1 /*===-- clang-c/Index.h - Indexing Public C Interface -------------*- C -*-===*\ 2 |* *| 3 |* Part of the LLVM Project, under the Apache License v2.0 with LLVM *| 4 |* Exceptions. *| 5 |* See https://llvm.org/LICENSE.txt for license information. *| 6 |* SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception *| 7 |* *| 8 |*===----------------------------------------------------------------------===*| 9 |* *| 10 |* This header provides a public interface to a Clang library for extracting *| 11 |* high-level symbol information from source files without exposing the full *| 12 |* Clang C++ API. *| 13 |* *| 14 \*===----------------------------------------------------------------------===*/ 15 16 #ifndef LLVM_CLANG_C_INDEX_H 17 #define LLVM_CLANG_C_INDEX_H 18 19 #include <time.h> 20 21 #include "clang-c/BuildSystem.h" 22 #include "clang-c/CXErrorCode.h" 23 #include "clang-c/CXString.h" 24 #include "clang-c/ExternC.h" 25 #include "clang-c/Platform.h" 26 27 /** 28 * The version constants for the libclang API. 29 * CINDEX_VERSION_MINOR should increase when there are API additions. 30 * CINDEX_VERSION_MAJOR is intended for "major" source/ABI breaking changes. 31 * 32 * The policy about the libclang API was always to keep it source and ABI 33 * compatible, thus CINDEX_VERSION_MAJOR is expected to remain stable. 34 */ 35 #define CINDEX_VERSION_MAJOR 0 36 #define CINDEX_VERSION_MINOR 60 37 38 #define CINDEX_VERSION_ENCODE(major, minor) (((major)*10000) + ((minor)*1)) 39 40 #define CINDEX_VERSION \ 41 CINDEX_VERSION_ENCODE(CINDEX_VERSION_MAJOR, CINDEX_VERSION_MINOR) 42 43 #define CINDEX_VERSION_STRINGIZE_(major, minor) #major "." #minor 44 #define CINDEX_VERSION_STRINGIZE(major, minor) \ 45 CINDEX_VERSION_STRINGIZE_(major, minor) 46 47 #define CINDEX_VERSION_STRING \ 48 CINDEX_VERSION_STRINGIZE(CINDEX_VERSION_MAJOR, CINDEX_VERSION_MINOR) 49 50 LLVM_CLANG_C_EXTERN_C_BEGIN 51 52 /** \defgroup CINDEX libclang: C Interface to Clang 53 * 54 * The C Interface to Clang provides a relatively small API that exposes 55 * facilities for parsing source code into an abstract syntax tree (AST), 56 * loading already-parsed ASTs, traversing the AST, associating 57 * physical source locations with elements within the AST, and other 58 * facilities that support Clang-based development tools. 59 * 60 * This C interface to Clang will never provide all of the information 61 * representation stored in Clang's C++ AST, nor should it: the intent is to 62 * maintain an API that is relatively stable from one release to the next, 63 * providing only the basic functionality needed to support development tools. 64 * 65 * To avoid namespace pollution, data types are prefixed with "CX" and 66 * functions are prefixed with "clang_". 67 * 68 * @{ 69 */ 70 71 /** 72 * An "index" that consists of a set of translation units that would 73 * typically be linked together into an executable or library. 74 */ 75 typedef void *CXIndex; 76 77 /** 78 * An opaque type representing target information for a given translation 79 * unit. 80 */ 81 typedef struct CXTargetInfoImpl *CXTargetInfo; 82 83 /** 84 * A single translation unit, which resides in an index. 85 */ 86 typedef struct CXTranslationUnitImpl *CXTranslationUnit; 87 88 /** 89 * Opaque pointer representing client data that will be passed through 90 * to various callbacks and visitors. 91 */ 92 typedef void *CXClientData; 93 94 /** 95 * Provides the contents of a file that has not yet been saved to disk. 96 * 97 * Each CXUnsavedFile instance provides the name of a file on the 98 * system along with the current contents of that file that have not 99 * yet been saved to disk. 100 */ 101 struct CXUnsavedFile { 102 /** 103 * The file whose contents have not yet been saved. 104 * 105 * This file must already exist in the file system. 106 */ 107 const char *Filename; 108 109 /** 110 * A buffer containing the unsaved contents of this file. 111 */ 112 const char *Contents; 113 114 /** 115 * The length of the unsaved contents of this buffer. 116 */ 117 unsigned long Length; 118 }; 119 120 /** 121 * Describes the availability of a particular entity, which indicates 122 * whether the use of this entity will result in a warning or error due to 123 * it being deprecated or unavailable. 124 */ 125 enum CXAvailabilityKind { 126 /** 127 * The entity is available. 128 */ 129 CXAvailability_Available, 130 /** 131 * The entity is available, but has been deprecated (and its use is 132 * not recommended). 133 */ 134 CXAvailability_Deprecated, 135 /** 136 * The entity is not available; any use of it will be an error. 137 */ 138 CXAvailability_NotAvailable, 139 /** 140 * The entity is available, but not accessible; any use of it will be 141 * an error. 142 */ 143 CXAvailability_NotAccessible 144 }; 145 146 /** 147 * Describes a version number of the form major.minor.subminor. 148 */ 149 typedef struct CXVersion { 150 /** 151 * The major version number, e.g., the '10' in '10.7.3'. A negative 152 * value indicates that there is no version number at all. 153 */ 154 int Major; 155 /** 156 * The minor version number, e.g., the '7' in '10.7.3'. This value 157 * will be negative if no minor version number was provided, e.g., for 158 * version '10'. 159 */ 160 int Minor; 161 /** 162 * The subminor version number, e.g., the '3' in '10.7.3'. This value 163 * will be negative if no minor or subminor version number was provided, 164 * e.g., in version '10' or '10.7'. 165 */ 166 int Subminor; 167 } CXVersion; 168 169 /** 170 * Describes the exception specification of a cursor. 171 * 172 * A negative value indicates that the cursor is not a function declaration. 173 */ 174 enum CXCursor_ExceptionSpecificationKind { 175 /** 176 * The cursor has no exception specification. 177 */ 178 CXCursor_ExceptionSpecificationKind_None, 179 180 /** 181 * The cursor has exception specification throw() 182 */ 183 CXCursor_ExceptionSpecificationKind_DynamicNone, 184 185 /** 186 * The cursor has exception specification throw(T1, T2) 187 */ 188 CXCursor_ExceptionSpecificationKind_Dynamic, 189 190 /** 191 * The cursor has exception specification throw(...). 192 */ 193 CXCursor_ExceptionSpecificationKind_MSAny, 194 195 /** 196 * The cursor has exception specification basic noexcept. 197 */ 198 CXCursor_ExceptionSpecificationKind_BasicNoexcept, 199 200 /** 201 * The cursor has exception specification computed noexcept. 202 */ 203 CXCursor_ExceptionSpecificationKind_ComputedNoexcept, 204 205 /** 206 * The exception specification has not yet been evaluated. 207 */ 208 CXCursor_ExceptionSpecificationKind_Unevaluated, 209 210 /** 211 * The exception specification has not yet been instantiated. 212 */ 213 CXCursor_ExceptionSpecificationKind_Uninstantiated, 214 215 /** 216 * The exception specification has not been parsed yet. 217 */ 218 CXCursor_ExceptionSpecificationKind_Unparsed, 219 220 /** 221 * The cursor has a __declspec(nothrow) exception specification. 222 */ 223 CXCursor_ExceptionSpecificationKind_NoThrow 224 }; 225 226 /** 227 * Provides a shared context for creating translation units. 228 * 229 * It provides two options: 230 * 231 * - excludeDeclarationsFromPCH: When non-zero, allows enumeration of "local" 232 * declarations (when loading any new translation units). A "local" declaration 233 * is one that belongs in the translation unit itself and not in a precompiled 234 * header that was used by the translation unit. If zero, all declarations 235 * will be enumerated. 236 * 237 * Here is an example: 238 * 239 * \code 240 * // excludeDeclsFromPCH = 1, displayDiagnostics=1 241 * Idx = clang_createIndex(1, 1); 242 * 243 * // IndexTest.pch was produced with the following command: 244 * // "clang -x c IndexTest.h -emit-ast -o IndexTest.pch" 245 * TU = clang_createTranslationUnit(Idx, "IndexTest.pch"); 246 * 247 * // This will load all the symbols from 'IndexTest.pch' 248 * clang_visitChildren(clang_getTranslationUnitCursor(TU), 249 * TranslationUnitVisitor, 0); 250 * clang_disposeTranslationUnit(TU); 251 * 252 * // This will load all the symbols from 'IndexTest.c', excluding symbols 253 * // from 'IndexTest.pch'. 254 * char *args[] = { "-Xclang", "-include-pch=IndexTest.pch" }; 255 * TU = clang_createTranslationUnitFromSourceFile(Idx, "IndexTest.c", 2, args, 256 * 0, 0); 257 * clang_visitChildren(clang_getTranslationUnitCursor(TU), 258 * TranslationUnitVisitor, 0); 259 * clang_disposeTranslationUnit(TU); 260 * \endcode 261 * 262 * This process of creating the 'pch', loading it separately, and using it (via 263 * -include-pch) allows 'excludeDeclsFromPCH' to remove redundant callbacks 264 * (which gives the indexer the same performance benefit as the compiler). 265 */ 266 CINDEX_LINKAGE CXIndex clang_createIndex(int excludeDeclarationsFromPCH, 267 int displayDiagnostics); 268 269 /** 270 * Destroy the given index. 271 * 272 * The index must not be destroyed until all of the translation units created 273 * within that index have been destroyed. 274 */ 275 CINDEX_LINKAGE void clang_disposeIndex(CXIndex index); 276 277 typedef enum { 278 /** 279 * Used to indicate that no special CXIndex options are needed. 280 */ 281 CXGlobalOpt_None = 0x0, 282 283 /** 284 * Used to indicate that threads that libclang creates for indexing 285 * purposes should use background priority. 286 * 287 * Affects #clang_indexSourceFile, #clang_indexTranslationUnit, 288 * #clang_parseTranslationUnit, #clang_saveTranslationUnit. 289 */ 290 CXGlobalOpt_ThreadBackgroundPriorityForIndexing = 0x1, 291 292 /** 293 * Used to indicate that threads that libclang creates for editing 294 * purposes should use background priority. 295 * 296 * Affects #clang_reparseTranslationUnit, #clang_codeCompleteAt, 297 * #clang_annotateTokens 298 */ 299 CXGlobalOpt_ThreadBackgroundPriorityForEditing = 0x2, 300 301 /** 302 * Used to indicate that all threads that libclang creates should use 303 * background priority. 304 */ 305 CXGlobalOpt_ThreadBackgroundPriorityForAll = 306 CXGlobalOpt_ThreadBackgroundPriorityForIndexing | 307 CXGlobalOpt_ThreadBackgroundPriorityForEditing 308 309 } CXGlobalOptFlags; 310 311 /** 312 * Sets general options associated with a CXIndex. 313 * 314 * For example: 315 * \code 316 * CXIndex idx = ...; 317 * clang_CXIndex_setGlobalOptions(idx, 318 * clang_CXIndex_getGlobalOptions(idx) | 319 * CXGlobalOpt_ThreadBackgroundPriorityForIndexing); 320 * \endcode 321 * 322 * \param options A bitmask of options, a bitwise OR of CXGlobalOpt_XXX flags. 323 */ 324 CINDEX_LINKAGE void clang_CXIndex_setGlobalOptions(CXIndex, unsigned options); 325 326 /** 327 * Gets the general options associated with a CXIndex. 328 * 329 * \returns A bitmask of options, a bitwise OR of CXGlobalOpt_XXX flags that 330 * are associated with the given CXIndex object. 331 */ 332 CINDEX_LINKAGE unsigned clang_CXIndex_getGlobalOptions(CXIndex); 333 334 /** 335 * Sets the invocation emission path option in a CXIndex. 336 * 337 * The invocation emission path specifies a path which will contain log 338 * files for certain libclang invocations. A null value (default) implies that 339 * libclang invocations are not logged.. 340 */ 341 CINDEX_LINKAGE void 342 clang_CXIndex_setInvocationEmissionPathOption(CXIndex, const char *Path); 343 344 /** 345 * \defgroup CINDEX_FILES File manipulation routines 346 * 347 * @{ 348 */ 349 350 /** 351 * A particular source file that is part of a translation unit. 352 */ 353 typedef void *CXFile; 354 355 /** 356 * Retrieve the complete file and path name of the given file. 357 */ 358 CINDEX_LINKAGE CXString clang_getFileName(CXFile SFile); 359 360 /** 361 * Retrieve the last modification time of the given file. 362 */ 363 CINDEX_LINKAGE time_t clang_getFileTime(CXFile SFile); 364 365 /** 366 * Uniquely identifies a CXFile, that refers to the same underlying file, 367 * across an indexing session. 368 */ 369 typedef struct { 370 unsigned long long data[3]; 371 } CXFileUniqueID; 372 373 /** 374 * Retrieve the unique ID for the given \c file. 375 * 376 * \param file the file to get the ID for. 377 * \param outID stores the returned CXFileUniqueID. 378 * \returns If there was a failure getting the unique ID, returns non-zero, 379 * otherwise returns 0. 380 */ 381 CINDEX_LINKAGE int clang_getFileUniqueID(CXFile file, CXFileUniqueID *outID); 382 383 /** 384 * Determine whether the given header is guarded against 385 * multiple inclusions, either with the conventional 386 * \#ifndef/\#define/\#endif macro guards or with \#pragma once. 387 */ 388 CINDEX_LINKAGE unsigned clang_isFileMultipleIncludeGuarded(CXTranslationUnit tu, 389 CXFile file); 390 391 /** 392 * Retrieve a file handle within the given translation unit. 393 * 394 * \param tu the translation unit 395 * 396 * \param file_name the name of the file. 397 * 398 * \returns the file handle for the named file in the translation unit \p tu, 399 * or a NULL file handle if the file was not a part of this translation unit. 400 */ 401 CINDEX_LINKAGE CXFile clang_getFile(CXTranslationUnit tu, 402 const char *file_name); 403 404 /** 405 * Retrieve the buffer associated with the given file. 406 * 407 * \param tu the translation unit 408 * 409 * \param file the file for which to retrieve the buffer. 410 * 411 * \param size [out] if non-NULL, will be set to the size of the buffer. 412 * 413 * \returns a pointer to the buffer in memory that holds the contents of 414 * \p file, or a NULL pointer when the file is not loaded. 415 */ 416 CINDEX_LINKAGE const char *clang_getFileContents(CXTranslationUnit tu, 417 CXFile file, size_t *size); 418 419 /** 420 * Returns non-zero if the \c file1 and \c file2 point to the same file, 421 * or they are both NULL. 422 */ 423 CINDEX_LINKAGE int clang_File_isEqual(CXFile file1, CXFile file2); 424 425 /** 426 * Returns the real path name of \c file. 427 * 428 * An empty string may be returned. Use \c clang_getFileName() in that case. 429 */ 430 CINDEX_LINKAGE CXString clang_File_tryGetRealPathName(CXFile file); 431 432 /** 433 * @} 434 */ 435 436 /** 437 * \defgroup CINDEX_LOCATIONS Physical source locations 438 * 439 * Clang represents physical source locations in its abstract syntax tree in 440 * great detail, with file, line, and column information for the majority of 441 * the tokens parsed in the source code. These data types and functions are 442 * used to represent source location information, either for a particular 443 * point in the program or for a range of points in the program, and extract 444 * specific location information from those data types. 445 * 446 * @{ 447 */ 448 449 /** 450 * Identifies a specific source location within a translation 451 * unit. 452 * 453 * Use clang_getExpansionLocation() or clang_getSpellingLocation() 454 * to map a source location to a particular file, line, and column. 455 */ 456 typedef struct { 457 const void *ptr_data[2]; 458 unsigned int_data; 459 } CXSourceLocation; 460 461 /** 462 * Identifies a half-open character range in the source code. 463 * 464 * Use clang_getRangeStart() and clang_getRangeEnd() to retrieve the 465 * starting and end locations from a source range, respectively. 466 */ 467 typedef struct { 468 const void *ptr_data[2]; 469 unsigned begin_int_data; 470 unsigned end_int_data; 471 } CXSourceRange; 472 473 /** 474 * Retrieve a NULL (invalid) source location. 475 */ 476 CINDEX_LINKAGE CXSourceLocation clang_getNullLocation(void); 477 478 /** 479 * Determine whether two source locations, which must refer into 480 * the same translation unit, refer to exactly the same point in the source 481 * code. 482 * 483 * \returns non-zero if the source locations refer to the same location, zero 484 * if they refer to different locations. 485 */ 486 CINDEX_LINKAGE unsigned clang_equalLocations(CXSourceLocation loc1, 487 CXSourceLocation loc2); 488 489 /** 490 * Retrieves the source location associated with a given file/line/column 491 * in a particular translation unit. 492 */ 493 CINDEX_LINKAGE CXSourceLocation clang_getLocation(CXTranslationUnit tu, 494 CXFile file, unsigned line, 495 unsigned column); 496 /** 497 * Retrieves the source location associated with a given character offset 498 * in a particular translation unit. 499 */ 500 CINDEX_LINKAGE CXSourceLocation clang_getLocationForOffset(CXTranslationUnit tu, 501 CXFile file, 502 unsigned offset); 503 504 /** 505 * Returns non-zero if the given source location is in a system header. 506 */ 507 CINDEX_LINKAGE int clang_Location_isInSystemHeader(CXSourceLocation location); 508 509 /** 510 * Returns non-zero if the given source location is in the main file of 511 * the corresponding translation unit. 512 */ 513 CINDEX_LINKAGE int clang_Location_isFromMainFile(CXSourceLocation location); 514 515 /** 516 * Retrieve a NULL (invalid) source range. 517 */ 518 CINDEX_LINKAGE CXSourceRange clang_getNullRange(void); 519 520 /** 521 * Retrieve a source range given the beginning and ending source 522 * locations. 523 */ 524 CINDEX_LINKAGE CXSourceRange clang_getRange(CXSourceLocation begin, 525 CXSourceLocation end); 526 527 /** 528 * Determine whether two ranges are equivalent. 529 * 530 * \returns non-zero if the ranges are the same, zero if they differ. 531 */ 532 CINDEX_LINKAGE unsigned clang_equalRanges(CXSourceRange range1, 533 CXSourceRange range2); 534 535 /** 536 * Returns non-zero if \p range is null. 537 */ 538 CINDEX_LINKAGE int clang_Range_isNull(CXSourceRange range); 539 540 /** 541 * Retrieve the file, line, column, and offset represented by 542 * the given source location. 543 * 544 * If the location refers into a macro expansion, retrieves the 545 * location of the macro expansion. 546 * 547 * \param location the location within a source file that will be decomposed 548 * into its parts. 549 * 550 * \param file [out] if non-NULL, will be set to the file to which the given 551 * source location points. 552 * 553 * \param line [out] if non-NULL, will be set to the line to which the given 554 * source location points. 555 * 556 * \param column [out] if non-NULL, will be set to the column to which the given 557 * source location points. 558 * 559 * \param offset [out] if non-NULL, will be set to the offset into the 560 * buffer to which the given source location points. 561 */ 562 CINDEX_LINKAGE void clang_getExpansionLocation(CXSourceLocation location, 563 CXFile *file, unsigned *line, 564 unsigned *column, 565 unsigned *offset); 566 567 /** 568 * Retrieve the file, line and column represented by the given source 569 * location, as specified in a # line directive. 570 * 571 * Example: given the following source code in a file somefile.c 572 * 573 * \code 574 * #123 "dummy.c" 1 575 * 576 * static int func(void) 577 * { 578 * return 0; 579 * } 580 * \endcode 581 * 582 * the location information returned by this function would be 583 * 584 * File: dummy.c Line: 124 Column: 12 585 * 586 * whereas clang_getExpansionLocation would have returned 587 * 588 * File: somefile.c Line: 3 Column: 12 589 * 590 * \param location the location within a source file that will be decomposed 591 * into its parts. 592 * 593 * \param filename [out] if non-NULL, will be set to the filename of the 594 * source location. Note that filenames returned will be for "virtual" files, 595 * which don't necessarily exist on the machine running clang - e.g. when 596 * parsing preprocessed output obtained from a different environment. If 597 * a non-NULL value is passed in, remember to dispose of the returned value 598 * using \c clang_disposeString() once you've finished with it. For an invalid 599 * source location, an empty string is returned. 600 * 601 * \param line [out] if non-NULL, will be set to the line number of the 602 * source location. For an invalid source location, zero is returned. 603 * 604 * \param column [out] if non-NULL, will be set to the column number of the 605 * source location. For an invalid source location, zero is returned. 606 */ 607 CINDEX_LINKAGE void clang_getPresumedLocation(CXSourceLocation location, 608 CXString *filename, 609 unsigned *line, unsigned *column); 610 611 /** 612 * Legacy API to retrieve the file, line, column, and offset represented 613 * by the given source location. 614 * 615 * This interface has been replaced by the newer interface 616 * #clang_getExpansionLocation(). See that interface's documentation for 617 * details. 618 */ 619 CINDEX_LINKAGE void clang_getInstantiationLocation(CXSourceLocation location, 620 CXFile *file, unsigned *line, 621 unsigned *column, 622 unsigned *offset); 623 624 /** 625 * Retrieve the file, line, column, and offset represented by 626 * the given source location. 627 * 628 * If the location refers into a macro instantiation, return where the 629 * location was originally spelled in the source file. 630 * 631 * \param location the location within a source file that will be decomposed 632 * into its parts. 633 * 634 * \param file [out] if non-NULL, will be set to the file to which the given 635 * source location points. 636 * 637 * \param line [out] if non-NULL, will be set to the line to which the given 638 * source location points. 639 * 640 * \param column [out] if non-NULL, will be set to the column to which the given 641 * source location points. 642 * 643 * \param offset [out] if non-NULL, will be set to the offset into the 644 * buffer to which the given source location points. 645 */ 646 CINDEX_LINKAGE void clang_getSpellingLocation(CXSourceLocation location, 647 CXFile *file, unsigned *line, 648 unsigned *column, 649 unsigned *offset); 650 651 /** 652 * Retrieve the file, line, column, and offset represented by 653 * the given source location. 654 * 655 * If the location refers into a macro expansion, return where the macro was 656 * expanded or where the macro argument was written, if the location points at 657 * a macro argument. 658 * 659 * \param location the location within a source file that will be decomposed 660 * into its parts. 661 * 662 * \param file [out] if non-NULL, will be set to the file to which the given 663 * source location points. 664 * 665 * \param line [out] if non-NULL, will be set to the line to which the given 666 * source location points. 667 * 668 * \param column [out] if non-NULL, will be set to the column to which the given 669 * source location points. 670 * 671 * \param offset [out] if non-NULL, will be set to the offset into the 672 * buffer to which the given source location points. 673 */ 674 CINDEX_LINKAGE void clang_getFileLocation(CXSourceLocation location, 675 CXFile *file, unsigned *line, 676 unsigned *column, unsigned *offset); 677 678 /** 679 * Retrieve a source location representing the first character within a 680 * source range. 681 */ 682 CINDEX_LINKAGE CXSourceLocation clang_getRangeStart(CXSourceRange range); 683 684 /** 685 * Retrieve a source location representing the last character within a 686 * source range. 687 */ 688 CINDEX_LINKAGE CXSourceLocation clang_getRangeEnd(CXSourceRange range); 689 690 /** 691 * Identifies an array of ranges. 692 */ 693 typedef struct { 694 /** The number of ranges in the \c ranges array. */ 695 unsigned count; 696 /** 697 * An array of \c CXSourceRanges. 698 */ 699 CXSourceRange *ranges; 700 } CXSourceRangeList; 701 702 /** 703 * Retrieve all ranges that were skipped by the preprocessor. 704 * 705 * The preprocessor will skip lines when they are surrounded by an 706 * if/ifdef/ifndef directive whose condition does not evaluate to true. 707 */ 708 CINDEX_LINKAGE CXSourceRangeList *clang_getSkippedRanges(CXTranslationUnit tu, 709 CXFile file); 710 711 /** 712 * Retrieve all ranges from all files that were skipped by the 713 * preprocessor. 714 * 715 * The preprocessor will skip lines when they are surrounded by an 716 * if/ifdef/ifndef directive whose condition does not evaluate to true. 717 */ 718 CINDEX_LINKAGE CXSourceRangeList * 719 clang_getAllSkippedRanges(CXTranslationUnit tu); 720 721 /** 722 * Destroy the given \c CXSourceRangeList. 723 */ 724 CINDEX_LINKAGE void clang_disposeSourceRangeList(CXSourceRangeList *ranges); 725 726 /** 727 * @} 728 */ 729 730 /** 731 * \defgroup CINDEX_DIAG Diagnostic reporting 732 * 733 * @{ 734 */ 735 736 /** 737 * Describes the severity of a particular diagnostic. 738 */ 739 enum CXDiagnosticSeverity { 740 /** 741 * A diagnostic that has been suppressed, e.g., by a command-line 742 * option. 743 */ 744 CXDiagnostic_Ignored = 0, 745 746 /** 747 * This diagnostic is a note that should be attached to the 748 * previous (non-note) diagnostic. 749 */ 750 CXDiagnostic_Note = 1, 751 752 /** 753 * This diagnostic indicates suspicious code that may not be 754 * wrong. 755 */ 756 CXDiagnostic_Warning = 2, 757 758 /** 759 * This diagnostic indicates that the code is ill-formed. 760 */ 761 CXDiagnostic_Error = 3, 762 763 /** 764 * This diagnostic indicates that the code is ill-formed such 765 * that future parser recovery is unlikely to produce useful 766 * results. 767 */ 768 CXDiagnostic_Fatal = 4 769 }; 770 771 /** 772 * A single diagnostic, containing the diagnostic's severity, 773 * location, text, source ranges, and fix-it hints. 774 */ 775 typedef void *CXDiagnostic; 776 777 /** 778 * A group of CXDiagnostics. 779 */ 780 typedef void *CXDiagnosticSet; 781 782 /** 783 * Determine the number of diagnostics in a CXDiagnosticSet. 784 */ 785 CINDEX_LINKAGE unsigned clang_getNumDiagnosticsInSet(CXDiagnosticSet Diags); 786 787 /** 788 * Retrieve a diagnostic associated with the given CXDiagnosticSet. 789 * 790 * \param Diags the CXDiagnosticSet to query. 791 * \param Index the zero-based diagnostic number to retrieve. 792 * 793 * \returns the requested diagnostic. This diagnostic must be freed 794 * via a call to \c clang_disposeDiagnostic(). 795 */ 796 CINDEX_LINKAGE CXDiagnostic clang_getDiagnosticInSet(CXDiagnosticSet Diags, 797 unsigned Index); 798 799 /** 800 * Describes the kind of error that occurred (if any) in a call to 801 * \c clang_loadDiagnostics. 802 */ 803 enum CXLoadDiag_Error { 804 /** 805 * Indicates that no error occurred. 806 */ 807 CXLoadDiag_None = 0, 808 809 /** 810 * Indicates that an unknown error occurred while attempting to 811 * deserialize diagnostics. 812 */ 813 CXLoadDiag_Unknown = 1, 814 815 /** 816 * Indicates that the file containing the serialized diagnostics 817 * could not be opened. 818 */ 819 CXLoadDiag_CannotLoad = 2, 820 821 /** 822 * Indicates that the serialized diagnostics file is invalid or 823 * corrupt. 824 */ 825 CXLoadDiag_InvalidFile = 3 826 }; 827 828 /** 829 * Deserialize a set of diagnostics from a Clang diagnostics bitcode 830 * file. 831 * 832 * \param file The name of the file to deserialize. 833 * \param error A pointer to a enum value recording if there was a problem 834 * deserializing the diagnostics. 835 * \param errorString A pointer to a CXString for recording the error string 836 * if the file was not successfully loaded. 837 * 838 * \returns A loaded CXDiagnosticSet if successful, and NULL otherwise. These 839 * diagnostics should be released using clang_disposeDiagnosticSet(). 840 */ 841 CINDEX_LINKAGE CXDiagnosticSet clang_loadDiagnostics( 842 const char *file, enum CXLoadDiag_Error *error, CXString *errorString); 843 844 /** 845 * Release a CXDiagnosticSet and all of its contained diagnostics. 846 */ 847 CINDEX_LINKAGE void clang_disposeDiagnosticSet(CXDiagnosticSet Diags); 848 849 /** 850 * Retrieve the child diagnostics of a CXDiagnostic. 851 * 852 * This CXDiagnosticSet does not need to be released by 853 * clang_disposeDiagnosticSet. 854 */ 855 CINDEX_LINKAGE CXDiagnosticSet clang_getChildDiagnostics(CXDiagnostic D); 856 857 /** 858 * Determine the number of diagnostics produced for the given 859 * translation unit. 860 */ 861 CINDEX_LINKAGE unsigned clang_getNumDiagnostics(CXTranslationUnit Unit); 862 863 /** 864 * Retrieve a diagnostic associated with the given translation unit. 865 * 866 * \param Unit the translation unit to query. 867 * \param Index the zero-based diagnostic number to retrieve. 868 * 869 * \returns the requested diagnostic. This diagnostic must be freed 870 * via a call to \c clang_disposeDiagnostic(). 871 */ 872 CINDEX_LINKAGE CXDiagnostic clang_getDiagnostic(CXTranslationUnit Unit, 873 unsigned Index); 874 875 /** 876 * Retrieve the complete set of diagnostics associated with a 877 * translation unit. 878 * 879 * \param Unit the translation unit to query. 880 */ 881 CINDEX_LINKAGE CXDiagnosticSet 882 clang_getDiagnosticSetFromTU(CXTranslationUnit Unit); 883 884 /** 885 * Destroy a diagnostic. 886 */ 887 CINDEX_LINKAGE void clang_disposeDiagnostic(CXDiagnostic Diagnostic); 888 889 /** 890 * Options to control the display of diagnostics. 891 * 892 * The values in this enum are meant to be combined to customize the 893 * behavior of \c clang_formatDiagnostic(). 894 */ 895 enum CXDiagnosticDisplayOptions { 896 /** 897 * Display the source-location information where the 898 * diagnostic was located. 899 * 900 * When set, diagnostics will be prefixed by the file, line, and 901 * (optionally) column to which the diagnostic refers. For example, 902 * 903 * \code 904 * test.c:28: warning: extra tokens at end of #endif directive 905 * \endcode 906 * 907 * This option corresponds to the clang flag \c -fshow-source-location. 908 */ 909 CXDiagnostic_DisplaySourceLocation = 0x01, 910 911 /** 912 * If displaying the source-location information of the 913 * diagnostic, also include the column number. 914 * 915 * This option corresponds to the clang flag \c -fshow-column. 916 */ 917 CXDiagnostic_DisplayColumn = 0x02, 918 919 /** 920 * If displaying the source-location information of the 921 * diagnostic, also include information about source ranges in a 922 * machine-parsable format. 923 * 924 * This option corresponds to the clang flag 925 * \c -fdiagnostics-print-source-range-info. 926 */ 927 CXDiagnostic_DisplaySourceRanges = 0x04, 928 929 /** 930 * Display the option name associated with this diagnostic, if any. 931 * 932 * The option name displayed (e.g., -Wconversion) will be placed in brackets 933 * after the diagnostic text. This option corresponds to the clang flag 934 * \c -fdiagnostics-show-option. 935 */ 936 CXDiagnostic_DisplayOption = 0x08, 937 938 /** 939 * Display the category number associated with this diagnostic, if any. 940 * 941 * The category number is displayed within brackets after the diagnostic text. 942 * This option corresponds to the clang flag 943 * \c -fdiagnostics-show-category=id. 944 */ 945 CXDiagnostic_DisplayCategoryId = 0x10, 946 947 /** 948 * Display the category name associated with this diagnostic, if any. 949 * 950 * The category name is displayed within brackets after the diagnostic text. 951 * This option corresponds to the clang flag 952 * \c -fdiagnostics-show-category=name. 953 */ 954 CXDiagnostic_DisplayCategoryName = 0x20 955 }; 956 957 /** 958 * Format the given diagnostic in a manner that is suitable for display. 959 * 960 * This routine will format the given diagnostic to a string, rendering 961 * the diagnostic according to the various options given. The 962 * \c clang_defaultDiagnosticDisplayOptions() function returns the set of 963 * options that most closely mimics the behavior of the clang compiler. 964 * 965 * \param Diagnostic The diagnostic to print. 966 * 967 * \param Options A set of options that control the diagnostic display, 968 * created by combining \c CXDiagnosticDisplayOptions values. 969 * 970 * \returns A new string containing for formatted diagnostic. 971 */ 972 CINDEX_LINKAGE CXString clang_formatDiagnostic(CXDiagnostic Diagnostic, 973 unsigned Options); 974 975 /** 976 * Retrieve the set of display options most similar to the 977 * default behavior of the clang compiler. 978 * 979 * \returns A set of display options suitable for use with \c 980 * clang_formatDiagnostic(). 981 */ 982 CINDEX_LINKAGE unsigned clang_defaultDiagnosticDisplayOptions(void); 983 984 /** 985 * Determine the severity of the given diagnostic. 986 */ 987 CINDEX_LINKAGE enum CXDiagnosticSeverity 988 clang_getDiagnosticSeverity(CXDiagnostic); 989 990 /** 991 * Retrieve the source location of the given diagnostic. 992 * 993 * This location is where Clang would print the caret ('^') when 994 * displaying the diagnostic on the command line. 995 */ 996 CINDEX_LINKAGE CXSourceLocation clang_getDiagnosticLocation(CXDiagnostic); 997 998 /** 999 * Retrieve the text of the given diagnostic. 1000 */ 1001 CINDEX_LINKAGE CXString clang_getDiagnosticSpelling(CXDiagnostic); 1002 1003 /** 1004 * Retrieve the name of the command-line option that enabled this 1005 * diagnostic. 1006 * 1007 * \param Diag The diagnostic to be queried. 1008 * 1009 * \param Disable If non-NULL, will be set to the option that disables this 1010 * diagnostic (if any). 1011 * 1012 * \returns A string that contains the command-line option used to enable this 1013 * warning, such as "-Wconversion" or "-pedantic". 1014 */ 1015 CINDEX_LINKAGE CXString clang_getDiagnosticOption(CXDiagnostic Diag, 1016 CXString *Disable); 1017 1018 /** 1019 * Retrieve the category number for this diagnostic. 1020 * 1021 * Diagnostics can be categorized into groups along with other, related 1022 * diagnostics (e.g., diagnostics under the same warning flag). This routine 1023 * retrieves the category number for the given diagnostic. 1024 * 1025 * \returns The number of the category that contains this diagnostic, or zero 1026 * if this diagnostic is uncategorized. 1027 */ 1028 CINDEX_LINKAGE unsigned clang_getDiagnosticCategory(CXDiagnostic); 1029 1030 /** 1031 * Retrieve the name of a particular diagnostic category. This 1032 * is now deprecated. Use clang_getDiagnosticCategoryText() 1033 * instead. 1034 * 1035 * \param Category A diagnostic category number, as returned by 1036 * \c clang_getDiagnosticCategory(). 1037 * 1038 * \returns The name of the given diagnostic category. 1039 */ 1040 CINDEX_DEPRECATED CINDEX_LINKAGE CXString 1041 clang_getDiagnosticCategoryName(unsigned Category); 1042 1043 /** 1044 * Retrieve the diagnostic category text for a given diagnostic. 1045 * 1046 * \returns The text of the given diagnostic category. 1047 */ 1048 CINDEX_LINKAGE CXString clang_getDiagnosticCategoryText(CXDiagnostic); 1049 1050 /** 1051 * Determine the number of source ranges associated with the given 1052 * diagnostic. 1053 */ 1054 CINDEX_LINKAGE unsigned clang_getDiagnosticNumRanges(CXDiagnostic); 1055 1056 /** 1057 * Retrieve a source range associated with the diagnostic. 1058 * 1059 * A diagnostic's source ranges highlight important elements in the source 1060 * code. On the command line, Clang displays source ranges by 1061 * underlining them with '~' characters. 1062 * 1063 * \param Diagnostic the diagnostic whose range is being extracted. 1064 * 1065 * \param Range the zero-based index specifying which range to 1066 * 1067 * \returns the requested source range. 1068 */ 1069 CINDEX_LINKAGE CXSourceRange clang_getDiagnosticRange(CXDiagnostic Diagnostic, 1070 unsigned Range); 1071 1072 /** 1073 * Determine the number of fix-it hints associated with the 1074 * given diagnostic. 1075 */ 1076 CINDEX_LINKAGE unsigned clang_getDiagnosticNumFixIts(CXDiagnostic Diagnostic); 1077 1078 /** 1079 * Retrieve the replacement information for a given fix-it. 1080 * 1081 * Fix-its are described in terms of a source range whose contents 1082 * should be replaced by a string. This approach generalizes over 1083 * three kinds of operations: removal of source code (the range covers 1084 * the code to be removed and the replacement string is empty), 1085 * replacement of source code (the range covers the code to be 1086 * replaced and the replacement string provides the new code), and 1087 * insertion (both the start and end of the range point at the 1088 * insertion location, and the replacement string provides the text to 1089 * insert). 1090 * 1091 * \param Diagnostic The diagnostic whose fix-its are being queried. 1092 * 1093 * \param FixIt The zero-based index of the fix-it. 1094 * 1095 * \param ReplacementRange The source range whose contents will be 1096 * replaced with the returned replacement string. Note that source 1097 * ranges are half-open ranges [a, b), so the source code should be 1098 * replaced from a and up to (but not including) b. 1099 * 1100 * \returns A string containing text that should be replace the source 1101 * code indicated by the \c ReplacementRange. 1102 */ 1103 CINDEX_LINKAGE CXString clang_getDiagnosticFixIt( 1104 CXDiagnostic Diagnostic, unsigned FixIt, CXSourceRange *ReplacementRange); 1105 1106 /** 1107 * @} 1108 */ 1109 1110 /** 1111 * \defgroup CINDEX_TRANSLATION_UNIT Translation unit manipulation 1112 * 1113 * The routines in this group provide the ability to create and destroy 1114 * translation units from files, either by parsing the contents of the files or 1115 * by reading in a serialized representation of a translation unit. 1116 * 1117 * @{ 1118 */ 1119 1120 /** 1121 * Get the original translation unit source file name. 1122 */ 1123 CINDEX_LINKAGE CXString 1124 clang_getTranslationUnitSpelling(CXTranslationUnit CTUnit); 1125 1126 /** 1127 * Return the CXTranslationUnit for a given source file and the provided 1128 * command line arguments one would pass to the compiler. 1129 * 1130 * Note: The 'source_filename' argument is optional. If the caller provides a 1131 * NULL pointer, the name of the source file is expected to reside in the 1132 * specified command line arguments. 1133 * 1134 * Note: When encountered in 'clang_command_line_args', the following options 1135 * are ignored: 1136 * 1137 * '-c' 1138 * '-emit-ast' 1139 * '-fsyntax-only' 1140 * '-o \<output file>' (both '-o' and '\<output file>' are ignored) 1141 * 1142 * \param CIdx The index object with which the translation unit will be 1143 * associated. 1144 * 1145 * \param source_filename The name of the source file to load, or NULL if the 1146 * source file is included in \p clang_command_line_args. 1147 * 1148 * \param num_clang_command_line_args The number of command-line arguments in 1149 * \p clang_command_line_args. 1150 * 1151 * \param clang_command_line_args The command-line arguments that would be 1152 * passed to the \c clang executable if it were being invoked out-of-process. 1153 * These command-line options will be parsed and will affect how the translation 1154 * unit is parsed. Note that the following options are ignored: '-c', 1155 * '-emit-ast', '-fsyntax-only' (which is the default), and '-o \<output file>'. 1156 * 1157 * \param num_unsaved_files the number of unsaved file entries in \p 1158 * unsaved_files. 1159 * 1160 * \param unsaved_files the files that have not yet been saved to disk 1161 * but may be required for code completion, including the contents of 1162 * those files. The contents and name of these files (as specified by 1163 * CXUnsavedFile) are copied when necessary, so the client only needs to 1164 * guarantee their validity until the call to this function returns. 1165 */ 1166 CINDEX_LINKAGE CXTranslationUnit clang_createTranslationUnitFromSourceFile( 1167 CXIndex CIdx, const char *source_filename, int num_clang_command_line_args, 1168 const char *const *clang_command_line_args, unsigned num_unsaved_files, 1169 struct CXUnsavedFile *unsaved_files); 1170 1171 /** 1172 * Same as \c clang_createTranslationUnit2, but returns 1173 * the \c CXTranslationUnit instead of an error code. In case of an error this 1174 * routine returns a \c NULL \c CXTranslationUnit, without further detailed 1175 * error codes. 1176 */ 1177 CINDEX_LINKAGE CXTranslationUnit 1178 clang_createTranslationUnit(CXIndex CIdx, const char *ast_filename); 1179 1180 /** 1181 * Create a translation unit from an AST file (\c -emit-ast). 1182 * 1183 * \param[out] out_TU A non-NULL pointer to store the created 1184 * \c CXTranslationUnit. 1185 * 1186 * \returns Zero on success, otherwise returns an error code. 1187 */ 1188 CINDEX_LINKAGE enum CXErrorCode 1189 clang_createTranslationUnit2(CXIndex CIdx, const char *ast_filename, 1190 CXTranslationUnit *out_TU); 1191 1192 /** 1193 * Flags that control the creation of translation units. 1194 * 1195 * The enumerators in this enumeration type are meant to be bitwise 1196 * ORed together to specify which options should be used when 1197 * constructing the translation unit. 1198 */ 1199 enum CXTranslationUnit_Flags { 1200 /** 1201 * Used to indicate that no special translation-unit options are 1202 * needed. 1203 */ 1204 CXTranslationUnit_None = 0x0, 1205 1206 /** 1207 * Used to indicate that the parser should construct a "detailed" 1208 * preprocessing record, including all macro definitions and instantiations. 1209 * 1210 * Constructing a detailed preprocessing record requires more memory 1211 * and time to parse, since the information contained in the record 1212 * is usually not retained. However, it can be useful for 1213 * applications that require more detailed information about the 1214 * behavior of the preprocessor. 1215 */ 1216 CXTranslationUnit_DetailedPreprocessingRecord = 0x01, 1217 1218 /** 1219 * Used to indicate that the translation unit is incomplete. 1220 * 1221 * When a translation unit is considered "incomplete", semantic 1222 * analysis that is typically performed at the end of the 1223 * translation unit will be suppressed. For example, this suppresses 1224 * the completion of tentative declarations in C and of 1225 * instantiation of implicitly-instantiation function templates in 1226 * C++. This option is typically used when parsing a header with the 1227 * intent of producing a precompiled header. 1228 */ 1229 CXTranslationUnit_Incomplete = 0x02, 1230 1231 /** 1232 * Used to indicate that the translation unit should be built with an 1233 * implicit precompiled header for the preamble. 1234 * 1235 * An implicit precompiled header is used as an optimization when a 1236 * particular translation unit is likely to be reparsed many times 1237 * when the sources aren't changing that often. In this case, an 1238 * implicit precompiled header will be built containing all of the 1239 * initial includes at the top of the main file (what we refer to as 1240 * the "preamble" of the file). In subsequent parses, if the 1241 * preamble or the files in it have not changed, \c 1242 * clang_reparseTranslationUnit() will re-use the implicit 1243 * precompiled header to improve parsing performance. 1244 */ 1245 CXTranslationUnit_PrecompiledPreamble = 0x04, 1246 1247 /** 1248 * Used to indicate that the translation unit should cache some 1249 * code-completion results with each reparse of the source file. 1250 * 1251 * Caching of code-completion results is a performance optimization that 1252 * introduces some overhead to reparsing but improves the performance of 1253 * code-completion operations. 1254 */ 1255 CXTranslationUnit_CacheCompletionResults = 0x08, 1256 1257 /** 1258 * Used to indicate that the translation unit will be serialized with 1259 * \c clang_saveTranslationUnit. 1260 * 1261 * This option is typically used when parsing a header with the intent of 1262 * producing a precompiled header. 1263 */ 1264 CXTranslationUnit_ForSerialization = 0x10, 1265 1266 /** 1267 * DEPRECATED: Enabled chained precompiled preambles in C++. 1268 * 1269 * Note: this is a *temporary* option that is available only while 1270 * we are testing C++ precompiled preamble support. It is deprecated. 1271 */ 1272 CXTranslationUnit_CXXChainedPCH = 0x20, 1273 1274 /** 1275 * Used to indicate that function/method bodies should be skipped while 1276 * parsing. 1277 * 1278 * This option can be used to search for declarations/definitions while 1279 * ignoring the usages. 1280 */ 1281 CXTranslationUnit_SkipFunctionBodies = 0x40, 1282 1283 /** 1284 * Used to indicate that brief documentation comments should be 1285 * included into the set of code completions returned from this translation 1286 * unit. 1287 */ 1288 CXTranslationUnit_IncludeBriefCommentsInCodeCompletion = 0x80, 1289 1290 /** 1291 * Used to indicate that the precompiled preamble should be created on 1292 * the first parse. Otherwise it will be created on the first reparse. This 1293 * trades runtime on the first parse (serializing the preamble takes time) for 1294 * reduced runtime on the second parse (can now reuse the preamble). 1295 */ 1296 CXTranslationUnit_CreatePreambleOnFirstParse = 0x100, 1297 1298 /** 1299 * Do not stop processing when fatal errors are encountered. 1300 * 1301 * When fatal errors are encountered while parsing a translation unit, 1302 * semantic analysis is typically stopped early when compiling code. A common 1303 * source for fatal errors are unresolvable include files. For the 1304 * purposes of an IDE, this is undesirable behavior and as much information 1305 * as possible should be reported. Use this flag to enable this behavior. 1306 */ 1307 CXTranslationUnit_KeepGoing = 0x200, 1308 1309 /** 1310 * Sets the preprocessor in a mode for parsing a single file only. 1311 */ 1312 CXTranslationUnit_SingleFileParse = 0x400, 1313 1314 /** 1315 * Used in combination with CXTranslationUnit_SkipFunctionBodies to 1316 * constrain the skipping of function bodies to the preamble. 1317 * 1318 * The function bodies of the main file are not skipped. 1319 */ 1320 CXTranslationUnit_LimitSkipFunctionBodiesToPreamble = 0x800, 1321 1322 /** 1323 * Used to indicate that attributed types should be included in CXType. 1324 */ 1325 CXTranslationUnit_IncludeAttributedTypes = 0x1000, 1326 1327 /** 1328 * Used to indicate that implicit attributes should be visited. 1329 */ 1330 CXTranslationUnit_VisitImplicitAttributes = 0x2000, 1331 1332 /** 1333 * Used to indicate that non-errors from included files should be ignored. 1334 * 1335 * If set, clang_getDiagnosticSetFromTU() will not report e.g. warnings from 1336 * included files anymore. This speeds up clang_getDiagnosticSetFromTU() for 1337 * the case where these warnings are not of interest, as for an IDE for 1338 * example, which typically shows only the diagnostics in the main file. 1339 */ 1340 CXTranslationUnit_IgnoreNonErrorsFromIncludedFiles = 0x4000, 1341 1342 /** 1343 * Tells the preprocessor not to skip excluded conditional blocks. 1344 */ 1345 CXTranslationUnit_RetainExcludedConditionalBlocks = 0x8000 1346 }; 1347 1348 /** 1349 * Returns the set of flags that is suitable for parsing a translation 1350 * unit that is being edited. 1351 * 1352 * The set of flags returned provide options for \c clang_parseTranslationUnit() 1353 * to indicate that the translation unit is likely to be reparsed many times, 1354 * either explicitly (via \c clang_reparseTranslationUnit()) or implicitly 1355 * (e.g., by code completion (\c clang_codeCompletionAt())). The returned flag 1356 * set contains an unspecified set of optimizations (e.g., the precompiled 1357 * preamble) geared toward improving the performance of these routines. The 1358 * set of optimizations enabled may change from one version to the next. 1359 */ 1360 CINDEX_LINKAGE unsigned clang_defaultEditingTranslationUnitOptions(void); 1361 1362 /** 1363 * Same as \c clang_parseTranslationUnit2, but returns 1364 * the \c CXTranslationUnit instead of an error code. In case of an error this 1365 * routine returns a \c NULL \c CXTranslationUnit, without further detailed 1366 * error codes. 1367 */ 1368 CINDEX_LINKAGE CXTranslationUnit clang_parseTranslationUnit( 1369 CXIndex CIdx, const char *source_filename, 1370 const char *const *command_line_args, int num_command_line_args, 1371 struct CXUnsavedFile *unsaved_files, unsigned num_unsaved_files, 1372 unsigned options); 1373 1374 /** 1375 * Parse the given source file and the translation unit corresponding 1376 * to that file. 1377 * 1378 * This routine is the main entry point for the Clang C API, providing the 1379 * ability to parse a source file into a translation unit that can then be 1380 * queried by other functions in the API. This routine accepts a set of 1381 * command-line arguments so that the compilation can be configured in the same 1382 * way that the compiler is configured on the command line. 1383 * 1384 * \param CIdx The index object with which the translation unit will be 1385 * associated. 1386 * 1387 * \param source_filename The name of the source file to load, or NULL if the 1388 * source file is included in \c command_line_args. 1389 * 1390 * \param command_line_args The command-line arguments that would be 1391 * passed to the \c clang executable if it were being invoked out-of-process. 1392 * These command-line options will be parsed and will affect how the translation 1393 * unit is parsed. Note that the following options are ignored: '-c', 1394 * '-emit-ast', '-fsyntax-only' (which is the default), and '-o \<output file>'. 1395 * 1396 * \param num_command_line_args The number of command-line arguments in 1397 * \c command_line_args. 1398 * 1399 * \param unsaved_files the files that have not yet been saved to disk 1400 * but may be required for parsing, including the contents of 1401 * those files. The contents and name of these files (as specified by 1402 * CXUnsavedFile) are copied when necessary, so the client only needs to 1403 * guarantee their validity until the call to this function returns. 1404 * 1405 * \param num_unsaved_files the number of unsaved file entries in \p 1406 * unsaved_files. 1407 * 1408 * \param options A bitmask of options that affects how the translation unit 1409 * is managed but not its compilation. This should be a bitwise OR of the 1410 * CXTranslationUnit_XXX flags. 1411 * 1412 * \param[out] out_TU A non-NULL pointer to store the created 1413 * \c CXTranslationUnit, describing the parsed code and containing any 1414 * diagnostics produced by the compiler. 1415 * 1416 * \returns Zero on success, otherwise returns an error code. 1417 */ 1418 CINDEX_LINKAGE enum CXErrorCode clang_parseTranslationUnit2( 1419 CXIndex CIdx, const char *source_filename, 1420 const char *const *command_line_args, int num_command_line_args, 1421 struct CXUnsavedFile *unsaved_files, unsigned num_unsaved_files, 1422 unsigned options, CXTranslationUnit *out_TU); 1423 1424 /** 1425 * Same as clang_parseTranslationUnit2 but requires a full command line 1426 * for \c command_line_args including argv[0]. This is useful if the standard 1427 * library paths are relative to the binary. 1428 */ 1429 CINDEX_LINKAGE enum CXErrorCode clang_parseTranslationUnit2FullArgv( 1430 CXIndex CIdx, const char *source_filename, 1431 const char *const *command_line_args, int num_command_line_args, 1432 struct CXUnsavedFile *unsaved_files, unsigned num_unsaved_files, 1433 unsigned options, CXTranslationUnit *out_TU); 1434 1435 /** 1436 * Flags that control how translation units are saved. 1437 * 1438 * The enumerators in this enumeration type are meant to be bitwise 1439 * ORed together to specify which options should be used when 1440 * saving the translation unit. 1441 */ 1442 enum CXSaveTranslationUnit_Flags { 1443 /** 1444 * Used to indicate that no special saving options are needed. 1445 */ 1446 CXSaveTranslationUnit_None = 0x0 1447 }; 1448 1449 /** 1450 * Returns the set of flags that is suitable for saving a translation 1451 * unit. 1452 * 1453 * The set of flags returned provide options for 1454 * \c clang_saveTranslationUnit() by default. The returned flag 1455 * set contains an unspecified set of options that save translation units with 1456 * the most commonly-requested data. 1457 */ 1458 CINDEX_LINKAGE unsigned clang_defaultSaveOptions(CXTranslationUnit TU); 1459 1460 /** 1461 * Describes the kind of error that occurred (if any) in a call to 1462 * \c clang_saveTranslationUnit(). 1463 */ 1464 enum CXSaveError { 1465 /** 1466 * Indicates that no error occurred while saving a translation unit. 1467 */ 1468 CXSaveError_None = 0, 1469 1470 /** 1471 * Indicates that an unknown error occurred while attempting to save 1472 * the file. 1473 * 1474 * This error typically indicates that file I/O failed when attempting to 1475 * write the file. 1476 */ 1477 CXSaveError_Unknown = 1, 1478 1479 /** 1480 * Indicates that errors during translation prevented this attempt 1481 * to save the translation unit. 1482 * 1483 * Errors that prevent the translation unit from being saved can be 1484 * extracted using \c clang_getNumDiagnostics() and \c clang_getDiagnostic(). 1485 */ 1486 CXSaveError_TranslationErrors = 2, 1487 1488 /** 1489 * Indicates that the translation unit to be saved was somehow 1490 * invalid (e.g., NULL). 1491 */ 1492 CXSaveError_InvalidTU = 3 1493 }; 1494 1495 /** 1496 * Saves a translation unit into a serialized representation of 1497 * that translation unit on disk. 1498 * 1499 * Any translation unit that was parsed without error can be saved 1500 * into a file. The translation unit can then be deserialized into a 1501 * new \c CXTranslationUnit with \c clang_createTranslationUnit() or, 1502 * if it is an incomplete translation unit that corresponds to a 1503 * header, used as a precompiled header when parsing other translation 1504 * units. 1505 * 1506 * \param TU The translation unit to save. 1507 * 1508 * \param FileName The file to which the translation unit will be saved. 1509 * 1510 * \param options A bitmask of options that affects how the translation unit 1511 * is saved. This should be a bitwise OR of the 1512 * CXSaveTranslationUnit_XXX flags. 1513 * 1514 * \returns A value that will match one of the enumerators of the CXSaveError 1515 * enumeration. Zero (CXSaveError_None) indicates that the translation unit was 1516 * saved successfully, while a non-zero value indicates that a problem occurred. 1517 */ 1518 CINDEX_LINKAGE int clang_saveTranslationUnit(CXTranslationUnit TU, 1519 const char *FileName, 1520 unsigned options); 1521 1522 /** 1523 * Suspend a translation unit in order to free memory associated with it. 1524 * 1525 * A suspended translation unit uses significantly less memory but on the other 1526 * side does not support any other calls than \c clang_reparseTranslationUnit 1527 * to resume it or \c clang_disposeTranslationUnit to dispose it completely. 1528 */ 1529 CINDEX_LINKAGE unsigned clang_suspendTranslationUnit(CXTranslationUnit); 1530 1531 /** 1532 * Destroy the specified CXTranslationUnit object. 1533 */ 1534 CINDEX_LINKAGE void clang_disposeTranslationUnit(CXTranslationUnit); 1535 1536 /** 1537 * Flags that control the reparsing of translation units. 1538 * 1539 * The enumerators in this enumeration type are meant to be bitwise 1540 * ORed together to specify which options should be used when 1541 * reparsing the translation unit. 1542 */ 1543 enum CXReparse_Flags { 1544 /** 1545 * Used to indicate that no special reparsing options are needed. 1546 */ 1547 CXReparse_None = 0x0 1548 }; 1549 1550 /** 1551 * Returns the set of flags that is suitable for reparsing a translation 1552 * unit. 1553 * 1554 * The set of flags returned provide options for 1555 * \c clang_reparseTranslationUnit() by default. The returned flag 1556 * set contains an unspecified set of optimizations geared toward common uses 1557 * of reparsing. The set of optimizations enabled may change from one version 1558 * to the next. 1559 */ 1560 CINDEX_LINKAGE unsigned clang_defaultReparseOptions(CXTranslationUnit TU); 1561 1562 /** 1563 * Reparse the source files that produced this translation unit. 1564 * 1565 * This routine can be used to re-parse the source files that originally 1566 * created the given translation unit, for example because those source files 1567 * have changed (either on disk or as passed via \p unsaved_files). The 1568 * source code will be reparsed with the same command-line options as it 1569 * was originally parsed. 1570 * 1571 * Reparsing a translation unit invalidates all cursors and source locations 1572 * that refer into that translation unit. This makes reparsing a translation 1573 * unit semantically equivalent to destroying the translation unit and then 1574 * creating a new translation unit with the same command-line arguments. 1575 * However, it may be more efficient to reparse a translation 1576 * unit using this routine. 1577 * 1578 * \param TU The translation unit whose contents will be re-parsed. The 1579 * translation unit must originally have been built with 1580 * \c clang_createTranslationUnitFromSourceFile(). 1581 * 1582 * \param num_unsaved_files The number of unsaved file entries in \p 1583 * unsaved_files. 1584 * 1585 * \param unsaved_files The files that have not yet been saved to disk 1586 * but may be required for parsing, including the contents of 1587 * those files. The contents and name of these files (as specified by 1588 * CXUnsavedFile) are copied when necessary, so the client only needs to 1589 * guarantee their validity until the call to this function returns. 1590 * 1591 * \param options A bitset of options composed of the flags in CXReparse_Flags. 1592 * The function \c clang_defaultReparseOptions() produces a default set of 1593 * options recommended for most uses, based on the translation unit. 1594 * 1595 * \returns 0 if the sources could be reparsed. A non-zero error code will be 1596 * returned if reparsing was impossible, such that the translation unit is 1597 * invalid. In such cases, the only valid call for \c TU is 1598 * \c clang_disposeTranslationUnit(TU). The error codes returned by this 1599 * routine are described by the \c CXErrorCode enum. 1600 */ 1601 CINDEX_LINKAGE int 1602 clang_reparseTranslationUnit(CXTranslationUnit TU, unsigned num_unsaved_files, 1603 struct CXUnsavedFile *unsaved_files, 1604 unsigned options); 1605 1606 /** 1607 * Categorizes how memory is being used by a translation unit. 1608 */ 1609 enum CXTUResourceUsageKind { 1610 CXTUResourceUsage_AST = 1, 1611 CXTUResourceUsage_Identifiers = 2, 1612 CXTUResourceUsage_Selectors = 3, 1613 CXTUResourceUsage_GlobalCompletionResults = 4, 1614 CXTUResourceUsage_SourceManagerContentCache = 5, 1615 CXTUResourceUsage_AST_SideTables = 6, 1616 CXTUResourceUsage_SourceManager_Membuffer_Malloc = 7, 1617 CXTUResourceUsage_SourceManager_Membuffer_MMap = 8, 1618 CXTUResourceUsage_ExternalASTSource_Membuffer_Malloc = 9, 1619 CXTUResourceUsage_ExternalASTSource_Membuffer_MMap = 10, 1620 CXTUResourceUsage_Preprocessor = 11, 1621 CXTUResourceUsage_PreprocessingRecord = 12, 1622 CXTUResourceUsage_SourceManager_DataStructures = 13, 1623 CXTUResourceUsage_Preprocessor_HeaderSearch = 14, 1624 CXTUResourceUsage_MEMORY_IN_BYTES_BEGIN = CXTUResourceUsage_AST, 1625 CXTUResourceUsage_MEMORY_IN_BYTES_END = 1626 CXTUResourceUsage_Preprocessor_HeaderSearch, 1627 1628 CXTUResourceUsage_First = CXTUResourceUsage_AST, 1629 CXTUResourceUsage_Last = CXTUResourceUsage_Preprocessor_HeaderSearch 1630 }; 1631 1632 /** 1633 * Returns the human-readable null-terminated C string that represents 1634 * the name of the memory category. This string should never be freed. 1635 */ 1636 CINDEX_LINKAGE 1637 const char *clang_getTUResourceUsageName(enum CXTUResourceUsageKind kind); 1638 1639 typedef struct CXTUResourceUsageEntry { 1640 /* The memory usage category. */ 1641 enum CXTUResourceUsageKind kind; 1642 /* Amount of resources used. 1643 The units will depend on the resource kind. */ 1644 unsigned long amount; 1645 } CXTUResourceUsageEntry; 1646 1647 /** 1648 * The memory usage of a CXTranslationUnit, broken into categories. 1649 */ 1650 typedef struct CXTUResourceUsage { 1651 /* Private data member, used for queries. */ 1652 void *data; 1653 1654 /* The number of entries in the 'entries' array. */ 1655 unsigned numEntries; 1656 1657 /* An array of key-value pairs, representing the breakdown of memory 1658 usage. */ 1659 CXTUResourceUsageEntry *entries; 1660 1661 } CXTUResourceUsage; 1662 1663 /** 1664 * Return the memory usage of a translation unit. This object 1665 * should be released with clang_disposeCXTUResourceUsage(). 1666 */ 1667 CINDEX_LINKAGE CXTUResourceUsage 1668 clang_getCXTUResourceUsage(CXTranslationUnit TU); 1669 1670 CINDEX_LINKAGE void clang_disposeCXTUResourceUsage(CXTUResourceUsage usage); 1671 1672 /** 1673 * Get target information for this translation unit. 1674 * 1675 * The CXTargetInfo object cannot outlive the CXTranslationUnit object. 1676 */ 1677 CINDEX_LINKAGE CXTargetInfo 1678 clang_getTranslationUnitTargetInfo(CXTranslationUnit CTUnit); 1679 1680 /** 1681 * Destroy the CXTargetInfo object. 1682 */ 1683 CINDEX_LINKAGE void clang_TargetInfo_dispose(CXTargetInfo Info); 1684 1685 /** 1686 * Get the normalized target triple as a string. 1687 * 1688 * Returns the empty string in case of any error. 1689 */ 1690 CINDEX_LINKAGE CXString clang_TargetInfo_getTriple(CXTargetInfo Info); 1691 1692 /** 1693 * Get the pointer width of the target in bits. 1694 * 1695 * Returns -1 in case of error. 1696 */ 1697 CINDEX_LINKAGE int clang_TargetInfo_getPointerWidth(CXTargetInfo Info); 1698 1699 /** 1700 * @} 1701 */ 1702 1703 /** 1704 * Describes the kind of entity that a cursor refers to. 1705 */ 1706 enum CXCursorKind { 1707 /* Declarations */ 1708 /** 1709 * A declaration whose specific kind is not exposed via this 1710 * interface. 1711 * 1712 * Unexposed declarations have the same operations as any other kind 1713 * of declaration; one can extract their location information, 1714 * spelling, find their definitions, etc. However, the specific kind 1715 * of the declaration is not reported. 1716 */ 1717 CXCursor_UnexposedDecl = 1, 1718 /** A C or C++ struct. */ 1719 CXCursor_StructDecl = 2, 1720 /** A C or C++ union. */ 1721 CXCursor_UnionDecl = 3, 1722 /** A C++ class. */ 1723 CXCursor_ClassDecl = 4, 1724 /** An enumeration. */ 1725 CXCursor_EnumDecl = 5, 1726 /** 1727 * A field (in C) or non-static data member (in C++) in a 1728 * struct, union, or C++ class. 1729 */ 1730 CXCursor_FieldDecl = 6, 1731 /** An enumerator constant. */ 1732 CXCursor_EnumConstantDecl = 7, 1733 /** A function. */ 1734 CXCursor_FunctionDecl = 8, 1735 /** A variable. */ 1736 CXCursor_VarDecl = 9, 1737 /** A function or method parameter. */ 1738 CXCursor_ParmDecl = 10, 1739 /** An Objective-C \@interface. */ 1740 CXCursor_ObjCInterfaceDecl = 11, 1741 /** An Objective-C \@interface for a category. */ 1742 CXCursor_ObjCCategoryDecl = 12, 1743 /** An Objective-C \@protocol declaration. */ 1744 CXCursor_ObjCProtocolDecl = 13, 1745 /** An Objective-C \@property declaration. */ 1746 CXCursor_ObjCPropertyDecl = 14, 1747 /** An Objective-C instance variable. */ 1748 CXCursor_ObjCIvarDecl = 15, 1749 /** An Objective-C instance method. */ 1750 CXCursor_ObjCInstanceMethodDecl = 16, 1751 /** An Objective-C class method. */ 1752 CXCursor_ObjCClassMethodDecl = 17, 1753 /** An Objective-C \@implementation. */ 1754 CXCursor_ObjCImplementationDecl = 18, 1755 /** An Objective-C \@implementation for a category. */ 1756 CXCursor_ObjCCategoryImplDecl = 19, 1757 /** A typedef. */ 1758 CXCursor_TypedefDecl = 20, 1759 /** A C++ class method. */ 1760 CXCursor_CXXMethod = 21, 1761 /** A C++ namespace. */ 1762 CXCursor_Namespace = 22, 1763 /** A linkage specification, e.g. 'extern "C"'. */ 1764 CXCursor_LinkageSpec = 23, 1765 /** A C++ constructor. */ 1766 CXCursor_Constructor = 24, 1767 /** A C++ destructor. */ 1768 CXCursor_Destructor = 25, 1769 /** A C++ conversion function. */ 1770 CXCursor_ConversionFunction = 26, 1771 /** A C++ template type parameter. */ 1772 CXCursor_TemplateTypeParameter = 27, 1773 /** A C++ non-type template parameter. */ 1774 CXCursor_NonTypeTemplateParameter = 28, 1775 /** A C++ template template parameter. */ 1776 CXCursor_TemplateTemplateParameter = 29, 1777 /** A C++ function template. */ 1778 CXCursor_FunctionTemplate = 30, 1779 /** A C++ class template. */ 1780 CXCursor_ClassTemplate = 31, 1781 /** A C++ class template partial specialization. */ 1782 CXCursor_ClassTemplatePartialSpecialization = 32, 1783 /** A C++ namespace alias declaration. */ 1784 CXCursor_NamespaceAlias = 33, 1785 /** A C++ using directive. */ 1786 CXCursor_UsingDirective = 34, 1787 /** A C++ using declaration. */ 1788 CXCursor_UsingDeclaration = 35, 1789 /** A C++ alias declaration */ 1790 CXCursor_TypeAliasDecl = 36, 1791 /** An Objective-C \@synthesize definition. */ 1792 CXCursor_ObjCSynthesizeDecl = 37, 1793 /** An Objective-C \@dynamic definition. */ 1794 CXCursor_ObjCDynamicDecl = 38, 1795 /** An access specifier. */ 1796 CXCursor_CXXAccessSpecifier = 39, 1797 1798 CXCursor_FirstDecl = CXCursor_UnexposedDecl, 1799 CXCursor_LastDecl = CXCursor_CXXAccessSpecifier, 1800 1801 /* References */ 1802 CXCursor_FirstRef = 40, /* Decl references */ 1803 CXCursor_ObjCSuperClassRef = 40, 1804 CXCursor_ObjCProtocolRef = 41, 1805 CXCursor_ObjCClassRef = 42, 1806 /** 1807 * A reference to a type declaration. 1808 * 1809 * A type reference occurs anywhere where a type is named but not 1810 * declared. For example, given: 1811 * 1812 * \code 1813 * typedef unsigned size_type; 1814 * size_type size; 1815 * \endcode 1816 * 1817 * The typedef is a declaration of size_type (CXCursor_TypedefDecl), 1818 * while the type of the variable "size" is referenced. The cursor 1819 * referenced by the type of size is the typedef for size_type. 1820 */ 1821 CXCursor_TypeRef = 43, 1822 CXCursor_CXXBaseSpecifier = 44, 1823 /** 1824 * A reference to a class template, function template, template 1825 * template parameter, or class template partial specialization. 1826 */ 1827 CXCursor_TemplateRef = 45, 1828 /** 1829 * A reference to a namespace or namespace alias. 1830 */ 1831 CXCursor_NamespaceRef = 46, 1832 /** 1833 * A reference to a member of a struct, union, or class that occurs in 1834 * some non-expression context, e.g., a designated initializer. 1835 */ 1836 CXCursor_MemberRef = 47, 1837 /** 1838 * A reference to a labeled statement. 1839 * 1840 * This cursor kind is used to describe the jump to "start_over" in the 1841 * goto statement in the following example: 1842 * 1843 * \code 1844 * start_over: 1845 * ++counter; 1846 * 1847 * goto start_over; 1848 * \endcode 1849 * 1850 * A label reference cursor refers to a label statement. 1851 */ 1852 CXCursor_LabelRef = 48, 1853 1854 /** 1855 * A reference to a set of overloaded functions or function templates 1856 * that has not yet been resolved to a specific function or function template. 1857 * 1858 * An overloaded declaration reference cursor occurs in C++ templates where 1859 * a dependent name refers to a function. For example: 1860 * 1861 * \code 1862 * template<typename T> void swap(T&, T&); 1863 * 1864 * struct X { ... }; 1865 * void swap(X&, X&); 1866 * 1867 * template<typename T> 1868 * void reverse(T* first, T* last) { 1869 * while (first < last - 1) { 1870 * swap(*first, *--last); 1871 * ++first; 1872 * } 1873 * } 1874 * 1875 * struct Y { }; 1876 * void swap(Y&, Y&); 1877 * \endcode 1878 * 1879 * Here, the identifier "swap" is associated with an overloaded declaration 1880 * reference. In the template definition, "swap" refers to either of the two 1881 * "swap" functions declared above, so both results will be available. At 1882 * instantiation time, "swap" may also refer to other functions found via 1883 * argument-dependent lookup (e.g., the "swap" function at the end of the 1884 * example). 1885 * 1886 * The functions \c clang_getNumOverloadedDecls() and 1887 * \c clang_getOverloadedDecl() can be used to retrieve the definitions 1888 * referenced by this cursor. 1889 */ 1890 CXCursor_OverloadedDeclRef = 49, 1891 1892 /** 1893 * A reference to a variable that occurs in some non-expression 1894 * context, e.g., a C++ lambda capture list. 1895 */ 1896 CXCursor_VariableRef = 50, 1897 1898 CXCursor_LastRef = CXCursor_VariableRef, 1899 1900 /* Error conditions */ 1901 CXCursor_FirstInvalid = 70, 1902 CXCursor_InvalidFile = 70, 1903 CXCursor_NoDeclFound = 71, 1904 CXCursor_NotImplemented = 72, 1905 CXCursor_InvalidCode = 73, 1906 CXCursor_LastInvalid = CXCursor_InvalidCode, 1907 1908 /* Expressions */ 1909 CXCursor_FirstExpr = 100, 1910 1911 /** 1912 * An expression whose specific kind is not exposed via this 1913 * interface. 1914 * 1915 * Unexposed expressions have the same operations as any other kind 1916 * of expression; one can extract their location information, 1917 * spelling, children, etc. However, the specific kind of the 1918 * expression is not reported. 1919 */ 1920 CXCursor_UnexposedExpr = 100, 1921 1922 /** 1923 * An expression that refers to some value declaration, such 1924 * as a function, variable, or enumerator. 1925 */ 1926 CXCursor_DeclRefExpr = 101, 1927 1928 /** 1929 * An expression that refers to a member of a struct, union, 1930 * class, Objective-C class, etc. 1931 */ 1932 CXCursor_MemberRefExpr = 102, 1933 1934 /** An expression that calls a function. */ 1935 CXCursor_CallExpr = 103, 1936 1937 /** An expression that sends a message to an Objective-C 1938 object or class. */ 1939 CXCursor_ObjCMessageExpr = 104, 1940 1941 /** An expression that represents a block literal. */ 1942 CXCursor_BlockExpr = 105, 1943 1944 /** An integer literal. 1945 */ 1946 CXCursor_IntegerLiteral = 106, 1947 1948 /** A floating point number literal. 1949 */ 1950 CXCursor_FloatingLiteral = 107, 1951 1952 /** An imaginary number literal. 1953 */ 1954 CXCursor_ImaginaryLiteral = 108, 1955 1956 /** A string literal. 1957 */ 1958 CXCursor_StringLiteral = 109, 1959 1960 /** A character literal. 1961 */ 1962 CXCursor_CharacterLiteral = 110, 1963 1964 /** A parenthesized expression, e.g. "(1)". 1965 * 1966 * This AST node is only formed if full location information is requested. 1967 */ 1968 CXCursor_ParenExpr = 111, 1969 1970 /** This represents the unary-expression's (except sizeof and 1971 * alignof). 1972 */ 1973 CXCursor_UnaryOperator = 112, 1974 1975 /** [C99 6.5.2.1] Array Subscripting. 1976 */ 1977 CXCursor_ArraySubscriptExpr = 113, 1978 1979 /** A builtin binary operation expression such as "x + y" or 1980 * "x <= y". 1981 */ 1982 CXCursor_BinaryOperator = 114, 1983 1984 /** Compound assignment such as "+=". 1985 */ 1986 CXCursor_CompoundAssignOperator = 115, 1987 1988 /** The ?: ternary operator. 1989 */ 1990 CXCursor_ConditionalOperator = 116, 1991 1992 /** An explicit cast in C (C99 6.5.4) or a C-style cast in C++ 1993 * (C++ [expr.cast]), which uses the syntax (Type)expr. 1994 * 1995 * For example: (int)f. 1996 */ 1997 CXCursor_CStyleCastExpr = 117, 1998 1999 /** [C99 6.5.2.5] 2000 */ 2001 CXCursor_CompoundLiteralExpr = 118, 2002 2003 /** Describes an C or C++ initializer list. 2004 */ 2005 CXCursor_InitListExpr = 119, 2006 2007 /** The GNU address of label extension, representing &&label. 2008 */ 2009 CXCursor_AddrLabelExpr = 120, 2010 2011 /** This is the GNU Statement Expression extension: ({int X=4; X;}) 2012 */ 2013 CXCursor_StmtExpr = 121, 2014 2015 /** Represents a C11 generic selection. 2016 */ 2017 CXCursor_GenericSelectionExpr = 122, 2018 2019 /** Implements the GNU __null extension, which is a name for a null 2020 * pointer constant that has integral type (e.g., int or long) and is the same 2021 * size and alignment as a pointer. 2022 * 2023 * The __null extension is typically only used by system headers, which define 2024 * NULL as __null in C++ rather than using 0 (which is an integer that may not 2025 * match the size of a pointer). 2026 */ 2027 CXCursor_GNUNullExpr = 123, 2028 2029 /** C++'s static_cast<> expression. 2030 */ 2031 CXCursor_CXXStaticCastExpr = 124, 2032 2033 /** C++'s dynamic_cast<> expression. 2034 */ 2035 CXCursor_CXXDynamicCastExpr = 125, 2036 2037 /** C++'s reinterpret_cast<> expression. 2038 */ 2039 CXCursor_CXXReinterpretCastExpr = 126, 2040 2041 /** C++'s const_cast<> expression. 2042 */ 2043 CXCursor_CXXConstCastExpr = 127, 2044 2045 /** Represents an explicit C++ type conversion that uses "functional" 2046 * notion (C++ [expr.type.conv]). 2047 * 2048 * Example: 2049 * \code 2050 * x = int(0.5); 2051 * \endcode 2052 */ 2053 CXCursor_CXXFunctionalCastExpr = 128, 2054 2055 /** OpenCL's addrspace_cast<> expression. 2056 */ 2057 CXCursor_CXXAddrspaceCastExpr = 129, 2058 2059 /** A C++ typeid expression (C++ [expr.typeid]). 2060 */ 2061 CXCursor_CXXTypeidExpr = 130, 2062 2063 /** [C++ 2.13.5] C++ Boolean Literal. 2064 */ 2065 CXCursor_CXXBoolLiteralExpr = 131, 2066 2067 /** [C++0x 2.14.7] C++ Pointer Literal. 2068 */ 2069 CXCursor_CXXNullPtrLiteralExpr = 132, 2070 2071 /** Represents the "this" expression in C++ 2072 */ 2073 CXCursor_CXXThisExpr = 133, 2074 2075 /** [C++ 15] C++ Throw Expression. 2076 * 2077 * This handles 'throw' and 'throw' assignment-expression. When 2078 * assignment-expression isn't present, Op will be null. 2079 */ 2080 CXCursor_CXXThrowExpr = 134, 2081 2082 /** A new expression for memory allocation and constructor calls, e.g: 2083 * "new CXXNewExpr(foo)". 2084 */ 2085 CXCursor_CXXNewExpr = 135, 2086 2087 /** A delete expression for memory deallocation and destructor calls, 2088 * e.g. "delete[] pArray". 2089 */ 2090 CXCursor_CXXDeleteExpr = 136, 2091 2092 /** A unary expression. (noexcept, sizeof, or other traits) 2093 */ 2094 CXCursor_UnaryExpr = 137, 2095 2096 /** An Objective-C string literal i.e. @"foo". 2097 */ 2098 CXCursor_ObjCStringLiteral = 138, 2099 2100 /** An Objective-C \@encode expression. 2101 */ 2102 CXCursor_ObjCEncodeExpr = 139, 2103 2104 /** An Objective-C \@selector expression. 2105 */ 2106 CXCursor_ObjCSelectorExpr = 140, 2107 2108 /** An Objective-C \@protocol expression. 2109 */ 2110 CXCursor_ObjCProtocolExpr = 141, 2111 2112 /** An Objective-C "bridged" cast expression, which casts between 2113 * Objective-C pointers and C pointers, transferring ownership in the process. 2114 * 2115 * \code 2116 * NSString *str = (__bridge_transfer NSString *)CFCreateString(); 2117 * \endcode 2118 */ 2119 CXCursor_ObjCBridgedCastExpr = 142, 2120 2121 /** Represents a C++0x pack expansion that produces a sequence of 2122 * expressions. 2123 * 2124 * A pack expansion expression contains a pattern (which itself is an 2125 * expression) followed by an ellipsis. For example: 2126 * 2127 * \code 2128 * template<typename F, typename ...Types> 2129 * void forward(F f, Types &&...args) { 2130 * f(static_cast<Types&&>(args)...); 2131 * } 2132 * \endcode 2133 */ 2134 CXCursor_PackExpansionExpr = 143, 2135 2136 /** Represents an expression that computes the length of a parameter 2137 * pack. 2138 * 2139 * \code 2140 * template<typename ...Types> 2141 * struct count { 2142 * static const unsigned value = sizeof...(Types); 2143 * }; 2144 * \endcode 2145 */ 2146 CXCursor_SizeOfPackExpr = 144, 2147 2148 /* Represents a C++ lambda expression that produces a local function 2149 * object. 2150 * 2151 * \code 2152 * void abssort(float *x, unsigned N) { 2153 * std::sort(x, x + N, 2154 * [](float a, float b) { 2155 * return std::abs(a) < std::abs(b); 2156 * }); 2157 * } 2158 * \endcode 2159 */ 2160 CXCursor_LambdaExpr = 145, 2161 2162 /** Objective-c Boolean Literal. 2163 */ 2164 CXCursor_ObjCBoolLiteralExpr = 146, 2165 2166 /** Represents the "self" expression in an Objective-C method. 2167 */ 2168 CXCursor_ObjCSelfExpr = 147, 2169 2170 /** OpenMP 5.0 [2.1.5, Array Section]. 2171 */ 2172 CXCursor_OMPArraySectionExpr = 148, 2173 2174 /** Represents an @available(...) check. 2175 */ 2176 CXCursor_ObjCAvailabilityCheckExpr = 149, 2177 2178 /** 2179 * Fixed point literal 2180 */ 2181 CXCursor_FixedPointLiteral = 150, 2182 2183 /** OpenMP 5.0 [2.1.4, Array Shaping]. 2184 */ 2185 CXCursor_OMPArrayShapingExpr = 151, 2186 2187 /** 2188 * OpenMP 5.0 [2.1.6 Iterators] 2189 */ 2190 CXCursor_OMPIteratorExpr = 152, 2191 2192 CXCursor_LastExpr = CXCursor_OMPIteratorExpr, 2193 2194 /* Statements */ 2195 CXCursor_FirstStmt = 200, 2196 /** 2197 * A statement whose specific kind is not exposed via this 2198 * interface. 2199 * 2200 * Unexposed statements have the same operations as any other kind of 2201 * statement; one can extract their location information, spelling, 2202 * children, etc. However, the specific kind of the statement is not 2203 * reported. 2204 */ 2205 CXCursor_UnexposedStmt = 200, 2206 2207 /** A labelled statement in a function. 2208 * 2209 * This cursor kind is used to describe the "start_over:" label statement in 2210 * the following example: 2211 * 2212 * \code 2213 * start_over: 2214 * ++counter; 2215 * \endcode 2216 * 2217 */ 2218 CXCursor_LabelStmt = 201, 2219 2220 /** A group of statements like { stmt stmt }. 2221 * 2222 * This cursor kind is used to describe compound statements, e.g. function 2223 * bodies. 2224 */ 2225 CXCursor_CompoundStmt = 202, 2226 2227 /** A case statement. 2228 */ 2229 CXCursor_CaseStmt = 203, 2230 2231 /** A default statement. 2232 */ 2233 CXCursor_DefaultStmt = 204, 2234 2235 /** An if statement 2236 */ 2237 CXCursor_IfStmt = 205, 2238 2239 /** A switch statement. 2240 */ 2241 CXCursor_SwitchStmt = 206, 2242 2243 /** A while statement. 2244 */ 2245 CXCursor_WhileStmt = 207, 2246 2247 /** A do statement. 2248 */ 2249 CXCursor_DoStmt = 208, 2250 2251 /** A for statement. 2252 */ 2253 CXCursor_ForStmt = 209, 2254 2255 /** A goto statement. 2256 */ 2257 CXCursor_GotoStmt = 210, 2258 2259 /** An indirect goto statement. 2260 */ 2261 CXCursor_IndirectGotoStmt = 211, 2262 2263 /** A continue statement. 2264 */ 2265 CXCursor_ContinueStmt = 212, 2266 2267 /** A break statement. 2268 */ 2269 CXCursor_BreakStmt = 213, 2270 2271 /** A return statement. 2272 */ 2273 CXCursor_ReturnStmt = 214, 2274 2275 /** A GCC inline assembly statement extension. 2276 */ 2277 CXCursor_GCCAsmStmt = 215, 2278 CXCursor_AsmStmt = CXCursor_GCCAsmStmt, 2279 2280 /** Objective-C's overall \@try-\@catch-\@finally statement. 2281 */ 2282 CXCursor_ObjCAtTryStmt = 216, 2283 2284 /** Objective-C's \@catch statement. 2285 */ 2286 CXCursor_ObjCAtCatchStmt = 217, 2287 2288 /** Objective-C's \@finally statement. 2289 */ 2290 CXCursor_ObjCAtFinallyStmt = 218, 2291 2292 /** Objective-C's \@throw statement. 2293 */ 2294 CXCursor_ObjCAtThrowStmt = 219, 2295 2296 /** Objective-C's \@synchronized statement. 2297 */ 2298 CXCursor_ObjCAtSynchronizedStmt = 220, 2299 2300 /** Objective-C's autorelease pool statement. 2301 */ 2302 CXCursor_ObjCAutoreleasePoolStmt = 221, 2303 2304 /** Objective-C's collection statement. 2305 */ 2306 CXCursor_ObjCForCollectionStmt = 222, 2307 2308 /** C++'s catch statement. 2309 */ 2310 CXCursor_CXXCatchStmt = 223, 2311 2312 /** C++'s try statement. 2313 */ 2314 CXCursor_CXXTryStmt = 224, 2315 2316 /** C++'s for (* : *) statement. 2317 */ 2318 CXCursor_CXXForRangeStmt = 225, 2319 2320 /** Windows Structured Exception Handling's try statement. 2321 */ 2322 CXCursor_SEHTryStmt = 226, 2323 2324 /** Windows Structured Exception Handling's except statement. 2325 */ 2326 CXCursor_SEHExceptStmt = 227, 2327 2328 /** Windows Structured Exception Handling's finally statement. 2329 */ 2330 CXCursor_SEHFinallyStmt = 228, 2331 2332 /** A MS inline assembly statement extension. 2333 */ 2334 CXCursor_MSAsmStmt = 229, 2335 2336 /** The null statement ";": C99 6.8.3p3. 2337 * 2338 * This cursor kind is used to describe the null statement. 2339 */ 2340 CXCursor_NullStmt = 230, 2341 2342 /** Adaptor class for mixing declarations with statements and 2343 * expressions. 2344 */ 2345 CXCursor_DeclStmt = 231, 2346 2347 /** OpenMP parallel directive. 2348 */ 2349 CXCursor_OMPParallelDirective = 232, 2350 2351 /** OpenMP SIMD directive. 2352 */ 2353 CXCursor_OMPSimdDirective = 233, 2354 2355 /** OpenMP for directive. 2356 */ 2357 CXCursor_OMPForDirective = 234, 2358 2359 /** OpenMP sections directive. 2360 */ 2361 CXCursor_OMPSectionsDirective = 235, 2362 2363 /** OpenMP section directive. 2364 */ 2365 CXCursor_OMPSectionDirective = 236, 2366 2367 /** OpenMP single directive. 2368 */ 2369 CXCursor_OMPSingleDirective = 237, 2370 2371 /** OpenMP parallel for directive. 2372 */ 2373 CXCursor_OMPParallelForDirective = 238, 2374 2375 /** OpenMP parallel sections directive. 2376 */ 2377 CXCursor_OMPParallelSectionsDirective = 239, 2378 2379 /** OpenMP task directive. 2380 */ 2381 CXCursor_OMPTaskDirective = 240, 2382 2383 /** OpenMP master directive. 2384 */ 2385 CXCursor_OMPMasterDirective = 241, 2386 2387 /** OpenMP critical directive. 2388 */ 2389 CXCursor_OMPCriticalDirective = 242, 2390 2391 /** OpenMP taskyield directive. 2392 */ 2393 CXCursor_OMPTaskyieldDirective = 243, 2394 2395 /** OpenMP barrier directive. 2396 */ 2397 CXCursor_OMPBarrierDirective = 244, 2398 2399 /** OpenMP taskwait directive. 2400 */ 2401 CXCursor_OMPTaskwaitDirective = 245, 2402 2403 /** OpenMP flush directive. 2404 */ 2405 CXCursor_OMPFlushDirective = 246, 2406 2407 /** Windows Structured Exception Handling's leave statement. 2408 */ 2409 CXCursor_SEHLeaveStmt = 247, 2410 2411 /** OpenMP ordered directive. 2412 */ 2413 CXCursor_OMPOrderedDirective = 248, 2414 2415 /** OpenMP atomic directive. 2416 */ 2417 CXCursor_OMPAtomicDirective = 249, 2418 2419 /** OpenMP for SIMD directive. 2420 */ 2421 CXCursor_OMPForSimdDirective = 250, 2422 2423 /** OpenMP parallel for SIMD directive. 2424 */ 2425 CXCursor_OMPParallelForSimdDirective = 251, 2426 2427 /** OpenMP target directive. 2428 */ 2429 CXCursor_OMPTargetDirective = 252, 2430 2431 /** OpenMP teams directive. 2432 */ 2433 CXCursor_OMPTeamsDirective = 253, 2434 2435 /** OpenMP taskgroup directive. 2436 */ 2437 CXCursor_OMPTaskgroupDirective = 254, 2438 2439 /** OpenMP cancellation point directive. 2440 */ 2441 CXCursor_OMPCancellationPointDirective = 255, 2442 2443 /** OpenMP cancel directive. 2444 */ 2445 CXCursor_OMPCancelDirective = 256, 2446 2447 /** OpenMP target data directive. 2448 */ 2449 CXCursor_OMPTargetDataDirective = 257, 2450 2451 /** OpenMP taskloop directive. 2452 */ 2453 CXCursor_OMPTaskLoopDirective = 258, 2454 2455 /** OpenMP taskloop simd directive. 2456 */ 2457 CXCursor_OMPTaskLoopSimdDirective = 259, 2458 2459 /** OpenMP distribute directive. 2460 */ 2461 CXCursor_OMPDistributeDirective = 260, 2462 2463 /** OpenMP target enter data directive. 2464 */ 2465 CXCursor_OMPTargetEnterDataDirective = 261, 2466 2467 /** OpenMP target exit data directive. 2468 */ 2469 CXCursor_OMPTargetExitDataDirective = 262, 2470 2471 /** OpenMP target parallel directive. 2472 */ 2473 CXCursor_OMPTargetParallelDirective = 263, 2474 2475 /** OpenMP target parallel for directive. 2476 */ 2477 CXCursor_OMPTargetParallelForDirective = 264, 2478 2479 /** OpenMP target update directive. 2480 */ 2481 CXCursor_OMPTargetUpdateDirective = 265, 2482 2483 /** OpenMP distribute parallel for directive. 2484 */ 2485 CXCursor_OMPDistributeParallelForDirective = 266, 2486 2487 /** OpenMP distribute parallel for simd directive. 2488 */ 2489 CXCursor_OMPDistributeParallelForSimdDirective = 267, 2490 2491 /** OpenMP distribute simd directive. 2492 */ 2493 CXCursor_OMPDistributeSimdDirective = 268, 2494 2495 /** OpenMP target parallel for simd directive. 2496 */ 2497 CXCursor_OMPTargetParallelForSimdDirective = 269, 2498 2499 /** OpenMP target simd directive. 2500 */ 2501 CXCursor_OMPTargetSimdDirective = 270, 2502 2503 /** OpenMP teams distribute directive. 2504 */ 2505 CXCursor_OMPTeamsDistributeDirective = 271, 2506 2507 /** OpenMP teams distribute simd directive. 2508 */ 2509 CXCursor_OMPTeamsDistributeSimdDirective = 272, 2510 2511 /** OpenMP teams distribute parallel for simd directive. 2512 */ 2513 CXCursor_OMPTeamsDistributeParallelForSimdDirective = 273, 2514 2515 /** OpenMP teams distribute parallel for directive. 2516 */ 2517 CXCursor_OMPTeamsDistributeParallelForDirective = 274, 2518 2519 /** OpenMP target teams directive. 2520 */ 2521 CXCursor_OMPTargetTeamsDirective = 275, 2522 2523 /** OpenMP target teams distribute directive. 2524 */ 2525 CXCursor_OMPTargetTeamsDistributeDirective = 276, 2526 2527 /** OpenMP target teams distribute parallel for directive. 2528 */ 2529 CXCursor_OMPTargetTeamsDistributeParallelForDirective = 277, 2530 2531 /** OpenMP target teams distribute parallel for simd directive. 2532 */ 2533 CXCursor_OMPTargetTeamsDistributeParallelForSimdDirective = 278, 2534 2535 /** OpenMP target teams distribute simd directive. 2536 */ 2537 CXCursor_OMPTargetTeamsDistributeSimdDirective = 279, 2538 2539 /** C++2a std::bit_cast expression. 2540 */ 2541 CXCursor_BuiltinBitCastExpr = 280, 2542 2543 /** OpenMP master taskloop directive. 2544 */ 2545 CXCursor_OMPMasterTaskLoopDirective = 281, 2546 2547 /** OpenMP parallel master taskloop directive. 2548 */ 2549 CXCursor_OMPParallelMasterTaskLoopDirective = 282, 2550 2551 /** OpenMP master taskloop simd directive. 2552 */ 2553 CXCursor_OMPMasterTaskLoopSimdDirective = 283, 2554 2555 /** OpenMP parallel master taskloop simd directive. 2556 */ 2557 CXCursor_OMPParallelMasterTaskLoopSimdDirective = 284, 2558 2559 /** OpenMP parallel master directive. 2560 */ 2561 CXCursor_OMPParallelMasterDirective = 285, 2562 2563 /** OpenMP depobj directive. 2564 */ 2565 CXCursor_OMPDepobjDirective = 286, 2566 2567 /** OpenMP scan directive. 2568 */ 2569 CXCursor_OMPScanDirective = 287, 2570 2571 CXCursor_LastStmt = CXCursor_OMPScanDirective, 2572 2573 /** 2574 * Cursor that represents the translation unit itself. 2575 * 2576 * The translation unit cursor exists primarily to act as the root 2577 * cursor for traversing the contents of a translation unit. 2578 */ 2579 CXCursor_TranslationUnit = 300, 2580 2581 /* Attributes */ 2582 CXCursor_FirstAttr = 400, 2583 /** 2584 * An attribute whose specific kind is not exposed via this 2585 * interface. 2586 */ 2587 CXCursor_UnexposedAttr = 400, 2588 2589 CXCursor_IBActionAttr = 401, 2590 CXCursor_IBOutletAttr = 402, 2591 CXCursor_IBOutletCollectionAttr = 403, 2592 CXCursor_CXXFinalAttr = 404, 2593 CXCursor_CXXOverrideAttr = 405, 2594 CXCursor_AnnotateAttr = 406, 2595 CXCursor_AsmLabelAttr = 407, 2596 CXCursor_PackedAttr = 408, 2597 CXCursor_PureAttr = 409, 2598 CXCursor_ConstAttr = 410, 2599 CXCursor_NoDuplicateAttr = 411, 2600 CXCursor_CUDAConstantAttr = 412, 2601 CXCursor_CUDADeviceAttr = 413, 2602 CXCursor_CUDAGlobalAttr = 414, 2603 CXCursor_CUDAHostAttr = 415, 2604 CXCursor_CUDASharedAttr = 416, 2605 CXCursor_VisibilityAttr = 417, 2606 CXCursor_DLLExport = 418, 2607 CXCursor_DLLImport = 419, 2608 CXCursor_NSReturnsRetained = 420, 2609 CXCursor_NSReturnsNotRetained = 421, 2610 CXCursor_NSReturnsAutoreleased = 422, 2611 CXCursor_NSConsumesSelf = 423, 2612 CXCursor_NSConsumed = 424, 2613 CXCursor_ObjCException = 425, 2614 CXCursor_ObjCNSObject = 426, 2615 CXCursor_ObjCIndependentClass = 427, 2616 CXCursor_ObjCPreciseLifetime = 428, 2617 CXCursor_ObjCReturnsInnerPointer = 429, 2618 CXCursor_ObjCRequiresSuper = 430, 2619 CXCursor_ObjCRootClass = 431, 2620 CXCursor_ObjCSubclassingRestricted = 432, 2621 CXCursor_ObjCExplicitProtocolImpl = 433, 2622 CXCursor_ObjCDesignatedInitializer = 434, 2623 CXCursor_ObjCRuntimeVisible = 435, 2624 CXCursor_ObjCBoxable = 436, 2625 CXCursor_FlagEnum = 437, 2626 CXCursor_ConvergentAttr = 438, 2627 CXCursor_WarnUnusedAttr = 439, 2628 CXCursor_WarnUnusedResultAttr = 440, 2629 CXCursor_AlignedAttr = 441, 2630 CXCursor_LastAttr = CXCursor_AlignedAttr, 2631 2632 /* Preprocessing */ 2633 CXCursor_PreprocessingDirective = 500, 2634 CXCursor_MacroDefinition = 501, 2635 CXCursor_MacroExpansion = 502, 2636 CXCursor_MacroInstantiation = CXCursor_MacroExpansion, 2637 CXCursor_InclusionDirective = 503, 2638 CXCursor_FirstPreprocessing = CXCursor_PreprocessingDirective, 2639 CXCursor_LastPreprocessing = CXCursor_InclusionDirective, 2640 2641 /* Extra Declarations */ 2642 /** 2643 * A module import declaration. 2644 */ 2645 CXCursor_ModuleImportDecl = 600, 2646 CXCursor_TypeAliasTemplateDecl = 601, 2647 /** 2648 * A static_assert or _Static_assert node 2649 */ 2650 CXCursor_StaticAssert = 602, 2651 /** 2652 * a friend declaration. 2653 */ 2654 CXCursor_FriendDecl = 603, 2655 CXCursor_FirstExtraDecl = CXCursor_ModuleImportDecl, 2656 CXCursor_LastExtraDecl = CXCursor_FriendDecl, 2657 2658 /** 2659 * A code completion overload candidate. 2660 */ 2661 CXCursor_OverloadCandidate = 700 2662 }; 2663 2664 /** 2665 * A cursor representing some element in the abstract syntax tree for 2666 * a translation unit. 2667 * 2668 * The cursor abstraction unifies the different kinds of entities in a 2669 * program--declaration, statements, expressions, references to declarations, 2670 * etc.--under a single "cursor" abstraction with a common set of operations. 2671 * Common operation for a cursor include: getting the physical location in 2672 * a source file where the cursor points, getting the name associated with a 2673 * cursor, and retrieving cursors for any child nodes of a particular cursor. 2674 * 2675 * Cursors can be produced in two specific ways. 2676 * clang_getTranslationUnitCursor() produces a cursor for a translation unit, 2677 * from which one can use clang_visitChildren() to explore the rest of the 2678 * translation unit. clang_getCursor() maps from a physical source location 2679 * to the entity that resides at that location, allowing one to map from the 2680 * source code into the AST. 2681 */ 2682 typedef struct { 2683 enum CXCursorKind kind; 2684 int xdata; 2685 const void *data[3]; 2686 } CXCursor; 2687 2688 /** 2689 * \defgroup CINDEX_CURSOR_MANIP Cursor manipulations 2690 * 2691 * @{ 2692 */ 2693 2694 /** 2695 * Retrieve the NULL cursor, which represents no entity. 2696 */ 2697 CINDEX_LINKAGE CXCursor clang_getNullCursor(void); 2698 2699 /** 2700 * Retrieve the cursor that represents the given translation unit. 2701 * 2702 * The translation unit cursor can be used to start traversing the 2703 * various declarations within the given translation unit. 2704 */ 2705 CINDEX_LINKAGE CXCursor clang_getTranslationUnitCursor(CXTranslationUnit); 2706 2707 /** 2708 * Determine whether two cursors are equivalent. 2709 */ 2710 CINDEX_LINKAGE unsigned clang_equalCursors(CXCursor, CXCursor); 2711 2712 /** 2713 * Returns non-zero if \p cursor is null. 2714 */ 2715 CINDEX_LINKAGE int clang_Cursor_isNull(CXCursor cursor); 2716 2717 /** 2718 * Compute a hash value for the given cursor. 2719 */ 2720 CINDEX_LINKAGE unsigned clang_hashCursor(CXCursor); 2721 2722 /** 2723 * Retrieve the kind of the given cursor. 2724 */ 2725 CINDEX_LINKAGE enum CXCursorKind clang_getCursorKind(CXCursor); 2726 2727 /** 2728 * Determine whether the given cursor kind represents a declaration. 2729 */ 2730 CINDEX_LINKAGE unsigned clang_isDeclaration(enum CXCursorKind); 2731 2732 /** 2733 * Determine whether the given declaration is invalid. 2734 * 2735 * A declaration is invalid if it could not be parsed successfully. 2736 * 2737 * \returns non-zero if the cursor represents a declaration and it is 2738 * invalid, otherwise NULL. 2739 */ 2740 CINDEX_LINKAGE unsigned clang_isInvalidDeclaration(CXCursor); 2741 2742 /** 2743 * Determine whether the given cursor kind represents a simple 2744 * reference. 2745 * 2746 * Note that other kinds of cursors (such as expressions) can also refer to 2747 * other cursors. Use clang_getCursorReferenced() to determine whether a 2748 * particular cursor refers to another entity. 2749 */ 2750 CINDEX_LINKAGE unsigned clang_isReference(enum CXCursorKind); 2751 2752 /** 2753 * Determine whether the given cursor kind represents an expression. 2754 */ 2755 CINDEX_LINKAGE unsigned clang_isExpression(enum CXCursorKind); 2756 2757 /** 2758 * Determine whether the given cursor kind represents a statement. 2759 */ 2760 CINDEX_LINKAGE unsigned clang_isStatement(enum CXCursorKind); 2761 2762 /** 2763 * Determine whether the given cursor kind represents an attribute. 2764 */ 2765 CINDEX_LINKAGE unsigned clang_isAttribute(enum CXCursorKind); 2766 2767 /** 2768 * Determine whether the given cursor has any attributes. 2769 */ 2770 CINDEX_LINKAGE unsigned clang_Cursor_hasAttrs(CXCursor C); 2771 2772 /** 2773 * Determine whether the given cursor kind represents an invalid 2774 * cursor. 2775 */ 2776 CINDEX_LINKAGE unsigned clang_isInvalid(enum CXCursorKind); 2777 2778 /** 2779 * Determine whether the given cursor kind represents a translation 2780 * unit. 2781 */ 2782 CINDEX_LINKAGE unsigned clang_isTranslationUnit(enum CXCursorKind); 2783 2784 /*** 2785 * Determine whether the given cursor represents a preprocessing 2786 * element, such as a preprocessor directive or macro instantiation. 2787 */ 2788 CINDEX_LINKAGE unsigned clang_isPreprocessing(enum CXCursorKind); 2789 2790 /*** 2791 * Determine whether the given cursor represents a currently 2792 * unexposed piece of the AST (e.g., CXCursor_UnexposedStmt). 2793 */ 2794 CINDEX_LINKAGE unsigned clang_isUnexposed(enum CXCursorKind); 2795 2796 /** 2797 * Describe the linkage of the entity referred to by a cursor. 2798 */ 2799 enum CXLinkageKind { 2800 /** This value indicates that no linkage information is available 2801 * for a provided CXCursor. */ 2802 CXLinkage_Invalid, 2803 /** 2804 * This is the linkage for variables, parameters, and so on that 2805 * have automatic storage. This covers normal (non-extern) local variables. 2806 */ 2807 CXLinkage_NoLinkage, 2808 /** This is the linkage for static variables and static functions. */ 2809 CXLinkage_Internal, 2810 /** This is the linkage for entities with external linkage that live 2811 * in C++ anonymous namespaces.*/ 2812 CXLinkage_UniqueExternal, 2813 /** This is the linkage for entities with true, external linkage. */ 2814 CXLinkage_External 2815 }; 2816 2817 /** 2818 * Determine the linkage of the entity referred to by a given cursor. 2819 */ 2820 CINDEX_LINKAGE enum CXLinkageKind clang_getCursorLinkage(CXCursor cursor); 2821 2822 enum CXVisibilityKind { 2823 /** This value indicates that no visibility information is available 2824 * for a provided CXCursor. */ 2825 CXVisibility_Invalid, 2826 2827 /** Symbol not seen by the linker. */ 2828 CXVisibility_Hidden, 2829 /** Symbol seen by the linker but resolves to a symbol inside this object. */ 2830 CXVisibility_Protected, 2831 /** Symbol seen by the linker and acts like a normal symbol. */ 2832 CXVisibility_Default 2833 }; 2834 2835 /** 2836 * Describe the visibility of the entity referred to by a cursor. 2837 * 2838 * This returns the default visibility if not explicitly specified by 2839 * a visibility attribute. The default visibility may be changed by 2840 * commandline arguments. 2841 * 2842 * \param cursor The cursor to query. 2843 * 2844 * \returns The visibility of the cursor. 2845 */ 2846 CINDEX_LINKAGE enum CXVisibilityKind clang_getCursorVisibility(CXCursor cursor); 2847 2848 /** 2849 * Determine the availability of the entity that this cursor refers to, 2850 * taking the current target platform into account. 2851 * 2852 * \param cursor The cursor to query. 2853 * 2854 * \returns The availability of the cursor. 2855 */ 2856 CINDEX_LINKAGE enum CXAvailabilityKind 2857 clang_getCursorAvailability(CXCursor cursor); 2858 2859 /** 2860 * Describes the availability of a given entity on a particular platform, e.g., 2861 * a particular class might only be available on Mac OS 10.7 or newer. 2862 */ 2863 typedef struct CXPlatformAvailability { 2864 /** 2865 * A string that describes the platform for which this structure 2866 * provides availability information. 2867 * 2868 * Possible values are "ios" or "macos". 2869 */ 2870 CXString Platform; 2871 /** 2872 * The version number in which this entity was introduced. 2873 */ 2874 CXVersion Introduced; 2875 /** 2876 * The version number in which this entity was deprecated (but is 2877 * still available). 2878 */ 2879 CXVersion Deprecated; 2880 /** 2881 * The version number in which this entity was obsoleted, and therefore 2882 * is no longer available. 2883 */ 2884 CXVersion Obsoleted; 2885 /** 2886 * Whether the entity is unconditionally unavailable on this platform. 2887 */ 2888 int Unavailable; 2889 /** 2890 * An optional message to provide to a user of this API, e.g., to 2891 * suggest replacement APIs. 2892 */ 2893 CXString Message; 2894 } CXPlatformAvailability; 2895 2896 /** 2897 * Determine the availability of the entity that this cursor refers to 2898 * on any platforms for which availability information is known. 2899 * 2900 * \param cursor The cursor to query. 2901 * 2902 * \param always_deprecated If non-NULL, will be set to indicate whether the 2903 * entity is deprecated on all platforms. 2904 * 2905 * \param deprecated_message If non-NULL, will be set to the message text 2906 * provided along with the unconditional deprecation of this entity. The client 2907 * is responsible for deallocating this string. 2908 * 2909 * \param always_unavailable If non-NULL, will be set to indicate whether the 2910 * entity is unavailable on all platforms. 2911 * 2912 * \param unavailable_message If non-NULL, will be set to the message text 2913 * provided along with the unconditional unavailability of this entity. The 2914 * client is responsible for deallocating this string. 2915 * 2916 * \param availability If non-NULL, an array of CXPlatformAvailability instances 2917 * that will be populated with platform availability information, up to either 2918 * the number of platforms for which availability information is available (as 2919 * returned by this function) or \c availability_size, whichever is smaller. 2920 * 2921 * \param availability_size The number of elements available in the 2922 * \c availability array. 2923 * 2924 * \returns The number of platforms (N) for which availability information is 2925 * available (which is unrelated to \c availability_size). 2926 * 2927 * Note that the client is responsible for calling 2928 * \c clang_disposeCXPlatformAvailability to free each of the 2929 * platform-availability structures returned. There are 2930 * \c min(N, availability_size) such structures. 2931 */ 2932 CINDEX_LINKAGE int clang_getCursorPlatformAvailability( 2933 CXCursor cursor, int *always_deprecated, CXString *deprecated_message, 2934 int *always_unavailable, CXString *unavailable_message, 2935 CXPlatformAvailability *availability, int availability_size); 2936 2937 /** 2938 * Free the memory associated with a \c CXPlatformAvailability structure. 2939 */ 2940 CINDEX_LINKAGE void 2941 clang_disposeCXPlatformAvailability(CXPlatformAvailability *availability); 2942 2943 /** 2944 * Describe the "language" of the entity referred to by a cursor. 2945 */ 2946 enum CXLanguageKind { 2947 CXLanguage_Invalid = 0, 2948 CXLanguage_C, 2949 CXLanguage_ObjC, 2950 CXLanguage_CPlusPlus 2951 }; 2952 2953 /** 2954 * Determine the "language" of the entity referred to by a given cursor. 2955 */ 2956 CINDEX_LINKAGE enum CXLanguageKind clang_getCursorLanguage(CXCursor cursor); 2957 2958 /** 2959 * Describe the "thread-local storage (TLS) kind" of the declaration 2960 * referred to by a cursor. 2961 */ 2962 enum CXTLSKind { CXTLS_None = 0, CXTLS_Dynamic, CXTLS_Static }; 2963 2964 /** 2965 * Determine the "thread-local storage (TLS) kind" of the declaration 2966 * referred to by a cursor. 2967 */ 2968 CINDEX_LINKAGE enum CXTLSKind clang_getCursorTLSKind(CXCursor cursor); 2969 2970 /** 2971 * Returns the translation unit that a cursor originated from. 2972 */ 2973 CINDEX_LINKAGE CXTranslationUnit clang_Cursor_getTranslationUnit(CXCursor); 2974 2975 /** 2976 * A fast container representing a set of CXCursors. 2977 */ 2978 typedef struct CXCursorSetImpl *CXCursorSet; 2979 2980 /** 2981 * Creates an empty CXCursorSet. 2982 */ 2983 CINDEX_LINKAGE CXCursorSet clang_createCXCursorSet(void); 2984 2985 /** 2986 * Disposes a CXCursorSet and releases its associated memory. 2987 */ 2988 CINDEX_LINKAGE void clang_disposeCXCursorSet(CXCursorSet cset); 2989 2990 /** 2991 * Queries a CXCursorSet to see if it contains a specific CXCursor. 2992 * 2993 * \returns non-zero if the set contains the specified cursor. 2994 */ 2995 CINDEX_LINKAGE unsigned clang_CXCursorSet_contains(CXCursorSet cset, 2996 CXCursor cursor); 2997 2998 /** 2999 * Inserts a CXCursor into a CXCursorSet. 3000 * 3001 * \returns zero if the CXCursor was already in the set, and non-zero otherwise. 3002 */ 3003 CINDEX_LINKAGE unsigned clang_CXCursorSet_insert(CXCursorSet cset, 3004 CXCursor cursor); 3005 3006 /** 3007 * Determine the semantic parent of the given cursor. 3008 * 3009 * The semantic parent of a cursor is the cursor that semantically contains 3010 * the given \p cursor. For many declarations, the lexical and semantic parents 3011 * are equivalent (the lexical parent is returned by 3012 * \c clang_getCursorLexicalParent()). They diverge when declarations or 3013 * definitions are provided out-of-line. For example: 3014 * 3015 * \code 3016 * class C { 3017 * void f(); 3018 * }; 3019 * 3020 * void C::f() { } 3021 * \endcode 3022 * 3023 * In the out-of-line definition of \c C::f, the semantic parent is 3024 * the class \c C, of which this function is a member. The lexical parent is 3025 * the place where the declaration actually occurs in the source code; in this 3026 * case, the definition occurs in the translation unit. In general, the 3027 * lexical parent for a given entity can change without affecting the semantics 3028 * of the program, and the lexical parent of different declarations of the 3029 * same entity may be different. Changing the semantic parent of a declaration, 3030 * on the other hand, can have a major impact on semantics, and redeclarations 3031 * of a particular entity should all have the same semantic context. 3032 * 3033 * In the example above, both declarations of \c C::f have \c C as their 3034 * semantic context, while the lexical context of the first \c C::f is \c C 3035 * and the lexical context of the second \c C::f is the translation unit. 3036 * 3037 * For global declarations, the semantic parent is the translation unit. 3038 */ 3039 CINDEX_LINKAGE CXCursor clang_getCursorSemanticParent(CXCursor cursor); 3040 3041 /** 3042 * Determine the lexical parent of the given cursor. 3043 * 3044 * The lexical parent of a cursor is the cursor in which the given \p cursor 3045 * was actually written. For many declarations, the lexical and semantic parents 3046 * are equivalent (the semantic parent is returned by 3047 * \c clang_getCursorSemanticParent()). They diverge when declarations or 3048 * definitions are provided out-of-line. For example: 3049 * 3050 * \code 3051 * class C { 3052 * void f(); 3053 * }; 3054 * 3055 * void C::f() { } 3056 * \endcode 3057 * 3058 * In the out-of-line definition of \c C::f, the semantic parent is 3059 * the class \c C, of which this function is a member. The lexical parent is 3060 * the place where the declaration actually occurs in the source code; in this 3061 * case, the definition occurs in the translation unit. In general, the 3062 * lexical parent for a given entity can change without affecting the semantics 3063 * of the program, and the lexical parent of different declarations of the 3064 * same entity may be different. Changing the semantic parent of a declaration, 3065 * on the other hand, can have a major impact on semantics, and redeclarations 3066 * of a particular entity should all have the same semantic context. 3067 * 3068 * In the example above, both declarations of \c C::f have \c C as their 3069 * semantic context, while the lexical context of the first \c C::f is \c C 3070 * and the lexical context of the second \c C::f is the translation unit. 3071 * 3072 * For declarations written in the global scope, the lexical parent is 3073 * the translation unit. 3074 */ 3075 CINDEX_LINKAGE CXCursor clang_getCursorLexicalParent(CXCursor cursor); 3076 3077 /** 3078 * Determine the set of methods that are overridden by the given 3079 * method. 3080 * 3081 * In both Objective-C and C++, a method (aka virtual member function, 3082 * in C++) can override a virtual method in a base class. For 3083 * Objective-C, a method is said to override any method in the class's 3084 * base class, its protocols, or its categories' protocols, that has the same 3085 * selector and is of the same kind (class or instance). 3086 * If no such method exists, the search continues to the class's superclass, 3087 * its protocols, and its categories, and so on. A method from an Objective-C 3088 * implementation is considered to override the same methods as its 3089 * corresponding method in the interface. 3090 * 3091 * For C++, a virtual member function overrides any virtual member 3092 * function with the same signature that occurs in its base 3093 * classes. With multiple inheritance, a virtual member function can 3094 * override several virtual member functions coming from different 3095 * base classes. 3096 * 3097 * In all cases, this function determines the immediate overridden 3098 * method, rather than all of the overridden methods. For example, if 3099 * a method is originally declared in a class A, then overridden in B 3100 * (which in inherits from A) and also in C (which inherited from B), 3101 * then the only overridden method returned from this function when 3102 * invoked on C's method will be B's method. The client may then 3103 * invoke this function again, given the previously-found overridden 3104 * methods, to map out the complete method-override set. 3105 * 3106 * \param cursor A cursor representing an Objective-C or C++ 3107 * method. This routine will compute the set of methods that this 3108 * method overrides. 3109 * 3110 * \param overridden A pointer whose pointee will be replaced with a 3111 * pointer to an array of cursors, representing the set of overridden 3112 * methods. If there are no overridden methods, the pointee will be 3113 * set to NULL. The pointee must be freed via a call to 3114 * \c clang_disposeOverriddenCursors(). 3115 * 3116 * \param num_overridden A pointer to the number of overridden 3117 * functions, will be set to the number of overridden functions in the 3118 * array pointed to by \p overridden. 3119 */ 3120 CINDEX_LINKAGE void clang_getOverriddenCursors(CXCursor cursor, 3121 CXCursor **overridden, 3122 unsigned *num_overridden); 3123 3124 /** 3125 * Free the set of overridden cursors returned by \c 3126 * clang_getOverriddenCursors(). 3127 */ 3128 CINDEX_LINKAGE void clang_disposeOverriddenCursors(CXCursor *overridden); 3129 3130 /** 3131 * Retrieve the file that is included by the given inclusion directive 3132 * cursor. 3133 */ 3134 CINDEX_LINKAGE CXFile clang_getIncludedFile(CXCursor cursor); 3135 3136 /** 3137 * @} 3138 */ 3139 3140 /** 3141 * \defgroup CINDEX_CURSOR_SOURCE Mapping between cursors and source code 3142 * 3143 * Cursors represent a location within the Abstract Syntax Tree (AST). These 3144 * routines help map between cursors and the physical locations where the 3145 * described entities occur in the source code. The mapping is provided in 3146 * both directions, so one can map from source code to the AST and back. 3147 * 3148 * @{ 3149 */ 3150 3151 /** 3152 * Map a source location to the cursor that describes the entity at that 3153 * location in the source code. 3154 * 3155 * clang_getCursor() maps an arbitrary source location within a translation 3156 * unit down to the most specific cursor that describes the entity at that 3157 * location. For example, given an expression \c x + y, invoking 3158 * clang_getCursor() with a source location pointing to "x" will return the 3159 * cursor for "x"; similarly for "y". If the cursor points anywhere between 3160 * "x" or "y" (e.g., on the + or the whitespace around it), clang_getCursor() 3161 * will return a cursor referring to the "+" expression. 3162 * 3163 * \returns a cursor representing the entity at the given source location, or 3164 * a NULL cursor if no such entity can be found. 3165 */ 3166 CINDEX_LINKAGE CXCursor clang_getCursor(CXTranslationUnit, CXSourceLocation); 3167 3168 /** 3169 * Retrieve the physical location of the source constructor referenced 3170 * by the given cursor. 3171 * 3172 * The location of a declaration is typically the location of the name of that 3173 * declaration, where the name of that declaration would occur if it is 3174 * unnamed, or some keyword that introduces that particular declaration. 3175 * The location of a reference is where that reference occurs within the 3176 * source code. 3177 */ 3178 CINDEX_LINKAGE CXSourceLocation clang_getCursorLocation(CXCursor); 3179 3180 /** 3181 * Retrieve the physical extent of the source construct referenced by 3182 * the given cursor. 3183 * 3184 * The extent of a cursor starts with the file/line/column pointing at the 3185 * first character within the source construct that the cursor refers to and 3186 * ends with the last character within that source construct. For a 3187 * declaration, the extent covers the declaration itself. For a reference, 3188 * the extent covers the location of the reference (e.g., where the referenced 3189 * entity was actually used). 3190 */ 3191 CINDEX_LINKAGE CXSourceRange clang_getCursorExtent(CXCursor); 3192 3193 /** 3194 * @} 3195 */ 3196 3197 /** 3198 * \defgroup CINDEX_TYPES Type information for CXCursors 3199 * 3200 * @{ 3201 */ 3202 3203 /** 3204 * Describes the kind of type 3205 */ 3206 enum CXTypeKind { 3207 /** 3208 * Represents an invalid type (e.g., where no type is available). 3209 */ 3210 CXType_Invalid = 0, 3211 3212 /** 3213 * A type whose specific kind is not exposed via this 3214 * interface. 3215 */ 3216 CXType_Unexposed = 1, 3217 3218 /* Builtin types */ 3219 CXType_Void = 2, 3220 CXType_Bool = 3, 3221 CXType_Char_U = 4, 3222 CXType_UChar = 5, 3223 CXType_Char16 = 6, 3224 CXType_Char32 = 7, 3225 CXType_UShort = 8, 3226 CXType_UInt = 9, 3227 CXType_ULong = 10, 3228 CXType_ULongLong = 11, 3229 CXType_UInt128 = 12, 3230 CXType_Char_S = 13, 3231 CXType_SChar = 14, 3232 CXType_WChar = 15, 3233 CXType_Short = 16, 3234 CXType_Int = 17, 3235 CXType_Long = 18, 3236 CXType_LongLong = 19, 3237 CXType_Int128 = 20, 3238 CXType_Float = 21, 3239 CXType_Double = 22, 3240 CXType_LongDouble = 23, 3241 CXType_NullPtr = 24, 3242 CXType_Overload = 25, 3243 CXType_Dependent = 26, 3244 CXType_ObjCId = 27, 3245 CXType_ObjCClass = 28, 3246 CXType_ObjCSel = 29, 3247 CXType_Float128 = 30, 3248 CXType_Half = 31, 3249 CXType_Float16 = 32, 3250 CXType_ShortAccum = 33, 3251 CXType_Accum = 34, 3252 CXType_LongAccum = 35, 3253 CXType_UShortAccum = 36, 3254 CXType_UAccum = 37, 3255 CXType_ULongAccum = 38, 3256 CXType_BFloat16 = 39, 3257 CXType_FirstBuiltin = CXType_Void, 3258 CXType_LastBuiltin = CXType_BFloat16, 3259 3260 CXType_Complex = 100, 3261 CXType_Pointer = 101, 3262 CXType_BlockPointer = 102, 3263 CXType_LValueReference = 103, 3264 CXType_RValueReference = 104, 3265 CXType_Record = 105, 3266 CXType_Enum = 106, 3267 CXType_Typedef = 107, 3268 CXType_ObjCInterface = 108, 3269 CXType_ObjCObjectPointer = 109, 3270 CXType_FunctionNoProto = 110, 3271 CXType_FunctionProto = 111, 3272 CXType_ConstantArray = 112, 3273 CXType_Vector = 113, 3274 CXType_IncompleteArray = 114, 3275 CXType_VariableArray = 115, 3276 CXType_DependentSizedArray = 116, 3277 CXType_MemberPointer = 117, 3278 CXType_Auto = 118, 3279 3280 /** 3281 * Represents a type that was referred to using an elaborated type keyword. 3282 * 3283 * E.g., struct S, or via a qualified name, e.g., N::M::type, or both. 3284 */ 3285 CXType_Elaborated = 119, 3286 3287 /* OpenCL PipeType. */ 3288 CXType_Pipe = 120, 3289 3290 /* OpenCL builtin types. */ 3291 CXType_OCLImage1dRO = 121, 3292 CXType_OCLImage1dArrayRO = 122, 3293 CXType_OCLImage1dBufferRO = 123, 3294 CXType_OCLImage2dRO = 124, 3295 CXType_OCLImage2dArrayRO = 125, 3296 CXType_OCLImage2dDepthRO = 126, 3297 CXType_OCLImage2dArrayDepthRO = 127, 3298 CXType_OCLImage2dMSAARO = 128, 3299 CXType_OCLImage2dArrayMSAARO = 129, 3300 CXType_OCLImage2dMSAADepthRO = 130, 3301 CXType_OCLImage2dArrayMSAADepthRO = 131, 3302 CXType_OCLImage3dRO = 132, 3303 CXType_OCLImage1dWO = 133, 3304 CXType_OCLImage1dArrayWO = 134, 3305 CXType_OCLImage1dBufferWO = 135, 3306 CXType_OCLImage2dWO = 136, 3307 CXType_OCLImage2dArrayWO = 137, 3308 CXType_OCLImage2dDepthWO = 138, 3309 CXType_OCLImage2dArrayDepthWO = 139, 3310 CXType_OCLImage2dMSAAWO = 140, 3311 CXType_OCLImage2dArrayMSAAWO = 141, 3312 CXType_OCLImage2dMSAADepthWO = 142, 3313 CXType_OCLImage2dArrayMSAADepthWO = 143, 3314 CXType_OCLImage3dWO = 144, 3315 CXType_OCLImage1dRW = 145, 3316 CXType_OCLImage1dArrayRW = 146, 3317 CXType_OCLImage1dBufferRW = 147, 3318 CXType_OCLImage2dRW = 148, 3319 CXType_OCLImage2dArrayRW = 149, 3320 CXType_OCLImage2dDepthRW = 150, 3321 CXType_OCLImage2dArrayDepthRW = 151, 3322 CXType_OCLImage2dMSAARW = 152, 3323 CXType_OCLImage2dArrayMSAARW = 153, 3324 CXType_OCLImage2dMSAADepthRW = 154, 3325 CXType_OCLImage2dArrayMSAADepthRW = 155, 3326 CXType_OCLImage3dRW = 156, 3327 CXType_OCLSampler = 157, 3328 CXType_OCLEvent = 158, 3329 CXType_OCLQueue = 159, 3330 CXType_OCLReserveID = 160, 3331 3332 CXType_ObjCObject = 161, 3333 CXType_ObjCTypeParam = 162, 3334 CXType_Attributed = 163, 3335 3336 CXType_OCLIntelSubgroupAVCMcePayload = 164, 3337 CXType_OCLIntelSubgroupAVCImePayload = 165, 3338 CXType_OCLIntelSubgroupAVCRefPayload = 166, 3339 CXType_OCLIntelSubgroupAVCSicPayload = 167, 3340 CXType_OCLIntelSubgroupAVCMceResult = 168, 3341 CXType_OCLIntelSubgroupAVCImeResult = 169, 3342 CXType_OCLIntelSubgroupAVCRefResult = 170, 3343 CXType_OCLIntelSubgroupAVCSicResult = 171, 3344 CXType_OCLIntelSubgroupAVCImeResultSingleRefStreamout = 172, 3345 CXType_OCLIntelSubgroupAVCImeResultDualRefStreamout = 173, 3346 CXType_OCLIntelSubgroupAVCImeSingleRefStreamin = 174, 3347 3348 CXType_OCLIntelSubgroupAVCImeDualRefStreamin = 175, 3349 3350 CXType_ExtVector = 176, 3351 CXType_Atomic = 177 3352 }; 3353 3354 /** 3355 * Describes the calling convention of a function type 3356 */ 3357 enum CXCallingConv { 3358 CXCallingConv_Default = 0, 3359 CXCallingConv_C = 1, 3360 CXCallingConv_X86StdCall = 2, 3361 CXCallingConv_X86FastCall = 3, 3362 CXCallingConv_X86ThisCall = 4, 3363 CXCallingConv_X86Pascal = 5, 3364 CXCallingConv_AAPCS = 6, 3365 CXCallingConv_AAPCS_VFP = 7, 3366 CXCallingConv_X86RegCall = 8, 3367 CXCallingConv_IntelOclBicc = 9, 3368 CXCallingConv_Win64 = 10, 3369 /* Alias for compatibility with older versions of API. */ 3370 CXCallingConv_X86_64Win64 = CXCallingConv_Win64, 3371 CXCallingConv_X86_64SysV = 11, 3372 CXCallingConv_X86VectorCall = 12, 3373 CXCallingConv_Swift = 13, 3374 CXCallingConv_PreserveMost = 14, 3375 CXCallingConv_PreserveAll = 15, 3376 CXCallingConv_AArch64VectorCall = 16, 3377 3378 CXCallingConv_Invalid = 100, 3379 CXCallingConv_Unexposed = 200 3380 }; 3381 3382 /** 3383 * The type of an element in the abstract syntax tree. 3384 * 3385 */ 3386 typedef struct { 3387 enum CXTypeKind kind; 3388 void *data[2]; 3389 } CXType; 3390 3391 /** 3392 * Retrieve the type of a CXCursor (if any). 3393 */ 3394 CINDEX_LINKAGE CXType clang_getCursorType(CXCursor C); 3395 3396 /** 3397 * Pretty-print the underlying type using the rules of the 3398 * language of the translation unit from which it came. 3399 * 3400 * If the type is invalid, an empty string is returned. 3401 */ 3402 CINDEX_LINKAGE CXString clang_getTypeSpelling(CXType CT); 3403 3404 /** 3405 * Retrieve the underlying type of a typedef declaration. 3406 * 3407 * If the cursor does not reference a typedef declaration, an invalid type is 3408 * returned. 3409 */ 3410 CINDEX_LINKAGE CXType clang_getTypedefDeclUnderlyingType(CXCursor C); 3411 3412 /** 3413 * Retrieve the integer type of an enum declaration. 3414 * 3415 * If the cursor does not reference an enum declaration, an invalid type is 3416 * returned. 3417 */ 3418 CINDEX_LINKAGE CXType clang_getEnumDeclIntegerType(CXCursor C); 3419 3420 /** 3421 * Retrieve the integer value of an enum constant declaration as a signed 3422 * long long. 3423 * 3424 * If the cursor does not reference an enum constant declaration, LLONG_MIN is 3425 * returned. Since this is also potentially a valid constant value, the kind of 3426 * the cursor must be verified before calling this function. 3427 */ 3428 CINDEX_LINKAGE long long clang_getEnumConstantDeclValue(CXCursor C); 3429 3430 /** 3431 * Retrieve the integer value of an enum constant declaration as an unsigned 3432 * long long. 3433 * 3434 * If the cursor does not reference an enum constant declaration, ULLONG_MAX is 3435 * returned. Since this is also potentially a valid constant value, the kind of 3436 * the cursor must be verified before calling this function. 3437 */ 3438 CINDEX_LINKAGE unsigned long long 3439 clang_getEnumConstantDeclUnsignedValue(CXCursor C); 3440 3441 /** 3442 * Retrieve the bit width of a bit field declaration as an integer. 3443 * 3444 * If a cursor that is not a bit field declaration is passed in, -1 is returned. 3445 */ 3446 CINDEX_LINKAGE int clang_getFieldDeclBitWidth(CXCursor C); 3447 3448 /** 3449 * Retrieve the number of non-variadic arguments associated with a given 3450 * cursor. 3451 * 3452 * The number of arguments can be determined for calls as well as for 3453 * declarations of functions or methods. For other cursors -1 is returned. 3454 */ 3455 CINDEX_LINKAGE int clang_Cursor_getNumArguments(CXCursor C); 3456 3457 /** 3458 * Retrieve the argument cursor of a function or method. 3459 * 3460 * The argument cursor can be determined for calls as well as for declarations 3461 * of functions or methods. For other cursors and for invalid indices, an 3462 * invalid cursor is returned. 3463 */ 3464 CINDEX_LINKAGE CXCursor clang_Cursor_getArgument(CXCursor C, unsigned i); 3465 3466 /** 3467 * Describes the kind of a template argument. 3468 * 3469 * See the definition of llvm::clang::TemplateArgument::ArgKind for full 3470 * element descriptions. 3471 */ 3472 enum CXTemplateArgumentKind { 3473 CXTemplateArgumentKind_Null, 3474 CXTemplateArgumentKind_Type, 3475 CXTemplateArgumentKind_Declaration, 3476 CXTemplateArgumentKind_NullPtr, 3477 CXTemplateArgumentKind_Integral, 3478 CXTemplateArgumentKind_Template, 3479 CXTemplateArgumentKind_TemplateExpansion, 3480 CXTemplateArgumentKind_Expression, 3481 CXTemplateArgumentKind_Pack, 3482 /* Indicates an error case, preventing the kind from being deduced. */ 3483 CXTemplateArgumentKind_Invalid 3484 }; 3485 3486 /** 3487 *Returns the number of template args of a function decl representing a 3488 * template specialization. 3489 * 3490 * If the argument cursor cannot be converted into a template function 3491 * declaration, -1 is returned. 3492 * 3493 * For example, for the following declaration and specialization: 3494 * template <typename T, int kInt, bool kBool> 3495 * void foo() { ... } 3496 * 3497 * template <> 3498 * void foo<float, -7, true>(); 3499 * 3500 * The value 3 would be returned from this call. 3501 */ 3502 CINDEX_LINKAGE int clang_Cursor_getNumTemplateArguments(CXCursor C); 3503 3504 /** 3505 * Retrieve the kind of the I'th template argument of the CXCursor C. 3506 * 3507 * If the argument CXCursor does not represent a FunctionDecl, an invalid 3508 * template argument kind is returned. 3509 * 3510 * For example, for the following declaration and specialization: 3511 * template <typename T, int kInt, bool kBool> 3512 * void foo() { ... } 3513 * 3514 * template <> 3515 * void foo<float, -7, true>(); 3516 * 3517 * For I = 0, 1, and 2, Type, Integral, and Integral will be returned, 3518 * respectively. 3519 */ 3520 CINDEX_LINKAGE enum CXTemplateArgumentKind 3521 clang_Cursor_getTemplateArgumentKind(CXCursor C, unsigned I); 3522 3523 /** 3524 * Retrieve a CXType representing the type of a TemplateArgument of a 3525 * function decl representing a template specialization. 3526 * 3527 * If the argument CXCursor does not represent a FunctionDecl whose I'th 3528 * template argument has a kind of CXTemplateArgKind_Integral, an invalid type 3529 * is returned. 3530 * 3531 * For example, for the following declaration and specialization: 3532 * template <typename T, int kInt, bool kBool> 3533 * void foo() { ... } 3534 * 3535 * template <> 3536 * void foo<float, -7, true>(); 3537 * 3538 * If called with I = 0, "float", will be returned. 3539 * Invalid types will be returned for I == 1 or 2. 3540 */ 3541 CINDEX_LINKAGE CXType clang_Cursor_getTemplateArgumentType(CXCursor C, 3542 unsigned I); 3543 3544 /** 3545 * Retrieve the value of an Integral TemplateArgument (of a function 3546 * decl representing a template specialization) as a signed long long. 3547 * 3548 * It is undefined to call this function on a CXCursor that does not represent a 3549 * FunctionDecl or whose I'th template argument is not an integral value. 3550 * 3551 * For example, for the following declaration and specialization: 3552 * template <typename T, int kInt, bool kBool> 3553 * void foo() { ... } 3554 * 3555 * template <> 3556 * void foo<float, -7, true>(); 3557 * 3558 * If called with I = 1 or 2, -7 or true will be returned, respectively. 3559 * For I == 0, this function's behavior is undefined. 3560 */ 3561 CINDEX_LINKAGE long long clang_Cursor_getTemplateArgumentValue(CXCursor C, 3562 unsigned I); 3563 3564 /** 3565 * Retrieve the value of an Integral TemplateArgument (of a function 3566 * decl representing a template specialization) as an unsigned long long. 3567 * 3568 * It is undefined to call this function on a CXCursor that does not represent a 3569 * FunctionDecl or whose I'th template argument is not an integral value. 3570 * 3571 * For example, for the following declaration and specialization: 3572 * template <typename T, int kInt, bool kBool> 3573 * void foo() { ... } 3574 * 3575 * template <> 3576 * void foo<float, 2147483649, true>(); 3577 * 3578 * If called with I = 1 or 2, 2147483649 or true will be returned, respectively. 3579 * For I == 0, this function's behavior is undefined. 3580 */ 3581 CINDEX_LINKAGE unsigned long long 3582 clang_Cursor_getTemplateArgumentUnsignedValue(CXCursor C, unsigned I); 3583 3584 /** 3585 * Determine whether two CXTypes represent the same type. 3586 * 3587 * \returns non-zero if the CXTypes represent the same type and 3588 * zero otherwise. 3589 */ 3590 CINDEX_LINKAGE unsigned clang_equalTypes(CXType A, CXType B); 3591 3592 /** 3593 * Return the canonical type for a CXType. 3594 * 3595 * Clang's type system explicitly models typedefs and all the ways 3596 * a specific type can be represented. The canonical type is the underlying 3597 * type with all the "sugar" removed. For example, if 'T' is a typedef 3598 * for 'int', the canonical type for 'T' would be 'int'. 3599 */ 3600 CINDEX_LINKAGE CXType clang_getCanonicalType(CXType T); 3601 3602 /** 3603 * Determine whether a CXType has the "const" qualifier set, 3604 * without looking through typedefs that may have added "const" at a 3605 * different level. 3606 */ 3607 CINDEX_LINKAGE unsigned clang_isConstQualifiedType(CXType T); 3608 3609 /** 3610 * Determine whether a CXCursor that is a macro, is 3611 * function like. 3612 */ 3613 CINDEX_LINKAGE unsigned clang_Cursor_isMacroFunctionLike(CXCursor C); 3614 3615 /** 3616 * Determine whether a CXCursor that is a macro, is a 3617 * builtin one. 3618 */ 3619 CINDEX_LINKAGE unsigned clang_Cursor_isMacroBuiltin(CXCursor C); 3620 3621 /** 3622 * Determine whether a CXCursor that is a function declaration, is an 3623 * inline declaration. 3624 */ 3625 CINDEX_LINKAGE unsigned clang_Cursor_isFunctionInlined(CXCursor C); 3626 3627 /** 3628 * Determine whether a CXType has the "volatile" qualifier set, 3629 * without looking through typedefs that may have added "volatile" at 3630 * a different level. 3631 */ 3632 CINDEX_LINKAGE unsigned clang_isVolatileQualifiedType(CXType T); 3633 3634 /** 3635 * Determine whether a CXType has the "restrict" qualifier set, 3636 * without looking through typedefs that may have added "restrict" at a 3637 * different level. 3638 */ 3639 CINDEX_LINKAGE unsigned clang_isRestrictQualifiedType(CXType T); 3640 3641 /** 3642 * Returns the address space of the given type. 3643 */ 3644 CINDEX_LINKAGE unsigned clang_getAddressSpace(CXType T); 3645 3646 /** 3647 * Returns the typedef name of the given type. 3648 */ 3649 CINDEX_LINKAGE CXString clang_getTypedefName(CXType CT); 3650 3651 /** 3652 * For pointer types, returns the type of the pointee. 3653 */ 3654 CINDEX_LINKAGE CXType clang_getPointeeType(CXType T); 3655 3656 /** 3657 * Return the cursor for the declaration of the given type. 3658 */ 3659 CINDEX_LINKAGE CXCursor clang_getTypeDeclaration(CXType T); 3660 3661 /** 3662 * Returns the Objective-C type encoding for the specified declaration. 3663 */ 3664 CINDEX_LINKAGE CXString clang_getDeclObjCTypeEncoding(CXCursor C); 3665 3666 /** 3667 * Returns the Objective-C type encoding for the specified CXType. 3668 */ 3669 CINDEX_LINKAGE CXString clang_Type_getObjCEncoding(CXType type); 3670 3671 /** 3672 * Retrieve the spelling of a given CXTypeKind. 3673 */ 3674 CINDEX_LINKAGE CXString clang_getTypeKindSpelling(enum CXTypeKind K); 3675 3676 /** 3677 * Retrieve the calling convention associated with a function type. 3678 * 3679 * If a non-function type is passed in, CXCallingConv_Invalid is returned. 3680 */ 3681 CINDEX_LINKAGE enum CXCallingConv clang_getFunctionTypeCallingConv(CXType T); 3682 3683 /** 3684 * Retrieve the return type associated with a function type. 3685 * 3686 * If a non-function type is passed in, an invalid type is returned. 3687 */ 3688 CINDEX_LINKAGE CXType clang_getResultType(CXType T); 3689 3690 /** 3691 * Retrieve the exception specification type associated with a function type. 3692 * This is a value of type CXCursor_ExceptionSpecificationKind. 3693 * 3694 * If a non-function type is passed in, an error code of -1 is returned. 3695 */ 3696 CINDEX_LINKAGE int clang_getExceptionSpecificationType(CXType T); 3697 3698 /** 3699 * Retrieve the number of non-variadic parameters associated with a 3700 * function type. 3701 * 3702 * If a non-function type is passed in, -1 is returned. 3703 */ 3704 CINDEX_LINKAGE int clang_getNumArgTypes(CXType T); 3705 3706 /** 3707 * Retrieve the type of a parameter of a function type. 3708 * 3709 * If a non-function type is passed in or the function does not have enough 3710 * parameters, an invalid type is returned. 3711 */ 3712 CINDEX_LINKAGE CXType clang_getArgType(CXType T, unsigned i); 3713 3714 /** 3715 * Retrieves the base type of the ObjCObjectType. 3716 * 3717 * If the type is not an ObjC object, an invalid type is returned. 3718 */ 3719 CINDEX_LINKAGE CXType clang_Type_getObjCObjectBaseType(CXType T); 3720 3721 /** 3722 * Retrieve the number of protocol references associated with an ObjC object/id. 3723 * 3724 * If the type is not an ObjC object, 0 is returned. 3725 */ 3726 CINDEX_LINKAGE unsigned clang_Type_getNumObjCProtocolRefs(CXType T); 3727 3728 /** 3729 * Retrieve the decl for a protocol reference for an ObjC object/id. 3730 * 3731 * If the type is not an ObjC object or there are not enough protocol 3732 * references, an invalid cursor is returned. 3733 */ 3734 CINDEX_LINKAGE CXCursor clang_Type_getObjCProtocolDecl(CXType T, unsigned i); 3735 3736 /** 3737 * Retrieve the number of type arguments associated with an ObjC object. 3738 * 3739 * If the type is not an ObjC object, 0 is returned. 3740 */ 3741 CINDEX_LINKAGE unsigned clang_Type_getNumObjCTypeArgs(CXType T); 3742 3743 /** 3744 * Retrieve a type argument associated with an ObjC object. 3745 * 3746 * If the type is not an ObjC or the index is not valid, 3747 * an invalid type is returned. 3748 */ 3749 CINDEX_LINKAGE CXType clang_Type_getObjCTypeArg(CXType T, unsigned i); 3750 3751 /** 3752 * Return 1 if the CXType is a variadic function type, and 0 otherwise. 3753 */ 3754 CINDEX_LINKAGE unsigned clang_isFunctionTypeVariadic(CXType T); 3755 3756 /** 3757 * Retrieve the return type associated with a given cursor. 3758 * 3759 * This only returns a valid type if the cursor refers to a function or method. 3760 */ 3761 CINDEX_LINKAGE CXType clang_getCursorResultType(CXCursor C); 3762 3763 /** 3764 * Retrieve the exception specification type associated with a given cursor. 3765 * This is a value of type CXCursor_ExceptionSpecificationKind. 3766 * 3767 * This only returns a valid result if the cursor refers to a function or 3768 * method. 3769 */ 3770 CINDEX_LINKAGE int clang_getCursorExceptionSpecificationType(CXCursor C); 3771 3772 /** 3773 * Return 1 if the CXType is a POD (plain old data) type, and 0 3774 * otherwise. 3775 */ 3776 CINDEX_LINKAGE unsigned clang_isPODType(CXType T); 3777 3778 /** 3779 * Return the element type of an array, complex, or vector type. 3780 * 3781 * If a type is passed in that is not an array, complex, or vector type, 3782 * an invalid type is returned. 3783 */ 3784 CINDEX_LINKAGE CXType clang_getElementType(CXType T); 3785 3786 /** 3787 * Return the number of elements of an array or vector type. 3788 * 3789 * If a type is passed in that is not an array or vector type, 3790 * -1 is returned. 3791 */ 3792 CINDEX_LINKAGE long long clang_getNumElements(CXType T); 3793 3794 /** 3795 * Return the element type of an array type. 3796 * 3797 * If a non-array type is passed in, an invalid type is returned. 3798 */ 3799 CINDEX_LINKAGE CXType clang_getArrayElementType(CXType T); 3800 3801 /** 3802 * Return the array size of a constant array. 3803 * 3804 * If a non-array type is passed in, -1 is returned. 3805 */ 3806 CINDEX_LINKAGE long long clang_getArraySize(CXType T); 3807 3808 /** 3809 * Retrieve the type named by the qualified-id. 3810 * 3811 * If a non-elaborated type is passed in, an invalid type is returned. 3812 */ 3813 CINDEX_LINKAGE CXType clang_Type_getNamedType(CXType T); 3814 3815 /** 3816 * Determine if a typedef is 'transparent' tag. 3817 * 3818 * A typedef is considered 'transparent' if it shares a name and spelling 3819 * location with its underlying tag type, as is the case with the NS_ENUM macro. 3820 * 3821 * \returns non-zero if transparent and zero otherwise. 3822 */ 3823 CINDEX_LINKAGE unsigned clang_Type_isTransparentTagTypedef(CXType T); 3824 3825 enum CXTypeNullabilityKind { 3826 /** 3827 * Values of this type can never be null. 3828 */ 3829 CXTypeNullability_NonNull = 0, 3830 /** 3831 * Values of this type can be null. 3832 */ 3833 CXTypeNullability_Nullable = 1, 3834 /** 3835 * Whether values of this type can be null is (explicitly) 3836 * unspecified. This captures a (fairly rare) case where we 3837 * can't conclude anything about the nullability of the type even 3838 * though it has been considered. 3839 */ 3840 CXTypeNullability_Unspecified = 2, 3841 /** 3842 * Nullability is not applicable to this type. 3843 */ 3844 CXTypeNullability_Invalid = 3 3845 }; 3846 3847 /** 3848 * Retrieve the nullability kind of a pointer type. 3849 */ 3850 CINDEX_LINKAGE enum CXTypeNullabilityKind clang_Type_getNullability(CXType T); 3851 3852 /** 3853 * List the possible error codes for \c clang_Type_getSizeOf, 3854 * \c clang_Type_getAlignOf, \c clang_Type_getOffsetOf and 3855 * \c clang_Cursor_getOffsetOf. 3856 * 3857 * A value of this enumeration type can be returned if the target type is not 3858 * a valid argument to sizeof, alignof or offsetof. 3859 */ 3860 enum CXTypeLayoutError { 3861 /** 3862 * Type is of kind CXType_Invalid. 3863 */ 3864 CXTypeLayoutError_Invalid = -1, 3865 /** 3866 * The type is an incomplete Type. 3867 */ 3868 CXTypeLayoutError_Incomplete = -2, 3869 /** 3870 * The type is a dependent Type. 3871 */ 3872 CXTypeLayoutError_Dependent = -3, 3873 /** 3874 * The type is not a constant size type. 3875 */ 3876 CXTypeLayoutError_NotConstantSize = -4, 3877 /** 3878 * The Field name is not valid for this record. 3879 */ 3880 CXTypeLayoutError_InvalidFieldName = -5, 3881 /** 3882 * The type is undeduced. 3883 */ 3884 CXTypeLayoutError_Undeduced = -6 3885 }; 3886 3887 /** 3888 * Return the alignment of a type in bytes as per C++[expr.alignof] 3889 * standard. 3890 * 3891 * If the type declaration is invalid, CXTypeLayoutError_Invalid is returned. 3892 * If the type declaration is an incomplete type, CXTypeLayoutError_Incomplete 3893 * is returned. 3894 * If the type declaration is a dependent type, CXTypeLayoutError_Dependent is 3895 * returned. 3896 * If the type declaration is not a constant size type, 3897 * CXTypeLayoutError_NotConstantSize is returned. 3898 */ 3899 CINDEX_LINKAGE long long clang_Type_getAlignOf(CXType T); 3900 3901 /** 3902 * Return the class type of an member pointer type. 3903 * 3904 * If a non-member-pointer type is passed in, an invalid type is returned. 3905 */ 3906 CINDEX_LINKAGE CXType clang_Type_getClassType(CXType T); 3907 3908 /** 3909 * Return the size of a type in bytes as per C++[expr.sizeof] standard. 3910 * 3911 * If the type declaration is invalid, CXTypeLayoutError_Invalid is returned. 3912 * If the type declaration is an incomplete type, CXTypeLayoutError_Incomplete 3913 * is returned. 3914 * If the type declaration is a dependent type, CXTypeLayoutError_Dependent is 3915 * returned. 3916 */ 3917 CINDEX_LINKAGE long long clang_Type_getSizeOf(CXType T); 3918 3919 /** 3920 * Return the offset of a field named S in a record of type T in bits 3921 * as it would be returned by __offsetof__ as per C++11[18.2p4] 3922 * 3923 * If the cursor is not a record field declaration, CXTypeLayoutError_Invalid 3924 * is returned. 3925 * If the field's type declaration is an incomplete type, 3926 * CXTypeLayoutError_Incomplete is returned. 3927 * If the field's type declaration is a dependent type, 3928 * CXTypeLayoutError_Dependent is returned. 3929 * If the field's name S is not found, 3930 * CXTypeLayoutError_InvalidFieldName is returned. 3931 */ 3932 CINDEX_LINKAGE long long clang_Type_getOffsetOf(CXType T, const char *S); 3933 3934 /** 3935 * Return the type that was modified by this attributed type. 3936 * 3937 * If the type is not an attributed type, an invalid type is returned. 3938 */ 3939 CINDEX_LINKAGE CXType clang_Type_getModifiedType(CXType T); 3940 3941 /** 3942 * Gets the type contained by this atomic type. 3943 * 3944 * If a non-atomic type is passed in, an invalid type is returned. 3945 */ 3946 CINDEX_LINKAGE CXType clang_Type_getValueType(CXType CT); 3947 3948 /** 3949 * Return the offset of the field represented by the Cursor. 3950 * 3951 * If the cursor is not a field declaration, -1 is returned. 3952 * If the cursor semantic parent is not a record field declaration, 3953 * CXTypeLayoutError_Invalid is returned. 3954 * If the field's type declaration is an incomplete type, 3955 * CXTypeLayoutError_Incomplete is returned. 3956 * If the field's type declaration is a dependent type, 3957 * CXTypeLayoutError_Dependent is returned. 3958 * If the field's name S is not found, 3959 * CXTypeLayoutError_InvalidFieldName is returned. 3960 */ 3961 CINDEX_LINKAGE long long clang_Cursor_getOffsetOfField(CXCursor C); 3962 3963 /** 3964 * Determine whether the given cursor represents an anonymous 3965 * tag or namespace 3966 */ 3967 CINDEX_LINKAGE unsigned clang_Cursor_isAnonymous(CXCursor C); 3968 3969 /** 3970 * Determine whether the given cursor represents an anonymous record 3971 * declaration. 3972 */ 3973 CINDEX_LINKAGE unsigned clang_Cursor_isAnonymousRecordDecl(CXCursor C); 3974 3975 /** 3976 * Determine whether the given cursor represents an inline namespace 3977 * declaration. 3978 */ 3979 CINDEX_LINKAGE unsigned clang_Cursor_isInlineNamespace(CXCursor C); 3980 3981 enum CXRefQualifierKind { 3982 /** No ref-qualifier was provided. */ 3983 CXRefQualifier_None = 0, 3984 /** An lvalue ref-qualifier was provided (\c &). */ 3985 CXRefQualifier_LValue, 3986 /** An rvalue ref-qualifier was provided (\c &&). */ 3987 CXRefQualifier_RValue 3988 }; 3989 3990 /** 3991 * Returns the number of template arguments for given template 3992 * specialization, or -1 if type \c T is not a template specialization. 3993 */ 3994 CINDEX_LINKAGE int clang_Type_getNumTemplateArguments(CXType T); 3995 3996 /** 3997 * Returns the type template argument of a template class specialization 3998 * at given index. 3999 * 4000 * This function only returns template type arguments and does not handle 4001 * template template arguments or variadic packs. 4002 */ 4003 CINDEX_LINKAGE CXType clang_Type_getTemplateArgumentAsType(CXType T, 4004 unsigned i); 4005 4006 /** 4007 * Retrieve the ref-qualifier kind of a function or method. 4008 * 4009 * The ref-qualifier is returned for C++ functions or methods. For other types 4010 * or non-C++ declarations, CXRefQualifier_None is returned. 4011 */ 4012 CINDEX_LINKAGE enum CXRefQualifierKind clang_Type_getCXXRefQualifier(CXType T); 4013 4014 /** 4015 * Returns non-zero if the cursor specifies a Record member that is a 4016 * bitfield. 4017 */ 4018 CINDEX_LINKAGE unsigned clang_Cursor_isBitField(CXCursor C); 4019 4020 /** 4021 * Returns 1 if the base class specified by the cursor with kind 4022 * CX_CXXBaseSpecifier is virtual. 4023 */ 4024 CINDEX_LINKAGE unsigned clang_isVirtualBase(CXCursor); 4025 4026 /** 4027 * Represents the C++ access control level to a base class for a 4028 * cursor with kind CX_CXXBaseSpecifier. 4029 */ 4030 enum CX_CXXAccessSpecifier { 4031 CX_CXXInvalidAccessSpecifier, 4032 CX_CXXPublic, 4033 CX_CXXProtected, 4034 CX_CXXPrivate 4035 }; 4036 4037 /** 4038 * Returns the access control level for the referenced object. 4039 * 4040 * If the cursor refers to a C++ declaration, its access control level within 4041 * its parent scope is returned. Otherwise, if the cursor refers to a base 4042 * specifier or access specifier, the specifier itself is returned. 4043 */ 4044 CINDEX_LINKAGE enum CX_CXXAccessSpecifier clang_getCXXAccessSpecifier(CXCursor); 4045 4046 /** 4047 * Represents the storage classes as declared in the source. CX_SC_Invalid 4048 * was added for the case that the passed cursor in not a declaration. 4049 */ 4050 enum CX_StorageClass { 4051 CX_SC_Invalid, 4052 CX_SC_None, 4053 CX_SC_Extern, 4054 CX_SC_Static, 4055 CX_SC_PrivateExtern, 4056 CX_SC_OpenCLWorkGroupLocal, 4057 CX_SC_Auto, 4058 CX_SC_Register 4059 }; 4060 4061 /** 4062 * Returns the storage class for a function or variable declaration. 4063 * 4064 * If the passed in Cursor is not a function or variable declaration, 4065 * CX_SC_Invalid is returned else the storage class. 4066 */ 4067 CINDEX_LINKAGE enum CX_StorageClass clang_Cursor_getStorageClass(CXCursor); 4068 4069 /** 4070 * Determine the number of overloaded declarations referenced by a 4071 * \c CXCursor_OverloadedDeclRef cursor. 4072 * 4073 * \param cursor The cursor whose overloaded declarations are being queried. 4074 * 4075 * \returns The number of overloaded declarations referenced by \c cursor. If it 4076 * is not a \c CXCursor_OverloadedDeclRef cursor, returns 0. 4077 */ 4078 CINDEX_LINKAGE unsigned clang_getNumOverloadedDecls(CXCursor cursor); 4079 4080 /** 4081 * Retrieve a cursor for one of the overloaded declarations referenced 4082 * by a \c CXCursor_OverloadedDeclRef cursor. 4083 * 4084 * \param cursor The cursor whose overloaded declarations are being queried. 4085 * 4086 * \param index The zero-based index into the set of overloaded declarations in 4087 * the cursor. 4088 * 4089 * \returns A cursor representing the declaration referenced by the given 4090 * \c cursor at the specified \c index. If the cursor does not have an 4091 * associated set of overloaded declarations, or if the index is out of bounds, 4092 * returns \c clang_getNullCursor(); 4093 */ 4094 CINDEX_LINKAGE CXCursor clang_getOverloadedDecl(CXCursor cursor, 4095 unsigned index); 4096 4097 /** 4098 * @} 4099 */ 4100 4101 /** 4102 * \defgroup CINDEX_ATTRIBUTES Information for attributes 4103 * 4104 * @{ 4105 */ 4106 4107 /** 4108 * For cursors representing an iboutletcollection attribute, 4109 * this function returns the collection element type. 4110 * 4111 */ 4112 CINDEX_LINKAGE CXType clang_getIBOutletCollectionType(CXCursor); 4113 4114 /** 4115 * @} 4116 */ 4117 4118 /** 4119 * \defgroup CINDEX_CURSOR_TRAVERSAL Traversing the AST with cursors 4120 * 4121 * These routines provide the ability to traverse the abstract syntax tree 4122 * using cursors. 4123 * 4124 * @{ 4125 */ 4126 4127 /** 4128 * Describes how the traversal of the children of a particular 4129 * cursor should proceed after visiting a particular child cursor. 4130 * 4131 * A value of this enumeration type should be returned by each 4132 * \c CXCursorVisitor to indicate how clang_visitChildren() proceed. 4133 */ 4134 enum CXChildVisitResult { 4135 /** 4136 * Terminates the cursor traversal. 4137 */ 4138 CXChildVisit_Break, 4139 /** 4140 * Continues the cursor traversal with the next sibling of 4141 * the cursor just visited, without visiting its children. 4142 */ 4143 CXChildVisit_Continue, 4144 /** 4145 * Recursively traverse the children of this cursor, using 4146 * the same visitor and client data. 4147 */ 4148 CXChildVisit_Recurse 4149 }; 4150 4151 /** 4152 * Visitor invoked for each cursor found by a traversal. 4153 * 4154 * This visitor function will be invoked for each cursor found by 4155 * clang_visitCursorChildren(). Its first argument is the cursor being 4156 * visited, its second argument is the parent visitor for that cursor, 4157 * and its third argument is the client data provided to 4158 * clang_visitCursorChildren(). 4159 * 4160 * The visitor should return one of the \c CXChildVisitResult values 4161 * to direct clang_visitCursorChildren(). 4162 */ 4163 typedef enum CXChildVisitResult (*CXCursorVisitor)(CXCursor cursor, 4164 CXCursor parent, 4165 CXClientData client_data); 4166 4167 /** 4168 * Visit the children of a particular cursor. 4169 * 4170 * This function visits all the direct children of the given cursor, 4171 * invoking the given \p visitor function with the cursors of each 4172 * visited child. The traversal may be recursive, if the visitor returns 4173 * \c CXChildVisit_Recurse. The traversal may also be ended prematurely, if 4174 * the visitor returns \c CXChildVisit_Break. 4175 * 4176 * \param parent the cursor whose child may be visited. All kinds of 4177 * cursors can be visited, including invalid cursors (which, by 4178 * definition, have no children). 4179 * 4180 * \param visitor the visitor function that will be invoked for each 4181 * child of \p parent. 4182 * 4183 * \param client_data pointer data supplied by the client, which will 4184 * be passed to the visitor each time it is invoked. 4185 * 4186 * \returns a non-zero value if the traversal was terminated 4187 * prematurely by the visitor returning \c CXChildVisit_Break. 4188 */ 4189 CINDEX_LINKAGE unsigned clang_visitChildren(CXCursor parent, 4190 CXCursorVisitor visitor, 4191 CXClientData client_data); 4192 #ifdef __has_feature 4193 #if __has_feature(blocks) 4194 /** 4195 * Visitor invoked for each cursor found by a traversal. 4196 * 4197 * This visitor block will be invoked for each cursor found by 4198 * clang_visitChildrenWithBlock(). Its first argument is the cursor being 4199 * visited, its second argument is the parent visitor for that cursor. 4200 * 4201 * The visitor should return one of the \c CXChildVisitResult values 4202 * to direct clang_visitChildrenWithBlock(). 4203 */ 4204 typedef enum CXChildVisitResult (^CXCursorVisitorBlock)(CXCursor cursor, 4205 CXCursor parent); 4206 4207 /** 4208 * Visits the children of a cursor using the specified block. Behaves 4209 * identically to clang_visitChildren() in all other respects. 4210 */ 4211 CINDEX_LINKAGE unsigned 4212 clang_visitChildrenWithBlock(CXCursor parent, CXCursorVisitorBlock block); 4213 #endif 4214 #endif 4215 4216 /** 4217 * @} 4218 */ 4219 4220 /** 4221 * \defgroup CINDEX_CURSOR_XREF Cross-referencing in the AST 4222 * 4223 * These routines provide the ability to determine references within and 4224 * across translation units, by providing the names of the entities referenced 4225 * by cursors, follow reference cursors to the declarations they reference, 4226 * and associate declarations with their definitions. 4227 * 4228 * @{ 4229 */ 4230 4231 /** 4232 * Retrieve a Unified Symbol Resolution (USR) for the entity referenced 4233 * by the given cursor. 4234 * 4235 * A Unified Symbol Resolution (USR) is a string that identifies a particular 4236 * entity (function, class, variable, etc.) within a program. USRs can be 4237 * compared across translation units to determine, e.g., when references in 4238 * one translation refer to an entity defined in another translation unit. 4239 */ 4240 CINDEX_LINKAGE CXString clang_getCursorUSR(CXCursor); 4241 4242 /** 4243 * Construct a USR for a specified Objective-C class. 4244 */ 4245 CINDEX_LINKAGE CXString clang_constructUSR_ObjCClass(const char *class_name); 4246 4247 /** 4248 * Construct a USR for a specified Objective-C category. 4249 */ 4250 CINDEX_LINKAGE CXString clang_constructUSR_ObjCCategory( 4251 const char *class_name, const char *category_name); 4252 4253 /** 4254 * Construct a USR for a specified Objective-C protocol. 4255 */ 4256 CINDEX_LINKAGE CXString 4257 clang_constructUSR_ObjCProtocol(const char *protocol_name); 4258 4259 /** 4260 * Construct a USR for a specified Objective-C instance variable and 4261 * the USR for its containing class. 4262 */ 4263 CINDEX_LINKAGE CXString clang_constructUSR_ObjCIvar(const char *name, 4264 CXString classUSR); 4265 4266 /** 4267 * Construct a USR for a specified Objective-C method and 4268 * the USR for its containing class. 4269 */ 4270 CINDEX_LINKAGE CXString clang_constructUSR_ObjCMethod(const char *name, 4271 unsigned isInstanceMethod, 4272 CXString classUSR); 4273 4274 /** 4275 * Construct a USR for a specified Objective-C property and the USR 4276 * for its containing class. 4277 */ 4278 CINDEX_LINKAGE CXString clang_constructUSR_ObjCProperty(const char *property, 4279 CXString classUSR); 4280 4281 /** 4282 * Retrieve a name for the entity referenced by this cursor. 4283 */ 4284 CINDEX_LINKAGE CXString clang_getCursorSpelling(CXCursor); 4285 4286 /** 4287 * Retrieve a range for a piece that forms the cursors spelling name. 4288 * Most of the times there is only one range for the complete spelling but for 4289 * Objective-C methods and Objective-C message expressions, there are multiple 4290 * pieces for each selector identifier. 4291 * 4292 * \param pieceIndex the index of the spelling name piece. If this is greater 4293 * than the actual number of pieces, it will return a NULL (invalid) range. 4294 * 4295 * \param options Reserved. 4296 */ 4297 CINDEX_LINKAGE CXSourceRange clang_Cursor_getSpellingNameRange( 4298 CXCursor, unsigned pieceIndex, unsigned options); 4299 4300 /** 4301 * Opaque pointer representing a policy that controls pretty printing 4302 * for \c clang_getCursorPrettyPrinted. 4303 */ 4304 typedef void *CXPrintingPolicy; 4305 4306 /** 4307 * Properties for the printing policy. 4308 * 4309 * See \c clang::PrintingPolicy for more information. 4310 */ 4311 enum CXPrintingPolicyProperty { 4312 CXPrintingPolicy_Indentation, 4313 CXPrintingPolicy_SuppressSpecifiers, 4314 CXPrintingPolicy_SuppressTagKeyword, 4315 CXPrintingPolicy_IncludeTagDefinition, 4316 CXPrintingPolicy_SuppressScope, 4317 CXPrintingPolicy_SuppressUnwrittenScope, 4318 CXPrintingPolicy_SuppressInitializers, 4319 CXPrintingPolicy_ConstantArraySizeAsWritten, 4320 CXPrintingPolicy_AnonymousTagLocations, 4321 CXPrintingPolicy_SuppressStrongLifetime, 4322 CXPrintingPolicy_SuppressLifetimeQualifiers, 4323 CXPrintingPolicy_SuppressTemplateArgsInCXXConstructors, 4324 CXPrintingPolicy_Bool, 4325 CXPrintingPolicy_Restrict, 4326 CXPrintingPolicy_Alignof, 4327 CXPrintingPolicy_UnderscoreAlignof, 4328 CXPrintingPolicy_UseVoidForZeroParams, 4329 CXPrintingPolicy_TerseOutput, 4330 CXPrintingPolicy_PolishForDeclaration, 4331 CXPrintingPolicy_Half, 4332 CXPrintingPolicy_MSWChar, 4333 CXPrintingPolicy_IncludeNewlines, 4334 CXPrintingPolicy_MSVCFormatting, 4335 CXPrintingPolicy_ConstantsAsWritten, 4336 CXPrintingPolicy_SuppressImplicitBase, 4337 CXPrintingPolicy_FullyQualifiedName, 4338 4339 CXPrintingPolicy_LastProperty = CXPrintingPolicy_FullyQualifiedName 4340 }; 4341 4342 /** 4343 * Get a property value for the given printing policy. 4344 */ 4345 CINDEX_LINKAGE unsigned 4346 clang_PrintingPolicy_getProperty(CXPrintingPolicy Policy, 4347 enum CXPrintingPolicyProperty Property); 4348 4349 /** 4350 * Set a property value for the given printing policy. 4351 */ 4352 CINDEX_LINKAGE void 4353 clang_PrintingPolicy_setProperty(CXPrintingPolicy Policy, 4354 enum CXPrintingPolicyProperty Property, 4355 unsigned Value); 4356 4357 /** 4358 * Retrieve the default policy for the cursor. 4359 * 4360 * The policy should be released after use with \c 4361 * clang_PrintingPolicy_dispose. 4362 */ 4363 CINDEX_LINKAGE CXPrintingPolicy clang_getCursorPrintingPolicy(CXCursor); 4364 4365 /** 4366 * Release a printing policy. 4367 */ 4368 CINDEX_LINKAGE void clang_PrintingPolicy_dispose(CXPrintingPolicy Policy); 4369 4370 /** 4371 * Pretty print declarations. 4372 * 4373 * \param Cursor The cursor representing a declaration. 4374 * 4375 * \param Policy The policy to control the entities being printed. If 4376 * NULL, a default policy is used. 4377 * 4378 * \returns The pretty printed declaration or the empty string for 4379 * other cursors. 4380 */ 4381 CINDEX_LINKAGE CXString clang_getCursorPrettyPrinted(CXCursor Cursor, 4382 CXPrintingPolicy Policy); 4383 4384 /** 4385 * Retrieve the display name for the entity referenced by this cursor. 4386 * 4387 * The display name contains extra information that helps identify the cursor, 4388 * such as the parameters of a function or template or the arguments of a 4389 * class template specialization. 4390 */ 4391 CINDEX_LINKAGE CXString clang_getCursorDisplayName(CXCursor); 4392 4393 /** For a cursor that is a reference, retrieve a cursor representing the 4394 * entity that it references. 4395 * 4396 * Reference cursors refer to other entities in the AST. For example, an 4397 * Objective-C superclass reference cursor refers to an Objective-C class. 4398 * This function produces the cursor for the Objective-C class from the 4399 * cursor for the superclass reference. If the input cursor is a declaration or 4400 * definition, it returns that declaration or definition unchanged. 4401 * Otherwise, returns the NULL cursor. 4402 */ 4403 CINDEX_LINKAGE CXCursor clang_getCursorReferenced(CXCursor); 4404 4405 /** 4406 * For a cursor that is either a reference to or a declaration 4407 * of some entity, retrieve a cursor that describes the definition of 4408 * that entity. 4409 * 4410 * Some entities can be declared multiple times within a translation 4411 * unit, but only one of those declarations can also be a 4412 * definition. For example, given: 4413 * 4414 * \code 4415 * int f(int, int); 4416 * int g(int x, int y) { return f(x, y); } 4417 * int f(int a, int b) { return a + b; } 4418 * int f(int, int); 4419 * \endcode 4420 * 4421 * there are three declarations of the function "f", but only the 4422 * second one is a definition. The clang_getCursorDefinition() 4423 * function will take any cursor pointing to a declaration of "f" 4424 * (the first or fourth lines of the example) or a cursor referenced 4425 * that uses "f" (the call to "f' inside "g") and will return a 4426 * declaration cursor pointing to the definition (the second "f" 4427 * declaration). 4428 * 4429 * If given a cursor for which there is no corresponding definition, 4430 * e.g., because there is no definition of that entity within this 4431 * translation unit, returns a NULL cursor. 4432 */ 4433 CINDEX_LINKAGE CXCursor clang_getCursorDefinition(CXCursor); 4434 4435 /** 4436 * Determine whether the declaration pointed to by this cursor 4437 * is also a definition of that entity. 4438 */ 4439 CINDEX_LINKAGE unsigned clang_isCursorDefinition(CXCursor); 4440 4441 /** 4442 * Retrieve the canonical cursor corresponding to the given cursor. 4443 * 4444 * In the C family of languages, many kinds of entities can be declared several 4445 * times within a single translation unit. For example, a structure type can 4446 * be forward-declared (possibly multiple times) and later defined: 4447 * 4448 * \code 4449 * struct X; 4450 * struct X; 4451 * struct X { 4452 * int member; 4453 * }; 4454 * \endcode 4455 * 4456 * The declarations and the definition of \c X are represented by three 4457 * different cursors, all of which are declarations of the same underlying 4458 * entity. One of these cursor is considered the "canonical" cursor, which 4459 * is effectively the representative for the underlying entity. One can 4460 * determine if two cursors are declarations of the same underlying entity by 4461 * comparing their canonical cursors. 4462 * 4463 * \returns The canonical cursor for the entity referred to by the given cursor. 4464 */ 4465 CINDEX_LINKAGE CXCursor clang_getCanonicalCursor(CXCursor); 4466 4467 /** 4468 * If the cursor points to a selector identifier in an Objective-C 4469 * method or message expression, this returns the selector index. 4470 * 4471 * After getting a cursor with #clang_getCursor, this can be called to 4472 * determine if the location points to a selector identifier. 4473 * 4474 * \returns The selector index if the cursor is an Objective-C method or message 4475 * expression and the cursor is pointing to a selector identifier, or -1 4476 * otherwise. 4477 */ 4478 CINDEX_LINKAGE int clang_Cursor_getObjCSelectorIndex(CXCursor); 4479 4480 /** 4481 * Given a cursor pointing to a C++ method call or an Objective-C 4482 * message, returns non-zero if the method/message is "dynamic", meaning: 4483 * 4484 * For a C++ method: the call is virtual. 4485 * For an Objective-C message: the receiver is an object instance, not 'super' 4486 * or a specific class. 4487 * 4488 * If the method/message is "static" or the cursor does not point to a 4489 * method/message, it will return zero. 4490 */ 4491 CINDEX_LINKAGE int clang_Cursor_isDynamicCall(CXCursor C); 4492 4493 /** 4494 * Given a cursor pointing to an Objective-C message or property 4495 * reference, or C++ method call, returns the CXType of the receiver. 4496 */ 4497 CINDEX_LINKAGE CXType clang_Cursor_getReceiverType(CXCursor C); 4498 4499 /** 4500 * Property attributes for a \c CXCursor_ObjCPropertyDecl. 4501 */ 4502 typedef enum { 4503 CXObjCPropertyAttr_noattr = 0x00, 4504 CXObjCPropertyAttr_readonly = 0x01, 4505 CXObjCPropertyAttr_getter = 0x02, 4506 CXObjCPropertyAttr_assign = 0x04, 4507 CXObjCPropertyAttr_readwrite = 0x08, 4508 CXObjCPropertyAttr_retain = 0x10, 4509 CXObjCPropertyAttr_copy = 0x20, 4510 CXObjCPropertyAttr_nonatomic = 0x40, 4511 CXObjCPropertyAttr_setter = 0x80, 4512 CXObjCPropertyAttr_atomic = 0x100, 4513 CXObjCPropertyAttr_weak = 0x200, 4514 CXObjCPropertyAttr_strong = 0x400, 4515 CXObjCPropertyAttr_unsafe_unretained = 0x800, 4516 CXObjCPropertyAttr_class = 0x1000 4517 } CXObjCPropertyAttrKind; 4518 4519 /** 4520 * Given a cursor that represents a property declaration, return the 4521 * associated property attributes. The bits are formed from 4522 * \c CXObjCPropertyAttrKind. 4523 * 4524 * \param reserved Reserved for future use, pass 0. 4525 */ 4526 CINDEX_LINKAGE unsigned 4527 clang_Cursor_getObjCPropertyAttributes(CXCursor C, unsigned reserved); 4528 4529 /** 4530 * Given a cursor that represents a property declaration, return the 4531 * name of the method that implements the getter. 4532 */ 4533 CINDEX_LINKAGE CXString clang_Cursor_getObjCPropertyGetterName(CXCursor C); 4534 4535 /** 4536 * Given a cursor that represents a property declaration, return the 4537 * name of the method that implements the setter, if any. 4538 */ 4539 CINDEX_LINKAGE CXString clang_Cursor_getObjCPropertySetterName(CXCursor C); 4540 4541 /** 4542 * 'Qualifiers' written next to the return and parameter types in 4543 * Objective-C method declarations. 4544 */ 4545 typedef enum { 4546 CXObjCDeclQualifier_None = 0x0, 4547 CXObjCDeclQualifier_In = 0x1, 4548 CXObjCDeclQualifier_Inout = 0x2, 4549 CXObjCDeclQualifier_Out = 0x4, 4550 CXObjCDeclQualifier_Bycopy = 0x8, 4551 CXObjCDeclQualifier_Byref = 0x10, 4552 CXObjCDeclQualifier_Oneway = 0x20 4553 } CXObjCDeclQualifierKind; 4554 4555 /** 4556 * Given a cursor that represents an Objective-C method or parameter 4557 * declaration, return the associated Objective-C qualifiers for the return 4558 * type or the parameter respectively. The bits are formed from 4559 * CXObjCDeclQualifierKind. 4560 */ 4561 CINDEX_LINKAGE unsigned clang_Cursor_getObjCDeclQualifiers(CXCursor C); 4562 4563 /** 4564 * Given a cursor that represents an Objective-C method or property 4565 * declaration, return non-zero if the declaration was affected by "\@optional". 4566 * Returns zero if the cursor is not such a declaration or it is "\@required". 4567 */ 4568 CINDEX_LINKAGE unsigned clang_Cursor_isObjCOptional(CXCursor C); 4569 4570 /** 4571 * Returns non-zero if the given cursor is a variadic function or method. 4572 */ 4573 CINDEX_LINKAGE unsigned clang_Cursor_isVariadic(CXCursor C); 4574 4575 /** 4576 * Returns non-zero if the given cursor points to a symbol marked with 4577 * external_source_symbol attribute. 4578 * 4579 * \param language If non-NULL, and the attribute is present, will be set to 4580 * the 'language' string from the attribute. 4581 * 4582 * \param definedIn If non-NULL, and the attribute is present, will be set to 4583 * the 'definedIn' string from the attribute. 4584 * 4585 * \param isGenerated If non-NULL, and the attribute is present, will be set to 4586 * non-zero if the 'generated_declaration' is set in the attribute. 4587 */ 4588 CINDEX_LINKAGE unsigned clang_Cursor_isExternalSymbol(CXCursor C, 4589 CXString *language, 4590 CXString *definedIn, 4591 unsigned *isGenerated); 4592 4593 /** 4594 * Given a cursor that represents a declaration, return the associated 4595 * comment's source range. The range may include multiple consecutive comments 4596 * with whitespace in between. 4597 */ 4598 CINDEX_LINKAGE CXSourceRange clang_Cursor_getCommentRange(CXCursor C); 4599 4600 /** 4601 * Given a cursor that represents a declaration, return the associated 4602 * comment text, including comment markers. 4603 */ 4604 CINDEX_LINKAGE CXString clang_Cursor_getRawCommentText(CXCursor C); 4605 4606 /** 4607 * Given a cursor that represents a documentable entity (e.g., 4608 * declaration), return the associated \paragraph; otherwise return the 4609 * first paragraph. 4610 */ 4611 CINDEX_LINKAGE CXString clang_Cursor_getBriefCommentText(CXCursor C); 4612 4613 /** 4614 * @} 4615 */ 4616 4617 /** \defgroup CINDEX_MANGLE Name Mangling API Functions 4618 * 4619 * @{ 4620 */ 4621 4622 /** 4623 * Retrieve the CXString representing the mangled name of the cursor. 4624 */ 4625 CINDEX_LINKAGE CXString clang_Cursor_getMangling(CXCursor); 4626 4627 /** 4628 * Retrieve the CXStrings representing the mangled symbols of the C++ 4629 * constructor or destructor at the cursor. 4630 */ 4631 CINDEX_LINKAGE CXStringSet *clang_Cursor_getCXXManglings(CXCursor); 4632 4633 /** 4634 * Retrieve the CXStrings representing the mangled symbols of the ObjC 4635 * class interface or implementation at the cursor. 4636 */ 4637 CINDEX_LINKAGE CXStringSet *clang_Cursor_getObjCManglings(CXCursor); 4638 4639 /** 4640 * @} 4641 */ 4642 4643 /** 4644 * \defgroup CINDEX_MODULE Module introspection 4645 * 4646 * The functions in this group provide access to information about modules. 4647 * 4648 * @{ 4649 */ 4650 4651 typedef void *CXModule; 4652 4653 /** 4654 * Given a CXCursor_ModuleImportDecl cursor, return the associated module. 4655 */ 4656 CINDEX_LINKAGE CXModule clang_Cursor_getModule(CXCursor C); 4657 4658 /** 4659 * Given a CXFile header file, return the module that contains it, if one 4660 * exists. 4661 */ 4662 CINDEX_LINKAGE CXModule clang_getModuleForFile(CXTranslationUnit, CXFile); 4663 4664 /** 4665 * \param Module a module object. 4666 * 4667 * \returns the module file where the provided module object came from. 4668 */ 4669 CINDEX_LINKAGE CXFile clang_Module_getASTFile(CXModule Module); 4670 4671 /** 4672 * \param Module a module object. 4673 * 4674 * \returns the parent of a sub-module or NULL if the given module is top-level, 4675 * e.g. for 'std.vector' it will return the 'std' module. 4676 */ 4677 CINDEX_LINKAGE CXModule clang_Module_getParent(CXModule Module); 4678 4679 /** 4680 * \param Module a module object. 4681 * 4682 * \returns the name of the module, e.g. for the 'std.vector' sub-module it 4683 * will return "vector". 4684 */ 4685 CINDEX_LINKAGE CXString clang_Module_getName(CXModule Module); 4686 4687 /** 4688 * \param Module a module object. 4689 * 4690 * \returns the full name of the module, e.g. "std.vector". 4691 */ 4692 CINDEX_LINKAGE CXString clang_Module_getFullName(CXModule Module); 4693 4694 /** 4695 * \param Module a module object. 4696 * 4697 * \returns non-zero if the module is a system one. 4698 */ 4699 CINDEX_LINKAGE int clang_Module_isSystem(CXModule Module); 4700 4701 /** 4702 * \param Module a module object. 4703 * 4704 * \returns the number of top level headers associated with this module. 4705 */ 4706 CINDEX_LINKAGE unsigned clang_Module_getNumTopLevelHeaders(CXTranslationUnit, 4707 CXModule Module); 4708 4709 /** 4710 * \param Module a module object. 4711 * 4712 * \param Index top level header index (zero-based). 4713 * 4714 * \returns the specified top level header associated with the module. 4715 */ 4716 CINDEX_LINKAGE 4717 CXFile clang_Module_getTopLevelHeader(CXTranslationUnit, CXModule Module, 4718 unsigned Index); 4719 4720 /** 4721 * @} 4722 */ 4723 4724 /** 4725 * \defgroup CINDEX_CPP C++ AST introspection 4726 * 4727 * The routines in this group provide access information in the ASTs specific 4728 * to C++ language features. 4729 * 4730 * @{ 4731 */ 4732 4733 /** 4734 * Determine if a C++ constructor is a converting constructor. 4735 */ 4736 CINDEX_LINKAGE unsigned 4737 clang_CXXConstructor_isConvertingConstructor(CXCursor C); 4738 4739 /** 4740 * Determine if a C++ constructor is a copy constructor. 4741 */ 4742 CINDEX_LINKAGE unsigned clang_CXXConstructor_isCopyConstructor(CXCursor C); 4743 4744 /** 4745 * Determine if a C++ constructor is the default constructor. 4746 */ 4747 CINDEX_LINKAGE unsigned clang_CXXConstructor_isDefaultConstructor(CXCursor C); 4748 4749 /** 4750 * Determine if a C++ constructor is a move constructor. 4751 */ 4752 CINDEX_LINKAGE unsigned clang_CXXConstructor_isMoveConstructor(CXCursor C); 4753 4754 /** 4755 * Determine if a C++ field is declared 'mutable'. 4756 */ 4757 CINDEX_LINKAGE unsigned clang_CXXField_isMutable(CXCursor C); 4758 4759 /** 4760 * Determine if a C++ method is declared '= default'. 4761 */ 4762 CINDEX_LINKAGE unsigned clang_CXXMethod_isDefaulted(CXCursor C); 4763 4764 /** 4765 * Determine if a C++ member function or member function template is 4766 * pure virtual. 4767 */ 4768 CINDEX_LINKAGE unsigned clang_CXXMethod_isPureVirtual(CXCursor C); 4769 4770 /** 4771 * Determine if a C++ member function or member function template is 4772 * declared 'static'. 4773 */ 4774 CINDEX_LINKAGE unsigned clang_CXXMethod_isStatic(CXCursor C); 4775 4776 /** 4777 * Determine if a C++ member function or member function template is 4778 * explicitly declared 'virtual' or if it overrides a virtual method from 4779 * one of the base classes. 4780 */ 4781 CINDEX_LINKAGE unsigned clang_CXXMethod_isVirtual(CXCursor C); 4782 4783 /** 4784 * Determine if a C++ record is abstract, i.e. whether a class or struct 4785 * has a pure virtual member function. 4786 */ 4787 CINDEX_LINKAGE unsigned clang_CXXRecord_isAbstract(CXCursor C); 4788 4789 /** 4790 * Determine if an enum declaration refers to a scoped enum. 4791 */ 4792 CINDEX_LINKAGE unsigned clang_EnumDecl_isScoped(CXCursor C); 4793 4794 /** 4795 * Determine if a C++ member function or member function template is 4796 * declared 'const'. 4797 */ 4798 CINDEX_LINKAGE unsigned clang_CXXMethod_isConst(CXCursor C); 4799 4800 /** 4801 * Given a cursor that represents a template, determine 4802 * the cursor kind of the specializations would be generated by instantiating 4803 * the template. 4804 * 4805 * This routine can be used to determine what flavor of function template, 4806 * class template, or class template partial specialization is stored in the 4807 * cursor. For example, it can describe whether a class template cursor is 4808 * declared with "struct", "class" or "union". 4809 * 4810 * \param C The cursor to query. This cursor should represent a template 4811 * declaration. 4812 * 4813 * \returns The cursor kind of the specializations that would be generated 4814 * by instantiating the template \p C. If \p C is not a template, returns 4815 * \c CXCursor_NoDeclFound. 4816 */ 4817 CINDEX_LINKAGE enum CXCursorKind clang_getTemplateCursorKind(CXCursor C); 4818 4819 /** 4820 * Given a cursor that may represent a specialization or instantiation 4821 * of a template, retrieve the cursor that represents the template that it 4822 * specializes or from which it was instantiated. 4823 * 4824 * This routine determines the template involved both for explicit 4825 * specializations of templates and for implicit instantiations of the template, 4826 * both of which are referred to as "specializations". For a class template 4827 * specialization (e.g., \c std::vector<bool>), this routine will return 4828 * either the primary template (\c std::vector) or, if the specialization was 4829 * instantiated from a class template partial specialization, the class template 4830 * partial specialization. For a class template partial specialization and a 4831 * function template specialization (including instantiations), this 4832 * this routine will return the specialized template. 4833 * 4834 * For members of a class template (e.g., member functions, member classes, or 4835 * static data members), returns the specialized or instantiated member. 4836 * Although not strictly "templates" in the C++ language, members of class 4837 * templates have the same notions of specializations and instantiations that 4838 * templates do, so this routine treats them similarly. 4839 * 4840 * \param C A cursor that may be a specialization of a template or a member 4841 * of a template. 4842 * 4843 * \returns If the given cursor is a specialization or instantiation of a 4844 * template or a member thereof, the template or member that it specializes or 4845 * from which it was instantiated. Otherwise, returns a NULL cursor. 4846 */ 4847 CINDEX_LINKAGE CXCursor clang_getSpecializedCursorTemplate(CXCursor C); 4848 4849 /** 4850 * Given a cursor that references something else, return the source range 4851 * covering that reference. 4852 * 4853 * \param C A cursor pointing to a member reference, a declaration reference, or 4854 * an operator call. 4855 * \param NameFlags A bitset with three independent flags: 4856 * CXNameRange_WantQualifier, CXNameRange_WantTemplateArgs, and 4857 * CXNameRange_WantSinglePiece. 4858 * \param PieceIndex For contiguous names or when passing the flag 4859 * CXNameRange_WantSinglePiece, only one piece with index 0 is 4860 * available. When the CXNameRange_WantSinglePiece flag is not passed for a 4861 * non-contiguous names, this index can be used to retrieve the individual 4862 * pieces of the name. See also CXNameRange_WantSinglePiece. 4863 * 4864 * \returns The piece of the name pointed to by the given cursor. If there is no 4865 * name, or if the PieceIndex is out-of-range, a null-cursor will be returned. 4866 */ 4867 CINDEX_LINKAGE CXSourceRange clang_getCursorReferenceNameRange( 4868 CXCursor C, unsigned NameFlags, unsigned PieceIndex); 4869 4870 enum CXNameRefFlags { 4871 /** 4872 * Include the nested-name-specifier, e.g. Foo:: in x.Foo::y, in the 4873 * range. 4874 */ 4875 CXNameRange_WantQualifier = 0x1, 4876 4877 /** 4878 * Include the explicit template arguments, e.g. \<int> in x.f<int>, 4879 * in the range. 4880 */ 4881 CXNameRange_WantTemplateArgs = 0x2, 4882 4883 /** 4884 * If the name is non-contiguous, return the full spanning range. 4885 * 4886 * Non-contiguous names occur in Objective-C when a selector with two or more 4887 * parameters is used, or in C++ when using an operator: 4888 * \code 4889 * [object doSomething:here withValue:there]; // Objective-C 4890 * return some_vector[1]; // C++ 4891 * \endcode 4892 */ 4893 CXNameRange_WantSinglePiece = 0x4 4894 }; 4895 4896 /** 4897 * @} 4898 */ 4899 4900 /** 4901 * \defgroup CINDEX_LEX Token extraction and manipulation 4902 * 4903 * The routines in this group provide access to the tokens within a 4904 * translation unit, along with a semantic mapping of those tokens to 4905 * their corresponding cursors. 4906 * 4907 * @{ 4908 */ 4909 4910 /** 4911 * Describes a kind of token. 4912 */ 4913 typedef enum CXTokenKind { 4914 /** 4915 * A token that contains some kind of punctuation. 4916 */ 4917 CXToken_Punctuation, 4918 4919 /** 4920 * A language keyword. 4921 */ 4922 CXToken_Keyword, 4923 4924 /** 4925 * An identifier (that is not a keyword). 4926 */ 4927 CXToken_Identifier, 4928 4929 /** 4930 * A numeric, string, or character literal. 4931 */ 4932 CXToken_Literal, 4933 4934 /** 4935 * A comment. 4936 */ 4937 CXToken_Comment 4938 } CXTokenKind; 4939 4940 /** 4941 * Describes a single preprocessing token. 4942 */ 4943 typedef struct { 4944 unsigned int_data[4]; 4945 void *ptr_data; 4946 } CXToken; 4947 4948 /** 4949 * Get the raw lexical token starting with the given location. 4950 * 4951 * \param TU the translation unit whose text is being tokenized. 4952 * 4953 * \param Location the source location with which the token starts. 4954 * 4955 * \returns The token starting with the given location or NULL if no such token 4956 * exist. The returned pointer must be freed with clang_disposeTokens before the 4957 * translation unit is destroyed. 4958 */ 4959 CINDEX_LINKAGE CXToken *clang_getToken(CXTranslationUnit TU, 4960 CXSourceLocation Location); 4961 4962 /** 4963 * Determine the kind of the given token. 4964 */ 4965 CINDEX_LINKAGE CXTokenKind clang_getTokenKind(CXToken); 4966 4967 /** 4968 * Determine the spelling of the given token. 4969 * 4970 * The spelling of a token is the textual representation of that token, e.g., 4971 * the text of an identifier or keyword. 4972 */ 4973 CINDEX_LINKAGE CXString clang_getTokenSpelling(CXTranslationUnit, CXToken); 4974 4975 /** 4976 * Retrieve the source location of the given token. 4977 */ 4978 CINDEX_LINKAGE CXSourceLocation clang_getTokenLocation(CXTranslationUnit, 4979 CXToken); 4980 4981 /** 4982 * Retrieve a source range that covers the given token. 4983 */ 4984 CINDEX_LINKAGE CXSourceRange clang_getTokenExtent(CXTranslationUnit, CXToken); 4985 4986 /** 4987 * Tokenize the source code described by the given range into raw 4988 * lexical tokens. 4989 * 4990 * \param TU the translation unit whose text is being tokenized. 4991 * 4992 * \param Range the source range in which text should be tokenized. All of the 4993 * tokens produced by tokenization will fall within this source range, 4994 * 4995 * \param Tokens this pointer will be set to point to the array of tokens 4996 * that occur within the given source range. The returned pointer must be 4997 * freed with clang_disposeTokens() before the translation unit is destroyed. 4998 * 4999 * \param NumTokens will be set to the number of tokens in the \c *Tokens 5000 * array. 5001 * 5002 */ 5003 CINDEX_LINKAGE void clang_tokenize(CXTranslationUnit TU, CXSourceRange Range, 5004 CXToken **Tokens, unsigned *NumTokens); 5005 5006 /** 5007 * Annotate the given set of tokens by providing cursors for each token 5008 * that can be mapped to a specific entity within the abstract syntax tree. 5009 * 5010 * This token-annotation routine is equivalent to invoking 5011 * clang_getCursor() for the source locations of each of the 5012 * tokens. The cursors provided are filtered, so that only those 5013 * cursors that have a direct correspondence to the token are 5014 * accepted. For example, given a function call \c f(x), 5015 * clang_getCursor() would provide the following cursors: 5016 * 5017 * * when the cursor is over the 'f', a DeclRefExpr cursor referring to 'f'. 5018 * * when the cursor is over the '(' or the ')', a CallExpr referring to 'f'. 5019 * * when the cursor is over the 'x', a DeclRefExpr cursor referring to 'x'. 5020 * 5021 * Only the first and last of these cursors will occur within the 5022 * annotate, since the tokens "f" and "x' directly refer to a function 5023 * and a variable, respectively, but the parentheses are just a small 5024 * part of the full syntax of the function call expression, which is 5025 * not provided as an annotation. 5026 * 5027 * \param TU the translation unit that owns the given tokens. 5028 * 5029 * \param Tokens the set of tokens to annotate. 5030 * 5031 * \param NumTokens the number of tokens in \p Tokens. 5032 * 5033 * \param Cursors an array of \p NumTokens cursors, whose contents will be 5034 * replaced with the cursors corresponding to each token. 5035 */ 5036 CINDEX_LINKAGE void clang_annotateTokens(CXTranslationUnit TU, CXToken *Tokens, 5037 unsigned NumTokens, CXCursor *Cursors); 5038 5039 /** 5040 * Free the given set of tokens. 5041 */ 5042 CINDEX_LINKAGE void clang_disposeTokens(CXTranslationUnit TU, CXToken *Tokens, 5043 unsigned NumTokens); 5044 5045 /** 5046 * @} 5047 */ 5048 5049 /** 5050 * \defgroup CINDEX_DEBUG Debugging facilities 5051 * 5052 * These routines are used for testing and debugging, only, and should not 5053 * be relied upon. 5054 * 5055 * @{ 5056 */ 5057 5058 /* for debug/testing */ 5059 CINDEX_LINKAGE CXString clang_getCursorKindSpelling(enum CXCursorKind Kind); 5060 CINDEX_LINKAGE void clang_getDefinitionSpellingAndExtent( 5061 CXCursor, const char **startBuf, const char **endBuf, unsigned *startLine, 5062 unsigned *startColumn, unsigned *endLine, unsigned *endColumn); 5063 CINDEX_LINKAGE void clang_enableStackTraces(void); 5064 CINDEX_LINKAGE void clang_executeOnThread(void (*fn)(void *), void *user_data, 5065 unsigned stack_size); 5066 5067 /** 5068 * @} 5069 */ 5070 5071 /** 5072 * \defgroup CINDEX_CODE_COMPLET Code completion 5073 * 5074 * Code completion involves taking an (incomplete) source file, along with 5075 * knowledge of where the user is actively editing that file, and suggesting 5076 * syntactically- and semantically-valid constructs that the user might want to 5077 * use at that particular point in the source code. These data structures and 5078 * routines provide support for code completion. 5079 * 5080 * @{ 5081 */ 5082 5083 /** 5084 * A semantic string that describes a code-completion result. 5085 * 5086 * A semantic string that describes the formatting of a code-completion 5087 * result as a single "template" of text that should be inserted into the 5088 * source buffer when a particular code-completion result is selected. 5089 * Each semantic string is made up of some number of "chunks", each of which 5090 * contains some text along with a description of what that text means, e.g., 5091 * the name of the entity being referenced, whether the text chunk is part of 5092 * the template, or whether it is a "placeholder" that the user should replace 5093 * with actual code,of a specific kind. See \c CXCompletionChunkKind for a 5094 * description of the different kinds of chunks. 5095 */ 5096 typedef void *CXCompletionString; 5097 5098 /** 5099 * A single result of code completion. 5100 */ 5101 typedef struct { 5102 /** 5103 * The kind of entity that this completion refers to. 5104 * 5105 * The cursor kind will be a macro, keyword, or a declaration (one of the 5106 * *Decl cursor kinds), describing the entity that the completion is 5107 * referring to. 5108 * 5109 * \todo In the future, we would like to provide a full cursor, to allow 5110 * the client to extract additional information from declaration. 5111 */ 5112 enum CXCursorKind CursorKind; 5113 5114 /** 5115 * The code-completion string that describes how to insert this 5116 * code-completion result into the editing buffer. 5117 */ 5118 CXCompletionString CompletionString; 5119 } CXCompletionResult; 5120 5121 /** 5122 * Describes a single piece of text within a code-completion string. 5123 * 5124 * Each "chunk" within a code-completion string (\c CXCompletionString) is 5125 * either a piece of text with a specific "kind" that describes how that text 5126 * should be interpreted by the client or is another completion string. 5127 */ 5128 enum CXCompletionChunkKind { 5129 /** 5130 * A code-completion string that describes "optional" text that 5131 * could be a part of the template (but is not required). 5132 * 5133 * The Optional chunk is the only kind of chunk that has a code-completion 5134 * string for its representation, which is accessible via 5135 * \c clang_getCompletionChunkCompletionString(). The code-completion string 5136 * describes an additional part of the template that is completely optional. 5137 * For example, optional chunks can be used to describe the placeholders for 5138 * arguments that match up with defaulted function parameters, e.g. given: 5139 * 5140 * \code 5141 * void f(int x, float y = 3.14, double z = 2.71828); 5142 * \endcode 5143 * 5144 * The code-completion string for this function would contain: 5145 * - a TypedText chunk for "f". 5146 * - a LeftParen chunk for "(". 5147 * - a Placeholder chunk for "int x" 5148 * - an Optional chunk containing the remaining defaulted arguments, e.g., 5149 * - a Comma chunk for "," 5150 * - a Placeholder chunk for "float y" 5151 * - an Optional chunk containing the last defaulted argument: 5152 * - a Comma chunk for "," 5153 * - a Placeholder chunk for "double z" 5154 * - a RightParen chunk for ")" 5155 * 5156 * There are many ways to handle Optional chunks. Two simple approaches are: 5157 * - Completely ignore optional chunks, in which case the template for the 5158 * function "f" would only include the first parameter ("int x"). 5159 * - Fully expand all optional chunks, in which case the template for the 5160 * function "f" would have all of the parameters. 5161 */ 5162 CXCompletionChunk_Optional, 5163 /** 5164 * Text that a user would be expected to type to get this 5165 * code-completion result. 5166 * 5167 * There will be exactly one "typed text" chunk in a semantic string, which 5168 * will typically provide the spelling of a keyword or the name of a 5169 * declaration that could be used at the current code point. Clients are 5170 * expected to filter the code-completion results based on the text in this 5171 * chunk. 5172 */ 5173 CXCompletionChunk_TypedText, 5174 /** 5175 * Text that should be inserted as part of a code-completion result. 5176 * 5177 * A "text" chunk represents text that is part of the template to be 5178 * inserted into user code should this particular code-completion result 5179 * be selected. 5180 */ 5181 CXCompletionChunk_Text, 5182 /** 5183 * Placeholder text that should be replaced by the user. 5184 * 5185 * A "placeholder" chunk marks a place where the user should insert text 5186 * into the code-completion template. For example, placeholders might mark 5187 * the function parameters for a function declaration, to indicate that the 5188 * user should provide arguments for each of those parameters. The actual 5189 * text in a placeholder is a suggestion for the text to display before 5190 * the user replaces the placeholder with real code. 5191 */ 5192 CXCompletionChunk_Placeholder, 5193 /** 5194 * Informative text that should be displayed but never inserted as 5195 * part of the template. 5196 * 5197 * An "informative" chunk contains annotations that can be displayed to 5198 * help the user decide whether a particular code-completion result is the 5199 * right option, but which is not part of the actual template to be inserted 5200 * by code completion. 5201 */ 5202 CXCompletionChunk_Informative, 5203 /** 5204 * Text that describes the current parameter when code-completion is 5205 * referring to function call, message send, or template specialization. 5206 * 5207 * A "current parameter" chunk occurs when code-completion is providing 5208 * information about a parameter corresponding to the argument at the 5209 * code-completion point. For example, given a function 5210 * 5211 * \code 5212 * int add(int x, int y); 5213 * \endcode 5214 * 5215 * and the source code \c add(, where the code-completion point is after the 5216 * "(", the code-completion string will contain a "current parameter" chunk 5217 * for "int x", indicating that the current argument will initialize that 5218 * parameter. After typing further, to \c add(17, (where the code-completion 5219 * point is after the ","), the code-completion string will contain a 5220 * "current parameter" chunk to "int y". 5221 */ 5222 CXCompletionChunk_CurrentParameter, 5223 /** 5224 * A left parenthesis ('('), used to initiate a function call or 5225 * signal the beginning of a function parameter list. 5226 */ 5227 CXCompletionChunk_LeftParen, 5228 /** 5229 * A right parenthesis (')'), used to finish a function call or 5230 * signal the end of a function parameter list. 5231 */ 5232 CXCompletionChunk_RightParen, 5233 /** 5234 * A left bracket ('['). 5235 */ 5236 CXCompletionChunk_LeftBracket, 5237 /** 5238 * A right bracket (']'). 5239 */ 5240 CXCompletionChunk_RightBracket, 5241 /** 5242 * A left brace ('{'). 5243 */ 5244 CXCompletionChunk_LeftBrace, 5245 /** 5246 * A right brace ('}'). 5247 */ 5248 CXCompletionChunk_RightBrace, 5249 /** 5250 * A left angle bracket ('<'). 5251 */ 5252 CXCompletionChunk_LeftAngle, 5253 /** 5254 * A right angle bracket ('>'). 5255 */ 5256 CXCompletionChunk_RightAngle, 5257 /** 5258 * A comma separator (','). 5259 */ 5260 CXCompletionChunk_Comma, 5261 /** 5262 * Text that specifies the result type of a given result. 5263 * 5264 * This special kind of informative chunk is not meant to be inserted into 5265 * the text buffer. Rather, it is meant to illustrate the type that an 5266 * expression using the given completion string would have. 5267 */ 5268 CXCompletionChunk_ResultType, 5269 /** 5270 * A colon (':'). 5271 */ 5272 CXCompletionChunk_Colon, 5273 /** 5274 * A semicolon (';'). 5275 */ 5276 CXCompletionChunk_SemiColon, 5277 /** 5278 * An '=' sign. 5279 */ 5280 CXCompletionChunk_Equal, 5281 /** 5282 * Horizontal space (' '). 5283 */ 5284 CXCompletionChunk_HorizontalSpace, 5285 /** 5286 * Vertical space ('\\n'), after which it is generally a good idea to 5287 * perform indentation. 5288 */ 5289 CXCompletionChunk_VerticalSpace 5290 }; 5291 5292 /** 5293 * Determine the kind of a particular chunk within a completion string. 5294 * 5295 * \param completion_string the completion string to query. 5296 * 5297 * \param chunk_number the 0-based index of the chunk in the completion string. 5298 * 5299 * \returns the kind of the chunk at the index \c chunk_number. 5300 */ 5301 CINDEX_LINKAGE enum CXCompletionChunkKind 5302 clang_getCompletionChunkKind(CXCompletionString completion_string, 5303 unsigned chunk_number); 5304 5305 /** 5306 * Retrieve the text associated with a particular chunk within a 5307 * completion string. 5308 * 5309 * \param completion_string the completion string to query. 5310 * 5311 * \param chunk_number the 0-based index of the chunk in the completion string. 5312 * 5313 * \returns the text associated with the chunk at index \c chunk_number. 5314 */ 5315 CINDEX_LINKAGE CXString clang_getCompletionChunkText( 5316 CXCompletionString completion_string, unsigned chunk_number); 5317 5318 /** 5319 * Retrieve the completion string associated with a particular chunk 5320 * within a completion string. 5321 * 5322 * \param completion_string the completion string to query. 5323 * 5324 * \param chunk_number the 0-based index of the chunk in the completion string. 5325 * 5326 * \returns the completion string associated with the chunk at index 5327 * \c chunk_number. 5328 */ 5329 CINDEX_LINKAGE CXCompletionString clang_getCompletionChunkCompletionString( 5330 CXCompletionString completion_string, unsigned chunk_number); 5331 5332 /** 5333 * Retrieve the number of chunks in the given code-completion string. 5334 */ 5335 CINDEX_LINKAGE unsigned 5336 clang_getNumCompletionChunks(CXCompletionString completion_string); 5337 5338 /** 5339 * Determine the priority of this code completion. 5340 * 5341 * The priority of a code completion indicates how likely it is that this 5342 * particular completion is the completion that the user will select. The 5343 * priority is selected by various internal heuristics. 5344 * 5345 * \param completion_string The completion string to query. 5346 * 5347 * \returns The priority of this completion string. Smaller values indicate 5348 * higher-priority (more likely) completions. 5349 */ 5350 CINDEX_LINKAGE unsigned 5351 clang_getCompletionPriority(CXCompletionString completion_string); 5352 5353 /** 5354 * Determine the availability of the entity that this code-completion 5355 * string refers to. 5356 * 5357 * \param completion_string The completion string to query. 5358 * 5359 * \returns The availability of the completion string. 5360 */ 5361 CINDEX_LINKAGE enum CXAvailabilityKind 5362 clang_getCompletionAvailability(CXCompletionString completion_string); 5363 5364 /** 5365 * Retrieve the number of annotations associated with the given 5366 * completion string. 5367 * 5368 * \param completion_string the completion string to query. 5369 * 5370 * \returns the number of annotations associated with the given completion 5371 * string. 5372 */ 5373 CINDEX_LINKAGE unsigned 5374 clang_getCompletionNumAnnotations(CXCompletionString completion_string); 5375 5376 /** 5377 * Retrieve the annotation associated with the given completion string. 5378 * 5379 * \param completion_string the completion string to query. 5380 * 5381 * \param annotation_number the 0-based index of the annotation of the 5382 * completion string. 5383 * 5384 * \returns annotation string associated with the completion at index 5385 * \c annotation_number, or a NULL string if that annotation is not available. 5386 */ 5387 CINDEX_LINKAGE CXString clang_getCompletionAnnotation( 5388 CXCompletionString completion_string, unsigned annotation_number); 5389 5390 /** 5391 * Retrieve the parent context of the given completion string. 5392 * 5393 * The parent context of a completion string is the semantic parent of 5394 * the declaration (if any) that the code completion represents. For example, 5395 * a code completion for an Objective-C method would have the method's class 5396 * or protocol as its context. 5397 * 5398 * \param completion_string The code completion string whose parent is 5399 * being queried. 5400 * 5401 * \param kind DEPRECATED: always set to CXCursor_NotImplemented if non-NULL. 5402 * 5403 * \returns The name of the completion parent, e.g., "NSObject" if 5404 * the completion string represents a method in the NSObject class. 5405 */ 5406 CINDEX_LINKAGE CXString clang_getCompletionParent( 5407 CXCompletionString completion_string, enum CXCursorKind *kind); 5408 5409 /** 5410 * Retrieve the brief documentation comment attached to the declaration 5411 * that corresponds to the given completion string. 5412 */ 5413 CINDEX_LINKAGE CXString 5414 clang_getCompletionBriefComment(CXCompletionString completion_string); 5415 5416 /** 5417 * Retrieve a completion string for an arbitrary declaration or macro 5418 * definition cursor. 5419 * 5420 * \param cursor The cursor to query. 5421 * 5422 * \returns A non-context-sensitive completion string for declaration and macro 5423 * definition cursors, or NULL for other kinds of cursors. 5424 */ 5425 CINDEX_LINKAGE CXCompletionString 5426 clang_getCursorCompletionString(CXCursor cursor); 5427 5428 /** 5429 * Contains the results of code-completion. 5430 * 5431 * This data structure contains the results of code completion, as 5432 * produced by \c clang_codeCompleteAt(). Its contents must be freed by 5433 * \c clang_disposeCodeCompleteResults. 5434 */ 5435 typedef struct { 5436 /** 5437 * The code-completion results. 5438 */ 5439 CXCompletionResult *Results; 5440 5441 /** 5442 * The number of code-completion results stored in the 5443 * \c Results array. 5444 */ 5445 unsigned NumResults; 5446 } CXCodeCompleteResults; 5447 5448 /** 5449 * Retrieve the number of fix-its for the given completion index. 5450 * 5451 * Calling this makes sense only if CXCodeComplete_IncludeCompletionsWithFixIts 5452 * option was set. 5453 * 5454 * \param results The structure keeping all completion results 5455 * 5456 * \param completion_index The index of the completion 5457 * 5458 * \return The number of fix-its which must be applied before the completion at 5459 * completion_index can be applied 5460 */ 5461 CINDEX_LINKAGE unsigned 5462 clang_getCompletionNumFixIts(CXCodeCompleteResults *results, 5463 unsigned completion_index); 5464 5465 /** 5466 * Fix-its that *must* be applied before inserting the text for the 5467 * corresponding completion. 5468 * 5469 * By default, clang_codeCompleteAt() only returns completions with empty 5470 * fix-its. Extra completions with non-empty fix-its should be explicitly 5471 * requested by setting CXCodeComplete_IncludeCompletionsWithFixIts. 5472 * 5473 * For the clients to be able to compute position of the cursor after applying 5474 * fix-its, the following conditions are guaranteed to hold for 5475 * replacement_range of the stored fix-its: 5476 * - Ranges in the fix-its are guaranteed to never contain the completion 5477 * point (or identifier under completion point, if any) inside them, except 5478 * at the start or at the end of the range. 5479 * - If a fix-it range starts or ends with completion point (or starts or 5480 * ends after the identifier under completion point), it will contain at 5481 * least one character. It allows to unambiguously recompute completion 5482 * point after applying the fix-it. 5483 * 5484 * The intuition is that provided fix-its change code around the identifier we 5485 * complete, but are not allowed to touch the identifier itself or the 5486 * completion point. One example of completions with corrections are the ones 5487 * replacing '.' with '->' and vice versa: 5488 * 5489 * std::unique_ptr<std::vector<int>> vec_ptr; 5490 * In 'vec_ptr.^', one of the completions is 'push_back', it requires 5491 * replacing '.' with '->'. 5492 * In 'vec_ptr->^', one of the completions is 'release', it requires 5493 * replacing '->' with '.'. 5494 * 5495 * \param results The structure keeping all completion results 5496 * 5497 * \param completion_index The index of the completion 5498 * 5499 * \param fixit_index The index of the fix-it for the completion at 5500 * completion_index 5501 * 5502 * \param replacement_range The fix-it range that must be replaced before the 5503 * completion at completion_index can be applied 5504 * 5505 * \returns The fix-it string that must replace the code at replacement_range 5506 * before the completion at completion_index can be applied 5507 */ 5508 CINDEX_LINKAGE CXString clang_getCompletionFixIt( 5509 CXCodeCompleteResults *results, unsigned completion_index, 5510 unsigned fixit_index, CXSourceRange *replacement_range); 5511 5512 /** 5513 * Flags that can be passed to \c clang_codeCompleteAt() to 5514 * modify its behavior. 5515 * 5516 * The enumerators in this enumeration can be bitwise-OR'd together to 5517 * provide multiple options to \c clang_codeCompleteAt(). 5518 */ 5519 enum CXCodeComplete_Flags { 5520 /** 5521 * Whether to include macros within the set of code 5522 * completions returned. 5523 */ 5524 CXCodeComplete_IncludeMacros = 0x01, 5525 5526 /** 5527 * Whether to include code patterns for language constructs 5528 * within the set of code completions, e.g., for loops. 5529 */ 5530 CXCodeComplete_IncludeCodePatterns = 0x02, 5531 5532 /** 5533 * Whether to include brief documentation within the set of code 5534 * completions returned. 5535 */ 5536 CXCodeComplete_IncludeBriefComments = 0x04, 5537 5538 /** 5539 * Whether to speed up completion by omitting top- or namespace-level entities 5540 * defined in the preamble. There's no guarantee any particular entity is 5541 * omitted. This may be useful if the headers are indexed externally. 5542 */ 5543 CXCodeComplete_SkipPreamble = 0x08, 5544 5545 /** 5546 * Whether to include completions with small 5547 * fix-its, e.g. change '.' to '->' on member access, etc. 5548 */ 5549 CXCodeComplete_IncludeCompletionsWithFixIts = 0x10 5550 }; 5551 5552 /** 5553 * Bits that represent the context under which completion is occurring. 5554 * 5555 * The enumerators in this enumeration may be bitwise-OR'd together if multiple 5556 * contexts are occurring simultaneously. 5557 */ 5558 enum CXCompletionContext { 5559 /** 5560 * The context for completions is unexposed, as only Clang results 5561 * should be included. (This is equivalent to having no context bits set.) 5562 */ 5563 CXCompletionContext_Unexposed = 0, 5564 5565 /** 5566 * Completions for any possible type should be included in the results. 5567 */ 5568 CXCompletionContext_AnyType = 1 << 0, 5569 5570 /** 5571 * Completions for any possible value (variables, function calls, etc.) 5572 * should be included in the results. 5573 */ 5574 CXCompletionContext_AnyValue = 1 << 1, 5575 /** 5576 * Completions for values that resolve to an Objective-C object should 5577 * be included in the results. 5578 */ 5579 CXCompletionContext_ObjCObjectValue = 1 << 2, 5580 /** 5581 * Completions for values that resolve to an Objective-C selector 5582 * should be included in the results. 5583 */ 5584 CXCompletionContext_ObjCSelectorValue = 1 << 3, 5585 /** 5586 * Completions for values that resolve to a C++ class type should be 5587 * included in the results. 5588 */ 5589 CXCompletionContext_CXXClassTypeValue = 1 << 4, 5590 5591 /** 5592 * Completions for fields of the member being accessed using the dot 5593 * operator should be included in the results. 5594 */ 5595 CXCompletionContext_DotMemberAccess = 1 << 5, 5596 /** 5597 * Completions for fields of the member being accessed using the arrow 5598 * operator should be included in the results. 5599 */ 5600 CXCompletionContext_ArrowMemberAccess = 1 << 6, 5601 /** 5602 * Completions for properties of the Objective-C object being accessed 5603 * using the dot operator should be included in the results. 5604 */ 5605 CXCompletionContext_ObjCPropertyAccess = 1 << 7, 5606 5607 /** 5608 * Completions for enum tags should be included in the results. 5609 */ 5610 CXCompletionContext_EnumTag = 1 << 8, 5611 /** 5612 * Completions for union tags should be included in the results. 5613 */ 5614 CXCompletionContext_UnionTag = 1 << 9, 5615 /** 5616 * Completions for struct tags should be included in the results. 5617 */ 5618 CXCompletionContext_StructTag = 1 << 10, 5619 5620 /** 5621 * Completions for C++ class names should be included in the results. 5622 */ 5623 CXCompletionContext_ClassTag = 1 << 11, 5624 /** 5625 * Completions for C++ namespaces and namespace aliases should be 5626 * included in the results. 5627 */ 5628 CXCompletionContext_Namespace = 1 << 12, 5629 /** 5630 * Completions for C++ nested name specifiers should be included in 5631 * the results. 5632 */ 5633 CXCompletionContext_NestedNameSpecifier = 1 << 13, 5634 5635 /** 5636 * Completions for Objective-C interfaces (classes) should be included 5637 * in the results. 5638 */ 5639 CXCompletionContext_ObjCInterface = 1 << 14, 5640 /** 5641 * Completions for Objective-C protocols should be included in 5642 * the results. 5643 */ 5644 CXCompletionContext_ObjCProtocol = 1 << 15, 5645 /** 5646 * Completions for Objective-C categories should be included in 5647 * the results. 5648 */ 5649 CXCompletionContext_ObjCCategory = 1 << 16, 5650 /** 5651 * Completions for Objective-C instance messages should be included 5652 * in the results. 5653 */ 5654 CXCompletionContext_ObjCInstanceMessage = 1 << 17, 5655 /** 5656 * Completions for Objective-C class messages should be included in 5657 * the results. 5658 */ 5659 CXCompletionContext_ObjCClassMessage = 1 << 18, 5660 /** 5661 * Completions for Objective-C selector names should be included in 5662 * the results. 5663 */ 5664 CXCompletionContext_ObjCSelectorName = 1 << 19, 5665 5666 /** 5667 * Completions for preprocessor macro names should be included in 5668 * the results. 5669 */ 5670 CXCompletionContext_MacroName = 1 << 20, 5671 5672 /** 5673 * Natural language completions should be included in the results. 5674 */ 5675 CXCompletionContext_NaturalLanguage = 1 << 21, 5676 5677 /** 5678 * #include file completions should be included in the results. 5679 */ 5680 CXCompletionContext_IncludedFile = 1 << 22, 5681 5682 /** 5683 * The current context is unknown, so set all contexts. 5684 */ 5685 CXCompletionContext_Unknown = ((1 << 23) - 1) 5686 }; 5687 5688 /** 5689 * Returns a default set of code-completion options that can be 5690 * passed to\c clang_codeCompleteAt(). 5691 */ 5692 CINDEX_LINKAGE unsigned clang_defaultCodeCompleteOptions(void); 5693 5694 /** 5695 * Perform code completion at a given location in a translation unit. 5696 * 5697 * This function performs code completion at a particular file, line, and 5698 * column within source code, providing results that suggest potential 5699 * code snippets based on the context of the completion. The basic model 5700 * for code completion is that Clang will parse a complete source file, 5701 * performing syntax checking up to the location where code-completion has 5702 * been requested. At that point, a special code-completion token is passed 5703 * to the parser, which recognizes this token and determines, based on the 5704 * current location in the C/Objective-C/C++ grammar and the state of 5705 * semantic analysis, what completions to provide. These completions are 5706 * returned via a new \c CXCodeCompleteResults structure. 5707 * 5708 * Code completion itself is meant to be triggered by the client when the 5709 * user types punctuation characters or whitespace, at which point the 5710 * code-completion location will coincide with the cursor. For example, if \c p 5711 * is a pointer, code-completion might be triggered after the "-" and then 5712 * after the ">" in \c p->. When the code-completion location is after the ">", 5713 * the completion results will provide, e.g., the members of the struct that 5714 * "p" points to. The client is responsible for placing the cursor at the 5715 * beginning of the token currently being typed, then filtering the results 5716 * based on the contents of the token. For example, when code-completing for 5717 * the expression \c p->get, the client should provide the location just after 5718 * the ">" (e.g., pointing at the "g") to this code-completion hook. Then, the 5719 * client can filter the results based on the current token text ("get"), only 5720 * showing those results that start with "get". The intent of this interface 5721 * is to separate the relatively high-latency acquisition of code-completion 5722 * results from the filtering of results on a per-character basis, which must 5723 * have a lower latency. 5724 * 5725 * \param TU The translation unit in which code-completion should 5726 * occur. The source files for this translation unit need not be 5727 * completely up-to-date (and the contents of those source files may 5728 * be overridden via \p unsaved_files). Cursors referring into the 5729 * translation unit may be invalidated by this invocation. 5730 * 5731 * \param complete_filename The name of the source file where code 5732 * completion should be performed. This filename may be any file 5733 * included in the translation unit. 5734 * 5735 * \param complete_line The line at which code-completion should occur. 5736 * 5737 * \param complete_column The column at which code-completion should occur. 5738 * Note that the column should point just after the syntactic construct that 5739 * initiated code completion, and not in the middle of a lexical token. 5740 * 5741 * \param unsaved_files the Files that have not yet been saved to disk 5742 * but may be required for parsing or code completion, including the 5743 * contents of those files. The contents and name of these files (as 5744 * specified by CXUnsavedFile) are copied when necessary, so the 5745 * client only needs to guarantee their validity until the call to 5746 * this function returns. 5747 * 5748 * \param num_unsaved_files The number of unsaved file entries in \p 5749 * unsaved_files. 5750 * 5751 * \param options Extra options that control the behavior of code 5752 * completion, expressed as a bitwise OR of the enumerators of the 5753 * CXCodeComplete_Flags enumeration. The 5754 * \c clang_defaultCodeCompleteOptions() function returns a default set 5755 * of code-completion options. 5756 * 5757 * \returns If successful, a new \c CXCodeCompleteResults structure 5758 * containing code-completion results, which should eventually be 5759 * freed with \c clang_disposeCodeCompleteResults(). If code 5760 * completion fails, returns NULL. 5761 */ 5762 CINDEX_LINKAGE 5763 CXCodeCompleteResults * 5764 clang_codeCompleteAt(CXTranslationUnit TU, const char *complete_filename, 5765 unsigned complete_line, unsigned complete_column, 5766 struct CXUnsavedFile *unsaved_files, 5767 unsigned num_unsaved_files, unsigned options); 5768 5769 /** 5770 * Sort the code-completion results in case-insensitive alphabetical 5771 * order. 5772 * 5773 * \param Results The set of results to sort. 5774 * \param NumResults The number of results in \p Results. 5775 */ 5776 CINDEX_LINKAGE 5777 void clang_sortCodeCompletionResults(CXCompletionResult *Results, 5778 unsigned NumResults); 5779 5780 /** 5781 * Free the given set of code-completion results. 5782 */ 5783 CINDEX_LINKAGE 5784 void clang_disposeCodeCompleteResults(CXCodeCompleteResults *Results); 5785 5786 /** 5787 * Determine the number of diagnostics produced prior to the 5788 * location where code completion was performed. 5789 */ 5790 CINDEX_LINKAGE 5791 unsigned clang_codeCompleteGetNumDiagnostics(CXCodeCompleteResults *Results); 5792 5793 /** 5794 * Retrieve a diagnostic associated with the given code completion. 5795 * 5796 * \param Results the code completion results to query. 5797 * \param Index the zero-based diagnostic number to retrieve. 5798 * 5799 * \returns the requested diagnostic. This diagnostic must be freed 5800 * via a call to \c clang_disposeDiagnostic(). 5801 */ 5802 CINDEX_LINKAGE 5803 CXDiagnostic clang_codeCompleteGetDiagnostic(CXCodeCompleteResults *Results, 5804 unsigned Index); 5805 5806 /** 5807 * Determines what completions are appropriate for the context 5808 * the given code completion. 5809 * 5810 * \param Results the code completion results to query 5811 * 5812 * \returns the kinds of completions that are appropriate for use 5813 * along with the given code completion results. 5814 */ 5815 CINDEX_LINKAGE 5816 unsigned long long 5817 clang_codeCompleteGetContexts(CXCodeCompleteResults *Results); 5818 5819 /** 5820 * Returns the cursor kind for the container for the current code 5821 * completion context. The container is only guaranteed to be set for 5822 * contexts where a container exists (i.e. member accesses or Objective-C 5823 * message sends); if there is not a container, this function will return 5824 * CXCursor_InvalidCode. 5825 * 5826 * \param Results the code completion results to query 5827 * 5828 * \param IsIncomplete on return, this value will be false if Clang has complete 5829 * information about the container. If Clang does not have complete 5830 * information, this value will be true. 5831 * 5832 * \returns the container kind, or CXCursor_InvalidCode if there is not a 5833 * container 5834 */ 5835 CINDEX_LINKAGE 5836 enum CXCursorKind 5837 clang_codeCompleteGetContainerKind(CXCodeCompleteResults *Results, 5838 unsigned *IsIncomplete); 5839 5840 /** 5841 * Returns the USR for the container for the current code completion 5842 * context. If there is not a container for the current context, this 5843 * function will return the empty string. 5844 * 5845 * \param Results the code completion results to query 5846 * 5847 * \returns the USR for the container 5848 */ 5849 CINDEX_LINKAGE 5850 CXString clang_codeCompleteGetContainerUSR(CXCodeCompleteResults *Results); 5851 5852 /** 5853 * Returns the currently-entered selector for an Objective-C message 5854 * send, formatted like "initWithFoo:bar:". Only guaranteed to return a 5855 * non-empty string for CXCompletionContext_ObjCInstanceMessage and 5856 * CXCompletionContext_ObjCClassMessage. 5857 * 5858 * \param Results the code completion results to query 5859 * 5860 * \returns the selector (or partial selector) that has been entered thus far 5861 * for an Objective-C message send. 5862 */ 5863 CINDEX_LINKAGE 5864 CXString clang_codeCompleteGetObjCSelector(CXCodeCompleteResults *Results); 5865 5866 /** 5867 * @} 5868 */ 5869 5870 /** 5871 * \defgroup CINDEX_MISC Miscellaneous utility functions 5872 * 5873 * @{ 5874 */ 5875 5876 /** 5877 * Return a version string, suitable for showing to a user, but not 5878 * intended to be parsed (the format is not guaranteed to be stable). 5879 */ 5880 CINDEX_LINKAGE CXString clang_getClangVersion(void); 5881 5882 /** 5883 * Enable/disable crash recovery. 5884 * 5885 * \param isEnabled Flag to indicate if crash recovery is enabled. A non-zero 5886 * value enables crash recovery, while 0 disables it. 5887 */ 5888 CINDEX_LINKAGE void clang_toggleCrashRecovery(unsigned isEnabled); 5889 5890 /** 5891 * Visitor invoked for each file in a translation unit 5892 * (used with clang_getInclusions()). 5893 * 5894 * This visitor function will be invoked by clang_getInclusions() for each 5895 * file included (either at the top-level or by \#include directives) within 5896 * a translation unit. The first argument is the file being included, and 5897 * the second and third arguments provide the inclusion stack. The 5898 * array is sorted in order of immediate inclusion. For example, 5899 * the first element refers to the location that included 'included_file'. 5900 */ 5901 typedef void (*CXInclusionVisitor)(CXFile included_file, 5902 CXSourceLocation *inclusion_stack, 5903 unsigned include_len, 5904 CXClientData client_data); 5905 5906 /** 5907 * Visit the set of preprocessor inclusions in a translation unit. 5908 * The visitor function is called with the provided data for every included 5909 * file. This does not include headers included by the PCH file (unless one 5910 * is inspecting the inclusions in the PCH file itself). 5911 */ 5912 CINDEX_LINKAGE void clang_getInclusions(CXTranslationUnit tu, 5913 CXInclusionVisitor visitor, 5914 CXClientData client_data); 5915 5916 typedef enum { 5917 CXEval_Int = 1, 5918 CXEval_Float = 2, 5919 CXEval_ObjCStrLiteral = 3, 5920 CXEval_StrLiteral = 4, 5921 CXEval_CFStr = 5, 5922 CXEval_Other = 6, 5923 5924 CXEval_UnExposed = 0 5925 5926 } CXEvalResultKind; 5927 5928 /** 5929 * Evaluation result of a cursor 5930 */ 5931 typedef void *CXEvalResult; 5932 5933 /** 5934 * If cursor is a statement declaration tries to evaluate the 5935 * statement and if its variable, tries to evaluate its initializer, 5936 * into its corresponding type. 5937 * If it's an expression, tries to evaluate the expression. 5938 */ 5939 CINDEX_LINKAGE CXEvalResult clang_Cursor_Evaluate(CXCursor C); 5940 5941 /** 5942 * Returns the kind of the evaluated result. 5943 */ 5944 CINDEX_LINKAGE CXEvalResultKind clang_EvalResult_getKind(CXEvalResult E); 5945 5946 /** 5947 * Returns the evaluation result as integer if the 5948 * kind is Int. 5949 */ 5950 CINDEX_LINKAGE int clang_EvalResult_getAsInt(CXEvalResult E); 5951 5952 /** 5953 * Returns the evaluation result as a long long integer if the 5954 * kind is Int. This prevents overflows that may happen if the result is 5955 * returned with clang_EvalResult_getAsInt. 5956 */ 5957 CINDEX_LINKAGE long long clang_EvalResult_getAsLongLong(CXEvalResult E); 5958 5959 /** 5960 * Returns a non-zero value if the kind is Int and the evaluation 5961 * result resulted in an unsigned integer. 5962 */ 5963 CINDEX_LINKAGE unsigned clang_EvalResult_isUnsignedInt(CXEvalResult E); 5964 5965 /** 5966 * Returns the evaluation result as an unsigned integer if 5967 * the kind is Int and clang_EvalResult_isUnsignedInt is non-zero. 5968 */ 5969 CINDEX_LINKAGE unsigned long long 5970 clang_EvalResult_getAsUnsigned(CXEvalResult E); 5971 5972 /** 5973 * Returns the evaluation result as double if the 5974 * kind is double. 5975 */ 5976 CINDEX_LINKAGE double clang_EvalResult_getAsDouble(CXEvalResult E); 5977 5978 /** 5979 * Returns the evaluation result as a constant string if the 5980 * kind is other than Int or float. User must not free this pointer, 5981 * instead call clang_EvalResult_dispose on the CXEvalResult returned 5982 * by clang_Cursor_Evaluate. 5983 */ 5984 CINDEX_LINKAGE const char *clang_EvalResult_getAsStr(CXEvalResult E); 5985 5986 /** 5987 * Disposes the created Eval memory. 5988 */ 5989 CINDEX_LINKAGE void clang_EvalResult_dispose(CXEvalResult E); 5990 /** 5991 * @} 5992 */ 5993 5994 /** \defgroup CINDEX_REMAPPING Remapping functions 5995 * 5996 * @{ 5997 */ 5998 5999 /** 6000 * A remapping of original source files and their translated files. 6001 */ 6002 typedef void *CXRemapping; 6003 6004 /** 6005 * Retrieve a remapping. 6006 * 6007 * \param path the path that contains metadata about remappings. 6008 * 6009 * \returns the requested remapping. This remapping must be freed 6010 * via a call to \c clang_remap_dispose(). Can return NULL if an error occurred. 6011 */ 6012 CINDEX_LINKAGE CXRemapping clang_getRemappings(const char *path); 6013 6014 /** 6015 * Retrieve a remapping. 6016 * 6017 * \param filePaths pointer to an array of file paths containing remapping info. 6018 * 6019 * \param numFiles number of file paths. 6020 * 6021 * \returns the requested remapping. This remapping must be freed 6022 * via a call to \c clang_remap_dispose(). Can return NULL if an error occurred. 6023 */ 6024 CINDEX_LINKAGE 6025 CXRemapping clang_getRemappingsFromFileList(const char **filePaths, 6026 unsigned numFiles); 6027 6028 /** 6029 * Determine the number of remappings. 6030 */ 6031 CINDEX_LINKAGE unsigned clang_remap_getNumFiles(CXRemapping); 6032 6033 /** 6034 * Get the original and the associated filename from the remapping. 6035 * 6036 * \param original If non-NULL, will be set to the original filename. 6037 * 6038 * \param transformed If non-NULL, will be set to the filename that the original 6039 * is associated with. 6040 */ 6041 CINDEX_LINKAGE void clang_remap_getFilenames(CXRemapping, unsigned index, 6042 CXString *original, 6043 CXString *transformed); 6044 6045 /** 6046 * Dispose the remapping. 6047 */ 6048 CINDEX_LINKAGE void clang_remap_dispose(CXRemapping); 6049 6050 /** 6051 * @} 6052 */ 6053 6054 /** \defgroup CINDEX_HIGH Higher level API functions 6055 * 6056 * @{ 6057 */ 6058 6059 enum CXVisitorResult { CXVisit_Break, CXVisit_Continue }; 6060 6061 typedef struct CXCursorAndRangeVisitor { 6062 void *context; 6063 enum CXVisitorResult (*visit)(void *context, CXCursor, CXSourceRange); 6064 } CXCursorAndRangeVisitor; 6065 6066 typedef enum { 6067 /** 6068 * Function returned successfully. 6069 */ 6070 CXResult_Success = 0, 6071 /** 6072 * One of the parameters was invalid for the function. 6073 */ 6074 CXResult_Invalid = 1, 6075 /** 6076 * The function was terminated by a callback (e.g. it returned 6077 * CXVisit_Break) 6078 */ 6079 CXResult_VisitBreak = 2 6080 6081 } CXResult; 6082 6083 /** 6084 * Find references of a declaration in a specific file. 6085 * 6086 * \param cursor pointing to a declaration or a reference of one. 6087 * 6088 * \param file to search for references. 6089 * 6090 * \param visitor callback that will receive pairs of CXCursor/CXSourceRange for 6091 * each reference found. 6092 * The CXSourceRange will point inside the file; if the reference is inside 6093 * a macro (and not a macro argument) the CXSourceRange will be invalid. 6094 * 6095 * \returns one of the CXResult enumerators. 6096 */ 6097 CINDEX_LINKAGE CXResult clang_findReferencesInFile( 6098 CXCursor cursor, CXFile file, CXCursorAndRangeVisitor visitor); 6099 6100 /** 6101 * Find #import/#include directives in a specific file. 6102 * 6103 * \param TU translation unit containing the file to query. 6104 * 6105 * \param file to search for #import/#include directives. 6106 * 6107 * \param visitor callback that will receive pairs of CXCursor/CXSourceRange for 6108 * each directive found. 6109 * 6110 * \returns one of the CXResult enumerators. 6111 */ 6112 CINDEX_LINKAGE CXResult clang_findIncludesInFile( 6113 CXTranslationUnit TU, CXFile file, CXCursorAndRangeVisitor visitor); 6114 6115 #ifdef __has_feature 6116 #if __has_feature(blocks) 6117 6118 typedef enum CXVisitorResult (^CXCursorAndRangeVisitorBlock)(CXCursor, 6119 CXSourceRange); 6120 6121 CINDEX_LINKAGE 6122 CXResult clang_findReferencesInFileWithBlock(CXCursor, CXFile, 6123 CXCursorAndRangeVisitorBlock); 6124 6125 CINDEX_LINKAGE 6126 CXResult clang_findIncludesInFileWithBlock(CXTranslationUnit, CXFile, 6127 CXCursorAndRangeVisitorBlock); 6128 6129 #endif 6130 #endif 6131 6132 /** 6133 * The client's data object that is associated with a CXFile. 6134 */ 6135 typedef void *CXIdxClientFile; 6136 6137 /** 6138 * The client's data object that is associated with a semantic entity. 6139 */ 6140 typedef void *CXIdxClientEntity; 6141 6142 /** 6143 * The client's data object that is associated with a semantic container 6144 * of entities. 6145 */ 6146 typedef void *CXIdxClientContainer; 6147 6148 /** 6149 * The client's data object that is associated with an AST file (PCH 6150 * or module). 6151 */ 6152 typedef void *CXIdxClientASTFile; 6153 6154 /** 6155 * Source location passed to index callbacks. 6156 */ 6157 typedef struct { 6158 void *ptr_data[2]; 6159 unsigned int_data; 6160 } CXIdxLoc; 6161 6162 /** 6163 * Data for ppIncludedFile callback. 6164 */ 6165 typedef struct { 6166 /** 6167 * Location of '#' in the \#include/\#import directive. 6168 */ 6169 CXIdxLoc hashLoc; 6170 /** 6171 * Filename as written in the \#include/\#import directive. 6172 */ 6173 const char *filename; 6174 /** 6175 * The actual file that the \#include/\#import directive resolved to. 6176 */ 6177 CXFile file; 6178 int isImport; 6179 int isAngled; 6180 /** 6181 * Non-zero if the directive was automatically turned into a module 6182 * import. 6183 */ 6184 int isModuleImport; 6185 } CXIdxIncludedFileInfo; 6186 6187 /** 6188 * Data for IndexerCallbacks#importedASTFile. 6189 */ 6190 typedef struct { 6191 /** 6192 * Top level AST file containing the imported PCH, module or submodule. 6193 */ 6194 CXFile file; 6195 /** 6196 * The imported module or NULL if the AST file is a PCH. 6197 */ 6198 CXModule module; 6199 /** 6200 * Location where the file is imported. Applicable only for modules. 6201 */ 6202 CXIdxLoc loc; 6203 /** 6204 * Non-zero if an inclusion directive was automatically turned into 6205 * a module import. Applicable only for modules. 6206 */ 6207 int isImplicit; 6208 6209 } CXIdxImportedASTFileInfo; 6210 6211 typedef enum { 6212 CXIdxEntity_Unexposed = 0, 6213 CXIdxEntity_Typedef = 1, 6214 CXIdxEntity_Function = 2, 6215 CXIdxEntity_Variable = 3, 6216 CXIdxEntity_Field = 4, 6217 CXIdxEntity_EnumConstant = 5, 6218 6219 CXIdxEntity_ObjCClass = 6, 6220 CXIdxEntity_ObjCProtocol = 7, 6221 CXIdxEntity_ObjCCategory = 8, 6222 6223 CXIdxEntity_ObjCInstanceMethod = 9, 6224 CXIdxEntity_ObjCClassMethod = 10, 6225 CXIdxEntity_ObjCProperty = 11, 6226 CXIdxEntity_ObjCIvar = 12, 6227 6228 CXIdxEntity_Enum = 13, 6229 CXIdxEntity_Struct = 14, 6230 CXIdxEntity_Union = 15, 6231 6232 CXIdxEntity_CXXClass = 16, 6233 CXIdxEntity_CXXNamespace = 17, 6234 CXIdxEntity_CXXNamespaceAlias = 18, 6235 CXIdxEntity_CXXStaticVariable = 19, 6236 CXIdxEntity_CXXStaticMethod = 20, 6237 CXIdxEntity_CXXInstanceMethod = 21, 6238 CXIdxEntity_CXXConstructor = 22, 6239 CXIdxEntity_CXXDestructor = 23, 6240 CXIdxEntity_CXXConversionFunction = 24, 6241 CXIdxEntity_CXXTypeAlias = 25, 6242 CXIdxEntity_CXXInterface = 26 6243 6244 } CXIdxEntityKind; 6245 6246 typedef enum { 6247 CXIdxEntityLang_None = 0, 6248 CXIdxEntityLang_C = 1, 6249 CXIdxEntityLang_ObjC = 2, 6250 CXIdxEntityLang_CXX = 3, 6251 CXIdxEntityLang_Swift = 4 6252 } CXIdxEntityLanguage; 6253 6254 /** 6255 * Extra C++ template information for an entity. This can apply to: 6256 * CXIdxEntity_Function 6257 * CXIdxEntity_CXXClass 6258 * CXIdxEntity_CXXStaticMethod 6259 * CXIdxEntity_CXXInstanceMethod 6260 * CXIdxEntity_CXXConstructor 6261 * CXIdxEntity_CXXConversionFunction 6262 * CXIdxEntity_CXXTypeAlias 6263 */ 6264 typedef enum { 6265 CXIdxEntity_NonTemplate = 0, 6266 CXIdxEntity_Template = 1, 6267 CXIdxEntity_TemplatePartialSpecialization = 2, 6268 CXIdxEntity_TemplateSpecialization = 3 6269 } CXIdxEntityCXXTemplateKind; 6270 6271 typedef enum { 6272 CXIdxAttr_Unexposed = 0, 6273 CXIdxAttr_IBAction = 1, 6274 CXIdxAttr_IBOutlet = 2, 6275 CXIdxAttr_IBOutletCollection = 3 6276 } CXIdxAttrKind; 6277 6278 typedef struct { 6279 CXIdxAttrKind kind; 6280 CXCursor cursor; 6281 CXIdxLoc loc; 6282 } CXIdxAttrInfo; 6283 6284 typedef struct { 6285 CXIdxEntityKind kind; 6286 CXIdxEntityCXXTemplateKind templateKind; 6287 CXIdxEntityLanguage lang; 6288 const char *name; 6289 const char *USR; 6290 CXCursor cursor; 6291 const CXIdxAttrInfo *const *attributes; 6292 unsigned numAttributes; 6293 } CXIdxEntityInfo; 6294 6295 typedef struct { 6296 CXCursor cursor; 6297 } CXIdxContainerInfo; 6298 6299 typedef struct { 6300 const CXIdxAttrInfo *attrInfo; 6301 const CXIdxEntityInfo *objcClass; 6302 CXCursor classCursor; 6303 CXIdxLoc classLoc; 6304 } CXIdxIBOutletCollectionAttrInfo; 6305 6306 typedef enum { CXIdxDeclFlag_Skipped = 0x1 } CXIdxDeclInfoFlags; 6307 6308 typedef struct { 6309 const CXIdxEntityInfo *entityInfo; 6310 CXCursor cursor; 6311 CXIdxLoc loc; 6312 const CXIdxContainerInfo *semanticContainer; 6313 /** 6314 * Generally same as #semanticContainer but can be different in 6315 * cases like out-of-line C++ member functions. 6316 */ 6317 const CXIdxContainerInfo *lexicalContainer; 6318 int isRedeclaration; 6319 int isDefinition; 6320 int isContainer; 6321 const CXIdxContainerInfo *declAsContainer; 6322 /** 6323 * Whether the declaration exists in code or was created implicitly 6324 * by the compiler, e.g. implicit Objective-C methods for properties. 6325 */ 6326 int isImplicit; 6327 const CXIdxAttrInfo *const *attributes; 6328 unsigned numAttributes; 6329 6330 unsigned flags; 6331 6332 } CXIdxDeclInfo; 6333 6334 typedef enum { 6335 CXIdxObjCContainer_ForwardRef = 0, 6336 CXIdxObjCContainer_Interface = 1, 6337 CXIdxObjCContainer_Implementation = 2 6338 } CXIdxObjCContainerKind; 6339 6340 typedef struct { 6341 const CXIdxDeclInfo *declInfo; 6342 CXIdxObjCContainerKind kind; 6343 } CXIdxObjCContainerDeclInfo; 6344 6345 typedef struct { 6346 const CXIdxEntityInfo *base; 6347 CXCursor cursor; 6348 CXIdxLoc loc; 6349 } CXIdxBaseClassInfo; 6350 6351 typedef struct { 6352 const CXIdxEntityInfo *protocol; 6353 CXCursor cursor; 6354 CXIdxLoc loc; 6355 } CXIdxObjCProtocolRefInfo; 6356 6357 typedef struct { 6358 const CXIdxObjCProtocolRefInfo *const *protocols; 6359 unsigned numProtocols; 6360 } CXIdxObjCProtocolRefListInfo; 6361 6362 typedef struct { 6363 const CXIdxObjCContainerDeclInfo *containerInfo; 6364 const CXIdxBaseClassInfo *superInfo; 6365 const CXIdxObjCProtocolRefListInfo *protocols; 6366 } CXIdxObjCInterfaceDeclInfo; 6367 6368 typedef struct { 6369 const CXIdxObjCContainerDeclInfo *containerInfo; 6370 const CXIdxEntityInfo *objcClass; 6371 CXCursor classCursor; 6372 CXIdxLoc classLoc; 6373 const CXIdxObjCProtocolRefListInfo *protocols; 6374 } CXIdxObjCCategoryDeclInfo; 6375 6376 typedef struct { 6377 const CXIdxDeclInfo *declInfo; 6378 const CXIdxEntityInfo *getter; 6379 const CXIdxEntityInfo *setter; 6380 } CXIdxObjCPropertyDeclInfo; 6381 6382 typedef struct { 6383 const CXIdxDeclInfo *declInfo; 6384 const CXIdxBaseClassInfo *const *bases; 6385 unsigned numBases; 6386 } CXIdxCXXClassDeclInfo; 6387 6388 /** 6389 * Data for IndexerCallbacks#indexEntityReference. 6390 * 6391 * This may be deprecated in a future version as this duplicates 6392 * the \c CXSymbolRole_Implicit bit in \c CXSymbolRole. 6393 */ 6394 typedef enum { 6395 /** 6396 * The entity is referenced directly in user's code. 6397 */ 6398 CXIdxEntityRef_Direct = 1, 6399 /** 6400 * An implicit reference, e.g. a reference of an Objective-C method 6401 * via the dot syntax. 6402 */ 6403 CXIdxEntityRef_Implicit = 2 6404 } CXIdxEntityRefKind; 6405 6406 /** 6407 * Roles that are attributed to symbol occurrences. 6408 * 6409 * Internal: this currently mirrors low 9 bits of clang::index::SymbolRole with 6410 * higher bits zeroed. These high bits may be exposed in the future. 6411 */ 6412 typedef enum { 6413 CXSymbolRole_None = 0, 6414 CXSymbolRole_Declaration = 1 << 0, 6415 CXSymbolRole_Definition = 1 << 1, 6416 CXSymbolRole_Reference = 1 << 2, 6417 CXSymbolRole_Read = 1 << 3, 6418 CXSymbolRole_Write = 1 << 4, 6419 CXSymbolRole_Call = 1 << 5, 6420 CXSymbolRole_Dynamic = 1 << 6, 6421 CXSymbolRole_AddressOf = 1 << 7, 6422 CXSymbolRole_Implicit = 1 << 8 6423 } CXSymbolRole; 6424 6425 /** 6426 * Data for IndexerCallbacks#indexEntityReference. 6427 */ 6428 typedef struct { 6429 CXIdxEntityRefKind kind; 6430 /** 6431 * Reference cursor. 6432 */ 6433 CXCursor cursor; 6434 CXIdxLoc loc; 6435 /** 6436 * The entity that gets referenced. 6437 */ 6438 const CXIdxEntityInfo *referencedEntity; 6439 /** 6440 * Immediate "parent" of the reference. For example: 6441 * 6442 * \code 6443 * Foo *var; 6444 * \endcode 6445 * 6446 * The parent of reference of type 'Foo' is the variable 'var'. 6447 * For references inside statement bodies of functions/methods, 6448 * the parentEntity will be the function/method. 6449 */ 6450 const CXIdxEntityInfo *parentEntity; 6451 /** 6452 * Lexical container context of the reference. 6453 */ 6454 const CXIdxContainerInfo *container; 6455 /** 6456 * Sets of symbol roles of the reference. 6457 */ 6458 CXSymbolRole role; 6459 } CXIdxEntityRefInfo; 6460 6461 /** 6462 * A group of callbacks used by #clang_indexSourceFile and 6463 * #clang_indexTranslationUnit. 6464 */ 6465 typedef struct { 6466 /** 6467 * Called periodically to check whether indexing should be aborted. 6468 * Should return 0 to continue, and non-zero to abort. 6469 */ 6470 int (*abortQuery)(CXClientData client_data, void *reserved); 6471 6472 /** 6473 * Called at the end of indexing; passes the complete diagnostic set. 6474 */ 6475 void (*diagnostic)(CXClientData client_data, CXDiagnosticSet, void *reserved); 6476 6477 CXIdxClientFile (*enteredMainFile)(CXClientData client_data, CXFile mainFile, 6478 void *reserved); 6479 6480 /** 6481 * Called when a file gets \#included/\#imported. 6482 */ 6483 CXIdxClientFile (*ppIncludedFile)(CXClientData client_data, 6484 const CXIdxIncludedFileInfo *); 6485 6486 /** 6487 * Called when a AST file (PCH or module) gets imported. 6488 * 6489 * AST files will not get indexed (there will not be callbacks to index all 6490 * the entities in an AST file). The recommended action is that, if the AST 6491 * file is not already indexed, to initiate a new indexing job specific to 6492 * the AST file. 6493 */ 6494 CXIdxClientASTFile (*importedASTFile)(CXClientData client_data, 6495 const CXIdxImportedASTFileInfo *); 6496 6497 /** 6498 * Called at the beginning of indexing a translation unit. 6499 */ 6500 CXIdxClientContainer (*startedTranslationUnit)(CXClientData client_data, 6501 void *reserved); 6502 6503 void (*indexDeclaration)(CXClientData client_data, const CXIdxDeclInfo *); 6504 6505 /** 6506 * Called to index a reference of an entity. 6507 */ 6508 void (*indexEntityReference)(CXClientData client_data, 6509 const CXIdxEntityRefInfo *); 6510 6511 } IndexerCallbacks; 6512 6513 CINDEX_LINKAGE int clang_index_isEntityObjCContainerKind(CXIdxEntityKind); 6514 CINDEX_LINKAGE const CXIdxObjCContainerDeclInfo * 6515 clang_index_getObjCContainerDeclInfo(const CXIdxDeclInfo *); 6516 6517 CINDEX_LINKAGE const CXIdxObjCInterfaceDeclInfo * 6518 clang_index_getObjCInterfaceDeclInfo(const CXIdxDeclInfo *); 6519 6520 CINDEX_LINKAGE 6521 const CXIdxObjCCategoryDeclInfo * 6522 clang_index_getObjCCategoryDeclInfo(const CXIdxDeclInfo *); 6523 6524 CINDEX_LINKAGE const CXIdxObjCProtocolRefListInfo * 6525 clang_index_getObjCProtocolRefListInfo(const CXIdxDeclInfo *); 6526 6527 CINDEX_LINKAGE const CXIdxObjCPropertyDeclInfo * 6528 clang_index_getObjCPropertyDeclInfo(const CXIdxDeclInfo *); 6529 6530 CINDEX_LINKAGE const CXIdxIBOutletCollectionAttrInfo * 6531 clang_index_getIBOutletCollectionAttrInfo(const CXIdxAttrInfo *); 6532 6533 CINDEX_LINKAGE const CXIdxCXXClassDeclInfo * 6534 clang_index_getCXXClassDeclInfo(const CXIdxDeclInfo *); 6535 6536 /** 6537 * For retrieving a custom CXIdxClientContainer attached to a 6538 * container. 6539 */ 6540 CINDEX_LINKAGE CXIdxClientContainer 6541 clang_index_getClientContainer(const CXIdxContainerInfo *); 6542 6543 /** 6544 * For setting a custom CXIdxClientContainer attached to a 6545 * container. 6546 */ 6547 CINDEX_LINKAGE void clang_index_setClientContainer(const CXIdxContainerInfo *, 6548 CXIdxClientContainer); 6549 6550 /** 6551 * For retrieving a custom CXIdxClientEntity attached to an entity. 6552 */ 6553 CINDEX_LINKAGE CXIdxClientEntity 6554 clang_index_getClientEntity(const CXIdxEntityInfo *); 6555 6556 /** 6557 * For setting a custom CXIdxClientEntity attached to an entity. 6558 */ 6559 CINDEX_LINKAGE void clang_index_setClientEntity(const CXIdxEntityInfo *, 6560 CXIdxClientEntity); 6561 6562 /** 6563 * An indexing action/session, to be applied to one or multiple 6564 * translation units. 6565 */ 6566 typedef void *CXIndexAction; 6567 6568 /** 6569 * An indexing action/session, to be applied to one or multiple 6570 * translation units. 6571 * 6572 * \param CIdx The index object with which the index action will be associated. 6573 */ 6574 CINDEX_LINKAGE CXIndexAction clang_IndexAction_create(CXIndex CIdx); 6575 6576 /** 6577 * Destroy the given index action. 6578 * 6579 * The index action must not be destroyed until all of the translation units 6580 * created within that index action have been destroyed. 6581 */ 6582 CINDEX_LINKAGE void clang_IndexAction_dispose(CXIndexAction); 6583 6584 typedef enum { 6585 /** 6586 * Used to indicate that no special indexing options are needed. 6587 */ 6588 CXIndexOpt_None = 0x0, 6589 6590 /** 6591 * Used to indicate that IndexerCallbacks#indexEntityReference should 6592 * be invoked for only one reference of an entity per source file that does 6593 * not also include a declaration/definition of the entity. 6594 */ 6595 CXIndexOpt_SuppressRedundantRefs = 0x1, 6596 6597 /** 6598 * Function-local symbols should be indexed. If this is not set 6599 * function-local symbols will be ignored. 6600 */ 6601 CXIndexOpt_IndexFunctionLocalSymbols = 0x2, 6602 6603 /** 6604 * Implicit function/class template instantiations should be indexed. 6605 * If this is not set, implicit instantiations will be ignored. 6606 */ 6607 CXIndexOpt_IndexImplicitTemplateInstantiations = 0x4, 6608 6609 /** 6610 * Suppress all compiler warnings when parsing for indexing. 6611 */ 6612 CXIndexOpt_SuppressWarnings = 0x8, 6613 6614 /** 6615 * Skip a function/method body that was already parsed during an 6616 * indexing session associated with a \c CXIndexAction object. 6617 * Bodies in system headers are always skipped. 6618 */ 6619 CXIndexOpt_SkipParsedBodiesInSession = 0x10 6620 6621 } CXIndexOptFlags; 6622 6623 /** 6624 * Index the given source file and the translation unit corresponding 6625 * to that file via callbacks implemented through #IndexerCallbacks. 6626 * 6627 * \param client_data pointer data supplied by the client, which will 6628 * be passed to the invoked callbacks. 6629 * 6630 * \param index_callbacks Pointer to indexing callbacks that the client 6631 * implements. 6632 * 6633 * \param index_callbacks_size Size of #IndexerCallbacks structure that gets 6634 * passed in index_callbacks. 6635 * 6636 * \param index_options A bitmask of options that affects how indexing is 6637 * performed. This should be a bitwise OR of the CXIndexOpt_XXX flags. 6638 * 6639 * \param[out] out_TU pointer to store a \c CXTranslationUnit that can be 6640 * reused after indexing is finished. Set to \c NULL if you do not require it. 6641 * 6642 * \returns 0 on success or if there were errors from which the compiler could 6643 * recover. If there is a failure from which there is no recovery, returns 6644 * a non-zero \c CXErrorCode. 6645 * 6646 * The rest of the parameters are the same as #clang_parseTranslationUnit. 6647 */ 6648 CINDEX_LINKAGE int clang_indexSourceFile( 6649 CXIndexAction, CXClientData client_data, IndexerCallbacks *index_callbacks, 6650 unsigned index_callbacks_size, unsigned index_options, 6651 const char *source_filename, const char *const *command_line_args, 6652 int num_command_line_args, struct CXUnsavedFile *unsaved_files, 6653 unsigned num_unsaved_files, CXTranslationUnit *out_TU, unsigned TU_options); 6654 6655 /** 6656 * Same as clang_indexSourceFile but requires a full command line 6657 * for \c command_line_args including argv[0]. This is useful if the standard 6658 * library paths are relative to the binary. 6659 */ 6660 CINDEX_LINKAGE int clang_indexSourceFileFullArgv( 6661 CXIndexAction, CXClientData client_data, IndexerCallbacks *index_callbacks, 6662 unsigned index_callbacks_size, unsigned index_options, 6663 const char *source_filename, const char *const *command_line_args, 6664 int num_command_line_args, struct CXUnsavedFile *unsaved_files, 6665 unsigned num_unsaved_files, CXTranslationUnit *out_TU, unsigned TU_options); 6666 6667 /** 6668 * Index the given translation unit via callbacks implemented through 6669 * #IndexerCallbacks. 6670 * 6671 * The order of callback invocations is not guaranteed to be the same as 6672 * when indexing a source file. The high level order will be: 6673 * 6674 * -Preprocessor callbacks invocations 6675 * -Declaration/reference callbacks invocations 6676 * -Diagnostic callback invocations 6677 * 6678 * The parameters are the same as #clang_indexSourceFile. 6679 * 6680 * \returns If there is a failure from which there is no recovery, returns 6681 * non-zero, otherwise returns 0. 6682 */ 6683 CINDEX_LINKAGE int clang_indexTranslationUnit( 6684 CXIndexAction, CXClientData client_data, IndexerCallbacks *index_callbacks, 6685 unsigned index_callbacks_size, unsigned index_options, CXTranslationUnit); 6686 6687 /** 6688 * Retrieve the CXIdxFile, file, line, column, and offset represented by 6689 * the given CXIdxLoc. 6690 * 6691 * If the location refers into a macro expansion, retrieves the 6692 * location of the macro expansion and if it refers into a macro argument 6693 * retrieves the location of the argument. 6694 */ 6695 CINDEX_LINKAGE void clang_indexLoc_getFileLocation(CXIdxLoc loc, 6696 CXIdxClientFile *indexFile, 6697 CXFile *file, unsigned *line, 6698 unsigned *column, 6699 unsigned *offset); 6700 6701 /** 6702 * Retrieve the CXSourceLocation represented by the given CXIdxLoc. 6703 */ 6704 CINDEX_LINKAGE 6705 CXSourceLocation clang_indexLoc_getCXSourceLocation(CXIdxLoc loc); 6706 6707 /** 6708 * Visitor invoked for each field found by a traversal. 6709 * 6710 * This visitor function will be invoked for each field found by 6711 * \c clang_Type_visitFields. Its first argument is the cursor being 6712 * visited, its second argument is the client data provided to 6713 * \c clang_Type_visitFields. 6714 * 6715 * The visitor should return one of the \c CXVisitorResult values 6716 * to direct \c clang_Type_visitFields. 6717 */ 6718 typedef enum CXVisitorResult (*CXFieldVisitor)(CXCursor C, 6719 CXClientData client_data); 6720 6721 /** 6722 * Visit the fields of a particular type. 6723 * 6724 * This function visits all the direct fields of the given cursor, 6725 * invoking the given \p visitor function with the cursors of each 6726 * visited field. The traversal may be ended prematurely, if 6727 * the visitor returns \c CXFieldVisit_Break. 6728 * 6729 * \param T the record type whose field may be visited. 6730 * 6731 * \param visitor the visitor function that will be invoked for each 6732 * field of \p T. 6733 * 6734 * \param client_data pointer data supplied by the client, which will 6735 * be passed to the visitor each time it is invoked. 6736 * 6737 * \returns a non-zero value if the traversal was terminated 6738 * prematurely by the visitor returning \c CXFieldVisit_Break. 6739 */ 6740 CINDEX_LINKAGE unsigned clang_Type_visitFields(CXType T, CXFieldVisitor visitor, 6741 CXClientData client_data); 6742 6743 /** 6744 * @} 6745 */ 6746 6747 /** 6748 * @} 6749 */ 6750 6751 LLVM_CLANG_C_EXTERN_C_END 6752 6753 #endif 6754