
41
#include "llvm/ADT/SmallVector.h"
42
#include "llvm/ADT/StringRef.h"
43
#include "llvm/Support/Compiler.h"
44
#include "llvm/Support/ErrorHandling.h"
45
#include "llvm/Support/Timer.h"
46
#include <algorithm>
47
#include <cassert>
48
#include <cstddef>
49
#include <cstdint>
50
#include <limits>
51
#include <optional>
52
#include <string>
53
#include <utility>
54
#include <vector>
55
56
using namespace clang;
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58
// Out-of-line destructor to provide a home for the class.
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2.85k
PragmaHandler::~PragmaHandler() = default;
60
61
//===----------------------------------------------------------------------===//
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// EmptyPragmaHandler Implementation.
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//===----------------------------------------------------------------------===//
64
65
0
EmptyPragmaHandler::EmptyPragmaHandler(StringRef Name) : PragmaHandler(Name) {}
66
67
void EmptyPragmaHandler::HandlePragma(Preprocessor &PP,
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                                      PragmaIntroducer Introducer,
69
0
                                      Token &FirstToken) {}
70
71
//===----------------------------------------------------------------------===//
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// PragmaNamespace Implementation.
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//===----------------------------------------------------------------------===//
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/// FindHandler - Check to see if there is already a handler for the
76
/// specified name.  If not, return the handler for the null identifier if it
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/// exists, otherwise return null.  If IgnoreNull is true (the default) then
78
/// the null handler isn't returned on failure to match.
79
PragmaHandler *PragmaNamespace::FindHandler(StringRef Name,
80
4.73k
                                            bool IgnoreNull) const {
81
4.73k
  auto I = Handlers.find(Name);
82
4.73k
  if (I != Handlers.end())
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2.07k
    return I->getValue().get();
84
2.66k
  if (IgnoreNull)
85
2.66k
    return nullptr;
86
0
  I = Handlers.find(StringRef());
87
0
  if (I != Handlers.end())
88
0
    return I->getValue().get();
89
0
  return nullptr;
90
0
}
91
92
2.89k
void PragmaNamespace::AddPragma(PragmaHandler *Handler) {
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2.89k
  assert(!Handlers.count(Handler->getName()) &&
94
2.89k
         "A handler with this name is already registered in this namespace");
95
0
  Handlers[Handler->getName()].reset(Handler);
96
2.89k
}
97
98
1.42k
void PragmaNamespace::RemovePragmaHandler(PragmaHandler *Handler) {
99
1.42k
  auto I = Handlers.find(Handler->getName());
100
1.42k
  assert(I != Handlers.end() &&
101
1.42k
         "Handler not registered in this namespace");
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  // Release ownership back to the caller.
103
0
  I->getValue().release();
104
1.42k
  Handlers.erase(I);
105
1.42k
}
106
107
void PragmaNamespace::HandlePragma(Preprocessor &PP,
108
0
                                   PragmaIntroducer Introducer, Token &Tok) {
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  // Read the 'namespace' that the directive is in, e.g. STDC.  Do not macro
110
  // expand it, the user can have a STDC #define, that should not affect this.
111
0
  PP.LexUnexpandedToken(Tok);
112
113
  // Get the handler for this token.  If there is no handler, ignore the pragma.
114
0
  PragmaHandler *Handler
115
0
    = FindHandler(Tok.getIdentifierInfo() ? Tok.getIdentifierInfo()->getName()
116
0
                                          : StringRef(),
117
0
                  /*IgnoreNull=*/false);
118
0
  if (!Handler) {
119
0
    PP.Diag(Tok, diag::warn_pragma_ignored);
120
0
    return;
121
0
  }
122
123
  // Otherwise, pass it down.
124
0
  Handler->HandlePragma(PP, Introducer, Tok);
125
0
}
126
127
//===----------------------------------------------------------------------===//
128
// Preprocessor Pragma Directive Handling.
129
//===----------------------------------------------------------------------===//
130
131
namespace {
132
// TokenCollector provides the option to collect tokens that were "read"
133
// and return them to the stream to be read later.
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// Currently used when reading _Pragma/__pragma directives.
135
struct TokenCollector {
136
  Preprocessor &Self;
137
  bool Collect;
138
  SmallVector<Token, 3> Tokens;
139
  Token &Tok;
140
141
0
  void lex() {
142
0
    if (Collect)
143
0
      Tokens.push_back(Tok);
144
0
    Self.Lex(Tok);
145
0
  }
146
147
0
  void revert() {
148
0
    assert(Collect && "did not collect tokens");
149
0
    assert(!Tokens.empty() && "collected unexpected number of tokens");
150
151
    // Push the ( "string" ) tokens into the token stream.
152
0
    auto Toks = std::make_unique<Token[]>(Tokens.size());
153
0
    std::copy(Tokens.begin() + 1, Tokens.end(), Toks.get());
154
0
    Toks[Tokens.size() - 1] = Tok;
155
0
    Self.EnterTokenStream(std::move(Toks), Tokens.size(),
156
0
                          /*DisableMacroExpansion*/ true,
157
0
                          /*IsReinject*/ true);
158
159
    // ... and return the pragma token unchanged.
160
0
    Tok = *Tokens.begin();
161
0
  }
162
};
163
} // namespace
164
165
/// HandlePragmaDirective - The "\#pragma" directive has been parsed.  Lex the
166
/// rest of the pragma, passing it to the registered pragma handlers.
167
0
void Preprocessor::HandlePragmaDirective(PragmaIntroducer Introducer) {
168
0
  if (Callbacks)
169
0
    Callbacks->PragmaDirective(Introducer.Loc, Introducer.Kind);
170
171
0
  if (!PragmasEnabled)
172
0
    return;
173
174
0
  ++NumPragma;
175
176
  // Invoke the first level of pragma handlers which reads the namespace id.
177
0
  Token Tok;
178
0
  PragmaHandlers->HandlePragma(*this, Introducer, Tok);
179
180
  // If the pragma handler didn't read the rest of the line, consume it now.
181
0
  if ((CurTokenLexer && CurTokenLexer->isParsingPreprocessorDirective())
182
0
   || (CurPPLexer && CurPPLexer->ParsingPreprocessorDirective))
183
0
    DiscardUntilEndOfDirective();
184
0
}
185
186
/// Handle_Pragma - Read a _Pragma directive, slice it up, process it, then
187
/// return the first token after the directive.  The _Pragma token has just
188
/// been read into 'Tok'.
189
0
void Preprocessor::Handle_Pragma(Token &Tok) {
190
  // C11 6.10.3.4/3:
191
  //   all pragma unary operator expressions within [a completely
192
  //   macro-replaced preprocessing token sequence] are [...] processed [after
193
  //   rescanning is complete]
194
  //
195
  // This means that we execute _Pragma operators in two cases:
196
  //
197
  //  1) on token sequences that would otherwise be produced as the output of
198
  //     phase 4 of preprocessing, and
199
  //  2) on token sequences formed as the macro-replaced token sequence of a
200
  //     macro argument
201
  //
202
  // Case #2 appears to be a wording bug: only _Pragmas that would survive to
203
  // the end of phase 4 should actually be executed. Discussion on the WG14
204
  // mailing list suggests that a _Pragma operator is notionally checked early,
205
  // but only pragmas that survive to the end of phase 4 should be executed.
206
  //
207
  // In Case #2, we check the syntax now, but then put the tokens back into the
208
  // token stream for later consumption.
209
210
0
  TokenCollector Toks = {*this, InMacroArgPreExpansion, {}, Tok};
211
212
  // Remember the pragma token location.
213
0
  SourceLocation PragmaLoc = Tok.getLocation();
214
215
  // Read the '('.
216
0
  Toks.lex();
217
0
  if (Tok.isNot(tok::l_paren)) {
218
0
    Diag(PragmaLoc, diag::err__Pragma_malformed);
219
0
    return;
220
0
  }
221
222
  // Read the '"..."'.
223
0
  Toks.lex();
224
0
  if (!tok::isStringLiteral(Tok.getKind())) {
225
0
    Diag(PragmaLoc, diag::err__Pragma_malformed);
226
    // Skip bad tokens, and the ')', if present.
227
0
    if (Tok.isNot(tok::r_paren) && Tok.isNot(tok::eof))
228
0
      Lex(Tok);
229
0
    while (Tok.isNot(tok::r_paren) &&
230
0
           !Tok.isAtStartOfLine() &&
231
0
           Tok.isNot(tok::eof))
232
0
      Lex(Tok);
233
0
    if (Tok.is(tok::r_paren))
234
0
      Lex(Tok);
235
0
    return;
236
0
  }
237
238
0
  if (Tok.hasUDSuffix()) {
239
0
    Diag(Tok, diag::err_invalid_string_udl);
240
    // Skip this token, and the ')', if present.
241
0
    Lex(Tok);
242
0
    if (Tok.is(tok::r_paren))
243
0
      Lex(Tok);
244
0
    return;
245
0
  }
246
247
  // Remember the string.
248
0
  Token StrTok = Tok;
249
250
  // Read the ')'.
251
0
  Toks.lex();
252
0
  if (Tok.isNot(tok::r_paren)) {
253
0
    Diag(PragmaLoc, diag::err__Pragma_malformed);
254
0
    return;
255
0
  }
256
257
  // If we're expanding a macro argument, put the tokens back.
258
0
  if (InMacroArgPreExpansion) {
259
0
    Toks.revert();
260
0
    return;
261
0
  }
262
263
0
  SourceLocation RParenLoc = Tok.getLocation();
264
0
  bool Invalid = false;
265
0
  SmallString<64> StrVal;
266
0
  StrVal.resize(StrTok.getLength());
267
0
  StringRef StrValRef = getSpelling(StrTok, StrVal, &Invalid);
268
0
  if (Invalid) {
269
0
    Diag(PragmaLoc, diag::err__Pragma_malformed);
270
0
    return;
271
0
  }
272
273
0
  assert(StrValRef.size() <= StrVal.size());
274
275
  // If the token was spelled somewhere else, copy it.
276
0
  if (StrValRef.begin() != StrVal.begin())
277
0
    StrVal.assign(StrValRef);
278
  // Truncate if necessary.
279
0
  else if (StrValRef.size() != StrVal.size())
280
0
    StrVal.resize(StrValRef.size());
281
282
  // The _Pragma is lexically sound.  Destringize according to C11 6.10.9.1.
283
0
  prepare_PragmaString(StrVal);
284
285
  // Plop the string (including the newline and trailing null) into a buffer
286
  // where we can lex it.
287
0
  Token TmpTok;
288
0
  TmpTok.startToken();
289
0
  CreateString(StrVal, TmpTok);
290
0
  SourceLocation TokLoc = TmpTok.getLocation();
291
292
  // Make and enter a lexer object so that we lex and expand the tokens just
293
  // like any others.
294
0
  Lexer *TL = Lexer::Create_PragmaLexer(TokLoc, PragmaLoc, RParenLoc,
295
0
                                        StrVal.size(), *this);
296
297
0
  EnterSourceFileWithLexer(TL, nullptr);
298
299
  // With everything set up, lex this as a #pragma directive.
300
0
  HandlePragmaDirective({PIK__Pragma, PragmaLoc});
301
302
  // Finally, return whatever came after the pragma directive.
303
0
  return Lex(Tok);
304
0
}
305
306
0
void clang::prepare_PragmaString(SmallVectorImpl<char> &StrVal) {
307
0
  if (StrVal[0] == 'L' || StrVal[0] == 'U' ||
308
0
      (StrVal[0] == 'u' && StrVal[1] != '8'))
309
0
    StrVal.erase(StrVal.begin());
310
0
  else if (StrVal[0] == 'u')
311
0
    StrVal.erase(StrVal.begin(), StrVal.begin() + 2);
312
313
0
  if (StrVal[0] == 'R') {
314
    // FIXME: C++11 does not specify how to handle raw-string-literals here.
315
    // We strip off the 'R', the quotes, the d-char-sequences, and the parens.
316
0
    assert(StrVal[1] == '"' && StrVal[StrVal.size() - 1] == '"' &&
317
0
           "Invalid raw string token!");
318
319
    // Measure the length of the d-char-sequence.
320
0
    unsigned NumDChars = 0;
321
0
    while (StrVal[2 + NumDChars] != '(') {
322
0
      assert(NumDChars < (StrVal.size() - 5) / 2 &&
323
0
             "Invalid raw string token!");
324
0
      ++NumDChars;
325
0
    }
326
0
    assert(StrVal[StrVal.size() - 2 - NumDChars] == ')');
327
328
    // Remove 'R " d-char-sequence' and 'd-char-sequence "'. We'll replace the
329
    // parens below.
330
0
    StrVal.erase(StrVal.begin(), StrVal.begin() + 2 + NumDChars);
331
0
    StrVal.erase(StrVal.end() - 1 - NumDChars, StrVal.end());
332
0
  } else {
333
0
    assert(StrVal[0] == '"' && StrVal[StrVal.size()-1] == '"' &&
334
0
           "Invalid string token!");
335
336
    // Remove escaped quotes and escapes.
337
0
    unsigned ResultPos = 1;
338
0
    for (size_t i = 1, e = StrVal.size() - 1; i != e; ++i) {
339
      // Skip escapes.  \\ -> '\' and \" -> '"'.
340
0
      if (StrVal[i] == '\\' && i + 1 < e &&
341
0
          (StrVal[i + 1] == '\\' || StrVal[i + 1] == '"'))
342
0
        ++i;
343
0
      StrVal[ResultPos++] = StrVal[i];
344
0
    }
345
0
    StrVal.erase(StrVal.begin() + ResultPos, StrVal.end() - 1);
346
0
  }
347
348
  // Remove the front quote, replacing it with a space, so that the pragma
349
  // contents appear to have a space before them.
350
0
  StrVal[0] = ' ';
351
352
  // Replace the terminating quote with a \n.
353
0
  StrVal[StrVal.size() - 1] = '\n';
354
0
}
355
356
/// HandleMicrosoft__pragma - Like Handle_Pragma except the pragma text
357
/// is not enclosed within a string literal.
358
0
void Preprocessor::HandleMicrosoft__pragma(Token &Tok) {
359
  // During macro pre-expansion, check the syntax now but put the tokens back
360
  // into the token stream for later consumption. Same as Handle_Pragma.
361
0
  TokenCollector Toks = {*this, InMacroArgPreExpansion, {}, Tok};
362
363
  // Remember the pragma token location.
364
0
  SourceLocation PragmaLoc = Tok.getLocation();
365
366
  // Read the '('.
367
0
  Toks.lex();
368
0
  if (Tok.isNot(tok::l_paren)) {
369
0
    Diag(PragmaLoc, diag::err__Pragma_malformed);
370
0
    return;
371
0
  }
372
373
  // Get the tokens enclosed within the __pragma(), as well as the final ')'.
374
0
  SmallVector<Token, 32> PragmaToks;
375
0
  int NumParens = 0;
376
0
  Toks.lex();
377
0
  while (Tok.isNot(tok::eof)) {
378
0
    PragmaToks.push_back(Tok);
379
0
    if (Tok.is(tok::l_paren))
380
0
      NumParens++;
381
0
    else if (Tok.is(tok::r_paren) && NumParens-- == 0)
382
0
      break;
383
0
    Toks.lex();
384
0
  }
385
386
0
  if (Tok.is(tok::eof)) {
387
0
    Diag(PragmaLoc, diag::err_unterminated___pragma);
388
0
    return;
389
0
  }
390
391
  // If we're expanding a macro argument, put the tokens back.
392
0
  if (InMacroArgPreExpansion) {
393
0
    Toks.revert();
394
0
    return;
395
0
  }
396
397
0
  PragmaToks.front().setFlag(Token::LeadingSpace);
398
399
  // Replace the ')' with an EOD to mark the end of the pragma.
400
0
  PragmaToks.back().setKind(tok::eod);
401
402
0
  Token *TokArray = new Token[PragmaToks.size()];
403
0
  std::copy(PragmaToks.begin(), PragmaToks.end(), TokArray);
404
405
  // Push the tokens onto the stack.
406
0
  EnterTokenStream(TokArray, PragmaToks.size(), true, true,
407
0
                   /*IsReinject*/ false);
408
409
  // With everything set up, lex this as a #pragma directive.
410
0
  HandlePragmaDirective({PIK___pragma, PragmaLoc});
411
412
  // Finally, return whatever came after the pragma directive.
413
0
  return Lex(Tok);
414
0
}
415
416
/// HandlePragmaOnce - Handle \#pragma once.  OnceTok is the 'once'.
417
0
void Preprocessor::HandlePragmaOnce(Token &OnceTok) {
418
  // Don't honor the 'once' when handling the primary source file, unless
419
  // this is a prefix to a TU, which indicates we're generating a PCH file, or
420
  // when the main file is a header (e.g. when -xc-header is provided on the
421
  // commandline).
422
0
  if (isInPrimaryFile() && TUKind != TU_Prefix && !getLangOpts().IsHeaderFile) {
423
0
    Diag(OnceTok, diag::pp_pragma_once_in_main_file);
424
0
    return;
425
0
  }
426
427
  // Get the current file lexer we're looking at.  Ignore _Pragma 'files' etc.
428
  // Mark the file as a once-only file now.
429
0
  HeaderInfo.MarkFileIncludeOnce(*getCurrentFileLexer()->getFileEntry());
430
0
}
431
432
0
void Preprocessor::HandlePragmaMark(Token &MarkTok) {
433
0
  assert(CurPPLexer && "No current lexer?");
434
435
0
  SmallString<64> Buffer;
436
0
  CurLexer->ReadToEndOfLine(&Buffer);
437
0
  if (Callbacks)
438
0
    Callbacks->PragmaMark(MarkTok.getLocation(), Buffer);
439
0
}
440
441
/// HandlePragmaPoison - Handle \#pragma GCC poison.  PoisonTok is the 'poison'.
442
0
void Preprocessor::HandlePragmaPoison() {
443
0
  Token Tok;
444
445
0
  while (true) {
446
    // Read the next token to poison.  While doing this, pretend that we are
447
    // skipping while reading the identifier to poison.
448
    // This avoids errors on code like:
449
    //   #pragma GCC poison X
450
    //   #pragma GCC poison X
451
0
    if (CurPPLexer) CurPPLexer->LexingRawMode = true;
452
0
    LexUnexpandedToken(Tok);
453
0
    if (CurPPLexer) CurPPLexer->LexingRawMode = false;
454
455
    // If we reached the end of line, we're done.
456
0
    if (Tok.is(tok::eod)) return;
457
458
    // Can only poison identifiers.
459
0
    if (Tok.isNot(tok::raw_identifier)) {
460
0
      Diag(Tok, diag::err_pp_invalid_poison);
461
0
      return;
462
0
    }
463
464
    // Look up the identifier info for the token.  We disabled identifier lookup
465
    // by saying we're skipping contents, so we need to do this manually.
466
0
    IdentifierInfo *II = LookUpIdentifierInfo(Tok);
467
468
    // Already poisoned.
469
0
    if (II->isPoisoned()) continue;
470
471
    // If this is a macro identifier, emit a warning.
472
0
    if (isMacroDefined(II))
473
0
      Diag(Tok, diag::pp_poisoning_existing_macro);
474
475
    // Finally, poison it!
476
0
    II->setIsPoisoned();
477
0
    if (II->isFromAST())
478
0
      II->setChangedSinceDeserialization();
479
0
  }
480
0
}
481
482
/// HandlePragmaSystemHeader - Implement \#pragma GCC system_header.  We know
483
/// that the whole directive has been parsed.
484
0
void Preprocessor::HandlePragmaSystemHeader(Token &SysHeaderTok) {
485
0
  if (isInPrimaryFile()) {
486
0
    Diag(SysHeaderTok, diag::pp_pragma_sysheader_in_main_file);
487
0
    return;
488
0
  }
489
490
  // Get the current file lexer we're looking at.  Ignore _Pragma 'files' etc.
491
0
  PreprocessorLexer *TheLexer = getCurrentFileLexer();
492
493
  // Mark the file as a system header.
494
0
  HeaderInfo.MarkFileSystemHeader(*TheLexer->getFileEntry());
495
496
0
  PresumedLoc PLoc = SourceMgr.getPresumedLoc(SysHeaderTok.getLocation());
497
0
  if (PLoc.isInvalid())
498
0
    return;
499
500
0
  unsigned FilenameID = SourceMgr.getLineTableFilenameID(PLoc.getFilename());
501
502
  // Notify the client, if desired, that we are in a new source file.
503
0
  if (Callbacks)
504
0
    Callbacks->FileChanged(SysHeaderTok.getLocation(),
505
0
                           PPCallbacks::SystemHeaderPragma, SrcMgr::C_System);
506
507
  // Emit a line marker.  This will change any source locations from this point
508
  // forward to realize they are in a system header.
509
  // Create a line note with this information.
510
0
  SourceMgr.AddLineNote(SysHeaderTok.getLocation(), PLoc.getLine() + 1,
511
0
                        FilenameID, /*IsEntry=*/false, /*IsExit=*/false,
512
0
                        SrcMgr::C_System);
513
0
}
514
515
/// HandlePragmaDependency - Handle \#pragma GCC dependency "foo" blah.
516
0
void Preprocessor::HandlePragmaDependency(Token &DependencyTok) {
517
0
  Token FilenameTok;
518
0
  if (LexHeaderName(FilenameTok, /*AllowConcatenation*/false))
519
0
    return;
520
521
  // If the next token wasn't a header-name, diagnose the error.
522
0
  if (FilenameTok.isNot(tok::header_name)) {
523
0
    Diag(FilenameTok.getLocation(), diag::err_pp_expects_filename);
524
0
    return;
525
0
  }
526
527
  // Reserve a buffer to get the spelling.
528
0
  SmallString<128> FilenameBuffer;
529
0
  bool Invalid = false;
530
0
  StringRef Filename = getSpelling(FilenameTok, FilenameBuffer, &Invalid);
531
0
  if (Invalid)
532
0
    return;
533
534
0
  bool isAngled =
535
0
    GetIncludeFilenameSpelling(FilenameTok.getLocation(), Filename);
536
  // If GetIncludeFilenameSpelling set the start ptr to null, there was an
537
  // error.
538
0
  if (Filename.empty())
539
0
    return;
540
541
  // Search include directories for this file.
542
0
  OptionalFileEntryRef File =
543
0
      LookupFile(FilenameTok.getLocation(), Filename, isAngled, nullptr,
544
0
                 nullptr, nullptr, nullptr, nullptr, nullptr, nullptr, nullptr);
545
0
  if (!File) {
546
0
    if (!SuppressIncludeNotFoundError)
547
0
      Diag(FilenameTok, diag::err_pp_file_not_found) << Filename;
548
0
    return;
549
0
  }
550
551
0
  OptionalFileEntryRef CurFile = getCurrentFileLexer()->getFileEntry();
552
553
  // If this file is older than the file it depends on, emit a diagnostic.
554
0
  if (CurFile && CurFile->getModificationTime() < File->getModificationTime()) {
555
    // Lex tokens at the end of the message and include them in the message.
556
0
    std::string Message;
557
0
    Lex(DependencyTok);
558
0
    while (DependencyTok.isNot(tok::eod)) {
559
0
      Message += getSpelling(DependencyTok) + " ";
560
0
      Lex(DependencyTok);
561
0
    }
562
563
    // Remove the trailing ' ' if present.
564
0
    if (!Message.empty())
565
0
      Message.erase(Message.end()-1);
566
0
    Diag(FilenameTok, diag::pp_out_of_date_dependency) << Message;
567
0
  }
568
0
}
569
570
/// ParsePragmaPushOrPopMacro - Handle parsing of pragma push_macro/pop_macro.
571
/// Return the IdentifierInfo* associated with the macro to push or pop.
572
0
IdentifierInfo *Preprocessor::ParsePragmaPushOrPopMacro(Token &Tok) {
573
  // Remember the pragma token location.
574
0
  Token PragmaTok = Tok;
575
576
  // Read the '('.
577
0
  Lex(Tok);
578
0
  if (Tok.isNot(tok::l_paren)) {
579
0
    Diag(PragmaTok.getLocation(), diag::err_pragma_push_pop_macro_malformed)
580
0
      << getSpelling(PragmaTok);
581
0
    return nullptr;
582
0
  }
583
584
  // Read the macro name string.
585
0
  Lex(Tok);
586
0
  if (Tok.isNot(tok::string_literal)) {
587
0
    Diag(PragmaTok.getLocation(), diag::err_pragma_push_pop_macro_malformed)
588
0
      << getSpelling(PragmaTok);
589
0
    return nullptr;
590
0
  }
591
592
0
  if (Tok.hasUDSuffix()) {
593
0
    Diag(Tok, diag::err_invalid_string_udl);
594
0
    return nullptr;
595
0
  }
596
597
  // Remember the macro string.
598
0
  std::string StrVal = getSpelling(Tok);
599
600
  // Read the ')'.
601
0
  Lex(Tok);
602
0
  if (Tok.isNot(tok::r_paren)) {
603
0
    Diag(PragmaTok.getLocation(), diag::err_pragma_push_pop_macro_malformed)
604
0
      << getSpelling(PragmaTok);
605
0
    return nullptr;
606
0
  }
607
608
0
  assert(StrVal[0] == '"' && StrVal[StrVal.size()-1] == '"' &&
609
0
         "Invalid string token!");
610
611
  // Create a Token from the string.
612
0
  Token MacroTok;
613
0
  MacroTok.startToken();
614
0
  MacroTok.setKind(tok::raw_identifier);
615
0
  CreateString(StringRef(&StrVal[1], StrVal.size() - 2), MacroTok);
616
617
  // Get the IdentifierInfo of MacroToPushTok.
618
0
  return LookUpIdentifierInfo(MacroTok);
619
0
}
620
621
/// Handle \#pragma push_macro.
622
///
623
/// The syntax is:
624
/// \code
625
///   #pragma push_macro("macro")
626
/// \endcode
627
0
void Preprocessor::HandlePragmaPushMacro(Token &PushMacroTok) {
628
  // Parse the pragma directive and get the macro IdentifierInfo*.
629
0
  IdentifierInfo *IdentInfo = ParsePragmaPushOrPopMacro(PushMacroTok);
630
0
  if (!IdentInfo) return;
631
632
  // Get the MacroInfo associated with IdentInfo.
633
0
  MacroInfo *MI = getMacroInfo(IdentInfo);
634
635
0
  if (MI) {
636
    // Allow the original MacroInfo to be redefined later.
637
0
    MI->setIsAllowRedefinitionsWithoutWarning(true);
638
0
  }
639
640
  // Push the cloned MacroInfo so we can retrieve it later.
641
0
  PragmaPushMacroInfo[IdentInfo].push_back(MI);
642
0
}
643
644
/// Handle \#pragma pop_macro.
645
///
646
/// The syntax is:
647
/// \code
648
///   #pragma pop_macro("macro")
649
/// \endcode
650
0
void Preprocessor::HandlePragmaPopMacro(Token &PopMacroTok) {
651
0
  SourceLocation MessageLoc = PopMacroTok.getLocation();
652
653
  // Parse the pragma directive and get the macro IdentifierInfo*.
654
0
  IdentifierInfo *IdentInfo = ParsePragmaPushOrPopMacro(PopMacroTok);
655
0
  if (!IdentInfo) return;
656
657
  // Find the vector<MacroInfo*> associated with the macro.
658
0
  llvm::DenseMap<IdentifierInfo *, std::vector<MacroInfo *>>::iterator iter =
659
0
    PragmaPushMacroInfo.find(IdentInfo);
660
0
  if (iter != PragmaPushMacroInfo.end()) {
661
    // Forget the MacroInfo currently associated with IdentInfo.
662
0
    if (MacroInfo *MI = getMacroInfo(IdentInfo)) {
663
0
      if (MI->isWarnIfUnused())
664
0
        WarnUnusedMacroLocs.erase(MI->getDefinitionLoc());
665
0
      appendMacroDirective(IdentInfo, AllocateUndefMacroDirective(MessageLoc));
666
0
    }
667
668
    // Get the MacroInfo we want to reinstall.
669
0
    MacroInfo *MacroToReInstall = iter->second.back();
670
671
0
    if (MacroToReInstall)
672
      // Reinstall the previously pushed macro.
673
0
      appendDefMacroDirective(IdentInfo, MacroToReInstall, MessageLoc);
674
675
    // Pop PragmaPushMacroInfo stack.
676
0
    iter->second.pop_back();
677
0
    if (iter->second.empty())
678
0
      PragmaPushMacroInfo.erase(iter);
679
0
  } else {
680
0
    Diag(MessageLoc, diag::warn_pragma_pop_macro_no_push)
681
0
      << IdentInfo->getName();
682
0
  }
683
0
}
684
685
0
void Preprocessor::HandlePragmaIncludeAlias(Token &Tok) {
686
  // We will either get a quoted filename or a bracketed filename, and we
687
  // have to track which we got.  The first filename is the source name,
688
  // and the second name is the mapped filename.  If the first is quoted,
689
  // the second must be as well (cannot mix and match quotes and brackets).
690
691
  // Get the open paren
692
0
  Lex(Tok);
693
0
  if (Tok.isNot(tok::l_paren)) {
694
0
    Diag(Tok, diag::warn_pragma_include_alias_expected) << "(";
695
0
    return;
696
0
  }
697
698
  // We expect either a quoted string literal, or a bracketed name
699
0
  Token SourceFilenameTok;
700
0
  if (LexHeaderName(SourceFilenameTok))
701
0
    return;
702
703
0
  StringRef SourceFileName;
704
0
  SmallString<128> FileNameBuffer;
705
0
  if (SourceFilenameTok.is(tok::header_name)) {
706
0
    SourceFileName = getSpelling(SourceFilenameTok, FileNameBuffer);
707
0
  } else {
708
0
    Diag(Tok, diag::warn_pragma_include_alias_expected_filename);
709
0
    return;
710
0
  }
711
0
  FileNameBuffer.clear();
712
713
  // Now we expect a comma, followed by another include name
714
0
  Lex(Tok);
715
0
  if (Tok.isNot(tok::comma)) {
716
0
    Diag(Tok, diag::warn_pragma_include_alias_expected) << ",";
717
0
    return;
718
0
  }
719
720
0
  Token ReplaceFilenameTok;
721
0
  if (LexHeaderName(ReplaceFilenameTok))
722
0
    return;
723
724
0
  StringRef ReplaceFileName;
725
0
  if (ReplaceFilenameTok.is(tok::header_name)) {
726
0
    ReplaceFileName = getSpelling(ReplaceFilenameTok, FileNameBuffer);
727
0
  } else {
728
0
    Diag(Tok, diag::warn_pragma_include_alias_expected_filename);
729
0
    return;
730
0
  }
731
732
  // Finally, we expect the closing paren
733
0
  Lex(Tok);
734
0
  if (Tok.isNot(tok::r_paren)) {
735
0
    Diag(Tok, diag::warn_pragma_include_alias_expected) << ")";
736
0
    return;
737
0
  }
738
739
  // Now that we have the source and target filenames, we need to make sure
740
  // they're both of the same type (angled vs non-angled)
741
0
  StringRef OriginalSource = SourceFileName;
742
743
0
  bool SourceIsAngled =
744
0
    GetIncludeFilenameSpelling(SourceFilenameTok.getLocation(),
745
0
                                SourceFileName);
746
0
  bool ReplaceIsAngled =
747
0
    GetIncludeFilenameSpelling(ReplaceFilenameTok.getLocation(),
748
0
                                ReplaceFileName);
749
0
  if (!SourceFileName.empty() && !ReplaceFileName.empty() &&
750
0
      (SourceIsAngled != ReplaceIsAngled)) {
751
0
    unsigned int DiagID;
752
0
    if (SourceIsAngled)
753
0
      DiagID = diag::warn_pragma_include_alias_mismatch_angle;
754
0
    else
755
0
      DiagID = diag::warn_pragma_include_alias_mismatch_quote;
756
757
0
    Diag(SourceFilenameTok.getLocation(), DiagID)
758
0
      << SourceFileName
759
0
      << ReplaceFileName;
760
761
0
    return;
762
0
  }
763
764
  // Now we can let the include handler know about this mapping
765
0
  getHeaderSearchInfo().AddIncludeAlias(OriginalSource, ReplaceFileName);
766
0
}
767
768
// Lex a component of a module name: either an identifier or a string literal;
769
// for components that can be expressed both ways, the two forms are equivalent.
770
static bool LexModuleNameComponent(
771
    Preprocessor &PP, Token &Tok,
772
    std::pair<IdentifierInfo *, SourceLocation> &ModuleNameComponent,
773
0
    bool First) {
774
0
  PP.LexUnexpandedToken(Tok);
775
0
  if (Tok.is(tok::string_literal) && !Tok.hasUDSuffix()) {
776
0
    StringLiteralParser Literal(Tok, PP);
777
0
    if (Literal.hadError)
778
0
      return true;
779
0
    ModuleNameComponent = std::make_pair(
780
0
        PP.getIdentifierInfo(Literal.GetString()), Tok.getLocation());
781
0
  } else if (!Tok.isAnnotation() && Tok.getIdentifierInfo()) {
782
0
    ModuleNameComponent =
783
0
        std::make_pair(Tok.getIdentifierInfo(), Tok.getLocation());
784
0
  } else {
785
0
    PP.Diag(Tok.getLocation(), diag::err_pp_expected_module_name) << First;
786
0
    return true;
787
0
  }
788
0
  return false;
789
0
}
790
791
static bool LexModuleName(
792
    Preprocessor &PP, Token &Tok,
793
    llvm::SmallVectorImpl<std::pair<IdentifierInfo *, SourceLocation>>
794
0
        &ModuleName) {
795
0
  while (true) {
796
0
    std::pair<IdentifierInfo*, SourceLocation> NameComponent;
797
0
    if (LexModuleNameComponent(PP, Tok, NameComponent, ModuleName.empty()))
798
0
      return true;
799
0
    ModuleName.push_back(NameComponent);
800
801
0
    PP.LexUnexpandedToken(Tok);
802
0
    if (Tok.isNot(tok::period))
803
0
      return false;
804
0
  }
805
0
}
806
807
0
void Preprocessor::HandlePragmaModuleBuild(Token &Tok) {
808
0
  SourceLocation Loc = Tok.getLocation();
809
810
0
  std::pair<IdentifierInfo *, SourceLocation> ModuleNameLoc;
811
0
  if (LexModuleNameComponent(*this, Tok, ModuleNameLoc, true))
812
0
    return;
813
0
  IdentifierInfo *ModuleName = ModuleNameLoc.first;
814
815
0
  LexUnexpandedToken(Tok);
816
0
  if (Tok.isNot(tok::eod)) {
817
0
    Diag(Tok, diag::ext_pp_extra_tokens_at_eol) << "pragma";
818
0
    DiscardUntilEndOfDirective();
819
0
  }
820
821
0
  CurLexer->LexingRawMode = true;
822
823
0
  auto TryConsumeIdentifier = [&](StringRef Ident) -> bool {
824
0
    if (Tok.getKind() != tok::raw_identifier ||
825
0
        Tok.getRawIdentifier() != Ident)
826
0
      return false;
827
0
    CurLexer->Lex(Tok);
828
0
    return true;
829
0
  };
830
831
  // Scan forward looking for the end of the module.
832
0
  const char *Start = CurLexer->getBufferLocation();
833
0
  const char *End = nullptr;
834
0
  unsigned NestingLevel = 1;
835
0
  while (true) {
836
0
    End = CurLexer->getBufferLocation();
837
0
    CurLexer->Lex(Tok);
838
839
0
    if (Tok.is(tok::eof)) {
840
0
      Diag(Loc, diag::err_pp_module_build_missing_end);
841
0
      break;
842
0
    }
843
844
0
    if (Tok.isNot(tok::hash) || !Tok.isAtStartOfLine()) {
845
      // Token was part of module; keep going.
846
0
      continue;
847
0
    }
848
849
    // We hit something directive-shaped; check to see if this is the end
850
    // of the module build.
851
0
    CurLexer->ParsingPreprocessorDirective = true;
852
0
    CurLexer->Lex(Tok);
853
0
    if (TryConsumeIdentifier("pragma") && TryConsumeIdentifier("clang") &&
854
0
        TryConsumeIdentifier("module")) {
855
0
      if (TryConsumeIdentifier("build"))
856
        // #pragma clang module build -> entering a nested module build.
857
0
        ++NestingLevel;
858
0
      else if (TryConsumeIdentifier("endbuild")) {
859
        // #pragma clang module endbuild -> leaving a module build.
860
0
        if (--NestingLevel == 0)
861
0
          break;
862
0
      }
863
      // We should either be looking at the EOD or more of the current directive
864
      // preceding the EOD. Either way we can ignore this token and keep going.
865
0
      assert(Tok.getKind() != tok::eof && "missing EOD before EOF");
866
0
    }
867
0
  }
868
869
0
  CurLexer->LexingRawMode = false;
870
871
  // Load the extracted text as a preprocessed module.
872
0
  assert(CurLexer->getBuffer().begin() <= Start &&
873
0
         Start <= CurLexer->getBuffer().end() &&
874
0
         CurLexer->getBuffer().begin() <= End &&
875
0
         End <= CurLexer->getBuffer().end() &&
876
0
         "module source range not contained within same file buffer");
877
0
  TheModuleLoader.createModuleFromSource(Loc, ModuleName->getName(),
878
0
                                         StringRef(Start, End - Start));
879
0
}
880
881
0
void Preprocessor::HandlePragmaHdrstop(Token &Tok) {
882
0
  Lex(Tok);
883
0
  if (Tok.is(tok::l_paren)) {
884
0
    Diag(Tok.getLocation(), diag::warn_pp_hdrstop_filename_ignored);
885
886
0
    std::string FileName;
887
0
    if (!LexStringLiteral(Tok, FileName, "pragma hdrstop", false))
888
0
      return;
889
890
0
    if (Tok.isNot(tok::r_paren)) {
891
0
      Diag(Tok, diag::err_expected) << tok::r_paren;
892
0
      return;
893
0
    }
894
0
    Lex(Tok);
895
0
  }
896
0
  if (Tok.isNot(tok::eod))
897
0
    Diag(Tok.getLocation(), diag::ext_pp_extra_tokens_at_eol)
898
0
        << "pragma hdrstop";
899
900
0
  if (creatingPCHWithPragmaHdrStop() &&
901
0
      SourceMgr.isInMainFile(Tok.getLocation())) {
902
0
    assert(CurLexer && "no lexer for #pragma hdrstop processing");
903
0
    Token &Result = Tok;
904
0
    Result.startToken();
905
0
    CurLexer->FormTokenWithChars(Result, CurLexer->BufferEnd, tok::eof);
906
0
    CurLexer->cutOffLexing();
907
0
  }
908
0
  if (usingPCHWithPragmaHdrStop())
909
0
    SkippingUntilPragmaHdrStop = false;
910
0
}
911
912
/// AddPragmaHandler - Add the specified pragma handler to the preprocessor.
913
/// If 'Namespace' is non-null, then it is a token required to exist on the
914
/// pragma line before the pragma string starts, e.g. "STDC" or "GCC".
915
void Preprocessor::AddPragmaHandler(StringRef Namespace,
916
2.53k
                                    PragmaHandler *Handler) {
917
2.53k
  PragmaNamespace *InsertNS = PragmaHandlers.get();
918
919
  // If this is specified to be in a namespace, step down into it.
920
2.53k
  if (!Namespace.empty()) {
921
    // If there is already a pragma handler with the name of this namespace,
922
    // we either have an error (directive with the same name as a namespace) or
923
    // we already have the namespace to insert into.
924
1.51k
    if (PragmaHandler *Existing = PragmaHandlers->FindHandler(Namespace)) {
925
1.38k
      InsertNS = Existing->getIfNamespace();
926
1.38k
      assert(InsertNS != nullptr && "Cannot have a pragma namespace and pragma"
927
1.38k
             " handler with the same name!");
928
1.38k
    } else {
929
      // Otherwise, this namespace doesn't exist yet, create and insert the
930
      // handler for it.
931
138
      InsertNS = new PragmaNamespace(Namespace);
932
138
      PragmaHandlers->AddPragma(InsertNS);
933
138
    }
934
1.51k
  }
935
936
  // Check to make sure we don't already have a pragma for this identifier.
937
0
  assert(!InsertNS->FindHandler(Handler->getName()) &&
938
2.53k
         "Pragma handler already exists for this identifier!");
939
0
  InsertNS->AddPragma(Handler);
940
2.53k
}
941
942
/// RemovePragmaHandler - Remove the specific pragma handler from the
943
/// preprocessor. If \arg Namespace is non-null, then it should be the
944
/// namespace that \arg Handler was added to. It is an error to remove
945
/// a handler that has not been registered.
946
void Preprocessor::RemovePragmaHandler(StringRef Namespace,
947
1.38k
                                       PragmaHandler *Handler) {
948
1.38k
  PragmaNamespace *NS = PragmaHandlers.get();
949
950
  // If this is specified to be in a namespace, step down into it.
951
1.38k
  if (!Namespace.empty()) {
952
690
    PragmaHandler *Existing = PragmaHandlers->FindHandler(Namespace);
953
690
    assert(Existing && "Namespace containing handler does not exist!");
954
955
0
    NS = Existing->getIfNamespace();
956
690
    assert(NS && "Invalid namespace, registered as a regular pragma handler!");
957
690
  }
958
959
0
  NS->RemovePragmaHandler(Handler);
960
961
  // If this is a non-default namespace and it is now empty, remove it.
962
1.38k
  if (NS != PragmaHandlers.get() && NS->IsEmpty()) {
963
46
    PragmaHandlers->RemovePragmaHandler(NS);
964
46
    delete NS;
965
46
  }
966
1.38k
}
967
968
0
bool Preprocessor::LexOnOffSwitch(tok::OnOffSwitch &Result) {
969
0
  Token Tok;
970
0
  LexUnexpandedToken(Tok);
971
972
0
  if (Tok.isNot(tok::identifier)) {
973
0
    Diag(Tok, diag::ext_on_off_switch_syntax);
974
0
    return true;
975
0
  }
976
0
  IdentifierInfo *II = Tok.getIdentifierInfo();
977
0
  if (II->isStr("ON"))
978
0
    Result = tok::OOS_ON;
979
0
  else if (II->isStr("OFF"))
980
0
    Result = tok::OOS_OFF;
981
0
  else if (II->isStr("DEFAULT"))
982
0
    Result = tok::OOS_DEFAULT;
983
0
  else {
984
0
    Diag(Tok, diag::ext_on_off_switch_syntax);
985
0
    return true;
986
0
  }
987
988
  // Verify that this is followed by EOD.
989
0
  LexUnexpandedToken(Tok);
990
0
  if (Tok.isNot(tok::eod))
991
0
    Diag(Tok, diag::ext_pragma_syntax_eod);
992
0
  return false;
993
0
}
994
995
namespace {
996
997
/// PragmaOnceHandler - "\#pragma once" marks the file as atomically included.
998
struct PragmaOnceHandler : public PragmaHandler {
999
46
  PragmaOnceHandler() : PragmaHandler("once") {}
1000
1001
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1002
0
                    Token &OnceTok) override {
1003
0
    PP.CheckEndOfDirective("pragma once");
1004
0
    PP.HandlePragmaOnce(OnceTok);
1005
0
  }
1006
};
1007
1008
/// PragmaMarkHandler - "\#pragma mark ..." is ignored by the compiler, and the
1009
/// rest of the line is not lexed.
1010
struct PragmaMarkHandler : public PragmaHandler {
1011
46
  PragmaMarkHandler() : PragmaHandler("mark") {}
1012
1013
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1014
0
                    Token &MarkTok) override {
1015
0
    PP.HandlePragmaMark(MarkTok);
1016
0
  }
1017
};
1018
1019
/// PragmaPoisonHandler - "\#pragma poison x" marks x as not usable.
1020
struct PragmaPoisonHandler : public PragmaHandler {
1021
92
  PragmaPoisonHandler() : PragmaHandler("poison") {}
1022
1023
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1024
0
                    Token &PoisonTok) override {
1025
0
    PP.HandlePragmaPoison();
1026
0
  }
1027
};
1028
1029
/// PragmaSystemHeaderHandler - "\#pragma system_header" marks the current file
1030
/// as a system header, which silences warnings in it.
1031
struct PragmaSystemHeaderHandler : public PragmaHandler {
1032
92
  PragmaSystemHeaderHandler() : PragmaHandler("system_header") {}
1033
1034
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1035
0
                    Token &SHToken) override {
1036
0
    PP.HandlePragmaSystemHeader(SHToken);
1037
0
    PP.CheckEndOfDirective("pragma");
1038
0
  }
1039
};
1040
1041
struct PragmaDependencyHandler : public PragmaHandler {
1042
92
  PragmaDependencyHandler() : PragmaHandler("dependency") {}
1043
1044
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1045
0
                    Token &DepToken) override {
1046
0
    PP.HandlePragmaDependency(DepToken);
1047
0
  }
1048
};
1049
1050
struct PragmaDebugHandler : public PragmaHandler {
1051
46
  PragmaDebugHandler() : PragmaHandler("__debug") {}
1052
1053
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1054
0
                    Token &DebugToken) override {
1055
0
    Token Tok;
1056
0
    PP.LexUnexpandedToken(Tok);
1057
0
    if (Tok.isNot(tok::identifier)) {
1058
0
      PP.Diag(Tok, diag::warn_pragma_debug_missing_command);
1059
0
      return;
1060
0
    }
1061
0
    IdentifierInfo *II = Tok.getIdentifierInfo();
1062
1063
0
    if (II->isStr("assert")) {
1064
0
      if (!PP.getPreprocessorOpts().DisablePragmaDebugCrash)
1065
0
        llvm_unreachable("This is an assertion!");
1066
0
    } else if (II->isStr("crash")) {
1067
0
      llvm::Timer T("crash", "pragma crash");
1068
0
      llvm::TimeRegion R(&T);
1069
0
      if (!PP.getPreprocessorOpts().DisablePragmaDebugCrash)
1070
0
        LLVM_BUILTIN_TRAP;
1071
0
    } else if (II->isStr("parser_crash")) {
1072
0
      if (!PP.getPreprocessorOpts().DisablePragmaDebugCrash) {
1073
0
        Token Crasher;
1074
0
        Crasher.startToken();
1075
0
        Crasher.setKind(tok::annot_pragma_parser_crash);
1076
0
        Crasher.setAnnotationRange(SourceRange(Tok.getLocation()));
1077
0
        PP.EnterToken(Crasher, /*IsReinject*/ false);
1078
0
      }
1079
0
    } else if (II->isStr("dump")) {
1080
0
      Token DumpAnnot;
1081
0
      DumpAnnot.startToken();
1082
0
      DumpAnnot.setKind(tok::annot_pragma_dump);
1083
0
      DumpAnnot.setAnnotationRange(SourceRange(Tok.getLocation()));
1084
0
      PP.EnterToken(DumpAnnot, /*IsReinject*/false);
1085
0
    } else if (II->isStr("diag_mapping")) {
1086
0
      Token DiagName;
1087
0
      PP.LexUnexpandedToken(DiagName);
1088
0
      if (DiagName.is(tok::eod))
1089
0
        PP.getDiagnostics().dump();
1090
0
      else if (DiagName.is(tok::string_literal) && !DiagName.hasUDSuffix()) {
1091
0
        StringLiteralParser Literal(DiagName, PP,
1092
0
                                    StringLiteralEvalMethod::Unevaluated);
1093
0
        if (Literal.hadError)
1094
0
          return;
1095
0
        PP.getDiagnostics().dump(Literal.GetString());
1096
0
      } else {
1097
0
        PP.Diag(DiagName, diag::warn_pragma_debug_missing_argument)
1098
0
            << II->getName();
1099
0
      }
1100
0
    } else if (II->isStr("llvm_fatal_error")) {
1101
0
      if (!PP.getPreprocessorOpts().DisablePragmaDebugCrash)
1102
0
        llvm::report_fatal_error("#pragma clang __debug llvm_fatal_error");
1103
0
    } else if (II->isStr("llvm_unreachable")) {
1104
0
      if (!PP.getPreprocessorOpts().DisablePragmaDebugCrash)
1105
0
        llvm_unreachable("#pragma clang __debug llvm_unreachable");
1106
0
    } else if (II->isStr("macro")) {
1107
0
      Token MacroName;
1108
0
      PP.LexUnexpandedToken(MacroName);
1109
0
      auto *MacroII = MacroName.getIdentifierInfo();
1110
0
      if (MacroII)
1111
0
        PP.dumpMacroInfo(MacroII);
1112
0
      else
1113
0
        PP.Diag(MacroName, diag::warn_pragma_debug_missing_argument)
1114
0
            << II->getName();
1115
0
    } else if (II->isStr("module_map")) {
1116
0
      llvm::SmallVector<std::pair<IdentifierInfo *, SourceLocation>, 8>
1117
0
          ModuleName;
1118
0
      if (LexModuleName(PP, Tok, ModuleName))
1119
0
        return;
1120
0
      ModuleMap &MM = PP.getHeaderSearchInfo().getModuleMap();
1121
0
      Module *M = nullptr;
1122
0
      for (auto IIAndLoc : ModuleName) {
1123
0
        M = MM.lookupModuleQualified(IIAndLoc.first->getName(), M);
1124
0
        if (!M) {
1125
0
          PP.Diag(IIAndLoc.second, diag::warn_pragma_debug_unknown_module)
1126
0
              << IIAndLoc.first;
1127
0
          return;
1128
0
        }
1129
0
      }
1130
0
      M->dump();
1131
0
    } else if (II->isStr("overflow_stack")) {
1132
0
      if (!PP.getPreprocessorOpts().DisablePragmaDebugCrash)
1133
0
        DebugOverflowStack();
1134
0
    } else if (II->isStr("captured")) {
1135
0
      HandleCaptured(PP);
1136
0
    } else if (II->isStr("modules")) {
1137
0
      struct ModuleVisitor {
1138
0
        Preprocessor &PP;
1139
0
        void visit(Module *M, bool VisibleOnly) {
1140
0
          SourceLocation ImportLoc = PP.getModuleImportLoc(M);
1141
0
          if (!VisibleOnly || ImportLoc.isValid()) {
1142
0
            llvm::errs() << M->getFullModuleName() << " ";
1143
0
            if (ImportLoc.isValid()) {
1144
0
              llvm::errs() << M << " visible ";
1145
0
              ImportLoc.print(llvm::errs(), PP.getSourceManager());
1146
0
            }
1147
0
            llvm::errs() << "\n";
1148
0
          }
1149
0
          for (Module *Sub : M->submodules()) {
1150
0
            if (!VisibleOnly || ImportLoc.isInvalid() || Sub->IsExplicit)
1151
0
              visit(Sub, VisibleOnly);
1152
0
          }
1153
0
        }
1154
0
        void visitAll(bool VisibleOnly) {
1155
0
          for (auto &NameAndMod :
1156
0
               PP.getHeaderSearchInfo().getModuleMap().modules())
1157
0
            visit(NameAndMod.second, VisibleOnly);
1158
0
        }
1159
0
      } Visitor{PP};
1160
1161
0
      Token Kind;
1162
0
      PP.LexUnexpandedToken(Kind);
1163
0
      auto *DumpII = Kind.getIdentifierInfo();
1164
0
      if (!DumpII) {
1165
0
        PP.Diag(Kind, diag::warn_pragma_debug_missing_argument)
1166
0
            << II->getName();
1167
0
      } else if (DumpII->isStr("all")) {
1168
0
        Visitor.visitAll(false);
1169
0
      } else if (DumpII->isStr("visible")) {
1170
0
        Visitor.visitAll(true);
1171
0
      } else if (DumpII->isStr("building")) {
1172
0
        for (auto &Building : PP.getBuildingSubmodules()) {
1173
0
          llvm::errs() << "in " << Building.M->getFullModuleName();
1174
0
          if (Building.ImportLoc.isValid()) {
1175
0
            llvm::errs() << " imported ";
1176
0
            if (Building.IsPragma)
1177
0
              llvm::errs() << "via pragma ";
1178
0
            llvm::errs() << "at ";
1179
0
            Building.ImportLoc.print(llvm::errs(), PP.getSourceManager());
1180
0
            llvm::errs() << "\n";
1181
0
          }
1182
0
        }
1183
0
      } else {
1184
0
        PP.Diag(Tok, diag::warn_pragma_debug_unexpected_command)
1185
0
          << DumpII->getName();
1186
0
      }
1187
0
    } else if (II->isStr("sloc_usage")) {
1188
      // An optional integer literal argument specifies the number of files to
1189
      // specifically report information about.
1190
0
      std::optional<unsigned> MaxNotes;
1191
0
      Token ArgToken;
1192
0
      PP.Lex(ArgToken);
1193
0
      uint64_t Value;
1194
0
      if (ArgToken.is(tok::numeric_constant) &&
1195
0
          PP.parseSimpleIntegerLiteral(ArgToken, Value)) {
1196
0
        MaxNotes = Value;
1197
0
      } else if (ArgToken.isNot(tok::eod)) {
1198
0
        PP.Diag(ArgToken, diag::warn_pragma_debug_unexpected_argument);
1199
0
      }
1200
1201
0
      PP.Diag(Tok, diag::remark_sloc_usage);
1202
0
      PP.getSourceManager().noteSLocAddressSpaceUsage(PP.getDiagnostics(),
1203
0
                                                      MaxNotes);
1204
0
    } else {
1205
0
      PP.Diag(Tok, diag::warn_pragma_debug_unexpected_command)
1206
0
        << II->getName();
1207
0
    }
1208
1209
0
    PPCallbacks *Callbacks = PP.getPPCallbacks();
1210
0
    if (Callbacks)
1211
0
      Callbacks->PragmaDebug(Tok.getLocation(), II->getName());
1212
0
  }
1213
1214
0
  void HandleCaptured(Preprocessor &PP) {
1215
0
    Token Tok;
1216
0
    PP.LexUnexpandedToken(Tok);
1217
1218
0
    if (Tok.isNot(tok::eod)) {
1219
0
      PP.Diag(Tok, diag::ext_pp_extra_tokens_at_eol)
1220
0
        << "pragma clang __debug captured";
1221
0
      return;
1222
0
    }
1223
1224
0
    SourceLocation NameLoc = Tok.getLocation();
1225
0
    MutableArrayRef<Token> Toks(
1226
0
        PP.getPreprocessorAllocator().Allocate<Token>(1), 1);
1227
0
    Toks[0].startToken();
1228
0
    Toks[0].setKind(tok::annot_pragma_captured);
1229
0
    Toks[0].setLocation(NameLoc);
1230
1231
0
    PP.EnterTokenStream(Toks, /*DisableMacroExpansion=*/true,
1232
0
                        /*IsReinject=*/false);
1233
0
  }
1234
1235
// Disable MSVC warning about runtime stack overflow.
1236
#ifdef _MSC_VER
1237
    #pragma warning(disable : 4717)
1238
#endif
1239
0
  static void DebugOverflowStack(void (*P)() = nullptr) {
1240
0
    void (*volatile Self)(void(*P)()) = DebugOverflowStack;
1241
0
    Self(reinterpret_cast<void(*)()>(Self));
1242
0
  }
1243
#ifdef _MSC_VER
1244
    #pragma warning(default : 4717)
1245
#endif
1246
};
1247
1248
struct PragmaUnsafeBufferUsageHandler : public PragmaHandler {
1249
46
  PragmaUnsafeBufferUsageHandler() : PragmaHandler("unsafe_buffer_usage") {}
1250
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1251
0
                    Token &FirstToken) override {
1252
0
    Token Tok;
1253
1254
0
    PP.LexUnexpandedToken(Tok);
1255
0
    if (Tok.isNot(tok::identifier)) {
1256
0
      PP.Diag(Tok, diag::err_pp_pragma_unsafe_buffer_usage_syntax);
1257
0
      return;
1258
0
    }
1259
1260
0
    IdentifierInfo *II = Tok.getIdentifierInfo();
1261
0
    SourceLocation Loc = Tok.getLocation();
1262
1263
0
    if (II->isStr("begin")) {
1264
0
      if (PP.enterOrExitSafeBufferOptOutRegion(true, Loc))
1265
0
        PP.Diag(Loc, diag::err_pp_double_begin_pragma_unsafe_buffer_usage);
1266
0
    } else if (II->isStr("end")) {
1267
0
      if (PP.enterOrExitSafeBufferOptOutRegion(false, Loc))
1268
0
        PP.Diag(Loc, diag::err_pp_unmatched_end_begin_pragma_unsafe_buffer_usage);
1269
0
    } else
1270
0
      PP.Diag(Tok, diag::err_pp_pragma_unsafe_buffer_usage_syntax);
1271
0
  }
1272
};
1273
1274
/// PragmaDiagnosticHandler - e.g. '\#pragma GCC diagnostic ignored "-Wformat"'
1275
struct PragmaDiagnosticHandler : public PragmaHandler {
1276
private:
1277
  const char *Namespace;
1278
1279
public:
1280
  explicit PragmaDiagnosticHandler(const char *NS)
1281
92
      : PragmaHandler("diagnostic"), Namespace(NS) {}
1282
1283
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1284
0
                    Token &DiagToken) override {
1285
0
    SourceLocation DiagLoc = DiagToken.getLocation();
1286
0
    Token Tok;
1287
0
    PP.LexUnexpandedToken(Tok);
1288
0
    if (Tok.isNot(tok::identifier)) {
1289
0
      PP.Diag(Tok, diag::warn_pragma_diagnostic_invalid);
1290
0
      return;
1291
0
    }
1292
0
    IdentifierInfo *II = Tok.getIdentifierInfo();
1293
0
    PPCallbacks *Callbacks = PP.getPPCallbacks();
1294
1295
    // Get the next token, which is either an EOD or a string literal. We lex
1296
    // it now so that we can early return if the previous token was push or pop.
1297
0
    PP.LexUnexpandedToken(Tok);
1298
1299
0
    if (II->isStr("pop")) {
1300
0
      if (!PP.getDiagnostics().popMappings(DiagLoc))
1301
0
        PP.Diag(Tok, diag::warn_pragma_diagnostic_cannot_pop);
1302
0
      else if (Callbacks)
1303
0
        Callbacks->PragmaDiagnosticPop(DiagLoc, Namespace);
1304
1305
0
      if (Tok.isNot(tok::eod))
1306
0
        PP.Diag(Tok.getLocation(), diag::warn_pragma_diagnostic_invalid_token);
1307
0
      return;
1308
0
    } else if (II->isStr("push")) {
1309
0
      PP.getDiagnostics().pushMappings(DiagLoc);
1310
0
      if (Callbacks)
1311
0
        Callbacks->PragmaDiagnosticPush(DiagLoc, Namespace);
1312
1313
0
      if (Tok.isNot(tok::eod))
1314
0
        PP.Diag(Tok.getLocation(), diag::warn_pragma_diagnostic_invalid_token);
1315
0
      return;
1316
0
    }
1317
1318
0
    diag::Severity SV = llvm::StringSwitch<diag::Severity>(II->getName())
1319
0
                            .Case("ignored", diag::Severity::Ignored)
1320
0
                            .Case("warning", diag::Severity::Warning)
1321
0
                            .Case("error", diag::Severity::Error)
1322
0
                            .Case("fatal", diag::Severity::Fatal)
1323
0
                            .Default(diag::Severity());
1324
1325
0
    if (SV == diag::Severity()) {
1326
0
      PP.Diag(Tok, diag::warn_pragma_diagnostic_invalid);
1327
0
      return;
1328
0
    }
1329
1330
    // At this point, we expect a string literal.
1331
0
    SourceLocation StringLoc = Tok.getLocation();
1332
0
    std::string WarningName;
1333
0
    if (!PP.FinishLexStringLiteral(Tok, WarningName, "pragma diagnostic",
1334
0
                                   /*AllowMacroExpansion=*/false))
1335
0
      return;
1336
1337
0
    if (Tok.isNot(tok::eod)) {
1338
0
      PP.Diag(Tok.getLocation(), diag::warn_pragma_diagnostic_invalid_token);
1339
0
      return;
1340
0
    }
1341
1342
0
    if (WarningName.size() < 3 || WarningName[0] != '-' ||
1343
0
        (WarningName[1] != 'W' && WarningName[1] != 'R')) {
1344
0
      PP.Diag(StringLoc, diag::warn_pragma_diagnostic_invalid_option);
1345
0
      return;
1346
0
    }
1347
1348
0
    diag::Flavor Flavor = WarningName[1] == 'W' ? diag::Flavor::WarningOrError
1349
0
                                                : diag::Flavor::Remark;
1350
0
    StringRef Group = StringRef(WarningName).substr(2);
1351
0
    bool unknownDiag = false;
1352
0
    if (Group == "everything") {
1353
      // Special handling for pragma clang diagnostic ... "-Weverything".
1354
      // There is no formal group named "everything", so there has to be a
1355
      // special case for it.
1356
0
      PP.getDiagnostics().setSeverityForAll(Flavor, SV, DiagLoc);
1357
0
    } else
1358
0
      unknownDiag = PP.getDiagnostics().setSeverityForGroup(Flavor, Group, SV,
1359
0
                                                            DiagLoc);
1360
0
    if (unknownDiag)
1361
0
      PP.Diag(StringLoc, diag::warn_pragma_diagnostic_unknown_warning)
1362
0
        << WarningName;
1363
0
    else if (Callbacks)
1364
0
      Callbacks->PragmaDiagnostic(DiagLoc, Namespace, SV, WarningName);
1365
0
  }
1366
};
1367
1368
/// "\#pragma hdrstop [<header-name-string>]"
1369
struct PragmaHdrstopHandler : public PragmaHandler {
1370
0
  PragmaHdrstopHandler() : PragmaHandler("hdrstop") {}
1371
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1372
0
                    Token &DepToken) override {
1373
0
    PP.HandlePragmaHdrstop(DepToken);
1374
0
  }
1375
};
1376
1377
/// "\#pragma warning(...)".  MSVC's diagnostics do not map cleanly to clang's
1378
/// diagnostics, so we don't really implement this pragma.  We parse it and
1379
/// ignore it to avoid -Wunknown-pragma warnings.
1380
struct PragmaWarningHandler : public PragmaHandler {
1381
0
  PragmaWarningHandler() : PragmaHandler("warning") {}
1382
1383
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1384
0
                    Token &Tok) override {
1385
    // Parse things like:
1386
    // warning(push, 1)
1387
    // warning(pop)
1388
    // warning(disable : 1 2 3 ; error : 4 5 6 ; suppress : 7 8 9)
1389
0
    SourceLocation DiagLoc = Tok.getLocation();
1390
0
    PPCallbacks *Callbacks = PP.getPPCallbacks();
1391
1392
0
    PP.Lex(Tok);
1393
0
    if (Tok.isNot(tok::l_paren)) {
1394
0
      PP.Diag(Tok, diag::warn_pragma_warning_expected) << "(";
1395
0
      return;
1396
0
    }
1397
1398
0
    PP.Lex(Tok);
1399
0
    IdentifierInfo *II = Tok.getIdentifierInfo();
1400
1401
0
    if (II && II->isStr("push")) {
1402
      // #pragma warning( push[ ,n ] )
1403
0
      int Level = -1;
1404
0
      PP.Lex(Tok);
1405
0
      if (Tok.is(tok::comma)) {
1406
0
        PP.Lex(Tok);
1407
0
        uint64_t Value;
1408
0
        if (Tok.is(tok::numeric_constant) &&
1409
0
            PP.parseSimpleIntegerLiteral(Tok, Value))
1410
0
          Level = int(Value);
1411
0
        if (Level < 0 || Level > 4) {
1412
0
          PP.Diag(Tok, diag::warn_pragma_warning_push_level);
1413
0
          return;
1414
0
        }
1415
0
      }
1416
0
      PP.getDiagnostics().pushMappings(DiagLoc);
1417
0
      if (Callbacks)
1418
0
        Callbacks->PragmaWarningPush(DiagLoc, Level);
1419
0
    } else if (II && II->isStr("pop")) {
1420
      // #pragma warning( pop )
1421
0
      PP.Lex(Tok);
1422
0
      if (!PP.getDiagnostics().popMappings(DiagLoc))
1423
0
        PP.Diag(Tok, diag::warn_pragma_diagnostic_cannot_pop);
1424
0
      else if (Callbacks)
1425
0
        Callbacks->PragmaWarningPop(DiagLoc);
1426
0
    } else {
1427
      // #pragma warning( warning-specifier : warning-number-list
1428
      //                  [; warning-specifier : warning-number-list...] )
1429
0
      while (true) {
1430
0
        II = Tok.getIdentifierInfo();
1431
0
        if (!II && !Tok.is(tok::numeric_constant)) {
1432
0
          PP.Diag(Tok, diag::warn_pragma_warning_spec_invalid);
1433
0
          return;
1434
0
        }
1435
1436
        // Figure out which warning specifier this is.
1437
0
        bool SpecifierValid;
1438
0
        PPCallbacks::PragmaWarningSpecifier Specifier;
1439
0
        if (II) {
1440
0
          int SpecifierInt = llvm::StringSwitch<int>(II->getName())
1441
0
                                 .Case("default", PPCallbacks::PWS_Default)
1442
0
                                 .Case("disable", PPCallbacks::PWS_Disable)
1443
0
                                 .Case("error", PPCallbacks::PWS_Error)
1444
0
                                 .Case("once", PPCallbacks::PWS_Once)
1445
0
                                 .Case("suppress", PPCallbacks::PWS_Suppress)
1446
0
                                 .Default(-1);
1447
0
          if ((SpecifierValid = SpecifierInt != -1))
1448
0
            Specifier =
1449
0
                static_cast<PPCallbacks::PragmaWarningSpecifier>(SpecifierInt);
1450
1451
          // If we read a correct specifier, snatch next token (that should be
1452
          // ":", checked later).
1453
0
          if (SpecifierValid)
1454
0
            PP.Lex(Tok);
1455
0
        } else {
1456
          // Token is a numeric constant. It should be either 1, 2, 3 or 4.
1457
0
          uint64_t Value;
1458
0
          if (PP.parseSimpleIntegerLiteral(Tok, Value)) {
1459
0
            if ((SpecifierValid = (Value >= 1) && (Value <= 4)))
1460
0
              Specifier = static_cast<PPCallbacks::PragmaWarningSpecifier>(
1461
0
                  PPCallbacks::PWS_Level1 + Value - 1);
1462
0
          } else
1463
0
            SpecifierValid = false;
1464
          // Next token already snatched by parseSimpleIntegerLiteral.
1465
0
        }
1466
1467
0
        if (!SpecifierValid) {
1468
0
          PP.Diag(Tok, diag::warn_pragma_warning_spec_invalid);
1469
0
          return;
1470
0
        }
1471
0
        if (Tok.isNot(tok::colon)) {
1472
0
          PP.Diag(Tok, diag::warn_pragma_warning_expected) << ":";
1473
0
          return;
1474
0
        }
1475
1476
        // Collect the warning ids.
1477
0
        SmallVector<int, 4> Ids;
1478
0
        PP.Lex(Tok);
1479
0
        while (Tok.is(tok::numeric_constant)) {
1480
0
          uint64_t Value;
1481
0
          if (!PP.parseSimpleIntegerLiteral(Tok, Value) || Value == 0 ||
1482
0
              Value > INT_MAX) {
1483
0
            PP.Diag(Tok, diag::warn_pragma_warning_expected_number);
1484
0
            return;
1485
0
          }
1486
0
          Ids.push_back(int(Value));
1487
0
        }
1488
1489
        // Only act on disable for now.
1490
0
        diag::Severity SV = diag::Severity();
1491
0
        if (Specifier == PPCallbacks::PWS_Disable)
1492
0
          SV = diag::Severity::Ignored;
1493
0
        if (SV != diag::Severity())
1494
0
          for (int Id : Ids) {
1495
0
            if (auto Group = diagGroupFromCLWarningID(Id)) {
1496
0
              bool unknownDiag = PP.getDiagnostics().setSeverityForGroup(
1497
0
                  diag::Flavor::WarningOrError, *Group, SV, DiagLoc);
1498
0
              assert(!unknownDiag &&
1499
0
                     "wd table should only contain known diags");
1500
0
              (void)unknownDiag;
1501
0
            }
1502
0
          }
1503
1504
0
        if (Callbacks)
1505
0
          Callbacks->PragmaWarning(DiagLoc, Specifier, Ids);
1506
1507
        // Parse the next specifier if there is a semicolon.
1508
0
        if (Tok.isNot(tok::semi))
1509
0
          break;
1510
0
        PP.Lex(Tok);
1511
0
      }
1512
0
    }
1513
1514
0
    if (Tok.isNot(tok::r_paren)) {
1515
0
      PP.Diag(Tok, diag::warn_pragma_warning_expected) << ")";
1516
0
      return;
1517
0
    }
1518
1519
0
    PP.Lex(Tok);
1520
0
    if (Tok.isNot(tok::eod))
1521
0
      PP.Diag(Tok, diag::ext_pp_extra_tokens_at_eol) << "pragma warning";
1522
0
  }
1523
};
1524
1525
/// "\#pragma execution_character_set(...)". MSVC supports this pragma only
1526
/// for "UTF-8". We parse it and ignore it if UTF-8 is provided and warn
1527
/// otherwise to avoid -Wunknown-pragma warnings.
1528
struct PragmaExecCharsetHandler : public PragmaHandler {
1529
0
  PragmaExecCharsetHandler() : PragmaHandler("execution_character_set") {}
1530
1531
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1532
0
                    Token &Tok) override {
1533
    // Parse things like:
1534
    // execution_character_set(push, "UTF-8")
1535
    // execution_character_set(pop)
1536
0
    SourceLocation DiagLoc = Tok.getLocation();
1537
0
    PPCallbacks *Callbacks = PP.getPPCallbacks();
1538
1539
0
    PP.Lex(Tok);
1540
0
    if (Tok.isNot(tok::l_paren)) {
1541
0
      PP.Diag(Tok, diag::warn_pragma_exec_charset_expected) << "(";
1542
0
      return;
1543
0
    }
1544
1545
0
    PP.Lex(Tok);
1546
0
    IdentifierInfo *II = Tok.getIdentifierInfo();
1547
1548
0
    if (II && II->isStr("push")) {
1549
      // #pragma execution_character_set( push[ , string ] )
1550
0
      PP.Lex(Tok);
1551
0
      if (Tok.is(tok::comma)) {
1552
0
        PP.Lex(Tok);
1553
1554
0
        std::string ExecCharset;
1555
0
        if (!PP.FinishLexStringLiteral(Tok, ExecCharset,
1556
0
                                       "pragma execution_character_set",
1557
0
                                       /*AllowMacroExpansion=*/false))
1558
0
          return;
1559
1560
        // MSVC supports either of these, but nothing else.
1561
0
        if (ExecCharset != "UTF-8" && ExecCharset != "utf-8") {
1562
0
          PP.Diag(Tok, diag::warn_pragma_exec_charset_push_invalid) << ExecCharset;
1563
0
          return;
1564
0
        }
1565
0
      }
1566
0
      if (Callbacks)
1567
0
        Callbacks->PragmaExecCharsetPush(DiagLoc, "UTF-8");
1568
0
    } else if (II && II->isStr("pop")) {
1569
      // #pragma execution_character_set( pop )
1570
0
      PP.Lex(Tok);
1571
0
      if (Callbacks)
1572
0
        Callbacks->PragmaExecCharsetPop(DiagLoc);
1573
0
    } else {
1574
0
      PP.Diag(Tok, diag::warn_pragma_exec_charset_spec_invalid);
1575
0
      return;
1576
0
    }
1577
1578
0
    if (Tok.isNot(tok::r_paren)) {
1579
0
      PP.Diag(Tok, diag::warn_pragma_exec_charset_expected) << ")";
1580
0
      return;
1581
0
    }
1582
1583
0
    PP.Lex(Tok);
1584
0
    if (Tok.isNot(tok::eod))
1585
0
      PP.Diag(Tok, diag::ext_pp_extra_tokens_at_eol) << "pragma execution_character_set";
1586
0
  }
1587
};
1588
1589
/// PragmaIncludeAliasHandler - "\#pragma include_alias("...")".
1590
struct PragmaIncludeAliasHandler : public PragmaHandler {
1591
0
  PragmaIncludeAliasHandler() : PragmaHandler("include_alias") {}
1592
1593
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1594
0
                    Token &IncludeAliasTok) override {
1595
0
    PP.HandlePragmaIncludeAlias(IncludeAliasTok);
1596
0
  }
1597
};
1598
1599
/// PragmaMessageHandler - Handle the microsoft and gcc \#pragma message
1600
/// extension.  The syntax is:
1601
/// \code
1602
///   #pragma message(string)
1603
/// \endcode
1604
/// OR, in GCC mode:
1605
/// \code
1606
///   #pragma message string
1607
/// \endcode
1608
/// string is a string, which is fully macro expanded, and permits string
1609
/// concatenation, embedded escape characters, etc... See MSDN for more details.
1610
/// Also handles \#pragma GCC warning and \#pragma GCC error which take the same
1611
/// form as \#pragma message.
1612
struct PragmaMessageHandler : public PragmaHandler {
1613
private:
1614
  const PPCallbacks::PragmaMessageKind Kind;
1615
  const StringRef Namespace;
1616
1617
  static const char* PragmaKind(PPCallbacks::PragmaMessageKind Kind,
1618
138
                                bool PragmaNameOnly = false) {
1619
138
    switch (Kind) {
1620
46
      case PPCallbacks::PMK_Message:
1621
46
        return PragmaNameOnly ? "message" : "pragma message";
1622
46
      case PPCallbacks::PMK_Warning:
1623
46
        return PragmaNameOnly ? "warning" : "pragma warning";
1624
46
      case PPCallbacks::PMK_Error:
1625
46
        return PragmaNameOnly ? "error" : "pragma error";
1626
138
    }
1627
0
    llvm_unreachable("Unknown PragmaMessageKind!");
1628
0
  }
1629
1630
public:
1631
  PragmaMessageHandler(PPCallbacks::PragmaMessageKind Kind,
1632
                       StringRef Namespace = StringRef())
1633
      : PragmaHandler(PragmaKind(Kind, true)), Kind(Kind),
1634
138
        Namespace(Namespace) {}
1635
1636
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1637
0
                    Token &Tok) override {
1638
0
    SourceLocation MessageLoc = Tok.getLocation();
1639
0
    PP.Lex(Tok);
1640
0
    bool ExpectClosingParen = false;
1641
0
    switch (Tok.getKind()) {
1642
0
    case tok::l_paren:
1643
      // We have a MSVC style pragma message.
1644
0
      ExpectClosingParen = true;
1645
      // Read the string.
1646
0
      PP.Lex(Tok);
1647
0
      break;
1648
0
    case tok::string_literal:
1649
      // We have a GCC style pragma message, and we just read the string.
1650
0
      break;
1651
0
    default:
1652
0
      PP.Diag(MessageLoc, diag::err_pragma_message_malformed) << Kind;
1653
0
      return;
1654
0
    }
1655
1656
0
    std::string MessageString;
1657
0
    if (!PP.FinishLexStringLiteral(Tok, MessageString, PragmaKind(Kind),
1658
0
                                   /*AllowMacroExpansion=*/true))
1659
0
      return;
1660
1661
0
    if (ExpectClosingParen) {
1662
0
      if (Tok.isNot(tok::r_paren)) {
1663
0
        PP.Diag(Tok.getLocation(), diag::err_pragma_message_malformed) << Kind;
1664
0
        return;
1665
0
      }
1666
0
      PP.Lex(Tok);  // eat the r_paren.
1667
0
    }
1668
1669
0
    if (Tok.isNot(tok::eod)) {
1670
0
      PP.Diag(Tok.getLocation(), diag::err_pragma_message_malformed) << Kind;
1671
0
      return;
1672
0
    }
1673
1674
    // Output the message.
1675
0
    PP.Diag(MessageLoc, (Kind == PPCallbacks::PMK_Error)
1676
0
                          ? diag::err_pragma_message
1677
0
                          : diag::warn_pragma_message) << MessageString;
1678
1679
    // If the pragma is lexically sound, notify any interested PPCallbacks.
1680
0
    if (PPCallbacks *Callbacks = PP.getPPCallbacks())
1681
0
      Callbacks->PragmaMessage(MessageLoc, Namespace, Kind, MessageString);
1682
0
  }
1683
};
1684
1685
/// Handle the clang \#pragma module import extension. The syntax is:
1686
/// \code
1687
///   #pragma clang module import some.module.name
1688
/// \endcode
1689
struct PragmaModuleImportHandler : public PragmaHandler {
1690
46
  PragmaModuleImportHandler() : PragmaHandler("import") {}
1691
1692
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1693
0
                    Token &Tok) override {
1694
0
    SourceLocation ImportLoc = Tok.getLocation();
1695
1696
    // Read the module name.
1697
0
    llvm::SmallVector<std::pair<IdentifierInfo *, SourceLocation>, 8>
1698
0
        ModuleName;
1699
0
    if (LexModuleName(PP, Tok, ModuleName))
1700
0
      return;
1701
1702
0
    if (Tok.isNot(tok::eod))
1703
0
      PP.Diag(Tok, diag::ext_pp_extra_tokens_at_eol) << "pragma";
1704
1705
    // If we have a non-empty module path, load the named module.
1706
0
    Module *Imported =
1707
0
        PP.getModuleLoader().loadModule(ImportLoc, ModuleName, Module::Hidden,
1708
0
                                      /*IsInclusionDirective=*/false);
1709
0
    if (!Imported)
1710
0
      return;
1711
1712
0
    PP.makeModuleVisible(Imported, ImportLoc);
1713
0
    PP.EnterAnnotationToken(SourceRange(ImportLoc, ModuleName.back().second),
1714
0
                            tok::annot_module_include, Imported);
1715
0
    if (auto *CB = PP.getPPCallbacks())
1716
0
      CB->moduleImport(ImportLoc, ModuleName, Imported);
1717
0
  }
1718
};
1719
1720
/// Handle the clang \#pragma module begin extension. The syntax is:
1721
/// \code
1722
///   #pragma clang module begin some.module.name
1723
///   ...
1724
///   #pragma clang module end
1725
/// \endcode
1726
struct PragmaModuleBeginHandler : public PragmaHandler {
1727
46
  PragmaModuleBeginHandler() : PragmaHandler("begin") {}
1728
1729
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1730
0
                    Token &Tok) override {
1731
0
    SourceLocation BeginLoc = Tok.getLocation();
1732
1733
    // Read the module name.
1734
0
    llvm::SmallVector<std::pair<IdentifierInfo *, SourceLocation>, 8>
1735
0
        ModuleName;
1736
0
    if (LexModuleName(PP, Tok, ModuleName))
1737
0
      return;
1738
1739
0
    if (Tok.isNot(tok::eod))
1740
0
      PP.Diag(Tok, diag::ext_pp_extra_tokens_at_eol) << "pragma";
1741
1742
    // We can only enter submodules of the current module.
1743
0
    StringRef Current = PP.getLangOpts().CurrentModule;
1744
0
    if (ModuleName.front().first->getName() != Current) {
1745
0
      PP.Diag(ModuleName.front().second, diag::err_pp_module_begin_wrong_module)
1746
0
        << ModuleName.front().first << (ModuleName.size() > 1)
1747
0
        << Current.empty() << Current;
1748
0
      return;
1749
0
    }
1750
1751
    // Find the module we're entering. We require that a module map for it
1752
    // be loaded or implicitly loadable.
1753
0
    auto &HSI = PP.getHeaderSearchInfo();
1754
0
    Module *M = HSI.lookupModule(Current, ModuleName.front().second);
1755
0
    if (!M) {
1756
0
      PP.Diag(ModuleName.front().second,
1757
0
              diag::err_pp_module_begin_no_module_map) << Current;
1758
0
      return;
1759
0
    }
1760
0
    for (unsigned I = 1; I != ModuleName.size(); ++I) {
1761
0
      auto *NewM = M->findOrInferSubmodule(ModuleName[I].first->getName());
1762
0
      if (!NewM) {
1763
0
        PP.Diag(ModuleName[I].second, diag::err_pp_module_begin_no_submodule)
1764
0
          << M->getFullModuleName() << ModuleName[I].first;
1765
0
        return;
1766
0
      }
1767
0
      M = NewM;
1768
0
    }
1769
1770
    // If the module isn't available, it doesn't make sense to enter it.
1771
0
    if (Preprocessor::checkModuleIsAvailable(
1772
0
            PP.getLangOpts(), PP.getTargetInfo(), *M, PP.getDiagnostics())) {
1773
0
      PP.Diag(BeginLoc, diag::note_pp_module_begin_here)
1774
0
        << M->getTopLevelModuleName();
1775
0
      return;
1776
0
    }
1777
1778
    // Enter the scope of the submodule.
1779
0
    PP.EnterSubmodule(M, BeginLoc, /*ForPragma*/true);
1780
0
    PP.EnterAnnotationToken(SourceRange(BeginLoc, ModuleName.back().second),
1781
0
                            tok::annot_module_begin, M);
1782
0
  }
1783
};
1784
1785
/// Handle the clang \#pragma module end extension.
1786
struct PragmaModuleEndHandler : public PragmaHandler {
1787
46
  PragmaModuleEndHandler() : PragmaHandler("end") {}
1788
1789
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1790
0
                    Token &Tok) override {
1791
0
    SourceLocation Loc = Tok.getLocation();
1792
1793
0
    PP.LexUnexpandedToken(Tok);
1794
0
    if (Tok.isNot(tok::eod))
1795
0
      PP.Diag(Tok, diag::ext_pp_extra_tokens_at_eol) << "pragma";
1796
1797
0
    Module *M = PP.LeaveSubmodule(/*ForPragma*/true);
1798
0
    if (M)
1799
0
      PP.EnterAnnotationToken(SourceRange(Loc), tok::annot_module_end, M);
1800
0
    else
1801
0
      PP.Diag(Loc, diag::err_pp_module_end_without_module_begin);
1802
0
  }
1803
};
1804
1805
/// Handle the clang \#pragma module build extension.
1806
struct PragmaModuleBuildHandler : public PragmaHandler {
1807
46
  PragmaModuleBuildHandler() : PragmaHandler("build") {}
1808
1809
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1810
0
                    Token &Tok) override {
1811
0
    PP.HandlePragmaModuleBuild(Tok);
1812
0
  }
1813
};
1814
1815
/// Handle the clang \#pragma module load extension.
1816
struct PragmaModuleLoadHandler : public PragmaHandler {
1817
46
  PragmaModuleLoadHandler() : PragmaHandler("load") {}
1818
1819
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1820
0
                    Token &Tok) override {
1821
0
    SourceLocation Loc = Tok.getLocation();
1822
1823
    // Read the module name.
1824
0
    llvm::SmallVector<std::pair<IdentifierInfo *, SourceLocation>, 8>
1825
0
        ModuleName;
1826
0
    if (LexModuleName(PP, Tok, ModuleName))
1827
0
      return;
1828
1829
0
    if (Tok.isNot(tok::eod))
1830
0
      PP.Diag(Tok, diag::ext_pp_extra_tokens_at_eol) << "pragma";
1831
1832
    // Load the module, don't make it visible.
1833
0
    PP.getModuleLoader().loadModule(Loc, ModuleName, Module::Hidden,
1834
0
                                    /*IsInclusionDirective=*/false);
1835
0
  }
1836
};
1837
1838
/// PragmaPushMacroHandler - "\#pragma push_macro" saves the value of the
1839
/// macro on the top of the stack.
1840
struct PragmaPushMacroHandler : public PragmaHandler {
1841
46
  PragmaPushMacroHandler() : PragmaHandler("push_macro") {}
1842
1843
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1844
0
                    Token &PushMacroTok) override {
1845
0
    PP.HandlePragmaPushMacro(PushMacroTok);
1846
0
  }
1847
};
1848
1849
/// PragmaPopMacroHandler - "\#pragma pop_macro" sets the value of the
1850
/// macro to the value on the top of the stack.
1851
struct PragmaPopMacroHandler : public PragmaHandler {
1852
46
  PragmaPopMacroHandler() : PragmaHandler("pop_macro") {}
1853
1854
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1855
0
                    Token &PopMacroTok) override {
1856
0
    PP.HandlePragmaPopMacro(PopMacroTok);
1857
0
  }
1858
};
1859
1860
/// PragmaARCCFCodeAuditedHandler -
1861
///   \#pragma clang arc_cf_code_audited begin/end
1862
struct PragmaARCCFCodeAuditedHandler : public PragmaHandler {
1863
46
  PragmaARCCFCodeAuditedHandler() : PragmaHandler("arc_cf_code_audited") {}
1864
1865
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1866
0
                    Token &NameTok) override {
1867
0
    SourceLocation Loc = NameTok.getLocation();
1868
0
    bool IsBegin;
1869
1870
0
    Token Tok;
1871
1872
    // Lex the 'begin' or 'end'.
1873
0
    PP.LexUnexpandedToken(Tok);
1874
0
    const IdentifierInfo *BeginEnd = Tok.getIdentifierInfo();
1875
0
    if (BeginEnd && BeginEnd->isStr("begin")) {
1876
0
      IsBegin = true;
1877
0
    } else if (BeginEnd && BeginEnd->isStr("end")) {
1878
0
      IsBegin = false;
1879
0
    } else {
1880
0
      PP.Diag(Tok.getLocation(), diag::err_pp_arc_cf_code_audited_syntax);
1881
0
      return;
1882
0
    }
1883
1884
    // Verify that this is followed by EOD.
1885
0
    PP.LexUnexpandedToken(Tok);
1886
0
    if (Tok.isNot(tok::eod))
1887
0
      PP.Diag(Tok, diag::ext_pp_extra_tokens_at_eol) << "pragma";
1888
1889
    // The start location of the active audit.
1890
0
    SourceLocation BeginLoc = PP.getPragmaARCCFCodeAuditedInfo().second;
1891
1892
    // The start location we want after processing this.
1893
0
    SourceLocation NewLoc;
1894
1895
0
    if (IsBegin) {
1896
      // Complain about attempts to re-enter an audit.
1897
0
      if (BeginLoc.isValid()) {
1898
0
        PP.Diag(Loc, diag::err_pp_double_begin_of_arc_cf_code_audited);
1899
0
        PP.Diag(BeginLoc, diag::note_pragma_entered_here);
1900
0
      }
1901
0
      NewLoc = Loc;
1902
0
    } else {
1903
      // Complain about attempts to leave an audit that doesn't exist.
1904
0
      if (!BeginLoc.isValid()) {
1905
0
        PP.Diag(Loc, diag::err_pp_unmatched_end_of_arc_cf_code_audited);
1906
0
        return;
1907
0
      }
1908
0
      NewLoc = SourceLocation();
1909
0
    }
1910
1911
0
    PP.setPragmaARCCFCodeAuditedInfo(NameTok.getIdentifierInfo(), NewLoc);
1912
0
  }
1913
};
1914
1915
/// PragmaAssumeNonNullHandler -
1916
///   \#pragma clang assume_nonnull begin/end
1917
struct PragmaAssumeNonNullHandler : public PragmaHandler {
1918
46
  PragmaAssumeNonNullHandler() : PragmaHandler("assume_nonnull") {}
1919
1920
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1921
0
                    Token &NameTok) override {
1922
0
    SourceLocation Loc = NameTok.getLocation();
1923
0
    bool IsBegin;
1924
1925
0
    Token Tok;
1926
1927
    // Lex the 'begin' or 'end'.
1928
0
    PP.LexUnexpandedToken(Tok);
1929
0
    const IdentifierInfo *BeginEnd = Tok.getIdentifierInfo();
1930
0
    if (BeginEnd && BeginEnd->isStr("begin")) {
1931
0
      IsBegin = true;
1932
0
    } else if (BeginEnd && BeginEnd->isStr("end")) {
1933
0
      IsBegin = false;
1934
0
    } else {
1935
0
      PP.Diag(Tok.getLocation(), diag::err_pp_assume_nonnull_syntax);
1936
0
      return;
1937
0
    }
1938
1939
    // Verify that this is followed by EOD.
1940
0
    PP.LexUnexpandedToken(Tok);
1941
0
    if (Tok.isNot(tok::eod))
1942
0
      PP.Diag(Tok, diag::ext_pp_extra_tokens_at_eol) << "pragma";
1943
1944
    // The start location of the active audit.
1945
0
    SourceLocation BeginLoc = PP.getPragmaAssumeNonNullLoc();
1946
1947
    // The start location we want after processing this.
1948
0
    SourceLocation NewLoc;
1949
0
    PPCallbacks *Callbacks = PP.getPPCallbacks();
1950
1951
0
    if (IsBegin) {
1952
      // Complain about attempts to re-enter an audit.
1953
0
      if (BeginLoc.isValid()) {
1954
0
        PP.Diag(Loc, diag::err_pp_double_begin_of_assume_nonnull);
1955
0
        PP.Diag(BeginLoc, diag::note_pragma_entered_here);
1956
0
      }
1957
0
      NewLoc = Loc;
1958
0
      if (Callbacks)
1959
0
        Callbacks->PragmaAssumeNonNullBegin(NewLoc);
1960
0
    } else {
1961
      // Complain about attempts to leave an audit that doesn't exist.
1962
0
      if (!BeginLoc.isValid()) {
1963
0
        PP.Diag(Loc, diag::err_pp_unmatched_end_of_assume_nonnull);
1964
0
        return;
1965
0
      }
1966
0
      NewLoc = SourceLocation();
1967
0
      if (Callbacks)
1968
0
        Callbacks->PragmaAssumeNonNullEnd(NewLoc);
1969
0
    }
1970
1971
0
    PP.setPragmaAssumeNonNullLoc(NewLoc);
1972
0
  }
1973
};
1974
1975
/// Handle "\#pragma region [...]"
1976
///
1977
/// The syntax is
1978
/// \code
1979
///   #pragma region [optional name]
1980
///   #pragma endregion [optional comment]
1981
/// \endcode
1982
///
1983
/// \note This is
1984
/// <a href="http://msdn.microsoft.com/en-us/library/b6xkz944(v=vs.80).aspx">editor-only</a>
1985
/// pragma, just skipped by compiler.
1986
struct PragmaRegionHandler : public PragmaHandler {
1987
92
  PragmaRegionHandler(const char *pragma) : PragmaHandler(pragma) {}
1988
1989
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
1990
0
                    Token &NameTok) override {
1991
    // #pragma region: endregion matches can be verified
1992
    // __pragma(region): no sense, but ignored by msvc
1993
    // _Pragma is not valid for MSVC, but there isn't any point
1994
    // to handle a _Pragma differently.
1995
0
  }
1996
};
1997
1998
/// "\#pragma managed"
1999
/// "\#pragma managed(...)"
2000
/// "\#pragma unmanaged"
2001
/// MSVC ignores this pragma when not compiling using /clr, which clang doesn't
2002
/// support. We parse it and ignore it to avoid -Wunknown-pragma warnings.
2003
struct PragmaManagedHandler : public EmptyPragmaHandler {
2004
0
  PragmaManagedHandler(const char *pragma) : EmptyPragmaHandler(pragma) {}
2005
};
2006
2007
/// This handles parsing pragmas that take a macro name and optional message
2008
static IdentifierInfo *HandleMacroAnnotationPragma(Preprocessor &PP, Token &Tok,
2009
                                                   const char *Pragma,
2010
0
                                                   std::string &MessageString) {
2011
0
  PP.Lex(Tok);
2012
0
  if (Tok.isNot(tok::l_paren)) {
2013
0
    PP.Diag(Tok, diag::err_expected) << "(";
2014
0
    return nullptr;
2015
0
  }
2016
2017
0
  PP.LexUnexpandedToken(Tok);
2018
0
  if (!Tok.is(tok::identifier)) {
2019
0
    PP.Diag(Tok, diag::err_expected) << tok::identifier;
2020
0
    return nullptr;
2021
0
  }
2022
0
  IdentifierInfo *II = Tok.getIdentifierInfo();
2023
2024
0
  if (!II->hasMacroDefinition()) {
2025
0
    PP.Diag(Tok, diag::err_pp_visibility_non_macro) << II;
2026
0
    return nullptr;
2027
0
  }
2028
2029
0
  PP.Lex(Tok);
2030
0
  if (Tok.is(tok::comma)) {
2031
0
    PP.Lex(Tok);
2032
0
    if (!PP.FinishLexStringLiteral(Tok, MessageString, Pragma,
2033
0
                                   /*AllowMacroExpansion=*/true))
2034
0
      return nullptr;
2035
0
  }
2036
2037
0
  if (Tok.isNot(tok::r_paren)) {
2038
0
    PP.Diag(Tok, diag::err_expected) << ")";
2039
0
    return nullptr;
2040
0
  }
2041
0
  return II;
2042
0
}
2043
2044
/// "\#pragma clang deprecated(...)"
2045
///
2046
/// The syntax is
2047
/// \code
2048
///   #pragma clang deprecate(MACRO_NAME [, Message])
2049
/// \endcode
2050
struct PragmaDeprecatedHandler : public PragmaHandler {
2051
46
  PragmaDeprecatedHandler() : PragmaHandler("deprecated") {}
2052
2053
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
2054
0
                    Token &Tok) override {
2055
0
    std::string MessageString;
2056
2057
0
    if (IdentifierInfo *II = HandleMacroAnnotationPragma(
2058
0
            PP, Tok, "#pragma clang deprecated", MessageString)) {
2059
0
      II->setIsDeprecatedMacro(true);
2060
0
      PP.addMacroDeprecationMsg(II, std::move(MessageString),
2061
0
                                Tok.getLocation());
2062
0
    }
2063
0
  }
2064
};
2065
2066
/// "\#pragma clang restrict_expansion(...)"
2067
///
2068
/// The syntax is
2069
/// \code
2070
///   #pragma clang restrict_expansion(MACRO_NAME [, Message])
2071
/// \endcode
2072
struct PragmaRestrictExpansionHandler : public PragmaHandler {
2073
46
  PragmaRestrictExpansionHandler() : PragmaHandler("restrict_expansion") {}
2074
2075
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
2076
0
                    Token &Tok) override {
2077
0
    std::string MessageString;
2078
2079
0
    if (IdentifierInfo *II = HandleMacroAnnotationPragma(
2080
0
            PP, Tok, "#pragma clang restrict_expansion", MessageString)) {
2081
0
      II->setIsRestrictExpansion(true);
2082
0
      PP.addRestrictExpansionMsg(II, std::move(MessageString),
2083
0
                                 Tok.getLocation());
2084
0
    }
2085
0
  }
2086
};
2087
2088
/// "\#pragma clang final(...)"
2089
///
2090
/// The syntax is
2091
/// \code
2092
///   #pragma clang final(MACRO_NAME)
2093
/// \endcode
2094
struct PragmaFinalHandler : public PragmaHandler {
2095
46
  PragmaFinalHandler() : PragmaHandler("final") {}
2096
2097
  void HandlePragma(Preprocessor &PP, PragmaIntroducer Introducer,
2098
0
                    Token &Tok) override {
2099
0
    PP.Lex(Tok);
2100
0
    if (Tok.isNot(tok::l_paren)) {
2101
0
      PP.Diag(Tok, diag::err_expected) << "(";
2102
0
      return;
2103
0
    }
2104
2105
0
    PP.LexUnexpandedToken(Tok);
2106
0
    if (!Tok.is(tok::identifier)) {
2107
0
      PP.Diag(Tok, diag::err_expected) << tok::identifier;
2108
0
      return;
2109
0
    }
2110
0
    IdentifierInfo *II = Tok.getIdentifierInfo();
2111
2112
0
    if (!II->hasMacroDefinition()) {
2113
0
      PP.Diag(Tok, diag::err_pp_visibility_non_macro) << II;
2114
0
      return;
2115
0
    }
2116
2117
0
    PP.Lex(Tok);
2118
0
    if (Tok.isNot(tok::r_paren)) {
2119
0
      PP.Diag(Tok, diag::err_expected) << ")";
2120
0
      return;
2121
0
    }
2122
0
    II->setIsFinal(true);
2123
0
    PP.addFinalLoc(II, Tok.getLocation());
2124
0
  }
2125
};
2126
2127
} // namespace
2128
2129
/// RegisterBuiltinPragmas - Install the standard preprocessor pragmas:
2130
/// \#pragma GCC poison/system_header/dependency and \#pragma once.
2131
46
void Preprocessor::RegisterBuiltinPragmas() {
2132
46
  AddPragmaHandler(new PragmaOnceHandler());
2133
46
  AddPragmaHandler(new PragmaMarkHandler());
2134
46
  AddPragmaHandler(new PragmaPushMacroHandler());
2135
46
  AddPragmaHandler(new PragmaPopMacroHandler());
2136
46
  AddPragmaHandler(new PragmaMessageHandler(PPCallbacks::PMK_Message));
2137
2138
  // #pragma GCC ...
2139
46
  AddPragmaHandler("GCC", new PragmaPoisonHandler());
2140
46
  AddPragmaHandler("GCC", new PragmaSystemHeaderHandler());
2141
46
  AddPragmaHandler("GCC", new PragmaDependencyHandler());
2142
46
  AddPragmaHandler("GCC", new PragmaDiagnosticHandler("GCC"));
2143
46
  AddPragmaHandler("GCC", new PragmaMessageHandler(PPCallbacks::PMK_Warning,
2144
46
                                                   "GCC"));
2145
46
  AddPragmaHandler("GCC", new PragmaMessageHandler(PPCallbacks::PMK_Error,
2146
46
                                                   "GCC"));
2147
  // #pragma clang ...
2148
46
  AddPragmaHandler("clang", new PragmaPoisonHandler());
2149
46
  AddPragmaHandler("clang", new PragmaSystemHeaderHandler());
2150
46
  AddPragmaHandler("clang", new PragmaDebugHandler());
2151
46
  AddPragmaHandler("clang", new PragmaDependencyHandler());
2152
46
  AddPragmaHandler("clang", new PragmaDiagnosticHandler("clang"));
2153
46
  AddPragmaHandler("clang", new PragmaARCCFCodeAuditedHandler());
2154
46
  AddPragmaHandler("clang", new PragmaAssumeNonNullHandler());
2155
46
  AddPragmaHandler("clang", new PragmaDeprecatedHandler());
2156
46
  AddPragmaHandler("clang", new PragmaRestrictExpansionHandler());
2157
46
  AddPragmaHandler("clang", new PragmaFinalHandler());
2158
2159
  // #pragma clang module ...
2160
46
  auto *ModuleHandler = new PragmaNamespace("module");
2161
46
  AddPragmaHandler("clang", ModuleHandler);
2162
46
  ModuleHandler->AddPragma(new PragmaModuleImportHandler());
2163
46
  ModuleHandler->AddPragma(new PragmaModuleBeginHandler());
2164
46
  ModuleHandler->AddPragma(new PragmaModuleEndHandler());
2165
46
  ModuleHandler->AddPragma(new PragmaModuleBuildHandler());
2166
46
  ModuleHandler->AddPragma(new PragmaModuleLoadHandler());
2167
2168
  // Safe Buffers pragmas
2169
46
  AddPragmaHandler("clang", new PragmaUnsafeBufferUsageHandler);
2170
2171
  // Add region pragmas.
2172
46
  AddPragmaHandler(new PragmaRegionHandler("region"));
2173
46
  AddPragmaHandler(new PragmaRegionHandler("endregion"));
2174
2175
  // MS extensions.
2176
46
  if (LangOpts.MicrosoftExt) {
2177
0
    AddPragmaHandler(new PragmaWarningHandler());
2178
0
    AddPragmaHandler(new PragmaExecCharsetHandler());
2179
0
    AddPragmaHandler(new PragmaIncludeAliasHandler());
2180
0
    AddPragmaHandler(new PragmaHdrstopHandler());
2181
0
    AddPragmaHandler(new PragmaSystemHeaderHandler());
2182
0
    AddPragmaHandler(new PragmaManagedHandler("managed"));
2183
0
    AddPragmaHandler(new PragmaManagedHandler("unmanaged"));
2184
0
  }
2185
2186
  // Pragmas added by plugins
2187
46
  for (const PragmaHandlerRegistry::entry &handler :
2188
46
       PragmaHandlerRegistry::entries()) {
2189
0
    AddPragmaHandler(handler.instantiate().release());
2190
0
  }
2191
46
}
2192
2193
/// Ignore all pragmas, useful for modes such as -Eonly which would otherwise
2194
/// warn about those pragmas being unknown.
2195
0
void Preprocessor::IgnorePragmas() {
2196
0
  AddPragmaHandler(new EmptyPragmaHandler());
2197
  // Also ignore all pragmas in all namespaces created
2198
  // in Preprocessor::RegisterBuiltinPragmas().
2199
0
  AddPragmaHandler("GCC", new EmptyPragmaHandler());
2200
0
  AddPragmaHandler("clang", new EmptyPragmaHandler());
2201
0
}