1 //===--- PreprocessorTracker.cpp - Preprocessor tracking -*- C++ -*------===// 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 // The Basic Idea (Macro and Conditional Checking) 11 // 12 // Basically we install a PPCallbacks-derived object to track preprocessor 13 // activity, namely when a header file is entered/exited, when a macro 14 // is expanded, when "defined" is used, and when #if, #elif, #ifdef, 15 // and #ifndef are used. We save the state of macro and "defined" 16 // expressions in a map, keyed on a name/file/line/column quadruple. 17 // The map entries store the different states (values) that a macro expansion, 18 // "defined" expression, or condition expression has in the course of 19 // processing for the one location in the one header containing it, 20 // plus a list of the nested include stacks for the states. When a macro 21 // or "defined" expression evaluates to the same value, which is the 22 // desired case, only one state is stored. Similarly, for conditional 23 // directives, we save the condition expression states in a separate map. 24 // 25 // This information is collected as modularize compiles all the headers 26 // given to it to process. After all the compilations are performed, 27 // a check is performed for any entries in the maps that contain more 28 // than one different state, and for these an output message is generated. 29 // 30 // For example: 31 // 32 // (...)/SubHeader.h:11:5: 33 // #if SYMBOL == 1 34 // ^ 35 // error: Macro instance 'SYMBOL' has different values in this header, 36 // depending on how it was included. 37 // 'SYMBOL' expanded to: '1' with respect to these inclusion paths: 38 // (...)/Header1.h 39 // (...)/SubHeader.h 40 // (...)/SubHeader.h:3:9: 41 // #define SYMBOL 1 42 // ^ 43 // Macro defined here. 44 // 'SYMBOL' expanded to: '2' with respect to these inclusion paths: 45 // (...)/Header2.h 46 // (...)/SubHeader.h 47 // (...)/SubHeader.h:7:9: 48 // #define SYMBOL 2 49 // ^ 50 // Macro defined here. 51 // 52 // The Basic Idea ('Extern "C/C++" {}' Or 'namespace {}') With Nested 53 // '#include' Checking) 54 // 55 // To check for '#include' directives nested inside 'Extern "C/C++" {}' 56 // or 'namespace {}' blocks, we keep track of the '#include' directives 57 // while running the preprocessor, and later during a walk of the AST 58 // we call a function to check for any '#include' directies inside 59 // an 'Extern "C/C++" {}' or 'namespace {}' block, given its source 60 // range. 61 // 62 // Design and Implementation Details (Macro and Conditional Checking) 63 // 64 // A PreprocessorTrackerImpl class implements the PreprocessorTracker 65 // interface. It uses a PreprocessorCallbacks class derived from PPCallbacks 66 // to track preprocessor activity, namely entering/exiting a header, macro 67 // expansions, use of "defined" expressions, and #if, #elif, #ifdef, and 68 // #ifndef conditional directives. PreprocessorTrackerImpl stores a map 69 // of MacroExpansionTracker objects keyed on a name/file/line/column 70 // value represented by a light-weight PPItemKey value object. This 71 // is the key top-level data structure tracking the values of macro 72 // expansion instances. Similarly, it stores a map of ConditionalTracker 73 // objects with the same kind of key, for tracking preprocessor conditional 74 // directives. 75 // 76 // The MacroExpansionTracker object represents one macro reference or use 77 // of a "defined" expression in a header file. It stores a handle to a 78 // string representing the unexpanded macro instance, a handle to a string 79 // representing the unpreprocessed source line containing the unexpanded 80 // macro instance, and a vector of one or more MacroExpansionInstance 81 // objects. 82 // 83 // The MacroExpansionInstance object represents one or more expansions 84 // of a macro reference, for the case where the macro expands to the same 85 // value. MacroExpansionInstance stores a handle to a string representing 86 // the expanded macro value, a PPItemKey representing the file/line/column 87 // where the macro was defined, a handle to a string representing the source 88 // line containing the macro definition, and a vector of InclusionPathHandle 89 // values that represents the hierarchies of include files for each case 90 // where the particular header containing the macro reference was referenced 91 // or included. 92 93 // In the normal case where a macro instance always expands to the same 94 // value, the MacroExpansionTracker object will only contain one 95 // MacroExpansionInstance representing all the macro expansion instances. 96 // If a case was encountered where a macro instance expands to a value 97 // that is different from that seen before, or the macro was defined in 98 // a different place, a new MacroExpansionInstance object representing 99 // that case will be added to the vector in MacroExpansionTracker. If a 100 // macro instance expands to a value already seen before, the 101 // InclusionPathHandle representing that case's include file hierarchy 102 // will be added to the existing MacroExpansionInstance object. 103 104 // For checking conditional directives, the ConditionalTracker class 105 // functions similarly to MacroExpansionTracker, but tracks an #if, 106 // #elif, #ifdef, or #ifndef directive in a header file. It stores 107 // a vector of one or two ConditionalExpansionInstance objects, 108 // representing the cases where the conditional expression evaluates 109 // to true or false. This latter object stores the evaluated value 110 // of the condition expression (a bool) and a vector of 111 // InclusionPathHandles. 112 // 113 // To reduce the instances of string and object copying, the 114 // PreprocessorTrackerImpl class uses a StringPool to save all stored 115 // strings, and defines a StringHandle type to abstract the references 116 // to the strings. 117 // 118 // PreprocessorTrackerImpl also maintains a list representing the unique 119 // headers, which is just a vector of StringHandle's for the header file 120 // paths. A HeaderHandle abstracts a reference to a header, and is simply 121 // the index of the stored header file path. 122 // 123 // A HeaderInclusionPath class abstracts a unique hierarchy of header file 124 // inclusions. It simply stores a vector of HeaderHandles ordered from the 125 // top-most header (the one from the header list passed to modularize) down 126 // to the header containing the macro reference. PreprocessorTrackerImpl 127 // stores a vector of these objects. An InclusionPathHandle typedef 128 // abstracts a reference to one of the HeaderInclusionPath objects, and is 129 // simply the index of the stored HeaderInclusionPath object. The 130 // MacroExpansionInstance object stores a vector of these handles so that 131 // the reporting function can display the include hierarchies for the macro 132 // expansion instances represented by that object, to help the user 133 // understand how the header was included. (A future enhancement might 134 // be to associate a line number for the #include directives, but I 135 // think not doing so is good enough for the present.) 136 // 137 // A key reason for using these opaque handles was to try to keep all the 138 // internal objects light-weight value objects, in order to reduce string 139 // and object copying overhead, and to abstract this implementation detail. 140 // 141 // The key data structures are built up while modularize runs the headers 142 // through the compilation. A PreprocessorTracker instance is created and 143 // passed down to the AST action and consumer objects in modularize. For 144 // each new compilation instance, the consumer calls the 145 // PreprocessorTracker's handleNewPreprocessorEntry function, which sets 146 // up a PreprocessorCallbacks object for the preprocessor. At the end of 147 // the compilation instance, the PreprocessorTracker's 148 // handleNewPreprocessorExit function handles cleaning up with respect 149 // to the preprocessing instance. 150 // 151 // The PreprocessorCallbacks object uses an overidden FileChanged callback 152 // to determine when a header is entered and exited (including exiting the 153 // header during #include directives). It calls PreprocessorTracker's 154 // handleHeaderEntry and handleHeaderExit functions upon entering and 155 // exiting a header. These functions manage a stack of header handles 156 // representing by a vector, pushing and popping header handles as headers 157 // are entered and exited. When a HeaderInclusionPath object is created, 158 // it simply copies this stack. 159 // 160 // The PreprocessorCallbacks object uses an overridden MacroExpands callback 161 // to track when a macro expansion is performed. It calls a couple of helper 162 // functions to get the unexpanded and expanded macro values as strings, but 163 // then calls PreprocessorTrackerImpl's addMacroExpansionInstance function to 164 // do the rest of the work. The getMacroExpandedString function uses the 165 // preprocessor's getSpelling to convert tokens to strings using the 166 // information passed to the MacroExpands callback, and simply concatenates 167 // them. It makes recursive calls to itself to handle nested macro 168 // definitions, and also handles function-style macros. 169 // 170 // PreprocessorTrackerImpl's addMacroExpansionInstance function looks for 171 // an existing MacroExpansionTracker entry in its map of MacroExampleTracker 172 // objects. If none exists, it adds one with one MacroExpansionInstance and 173 // returns. If a MacroExpansionTracker object already exists, it looks for 174 // an existing MacroExpansionInstance object stored in the 175 // MacroExpansionTracker object, one that matches the macro expanded value 176 // and the macro definition location. If a matching MacroExpansionInstance 177 // object is found, it just adds the current HeaderInclusionPath object to 178 // it. If not found, it creates and stores a new MacroExpantionInstance 179 // object. The addMacroExpansionInstance function calls a couple of helper 180 // functions to get the pre-formatted location and source line strings for 181 // the macro reference and the macro definition stored as string handles. 182 // These helper functions use the current source manager from the 183 // preprocessor. This is done in advance at this point in time because the 184 // source manager doesn't exist at the time of the reporting. 185 // 186 // For conditional check, the PreprocessorCallbacks class overrides the 187 // PPCallbacks handlers for #if, #elif, #ifdef, and #ifndef. These handlers 188 // call the addConditionalExpansionInstance method of 189 // PreprocessorTrackerImpl. The process is similar to that of macros, but 190 // with some different data and error messages. A lookup is performed for 191 // the conditional, and if a ConditionalTracker object doesn't yet exist for 192 // the conditional, a new one is added, including adding a 193 // ConditionalExpansionInstance object to it to represent the condition 194 // expression state. If a ConditionalTracker for the conditional does 195 // exist, a lookup is made for a ConditionalExpansionInstance object 196 // matching the condition expression state. If one exists, a 197 // HeaderInclusionPath is added to it. Otherwise a new 198 // ConditionalExpansionInstance entry is made. If a ConditionalTracker 199 // has two ConditionalExpansionInstance objects, it means there was a 200 // conflict, meaning the conditional expression evaluated differently in 201 // one or more cases. 202 // 203 // After modularize has performed all the compilations, it enters a phase 204 // of error reporting. This new feature adds to this reporting phase calls 205 // to the PreprocessorTracker's reportInconsistentMacros and 206 // reportInconsistentConditionals functions. These functions walk the maps 207 // of MacroExpansionTracker's and ConditionalTracker's respectively. If 208 // any of these objects have more than one MacroExpansionInstance or 209 // ConditionalExpansionInstance objects, it formats and outputs an error 210 // message like the example shown previously, using the stored data. 211 // 212 // A potential issue is that there is some overlap between the #if/#elif 213 // conditional and macro reporting. I could disable the #if and #elif, 214 // leaving just the #ifdef and #ifndef, since these don't overlap. Or, 215 // to make clearer the separate reporting phases, I could add an output 216 // message marking the phases. 217 // 218 // Design and Implementation Details ('Extern "C/C++" {}' Or 219 // 'namespace {}') With Nested '#include' Checking) 220 // 221 // We override the InclusionDirective in PPCallbacks to record information 222 // about each '#include' directive encountered during preprocessing. 223 // We co-opt the PPItemKey class to store the information about each 224 // '#include' directive, including the source file name containing the 225 // directive, the name of the file being included, and the source line 226 // and column of the directive. We store these object in a vector, 227 // after first check to see if an entry already exists. 228 // 229 // Later, while the AST is being walked for other checks, we provide 230 // visit handlers for 'extern "C/C++" {}' and 'namespace (name) {}' 231 // blocks, checking to see if any '#include' directives occurred 232 // within the blocks, reporting errors if any found. 233 // 234 // Future Directions 235 // 236 // We probably should add options to disable any of the checks, in case 237 // there is some problem with them, or the messages get too verbose. 238 // 239 // With the map of all the macro and conditional expansion instances, 240 // it might be possible to add to the existing modularize error messages 241 // (the second part referring to definitions being different), attempting 242 // to tie them to the last macro conflict encountered with respect to the 243 // order of the code encountered. 244 // 245 //===--------------------------------------------------------------------===// 246 247 #include "clang/Lex/LexDiagnostic.h" 248 #include "PreprocessorTracker.h" 249 #include "clang/Lex/MacroArgs.h" 250 #include "clang/Lex/PPCallbacks.h" 251 #include "llvm/ADT/SmallSet.h" 252 #include "llvm/Support/StringPool.h" 253 #include "llvm/Support/raw_ostream.h" 254 255 namespace Modularize { 256 257 // Forwards. 258 class PreprocessorTrackerImpl; 259 260 // Some handle types 261 typedef llvm::PooledStringPtr StringHandle; 262 263 typedef int HeaderHandle; 264 const HeaderHandle HeaderHandleInvalid = -1; 265 266 typedef int InclusionPathHandle; 267 const InclusionPathHandle InclusionPathHandleInvalid = -1; 268 269 // Some utility functions. 270 271 // Get a "file:line:column" source location string. 272 static std::string getSourceLocationString(clang::Preprocessor &PP, 273 clang::SourceLocation Loc) { 274 if (Loc.isInvalid()) 275 return std::string("(none)"); 276 else 277 return Loc.printToString(PP.getSourceManager()); 278 } 279 280 // Get just the file name from a source location. 281 static std::string getSourceLocationFile(clang::Preprocessor &PP, 282 clang::SourceLocation Loc) { 283 std::string Source(getSourceLocationString(PP, Loc)); 284 size_t Offset = Source.find(':', 2); 285 if (Offset == std::string::npos) 286 return Source; 287 return Source.substr(0, Offset); 288 } 289 290 // Get just the line and column from a source location. 291 static void getSourceLocationLineAndColumn(clang::Preprocessor &PP, 292 clang::SourceLocation Loc, int &Line, 293 int &Column) { 294 clang::PresumedLoc PLoc = PP.getSourceManager().getPresumedLoc(Loc); 295 if (PLoc.isInvalid()) { 296 Line = 0; 297 Column = 0; 298 return; 299 } 300 Line = PLoc.getLine(); 301 Column = PLoc.getColumn(); 302 } 303 304 // Retrieve source snippet from file image. 305 std::string getSourceString(clang::Preprocessor &PP, clang::SourceRange Range) { 306 clang::SourceLocation BeginLoc = Range.getBegin(); 307 clang::SourceLocation EndLoc = Range.getEnd(); 308 const char *BeginPtr = PP.getSourceManager().getCharacterData(BeginLoc); 309 const char *EndPtr = PP.getSourceManager().getCharacterData(EndLoc); 310 size_t Length = EndPtr - BeginPtr; 311 return llvm::StringRef(BeginPtr, Length).trim().str(); 312 } 313 314 // Retrieve source line from file image given a location. 315 std::string getSourceLine(clang::Preprocessor &PP, clang::SourceLocation Loc) { 316 const llvm::MemoryBuffer *MemBuffer = 317 PP.getSourceManager().getBuffer(PP.getSourceManager().getFileID(Loc)); 318 const char *Buffer = MemBuffer->getBufferStart(); 319 const char *BufferEnd = MemBuffer->getBufferEnd(); 320 const char *BeginPtr = PP.getSourceManager().getCharacterData(Loc); 321 const char *EndPtr = BeginPtr; 322 while (BeginPtr > Buffer) { 323 if (*BeginPtr == '\n') { 324 BeginPtr++; 325 break; 326 } 327 BeginPtr--; 328 } 329 while (EndPtr < BufferEnd) { 330 if (*EndPtr == '\n') { 331 break; 332 } 333 EndPtr++; 334 } 335 size_t Length = EndPtr - BeginPtr; 336 return llvm::StringRef(BeginPtr, Length).str(); 337 } 338 339 // Retrieve source line from file image given a file ID and line number. 340 std::string getSourceLine(clang::Preprocessor &PP, clang::FileID FileID, 341 int Line) { 342 const llvm::MemoryBuffer *MemBuffer = PP.getSourceManager().getBuffer(FileID); 343 const char *Buffer = MemBuffer->getBufferStart(); 344 const char *BufferEnd = MemBuffer->getBufferEnd(); 345 const char *BeginPtr = Buffer; 346 const char *EndPtr = BufferEnd; 347 int LineCounter = 1; 348 if (Line == 1) 349 BeginPtr = Buffer; 350 else { 351 while (Buffer < BufferEnd) { 352 if (*Buffer == '\n') { 353 if (++LineCounter == Line) { 354 BeginPtr = Buffer++ + 1; 355 break; 356 } 357 } 358 Buffer++; 359 } 360 } 361 while (Buffer < BufferEnd) { 362 if (*Buffer == '\n') { 363 EndPtr = Buffer; 364 break; 365 } 366 Buffer++; 367 } 368 size_t Length = EndPtr - BeginPtr; 369 return llvm::StringRef(BeginPtr, Length).str(); 370 } 371 372 // Get the string for the Unexpanded macro instance. 373 // The soureRange is expected to end at the last token 374 // for the macro instance, which in the case of a function-style 375 // macro will be a ')', but for an object-style macro, it 376 // will be the macro name itself. 377 std::string getMacroUnexpandedString(clang::SourceRange Range, 378 clang::Preprocessor &PP, 379 llvm::StringRef MacroName, 380 const clang::MacroInfo *MI) { 381 clang::SourceLocation BeginLoc(Range.getBegin()); 382 const char *BeginPtr = PP.getSourceManager().getCharacterData(BeginLoc); 383 size_t Length; 384 std::string Unexpanded; 385 if (MI->isFunctionLike()) { 386 clang::SourceLocation EndLoc(Range.getEnd()); 387 const char *EndPtr = PP.getSourceManager().getCharacterData(EndLoc) + 1; 388 Length = (EndPtr - BeginPtr) + 1; // +1 is ')' width. 389 } else 390 Length = MacroName.size(); 391 return llvm::StringRef(BeginPtr, Length).trim().str(); 392 } 393 394 // Get the expansion for a macro instance, given the information 395 // provided by PPCallbacks. 396 // FIXME: This doesn't support function-style macro instances 397 // passed as arguments to another function-style macro. However, 398 // since it still expands the inner arguments, it still 399 // allows modularize to effectively work with respect to macro 400 // consistency checking, although it displays the incorrect 401 // expansion in error messages. 402 std::string getMacroExpandedString(clang::Preprocessor &PP, 403 llvm::StringRef MacroName, 404 const clang::MacroInfo *MI, 405 const clang::MacroArgs *Args) { 406 std::string Expanded; 407 // Walk over the macro Tokens. 408 typedef clang::MacroInfo::tokens_iterator Iter; 409 for (Iter I = MI->tokens_begin(), E = MI->tokens_end(); I != E; ++I) { 410 clang::IdentifierInfo *II = I->getIdentifierInfo(); 411 int ArgNo = (II && Args ? MI->getArgumentNum(II) : -1); 412 if (ArgNo == -1) { 413 // This isn't an argument, just add it. 414 if (II == nullptr) 415 Expanded += PP.getSpelling((*I)); // Not an identifier. 416 else { 417 // Token is for an identifier. 418 std::string Name = II->getName().str(); 419 // Check for nexted macro references. 420 clang::MacroInfo *MacroInfo = PP.getMacroInfo(II); 421 if (MacroInfo) 422 Expanded += getMacroExpandedString(PP, Name, MacroInfo, nullptr); 423 else 424 Expanded += Name; 425 } 426 continue; 427 } 428 // We get here if it's a function-style macro with arguments. 429 const clang::Token *ResultArgToks; 430 const clang::Token *ArgTok = Args->getUnexpArgument(ArgNo); 431 if (Args->ArgNeedsPreexpansion(ArgTok, PP)) 432 ResultArgToks = &(const_cast<clang::MacroArgs *>(Args)) 433 ->getPreExpArgument(ArgNo, MI, PP)[0]; 434 else 435 ResultArgToks = ArgTok; // Use non-preexpanded Tokens. 436 // If the arg token didn't expand into anything, ignore it. 437 if (ResultArgToks->is(clang::tok::eof)) 438 continue; 439 unsigned NumToks = clang::MacroArgs::getArgLength(ResultArgToks); 440 // Append the resulting argument expansions. 441 for (unsigned ArgumentIndex = 0; ArgumentIndex < NumToks; ++ArgumentIndex) { 442 const clang::Token &AT = ResultArgToks[ArgumentIndex]; 443 clang::IdentifierInfo *II = AT.getIdentifierInfo(); 444 if (II == nullptr) 445 Expanded += PP.getSpelling(AT); // Not an identifier. 446 else { 447 // It's an identifier. Check for further expansion. 448 std::string Name = II->getName().str(); 449 clang::MacroInfo *MacroInfo = PP.getMacroInfo(II); 450 if (MacroInfo) 451 Expanded += getMacroExpandedString(PP, Name, MacroInfo, nullptr); 452 else 453 Expanded += Name; 454 } 455 } 456 } 457 return Expanded; 458 } 459 460 // Get the string representing a vector of Tokens. 461 std::string 462 getTokensSpellingString(clang::Preprocessor &PP, 463 llvm::SmallVectorImpl<clang::Token> &Tokens) { 464 std::string Expanded; 465 // Walk over the macro Tokens. 466 typedef llvm::SmallVectorImpl<clang::Token>::iterator Iter; 467 for (Iter I = Tokens.begin(), E = Tokens.end(); I != E; ++I) 468 Expanded += PP.getSpelling(*I); // Not an identifier. 469 return llvm::StringRef(Expanded).trim().str(); 470 } 471 472 // Get the expansion for a macro instance, given the information 473 // provided by PPCallbacks. 474 std::string getExpandedString(clang::Preprocessor &PP, 475 llvm::StringRef MacroName, 476 const clang::MacroInfo *MI, 477 const clang::MacroArgs *Args) { 478 std::string Expanded; 479 // Walk over the macro Tokens. 480 typedef clang::MacroInfo::tokens_iterator Iter; 481 for (Iter I = MI->tokens_begin(), E = MI->tokens_end(); I != E; ++I) { 482 clang::IdentifierInfo *II = I->getIdentifierInfo(); 483 int ArgNo = (II && Args ? MI->getArgumentNum(II) : -1); 484 if (ArgNo == -1) { 485 // This isn't an argument, just add it. 486 if (II == nullptr) 487 Expanded += PP.getSpelling((*I)); // Not an identifier. 488 else { 489 // Token is for an identifier. 490 std::string Name = II->getName().str(); 491 // Check for nexted macro references. 492 clang::MacroInfo *MacroInfo = PP.getMacroInfo(II); 493 if (MacroInfo) 494 Expanded += getMacroExpandedString(PP, Name, MacroInfo, nullptr); 495 else 496 Expanded += Name; 497 } 498 continue; 499 } 500 // We get here if it's a function-style macro with arguments. 501 const clang::Token *ResultArgToks; 502 const clang::Token *ArgTok = Args->getUnexpArgument(ArgNo); 503 if (Args->ArgNeedsPreexpansion(ArgTok, PP)) 504 ResultArgToks = &(const_cast<clang::MacroArgs *>(Args)) 505 ->getPreExpArgument(ArgNo, MI, PP)[0]; 506 else 507 ResultArgToks = ArgTok; // Use non-preexpanded Tokens. 508 // If the arg token didn't expand into anything, ignore it. 509 if (ResultArgToks->is(clang::tok::eof)) 510 continue; 511 unsigned NumToks = clang::MacroArgs::getArgLength(ResultArgToks); 512 // Append the resulting argument expansions. 513 for (unsigned ArgumentIndex = 0; ArgumentIndex < NumToks; ++ArgumentIndex) { 514 const clang::Token &AT = ResultArgToks[ArgumentIndex]; 515 clang::IdentifierInfo *II = AT.getIdentifierInfo(); 516 if (II == nullptr) 517 Expanded += PP.getSpelling(AT); // Not an identifier. 518 else { 519 // It's an identifier. Check for further expansion. 520 std::string Name = II->getName().str(); 521 clang::MacroInfo *MacroInfo = PP.getMacroInfo(II); 522 if (MacroInfo) 523 Expanded += getMacroExpandedString(PP, Name, MacroInfo, nullptr); 524 else 525 Expanded += Name; 526 } 527 } 528 } 529 return Expanded; 530 } 531 532 // ConditionValueKind strings. 533 const char * 534 ConditionValueKindStrings[] = { 535 "(not evaluated)", "false", "true" 536 }; 537 538 bool operator<(const StringHandle &H1, const StringHandle &H2) { 539 const char *S1 = (H1 ? *H1 : ""); 540 const char *S2 = (H2 ? *H2 : ""); 541 int Diff = strcmp(S1, S2); 542 return Diff < 0; 543 } 544 bool operator>(const StringHandle &H1, const StringHandle &H2) { 545 const char *S1 = (H1 ? *H1 : ""); 546 const char *S2 = (H2 ? *H2 : ""); 547 int Diff = strcmp(S1, S2); 548 return Diff > 0; 549 } 550 551 // Preprocessor item key. 552 // 553 // This class represents a location in a source file, for use 554 // as a key representing a unique name/file/line/column quadruplet, 555 // which in this case is used to identify a macro expansion instance, 556 // but could be used for other things as well. 557 // The file is a header file handle, the line is a line number, 558 // and the column is a column number. 559 class PPItemKey { 560 public: 561 PPItemKey(clang::Preprocessor &PP, StringHandle Name, HeaderHandle File, 562 clang::SourceLocation Loc) 563 : Name(Name), File(File) { 564 getSourceLocationLineAndColumn(PP, Loc, Line, Column); 565 } 566 PPItemKey(StringHandle Name, HeaderHandle File, int Line, int Column) 567 : Name(Name), File(File), Line(Line), Column(Column) {} 568 PPItemKey(const PPItemKey &Other) 569 : Name(Other.Name), File(Other.File), Line(Other.Line), 570 Column(Other.Column) {} 571 PPItemKey() : File(HeaderHandleInvalid), Line(0), Column(0) {} 572 bool operator==(const PPItemKey &Other) const { 573 if (Name != Other.Name) 574 return false; 575 if (File != Other.File) 576 return false; 577 if (Line != Other.Line) 578 return false; 579 return Column == Other.Column; 580 } 581 bool operator<(const PPItemKey &Other) const { 582 if (Name < Other.Name) 583 return true; 584 else if (Name > Other.Name) 585 return false; 586 if (File < Other.File) 587 return true; 588 else if (File > Other.File) 589 return false; 590 if (Line < Other.Line) 591 return true; 592 else if (Line > Other.Line) 593 return false; 594 return Column < Other.Column; 595 } 596 StringHandle Name; 597 HeaderHandle File; 598 int Line; 599 int Column; 600 }; 601 602 // Header inclusion path. 603 class HeaderInclusionPath { 604 public: 605 HeaderInclusionPath(std::vector<HeaderHandle> HeaderInclusionPath) 606 : Path(HeaderInclusionPath) {} 607 HeaderInclusionPath(const HeaderInclusionPath &Other) : Path(Other.Path) {} 608 HeaderInclusionPath() {} 609 std::vector<HeaderHandle> Path; 610 }; 611 612 // Macro expansion instance. 613 // 614 // This class represents an instance of a macro expansion with a 615 // unique value. It also stores the unique header inclusion paths 616 // for use in telling the user the nested include path to the header. 617 class MacroExpansionInstance { 618 public: 619 MacroExpansionInstance(StringHandle MacroExpanded, 620 PPItemKey &DefinitionLocation, 621 StringHandle DefinitionSourceLine, 622 InclusionPathHandle H) 623 : MacroExpanded(MacroExpanded), DefinitionLocation(DefinitionLocation), 624 DefinitionSourceLine(DefinitionSourceLine) { 625 InclusionPathHandles.push_back(H); 626 } 627 MacroExpansionInstance() {} 628 629 // Check for the presence of a header inclusion path handle entry. 630 // Return false if not found. 631 bool haveInclusionPathHandle(InclusionPathHandle H) { 632 for (std::vector<InclusionPathHandle>::iterator 633 I = InclusionPathHandles.begin(), 634 E = InclusionPathHandles.end(); 635 I != E; ++I) { 636 if (*I == H) 637 return true; 638 } 639 return InclusionPathHandleInvalid; 640 } 641 // Add a new header inclusion path entry, if not already present. 642 void addInclusionPathHandle(InclusionPathHandle H) { 643 if (!haveInclusionPathHandle(H)) 644 InclusionPathHandles.push_back(H); 645 } 646 647 // A string representing the macro instance after preprocessing. 648 StringHandle MacroExpanded; 649 // A file/line/column triplet representing the macro definition location. 650 PPItemKey DefinitionLocation; 651 // A place to save the macro definition line string. 652 StringHandle DefinitionSourceLine; 653 // The header inclusion path handles for all the instances. 654 std::vector<InclusionPathHandle> InclusionPathHandles; 655 }; 656 657 // Macro expansion instance tracker. 658 // 659 // This class represents one macro expansion, keyed by a PPItemKey. 660 // It stores a string representing the macro reference in the source, 661 // and a list of ConditionalExpansionInstances objects representing 662 // the unique values the condition expands to in instances of the header. 663 class MacroExpansionTracker { 664 public: 665 MacroExpansionTracker(StringHandle MacroUnexpanded, 666 StringHandle MacroExpanded, 667 StringHandle InstanceSourceLine, 668 PPItemKey &DefinitionLocation, 669 StringHandle DefinitionSourceLine, 670 InclusionPathHandle InclusionPathHandle) 671 : MacroUnexpanded(MacroUnexpanded), 672 InstanceSourceLine(InstanceSourceLine) { 673 addMacroExpansionInstance(MacroExpanded, DefinitionLocation, 674 DefinitionSourceLine, InclusionPathHandle); 675 } 676 MacroExpansionTracker() {} 677 678 // Find a matching macro expansion instance. 679 MacroExpansionInstance * 680 findMacroExpansionInstance(StringHandle MacroExpanded, 681 PPItemKey &DefinitionLocation) { 682 for (std::vector<MacroExpansionInstance>::iterator 683 I = MacroExpansionInstances.begin(), 684 E = MacroExpansionInstances.end(); 685 I != E; ++I) { 686 if ((I->MacroExpanded == MacroExpanded) && 687 (I->DefinitionLocation == DefinitionLocation)) { 688 return &*I; // Found. 689 } 690 } 691 return nullptr; // Not found. 692 } 693 694 // Add a macro expansion instance. 695 void addMacroExpansionInstance(StringHandle MacroExpanded, 696 PPItemKey &DefinitionLocation, 697 StringHandle DefinitionSourceLine, 698 InclusionPathHandle InclusionPathHandle) { 699 MacroExpansionInstances.push_back( 700 MacroExpansionInstance(MacroExpanded, DefinitionLocation, 701 DefinitionSourceLine, InclusionPathHandle)); 702 } 703 704 // Return true if there is a mismatch. 705 bool hasMismatch() { return MacroExpansionInstances.size() > 1; } 706 707 // A string representing the macro instance without expansion. 708 StringHandle MacroUnexpanded; 709 // A place to save the macro instance source line string. 710 StringHandle InstanceSourceLine; 711 // The macro expansion instances. 712 // If all instances of the macro expansion expand to the same value, 713 // This vector will only have one instance. 714 std::vector<MacroExpansionInstance> MacroExpansionInstances; 715 }; 716 717 // Conditional expansion instance. 718 // 719 // This class represents an instance of a condition exoression result 720 // with a unique value. It also stores the unique header inclusion paths 721 // for use in telling the user the nested include path to the header. 722 class ConditionalExpansionInstance { 723 public: 724 ConditionalExpansionInstance(clang::PPCallbacks::ConditionValueKind ConditionValue, InclusionPathHandle H) 725 : ConditionValue(ConditionValue) { 726 InclusionPathHandles.push_back(H); 727 } 728 ConditionalExpansionInstance() {} 729 730 // Check for the presence of a header inclusion path handle entry. 731 // Return false if not found. 732 bool haveInclusionPathHandle(InclusionPathHandle H) { 733 for (std::vector<InclusionPathHandle>::iterator 734 I = InclusionPathHandles.begin(), 735 E = InclusionPathHandles.end(); 736 I != E; ++I) { 737 if (*I == H) 738 return true; 739 } 740 return InclusionPathHandleInvalid; 741 } 742 // Add a new header inclusion path entry, if not already present. 743 void addInclusionPathHandle(InclusionPathHandle H) { 744 if (!haveInclusionPathHandle(H)) 745 InclusionPathHandles.push_back(H); 746 } 747 748 // A flag representing the evaluated condition value. 749 clang::PPCallbacks::ConditionValueKind ConditionValue; 750 // The header inclusion path handles for all the instances. 751 std::vector<InclusionPathHandle> InclusionPathHandles; 752 }; 753 754 // Conditional directive instance tracker. 755 // 756 // This class represents one conditional directive, keyed by a PPItemKey. 757 // It stores a string representing the macro reference in the source, 758 // and a list of ConditionExpansionInstance objects representing 759 // the unique value the condition expression expands to in instances of 760 // the header. 761 class ConditionalTracker { 762 public: 763 ConditionalTracker(clang::tok::PPKeywordKind DirectiveKind, 764 clang::PPCallbacks::ConditionValueKind ConditionValue, 765 StringHandle ConditionUnexpanded, 766 InclusionPathHandle InclusionPathHandle) 767 : DirectiveKind(DirectiveKind), ConditionUnexpanded(ConditionUnexpanded) { 768 addConditionalExpansionInstance(ConditionValue, InclusionPathHandle); 769 } 770 ConditionalTracker() {} 771 772 // Find a matching condition expansion instance. 773 ConditionalExpansionInstance * 774 findConditionalExpansionInstance(clang::PPCallbacks::ConditionValueKind ConditionValue) { 775 for (std::vector<ConditionalExpansionInstance>::iterator 776 I = ConditionalExpansionInstances.begin(), 777 E = ConditionalExpansionInstances.end(); 778 I != E; ++I) { 779 if (I->ConditionValue == ConditionValue) { 780 return &*I; // Found. 781 } 782 } 783 return nullptr; // Not found. 784 } 785 786 // Add a conditional expansion instance. 787 void 788 addConditionalExpansionInstance(clang::PPCallbacks::ConditionValueKind ConditionValue, 789 InclusionPathHandle InclusionPathHandle) { 790 ConditionalExpansionInstances.push_back( 791 ConditionalExpansionInstance(ConditionValue, InclusionPathHandle)); 792 } 793 794 // Return true if there is a mismatch. 795 bool hasMismatch() { return ConditionalExpansionInstances.size() > 1; } 796 797 // The kind of directive. 798 clang::tok::PPKeywordKind DirectiveKind; 799 // A string representing the macro instance without expansion. 800 StringHandle ConditionUnexpanded; 801 // The condition expansion instances. 802 // If all instances of the conditional expression expand to the same value, 803 // This vector will only have one instance. 804 std::vector<ConditionalExpansionInstance> ConditionalExpansionInstances; 805 }; 806 807 // Preprocessor callbacks for modularize. 808 // 809 // This class derives from the Clang PPCallbacks class to track preprocessor 810 // actions, such as changing files and handling preprocessor directives and 811 // macro expansions. It has to figure out when a new header file is entered 812 // and left, as the provided handler is not particularly clear about it. 813 class PreprocessorCallbacks : public clang::PPCallbacks { 814 public: 815 PreprocessorCallbacks(PreprocessorTrackerImpl &ppTracker, 816 clang::Preprocessor &PP, llvm::StringRef rootHeaderFile) 817 : PPTracker(ppTracker), PP(PP), RootHeaderFile(rootHeaderFile) {} 818 ~PreprocessorCallbacks() {} 819 820 // Overridden handlers. 821 void InclusionDirective(clang::SourceLocation HashLoc, 822 const clang::Token &IncludeTok, 823 llvm::StringRef FileName, bool IsAngled, 824 clang::CharSourceRange FilenameRange, 825 const clang::FileEntry *File, 826 llvm::StringRef SearchPath, 827 llvm::StringRef RelativePath, 828 const clang::Module *Imported); 829 void FileChanged(clang::SourceLocation Loc, 830 clang::PPCallbacks::FileChangeReason Reason, 831 clang::SrcMgr::CharacteristicKind FileType, 832 clang::FileID PrevFID = clang::FileID()); 833 void MacroExpands(const clang::Token &MacroNameTok, 834 const clang::MacroDirective *MD, clang::SourceRange Range, 835 const clang::MacroArgs *Args); 836 void Defined(const clang::Token &MacroNameTok, 837 const clang::MacroDirective *MD, clang::SourceRange Range); 838 void If(clang::SourceLocation Loc, clang::SourceRange ConditionRange, 839 clang::PPCallbacks::ConditionValueKind ConditionResult); 840 void Elif(clang::SourceLocation Loc, clang::SourceRange ConditionRange, 841 clang::PPCallbacks::ConditionValueKind ConditionResult, clang::SourceLocation IfLoc); 842 void Ifdef(clang::SourceLocation Loc, const clang::Token &MacroNameTok, 843 const clang::MacroDirective *MD); 844 void Ifndef(clang::SourceLocation Loc, const clang::Token &MacroNameTok, 845 const clang::MacroDirective *MD); 846 847 private: 848 PreprocessorTrackerImpl &PPTracker; 849 clang::Preprocessor &PP; 850 std::string RootHeaderFile; 851 }; 852 853 // Preprocessor macro expansion item map types. 854 typedef std::map<PPItemKey, MacroExpansionTracker> MacroExpansionMap; 855 typedef std::map<PPItemKey, MacroExpansionTracker>::iterator 856 MacroExpansionMapIter; 857 858 // Preprocessor conditional expansion item map types. 859 typedef std::map<PPItemKey, ConditionalTracker> ConditionalExpansionMap; 860 typedef std::map<PPItemKey, ConditionalTracker>::iterator 861 ConditionalExpansionMapIter; 862 863 // Preprocessor tracker for modularize. 864 // 865 // This class stores information about all the headers processed in the 866 // course of running modularize. 867 class PreprocessorTrackerImpl : public PreprocessorTracker { 868 public: 869 PreprocessorTrackerImpl() 870 : CurrentInclusionPathHandle(InclusionPathHandleInvalid), 871 InNestedHeader(false) {} 872 ~PreprocessorTrackerImpl() {} 873 874 // Handle entering a preprocessing session. 875 void handlePreprocessorEntry(clang::Preprocessor &PP, 876 llvm::StringRef rootHeaderFile) { 877 HeadersInThisCompile.clear(); 878 assert((HeaderStack.size() == 0) && "Header stack should be empty."); 879 pushHeaderHandle(addHeader(rootHeaderFile)); 880 PP.addPPCallbacks(new PreprocessorCallbacks(*this, PP, rootHeaderFile)); 881 } 882 // Handle exiting a preprocessing session. 883 void handlePreprocessorExit() { HeaderStack.clear(); } 884 885 // Handle include directive. 886 // This function is called every time an include directive is seen by the 887 // preprocessor, for the purpose of later checking for 'extern "" {}' or 888 // "namespace {}" blocks containing #include directives. 889 void handleIncludeDirective(llvm::StringRef DirectivePath, int DirectiveLine, 890 int DirectiveColumn, llvm::StringRef TargetPath) { 891 HeaderHandle CurrentHeaderHandle = findHeaderHandle(DirectivePath); 892 StringHandle IncludeHeaderHandle = addString(TargetPath); 893 for (std::vector<PPItemKey>::const_iterator I = IncludeDirectives.begin(), 894 E = IncludeDirectives.end(); 895 I != E; ++I) { 896 // If we already have an entry for this directive, return now. 897 if ((I->File == CurrentHeaderHandle) && (I->Line == DirectiveLine)) 898 return; 899 } 900 PPItemKey IncludeDirectiveItem(IncludeHeaderHandle, CurrentHeaderHandle, 901 DirectiveLine, DirectiveColumn); 902 IncludeDirectives.push_back(IncludeDirectiveItem); 903 } 904 905 // Check for include directives within the given source line range. 906 // Report errors if any found. Returns true if no include directives 907 // found in block. 908 bool checkForIncludesInBlock(clang::Preprocessor &PP, 909 clang::SourceRange BlockSourceRange, 910 const char *BlockIdentifierMessage, 911 llvm::raw_ostream &OS) { 912 clang::SourceLocation BlockStartLoc = BlockSourceRange.getBegin(); 913 clang::SourceLocation BlockEndLoc = BlockSourceRange.getEnd(); 914 // Use block location to get FileID of both the include directive 915 // and block statement. 916 clang::FileID FileID = PP.getSourceManager().getFileID(BlockStartLoc); 917 std::string SourcePath = getSourceLocationFile(PP, BlockStartLoc); 918 HeaderHandle SourceHandle = findHeaderHandle(SourcePath); 919 int BlockStartLine, BlockStartColumn, BlockEndLine, BlockEndColumn; 920 bool returnValue = true; 921 getSourceLocationLineAndColumn(PP, BlockStartLoc, BlockStartLine, 922 BlockStartColumn); 923 getSourceLocationLineAndColumn(PP, BlockEndLoc, BlockEndLine, 924 BlockEndColumn); 925 for (std::vector<PPItemKey>::const_iterator I = IncludeDirectives.begin(), 926 E = IncludeDirectives.end(); 927 I != E; ++I) { 928 // If we find an entry within the block, report an error. 929 if ((I->File == SourceHandle) && (I->Line >= BlockStartLine) && 930 (I->Line < BlockEndLine)) { 931 returnValue = false; 932 OS << SourcePath << ":" << I->Line << ":" << I->Column << ":\n"; 933 OS << getSourceLine(PP, FileID, I->Line) << "\n"; 934 if (I->Column > 0) 935 OS << std::string(I->Column - 1, ' ') << "^\n"; 936 OS << "error: Include directive within " << BlockIdentifierMessage 937 << ".\n"; 938 OS << SourcePath << ":" << BlockStartLine << ":" << BlockStartColumn 939 << ":\n"; 940 OS << getSourceLine(PP, BlockStartLoc) << "\n"; 941 if (BlockStartColumn > 0) 942 OS << std::string(BlockStartColumn - 1, ' ') << "^\n"; 943 OS << "The \"" << BlockIdentifierMessage << "\" block is here.\n"; 944 } 945 } 946 return returnValue; 947 } 948 949 // Handle entering a header source file. 950 void handleHeaderEntry(clang::Preprocessor &PP, llvm::StringRef HeaderPath) { 951 // Ignore <built-in> and <command-line> to reduce message clutter. 952 if (HeaderPath.startswith("<")) 953 return; 954 HeaderHandle H = addHeader(HeaderPath); 955 if (H != getCurrentHeaderHandle()) 956 pushHeaderHandle(H); 957 // Check for nested header. 958 if (!InNestedHeader) 959 InNestedHeader = !HeadersInThisCompile.insert(H); 960 } 961 // Handle exiting a header source file. 962 void handleHeaderExit(llvm::StringRef HeaderPath) { 963 // Ignore <built-in> and <command-line> to reduce message clutter. 964 if (HeaderPath.startswith("<")) 965 return; 966 HeaderHandle H = findHeaderHandle(HeaderPath); 967 if (isHeaderHandleInStack(H)) { 968 while ((H != getCurrentHeaderHandle()) && (HeaderStack.size() != 0)) 969 popHeaderHandle(); 970 } 971 InNestedHeader = false; 972 } 973 974 // Lookup/add string. 975 StringHandle addString(llvm::StringRef Str) { return Strings.intern(Str); } 976 977 // Get the handle of a header file entry. 978 // Return HeaderHandleInvalid if not found. 979 HeaderHandle findHeaderHandle(llvm::StringRef HeaderPath) const { 980 std::string CanonicalPath(HeaderPath); 981 std::replace(CanonicalPath.begin(), CanonicalPath.end(), '\\', '/'); 982 HeaderHandle H = 0; 983 for (std::vector<StringHandle>::const_iterator I = HeaderPaths.begin(), 984 E = HeaderPaths.end(); 985 I != E; ++I, ++H) { 986 if (**I == CanonicalPath) 987 return H; 988 } 989 return HeaderHandleInvalid; 990 } 991 992 // Add a new header file entry, or return existing handle. 993 // Return the header handle. 994 HeaderHandle addHeader(llvm::StringRef HeaderPath) { 995 std::string CanonicalPath(HeaderPath); 996 std::replace(CanonicalPath.begin(), CanonicalPath.end(), '\\', '/'); 997 HeaderHandle H = findHeaderHandle(CanonicalPath); 998 if (H == HeaderHandleInvalid) { 999 H = HeaderPaths.size(); 1000 HeaderPaths.push_back(addString(CanonicalPath)); 1001 } 1002 return H; 1003 } 1004 1005 // Return a header file path string given its handle. 1006 StringHandle getHeaderFilePath(HeaderHandle H) const { 1007 if ((H >= 0) && (H < (HeaderHandle)HeaderPaths.size())) 1008 return HeaderPaths[H]; 1009 return StringHandle(); 1010 } 1011 1012 // Returns a handle to the inclusion path. 1013 InclusionPathHandle pushHeaderHandle(HeaderHandle H) { 1014 HeaderStack.push_back(H); 1015 return CurrentInclusionPathHandle = addInclusionPathHandle(HeaderStack); 1016 } 1017 // Pops the last header handle from the stack; 1018 void popHeaderHandle() { 1019 // assert((HeaderStack.size() != 0) && "Header stack already empty."); 1020 if (HeaderStack.size() != 0) { 1021 HeaderStack.pop_back(); 1022 CurrentInclusionPathHandle = addInclusionPathHandle(HeaderStack); 1023 } 1024 } 1025 // Get the top handle on the header stack. 1026 HeaderHandle getCurrentHeaderHandle() const { 1027 if (HeaderStack.size() != 0) 1028 return HeaderStack.back(); 1029 return HeaderHandleInvalid; 1030 } 1031 1032 // Check for presence of header handle in the header stack. 1033 bool isHeaderHandleInStack(HeaderHandle H) const { 1034 for (std::vector<HeaderHandle>::const_iterator I = HeaderStack.begin(), 1035 E = HeaderStack.end(); 1036 I != E; ++I) { 1037 if (*I == H) 1038 return true; 1039 } 1040 return false; 1041 } 1042 1043 // Get the handle of a header inclusion path entry. 1044 // Return InclusionPathHandleInvalid if not found. 1045 InclusionPathHandle 1046 findInclusionPathHandle(const std::vector<HeaderHandle> &Path) const { 1047 InclusionPathHandle H = 0; 1048 for (std::vector<HeaderInclusionPath>::const_iterator 1049 I = InclusionPaths.begin(), 1050 E = InclusionPaths.end(); 1051 I != E; ++I, ++H) { 1052 if (I->Path == Path) 1053 return H; 1054 } 1055 return HeaderHandleInvalid; 1056 } 1057 // Add a new header inclusion path entry, or return existing handle. 1058 // Return the header inclusion path entry handle. 1059 InclusionPathHandle 1060 addInclusionPathHandle(const std::vector<HeaderHandle> &Path) { 1061 InclusionPathHandle H = findInclusionPathHandle(Path); 1062 if (H == HeaderHandleInvalid) { 1063 H = InclusionPaths.size(); 1064 InclusionPaths.push_back(HeaderInclusionPath(Path)); 1065 } 1066 return H; 1067 } 1068 // Return the current inclusion path handle. 1069 InclusionPathHandle getCurrentInclusionPathHandle() const { 1070 return CurrentInclusionPathHandle; 1071 } 1072 1073 // Return an inclusion path given its handle. 1074 const std::vector<HeaderHandle> & 1075 getInclusionPath(InclusionPathHandle H) const { 1076 if ((H >= 0) && (H <= (InclusionPathHandle)InclusionPaths.size())) 1077 return InclusionPaths[H].Path; 1078 static std::vector<HeaderHandle> Empty; 1079 return Empty; 1080 } 1081 1082 // Add a macro expansion instance. 1083 void addMacroExpansionInstance(clang::Preprocessor &PP, HeaderHandle H, 1084 clang::SourceLocation InstanceLoc, 1085 clang::SourceLocation DefinitionLoc, 1086 clang::IdentifierInfo *II, 1087 llvm::StringRef MacroUnexpanded, 1088 llvm::StringRef MacroExpanded, 1089 InclusionPathHandle InclusionPathHandle) { 1090 if (InNestedHeader) 1091 return; 1092 StringHandle MacroName = addString(II->getName()); 1093 PPItemKey InstanceKey(PP, MacroName, H, InstanceLoc); 1094 PPItemKey DefinitionKey(PP, MacroName, H, DefinitionLoc); 1095 MacroExpansionMapIter I = MacroExpansions.find(InstanceKey); 1096 // If existing instance of expansion not found, add one. 1097 if (I == MacroExpansions.end()) { 1098 std::string InstanceSourceLine = 1099 getSourceLocationString(PP, InstanceLoc) + ":\n" + 1100 getSourceLine(PP, InstanceLoc) + "\n"; 1101 std::string DefinitionSourceLine = 1102 getSourceLocationString(PP, DefinitionLoc) + ":\n" + 1103 getSourceLine(PP, DefinitionLoc) + "\n"; 1104 MacroExpansions[InstanceKey] = MacroExpansionTracker( 1105 addString(MacroUnexpanded), addString(MacroExpanded), 1106 addString(InstanceSourceLine), DefinitionKey, 1107 addString(DefinitionSourceLine), InclusionPathHandle); 1108 } else { 1109 // We've seen the macro before. Get its tracker. 1110 MacroExpansionTracker &CondTracker = I->second; 1111 // Look up an existing instance value for the macro. 1112 MacroExpansionInstance *MacroInfo = 1113 CondTracker.findMacroExpansionInstance(addString(MacroExpanded), 1114 DefinitionKey); 1115 // If found, just add the inclusion path to the instance. 1116 if (MacroInfo) 1117 MacroInfo->addInclusionPathHandle(InclusionPathHandle); 1118 else { 1119 // Otherwise add a new instance with the unique value. 1120 std::string DefinitionSourceLine = 1121 getSourceLocationString(PP, DefinitionLoc) + ":\n" + 1122 getSourceLine(PP, DefinitionLoc) + "\n"; 1123 CondTracker.addMacroExpansionInstance( 1124 addString(MacroExpanded), DefinitionKey, 1125 addString(DefinitionSourceLine), InclusionPathHandle); 1126 } 1127 } 1128 } 1129 1130 // Add a conditional expansion instance. 1131 void 1132 addConditionalExpansionInstance(clang::Preprocessor &PP, HeaderHandle H, 1133 clang::SourceLocation InstanceLoc, 1134 clang::tok::PPKeywordKind DirectiveKind, 1135 clang::PPCallbacks::ConditionValueKind ConditionValue, 1136 llvm::StringRef ConditionUnexpanded, 1137 InclusionPathHandle InclusionPathHandle) { 1138 // Ignore header guards, assuming the header guard is the only conditional. 1139 if (InNestedHeader) 1140 return; 1141 StringHandle ConditionUnexpandedHandle(addString(ConditionUnexpanded)); 1142 PPItemKey InstanceKey(PP, ConditionUnexpandedHandle, H, InstanceLoc); 1143 ConditionalExpansionMapIter I = ConditionalExpansions.find(InstanceKey); 1144 // If existing instance of condition not found, add one. 1145 if (I == ConditionalExpansions.end()) { 1146 std::string InstanceSourceLine = 1147 getSourceLocationString(PP, InstanceLoc) + ":\n" + 1148 getSourceLine(PP, InstanceLoc) + "\n"; 1149 ConditionalExpansions[InstanceKey] = 1150 ConditionalTracker(DirectiveKind, ConditionValue, 1151 ConditionUnexpandedHandle, InclusionPathHandle); 1152 } else { 1153 // We've seen the conditional before. Get its tracker. 1154 ConditionalTracker &CondTracker = I->second; 1155 // Look up an existing instance value for the condition. 1156 ConditionalExpansionInstance *MacroInfo = 1157 CondTracker.findConditionalExpansionInstance(ConditionValue); 1158 // If found, just add the inclusion path to the instance. 1159 if (MacroInfo) 1160 MacroInfo->addInclusionPathHandle(InclusionPathHandle); 1161 else { 1162 // Otherwise add a new instance with the unique value. 1163 CondTracker.addConditionalExpansionInstance(ConditionValue, 1164 InclusionPathHandle); 1165 } 1166 } 1167 } 1168 1169 // Report on inconsistent macro instances. 1170 // Returns true if any mismatches. 1171 bool reportInconsistentMacros(llvm::raw_ostream &OS) { 1172 bool ReturnValue = false; 1173 // Walk all the macro expansion trackers in the map. 1174 for (MacroExpansionMapIter I = MacroExpansions.begin(), 1175 E = MacroExpansions.end(); 1176 I != E; ++I) { 1177 const PPItemKey &ItemKey = I->first; 1178 MacroExpansionTracker &MacroExpTracker = I->second; 1179 // If no mismatch (only one instance value) continue. 1180 if (!MacroExpTracker.hasMismatch()) 1181 continue; 1182 // Tell caller we found one or more errors. 1183 ReturnValue = true; 1184 // Start the error message. 1185 OS << *MacroExpTracker.InstanceSourceLine; 1186 if (ItemKey.Column > 0) 1187 OS << std::string(ItemKey.Column - 1, ' ') << "^\n"; 1188 OS << "error: Macro instance '" << *MacroExpTracker.MacroUnexpanded 1189 << "' has different values in this header, depending on how it was " 1190 "included.\n"; 1191 // Walk all the instances. 1192 for (std::vector<MacroExpansionInstance>::iterator 1193 IMT = MacroExpTracker.MacroExpansionInstances.begin(), 1194 EMT = MacroExpTracker.MacroExpansionInstances.end(); 1195 IMT != EMT; ++IMT) { 1196 MacroExpansionInstance &MacroInfo = *IMT; 1197 OS << " '" << *MacroExpTracker.MacroUnexpanded << "' expanded to: '" 1198 << *MacroInfo.MacroExpanded 1199 << "' with respect to these inclusion paths:\n"; 1200 // Walk all the inclusion path hierarchies. 1201 for (std::vector<InclusionPathHandle>::iterator 1202 IIP = MacroInfo.InclusionPathHandles.begin(), 1203 EIP = MacroInfo.InclusionPathHandles.end(); 1204 IIP != EIP; ++IIP) { 1205 const std::vector<HeaderHandle> &ip = getInclusionPath(*IIP); 1206 int Count = (int)ip.size(); 1207 for (int Index = 0; Index < Count; ++Index) { 1208 HeaderHandle H = ip[Index]; 1209 OS << std::string((Index * 2) + 4, ' ') << *getHeaderFilePath(H) 1210 << "\n"; 1211 } 1212 } 1213 // For a macro that wasn't defined, we flag it by using the 1214 // instance location. 1215 // If there is a definition... 1216 if (MacroInfo.DefinitionLocation.Line != ItemKey.Line) { 1217 OS << *MacroInfo.DefinitionSourceLine; 1218 if (MacroInfo.DefinitionLocation.Column > 0) 1219 OS << std::string(MacroInfo.DefinitionLocation.Column - 1, ' ') 1220 << "^\n"; 1221 OS << "Macro defined here.\n"; 1222 } else 1223 OS << "(no macro definition)" 1224 << "\n"; 1225 } 1226 } 1227 return ReturnValue; 1228 } 1229 1230 // Report on inconsistent conditional instances. 1231 // Returns true if any mismatches. 1232 bool reportInconsistentConditionals(llvm::raw_ostream &OS) { 1233 bool ReturnValue = false; 1234 // Walk all the conditional trackers in the map. 1235 for (ConditionalExpansionMapIter I = ConditionalExpansions.begin(), 1236 E = ConditionalExpansions.end(); 1237 I != E; ++I) { 1238 const PPItemKey &ItemKey = I->first; 1239 ConditionalTracker &CondTracker = I->second; 1240 if (!CondTracker.hasMismatch()) 1241 continue; 1242 // Tell caller we found one or more errors. 1243 ReturnValue = true; 1244 // Start the error message. 1245 OS << *HeaderPaths[ItemKey.File] << ":" << ItemKey.Line << ":" 1246 << ItemKey.Column << "\n"; 1247 OS << "#" << getDirectiveSpelling(CondTracker.DirectiveKind) << " " 1248 << *CondTracker.ConditionUnexpanded << "\n"; 1249 OS << "^\n"; 1250 OS << "error: Conditional expression instance '" 1251 << *CondTracker.ConditionUnexpanded 1252 << "' has different values in this header, depending on how it was " 1253 "included.\n"; 1254 // Walk all the instances. 1255 for (std::vector<ConditionalExpansionInstance>::iterator 1256 IMT = CondTracker.ConditionalExpansionInstances.begin(), 1257 EMT = CondTracker.ConditionalExpansionInstances.end(); 1258 IMT != EMT; ++IMT) { 1259 ConditionalExpansionInstance &MacroInfo = *IMT; 1260 OS << " '" << *CondTracker.ConditionUnexpanded << "' expanded to: '" 1261 << ConditionValueKindStrings[MacroInfo.ConditionValue] 1262 << "' with respect to these inclusion paths:\n"; 1263 // Walk all the inclusion path hierarchies. 1264 for (std::vector<InclusionPathHandle>::iterator 1265 IIP = MacroInfo.InclusionPathHandles.begin(), 1266 EIP = MacroInfo.InclusionPathHandles.end(); 1267 IIP != EIP; ++IIP) { 1268 const std::vector<HeaderHandle> &ip = getInclusionPath(*IIP); 1269 int Count = (int)ip.size(); 1270 for (int Index = 0; Index < Count; ++Index) { 1271 HeaderHandle H = ip[Index]; 1272 OS << std::string((Index * 2) + 4, ' ') << *getHeaderFilePath(H) 1273 << "\n"; 1274 } 1275 } 1276 } 1277 } 1278 return ReturnValue; 1279 } 1280 1281 // Get directive spelling. 1282 static const char *getDirectiveSpelling(clang::tok::PPKeywordKind kind) { 1283 switch (kind) { 1284 case clang::tok::pp_if: 1285 return "if"; 1286 case clang::tok::pp_elif: 1287 return "elif"; 1288 case clang::tok::pp_ifdef: 1289 return "ifdef"; 1290 case clang::tok::pp_ifndef: 1291 return "ifndef"; 1292 default: 1293 return "(unknown)"; 1294 } 1295 } 1296 1297 private: 1298 llvm::StringPool Strings; 1299 std::vector<StringHandle> HeaderPaths; 1300 std::vector<HeaderHandle> HeaderStack; 1301 std::vector<HeaderInclusionPath> InclusionPaths; 1302 InclusionPathHandle CurrentInclusionPathHandle; 1303 llvm::SmallSet<HeaderHandle, 128> HeadersInThisCompile; 1304 std::vector<PPItemKey> IncludeDirectives; 1305 MacroExpansionMap MacroExpansions; 1306 ConditionalExpansionMap ConditionalExpansions; 1307 bool InNestedHeader; 1308 }; 1309 1310 // PreprocessorTracker functions. 1311 1312 // PreprocessorTracker desctructor. 1313 PreprocessorTracker::~PreprocessorTracker() {} 1314 1315 // Create instance of PreprocessorTracker. 1316 PreprocessorTracker *PreprocessorTracker::create() { 1317 return new PreprocessorTrackerImpl(); 1318 } 1319 1320 // Preprocessor callbacks for modularize. 1321 1322 // Handle include directive. 1323 void PreprocessorCallbacks::InclusionDirective( 1324 clang::SourceLocation HashLoc, const clang::Token &IncludeTok, 1325 llvm::StringRef FileName, bool IsAngled, 1326 clang::CharSourceRange FilenameRange, const clang::FileEntry *File, 1327 llvm::StringRef SearchPath, llvm::StringRef RelativePath, 1328 const clang::Module *Imported) { 1329 int DirectiveLine, DirectiveColumn; 1330 std::string HeaderPath = getSourceLocationFile(PP, HashLoc); 1331 getSourceLocationLineAndColumn(PP, HashLoc, DirectiveLine, DirectiveColumn); 1332 PPTracker.handleIncludeDirective(HeaderPath, DirectiveLine, DirectiveColumn, 1333 FileName); 1334 } 1335 1336 // Handle file entry/exit. 1337 void PreprocessorCallbacks::FileChanged( 1338 clang::SourceLocation Loc, clang::PPCallbacks::FileChangeReason Reason, 1339 clang::SrcMgr::CharacteristicKind FileType, clang::FileID PrevFID) { 1340 switch (Reason) { 1341 case EnterFile: 1342 PPTracker.handleHeaderEntry(PP, getSourceLocationFile(PP, Loc)); 1343 break; 1344 case ExitFile: { 1345 const clang::FileEntry *F = 1346 PP.getSourceManager().getFileEntryForID(PrevFID); 1347 if (F) 1348 PPTracker.handleHeaderExit(F->getName()); 1349 } break; 1350 case SystemHeaderPragma: 1351 case RenameFile: 1352 break; 1353 } 1354 } 1355 1356 // Handle macro expansion. 1357 void PreprocessorCallbacks::MacroExpands(const clang::Token &MacroNameTok, 1358 const clang::MacroDirective *MD, 1359 clang::SourceRange Range, 1360 const clang::MacroArgs *Args) { 1361 clang::SourceLocation Loc = Range.getBegin(); 1362 // Ignore macro argument expansions. 1363 if (!Loc.isFileID()) 1364 return; 1365 clang::IdentifierInfo *II = MacroNameTok.getIdentifierInfo(); 1366 const clang::MacroInfo *MI = PP.getMacroInfo(II); 1367 std::string MacroName = II->getName().str(); 1368 std::string Unexpanded(getMacroUnexpandedString(Range, PP, MacroName, MI)); 1369 std::string Expanded(getMacroExpandedString(PP, MacroName, MI, Args)); 1370 PPTracker.addMacroExpansionInstance( 1371 PP, PPTracker.getCurrentHeaderHandle(), Loc, MI->getDefinitionLoc(), II, 1372 Unexpanded, Expanded, PPTracker.getCurrentInclusionPathHandle()); 1373 } 1374 1375 void PreprocessorCallbacks::Defined(const clang::Token &MacroNameTok, 1376 const clang::MacroDirective *MD, 1377 clang::SourceRange Range) { 1378 clang::SourceLocation Loc(Range.getBegin()); 1379 clang::IdentifierInfo *II = MacroNameTok.getIdentifierInfo(); 1380 const clang::MacroInfo *MI = PP.getMacroInfo(II); 1381 std::string MacroName = II->getName().str(); 1382 std::string Unexpanded(getSourceString(PP, Range)); 1383 PPTracker.addMacroExpansionInstance( 1384 PP, PPTracker.getCurrentHeaderHandle(), Loc, 1385 (MI ? MI->getDefinitionLoc() : Loc), II, Unexpanded, 1386 (MI ? "true" : "false"), PPTracker.getCurrentInclusionPathHandle()); 1387 } 1388 1389 void PreprocessorCallbacks::If(clang::SourceLocation Loc, 1390 clang::SourceRange ConditionRange, 1391 clang::PPCallbacks::ConditionValueKind ConditionResult) { 1392 std::string Unexpanded(getSourceString(PP, ConditionRange)); 1393 PPTracker.addConditionalExpansionInstance( 1394 PP, PPTracker.getCurrentHeaderHandle(), Loc, clang::tok::pp_if, 1395 ConditionResult, Unexpanded, PPTracker.getCurrentInclusionPathHandle()); 1396 } 1397 1398 void PreprocessorCallbacks::Elif(clang::SourceLocation Loc, 1399 clang::SourceRange ConditionRange, 1400 clang::PPCallbacks::ConditionValueKind ConditionResult, 1401 clang::SourceLocation IfLoc) { 1402 std::string Unexpanded(getSourceString(PP, ConditionRange)); 1403 PPTracker.addConditionalExpansionInstance( 1404 PP, PPTracker.getCurrentHeaderHandle(), Loc, clang::tok::pp_elif, 1405 ConditionResult, Unexpanded, PPTracker.getCurrentInclusionPathHandle()); 1406 } 1407 1408 void PreprocessorCallbacks::Ifdef(clang::SourceLocation Loc, 1409 const clang::Token &MacroNameTok, 1410 const clang::MacroDirective *MD) { 1411 clang::PPCallbacks::ConditionValueKind IsDefined = 1412 (MD ? clang::PPCallbacks::CVK_True : clang::PPCallbacks::CVK_False ); 1413 PPTracker.addConditionalExpansionInstance( 1414 PP, PPTracker.getCurrentHeaderHandle(), Loc, clang::tok::pp_ifdef, 1415 IsDefined, PP.getSpelling(MacroNameTok), 1416 PPTracker.getCurrentInclusionPathHandle()); 1417 } 1418 1419 void PreprocessorCallbacks::Ifndef(clang::SourceLocation Loc, 1420 const clang::Token &MacroNameTok, 1421 const clang::MacroDirective *MD) { 1422 clang::PPCallbacks::ConditionValueKind IsNotDefined = 1423 (!MD ? clang::PPCallbacks::CVK_True : clang::PPCallbacks::CVK_False ); 1424 PPTracker.addConditionalExpansionInstance( 1425 PP, PPTracker.getCurrentHeaderHandle(), Loc, clang::tok::pp_ifndef, 1426 IsNotDefined, PP.getSpelling(MacroNameTok), 1427 PPTracker.getCurrentInclusionPathHandle()); 1428 } 1429 } // end namespace Modularize 1430