1 //===--- MacroExpansion.cpp - Top level Macro Expansion -------------------===// 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 top level handling of macro expasion for the 11 // preprocessor. 12 // 13 //===----------------------------------------------------------------------===// 14 15 #include "clang/Lex/Preprocessor.h" 16 #include "MacroArgs.h" 17 #include "clang/Basic/FileManager.h" 18 #include "clang/Basic/SourceManager.h" 19 #include "clang/Basic/TargetInfo.h" 20 #include "clang/Lex/CodeCompletionHandler.h" 21 #include "clang/Lex/ExternalPreprocessorSource.h" 22 #include "clang/Lex/LexDiagnostic.h" 23 #include "clang/Lex/MacroInfo.h" 24 #include "llvm/ADT/STLExtras.h" 25 #include "llvm/ADT/SmallString.h" 26 #include "llvm/ADT/StringSwitch.h" 27 #include "llvm/Config/llvm-config.h" 28 #include "llvm/Support/ErrorHandling.h" 29 #include "llvm/Support/Format.h" 30 #include "llvm/Support/raw_ostream.h" 31 #include <cstdio> 32 #include <ctime> 33 using namespace clang; 34 35 MacroDirective * 36 Preprocessor::getMacroDirectiveHistory(const IdentifierInfo *II) const { 37 assert(II->hadMacroDefinition() && "Identifier has not been not a macro!"); 38 39 macro_iterator Pos = Macros.find(II); 40 assert(Pos != Macros.end() && "Identifier macro info is missing!"); 41 return Pos->second; 42 } 43 44 void Preprocessor::appendMacroDirective(IdentifierInfo *II, MacroDirective *MD){ 45 assert(MD && "MacroDirective should be non-zero!"); 46 assert(!MD->getPrevious() && "Already attached to a MacroDirective history."); 47 48 MacroDirective *&StoredMD = Macros[II]; 49 MD->setPrevious(StoredMD); 50 StoredMD = MD; 51 II->setHasMacroDefinition(MD->isDefined()); 52 bool isImportedMacro = isa<DefMacroDirective>(MD) && 53 cast<DefMacroDirective>(MD)->isImported(); 54 if (II->isFromAST() && !isImportedMacro) 55 II->setChangedSinceDeserialization(); 56 } 57 58 void Preprocessor::setLoadedMacroDirective(IdentifierInfo *II, 59 MacroDirective *MD) { 60 assert(II && MD); 61 MacroDirective *&StoredMD = Macros[II]; 62 assert(!StoredMD && 63 "the macro history was modified before initializing it from a pch"); 64 StoredMD = MD; 65 // Setup the identifier as having associated macro history. 66 II->setHasMacroDefinition(true); 67 if (!MD->isDefined()) 68 II->setHasMacroDefinition(false); 69 } 70 71 /// RegisterBuiltinMacro - Register the specified identifier in the identifier 72 /// table and mark it as a builtin macro to be expanded. 73 static IdentifierInfo *RegisterBuiltinMacro(Preprocessor &PP, const char *Name){ 74 // Get the identifier. 75 IdentifierInfo *Id = PP.getIdentifierInfo(Name); 76 77 // Mark it as being a macro that is builtin. 78 MacroInfo *MI = PP.AllocateMacroInfo(SourceLocation()); 79 MI->setIsBuiltinMacro(); 80 PP.appendDefMacroDirective(Id, MI); 81 return Id; 82 } 83 84 85 /// RegisterBuiltinMacros - Register builtin macros, such as __LINE__ with the 86 /// identifier table. 87 void Preprocessor::RegisterBuiltinMacros() { 88 Ident__LINE__ = RegisterBuiltinMacro(*this, "__LINE__"); 89 Ident__FILE__ = RegisterBuiltinMacro(*this, "__FILE__"); 90 Ident__DATE__ = RegisterBuiltinMacro(*this, "__DATE__"); 91 Ident__TIME__ = RegisterBuiltinMacro(*this, "__TIME__"); 92 Ident__COUNTER__ = RegisterBuiltinMacro(*this, "__COUNTER__"); 93 Ident_Pragma = RegisterBuiltinMacro(*this, "_Pragma"); 94 95 // GCC Extensions. 96 Ident__BASE_FILE__ = RegisterBuiltinMacro(*this, "__BASE_FILE__"); 97 Ident__INCLUDE_LEVEL__ = RegisterBuiltinMacro(*this, "__INCLUDE_LEVEL__"); 98 Ident__TIMESTAMP__ = RegisterBuiltinMacro(*this, "__TIMESTAMP__"); 99 100 // Clang Extensions. 101 Ident__has_feature = RegisterBuiltinMacro(*this, "__has_feature"); 102 Ident__has_extension = RegisterBuiltinMacro(*this, "__has_extension"); 103 Ident__has_builtin = RegisterBuiltinMacro(*this, "__has_builtin"); 104 Ident__has_attribute = RegisterBuiltinMacro(*this, "__has_attribute"); 105 Ident__has_include = RegisterBuiltinMacro(*this, "__has_include"); 106 Ident__has_include_next = RegisterBuiltinMacro(*this, "__has_include_next"); 107 Ident__has_warning = RegisterBuiltinMacro(*this, "__has_warning"); 108 109 // Modules. 110 if (LangOpts.Modules) { 111 Ident__building_module = RegisterBuiltinMacro(*this, "__building_module"); 112 113 // __MODULE__ 114 if (!LangOpts.CurrentModule.empty()) 115 Ident__MODULE__ = RegisterBuiltinMacro(*this, "__MODULE__"); 116 else 117 Ident__MODULE__ = 0; 118 } else { 119 Ident__building_module = 0; 120 Ident__MODULE__ = 0; 121 } 122 123 // Microsoft Extensions. 124 if (LangOpts.MicrosoftExt) 125 Ident__pragma = RegisterBuiltinMacro(*this, "__pragma"); 126 else 127 Ident__pragma = 0; 128 } 129 130 /// isTrivialSingleTokenExpansion - Return true if MI, which has a single token 131 /// in its expansion, currently expands to that token literally. 132 static bool isTrivialSingleTokenExpansion(const MacroInfo *MI, 133 const IdentifierInfo *MacroIdent, 134 Preprocessor &PP) { 135 IdentifierInfo *II = MI->getReplacementToken(0).getIdentifierInfo(); 136 137 // If the token isn't an identifier, it's always literally expanded. 138 if (II == 0) return true; 139 140 // If the information about this identifier is out of date, update it from 141 // the external source. 142 if (II->isOutOfDate()) 143 PP.getExternalSource()->updateOutOfDateIdentifier(*II); 144 145 // If the identifier is a macro, and if that macro is enabled, it may be 146 // expanded so it's not a trivial expansion. 147 if (II->hasMacroDefinition() && PP.getMacroInfo(II)->isEnabled() && 148 // Fast expanding "#define X X" is ok, because X would be disabled. 149 II != MacroIdent) 150 return false; 151 152 // If this is an object-like macro invocation, it is safe to trivially expand 153 // it. 154 if (MI->isObjectLike()) return true; 155 156 // If this is a function-like macro invocation, it's safe to trivially expand 157 // as long as the identifier is not a macro argument. 158 for (MacroInfo::arg_iterator I = MI->arg_begin(), E = MI->arg_end(); 159 I != E; ++I) 160 if (*I == II) 161 return false; // Identifier is a macro argument. 162 163 return true; 164 } 165 166 167 /// isNextPPTokenLParen - Determine whether the next preprocessor token to be 168 /// lexed is a '('. If so, consume the token and return true, if not, this 169 /// method should have no observable side-effect on the lexed tokens. 170 bool Preprocessor::isNextPPTokenLParen() { 171 // Do some quick tests for rejection cases. 172 unsigned Val; 173 if (CurLexer) 174 Val = CurLexer->isNextPPTokenLParen(); 175 else if (CurPTHLexer) 176 Val = CurPTHLexer->isNextPPTokenLParen(); 177 else 178 Val = CurTokenLexer->isNextTokenLParen(); 179 180 if (Val == 2) { 181 // We have run off the end. If it's a source file we don't 182 // examine enclosing ones (C99 5.1.1.2p4). Otherwise walk up the 183 // macro stack. 184 if (CurPPLexer) 185 return false; 186 for (unsigned i = IncludeMacroStack.size(); i != 0; --i) { 187 IncludeStackInfo &Entry = IncludeMacroStack[i-1]; 188 if (Entry.TheLexer) 189 Val = Entry.TheLexer->isNextPPTokenLParen(); 190 else if (Entry.ThePTHLexer) 191 Val = Entry.ThePTHLexer->isNextPPTokenLParen(); 192 else 193 Val = Entry.TheTokenLexer->isNextTokenLParen(); 194 195 if (Val != 2) 196 break; 197 198 // Ran off the end of a source file? 199 if (Entry.ThePPLexer) 200 return false; 201 } 202 } 203 204 // Okay, if we know that the token is a '(', lex it and return. Otherwise we 205 // have found something that isn't a '(' or we found the end of the 206 // translation unit. In either case, return false. 207 return Val == 1; 208 } 209 210 /// HandleMacroExpandedIdentifier - If an identifier token is read that is to be 211 /// expanded as a macro, handle it and return the next token as 'Identifier'. 212 bool Preprocessor::HandleMacroExpandedIdentifier(Token &Identifier, 213 MacroDirective *MD) { 214 MacroDirective::DefInfo Def = MD->getDefinition(); 215 assert(Def.isValid()); 216 MacroInfo *MI = Def.getMacroInfo(); 217 218 // If this is a macro expansion in the "#if !defined(x)" line for the file, 219 // then the macro could expand to different things in other contexts, we need 220 // to disable the optimization in this case. 221 if (CurPPLexer) CurPPLexer->MIOpt.ExpandedMacro(); 222 223 // If this is a builtin macro, like __LINE__ or _Pragma, handle it specially. 224 if (MI->isBuiltinMacro()) { 225 if (Callbacks) Callbacks->MacroExpands(Identifier, MD, 226 Identifier.getLocation()); 227 ExpandBuiltinMacro(Identifier); 228 return false; 229 } 230 231 /// Args - If this is a function-like macro expansion, this contains, 232 /// for each macro argument, the list of tokens that were provided to the 233 /// invocation. 234 MacroArgs *Args = 0; 235 236 // Remember where the end of the expansion occurred. For an object-like 237 // macro, this is the identifier. For a function-like macro, this is the ')'. 238 SourceLocation ExpansionEnd = Identifier.getLocation(); 239 240 // If this is a function-like macro, read the arguments. 241 if (MI->isFunctionLike()) { 242 // C99 6.10.3p10: If the preprocessing token immediately after the macro 243 // name isn't a '(', this macro should not be expanded. 244 if (!isNextPPTokenLParen()) 245 return true; 246 247 // Remember that we are now parsing the arguments to a macro invocation. 248 // Preprocessor directives used inside macro arguments are not portable, and 249 // this enables the warning. 250 InMacroArgs = true; 251 Args = ReadFunctionLikeMacroArgs(Identifier, MI, ExpansionEnd); 252 253 // Finished parsing args. 254 InMacroArgs = false; 255 256 // If there was an error parsing the arguments, bail out. 257 if (Args == 0) return false; 258 259 ++NumFnMacroExpanded; 260 } else { 261 ++NumMacroExpanded; 262 } 263 264 // Notice that this macro has been used. 265 markMacroAsUsed(MI); 266 267 // Remember where the token is expanded. 268 SourceLocation ExpandLoc = Identifier.getLocation(); 269 SourceRange ExpansionRange(ExpandLoc, ExpansionEnd); 270 271 if (Callbacks) { 272 if (InMacroArgs) { 273 // We can have macro expansion inside a conditional directive while 274 // reading the function macro arguments. To ensure, in that case, that 275 // MacroExpands callbacks still happen in source order, queue this 276 // callback to have it happen after the function macro callback. 277 DelayedMacroExpandsCallbacks.push_back( 278 MacroExpandsInfo(Identifier, MD, ExpansionRange)); 279 } else { 280 Callbacks->MacroExpands(Identifier, MD, ExpansionRange); 281 if (!DelayedMacroExpandsCallbacks.empty()) { 282 for (unsigned i=0, e = DelayedMacroExpandsCallbacks.size(); i!=e; ++i) { 283 MacroExpandsInfo &Info = DelayedMacroExpandsCallbacks[i]; 284 Callbacks->MacroExpands(Info.Tok, Info.MD, Info.Range); 285 } 286 DelayedMacroExpandsCallbacks.clear(); 287 } 288 } 289 } 290 291 // If the macro definition is ambiguous, complain. 292 if (Def.getDirective()->isAmbiguous()) { 293 Diag(Identifier, diag::warn_pp_ambiguous_macro) 294 << Identifier.getIdentifierInfo(); 295 Diag(MI->getDefinitionLoc(), diag::note_pp_ambiguous_macro_chosen) 296 << Identifier.getIdentifierInfo(); 297 for (MacroDirective::DefInfo PrevDef = Def.getPreviousDefinition(); 298 PrevDef && !PrevDef.isUndefined(); 299 PrevDef = PrevDef.getPreviousDefinition()) { 300 if (PrevDef.getDirective()->isAmbiguous()) { 301 Diag(PrevDef.getMacroInfo()->getDefinitionLoc(), 302 diag::note_pp_ambiguous_macro_other) 303 << Identifier.getIdentifierInfo(); 304 } 305 } 306 } 307 308 // If we started lexing a macro, enter the macro expansion body. 309 310 // If this macro expands to no tokens, don't bother to push it onto the 311 // expansion stack, only to take it right back off. 312 if (MI->getNumTokens() == 0) { 313 // No need for arg info. 314 if (Args) Args->destroy(*this); 315 316 // Ignore this macro use, just return the next token in the current 317 // buffer. 318 bool HadLeadingSpace = Identifier.hasLeadingSpace(); 319 bool IsAtStartOfLine = Identifier.isAtStartOfLine(); 320 321 Lex(Identifier); 322 323 // If the identifier isn't on some OTHER line, inherit the leading 324 // whitespace/first-on-a-line property of this token. This handles 325 // stuff like "! XX," -> "! ," and " XX," -> " ,", when XX is 326 // empty. 327 if (!Identifier.isAtStartOfLine()) { 328 if (IsAtStartOfLine) Identifier.setFlag(Token::StartOfLine); 329 if (HadLeadingSpace) Identifier.setFlag(Token::LeadingSpace); 330 } 331 Identifier.setFlag(Token::LeadingEmptyMacro); 332 ++NumFastMacroExpanded; 333 return false; 334 335 } else if (MI->getNumTokens() == 1 && 336 isTrivialSingleTokenExpansion(MI, Identifier.getIdentifierInfo(), 337 *this)) { 338 // Otherwise, if this macro expands into a single trivially-expanded 339 // token: expand it now. This handles common cases like 340 // "#define VAL 42". 341 342 // No need for arg info. 343 if (Args) Args->destroy(*this); 344 345 // Propagate the isAtStartOfLine/hasLeadingSpace markers of the macro 346 // identifier to the expanded token. 347 bool isAtStartOfLine = Identifier.isAtStartOfLine(); 348 bool hasLeadingSpace = Identifier.hasLeadingSpace(); 349 350 // Replace the result token. 351 Identifier = MI->getReplacementToken(0); 352 353 // Restore the StartOfLine/LeadingSpace markers. 354 Identifier.setFlagValue(Token::StartOfLine , isAtStartOfLine); 355 Identifier.setFlagValue(Token::LeadingSpace, hasLeadingSpace); 356 357 // Update the tokens location to include both its expansion and physical 358 // locations. 359 SourceLocation Loc = 360 SourceMgr.createExpansionLoc(Identifier.getLocation(), ExpandLoc, 361 ExpansionEnd,Identifier.getLength()); 362 Identifier.setLocation(Loc); 363 364 // If this is a disabled macro or #define X X, we must mark the result as 365 // unexpandable. 366 if (IdentifierInfo *NewII = Identifier.getIdentifierInfo()) { 367 if (MacroInfo *NewMI = getMacroInfo(NewII)) 368 if (!NewMI->isEnabled() || NewMI == MI) { 369 Identifier.setFlag(Token::DisableExpand); 370 // Don't warn for "#define X X" like "#define bool bool" from 371 // stdbool.h. 372 if (NewMI != MI || MI->isFunctionLike()) 373 Diag(Identifier, diag::pp_disabled_macro_expansion); 374 } 375 } 376 377 // Since this is not an identifier token, it can't be macro expanded, so 378 // we're done. 379 ++NumFastMacroExpanded; 380 return false; 381 } 382 383 // Start expanding the macro. 384 EnterMacro(Identifier, ExpansionEnd, MI, Args); 385 386 // Now that the macro is at the top of the include stack, ask the 387 // preprocessor to read the next token from it. 388 Lex(Identifier); 389 return false; 390 } 391 392 /// ReadFunctionLikeMacroArgs - After reading "MACRO" and knowing that the next 393 /// token is the '(' of the macro, this method is invoked to read all of the 394 /// actual arguments specified for the macro invocation. This returns null on 395 /// error. 396 MacroArgs *Preprocessor::ReadFunctionLikeMacroArgs(Token &MacroName, 397 MacroInfo *MI, 398 SourceLocation &MacroEnd) { 399 // The number of fixed arguments to parse. 400 unsigned NumFixedArgsLeft = MI->getNumArgs(); 401 bool isVariadic = MI->isVariadic(); 402 403 // Outer loop, while there are more arguments, keep reading them. 404 Token Tok; 405 406 // Read arguments as unexpanded tokens. This avoids issues, e.g., where 407 // an argument value in a macro could expand to ',' or '(' or ')'. 408 LexUnexpandedToken(Tok); 409 assert(Tok.is(tok::l_paren) && "Error computing l-paren-ness?"); 410 411 // ArgTokens - Build up a list of tokens that make up each argument. Each 412 // argument is separated by an EOF token. Use a SmallVector so we can avoid 413 // heap allocations in the common case. 414 SmallVector<Token, 64> ArgTokens; 415 bool ContainsCodeCompletionTok = false; 416 417 unsigned NumActuals = 0; 418 while (Tok.isNot(tok::r_paren)) { 419 if (ContainsCodeCompletionTok && (Tok.is(tok::eof) || Tok.is(tok::eod))) 420 break; 421 422 assert((Tok.is(tok::l_paren) || Tok.is(tok::comma)) && 423 "only expect argument separators here"); 424 425 unsigned ArgTokenStart = ArgTokens.size(); 426 SourceLocation ArgStartLoc = Tok.getLocation(); 427 428 // C99 6.10.3p11: Keep track of the number of l_parens we have seen. Note 429 // that we already consumed the first one. 430 unsigned NumParens = 0; 431 432 while (1) { 433 // Read arguments as unexpanded tokens. This avoids issues, e.g., where 434 // an argument value in a macro could expand to ',' or '(' or ')'. 435 LexUnexpandedToken(Tok); 436 437 if (Tok.is(tok::eof) || Tok.is(tok::eod)) { // "#if f(<eof>" & "#if f(\n" 438 if (!ContainsCodeCompletionTok) { 439 Diag(MacroName, diag::err_unterm_macro_invoc); 440 Diag(MI->getDefinitionLoc(), diag::note_macro_here) 441 << MacroName.getIdentifierInfo(); 442 // Do not lose the EOF/EOD. Return it to the client. 443 MacroName = Tok; 444 return 0; 445 } else { 446 // Do not lose the EOF/EOD. 447 Token *Toks = new Token[1]; 448 Toks[0] = Tok; 449 EnterTokenStream(Toks, 1, true, true); 450 break; 451 } 452 } else if (Tok.is(tok::r_paren)) { 453 // If we found the ) token, the macro arg list is done. 454 if (NumParens-- == 0) { 455 MacroEnd = Tok.getLocation(); 456 break; 457 } 458 } else if (Tok.is(tok::l_paren)) { 459 ++NumParens; 460 } else if (Tok.is(tok::comma) && NumParens == 0) { 461 // Comma ends this argument if there are more fixed arguments expected. 462 // However, if this is a variadic macro, and this is part of the 463 // variadic part, then the comma is just an argument token. 464 if (!isVariadic) break; 465 if (NumFixedArgsLeft > 1) 466 break; 467 } else if (Tok.is(tok::comment) && !KeepMacroComments) { 468 // If this is a comment token in the argument list and we're just in 469 // -C mode (not -CC mode), discard the comment. 470 continue; 471 } else if (Tok.getIdentifierInfo() != 0) { 472 // Reading macro arguments can cause macros that we are currently 473 // expanding from to be popped off the expansion stack. Doing so causes 474 // them to be reenabled for expansion. Here we record whether any 475 // identifiers we lex as macro arguments correspond to disabled macros. 476 // If so, we mark the token as noexpand. This is a subtle aspect of 477 // C99 6.10.3.4p2. 478 if (MacroInfo *MI = getMacroInfo(Tok.getIdentifierInfo())) 479 if (!MI->isEnabled()) 480 Tok.setFlag(Token::DisableExpand); 481 } else if (Tok.is(tok::code_completion)) { 482 ContainsCodeCompletionTok = true; 483 if (CodeComplete) 484 CodeComplete->CodeCompleteMacroArgument(MacroName.getIdentifierInfo(), 485 MI, NumActuals); 486 // Don't mark that we reached the code-completion point because the 487 // parser is going to handle the token and there will be another 488 // code-completion callback. 489 } 490 491 ArgTokens.push_back(Tok); 492 } 493 494 // If this was an empty argument list foo(), don't add this as an empty 495 // argument. 496 if (ArgTokens.empty() && Tok.getKind() == tok::r_paren) 497 break; 498 499 // If this is not a variadic macro, and too many args were specified, emit 500 // an error. 501 if (!isVariadic && NumFixedArgsLeft == 0) { 502 if (ArgTokens.size() != ArgTokenStart) 503 ArgStartLoc = ArgTokens[ArgTokenStart].getLocation(); 504 505 if (!ContainsCodeCompletionTok) { 506 // Emit the diagnostic at the macro name in case there is a missing ). 507 // Emitting it at the , could be far away from the macro name. 508 Diag(ArgStartLoc, diag::err_too_many_args_in_macro_invoc); 509 Diag(MI->getDefinitionLoc(), diag::note_macro_here) 510 << MacroName.getIdentifierInfo(); 511 return 0; 512 } 513 } 514 515 // Empty arguments are standard in C99 and C++0x, and are supported as an extension in 516 // other modes. 517 if (ArgTokens.size() == ArgTokenStart && !LangOpts.C99) 518 Diag(Tok, LangOpts.CPlusPlus11 ? 519 diag::warn_cxx98_compat_empty_fnmacro_arg : 520 diag::ext_empty_fnmacro_arg); 521 522 // Add a marker EOF token to the end of the token list for this argument. 523 Token EOFTok; 524 EOFTok.startToken(); 525 EOFTok.setKind(tok::eof); 526 EOFTok.setLocation(Tok.getLocation()); 527 EOFTok.setLength(0); 528 ArgTokens.push_back(EOFTok); 529 ++NumActuals; 530 if (!ContainsCodeCompletionTok || NumFixedArgsLeft != 0) { 531 assert(NumFixedArgsLeft != 0 && "Too many arguments parsed"); 532 --NumFixedArgsLeft; 533 } 534 } 535 536 // Okay, we either found the r_paren. Check to see if we parsed too few 537 // arguments. 538 unsigned MinArgsExpected = MI->getNumArgs(); 539 540 // See MacroArgs instance var for description of this. 541 bool isVarargsElided = false; 542 543 if (ContainsCodeCompletionTok) { 544 // Recover from not-fully-formed macro invocation during code-completion. 545 Token EOFTok; 546 EOFTok.startToken(); 547 EOFTok.setKind(tok::eof); 548 EOFTok.setLocation(Tok.getLocation()); 549 EOFTok.setLength(0); 550 for (; NumActuals < MinArgsExpected; ++NumActuals) 551 ArgTokens.push_back(EOFTok); 552 } 553 554 if (NumActuals < MinArgsExpected) { 555 // There are several cases where too few arguments is ok, handle them now. 556 if (NumActuals == 0 && MinArgsExpected == 1) { 557 // #define A(X) or #define A(...) ---> A() 558 559 // If there is exactly one argument, and that argument is missing, 560 // then we have an empty "()" argument empty list. This is fine, even if 561 // the macro expects one argument (the argument is just empty). 562 isVarargsElided = MI->isVariadic(); 563 } else if (MI->isVariadic() && 564 (NumActuals+1 == MinArgsExpected || // A(x, ...) -> A(X) 565 (NumActuals == 0 && MinArgsExpected == 2))) {// A(x,...) -> A() 566 // Varargs where the named vararg parameter is missing: OK as extension. 567 // #define A(x, ...) 568 // A("blah") 569 // 570 // If the macro contains the comma pasting extension, the diagnostic 571 // is suppressed; we know we'll get another diagnostic later. 572 if (!MI->hasCommaPasting()) { 573 Diag(Tok, diag::ext_missing_varargs_arg); 574 Diag(MI->getDefinitionLoc(), diag::note_macro_here) 575 << MacroName.getIdentifierInfo(); 576 } 577 578 // Remember this occurred, allowing us to elide the comma when used for 579 // cases like: 580 // #define A(x, foo...) blah(a, ## foo) 581 // #define B(x, ...) blah(a, ## __VA_ARGS__) 582 // #define C(...) blah(a, ## __VA_ARGS__) 583 // A(x) B(x) C() 584 isVarargsElided = true; 585 } else if (!ContainsCodeCompletionTok) { 586 // Otherwise, emit the error. 587 Diag(Tok, diag::err_too_few_args_in_macro_invoc); 588 Diag(MI->getDefinitionLoc(), diag::note_macro_here) 589 << MacroName.getIdentifierInfo(); 590 return 0; 591 } 592 593 // Add a marker EOF token to the end of the token list for this argument. 594 SourceLocation EndLoc = Tok.getLocation(); 595 Tok.startToken(); 596 Tok.setKind(tok::eof); 597 Tok.setLocation(EndLoc); 598 Tok.setLength(0); 599 ArgTokens.push_back(Tok); 600 601 // If we expect two arguments, add both as empty. 602 if (NumActuals == 0 && MinArgsExpected == 2) 603 ArgTokens.push_back(Tok); 604 605 } else if (NumActuals > MinArgsExpected && !MI->isVariadic() && 606 !ContainsCodeCompletionTok) { 607 // Emit the diagnostic at the macro name in case there is a missing ). 608 // Emitting it at the , could be far away from the macro name. 609 Diag(MacroName, diag::err_too_many_args_in_macro_invoc); 610 Diag(MI->getDefinitionLoc(), diag::note_macro_here) 611 << MacroName.getIdentifierInfo(); 612 return 0; 613 } 614 615 return MacroArgs::create(MI, ArgTokens, isVarargsElided, *this); 616 } 617 618 /// \brief Keeps macro expanded tokens for TokenLexers. 619 // 620 /// Works like a stack; a TokenLexer adds the macro expanded tokens that is 621 /// going to lex in the cache and when it finishes the tokens are removed 622 /// from the end of the cache. 623 Token *Preprocessor::cacheMacroExpandedTokens(TokenLexer *tokLexer, 624 ArrayRef<Token> tokens) { 625 assert(tokLexer); 626 if (tokens.empty()) 627 return 0; 628 629 size_t newIndex = MacroExpandedTokens.size(); 630 bool cacheNeedsToGrow = tokens.size() > 631 MacroExpandedTokens.capacity()-MacroExpandedTokens.size(); 632 MacroExpandedTokens.append(tokens.begin(), tokens.end()); 633 634 if (cacheNeedsToGrow) { 635 // Go through all the TokenLexers whose 'Tokens' pointer points in the 636 // buffer and update the pointers to the (potential) new buffer array. 637 for (unsigned i = 0, e = MacroExpandingLexersStack.size(); i != e; ++i) { 638 TokenLexer *prevLexer; 639 size_t tokIndex; 640 llvm::tie(prevLexer, tokIndex) = MacroExpandingLexersStack[i]; 641 prevLexer->Tokens = MacroExpandedTokens.data() + tokIndex; 642 } 643 } 644 645 MacroExpandingLexersStack.push_back(std::make_pair(tokLexer, newIndex)); 646 return MacroExpandedTokens.data() + newIndex; 647 } 648 649 void Preprocessor::removeCachedMacroExpandedTokensOfLastLexer() { 650 assert(!MacroExpandingLexersStack.empty()); 651 size_t tokIndex = MacroExpandingLexersStack.back().second; 652 assert(tokIndex < MacroExpandedTokens.size()); 653 // Pop the cached macro expanded tokens from the end. 654 MacroExpandedTokens.resize(tokIndex); 655 MacroExpandingLexersStack.pop_back(); 656 } 657 658 /// ComputeDATE_TIME - Compute the current time, enter it into the specified 659 /// scratch buffer, then return DATELoc/TIMELoc locations with the position of 660 /// the identifier tokens inserted. 661 static void ComputeDATE_TIME(SourceLocation &DATELoc, SourceLocation &TIMELoc, 662 Preprocessor &PP) { 663 time_t TT = time(0); 664 struct tm *TM = localtime(&TT); 665 666 static const char * const Months[] = { 667 "Jan","Feb","Mar","Apr","May","Jun","Jul","Aug","Sep","Oct","Nov","Dec" 668 }; 669 670 { 671 SmallString<32> TmpBuffer; 672 llvm::raw_svector_ostream TmpStream(TmpBuffer); 673 TmpStream << llvm::format("\"%s %2d %4d\"", Months[TM->tm_mon], 674 TM->tm_mday, TM->tm_year + 1900); 675 Token TmpTok; 676 TmpTok.startToken(); 677 PP.CreateString(TmpStream.str(), TmpTok); 678 DATELoc = TmpTok.getLocation(); 679 } 680 681 { 682 SmallString<32> TmpBuffer; 683 llvm::raw_svector_ostream TmpStream(TmpBuffer); 684 TmpStream << llvm::format("\"%02d:%02d:%02d\"", 685 TM->tm_hour, TM->tm_min, TM->tm_sec); 686 Token TmpTok; 687 TmpTok.startToken(); 688 PP.CreateString(TmpStream.str(), TmpTok); 689 TIMELoc = TmpTok.getLocation(); 690 } 691 } 692 693 694 /// HasFeature - Return true if we recognize and implement the feature 695 /// specified by the identifier as a standard language feature. 696 static bool HasFeature(const Preprocessor &PP, const IdentifierInfo *II) { 697 const LangOptions &LangOpts = PP.getLangOpts(); 698 StringRef Feature = II->getName(); 699 700 // Normalize the feature name, __foo__ becomes foo. 701 if (Feature.startswith("__") && Feature.endswith("__") && Feature.size() >= 4) 702 Feature = Feature.substr(2, Feature.size() - 4); 703 704 return llvm::StringSwitch<bool>(Feature) 705 .Case("address_sanitizer", LangOpts.Sanitize.Address) 706 .Case("attribute_analyzer_noreturn", true) 707 .Case("attribute_availability", true) 708 .Case("attribute_availability_with_message", true) 709 .Case("attribute_cf_returns_not_retained", true) 710 .Case("attribute_cf_returns_retained", true) 711 .Case("attribute_deprecated_with_message", true) 712 .Case("attribute_ext_vector_type", true) 713 .Case("attribute_ns_returns_not_retained", true) 714 .Case("attribute_ns_returns_retained", true) 715 .Case("attribute_ns_consumes_self", true) 716 .Case("attribute_ns_consumed", true) 717 .Case("attribute_cf_consumed", true) 718 .Case("attribute_objc_ivar_unused", true) 719 .Case("attribute_objc_method_family", true) 720 .Case("attribute_overloadable", true) 721 .Case("attribute_unavailable_with_message", true) 722 .Case("attribute_unused_on_fields", true) 723 .Case("blocks", LangOpts.Blocks) 724 .Case("cxx_exceptions", LangOpts.Exceptions) 725 .Case("cxx_rtti", LangOpts.RTTI) 726 .Case("enumerator_attributes", true) 727 .Case("memory_sanitizer", LangOpts.Sanitize.Memory) 728 .Case("thread_sanitizer", LangOpts.Sanitize.Thread) 729 // Objective-C features 730 .Case("objc_arr", LangOpts.ObjCAutoRefCount) // FIXME: REMOVE? 731 .Case("objc_arc", LangOpts.ObjCAutoRefCount) 732 .Case("objc_arc_weak", LangOpts.ObjCARCWeak) 733 .Case("objc_default_synthesize_properties", LangOpts.ObjC2) 734 .Case("objc_fixed_enum", LangOpts.ObjC2) 735 .Case("objc_instancetype", LangOpts.ObjC2) 736 .Case("objc_modules", LangOpts.ObjC2 && LangOpts.Modules) 737 .Case("objc_nonfragile_abi", LangOpts.ObjCRuntime.isNonFragile()) 738 .Case("objc_property_explicit_atomic", true) // Does clang support explicit "atomic" keyword? 739 .Case("objc_weak_class", LangOpts.ObjCRuntime.hasWeakClassImport()) 740 .Case("ownership_holds", true) 741 .Case("ownership_returns", true) 742 .Case("ownership_takes", true) 743 .Case("objc_bool", true) 744 .Case("objc_subscripting", LangOpts.ObjCRuntime.isNonFragile()) 745 .Case("objc_array_literals", LangOpts.ObjC2) 746 .Case("objc_dictionary_literals", LangOpts.ObjC2) 747 .Case("objc_boxed_expressions", LangOpts.ObjC2) 748 .Case("arc_cf_code_audited", true) 749 // C11 features 750 .Case("c_alignas", LangOpts.C11) 751 .Case("c_atomic", LangOpts.C11) 752 .Case("c_generic_selections", LangOpts.C11) 753 .Case("c_static_assert", LangOpts.C11) 754 .Case("c_thread_local", LangOpts.C11) 755 // C++11 features 756 .Case("cxx_access_control_sfinae", LangOpts.CPlusPlus11) 757 .Case("cxx_alias_templates", LangOpts.CPlusPlus11) 758 .Case("cxx_alignas", LangOpts.CPlusPlus11) 759 .Case("cxx_atomic", LangOpts.CPlusPlus11) 760 .Case("cxx_attributes", LangOpts.CPlusPlus11) 761 .Case("cxx_auto_type", LangOpts.CPlusPlus11) 762 .Case("cxx_constexpr", LangOpts.CPlusPlus11) 763 .Case("cxx_decltype", LangOpts.CPlusPlus11) 764 .Case("cxx_decltype_incomplete_return_types", LangOpts.CPlusPlus11) 765 .Case("cxx_default_function_template_args", LangOpts.CPlusPlus11) 766 .Case("cxx_defaulted_functions", LangOpts.CPlusPlus11) 767 .Case("cxx_delegating_constructors", LangOpts.CPlusPlus11) 768 .Case("cxx_deleted_functions", LangOpts.CPlusPlus11) 769 .Case("cxx_explicit_conversions", LangOpts.CPlusPlus11) 770 .Case("cxx_generalized_initializers", LangOpts.CPlusPlus11) 771 .Case("cxx_implicit_moves", LangOpts.CPlusPlus11) 772 .Case("cxx_inheriting_constructors", LangOpts.CPlusPlus11) 773 .Case("cxx_inline_namespaces", LangOpts.CPlusPlus11) 774 .Case("cxx_lambdas", LangOpts.CPlusPlus11) 775 .Case("cxx_local_type_template_args", LangOpts.CPlusPlus11) 776 .Case("cxx_nonstatic_member_init", LangOpts.CPlusPlus11) 777 .Case("cxx_noexcept", LangOpts.CPlusPlus11) 778 .Case("cxx_nullptr", LangOpts.CPlusPlus11) 779 .Case("cxx_override_control", LangOpts.CPlusPlus11) 780 .Case("cxx_range_for", LangOpts.CPlusPlus11) 781 .Case("cxx_raw_string_literals", LangOpts.CPlusPlus11) 782 .Case("cxx_reference_qualified_functions", LangOpts.CPlusPlus11) 783 .Case("cxx_rvalue_references", LangOpts.CPlusPlus11) 784 .Case("cxx_strong_enums", LangOpts.CPlusPlus11) 785 .Case("cxx_static_assert", LangOpts.CPlusPlus11) 786 .Case("cxx_thread_local", LangOpts.CPlusPlus11) 787 .Case("cxx_trailing_return", LangOpts.CPlusPlus11) 788 .Case("cxx_unicode_literals", LangOpts.CPlusPlus11) 789 .Case("cxx_unrestricted_unions", LangOpts.CPlusPlus11) 790 .Case("cxx_user_literals", LangOpts.CPlusPlus11) 791 .Case("cxx_variadic_templates", LangOpts.CPlusPlus11) 792 // Type traits 793 .Case("has_nothrow_assign", LangOpts.CPlusPlus) 794 .Case("has_nothrow_copy", LangOpts.CPlusPlus) 795 .Case("has_nothrow_constructor", LangOpts.CPlusPlus) 796 .Case("has_trivial_assign", LangOpts.CPlusPlus) 797 .Case("has_trivial_copy", LangOpts.CPlusPlus) 798 .Case("has_trivial_constructor", LangOpts.CPlusPlus) 799 .Case("has_trivial_destructor", LangOpts.CPlusPlus) 800 .Case("has_virtual_destructor", LangOpts.CPlusPlus) 801 .Case("is_abstract", LangOpts.CPlusPlus) 802 .Case("is_base_of", LangOpts.CPlusPlus) 803 .Case("is_class", LangOpts.CPlusPlus) 804 .Case("is_convertible_to", LangOpts.CPlusPlus) 805 .Case("is_empty", LangOpts.CPlusPlus) 806 .Case("is_enum", LangOpts.CPlusPlus) 807 .Case("is_final", LangOpts.CPlusPlus) 808 .Case("is_literal", LangOpts.CPlusPlus) 809 .Case("is_standard_layout", LangOpts.CPlusPlus) 810 .Case("is_pod", LangOpts.CPlusPlus) 811 .Case("is_polymorphic", LangOpts.CPlusPlus) 812 .Case("is_trivial", LangOpts.CPlusPlus) 813 .Case("is_trivially_assignable", LangOpts.CPlusPlus) 814 .Case("is_trivially_constructible", LangOpts.CPlusPlus) 815 .Case("is_trivially_copyable", LangOpts.CPlusPlus) 816 .Case("is_union", LangOpts.CPlusPlus) 817 .Case("modules", LangOpts.Modules) 818 .Case("tls", PP.getTargetInfo().isTLSSupported()) 819 .Case("underlying_type", LangOpts.CPlusPlus) 820 .Default(false); 821 } 822 823 /// HasExtension - Return true if we recognize and implement the feature 824 /// specified by the identifier, either as an extension or a standard language 825 /// feature. 826 static bool HasExtension(const Preprocessor &PP, const IdentifierInfo *II) { 827 if (HasFeature(PP, II)) 828 return true; 829 830 // If the use of an extension results in an error diagnostic, extensions are 831 // effectively unavailable, so just return false here. 832 if (PP.getDiagnostics().getExtensionHandlingBehavior() == 833 DiagnosticsEngine::Ext_Error) 834 return false; 835 836 const LangOptions &LangOpts = PP.getLangOpts(); 837 StringRef Extension = II->getName(); 838 839 // Normalize the extension name, __foo__ becomes foo. 840 if (Extension.startswith("__") && Extension.endswith("__") && 841 Extension.size() >= 4) 842 Extension = Extension.substr(2, Extension.size() - 4); 843 844 // Because we inherit the feature list from HasFeature, this string switch 845 // must be less restrictive than HasFeature's. 846 return llvm::StringSwitch<bool>(Extension) 847 // C11 features supported by other languages as extensions. 848 .Case("c_alignas", true) 849 .Case("c_atomic", true) 850 .Case("c_generic_selections", true) 851 .Case("c_static_assert", true) 852 // C++0x features supported by other languages as extensions. 853 .Case("cxx_atomic", LangOpts.CPlusPlus) 854 .Case("cxx_deleted_functions", LangOpts.CPlusPlus) 855 .Case("cxx_explicit_conversions", LangOpts.CPlusPlus) 856 .Case("cxx_inline_namespaces", LangOpts.CPlusPlus) 857 .Case("cxx_local_type_template_args", LangOpts.CPlusPlus) 858 .Case("cxx_nonstatic_member_init", LangOpts.CPlusPlus) 859 .Case("cxx_override_control", LangOpts.CPlusPlus) 860 .Case("cxx_range_for", LangOpts.CPlusPlus) 861 .Case("cxx_reference_qualified_functions", LangOpts.CPlusPlus) 862 .Case("cxx_rvalue_references", LangOpts.CPlusPlus) 863 .Default(false); 864 } 865 866 /// HasAttribute - Return true if we recognize and implement the attribute 867 /// specified by the given identifier. 868 static bool HasAttribute(const IdentifierInfo *II) { 869 StringRef Name = II->getName(); 870 // Normalize the attribute name, __foo__ becomes foo. 871 if (Name.startswith("__") && Name.endswith("__") && Name.size() >= 4) 872 Name = Name.substr(2, Name.size() - 4); 873 874 // FIXME: Do we need to handle namespaces here? 875 return llvm::StringSwitch<bool>(Name) 876 #include "clang/Lex/AttrSpellings.inc" 877 .Default(false); 878 } 879 880 /// EvaluateHasIncludeCommon - Process a '__has_include("path")' 881 /// or '__has_include_next("path")' expression. 882 /// Returns true if successful. 883 static bool EvaluateHasIncludeCommon(Token &Tok, 884 IdentifierInfo *II, Preprocessor &PP, 885 const DirectoryLookup *LookupFrom) { 886 // Save the location of the current token. If a '(' is later found, use 887 // that location. If not, use the end of this location instead. 888 SourceLocation LParenLoc = Tok.getLocation(); 889 890 // These expressions are only allowed within a preprocessor directive. 891 if (!PP.isParsingIfOrElifDirective()) { 892 PP.Diag(LParenLoc, diag::err_pp_directive_required) << II->getName(); 893 return false; 894 } 895 896 // Get '('. 897 PP.LexNonComment(Tok); 898 899 // Ensure we have a '('. 900 if (Tok.isNot(tok::l_paren)) { 901 // No '(', use end of last token. 902 LParenLoc = PP.getLocForEndOfToken(LParenLoc); 903 PP.Diag(LParenLoc, diag::err_pp_missing_lparen) << II->getName(); 904 // If the next token looks like a filename or the start of one, 905 // assume it is and process it as such. 906 if (!Tok.is(tok::angle_string_literal) && !Tok.is(tok::string_literal) && 907 !Tok.is(tok::less)) 908 return false; 909 } else { 910 // Save '(' location for possible missing ')' message. 911 LParenLoc = Tok.getLocation(); 912 913 if (PP.getCurrentLexer()) { 914 // Get the file name. 915 PP.getCurrentLexer()->LexIncludeFilename(Tok); 916 } else { 917 // We're in a macro, so we can't use LexIncludeFilename; just 918 // grab the next token. 919 PP.Lex(Tok); 920 } 921 } 922 923 // Reserve a buffer to get the spelling. 924 SmallString<128> FilenameBuffer; 925 StringRef Filename; 926 SourceLocation EndLoc; 927 928 switch (Tok.getKind()) { 929 case tok::eod: 930 // If the token kind is EOD, the error has already been diagnosed. 931 return false; 932 933 case tok::angle_string_literal: 934 case tok::string_literal: { 935 bool Invalid = false; 936 Filename = PP.getSpelling(Tok, FilenameBuffer, &Invalid); 937 if (Invalid) 938 return false; 939 break; 940 } 941 942 case tok::less: 943 // This could be a <foo/bar.h> file coming from a macro expansion. In this 944 // case, glue the tokens together into FilenameBuffer and interpret those. 945 FilenameBuffer.push_back('<'); 946 if (PP.ConcatenateIncludeName(FilenameBuffer, EndLoc)) { 947 // Let the caller know a <eod> was found by changing the Token kind. 948 Tok.setKind(tok::eod); 949 return false; // Found <eod> but no ">"? Diagnostic already emitted. 950 } 951 Filename = FilenameBuffer.str(); 952 break; 953 default: 954 PP.Diag(Tok.getLocation(), diag::err_pp_expects_filename); 955 return false; 956 } 957 958 SourceLocation FilenameLoc = Tok.getLocation(); 959 960 // Get ')'. 961 PP.LexNonComment(Tok); 962 963 // Ensure we have a trailing ). 964 if (Tok.isNot(tok::r_paren)) { 965 PP.Diag(PP.getLocForEndOfToken(FilenameLoc), diag::err_pp_missing_rparen) 966 << II->getName(); 967 PP.Diag(LParenLoc, diag::note_matching) << "("; 968 return false; 969 } 970 971 bool isAngled = PP.GetIncludeFilenameSpelling(Tok.getLocation(), Filename); 972 // If GetIncludeFilenameSpelling set the start ptr to null, there was an 973 // error. 974 if (Filename.empty()) 975 return false; 976 977 // Search include directories. 978 const DirectoryLookup *CurDir; 979 const FileEntry *File = 980 PP.LookupFile(Filename, isAngled, LookupFrom, CurDir, NULL, NULL, NULL); 981 982 // Get the result value. A result of true means the file exists. 983 return File != 0; 984 } 985 986 /// EvaluateHasInclude - Process a '__has_include("path")' expression. 987 /// Returns true if successful. 988 static bool EvaluateHasInclude(Token &Tok, IdentifierInfo *II, 989 Preprocessor &PP) { 990 return EvaluateHasIncludeCommon(Tok, II, PP, NULL); 991 } 992 993 /// EvaluateHasIncludeNext - Process '__has_include_next("path")' expression. 994 /// Returns true if successful. 995 static bool EvaluateHasIncludeNext(Token &Tok, 996 IdentifierInfo *II, Preprocessor &PP) { 997 // __has_include_next is like __has_include, except that we start 998 // searching after the current found directory. If we can't do this, 999 // issue a diagnostic. 1000 const DirectoryLookup *Lookup = PP.GetCurDirLookup(); 1001 if (PP.isInPrimaryFile()) { 1002 Lookup = 0; 1003 PP.Diag(Tok, diag::pp_include_next_in_primary); 1004 } else if (Lookup == 0) { 1005 PP.Diag(Tok, diag::pp_include_next_absolute_path); 1006 } else { 1007 // Start looking up in the next directory. 1008 ++Lookup; 1009 } 1010 1011 return EvaluateHasIncludeCommon(Tok, II, PP, Lookup); 1012 } 1013 1014 /// \brief Process __building_module(identifier) expression. 1015 /// \returns true if we are building the named module, false otherwise. 1016 static bool EvaluateBuildingModule(Token &Tok, 1017 IdentifierInfo *II, Preprocessor &PP) { 1018 // Get '('. 1019 PP.LexNonComment(Tok); 1020 1021 // Ensure we have a '('. 1022 if (Tok.isNot(tok::l_paren)) { 1023 PP.Diag(Tok.getLocation(), diag::err_pp_missing_lparen) << II->getName(); 1024 return false; 1025 } 1026 1027 // Save '(' location for possible missing ')' message. 1028 SourceLocation LParenLoc = Tok.getLocation(); 1029 1030 // Get the module name. 1031 PP.LexNonComment(Tok); 1032 1033 // Ensure that we have an identifier. 1034 if (Tok.isNot(tok::identifier)) { 1035 PP.Diag(Tok.getLocation(), diag::err_expected_id_building_module); 1036 return false; 1037 } 1038 1039 bool Result 1040 = Tok.getIdentifierInfo()->getName() == PP.getLangOpts().CurrentModule; 1041 1042 // Get ')'. 1043 PP.LexNonComment(Tok); 1044 1045 // Ensure we have a trailing ). 1046 if (Tok.isNot(tok::r_paren)) { 1047 PP.Diag(Tok.getLocation(), diag::err_pp_missing_rparen) << II->getName(); 1048 PP.Diag(LParenLoc, diag::note_matching) << "("; 1049 return false; 1050 } 1051 1052 return Result; 1053 } 1054 1055 /// ExpandBuiltinMacro - If an identifier token is read that is to be expanded 1056 /// as a builtin macro, handle it and return the next token as 'Tok'. 1057 void Preprocessor::ExpandBuiltinMacro(Token &Tok) { 1058 // Figure out which token this is. 1059 IdentifierInfo *II = Tok.getIdentifierInfo(); 1060 assert(II && "Can't be a macro without id info!"); 1061 1062 // If this is an _Pragma or Microsoft __pragma directive, expand it, 1063 // invoke the pragma handler, then lex the token after it. 1064 if (II == Ident_Pragma) 1065 return Handle_Pragma(Tok); 1066 else if (II == Ident__pragma) // in non-MS mode this is null 1067 return HandleMicrosoft__pragma(Tok); 1068 1069 ++NumBuiltinMacroExpanded; 1070 1071 SmallString<128> TmpBuffer; 1072 llvm::raw_svector_ostream OS(TmpBuffer); 1073 1074 // Set up the return result. 1075 Tok.setIdentifierInfo(0); 1076 Tok.clearFlag(Token::NeedsCleaning); 1077 1078 if (II == Ident__LINE__) { 1079 // C99 6.10.8: "__LINE__: The presumed line number (within the current 1080 // source file) of the current source line (an integer constant)". This can 1081 // be affected by #line. 1082 SourceLocation Loc = Tok.getLocation(); 1083 1084 // Advance to the location of the first _, this might not be the first byte 1085 // of the token if it starts with an escaped newline. 1086 Loc = AdvanceToTokenCharacter(Loc, 0); 1087 1088 // One wrinkle here is that GCC expands __LINE__ to location of the *end* of 1089 // a macro expansion. This doesn't matter for object-like macros, but 1090 // can matter for a function-like macro that expands to contain __LINE__. 1091 // Skip down through expansion points until we find a file loc for the 1092 // end of the expansion history. 1093 Loc = SourceMgr.getExpansionRange(Loc).second; 1094 PresumedLoc PLoc = SourceMgr.getPresumedLoc(Loc); 1095 1096 // __LINE__ expands to a simple numeric value. 1097 OS << (PLoc.isValid()? PLoc.getLine() : 1); 1098 Tok.setKind(tok::numeric_constant); 1099 } else if (II == Ident__FILE__ || II == Ident__BASE_FILE__) { 1100 // C99 6.10.8: "__FILE__: The presumed name of the current source file (a 1101 // character string literal)". This can be affected by #line. 1102 PresumedLoc PLoc = SourceMgr.getPresumedLoc(Tok.getLocation()); 1103 1104 // __BASE_FILE__ is a GNU extension that returns the top of the presumed 1105 // #include stack instead of the current file. 1106 if (II == Ident__BASE_FILE__ && PLoc.isValid()) { 1107 SourceLocation NextLoc = PLoc.getIncludeLoc(); 1108 while (NextLoc.isValid()) { 1109 PLoc = SourceMgr.getPresumedLoc(NextLoc); 1110 if (PLoc.isInvalid()) 1111 break; 1112 1113 NextLoc = PLoc.getIncludeLoc(); 1114 } 1115 } 1116 1117 // Escape this filename. Turn '\' -> '\\' '"' -> '\"' 1118 SmallString<128> FN; 1119 if (PLoc.isValid()) { 1120 FN += PLoc.getFilename(); 1121 Lexer::Stringify(FN); 1122 OS << '"' << FN.str() << '"'; 1123 } 1124 Tok.setKind(tok::string_literal); 1125 } else if (II == Ident__DATE__) { 1126 if (!DATELoc.isValid()) 1127 ComputeDATE_TIME(DATELoc, TIMELoc, *this); 1128 Tok.setKind(tok::string_literal); 1129 Tok.setLength(strlen("\"Mmm dd yyyy\"")); 1130 Tok.setLocation(SourceMgr.createExpansionLoc(DATELoc, Tok.getLocation(), 1131 Tok.getLocation(), 1132 Tok.getLength())); 1133 return; 1134 } else if (II == Ident__TIME__) { 1135 if (!TIMELoc.isValid()) 1136 ComputeDATE_TIME(DATELoc, TIMELoc, *this); 1137 Tok.setKind(tok::string_literal); 1138 Tok.setLength(strlen("\"hh:mm:ss\"")); 1139 Tok.setLocation(SourceMgr.createExpansionLoc(TIMELoc, Tok.getLocation(), 1140 Tok.getLocation(), 1141 Tok.getLength())); 1142 return; 1143 } else if (II == Ident__INCLUDE_LEVEL__) { 1144 // Compute the presumed include depth of this token. This can be affected 1145 // by GNU line markers. 1146 unsigned Depth = 0; 1147 1148 PresumedLoc PLoc = SourceMgr.getPresumedLoc(Tok.getLocation()); 1149 if (PLoc.isValid()) { 1150 PLoc = SourceMgr.getPresumedLoc(PLoc.getIncludeLoc()); 1151 for (; PLoc.isValid(); ++Depth) 1152 PLoc = SourceMgr.getPresumedLoc(PLoc.getIncludeLoc()); 1153 } 1154 1155 // __INCLUDE_LEVEL__ expands to a simple numeric value. 1156 OS << Depth; 1157 Tok.setKind(tok::numeric_constant); 1158 } else if (II == Ident__TIMESTAMP__) { 1159 // MSVC, ICC, GCC, VisualAge C++ extension. The generated string should be 1160 // of the form "Ddd Mmm dd hh::mm::ss yyyy", which is returned by asctime. 1161 1162 // Get the file that we are lexing out of. If we're currently lexing from 1163 // a macro, dig into the include stack. 1164 const FileEntry *CurFile = 0; 1165 PreprocessorLexer *TheLexer = getCurrentFileLexer(); 1166 1167 if (TheLexer) 1168 CurFile = SourceMgr.getFileEntryForID(TheLexer->getFileID()); 1169 1170 const char *Result; 1171 if (CurFile) { 1172 time_t TT = CurFile->getModificationTime(); 1173 struct tm *TM = localtime(&TT); 1174 Result = asctime(TM); 1175 } else { 1176 Result = "??? ??? ?? ??:??:?? ????\n"; 1177 } 1178 // Surround the string with " and strip the trailing newline. 1179 OS << '"' << StringRef(Result, strlen(Result)-1) << '"'; 1180 Tok.setKind(tok::string_literal); 1181 } else if (II == Ident__COUNTER__) { 1182 // __COUNTER__ expands to a simple numeric value. 1183 OS << CounterValue++; 1184 Tok.setKind(tok::numeric_constant); 1185 } else if (II == Ident__has_feature || 1186 II == Ident__has_extension || 1187 II == Ident__has_builtin || 1188 II == Ident__has_attribute) { 1189 // The argument to these builtins should be a parenthesized identifier. 1190 SourceLocation StartLoc = Tok.getLocation(); 1191 1192 bool IsValid = false; 1193 IdentifierInfo *FeatureII = 0; 1194 1195 // Read the '('. 1196 LexUnexpandedToken(Tok); 1197 if (Tok.is(tok::l_paren)) { 1198 // Read the identifier 1199 LexUnexpandedToken(Tok); 1200 if (Tok.is(tok::identifier) || Tok.is(tok::kw_const)) { 1201 FeatureII = Tok.getIdentifierInfo(); 1202 1203 // Read the ')'. 1204 LexUnexpandedToken(Tok); 1205 if (Tok.is(tok::r_paren)) 1206 IsValid = true; 1207 } 1208 } 1209 1210 bool Value = false; 1211 if (!IsValid) 1212 Diag(StartLoc, diag::err_feature_check_malformed); 1213 else if (II == Ident__has_builtin) { 1214 // Check for a builtin is trivial. 1215 Value = FeatureII->getBuiltinID() != 0; 1216 } else if (II == Ident__has_attribute) 1217 Value = HasAttribute(FeatureII); 1218 else if (II == Ident__has_extension) 1219 Value = HasExtension(*this, FeatureII); 1220 else { 1221 assert(II == Ident__has_feature && "Must be feature check"); 1222 Value = HasFeature(*this, FeatureII); 1223 } 1224 1225 OS << (int)Value; 1226 if (IsValid) 1227 Tok.setKind(tok::numeric_constant); 1228 } else if (II == Ident__has_include || 1229 II == Ident__has_include_next) { 1230 // The argument to these two builtins should be a parenthesized 1231 // file name string literal using angle brackets (<>) or 1232 // double-quotes (""). 1233 bool Value; 1234 if (II == Ident__has_include) 1235 Value = EvaluateHasInclude(Tok, II, *this); 1236 else 1237 Value = EvaluateHasIncludeNext(Tok, II, *this); 1238 OS << (int)Value; 1239 if (Tok.is(tok::r_paren)) 1240 Tok.setKind(tok::numeric_constant); 1241 } else if (II == Ident__has_warning) { 1242 // The argument should be a parenthesized string literal. 1243 // The argument to these builtins should be a parenthesized identifier. 1244 SourceLocation StartLoc = Tok.getLocation(); 1245 bool IsValid = false; 1246 bool Value = false; 1247 // Read the '('. 1248 LexUnexpandedToken(Tok); 1249 do { 1250 if (Tok.isNot(tok::l_paren)) { 1251 Diag(StartLoc, diag::err_warning_check_malformed); 1252 break; 1253 } 1254 1255 LexUnexpandedToken(Tok); 1256 std::string WarningName; 1257 SourceLocation StrStartLoc = Tok.getLocation(); 1258 if (!FinishLexStringLiteral(Tok, WarningName, "'__has_warning'", 1259 /*MacroExpansion=*/false)) { 1260 // Eat tokens until ')'. 1261 while (Tok.isNot(tok::r_paren) && Tok.isNot(tok::eod) && 1262 Tok.isNot(tok::eof)) 1263 LexUnexpandedToken(Tok); 1264 break; 1265 } 1266 1267 // Is the end a ')'? 1268 if (!(IsValid = Tok.is(tok::r_paren))) { 1269 Diag(StartLoc, diag::err_warning_check_malformed); 1270 break; 1271 } 1272 1273 if (WarningName.size() < 3 || WarningName[0] != '-' || 1274 WarningName[1] != 'W') { 1275 Diag(StrStartLoc, diag::warn_has_warning_invalid_option); 1276 break; 1277 } 1278 1279 // Finally, check if the warning flags maps to a diagnostic group. 1280 // We construct a SmallVector here to talk to getDiagnosticIDs(). 1281 // Although we don't use the result, this isn't a hot path, and not 1282 // worth special casing. 1283 SmallVector<diag::kind, 10> Diags; 1284 Value = !getDiagnostics().getDiagnosticIDs()-> 1285 getDiagnosticsInGroup(WarningName.substr(2), Diags); 1286 } while (false); 1287 1288 OS << (int)Value; 1289 if (IsValid) 1290 Tok.setKind(tok::numeric_constant); 1291 } else if (II == Ident__building_module) { 1292 // The argument to this builtin should be an identifier. The 1293 // builtin evaluates to 1 when that identifier names the module we are 1294 // currently building. 1295 OS << (int)EvaluateBuildingModule(Tok, II, *this); 1296 Tok.setKind(tok::numeric_constant); 1297 } else if (II == Ident__MODULE__) { 1298 // The current module as an identifier. 1299 OS << getLangOpts().CurrentModule; 1300 IdentifierInfo *ModuleII = getIdentifierInfo(getLangOpts().CurrentModule); 1301 Tok.setIdentifierInfo(ModuleII); 1302 Tok.setKind(ModuleII->getTokenID()); 1303 } else { 1304 llvm_unreachable("Unknown identifier!"); 1305 } 1306 CreateString(OS.str(), Tok, Tok.getLocation(), Tok.getLocation()); 1307 } 1308 1309 void Preprocessor::markMacroAsUsed(MacroInfo *MI) { 1310 // If the 'used' status changed, and the macro requires 'unused' warning, 1311 // remove its SourceLocation from the warn-for-unused-macro locations. 1312 if (MI->isWarnIfUnused() && !MI->isUsed()) 1313 WarnUnusedMacroLocs.erase(MI->getDefinitionLoc()); 1314 MI->setIsUsed(true); 1315 } 1316