1============================ 2Clang Compiler User's Manual 3============================ 4 5.. include:: <isonum.txt> 6 7.. contents:: 8 :local: 9 10Introduction 11============ 12 13The Clang Compiler is an open-source compiler for the C family of 14programming languages, aiming to be the best in class implementation of 15these languages. Clang builds on the LLVM optimizer and code generator, 16allowing it to provide high-quality optimization and code generation 17support for many targets. For more general information, please see the 18`Clang Web Site <http://clang.llvm.org>`_ or the `LLVM Web 19Site <http://llvm.org>`_. 20 21This document describes important notes about using Clang as a compiler 22for an end-user, documenting the supported features, command line 23options, etc. If you are interested in using Clang to build a tool that 24processes code, please see :doc:`InternalsManual`. If you are interested in the 25`Clang Static Analyzer <http://clang-analyzer.llvm.org>`_, please see its web 26page. 27 28Clang is one component in a complete toolchain for C family languages. 29A separate document describes the other pieces necessary to 30:doc:`assemble a complete toolchain <Toolchain>`. 31 32Clang is designed to support the C family of programming languages, 33which includes :ref:`C <c>`, :ref:`Objective-C <objc>`, :ref:`C++ <cxx>`, and 34:ref:`Objective-C++ <objcxx>` as well as many dialects of those. For 35language-specific information, please see the corresponding language 36specific section: 37 38- :ref:`C Language <c>`: K&R C, ANSI C89, ISO C90, ISO C94 (C89+AMD1), ISO 39 C99 (+TC1, TC2, TC3). 40- :ref:`Objective-C Language <objc>`: ObjC 1, ObjC 2, ObjC 2.1, plus 41 variants depending on base language. 42- :ref:`C++ Language <cxx>` 43- :ref:`Objective C++ Language <objcxx>` 44- :ref:`OpenCL C Language <opencl>`: v1.0, v1.1, v1.2, v2.0. 45 46In addition to these base languages and their dialects, Clang supports a 47broad variety of language extensions, which are documented in the 48corresponding language section. These extensions are provided to be 49compatible with the GCC, Microsoft, and other popular compilers as well 50as to improve functionality through Clang-specific features. The Clang 51driver and language features are intentionally designed to be as 52compatible with the GNU GCC compiler as reasonably possible, easing 53migration from GCC to Clang. In most cases, code "just works". 54Clang also provides an alternative driver, :ref:`clang-cl`, that is designed 55to be compatible with the Visual C++ compiler, cl.exe. 56 57In addition to language specific features, Clang has a variety of 58features that depend on what CPU architecture or operating system is 59being compiled for. Please see the :ref:`Target-Specific Features and 60Limitations <target_features>` section for more details. 61 62The rest of the introduction introduces some basic :ref:`compiler 63terminology <terminology>` that is used throughout this manual and 64contains a basic :ref:`introduction to using Clang <basicusage>` as a 65command line compiler. 66 67.. _terminology: 68 69Terminology 70----------- 71 72Front end, parser, backend, preprocessor, undefined behavior, 73diagnostic, optimizer 74 75.. _basicusage: 76 77Basic Usage 78----------- 79 80Intro to how to use a C compiler for newbies. 81 82compile + link compile then link debug info enabling optimizations 83picking a language to use, defaults to C11 by default. Autosenses based 84on extension. using a makefile 85 86Command Line Options 87==================== 88 89This section is generally an index into other sections. It does not go 90into depth on the ones that are covered by other sections. However, the 91first part introduces the language selection and other high level 92options like :option:`-c`, :option:`-g`, etc. 93 94Options to Control Error and Warning Messages 95--------------------------------------------- 96 97.. option:: -Werror 98 99 Turn warnings into errors. 100 101.. This is in plain monospaced font because it generates the same label as 102.. -Werror, and Sphinx complains. 103 104``-Werror=foo`` 105 106 Turn warning "foo" into an error. 107 108.. option:: -Wno-error=foo 109 110 Turn warning "foo" into a warning even if :option:`-Werror` is specified. 111 112.. option:: -Wfoo 113 114 Enable warning "foo". 115 See the :doc:`diagnostics reference <DiagnosticsReference>` for a complete 116 list of the warning flags that can be specified in this way. 117 118.. option:: -Wno-foo 119 120 Disable warning "foo". 121 122.. option:: -w 123 124 Disable all diagnostics. 125 126.. option:: -Weverything 127 128 :ref:`Enable all diagnostics. <diagnostics_enable_everything>` 129 130.. option:: -pedantic 131 132 Warn on language extensions. 133 134.. option:: -pedantic-errors 135 136 Error on language extensions. 137 138.. option:: -Wsystem-headers 139 140 Enable warnings from system headers. 141 142.. option:: -ferror-limit=123 143 144 Stop emitting diagnostics after 123 errors have been produced. The default is 145 20, and the error limit can be disabled with `-ferror-limit=0`. 146 147.. option:: -ftemplate-backtrace-limit=123 148 149 Only emit up to 123 template instantiation notes within the template 150 instantiation backtrace for a single warning or error. The default is 10, and 151 the limit can be disabled with `-ftemplate-backtrace-limit=0`. 152 153.. _cl_diag_formatting: 154 155Formatting of Diagnostics 156^^^^^^^^^^^^^^^^^^^^^^^^^ 157 158Clang aims to produce beautiful diagnostics by default, particularly for 159new users that first come to Clang. However, different people have 160different preferences, and sometimes Clang is driven not by a human, 161but by a program that wants consistent and easily parsable output. For 162these cases, Clang provides a wide range of options to control the exact 163output format of the diagnostics that it generates. 164 165.. _opt_fshow-column: 166 167**-f[no-]show-column** 168 Print column number in diagnostic. 169 170 This option, which defaults to on, controls whether or not Clang 171 prints the column number of a diagnostic. For example, when this is 172 enabled, Clang will print something like: 173 174 :: 175 176 test.c:28:8: warning: extra tokens at end of #endif directive [-Wextra-tokens] 177 #endif bad 178 ^ 179 // 180 181 When this is disabled, Clang will print "test.c:28: warning..." with 182 no column number. 183 184 The printed column numbers count bytes from the beginning of the 185 line; take care if your source contains multibyte characters. 186 187.. _opt_fshow-source-location: 188 189**-f[no-]show-source-location** 190 Print source file/line/column information in diagnostic. 191 192 This option, which defaults to on, controls whether or not Clang 193 prints the filename, line number and column number of a diagnostic. 194 For example, when this is enabled, Clang will print something like: 195 196 :: 197 198 test.c:28:8: warning: extra tokens at end of #endif directive [-Wextra-tokens] 199 #endif bad 200 ^ 201 // 202 203 When this is disabled, Clang will not print the "test.c:28:8: " 204 part. 205 206.. _opt_fcaret-diagnostics: 207 208**-f[no-]caret-diagnostics** 209 Print source line and ranges from source code in diagnostic. 210 This option, which defaults to on, controls whether or not Clang 211 prints the source line, source ranges, and caret when emitting a 212 diagnostic. For example, when this is enabled, Clang will print 213 something like: 214 215 :: 216 217 test.c:28:8: warning: extra tokens at end of #endif directive [-Wextra-tokens] 218 #endif bad 219 ^ 220 // 221 222**-f[no-]color-diagnostics** 223 This option, which defaults to on when a color-capable terminal is 224 detected, controls whether or not Clang prints diagnostics in color. 225 226 When this option is enabled, Clang will use colors to highlight 227 specific parts of the diagnostic, e.g., 228 229 .. nasty hack to not lose our dignity 230 231 .. raw:: html 232 233 <pre> 234 <b><span style="color:black">test.c:28:8: <span style="color:magenta">warning</span>: extra tokens at end of #endif directive [-Wextra-tokens]</span></b> 235 #endif bad 236 <span style="color:green">^</span> 237 <span style="color:green">//</span> 238 </pre> 239 240 When this is disabled, Clang will just print: 241 242 :: 243 244 test.c:2:8: warning: extra tokens at end of #endif directive [-Wextra-tokens] 245 #endif bad 246 ^ 247 // 248 249**-fansi-escape-codes** 250 Controls whether ANSI escape codes are used instead of the Windows Console 251 API to output colored diagnostics. This option is only used on Windows and 252 defaults to off. 253 254.. option:: -fdiagnostics-format=clang/msvc/vi 255 256 Changes diagnostic output format to better match IDEs and command line tools. 257 258 This option controls the output format of the filename, line number, 259 and column printed in diagnostic messages. The options, and their 260 affect on formatting a simple conversion diagnostic, follow: 261 262 **clang** (default) 263 :: 264 265 t.c:3:11: warning: conversion specifies type 'char *' but the argument has type 'int' 266 267 **msvc** 268 :: 269 270 t.c(3,11) : warning: conversion specifies type 'char *' but the argument has type 'int' 271 272 **vi** 273 :: 274 275 t.c +3:11: warning: conversion specifies type 'char *' but the argument has type 'int' 276 277.. _opt_fdiagnostics-show-option: 278 279**-f[no-]diagnostics-show-option** 280 Enable ``[-Woption]`` information in diagnostic line. 281 282 This option, which defaults to on, controls whether or not Clang 283 prints the associated :ref:`warning group <cl_diag_warning_groups>` 284 option name when outputting a warning diagnostic. For example, in 285 this output: 286 287 :: 288 289 test.c:28:8: warning: extra tokens at end of #endif directive [-Wextra-tokens] 290 #endif bad 291 ^ 292 // 293 294 Passing **-fno-diagnostics-show-option** will prevent Clang from 295 printing the [:ref:`-Wextra-tokens <opt_Wextra-tokens>`] information in 296 the diagnostic. This information tells you the flag needed to enable 297 or disable the diagnostic, either from the command line or through 298 :ref:`#pragma GCC diagnostic <pragma_GCC_diagnostic>`. 299 300.. _opt_fdiagnostics-show-category: 301 302.. option:: -fdiagnostics-show-category=none/id/name 303 304 Enable printing category information in diagnostic line. 305 306 This option, which defaults to "none", controls whether or not Clang 307 prints the category associated with a diagnostic when emitting it. 308 Each diagnostic may or many not have an associated category, if it 309 has one, it is listed in the diagnostic categorization field of the 310 diagnostic line (in the []'s). 311 312 For example, a format string warning will produce these three 313 renditions based on the setting of this option: 314 315 :: 316 317 t.c:3:11: warning: conversion specifies type 'char *' but the argument has type 'int' [-Wformat] 318 t.c:3:11: warning: conversion specifies type 'char *' but the argument has type 'int' [-Wformat,1] 319 t.c:3:11: warning: conversion specifies type 'char *' but the argument has type 'int' [-Wformat,Format String] 320 321 This category can be used by clients that want to group diagnostics 322 by category, so it should be a high level category. We want dozens 323 of these, not hundreds or thousands of them. 324 325.. _opt_fsave-optimization-record: 326 327**-fsave-optimization-record** 328 Write optimization remarks to a YAML file. 329 330 This option, which defaults to off, controls whether Clang writes 331 optimization reports to a YAML file. By recording diagnostics in a file, 332 using a structured YAML format, users can parse or sort the remarks in a 333 convenient way. 334 335.. _opt_foptimization-record-file: 336 337**-foptimization-record-file** 338 Control the file to which optimization reports are written. 339 340 When optimization reports are being output (see 341 :ref:`-fsave-optimization-record <opt_fsave-optimization-record>`), this 342 option controls the file to which those reports are written. 343 344 If this option is not used, optimization records are output to a file named 345 after the primary file being compiled. If that's "foo.c", for example, 346 optimization records are output to "foo.opt.yaml". 347 348.. _opt_fdiagnostics-show-hotness: 349 350**-f[no-]diagnostics-show-hotness** 351 Enable profile hotness information in diagnostic line. 352 353 This option controls whether Clang prints the profile hotness associated 354 with diagnostics in the presence of profile-guided optimization information. 355 This is currently supported with optimization remarks (see 356 :ref:`Options to Emit Optimization Reports <rpass>`). The hotness information 357 allows users to focus on the hot optimization remarks that are likely to be 358 more relevant for run-time performance. 359 360 For example, in this output, the block containing the callsite of `foo` was 361 executed 3000 times according to the profile data: 362 363 :: 364 365 s.c:7:10: remark: foo inlined into bar (hotness: 3000) [-Rpass-analysis=inline] 366 sum += foo(x, x - 2); 367 ^ 368 369 This option is implied when 370 :ref:`-fsave-optimization-record <opt_fsave-optimization-record>` is used. 371 Otherwise, it defaults to off. 372 373.. _opt_fdiagnostics-hotness-threshold: 374 375**-fdiagnostics-hotness-threshold** 376 Prevent optimization remarks from being output if they do not have at least 377 this hotness value. 378 379 This option, which defaults to zero, controls the minimum hotness an 380 optimization remark would need in order to be output by Clang. This is 381 currently supported with optimization remarks (see :ref:`Options to Emit 382 Optimization Reports <rpass>`) when profile hotness information in 383 diagnostics is enabled (see 384 :ref:`-fdiagnostics-show-hotness <opt_fdiagnostics-show-hotness>`). 385 386.. _opt_fdiagnostics-fixit-info: 387 388**-f[no-]diagnostics-fixit-info** 389 Enable "FixIt" information in the diagnostics output. 390 391 This option, which defaults to on, controls whether or not Clang 392 prints the information on how to fix a specific diagnostic 393 underneath it when it knows. For example, in this output: 394 395 :: 396 397 test.c:28:8: warning: extra tokens at end of #endif directive [-Wextra-tokens] 398 #endif bad 399 ^ 400 // 401 402 Passing **-fno-diagnostics-fixit-info** will prevent Clang from 403 printing the "//" line at the end of the message. This information 404 is useful for users who may not understand what is wrong, but can be 405 confusing for machine parsing. 406 407.. _opt_fdiagnostics-print-source-range-info: 408 409**-fdiagnostics-print-source-range-info** 410 Print machine parsable information about source ranges. 411 This option makes Clang print information about source ranges in a machine 412 parsable format after the file/line/column number information. The 413 information is a simple sequence of brace enclosed ranges, where each range 414 lists the start and end line/column locations. For example, in this output: 415 416 :: 417 418 exprs.c:47:15:{47:8-47:14}{47:17-47:24}: error: invalid operands to binary expression ('int *' and '_Complex float') 419 P = (P-42) + Gamma*4; 420 ~~~~~~ ^ ~~~~~~~ 421 422 The {}'s are generated by -fdiagnostics-print-source-range-info. 423 424 The printed column numbers count bytes from the beginning of the 425 line; take care if your source contains multibyte characters. 426 427.. option:: -fdiagnostics-parseable-fixits 428 429 Print Fix-Its in a machine parseable form. 430 431 This option makes Clang print available Fix-Its in a machine 432 parseable format at the end of diagnostics. The following example 433 illustrates the format: 434 435 :: 436 437 fix-it:"t.cpp":{7:25-7:29}:"Gamma" 438 439 The range printed is a half-open range, so in this example the 440 characters at column 25 up to but not including column 29 on line 7 441 in t.cpp should be replaced with the string "Gamma". Either the 442 range or the replacement string may be empty (representing strict 443 insertions and strict erasures, respectively). Both the file name 444 and the insertion string escape backslash (as "\\\\"), tabs (as 445 "\\t"), newlines (as "\\n"), double quotes(as "\\"") and 446 non-printable characters (as octal "\\xxx"). 447 448 The printed column numbers count bytes from the beginning of the 449 line; take care if your source contains multibyte characters. 450 451.. option:: -fno-elide-type 452 453 Turns off elision in template type printing. 454 455 The default for template type printing is to elide as many template 456 arguments as possible, removing those which are the same in both 457 template types, leaving only the differences. Adding this flag will 458 print all the template arguments. If supported by the terminal, 459 highlighting will still appear on differing arguments. 460 461 Default: 462 463 :: 464 465 t.cc:4:5: note: candidate function not viable: no known conversion from 'vector<map<[...], map<float, [...]>>>' to 'vector<map<[...], map<double, [...]>>>' for 1st argument; 466 467 -fno-elide-type: 468 469 :: 470 471 t.cc:4:5: note: candidate function not viable: no known conversion from 'vector<map<int, map<float, int>>>' to 'vector<map<int, map<double, int>>>' for 1st argument; 472 473.. option:: -fdiagnostics-show-template-tree 474 475 Template type diffing prints a text tree. 476 477 For diffing large templated types, this option will cause Clang to 478 display the templates as an indented text tree, one argument per 479 line, with differences marked inline. This is compatible with 480 -fno-elide-type. 481 482 Default: 483 484 :: 485 486 t.cc:4:5: note: candidate function not viable: no known conversion from 'vector<map<[...], map<float, [...]>>>' to 'vector<map<[...], map<double, [...]>>>' for 1st argument; 487 488 With :option:`-fdiagnostics-show-template-tree`: 489 490 :: 491 492 t.cc:4:5: note: candidate function not viable: no known conversion for 1st argument; 493 vector< 494 map< 495 [...], 496 map< 497 [float != double], 498 [...]>>> 499 500.. _cl_diag_warning_groups: 501 502Individual Warning Groups 503^^^^^^^^^^^^^^^^^^^^^^^^^ 504 505TODO: Generate this from tblgen. Define one anchor per warning group. 506 507.. _opt_wextra-tokens: 508 509.. option:: -Wextra-tokens 510 511 Warn about excess tokens at the end of a preprocessor directive. 512 513 This option, which defaults to on, enables warnings about extra 514 tokens at the end of preprocessor directives. For example: 515 516 :: 517 518 test.c:28:8: warning: extra tokens at end of #endif directive [-Wextra-tokens] 519 #endif bad 520 ^ 521 522 These extra tokens are not strictly conforming, and are usually best 523 handled by commenting them out. 524 525.. option:: -Wambiguous-member-template 526 527 Warn about unqualified uses of a member template whose name resolves to 528 another template at the location of the use. 529 530 This option, which defaults to on, enables a warning in the 531 following code: 532 533 :: 534 535 template<typename T> struct set{}; 536 template<typename T> struct trait { typedef const T& type; }; 537 struct Value { 538 template<typename T> void set(typename trait<T>::type value) {} 539 }; 540 void foo() { 541 Value v; 542 v.set<double>(3.2); 543 } 544 545 C++ [basic.lookup.classref] requires this to be an error, but, 546 because it's hard to work around, Clang downgrades it to a warning 547 as an extension. 548 549.. option:: -Wbind-to-temporary-copy 550 551 Warn about an unusable copy constructor when binding a reference to a 552 temporary. 553 554 This option enables warnings about binding a 555 reference to a temporary when the temporary doesn't have a usable 556 copy constructor. For example: 557 558 :: 559 560 struct NonCopyable { 561 NonCopyable(); 562 private: 563 NonCopyable(const NonCopyable&); 564 }; 565 void foo(const NonCopyable&); 566 void bar() { 567 foo(NonCopyable()); // Disallowed in C++98; allowed in C++11. 568 } 569 570 :: 571 572 struct NonCopyable2 { 573 NonCopyable2(); 574 NonCopyable2(NonCopyable2&); 575 }; 576 void foo(const NonCopyable2&); 577 void bar() { 578 foo(NonCopyable2()); // Disallowed in C++98; allowed in C++11. 579 } 580 581 Note that if ``NonCopyable2::NonCopyable2()`` has a default argument 582 whose instantiation produces a compile error, that error will still 583 be a hard error in C++98 mode even if this warning is turned off. 584 585Options to Control Clang Crash Diagnostics 586------------------------------------------ 587 588As unbelievable as it may sound, Clang does crash from time to time. 589Generally, this only occurs to those living on the `bleeding 590edge <http://llvm.org/releases/download.html#svn>`_. Clang goes to great 591lengths to assist you in filing a bug report. Specifically, Clang 592generates preprocessed source file(s) and associated run script(s) upon 593a crash. These files should be attached to a bug report to ease 594reproducibility of the failure. Below are the command line options to 595control the crash diagnostics. 596 597.. option:: -fno-crash-diagnostics 598 599 Disable auto-generation of preprocessed source files during a clang crash. 600 601The -fno-crash-diagnostics flag can be helpful for speeding the process 602of generating a delta reduced test case. 603 604Clang is also capable of generating preprocessed source file(s) and associated 605run script(s) even without a crash. This is specially useful when trying to 606generate a reproducer for warnings or errors while using modules. 607 608.. option:: -gen-reproducer 609 610 Generates preprocessed source files, a reproducer script and if relevant, a 611 cache containing: built module pcm's and all headers needed to rebuilt the 612 same modules. 613 614.. _rpass: 615 616Options to Emit Optimization Reports 617------------------------------------ 618 619Optimization reports trace, at a high-level, all the major decisions 620done by compiler transformations. For instance, when the inliner 621decides to inline function ``foo()`` into ``bar()``, or the loop unroller 622decides to unroll a loop N times, or the vectorizer decides to 623vectorize a loop body. 624 625Clang offers a family of flags which the optimizers can use to emit 626a diagnostic in three cases: 627 6281. When the pass makes a transformation (`-Rpass`). 629 6302. When the pass fails to make a transformation (`-Rpass-missed`). 631 6323. When the pass determines whether or not to make a transformation 633 (`-Rpass-analysis`). 634 635NOTE: Although the discussion below focuses on `-Rpass`, the exact 636same options apply to `-Rpass-missed` and `-Rpass-analysis`. 637 638Since there are dozens of passes inside the compiler, each of these flags 639take a regular expression that identifies the name of the pass which should 640emit the associated diagnostic. For example, to get a report from the inliner, 641compile the code with: 642 643.. code-block:: console 644 645 $ clang -O2 -Rpass=inline code.cc -o code 646 code.cc:4:25: remark: foo inlined into bar [-Rpass=inline] 647 int bar(int j) { return foo(j, j - 2); } 648 ^ 649 650Note that remarks from the inliner are identified with `[-Rpass=inline]`. 651To request a report from every optimization pass, you should use 652`-Rpass=.*` (in fact, you can use any valid POSIX regular 653expression). However, do not expect a report from every transformation 654made by the compiler. Optimization remarks do not really make sense 655outside of the major transformations (e.g., inlining, vectorization, 656loop optimizations) and not every optimization pass supports this 657feature. 658 659Note that when using profile-guided optimization information, profile hotness 660information can be included in the remarks (see 661:ref:`-fdiagnostics-show-hotness <opt_fdiagnostics-show-hotness>`). 662 663Current limitations 664^^^^^^^^^^^^^^^^^^^ 665 6661. Optimization remarks that refer to function names will display the 667 mangled name of the function. Since these remarks are emitted by the 668 back end of the compiler, it does not know anything about the input 669 language, nor its mangling rules. 670 6712. Some source locations are not displayed correctly. The front end has 672 a more detailed source location tracking than the locations included 673 in the debug info (e.g., the front end can locate code inside macro 674 expansions). However, the locations used by `-Rpass` are 675 translated from debug annotations. That translation can be lossy, 676 which results in some remarks having no location information. 677 678Other Options 679------------- 680Clang options that don't fit neatly into other categories. 681 682.. option:: -MV 683 684 When emitting a dependency file, use formatting conventions appropriate 685 for NMake or Jom. Ignored unless another option causes Clang to emit a 686 dependency file. 687 688When Clang emits a dependency file (e.g., you supplied the -M option) 689most filenames can be written to the file without any special formatting. 690Different Make tools will treat different sets of characters as "special" 691and use different conventions for telling the Make tool that the character 692is actually part of the filename. Normally Clang uses backslash to "escape" 693a special character, which is the convention used by GNU Make. The -MV 694option tells Clang to put double-quotes around the entire filename, which 695is the convention used by NMake and Jom. 696 697Configuration files 698------------------- 699 700Configuration files group command-line options and allow all of them to be 701specified just by referencing the configuration file. They may be used, for 702example, to collect options required to tune compilation for particular 703target, such as -L, -I, -l, --sysroot, codegen options, etc. 704 705The command line option `--config` can be used to specify configuration 706file in a Clang invocation. For example: 707 708:: 709 710 clang --config /home/user/cfgs/testing.txt 711 clang --config debug.cfg 712 713If the provided argument contains a directory separator, it is considered as 714a file path, and options are read from that file. Otherwise the argument is 715treated as a file name and is searched for sequentially in the directories: 716 717 - user directory, 718 - system directory, 719 - the directory where Clang executable resides. 720 721Both user and system directories for configuration files are specified during 722clang build using CMake parameters, CLANG_CONFIG_FILE_USER_DIR and 723CLANG_CONFIG_FILE_SYSTEM_DIR respectively. The first file found is used. It is 724an error if the required file cannot be found. 725 726Another way to specify a configuration file is to encode it in executable name. 727For example, if the Clang executable is named `armv7l-clang` (it may be a 728symbolic link to `clang`), then Clang will search for file `armv7l.cfg` in the 729directory where Clang resides. 730 731If a driver mode is specified in invocation, Clang tries to find a file specific 732for the specified mode. For example, if the executable file is named 733`x86_64-clang-cl`, Clang first looks for `x86_64-cl.cfg` and if it is not found, 734looks for `x86_64.cfg`. 735 736If the command line contains options that effectively change target architecture 737(these are -m32, -EL, and some others) and the configuration file starts with an 738architecture name, Clang tries to load the configuration file for the effective 739architecture. For example, invocation: 740 741:: 742 743 x86_64-clang -m32 abc.c 744 745causes Clang search for a file `i368.cfg` first, and if no such file is found, 746Clang looks for the file `x86_64.cfg`. 747 748The configuration file consists of command-line options specified on one or 749more lines. Lines composed of whitespace characters only are ignored as well as 750lines in which the first non-blank character is `#`. Long options may be split 751between several lines by a trailing backslash. Here is example of a 752configuration file: 753 754:: 755 756 # Several options on line 757 -c --target=x86_64-unknown-linux-gnu 758 759 # Long option split between lines 760 -I/usr/lib/gcc/x86_64-linux-gnu/5.4.0/../../../../\ 761 include/c++/5.4.0 762 763 # other config files may be included 764 @linux.options 765 766Files included by `@file` directives in configuration files are resolved 767relative to the including file. For example, if a configuration file 768`~/.llvm/target.cfg` contains the directive `@os/linux.opts`, the file 769`linux.opts` is searched for in the directory `~/.llvm/os`. 770 771Language and Target-Independent Features 772======================================== 773 774Controlling Errors and Warnings 775------------------------------- 776 777Clang provides a number of ways to control which code constructs cause 778it to emit errors and warning messages, and how they are displayed to 779the console. 780 781Controlling How Clang Displays Diagnostics 782^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 783 784When Clang emits a diagnostic, it includes rich information in the 785output, and gives you fine-grain control over which information is 786printed. Clang has the ability to print this information, and these are 787the options that control it: 788 789#. A file/line/column indicator that shows exactly where the diagnostic 790 occurs in your code [:ref:`-fshow-column <opt_fshow-column>`, 791 :ref:`-fshow-source-location <opt_fshow-source-location>`]. 792#. A categorization of the diagnostic as a note, warning, error, or 793 fatal error. 794#. A text string that describes what the problem is. 795#. An option that indicates how to control the diagnostic (for 796 diagnostics that support it) 797 [:ref:`-fdiagnostics-show-option <opt_fdiagnostics-show-option>`]. 798#. A :ref:`high-level category <diagnostics_categories>` for the diagnostic 799 for clients that want to group diagnostics by class (for diagnostics 800 that support it) 801 [:ref:`-fdiagnostics-show-category <opt_fdiagnostics-show-category>`]. 802#. The line of source code that the issue occurs on, along with a caret 803 and ranges that indicate the important locations 804 [:ref:`-fcaret-diagnostics <opt_fcaret-diagnostics>`]. 805#. "FixIt" information, which is a concise explanation of how to fix the 806 problem (when Clang is certain it knows) 807 [:ref:`-fdiagnostics-fixit-info <opt_fdiagnostics-fixit-info>`]. 808#. A machine-parsable representation of the ranges involved (off by 809 default) 810 [:ref:`-fdiagnostics-print-source-range-info <opt_fdiagnostics-print-source-range-info>`]. 811 812For more information please see :ref:`Formatting of 813Diagnostics <cl_diag_formatting>`. 814 815Diagnostic Mappings 816^^^^^^^^^^^^^^^^^^^ 817 818All diagnostics are mapped into one of these 6 classes: 819 820- Ignored 821- Note 822- Remark 823- Warning 824- Error 825- Fatal 826 827.. _diagnostics_categories: 828 829Diagnostic Categories 830^^^^^^^^^^^^^^^^^^^^^ 831 832Though not shown by default, diagnostics may each be associated with a 833high-level category. This category is intended to make it possible to 834triage builds that produce a large number of errors or warnings in a 835grouped way. 836 837Categories are not shown by default, but they can be turned on with the 838:ref:`-fdiagnostics-show-category <opt_fdiagnostics-show-category>` option. 839When set to "``name``", the category is printed textually in the 840diagnostic output. When it is set to "``id``", a category number is 841printed. The mapping of category names to category id's can be obtained 842by running '``clang --print-diagnostic-categories``'. 843 844Controlling Diagnostics via Command Line Flags 845^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 846 847TODO: -W flags, -pedantic, etc 848 849.. _pragma_gcc_diagnostic: 850 851Controlling Diagnostics via Pragmas 852^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 853 854Clang can also control what diagnostics are enabled through the use of 855pragmas in the source code. This is useful for turning off specific 856warnings in a section of source code. Clang supports GCC's pragma for 857compatibility with existing source code, as well as several extensions. 858 859The pragma may control any warning that can be used from the command 860line. Warnings may be set to ignored, warning, error, or fatal. The 861following example code will tell Clang or GCC to ignore the -Wall 862warnings: 863 864.. code-block:: c 865 866 #pragma GCC diagnostic ignored "-Wall" 867 868In addition to all of the functionality provided by GCC's pragma, Clang 869also allows you to push and pop the current warning state. This is 870particularly useful when writing a header file that will be compiled by 871other people, because you don't know what warning flags they build with. 872 873In the below example :option:`-Wextra-tokens` is ignored for only a single line 874of code, after which the diagnostics return to whatever state had previously 875existed. 876 877.. code-block:: c 878 879 #if foo 880 #endif foo // warning: extra tokens at end of #endif directive 881 882 #pragma clang diagnostic push 883 #pragma clang diagnostic ignored "-Wextra-tokens" 884 885 #if foo 886 #endif foo // no warning 887 888 #pragma clang diagnostic pop 889 890The push and pop pragmas will save and restore the full diagnostic state 891of the compiler, regardless of how it was set. That means that it is 892possible to use push and pop around GCC compatible diagnostics and Clang 893will push and pop them appropriately, while GCC will ignore the pushes 894and pops as unknown pragmas. It should be noted that while Clang 895supports the GCC pragma, Clang and GCC do not support the exact same set 896of warnings, so even when using GCC compatible #pragmas there is no 897guarantee that they will have identical behaviour on both compilers. 898 899In addition to controlling warnings and errors generated by the compiler, it is 900possible to generate custom warning and error messages through the following 901pragmas: 902 903.. code-block:: c 904 905 // The following will produce warning messages 906 #pragma message "some diagnostic message" 907 #pragma GCC warning "TODO: replace deprecated feature" 908 909 // The following will produce an error message 910 #pragma GCC error "Not supported" 911 912These pragmas operate similarly to the ``#warning`` and ``#error`` preprocessor 913directives, except that they may also be embedded into preprocessor macros via 914the C99 ``_Pragma`` operator, for example: 915 916.. code-block:: c 917 918 #define STR(X) #X 919 #define DEFER(M,...) M(__VA_ARGS__) 920 #define CUSTOM_ERROR(X) _Pragma(STR(GCC error(X " at line " DEFER(STR,__LINE__)))) 921 922 CUSTOM_ERROR("Feature not available"); 923 924Controlling Diagnostics in System Headers 925^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 926 927Warnings are suppressed when they occur in system headers. By default, 928an included file is treated as a system header if it is found in an 929include path specified by ``-isystem``, but this can be overridden in 930several ways. 931 932The ``system_header`` pragma can be used to mark the current file as 933being a system header. No warnings will be produced from the location of 934the pragma onwards within the same file. 935 936.. code-block:: c 937 938 #if foo 939 #endif foo // warning: extra tokens at end of #endif directive 940 941 #pragma clang system_header 942 943 #if foo 944 #endif foo // no warning 945 946The `--system-header-prefix=` and `--no-system-header-prefix=` 947command-line arguments can be used to override whether subsets of an include 948path are treated as system headers. When the name in a ``#include`` directive 949is found within a header search path and starts with a system prefix, the 950header is treated as a system header. The last prefix on the 951command-line which matches the specified header name takes precedence. 952For instance: 953 954.. code-block:: console 955 956 $ clang -Ifoo -isystem bar --system-header-prefix=x/ \ 957 --no-system-header-prefix=x/y/ 958 959Here, ``#include "x/a.h"`` is treated as including a system header, even 960if the header is found in ``foo``, and ``#include "x/y/b.h"`` is treated 961as not including a system header, even if the header is found in 962``bar``. 963 964A ``#include`` directive which finds a file relative to the current 965directory is treated as including a system header if the including file 966is treated as a system header. 967 968.. _diagnostics_enable_everything: 969 970Enabling All Diagnostics 971^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 972 973In addition to the traditional ``-W`` flags, one can enable **all** 974diagnostics by passing :option:`-Weverything`. This works as expected 975with 976:option:`-Werror`, and also includes the warnings from :option:`-pedantic`. 977 978Note that when combined with :option:`-w` (which disables all warnings), that 979flag wins. 980 981Controlling Static Analyzer Diagnostics 982^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 983 984While not strictly part of the compiler, the diagnostics from Clang's 985`static analyzer <http://clang-analyzer.llvm.org>`_ can also be 986influenced by the user via changes to the source code. See the available 987`annotations <http://clang-analyzer.llvm.org/annotations.html>`_ and the 988analyzer's `FAQ 989page <http://clang-analyzer.llvm.org/faq.html#exclude_code>`_ for more 990information. 991 992.. _usersmanual-precompiled-headers: 993 994Precompiled Headers 995------------------- 996 997`Precompiled headers <http://en.wikipedia.org/wiki/Precompiled_header>`__ 998are a general approach employed by many compilers to reduce compilation 999time. The underlying motivation of the approach is that it is common for 1000the same (and often large) header files to be included by multiple 1001source files. Consequently, compile times can often be greatly improved 1002by caching some of the (redundant) work done by a compiler to process 1003headers. Precompiled header files, which represent one of many ways to 1004implement this optimization, are literally files that represent an 1005on-disk cache that contains the vital information necessary to reduce 1006some of the work needed to process a corresponding header file. While 1007details of precompiled headers vary between compilers, precompiled 1008headers have been shown to be highly effective at speeding up program 1009compilation on systems with very large system headers (e.g., Mac OS X). 1010 1011Generating a PCH File 1012^^^^^^^^^^^^^^^^^^^^^ 1013 1014To generate a PCH file using Clang, one invokes Clang with the 1015`-x <language>-header` option. This mirrors the interface in GCC 1016for generating PCH files: 1017 1018.. code-block:: console 1019 1020 $ gcc -x c-header test.h -o test.h.gch 1021 $ clang -x c-header test.h -o test.h.pch 1022 1023Using a PCH File 1024^^^^^^^^^^^^^^^^ 1025 1026A PCH file can then be used as a prefix header when a :option:`-include` 1027option is passed to ``clang``: 1028 1029.. code-block:: console 1030 1031 $ clang -include test.h test.c -o test 1032 1033The ``clang`` driver will first check if a PCH file for ``test.h`` is 1034available; if so, the contents of ``test.h`` (and the files it includes) 1035will be processed from the PCH file. Otherwise, Clang falls back to 1036directly processing the content of ``test.h``. This mirrors the behavior 1037of GCC. 1038 1039.. note:: 1040 1041 Clang does *not* automatically use PCH files for headers that are directly 1042 included within a source file. For example: 1043 1044 .. code-block:: console 1045 1046 $ clang -x c-header test.h -o test.h.pch 1047 $ cat test.c 1048 #include "test.h" 1049 $ clang test.c -o test 1050 1051 In this example, ``clang`` will not automatically use the PCH file for 1052 ``test.h`` since ``test.h`` was included directly in the source file and not 1053 specified on the command line using :option:`-include`. 1054 1055Relocatable PCH Files 1056^^^^^^^^^^^^^^^^^^^^^ 1057 1058It is sometimes necessary to build a precompiled header from headers 1059that are not yet in their final, installed locations. For example, one 1060might build a precompiled header within the build tree that is then 1061meant to be installed alongside the headers. Clang permits the creation 1062of "relocatable" precompiled headers, which are built with a given path 1063(into the build directory) and can later be used from an installed 1064location. 1065 1066To build a relocatable precompiled header, place your headers into a 1067subdirectory whose structure mimics the installed location. For example, 1068if you want to build a precompiled header for the header ``mylib.h`` 1069that will be installed into ``/usr/include``, create a subdirectory 1070``build/usr/include`` and place the header ``mylib.h`` into that 1071subdirectory. If ``mylib.h`` depends on other headers, then they can be 1072stored within ``build/usr/include`` in a way that mimics the installed 1073location. 1074 1075Building a relocatable precompiled header requires two additional 1076arguments. First, pass the ``--relocatable-pch`` flag to indicate that 1077the resulting PCH file should be relocatable. Second, pass 1078``-isysroot /path/to/build``, which makes all includes for your library 1079relative to the build directory. For example: 1080 1081.. code-block:: console 1082 1083 # clang -x c-header --relocatable-pch -isysroot /path/to/build /path/to/build/mylib.h mylib.h.pch 1084 1085When loading the relocatable PCH file, the various headers used in the 1086PCH file are found from the system header root. For example, ``mylib.h`` 1087can be found in ``/usr/include/mylib.h``. If the headers are installed 1088in some other system root, the ``-isysroot`` option can be used provide 1089a different system root from which the headers will be based. For 1090example, ``-isysroot /Developer/SDKs/MacOSX10.4u.sdk`` will look for 1091``mylib.h`` in ``/Developer/SDKs/MacOSX10.4u.sdk/usr/include/mylib.h``. 1092 1093Relocatable precompiled headers are intended to be used in a limited 1094number of cases where the compilation environment is tightly controlled 1095and the precompiled header cannot be generated after headers have been 1096installed. 1097 1098.. _controlling-code-generation: 1099 1100Controlling Code Generation 1101--------------------------- 1102 1103Clang provides a number of ways to control code generation. The options 1104are listed below. 1105 1106**-f[no-]sanitize=check1,check2,...** 1107 Turn on runtime checks for various forms of undefined or suspicious 1108 behavior. 1109 1110 This option controls whether Clang adds runtime checks for various 1111 forms of undefined or suspicious behavior, and is disabled by 1112 default. If a check fails, a diagnostic message is produced at 1113 runtime explaining the problem. The main checks are: 1114 1115 - .. _opt_fsanitize_address: 1116 1117 ``-fsanitize=address``: 1118 :doc:`AddressSanitizer`, a memory error 1119 detector. 1120 - .. _opt_fsanitize_thread: 1121 1122 ``-fsanitize=thread``: :doc:`ThreadSanitizer`, a data race detector. 1123 - .. _opt_fsanitize_memory: 1124 1125 ``-fsanitize=memory``: :doc:`MemorySanitizer`, 1126 a detector of uninitialized reads. Requires instrumentation of all 1127 program code. 1128 - .. _opt_fsanitize_undefined: 1129 1130 ``-fsanitize=undefined``: :doc:`UndefinedBehaviorSanitizer`, 1131 a fast and compatible undefined behavior checker. 1132 1133 - ``-fsanitize=dataflow``: :doc:`DataFlowSanitizer`, a general data 1134 flow analysis. 1135 - ``-fsanitize=cfi``: :doc:`control flow integrity <ControlFlowIntegrity>` 1136 checks. Requires ``-flto``. 1137 - ``-fsanitize=safe-stack``: :doc:`safe stack <SafeStack>` 1138 protection against stack-based memory corruption errors. 1139 1140 There are more fine-grained checks available: see 1141 the :ref:`list <ubsan-checks>` of specific kinds of 1142 undefined behavior that can be detected and the :ref:`list <cfi-schemes>` 1143 of control flow integrity schemes. 1144 1145 The ``-fsanitize=`` argument must also be provided when linking, in 1146 order to link to the appropriate runtime library. 1147 1148 It is not possible to combine more than one of the ``-fsanitize=address``, 1149 ``-fsanitize=thread``, and ``-fsanitize=memory`` checkers in the same 1150 program. 1151 1152**-f[no-]sanitize-recover=check1,check2,...** 1153 1154**-f[no-]sanitize-recover=all** 1155 1156 Controls which checks enabled by ``-fsanitize=`` flag are non-fatal. 1157 If the check is fatal, program will halt after the first error 1158 of this kind is detected and error report is printed. 1159 1160 By default, non-fatal checks are those enabled by 1161 :doc:`UndefinedBehaviorSanitizer`, 1162 except for ``-fsanitize=return`` and ``-fsanitize=unreachable``. Some 1163 sanitizers may not support recovery (or not support it by default 1164 e.g. :doc:`AddressSanitizer`), and always crash the program after the issue 1165 is detected. 1166 1167 Note that the ``-fsanitize-trap`` flag has precedence over this flag. 1168 This means that if a check has been configured to trap elsewhere on the 1169 command line, or if the check traps by default, this flag will not have 1170 any effect unless that sanitizer's trapping behavior is disabled with 1171 ``-fno-sanitize-trap``. 1172 1173 For example, if a command line contains the flags ``-fsanitize=undefined 1174 -fsanitize-trap=undefined``, the flag ``-fsanitize-recover=alignment`` 1175 will have no effect on its own; it will need to be accompanied by 1176 ``-fno-sanitize-trap=alignment``. 1177 1178**-f[no-]sanitize-trap=check1,check2,...** 1179 1180 Controls which checks enabled by the ``-fsanitize=`` flag trap. This 1181 option is intended for use in cases where the sanitizer runtime cannot 1182 be used (for instance, when building libc or a kernel module), or where 1183 the binary size increase caused by the sanitizer runtime is a concern. 1184 1185 This flag is only compatible with :doc:`control flow integrity 1186 <ControlFlowIntegrity>` schemes and :doc:`UndefinedBehaviorSanitizer` 1187 checks other than ``vptr``. If this flag 1188 is supplied together with ``-fsanitize=undefined``, the ``vptr`` sanitizer 1189 will be implicitly disabled. 1190 1191 This flag is enabled by default for sanitizers in the ``cfi`` group. 1192 1193.. option:: -fsanitize-blacklist=/path/to/blacklist/file 1194 1195 Disable or modify sanitizer checks for objects (source files, functions, 1196 variables, types) listed in the file. See 1197 :doc:`SanitizerSpecialCaseList` for file format description. 1198 1199.. option:: -fno-sanitize-blacklist 1200 1201 Don't use blacklist file, if it was specified earlier in the command line. 1202 1203**-f[no-]sanitize-coverage=[type,features,...]** 1204 1205 Enable simple code coverage in addition to certain sanitizers. 1206 See :doc:`SanitizerCoverage` for more details. 1207 1208**-f[no-]sanitize-stats** 1209 1210 Enable simple statistics gathering for the enabled sanitizers. 1211 See :doc:`SanitizerStats` for more details. 1212 1213.. option:: -fsanitize-undefined-trap-on-error 1214 1215 Deprecated alias for ``-fsanitize-trap=undefined``. 1216 1217.. option:: -fsanitize-cfi-cross-dso 1218 1219 Enable cross-DSO control flow integrity checks. This flag modifies 1220 the behavior of sanitizers in the ``cfi`` group to allow checking 1221 of cross-DSO virtual and indirect calls. 1222 1223.. option:: -fsanitize-cfi-icall-generalize-pointers 1224 1225 Generalize pointers in return and argument types in function type signatures 1226 checked by Control Flow Integrity indirect call checking. See 1227 :doc:`ControlFlowIntegrity` for more details. 1228 1229.. option:: -fstrict-vtable-pointers 1230 1231 Enable optimizations based on the strict rules for overwriting polymorphic 1232 C++ objects, i.e. the vptr is invariant during an object's lifetime. 1233 This enables better devirtualization. Turned off by default, because it is 1234 still experimental. 1235 1236.. option:: -ffast-math 1237 1238 Enable fast-math mode. This defines the ``__FAST_MATH__`` preprocessor 1239 macro, and lets the compiler make aggressive, potentially-lossy assumptions 1240 about floating-point math. These include: 1241 1242 * Floating-point math obeys regular algebraic rules for real numbers (e.g. 1243 ``+`` and ``*`` are associative, ``x/y == x * (1/y)``, and 1244 ``(a + b) * c == a * c + b * c``), 1245 * operands to floating-point operations are not equal to ``NaN`` and 1246 ``Inf``, and 1247 * ``+0`` and ``-0`` are interchangeable. 1248 1249.. option:: -fdenormal-fp-math=[values] 1250 1251 Select which denormal numbers the code is permitted to require. 1252 1253 Valid values are: ``ieee``, ``preserve-sign``, and ``positive-zero``, 1254 which correspond to IEEE 754 denormal numbers, the sign of a 1255 flushed-to-zero number is preserved in the sign of 0, denormals are 1256 flushed to positive zero, respectively. 1257 1258.. option:: -fwhole-program-vtables 1259 1260 Enable whole-program vtable optimizations, such as single-implementation 1261 devirtualization and virtual constant propagation, for classes with 1262 :doc:`hidden LTO visibility <LTOVisibility>`. Requires ``-flto``. 1263 1264.. option:: -fno-assume-sane-operator-new 1265 1266 Don't assume that the C++'s new operator is sane. 1267 1268 This option tells the compiler to do not assume that C++'s global 1269 new operator will always return a pointer that does not alias any 1270 other pointer when the function returns. 1271 1272.. option:: -ftrap-function=[name] 1273 1274 Instruct code generator to emit a function call to the specified 1275 function name for ``__builtin_trap()``. 1276 1277 LLVM code generator translates ``__builtin_trap()`` to a trap 1278 instruction if it is supported by the target ISA. Otherwise, the 1279 builtin is translated into a call to ``abort``. If this option is 1280 set, then the code generator will always lower the builtin to a call 1281 to the specified function regardless of whether the target ISA has a 1282 trap instruction. This option is useful for environments (e.g. 1283 deeply embedded) where a trap cannot be properly handled, or when 1284 some custom behavior is desired. 1285 1286.. option:: -ftls-model=[model] 1287 1288 Select which TLS model to use. 1289 1290 Valid values are: ``global-dynamic``, ``local-dynamic``, 1291 ``initial-exec`` and ``local-exec``. The default value is 1292 ``global-dynamic``. The compiler may use a different model if the 1293 selected model is not supported by the target, or if a more 1294 efficient model can be used. The TLS model can be overridden per 1295 variable using the ``tls_model`` attribute. 1296 1297.. option:: -femulated-tls 1298 1299 Select emulated TLS model, which overrides all -ftls-model choices. 1300 1301 In emulated TLS mode, all access to TLS variables are converted to 1302 calls to __emutls_get_address in the runtime library. 1303 1304.. option:: -mhwdiv=[values] 1305 1306 Select the ARM modes (arm or thumb) that support hardware division 1307 instructions. 1308 1309 Valid values are: ``arm``, ``thumb`` and ``arm,thumb``. 1310 This option is used to indicate which mode (arm or thumb) supports 1311 hardware division instructions. This only applies to the ARM 1312 architecture. 1313 1314.. option:: -m[no-]crc 1315 1316 Enable or disable CRC instructions. 1317 1318 This option is used to indicate whether CRC instructions are to 1319 be generated. This only applies to the ARM architecture. 1320 1321 CRC instructions are enabled by default on ARMv8. 1322 1323.. option:: -mgeneral-regs-only 1324 1325 Generate code which only uses the general purpose registers. 1326 1327 This option restricts the generated code to use general registers 1328 only. This only applies to the AArch64 architecture. 1329 1330.. option:: -mcompact-branches=[values] 1331 1332 Control the usage of compact branches for MIPSR6. 1333 1334 Valid values are: ``never``, ``optimal`` and ``always``. 1335 The default value is ``optimal`` which generates compact branches 1336 when a delay slot cannot be filled. ``never`` disables the usage of 1337 compact branches and ``always`` generates compact branches whenever 1338 possible. 1339 1340**-f[no-]max-type-align=[number]** 1341 Instruct the code generator to not enforce a higher alignment than the given 1342 number (of bytes) when accessing memory via an opaque pointer or reference. 1343 This cap is ignored when directly accessing a variable or when the pointee 1344 type has an explicit “aligned” attribute. 1345 1346 The value should usually be determined by the properties of the system allocator. 1347 Some builtin types, especially vector types, have very high natural alignments; 1348 when working with values of those types, Clang usually wants to use instructions 1349 that take advantage of that alignment. However, many system allocators do 1350 not promise to return memory that is more than 8-byte or 16-byte-aligned. Use 1351 this option to limit the alignment that the compiler can assume for an arbitrary 1352 pointer, which may point onto the heap. 1353 1354 This option does not affect the ABI alignment of types; the layout of structs and 1355 unions and the value returned by the alignof operator remain the same. 1356 1357 This option can be overridden on a case-by-case basis by putting an explicit 1358 “aligned” alignment on a struct, union, or typedef. For example: 1359 1360 .. code-block:: console 1361 1362 #include <immintrin.h> 1363 // Make an aligned typedef of the AVX-512 16-int vector type. 1364 typedef __v16si __aligned_v16si __attribute__((aligned(64))); 1365 1366 void initialize_vector(__aligned_v16si *v) { 1367 // The compiler may assume that ‘v’ is 64-byte aligned, regardless of the 1368 // value of -fmax-type-align. 1369 } 1370 1371 1372Profile Guided Optimization 1373--------------------------- 1374 1375Profile information enables better optimization. For example, knowing that a 1376branch is taken very frequently helps the compiler make better decisions when 1377ordering basic blocks. Knowing that a function ``foo`` is called more 1378frequently than another function ``bar`` helps the inliner. Optimization 1379levels ``-O2`` and above are recommended for use of profile guided optimization. 1380 1381Clang supports profile guided optimization with two different kinds of 1382profiling. A sampling profiler can generate a profile with very low runtime 1383overhead, or you can build an instrumented version of the code that collects 1384more detailed profile information. Both kinds of profiles can provide execution 1385counts for instructions in the code and information on branches taken and 1386function invocation. 1387 1388Regardless of which kind of profiling you use, be careful to collect profiles 1389by running your code with inputs that are representative of the typical 1390behavior. Code that is not exercised in the profile will be optimized as if it 1391is unimportant, and the compiler may make poor optimization choices for code 1392that is disproportionately used while profiling. 1393 1394Differences Between Sampling and Instrumentation 1395^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1396 1397Although both techniques are used for similar purposes, there are important 1398differences between the two: 1399 14001. Profile data generated with one cannot be used by the other, and there is no 1401 conversion tool that can convert one to the other. So, a profile generated 1402 via ``-fprofile-instr-generate`` must be used with ``-fprofile-instr-use``. 1403 Similarly, sampling profiles generated by external profilers must be 1404 converted and used with ``-fprofile-sample-use``. 1405 14062. Instrumentation profile data can be used for code coverage analysis and 1407 optimization. 1408 14093. Sampling profiles can only be used for optimization. They cannot be used for 1410 code coverage analysis. Although it would be technically possible to use 1411 sampling profiles for code coverage, sample-based profiles are too 1412 coarse-grained for code coverage purposes; it would yield poor results. 1413 14144. Sampling profiles must be generated by an external tool. The profile 1415 generated by that tool must then be converted into a format that can be read 1416 by LLVM. The section on sampling profilers describes one of the supported 1417 sampling profile formats. 1418 1419 1420Using Sampling Profilers 1421^^^^^^^^^^^^^^^^^^^^^^^^ 1422 1423Sampling profilers are used to collect runtime information, such as 1424hardware counters, while your application executes. They are typically 1425very efficient and do not incur a large runtime overhead. The 1426sample data collected by the profiler can be used during compilation 1427to determine what the most executed areas of the code are. 1428 1429Using the data from a sample profiler requires some changes in the way 1430a program is built. Before the compiler can use profiling information, 1431the code needs to execute under the profiler. The following is the 1432usual build cycle when using sample profilers for optimization: 1433 14341. Build the code with source line table information. You can use all the 1435 usual build flags that you always build your application with. The only 1436 requirement is that you add ``-gline-tables-only`` or ``-g`` to the 1437 command line. This is important for the profiler to be able to map 1438 instructions back to source line locations. 1439 1440 .. code-block:: console 1441 1442 $ clang++ -O2 -gline-tables-only code.cc -o code 1443 14442. Run the executable under a sampling profiler. The specific profiler 1445 you use does not really matter, as long as its output can be converted 1446 into the format that the LLVM optimizer understands. Currently, there 1447 exists a conversion tool for the Linux Perf profiler 1448 (https://perf.wiki.kernel.org/), so these examples assume that you 1449 are using Linux Perf to profile your code. 1450 1451 .. code-block:: console 1452 1453 $ perf record -b ./code 1454 1455 Note the use of the ``-b`` flag. This tells Perf to use the Last Branch 1456 Record (LBR) to record call chains. While this is not strictly required, 1457 it provides better call information, which improves the accuracy of 1458 the profile data. 1459 14603. Convert the collected profile data to LLVM's sample profile format. 1461 This is currently supported via the AutoFDO converter ``create_llvm_prof``. 1462 It is available at http://github.com/google/autofdo. Once built and 1463 installed, you can convert the ``perf.data`` file to LLVM using 1464 the command: 1465 1466 .. code-block:: console 1467 1468 $ create_llvm_prof --binary=./code --out=code.prof 1469 1470 This will read ``perf.data`` and the binary file ``./code`` and emit 1471 the profile data in ``code.prof``. Note that if you ran ``perf`` 1472 without the ``-b`` flag, you need to use ``--use_lbr=false`` when 1473 calling ``create_llvm_prof``. 1474 14754. Build the code again using the collected profile. This step feeds 1476 the profile back to the optimizers. This should result in a binary 1477 that executes faster than the original one. Note that you are not 1478 required to build the code with the exact same arguments that you 1479 used in the first step. The only requirement is that you build the code 1480 with ``-gline-tables-only`` and ``-fprofile-sample-use``. 1481 1482 .. code-block:: console 1483 1484 $ clang++ -O2 -gline-tables-only -fprofile-sample-use=code.prof code.cc -o code 1485 1486 1487Sample Profile Formats 1488"""""""""""""""""""""" 1489 1490Since external profilers generate profile data in a variety of custom formats, 1491the data generated by the profiler must be converted into a format that can be 1492read by the backend. LLVM supports three different sample profile formats: 1493 14941. ASCII text. This is the easiest one to generate. The file is divided into 1495 sections, which correspond to each of the functions with profile 1496 information. The format is described below. It can also be generated from 1497 the binary or gcov formats using the ``llvm-profdata`` tool. 1498 14992. Binary encoding. This uses a more efficient encoding that yields smaller 1500 profile files. This is the format generated by the ``create_llvm_prof`` tool 1501 in http://github.com/google/autofdo. 1502 15033. GCC encoding. This is based on the gcov format, which is accepted by GCC. It 1504 is only interesting in environments where GCC and Clang co-exist. This 1505 encoding is only generated by the ``create_gcov`` tool in 1506 http://github.com/google/autofdo. It can be read by LLVM and 1507 ``llvm-profdata``, but it cannot be generated by either. 1508 1509If you are using Linux Perf to generate sampling profiles, you can use the 1510conversion tool ``create_llvm_prof`` described in the previous section. 1511Otherwise, you will need to write a conversion tool that converts your 1512profiler's native format into one of these three. 1513 1514 1515Sample Profile Text Format 1516"""""""""""""""""""""""""" 1517 1518This section describes the ASCII text format for sampling profiles. It is, 1519arguably, the easiest one to generate. If you are interested in generating any 1520of the other two, consult the ``ProfileData`` library in LLVM's source tree 1521(specifically, ``include/llvm/ProfileData/SampleProfReader.h``). 1522 1523.. code-block:: console 1524 1525 function1:total_samples:total_head_samples 1526 offset1[.discriminator]: number_of_samples [fn1:num fn2:num ... ] 1527 offset2[.discriminator]: number_of_samples [fn3:num fn4:num ... ] 1528 ... 1529 offsetN[.discriminator]: number_of_samples [fn5:num fn6:num ... ] 1530 offsetA[.discriminator]: fnA:num_of_total_samples 1531 offsetA1[.discriminator]: number_of_samples [fn7:num fn8:num ... ] 1532 offsetA1[.discriminator]: number_of_samples [fn9:num fn10:num ... ] 1533 offsetB[.discriminator]: fnB:num_of_total_samples 1534 offsetB1[.discriminator]: number_of_samples [fn11:num fn12:num ... ] 1535 1536This is a nested tree in which the indentation represents the nesting level 1537of the inline stack. There are no blank lines in the file. And the spacing 1538within a single line is fixed. Additional spaces will result in an error 1539while reading the file. 1540 1541Any line starting with the '#' character is completely ignored. 1542 1543Inlined calls are represented with indentation. The Inline stack is a 1544stack of source locations in which the top of the stack represents the 1545leaf function, and the bottom of the stack represents the actual 1546symbol to which the instruction belongs. 1547 1548Function names must be mangled in order for the profile loader to 1549match them in the current translation unit. The two numbers in the 1550function header specify how many total samples were accumulated in the 1551function (first number), and the total number of samples accumulated 1552in the prologue of the function (second number). This head sample 1553count provides an indicator of how frequently the function is invoked. 1554 1555There are two types of lines in the function body. 1556 1557- Sampled line represents the profile information of a source location. 1558 ``offsetN[.discriminator]: number_of_samples [fn5:num fn6:num ... ]`` 1559 1560- Callsite line represents the profile information of an inlined callsite. 1561 ``offsetA[.discriminator]: fnA:num_of_total_samples`` 1562 1563Each sampled line may contain several items. Some are optional (marked 1564below): 1565 1566a. Source line offset. This number represents the line number 1567 in the function where the sample was collected. The line number is 1568 always relative to the line where symbol of the function is 1569 defined. So, if the function has its header at line 280, the offset 1570 13 is at line 293 in the file. 1571 1572 Note that this offset should never be a negative number. This could 1573 happen in cases like macros. The debug machinery will register the 1574 line number at the point of macro expansion. So, if the macro was 1575 expanded in a line before the start of the function, the profile 1576 converter should emit a 0 as the offset (this means that the optimizers 1577 will not be able to associate a meaningful weight to the instructions 1578 in the macro). 1579 1580b. [OPTIONAL] Discriminator. This is used if the sampled program 1581 was compiled with DWARF discriminator support 1582 (http://wiki.dwarfstd.org/index.php?title=Path_Discriminators). 1583 DWARF discriminators are unsigned integer values that allow the 1584 compiler to distinguish between multiple execution paths on the 1585 same source line location. 1586 1587 For example, consider the line of code ``if (cond) foo(); else bar();``. 1588 If the predicate ``cond`` is true 80% of the time, then the edge 1589 into function ``foo`` should be considered to be taken most of the 1590 time. But both calls to ``foo`` and ``bar`` are at the same source 1591 line, so a sample count at that line is not sufficient. The 1592 compiler needs to know which part of that line is taken more 1593 frequently. 1594 1595 This is what discriminators provide. In this case, the calls to 1596 ``foo`` and ``bar`` will be at the same line, but will have 1597 different discriminator values. This allows the compiler to correctly 1598 set edge weights into ``foo`` and ``bar``. 1599 1600c. Number of samples. This is an integer quantity representing the 1601 number of samples collected by the profiler at this source 1602 location. 1603 1604d. [OPTIONAL] Potential call targets and samples. If present, this 1605 line contains a call instruction. This models both direct and 1606 number of samples. For example, 1607 1608 .. code-block:: console 1609 1610 130: 7 foo:3 bar:2 baz:7 1611 1612 The above means that at relative line offset 130 there is a call 1613 instruction that calls one of ``foo()``, ``bar()`` and ``baz()``, 1614 with ``baz()`` being the relatively more frequently called target. 1615 1616As an example, consider a program with the call chain ``main -> foo -> bar``. 1617When built with optimizations enabled, the compiler may inline the 1618calls to ``bar`` and ``foo`` inside ``main``. The generated profile 1619could then be something like this: 1620 1621.. code-block:: console 1622 1623 main:35504:0 1624 1: _Z3foov:35504 1625 2: _Z32bari:31977 1626 1.1: 31977 1627 2: 0 1628 1629This profile indicates that there were a total of 35,504 samples 1630collected in main. All of those were at line 1 (the call to ``foo``). 1631Of those, 31,977 were spent inside the body of ``bar``. The last line 1632of the profile (``2: 0``) corresponds to line 2 inside ``main``. No 1633samples were collected there. 1634 1635Profiling with Instrumentation 1636^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1637 1638Clang also supports profiling via instrumentation. This requires building a 1639special instrumented version of the code and has some runtime 1640overhead during the profiling, but it provides more detailed results than a 1641sampling profiler. It also provides reproducible results, at least to the 1642extent that the code behaves consistently across runs. 1643 1644Here are the steps for using profile guided optimization with 1645instrumentation: 1646 16471. Build an instrumented version of the code by compiling and linking with the 1648 ``-fprofile-instr-generate`` option. 1649 1650 .. code-block:: console 1651 1652 $ clang++ -O2 -fprofile-instr-generate code.cc -o code 1653 16542. Run the instrumented executable with inputs that reflect the typical usage. 1655 By default, the profile data will be written to a ``default.profraw`` file 1656 in the current directory. You can override that default by using option 1657 ``-fprofile-instr-generate=`` or by setting the ``LLVM_PROFILE_FILE`` 1658 environment variable to specify an alternate file. If non-default file name 1659 is specified by both the environment variable and the command line option, 1660 the environment variable takes precedence. The file name pattern specified 1661 can include different modifiers: ``%p``, ``%h``, and ``%m``. 1662 1663 Any instance of ``%p`` in that file name will be replaced by the process 1664 ID, so that you can easily distinguish the profile output from multiple 1665 runs. 1666 1667 .. code-block:: console 1668 1669 $ LLVM_PROFILE_FILE="code-%p.profraw" ./code 1670 1671 The modifier ``%h`` can be used in scenarios where the same instrumented 1672 binary is run in multiple different host machines dumping profile data 1673 to a shared network based storage. The ``%h`` specifier will be substituted 1674 with the hostname so that profiles collected from different hosts do not 1675 clobber each other. 1676 1677 While the use of ``%p`` specifier can reduce the likelihood for the profiles 1678 dumped from different processes to clobber each other, such clobbering can still 1679 happen because of the ``pid`` re-use by the OS. Another side-effect of using 1680 ``%p`` is that the storage requirement for raw profile data files is greatly 1681 increased. To avoid issues like this, the ``%m`` specifier can used in the profile 1682 name. When this specifier is used, the profiler runtime will substitute ``%m`` 1683 with a unique integer identifier associated with the instrumented binary. Additionally, 1684 multiple raw profiles dumped from different processes that share a file system (can be 1685 on different hosts) will be automatically merged by the profiler runtime during the 1686 dumping. If the program links in multiple instrumented shared libraries, each library 1687 will dump the profile data into its own profile data file (with its unique integer 1688 id embedded in the profile name). Note that the merging enabled by ``%m`` is for raw 1689 profile data generated by profiler runtime. The resulting merged "raw" profile data 1690 file still needs to be converted to a different format expected by the compiler ( 1691 see step 3 below). 1692 1693 .. code-block:: console 1694 1695 $ LLVM_PROFILE_FILE="code-%m.profraw" ./code 1696 1697 16983. Combine profiles from multiple runs and convert the "raw" profile format to 1699 the input expected by clang. Use the ``merge`` command of the 1700 ``llvm-profdata`` tool to do this. 1701 1702 .. code-block:: console 1703 1704 $ llvm-profdata merge -output=code.profdata code-*.profraw 1705 1706 Note that this step is necessary even when there is only one "raw" profile, 1707 since the merge operation also changes the file format. 1708 17094. Build the code again using the ``-fprofile-instr-use`` option to specify the 1710 collected profile data. 1711 1712 .. code-block:: console 1713 1714 $ clang++ -O2 -fprofile-instr-use=code.profdata code.cc -o code 1715 1716 You can repeat step 4 as often as you like without regenerating the 1717 profile. As you make changes to your code, clang may no longer be able to 1718 use the profile data. It will warn you when this happens. 1719 1720Profile generation using an alternative instrumentation method can be 1721controlled by the GCC-compatible flags ``-fprofile-generate`` and 1722``-fprofile-use``. Although these flags are semantically equivalent to 1723their GCC counterparts, they *do not* handle GCC-compatible profiles. 1724They are only meant to implement GCC's semantics with respect to 1725profile creation and use. 1726 1727.. option:: -fprofile-generate[=<dirname>] 1728 1729 The ``-fprofile-generate`` and ``-fprofile-generate=`` flags will use 1730 an alterantive instrumentation method for profile generation. When 1731 given a directory name, it generates the profile file 1732 ``default_%m.profraw`` in the directory named ``dirname`` if specified. 1733 If ``dirname`` does not exist, it will be created at runtime. ``%m`` specifier 1734 will be substibuted with a unique id documented in step 2 above. In other words, 1735 with ``-fprofile-generate[=<dirname>]`` option, the "raw" profile data automatic 1736 merging is turned on by default, so there will no longer any risk of profile 1737 clobbering from different running processes. For example, 1738 1739 .. code-block:: console 1740 1741 $ clang++ -O2 -fprofile-generate=yyy/zzz code.cc -o code 1742 1743 When ``code`` is executed, the profile will be written to the file 1744 ``yyy/zzz/default_xxxx.profraw``. 1745 1746 To generate the profile data file with the compiler readable format, the 1747 ``llvm-profdata`` tool can be used with the profile directory as the input: 1748 1749 .. code-block:: console 1750 1751 $ llvm-profdata merge -output=code.profdata yyy/zzz/ 1752 1753 If the user wants to turn off the auto-merging feature, or simply override the 1754 the profile dumping path specified at command line, the environment variable 1755 ``LLVM_PROFILE_FILE`` can still be used to override 1756 the directory and filename for the profile file at runtime. 1757 1758.. option:: -fprofile-use[=<pathname>] 1759 1760 Without any other arguments, ``-fprofile-use`` behaves identically to 1761 ``-fprofile-instr-use``. Otherwise, if ``pathname`` is the full path to a 1762 profile file, it reads from that file. If ``pathname`` is a directory name, 1763 it reads from ``pathname/default.profdata``. 1764 1765Disabling Instrumentation 1766^^^^^^^^^^^^^^^^^^^^^^^^^ 1767 1768In certain situations, it may be useful to disable profile generation or use 1769for specific files in a build, without affecting the main compilation flags 1770used for the other files in the project. 1771 1772In these cases, you can use the flag ``-fno-profile-instr-generate`` (or 1773``-fno-profile-generate``) to disable profile generation, and 1774``-fno-profile-instr-use`` (or ``-fno-profile-use``) to disable profile use. 1775 1776Note that these flags should appear after the corresponding profile 1777flags to have an effect. 1778 1779Controlling Debug Information 1780----------------------------- 1781 1782Controlling Size of Debug Information 1783^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1784 1785Debug info kind generated by Clang can be set by one of the flags listed 1786below. If multiple flags are present, the last one is used. 1787 1788.. option:: -g0 1789 1790 Don't generate any debug info (default). 1791 1792.. option:: -gline-tables-only 1793 1794 Generate line number tables only. 1795 1796 This kind of debug info allows to obtain stack traces with function names, 1797 file names and line numbers (by such tools as ``gdb`` or ``addr2line``). It 1798 doesn't contain any other data (e.g. description of local variables or 1799 function parameters). 1800 1801.. option:: -fstandalone-debug 1802 1803 Clang supports a number of optimizations to reduce the size of debug 1804 information in the binary. They work based on the assumption that 1805 the debug type information can be spread out over multiple 1806 compilation units. For instance, Clang will not emit type 1807 definitions for types that are not needed by a module and could be 1808 replaced with a forward declaration. Further, Clang will only emit 1809 type info for a dynamic C++ class in the module that contains the 1810 vtable for the class. 1811 1812 The **-fstandalone-debug** option turns off these optimizations. 1813 This is useful when working with 3rd-party libraries that don't come 1814 with debug information. Note that Clang will never emit type 1815 information for types that are not referenced at all by the program. 1816 1817.. option:: -fno-standalone-debug 1818 1819 On Darwin **-fstandalone-debug** is enabled by default. The 1820 **-fno-standalone-debug** option can be used to get to turn on the 1821 vtable-based optimization described above. 1822 1823.. option:: -g 1824 1825 Generate complete debug info. 1826 1827Controlling Macro Debug Info Generation 1828^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1829 1830Debug info for C preprocessor macros increases the size of debug information in 1831the binary. Macro debug info generated by Clang can be controlled by the flags 1832listed below. 1833 1834.. option:: -fdebug-macro 1835 1836 Generate debug info for preprocessor macros. This flag is discarded when 1837 **-g0** is enabled. 1838 1839.. option:: -fno-debug-macro 1840 1841 Do not generate debug info for preprocessor macros (default). 1842 1843Controlling Debugger "Tuning" 1844^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1845 1846While Clang generally emits standard DWARF debug info (http://dwarfstd.org), 1847different debuggers may know how to take advantage of different specific DWARF 1848features. You can "tune" the debug info for one of several different debuggers. 1849 1850.. option:: -ggdb, -glldb, -gsce 1851 1852 Tune the debug info for the ``gdb``, ``lldb``, or Sony PlayStation\ |reg| 1853 debugger, respectively. Each of these options implies **-g**. (Therefore, if 1854 you want both **-gline-tables-only** and debugger tuning, the tuning option 1855 must come first.) 1856 1857 1858Controlling LLVM IR Output 1859-------------------------- 1860 1861Controlling Value Names in LLVM IR 1862^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1863 1864Emitting value names in LLVM IR increases the size and verbosity of the IR. 1865By default, value names are only emitted in assertion-enabled builds of Clang. 1866However, when reading IR it can be useful to re-enable the emission of value 1867names to improve readability. 1868 1869.. option:: -fdiscard-value-names 1870 1871 Discard value names when generating LLVM IR. 1872 1873.. option:: -fno-discard-value-names 1874 1875 Do not discard value names when generating LLVM IR. This option can be used 1876 to re-enable names for release builds of Clang. 1877 1878 1879Comment Parsing Options 1880----------------------- 1881 1882Clang parses Doxygen and non-Doxygen style documentation comments and attaches 1883them to the appropriate declaration nodes. By default, it only parses 1884Doxygen-style comments and ignores ordinary comments starting with ``//`` and 1885``/*``. 1886 1887.. option:: -Wdocumentation 1888 1889 Emit warnings about use of documentation comments. This warning group is off 1890 by default. 1891 1892 This includes checking that ``\param`` commands name parameters that actually 1893 present in the function signature, checking that ``\returns`` is used only on 1894 functions that actually return a value etc. 1895 1896.. option:: -Wno-documentation-unknown-command 1897 1898 Don't warn when encountering an unknown Doxygen command. 1899 1900.. option:: -fparse-all-comments 1901 1902 Parse all comments as documentation comments (including ordinary comments 1903 starting with ``//`` and ``/*``). 1904 1905.. option:: -fcomment-block-commands=[commands] 1906 1907 Define custom documentation commands as block commands. This allows Clang to 1908 construct the correct AST for these custom commands, and silences warnings 1909 about unknown commands. Several commands must be separated by a comma 1910 *without trailing space*; e.g. ``-fcomment-block-commands=foo,bar`` defines 1911 custom commands ``\foo`` and ``\bar``. 1912 1913 It is also possible to use ``-fcomment-block-commands`` several times; e.g. 1914 ``-fcomment-block-commands=foo -fcomment-block-commands=bar`` does the same 1915 as above. 1916 1917.. _c: 1918 1919C Language Features 1920=================== 1921 1922The support for standard C in clang is feature-complete except for the 1923C99 floating-point pragmas. 1924 1925Extensions supported by clang 1926----------------------------- 1927 1928See :doc:`LanguageExtensions`. 1929 1930Differences between various standard modes 1931------------------------------------------ 1932 1933clang supports the -std option, which changes what language mode clang 1934uses. The supported modes for C are c89, gnu89, c94, c99, gnu99, c11, 1935gnu11, and various aliases for those modes. If no -std option is 1936specified, clang defaults to gnu11 mode. Many C99 and C11 features are 1937supported in earlier modes as a conforming extension, with a warning. Use 1938``-pedantic-errors`` to request an error if a feature from a later standard 1939revision is used in an earlier mode. 1940 1941Differences between all ``c*`` and ``gnu*`` modes: 1942 1943- ``c*`` modes define "``__STRICT_ANSI__``". 1944- Target-specific defines not prefixed by underscores, like "linux", 1945 are defined in ``gnu*`` modes. 1946- Trigraphs default to being off in ``gnu*`` modes; they can be enabled by 1947 the -trigraphs option. 1948- The parser recognizes "asm" and "typeof" as keywords in ``gnu*`` modes; 1949 the variants "``__asm__``" and "``__typeof__``" are recognized in all 1950 modes. 1951- The Apple "blocks" extension is recognized by default in ``gnu*`` modes 1952 on some platforms; it can be enabled in any mode with the "-fblocks" 1953 option. 1954- Arrays that are VLA's according to the standard, but which can be 1955 constant folded by the frontend are treated as fixed size arrays. 1956 This occurs for things like "int X[(1, 2)];", which is technically a 1957 VLA. ``c*`` modes are strictly compliant and treat these as VLAs. 1958 1959Differences between ``*89`` and ``*99`` modes: 1960 1961- The ``*99`` modes default to implementing "inline" as specified in C99, 1962 while the ``*89`` modes implement the GNU version. This can be 1963 overridden for individual functions with the ``__gnu_inline__`` 1964 attribute. 1965- Digraphs are not recognized in c89 mode. 1966- The scope of names defined inside a "for", "if", "switch", "while", 1967 or "do" statement is different. (example: "``if ((struct x {int 1968 x;}*)0) {}``".) 1969- ``__STDC_VERSION__`` is not defined in ``*89`` modes. 1970- "inline" is not recognized as a keyword in c89 mode. 1971- "restrict" is not recognized as a keyword in ``*89`` modes. 1972- Commas are allowed in integer constant expressions in ``*99`` modes. 1973- Arrays which are not lvalues are not implicitly promoted to pointers 1974 in ``*89`` modes. 1975- Some warnings are different. 1976 1977Differences between ``*99`` and ``*11`` modes: 1978 1979- Warnings for use of C11 features are disabled. 1980- ``__STDC_VERSION__`` is defined to ``201112L`` rather than ``199901L``. 1981 1982c94 mode is identical to c89 mode except that digraphs are enabled in 1983c94 mode (FIXME: And ``__STDC_VERSION__`` should be defined!). 1984 1985GCC extensions not implemented yet 1986---------------------------------- 1987 1988clang tries to be compatible with gcc as much as possible, but some gcc 1989extensions are not implemented yet: 1990 1991- clang does not support decimal floating point types (``_Decimal32`` and 1992 friends) or fixed-point types (``_Fract`` and friends); nobody has 1993 expressed interest in these features yet, so it's hard to say when 1994 they will be implemented. 1995- clang does not support nested functions; this is a complex feature 1996 which is infrequently used, so it is unlikely to be implemented 1997 anytime soon. In C++11 it can be emulated by assigning lambda 1998 functions to local variables, e.g: 1999 2000 .. code-block:: cpp 2001 2002 auto const local_function = [&](int parameter) { 2003 // Do something 2004 }; 2005 ... 2006 local_function(1); 2007 2008- clang only supports global register variables when the register specified 2009 is non-allocatable (e.g. the stack pointer). Support for general global 2010 register variables is unlikely to be implemented soon because it requires 2011 additional LLVM backend support. 2012- clang does not support static initialization of flexible array 2013 members. This appears to be a rarely used extension, but could be 2014 implemented pending user demand. 2015- clang does not support 2016 ``__builtin_va_arg_pack``/``__builtin_va_arg_pack_len``. This is 2017 used rarely, but in some potentially interesting places, like the 2018 glibc headers, so it may be implemented pending user demand. Note 2019 that because clang pretends to be like GCC 4.2, and this extension 2020 was introduced in 4.3, the glibc headers will not try to use this 2021 extension with clang at the moment. 2022- clang does not support the gcc extension for forward-declaring 2023 function parameters; this has not shown up in any real-world code 2024 yet, though, so it might never be implemented. 2025 2026This is not a complete list; if you find an unsupported extension 2027missing from this list, please send an e-mail to cfe-dev. This list 2028currently excludes C++; see :ref:`C++ Language Features <cxx>`. Also, this 2029list does not include bugs in mostly-implemented features; please see 2030the `bug 2031tracker <https://bugs.llvm.org/buglist.cgi?quicksearch=product%3Aclang+component%3A-New%2BBugs%2CAST%2CBasic%2CDriver%2CHeaders%2CLLVM%2BCodeGen%2Cparser%2Cpreprocessor%2CSemantic%2BAnalyzer>`_ 2032for known existing bugs (FIXME: Is there a section for bug-reporting 2033guidelines somewhere?). 2034 2035Intentionally unsupported GCC extensions 2036---------------------------------------- 2037 2038- clang does not support the gcc extension that allows variable-length 2039 arrays in structures. This is for a few reasons: one, it is tricky to 2040 implement, two, the extension is completely undocumented, and three, 2041 the extension appears to be rarely used. Note that clang *does* 2042 support flexible array members (arrays with a zero or unspecified 2043 size at the end of a structure). 2044- clang does not have an equivalent to gcc's "fold"; this means that 2045 clang doesn't accept some constructs gcc might accept in contexts 2046 where a constant expression is required, like "x-x" where x is a 2047 variable. 2048- clang does not support ``__builtin_apply`` and friends; this extension 2049 is extremely obscure and difficult to implement reliably. 2050 2051.. _c_ms: 2052 2053Microsoft extensions 2054-------------------- 2055 2056clang has support for many extensions from Microsoft Visual C++. To enable these 2057extensions, use the ``-fms-extensions`` command-line option. This is the default 2058for Windows targets. Clang does not implement every pragma or declspec provided 2059by MSVC, but the popular ones, such as ``__declspec(dllexport)`` and ``#pragma 2060comment(lib)`` are well supported. 2061 2062clang has a ``-fms-compatibility`` flag that makes clang accept enough 2063invalid C++ to be able to parse most Microsoft headers. For example, it 2064allows `unqualified lookup of dependent base class members 2065<http://clang.llvm.org/compatibility.html#dep_lookup_bases>`_, which is 2066a common compatibility issue with clang. This flag is enabled by default 2067for Windows targets. 2068 2069``-fdelayed-template-parsing`` lets clang delay parsing of function template 2070definitions until the end of a translation unit. This flag is enabled by 2071default for Windows targets. 2072 2073For compatibility with existing code that compiles with MSVC, clang defines the 2074``_MSC_VER`` and ``_MSC_FULL_VER`` macros. These default to the values of 1800 2075and 180000000 respectively, making clang look like an early release of Visual 2076C++ 2013. The ``-fms-compatibility-version=`` flag overrides these values. It 2077accepts a dotted version tuple, such as 19.00.23506. Changing the MSVC 2078compatibility version makes clang behave more like that version of MSVC. For 2079example, ``-fms-compatibility-version=19`` will enable C++14 features and define 2080``char16_t`` and ``char32_t`` as builtin types. 2081 2082.. _cxx: 2083 2084C++ Language Features 2085===================== 2086 2087clang fully implements all of standard C++98 except for exported 2088templates (which were removed in C++11), and all of standard C++11 2089and the current draft standard for C++1y. 2090 2091Controlling implementation limits 2092--------------------------------- 2093 2094.. option:: -fbracket-depth=N 2095 2096 Sets the limit for nested parentheses, brackets, and braces to N. The 2097 default is 256. 2098 2099.. option:: -fconstexpr-depth=N 2100 2101 Sets the limit for recursive constexpr function invocations to N. The 2102 default is 512. 2103 2104.. option:: -ftemplate-depth=N 2105 2106 Sets the limit for recursively nested template instantiations to N. The 2107 default is 256. 2108 2109.. option:: -foperator-arrow-depth=N 2110 2111 Sets the limit for iterative calls to 'operator->' functions to N. The 2112 default is 256. 2113 2114.. _objc: 2115 2116Objective-C Language Features 2117============================= 2118 2119.. _objcxx: 2120 2121Objective-C++ Language Features 2122=============================== 2123 2124.. _openmp: 2125 2126OpenMP Features 2127=============== 2128 2129Clang supports all OpenMP 3.1 directives and clauses. In addition, some 2130features of OpenMP 4.0 are supported. For example, ``#pragma omp simd``, 2131``#pragma omp for simd``, ``#pragma omp parallel for simd`` directives, extended 2132set of atomic constructs, ``proc_bind`` clause for all parallel-based 2133directives, ``depend`` clause for ``#pragma omp task`` directive (except for 2134array sections), ``#pragma omp cancel`` and ``#pragma omp cancellation point`` 2135directives, and ``#pragma omp taskgroup`` directive. 2136 2137Use `-fopenmp` to enable OpenMP. Support for OpenMP can be disabled with 2138`-fno-openmp`. 2139 2140Use `-fopenmp-simd` to enable OpenMP simd features only, without linking 2141the runtime library; for combined constructs 2142(e.g. ``#pragma omp parallel for simd``) the non-simd directives and clauses 2143will be ignored. This can be disabled with `-fno-openmp-simd`. 2144 2145Controlling implementation limits 2146--------------------------------- 2147 2148.. option:: -fopenmp-use-tls 2149 2150 Controls code generation for OpenMP threadprivate variables. In presence of 2151 this option all threadprivate variables are generated the same way as thread 2152 local variables, using TLS support. If `-fno-openmp-use-tls` 2153 is provided or target does not support TLS, code generation for threadprivate 2154 variables relies on OpenMP runtime library. 2155 2156.. _opencl: 2157 2158OpenCL Features 2159=============== 2160 2161Clang can be used to compile OpenCL kernels for execution on a device 2162(e.g. GPU). It is possible to compile the kernel into a binary (e.g. for AMD or 2163Nvidia targets) that can be uploaded to run directly on a device (e.g. using 2164`clCreateProgramWithBinary 2165<https://www.khronos.org/registry/OpenCL/specs/opencl-1.1.pdf#111>`_) or 2166into generic bitcode files loadable into other toolchains. 2167 2168Compiling to a binary using the default target from the installation can be done 2169as follows: 2170 2171 .. code-block:: console 2172 2173 $ echo "kernel void k(){}" > test.cl 2174 $ clang test.cl 2175 2176Compiling for a specific target can be done by specifying the triple corresponding 2177to the target, for example: 2178 2179 .. code-block:: console 2180 2181 $ clang -target nvptx64-unknown-unknown test.cl 2182 $ clang -target amdgcn-amd-amdhsa-opencl test.cl 2183 2184Compiling to bitcode can be done as follows: 2185 2186 .. code-block:: console 2187 2188 $ clang -c -emit-llvm test.cl 2189 2190This will produce a generic test.bc file that can be used in vendor toolchains 2191to perform machine code generation. 2192 2193Clang currently supports OpenCL C language standards up to v2.0. 2194 2195OpenCL Specific Options 2196----------------------- 2197 2198Most of the OpenCL build options from `the specification v2.0 section 5.8.4 2199<https://www.khronos.org/registry/cl/specs/opencl-2.0.pdf#200>`_ are available. 2200 2201Examples: 2202 2203 .. code-block:: console 2204 2205 $ clang -cl-std=CL2.0 -cl-single-precision-constant test.cl 2206 2207Some extra options are available to support special OpenCL features. 2208 2209.. option:: -finclude-default-header 2210 2211Loads standard includes during compilations. By default OpenCL headers are not 2212loaded and therefore standard library includes are not available. To load them 2213automatically a flag has been added to the frontend (see also :ref:`the section 2214on the OpenCL Header <opencl_header>`): 2215 2216 .. code-block:: console 2217 2218 $ clang -Xclang -finclude-default-header test.cl 2219 2220Alternatively ``-include`` or ``-I`` followed by the path to the header location 2221can be given manually. 2222 2223 .. code-block:: console 2224 2225 $ clang -I<path to clang>/lib/Headers/opencl-c.h test.cl 2226 2227In this case the kernel code should contain ``#include <opencl-c.h>`` just as a 2228regular C include. 2229 2230.. _opencl_cl_ext: 2231 2232.. option:: -cl-ext 2233 2234Disables support of OpenCL extensions. All OpenCL targets provide a list 2235of extensions that they support. Clang allows to amend this using the ``-cl-ext`` 2236flag with a comma-separated list of extensions prefixed with ``'+'`` or ``'-'``. 2237The syntax: ``-cl-ext=<(['-'|'+']<extension>[,])+>``, where extensions 2238can be either one of `the OpenCL specification extensions 2239<https://www.khronos.org/registry/cl/sdk/2.0/docs/man/xhtml/EXTENSION.html>`_ 2240or any known vendor extension. Alternatively, ``'all'`` can be used to enable 2241or disable all known extensions. 2242Example disabling double support for the 64-bit SPIR target: 2243 2244 .. code-block:: console 2245 2246 $ clang -cc1 -triple spir64-unknown-unknown -cl-ext=-cl_khr_fp64 test.cl 2247 2248Enabling all extensions except double support in R600 AMD GPU can be done using: 2249 2250 .. code-block:: console 2251 2252 $ clang -cc1 -triple r600-unknown-unknown -cl-ext=-all,+cl_khr_fp16 test.cl 2253 2254.. _opencl_fake_address_space_map: 2255 2256.. option:: -ffake-address-space-map 2257 2258Overrides the target address space map with a fake map. 2259This allows adding explicit address space IDs to the bitcode for non-segmented 2260memory architectures that don't have separate IDs for each of the OpenCL 2261logical address spaces by default. Passing ``-ffake-address-space-map`` will 2262add/override address spaces of the target compiled for with the following values: 2263``1-global``, ``2-constant``, ``3-local``, ``4-generic``. The private address 2264space is represented by the absence of an address space attribute in the IR (see 2265also :ref:`the section on the address space attribute <opencl_addrsp>`). 2266 2267 .. code-block:: console 2268 2269 $ clang -ffake-address-space-map test.cl 2270 2271Some other flags used for the compilation for C can also be passed while 2272compiling for OpenCL, examples: ``-c``, ``-O<1-4|s>``, ``-o``, ``-emit-llvm``, etc. 2273 2274OpenCL Targets 2275-------------- 2276 2277OpenCL targets are derived from the regular Clang target classes. The OpenCL 2278specific parts of the target representation provide address space mapping as 2279well as a set of supported extensions. 2280 2281Specific Targets 2282^^^^^^^^^^^^^^^^ 2283 2284There is a set of concrete HW architectures that OpenCL can be compiled for. 2285 2286- For AMD target: 2287 2288 .. code-block:: console 2289 2290 $ clang -target amdgcn-amd-amdhsa-opencl test.cl 2291 2292- For Nvidia architectures: 2293 2294 .. code-block:: console 2295 2296 $ clang -target nvptx64-unknown-unknown test.cl 2297 2298 2299Generic Targets 2300^^^^^^^^^^^^^^^ 2301 2302- SPIR is available as a generic target to allow portable bitcode to be produced 2303 that can be used across GPU toolchains. The implementation follows `the SPIR 2304 specification <https://www.khronos.org/spir>`_. There are two flavors 2305 available for 32 and 64 bits. 2306 2307 .. code-block:: console 2308 2309 $ clang -target spir-unknown-unknown test.cl 2310 $ clang -target spir64-unknown-unknown test.cl 2311 2312 All known OpenCL extensions are supported in the SPIR targets. Clang will 2313 generate SPIR v1.2 compatible IR for OpenCL versions up to 2.0 and SPIR v2.0 2314 for OpenCL v2.0. 2315 2316- x86 is used by some implementations that are x86 compatible and currently 2317 remains for backwards compatibility (with older implementations prior to 2318 SPIR target support). For "non-SPMD" targets which cannot spawn multiple 2319 work-items on the fly using hardware, which covers practically all non-GPU 2320 devices such as CPUs and DSPs, additional processing is needed for the kernels 2321 to support multiple work-item execution. For this, a 3rd party toolchain, 2322 such as for example `POCL <http://portablecl.org/>`_, can be used. 2323 2324 This target does not support multiple memory segments and, therefore, the fake 2325 address space map can be added using the :ref:`-ffake-address-space-map 2326 <opencl_fake_address_space_map>` flag. 2327 2328.. _opencl_header: 2329 2330OpenCL Header 2331------------- 2332 2333By default Clang will not include standard headers and therefore OpenCL builtin 2334functions and some types (i.e. vectors) are unknown. The default CL header is, 2335however, provided in the Clang installation and can be enabled by passing the 2336``-finclude-default-header`` flag to the Clang frontend. 2337 2338 .. code-block:: console 2339 2340 $ echo "bool is_wg_uniform(int i){return get_enqueued_local_size(i)==get_local_size(i);}" > test.cl 2341 $ clang -Xclang -finclude-default-header -cl-std=CL2.0 test.cl 2342 2343Because the header is very large and long to parse, PCH (:doc:`PCHInternals`) 2344and modules (:doc:`Modules`) are used internally to improve the compilation 2345speed. 2346 2347To enable modules for OpenCL: 2348 2349 .. code-block:: console 2350 2351 $ clang -target spir-unknown-unknown -c -emit-llvm -Xclang -finclude-default-header -fmodules -fimplicit-module-maps -fmodules-cache-path=<path to the generated module> test.cl 2352 2353OpenCL Extensions 2354----------------- 2355 2356All of the ``cl_khr_*`` extensions from `the official OpenCL specification 2357<https://www.khronos.org/registry/OpenCL/sdk/2.0/docs/man/xhtml/EXTENSION.html>`_ 2358up to and including version 2.0 are available and set per target depending on the 2359support available in the specific architecture. 2360 2361It is possible to alter the default extensions setting per target using 2362``-cl-ext`` flag. (See :ref:`flags description <opencl_cl_ext>` for more details). 2363 2364Vendor extensions can be added flexibly by declaring the list of types and 2365functions associated with each extensions enclosed within the following 2366compiler pragma directives: 2367 2368 .. code-block:: c 2369 2370 #pragma OPENCL EXTENSION the_new_extension_name : begin 2371 // declare types and functions associated with the extension here 2372 #pragma OPENCL EXTENSION the_new_extension_name : end 2373 2374For example, parsing the following code adds ``my_t`` type and ``my_func`` 2375function to the custom ``my_ext`` extension. 2376 2377 .. code-block:: c 2378 2379 #pragma OPENCL EXTENSION my_ext : begin 2380 typedef struct{ 2381 int a; 2382 }my_t; 2383 void my_func(my_t); 2384 #pragma OPENCL EXTENSION my_ext : end 2385 2386Declaring the same types in different vendor extensions is disallowed. 2387 2388OpenCL Metadata 2389--------------- 2390 2391Clang uses metadata to provide additional OpenCL semantics in IR needed for 2392backends and OpenCL runtime. 2393 2394Each kernel will have function metadata attached to it, specifying the arguments. 2395Kernel argument metadata is used to provide source level information for querying 2396at runtime, for example using the `clGetKernelArgInfo 2397<https://www.khronos.org/registry/OpenCL/specs/opencl-1.2.pdf#167>`_ 2398call. 2399 2400Note that ``-cl-kernel-arg-info`` enables more information about the original CL 2401code to be added e.g. kernel parameter names will appear in the OpenCL metadata 2402along with other information. 2403 2404The IDs used to encode the OpenCL's logical address spaces in the argument info 2405metadata follows the SPIR address space mapping as defined in the SPIR 2406specification `section 2.2 2407<https://www.khronos.org/registry/spir/specs/spir_spec-2.0.pdf#18>`_ 2408 2409OpenCL-Specific Attributes 2410-------------------------- 2411 2412OpenCL support in Clang contains a set of attribute taken directly from the 2413specification as well as additional attributes. 2414 2415See also :doc:`AttributeReference`. 2416 2417nosvm 2418^^^^^ 2419 2420Clang supports this attribute to comply to OpenCL v2.0 conformance, but it 2421does not have any effect on the IR. For more details reffer to the specification 2422`section 6.7.2 2423<https://www.khronos.org/registry/cl/specs/opencl-2.0-openclc.pdf#49>`_ 2424 2425 2426opencl_unroll_hint 2427^^^^^^^^^^^^^^^^^^ 2428 2429The implementation of this feature mirrors the unroll hint for C. 2430More details on the syntax can be found in the specification 2431`section 6.11.5 2432<https://www.khronos.org/registry/cl/specs/opencl-2.0-openclc.pdf#61>`_ 2433 2434convergent 2435^^^^^^^^^^ 2436 2437To make sure no invalid optimizations occur for single program multiple data 2438(SPMD) / single instruction multiple thread (SIMT) Clang provides attributes that 2439can be used for special functions that have cross work item semantics. 2440An example is the subgroup operations such as `intel_sub_group_shuffle 2441<https://www.khronos.org/registry/cl/extensions/intel/cl_intel_subgroups.txt>`_ 2442 2443 .. code-block:: c 2444 2445 // Define custom my_sub_group_shuffle(data, c) 2446 // that makes use of intel_sub_group_shuffle 2447 r1 = ... 2448 if (r0) r1 = computeA(); 2449 // Shuffle data from r1 into r3 2450 // of threads id r2. 2451 r3 = my_sub_group_shuffle(r1, r2); 2452 if (r0) r3 = computeB(); 2453 2454with non-SPMD semantics this is optimized to the following equivalent code: 2455 2456 .. code-block:: c 2457 2458 r1 = ... 2459 if (!r0) 2460 // Incorrect functionality! The data in r1 2461 // have not been computed by all threads yet. 2462 r3 = my_sub_group_shuffle(r1, r2); 2463 else { 2464 r1 = computeA(); 2465 r3 = my_sub_group_shuffle(r1, r2); 2466 r3 = computeB(); 2467 } 2468 2469Declaring the function ``my_sub_group_shuffle`` with the convergent attribute 2470would prevent this: 2471 2472 .. code-block:: c 2473 2474 my_sub_group_shuffle() __attribute__((convergent)); 2475 2476Using ``convergent`` guarantees correct execution by keeping CFG equivalence 2477wrt operations marked as ``convergent``. CFG ``G´`` is equivalent to ``G`` wrt 2478node ``Ni`` : ``iff ∀ Nj (i≠j)`` domination and post-domination relations with 2479respect to ``Ni`` remain the same in both ``G`` and ``G´``. 2480 2481noduplicate 2482^^^^^^^^^^^ 2483 2484``noduplicate`` is more restrictive with respect to optimizations than 2485``convergent`` because a convergent function only preserves CFG equivalence. 2486This allows some optimizations to happen as long as the control flow remains 2487unmodified. 2488 2489 .. code-block:: c 2490 2491 for (int i=0; i<4; i++) 2492 my_sub_group_shuffle() 2493 2494can be modified to: 2495 2496 .. code-block:: c 2497 2498 my_sub_group_shuffle(); 2499 my_sub_group_shuffle(); 2500 my_sub_group_shuffle(); 2501 my_sub_group_shuffle(); 2502 2503while using ``noduplicate`` would disallow this. Also ``noduplicate`` doesn't 2504have the same safe semantics of CFG as ``convergent`` and can cause changes in 2505CFG that modify semantics of the original program. 2506 2507``noduplicate`` is kept for backwards compatibility only and it considered to be 2508deprecated for future uses. 2509 2510.. _opencl_addrsp: 2511 2512address_space 2513^^^^^^^^^^^^^ 2514 2515Clang has arbitrary address space support using the ``address_space(N)`` 2516attribute, where ``N`` is an integer number in the range ``0`` to ``16777215`` 2517(``0xffffffu``). 2518 2519An OpenCL implementation provides a list of standard address spaces using 2520keywords: ``private``, ``local``, ``global``, and ``generic``. In the AST and 2521in the IR local, global, or generic will be represented by the address space 2522attribute with the corresponding unique number. Note that private does not have 2523any corresponding attribute added and, therefore, is represented by the absence 2524of an address space number. The specific IDs for an address space do not have to 2525match between the AST and the IR. Typically in the AST address space numbers 2526represent logical segments while in the IR they represent physical segments. 2527Therefore, machines with flat memory segments can map all AST address space 2528numbers to the same physical segment ID or skip address space attribute 2529completely while generating the IR. However, if the address space information 2530is needed by the IR passes e.g. to improve alias analysis, it is recommended 2531to keep it and only lower to reflect physical memory segments in the late 2532machine passes. 2533 2534OpenCL builtins 2535--------------- 2536 2537There are some standard OpenCL functions that are implemented as Clang builtins: 2538 2539- All pipe functions from `section 6.13.16.2/6.13.16.3 2540 <https://www.khronos.org/registry/cl/specs/opencl-2.0-openclc.pdf#160>`_ of 2541 the OpenCL v2.0 kernel language specification. ` 2542 2543- Address space qualifier conversion functions ``to_global``/``to_local``/``to_private`` 2544 from `section 6.13.9 2545 <https://www.khronos.org/registry/cl/specs/opencl-2.0-openclc.pdf#101>`_. 2546 2547- All the ``enqueue_kernel`` functions from `section 6.13.17.1 2548 <https://www.khronos.org/registry/cl/specs/opencl-2.0-openclc.pdf#164>`_ and 2549 enqueue query functions from `section 6.13.17.5 2550 <https://www.khronos.org/registry/cl/specs/opencl-2.0-openclc.pdf#171>`_. 2551 2552.. _target_features: 2553 2554Target-Specific Features and Limitations 2555======================================== 2556 2557CPU Architectures Features and Limitations 2558------------------------------------------ 2559 2560X86 2561^^^ 2562 2563The support for X86 (both 32-bit and 64-bit) is considered stable on 2564Darwin (Mac OS X), Linux, FreeBSD, and Dragonfly BSD: it has been tested 2565to correctly compile many large C, C++, Objective-C, and Objective-C++ 2566codebases. 2567 2568On ``x86_64-mingw32``, passing i128(by value) is incompatible with the 2569Microsoft x64 calling convention. You might need to tweak 2570``WinX86_64ABIInfo::classify()`` in lib/CodeGen/TargetInfo.cpp. 2571 2572For the X86 target, clang supports the `-m16` command line 2573argument which enables 16-bit code output. This is broadly similar to 2574using ``asm(".code16gcc")`` with the GNU toolchain. The generated code 2575and the ABI remains 32-bit but the assembler emits instructions 2576appropriate for a CPU running in 16-bit mode, with address-size and 2577operand-size prefixes to enable 32-bit addressing and operations. 2578 2579ARM 2580^^^ 2581 2582The support for ARM (specifically ARMv6 and ARMv7) is considered stable 2583on Darwin (iOS): it has been tested to correctly compile many large C, 2584C++, Objective-C, and Objective-C++ codebases. Clang only supports a 2585limited number of ARM architectures. It does not yet fully support 2586ARMv5, for example. 2587 2588PowerPC 2589^^^^^^^ 2590 2591The support for PowerPC (especially PowerPC64) is considered stable 2592on Linux and FreeBSD: it has been tested to correctly compile many 2593large C and C++ codebases. PowerPC (32bit) is still missing certain 2594features (e.g. PIC code on ELF platforms). 2595 2596Other platforms 2597^^^^^^^^^^^^^^^ 2598 2599clang currently contains some support for other architectures (e.g. Sparc); 2600however, significant pieces of code generation are still missing, and they 2601haven't undergone significant testing. 2602 2603clang contains limited support for the MSP430 embedded processor, but 2604both the clang support and the LLVM backend support are highly 2605experimental. 2606 2607Other platforms are completely unsupported at the moment. Adding the 2608minimal support needed for parsing and semantic analysis on a new 2609platform is quite easy; see ``lib/Basic/Targets.cpp`` in the clang source 2610tree. This level of support is also sufficient for conversion to LLVM IR 2611for simple programs. Proper support for conversion to LLVM IR requires 2612adding code to ``lib/CodeGen/CGCall.cpp`` at the moment; this is likely to 2613change soon, though. Generating assembly requires a suitable LLVM 2614backend. 2615 2616Operating System Features and Limitations 2617----------------------------------------- 2618 2619Darwin (Mac OS X) 2620^^^^^^^^^^^^^^^^^ 2621 2622Thread Sanitizer is not supported. 2623 2624Windows 2625^^^^^^^ 2626 2627Clang has experimental support for targeting "Cygming" (Cygwin / MinGW) 2628platforms. 2629 2630See also :ref:`Microsoft Extensions <c_ms>`. 2631 2632Cygwin 2633"""""" 2634 2635Clang works on Cygwin-1.7. 2636 2637MinGW32 2638""""""" 2639 2640Clang works on some mingw32 distributions. Clang assumes directories as 2641below; 2642 2643- ``C:/mingw/include`` 2644- ``C:/mingw/lib`` 2645- ``C:/mingw/lib/gcc/mingw32/4.[3-5].0/include/c++`` 2646 2647On MSYS, a few tests might fail. 2648 2649MinGW-w64 2650""""""""" 2651 2652For 32-bit (i686-w64-mingw32), and 64-bit (x86\_64-w64-mingw32), Clang 2653assumes as below; 2654 2655- ``GCC versions 4.5.0 to 4.5.3, 4.6.0 to 4.6.2, or 4.7.0 (for the C++ header search path)`` 2656- ``some_directory/bin/gcc.exe`` 2657- ``some_directory/bin/clang.exe`` 2658- ``some_directory/bin/clang++.exe`` 2659- ``some_directory/bin/../include/c++/GCC_version`` 2660- ``some_directory/bin/../include/c++/GCC_version/x86_64-w64-mingw32`` 2661- ``some_directory/bin/../include/c++/GCC_version/i686-w64-mingw32`` 2662- ``some_directory/bin/../include/c++/GCC_version/backward`` 2663- ``some_directory/bin/../x86_64-w64-mingw32/include`` 2664- ``some_directory/bin/../i686-w64-mingw32/include`` 2665- ``some_directory/bin/../include`` 2666 2667This directory layout is standard for any toolchain you will find on the 2668official `MinGW-w64 website <http://mingw-w64.sourceforge.net>`_. 2669 2670Clang expects the GCC executable "gcc.exe" compiled for 2671``i686-w64-mingw32`` (or ``x86_64-w64-mingw32``) to be present on PATH. 2672 2673`Some tests might fail <https://bugs.llvm.org/show_bug.cgi?id=9072>`_ on 2674``x86_64-w64-mingw32``. 2675 2676.. _clang-cl: 2677 2678clang-cl 2679======== 2680 2681clang-cl is an alternative command-line interface to Clang, designed for 2682compatibility with the Visual C++ compiler, cl.exe. 2683 2684To enable clang-cl to find system headers, libraries, and the linker when run 2685from the command-line, it should be executed inside a Visual Studio Native Tools 2686Command Prompt or a regular Command Prompt where the environment has been set 2687up using e.g. `vcvars32.bat <http://msdn.microsoft.com/en-us/library/f2ccy3wt.aspx>`_. 2688 2689clang-cl can also be used from inside Visual Studio by using an LLVM Platform 2690Toolset. 2691 2692Command-Line Options 2693-------------------- 2694 2695To be compatible with cl.exe, clang-cl supports most of the same command-line 2696options. Those options can start with either ``/`` or ``-``. It also supports 2697some of Clang's core options, such as the ``-W`` options. 2698 2699Options that are known to clang-cl, but not currently supported, are ignored 2700with a warning. For example: 2701 2702 :: 2703 2704 clang-cl.exe: warning: argument unused during compilation: '/AI' 2705 2706To suppress warnings about unused arguments, use the ``-Qunused-arguments`` option. 2707 2708Options that are not known to clang-cl will be ignored by default. Use the 2709``-Werror=unknown-argument`` option in order to treat them as errors. If these 2710options are spelled with a leading ``/``, they will be mistaken for a filename: 2711 2712 :: 2713 2714 clang-cl.exe: error: no such file or directory: '/foobar' 2715 2716Please `file a bug <https://bugs.llvm.org/enter_bug.cgi?product=clang&component=Driver>`_ 2717for any valid cl.exe flags that clang-cl does not understand. 2718 2719Execute ``clang-cl /?`` to see a list of supported options: 2720 2721 :: 2722 2723 CL.EXE COMPATIBILITY OPTIONS: 2724 /? Display available options 2725 /arch:<value> Set architecture for code generation 2726 /Brepro- Emit an object file which cannot be reproduced over time 2727 /Brepro Emit an object file which can be reproduced over time 2728 /C Don't discard comments when preprocessing 2729 /c Compile only 2730 /d1reportAllClassLayout Dump record layout information 2731 /diagnostics:caret Enable caret and column diagnostics (on by default) 2732 /diagnostics:classic Disable column and caret diagnostics 2733 /diagnostics:column Disable caret diagnostics but keep column info 2734 /D <macro[=value]> Define macro 2735 /EH<value> Exception handling model 2736 /EP Disable linemarker output and preprocess to stdout 2737 /execution-charset:<value> 2738 Runtime encoding, supports only UTF-8 2739 /E Preprocess to stdout 2740 /fallback Fall back to cl.exe if clang-cl fails to compile 2741 /FA Output assembly code file during compilation 2742 /Fa<file or directory> Output assembly code to this file during compilation (with /FA) 2743 /Fe<file or directory> Set output executable file or directory (ends in / or \) 2744 /FI <value> Include file before parsing 2745 /Fi<file> Set preprocess output file name (with /P) 2746 /Fo<file or directory> Set output object file, or directory (ends in / or \) (with /c) 2747 /fp:except- 2748 /fp:except 2749 /fp:fast 2750 /fp:precise 2751 /fp:strict 2752 /Fp<filename> Set pch filename (with /Yc and /Yu) 2753 /GA Assume thread-local variables are defined in the executable 2754 /Gd Set __cdecl as a default calling convention 2755 /GF- Disable string pooling 2756 /GR- Disable emission of RTTI data 2757 /Gregcall Set __regcall as a default calling convention 2758 /GR Enable emission of RTTI data 2759 /Gr Set __fastcall as a default calling convention 2760 /GS- Disable buffer security check 2761 /GS Enable buffer security check 2762 /Gs<value> Set stack probe size 2763 /Gv Set __vectorcall as a default calling convention 2764 /Gw- Don't put each data item in its own section 2765 /Gw Put each data item in its own section 2766 /GX- Enable exception handling 2767 /GX Enable exception handling 2768 /Gy- Don't put each function in its own section 2769 /Gy Put each function in its own section 2770 /Gz Set __stdcall as a default calling convention 2771 /help Display available options 2772 /imsvc <dir> Add directory to system include search path, as if part of %INCLUDE% 2773 /I <dir> Add directory to include search path 2774 /J Make char type unsigned 2775 /LDd Create debug DLL 2776 /LD Create DLL 2777 /link <options> Forward options to the linker 2778 /MDd Use DLL debug run-time 2779 /MD Use DLL run-time 2780 /MTd Use static debug run-time 2781 /MT Use static run-time 2782 /Od Disable optimization 2783 /Oi- Disable use of builtin functions 2784 /Oi Enable use of builtin functions 2785 /Os Optimize for size 2786 /Ot Optimize for speed 2787 /O<value> Optimization level 2788 /o <file or directory> Set output file or directory (ends in / or \) 2789 /P Preprocess to file 2790 /Qvec- Disable the loop vectorization passes 2791 /Qvec Enable the loop vectorization passes 2792 /showIncludes Print info about included files to stderr 2793 /source-charset:<value> Source encoding, supports only UTF-8 2794 /std:<value> Language standard to compile for 2795 /TC Treat all source files as C 2796 /Tc <filename> Specify a C source file 2797 /TP Treat all source files as C++ 2798 /Tp <filename> Specify a C++ source file 2799 /utf-8 Set source and runtime encoding to UTF-8 (default) 2800 /U <macro> Undefine macro 2801 /vd<value> Control vtordisp placement 2802 /vmb Use a best-case representation method for member pointers 2803 /vmg Use a most-general representation for member pointers 2804 /vmm Set the default most-general representation to multiple inheritance 2805 /vms Set the default most-general representation to single inheritance 2806 /vmv Set the default most-general representation to virtual inheritance 2807 /volatile:iso Volatile loads and stores have standard semantics 2808 /volatile:ms Volatile loads and stores have acquire and release semantics 2809 /W0 Disable all warnings 2810 /W1 Enable -Wall 2811 /W2 Enable -Wall 2812 /W3 Enable -Wall 2813 /W4 Enable -Wall and -Wextra 2814 /Wall Enable -Weverything 2815 /WX- Do not treat warnings as errors 2816 /WX Treat warnings as errors 2817 /w Disable all warnings 2818 /Y- Disable precompiled headers, overrides /Yc and /Yu 2819 /Yc<filename> Generate a pch file for all code up to and including <filename> 2820 /Yu<filename> Load a pch file and use it instead of all code up to and including <filename> 2821 /Z7 Enable CodeView debug information in object files 2822 /Zc:sizedDealloc- Disable C++14 sized global deallocation functions 2823 /Zc:sizedDealloc Enable C++14 sized global deallocation functions 2824 /Zc:strictStrings Treat string literals as const 2825 /Zc:threadSafeInit- Disable thread-safe initialization of static variables 2826 /Zc:threadSafeInit Enable thread-safe initialization of static variables 2827 /Zc:trigraphs- Disable trigraphs (default) 2828 /Zc:trigraphs Enable trigraphs 2829 /Zc:twoPhase- Disable two-phase name lookup in templates 2830 /Zc:twoPhase Enable two-phase name lookup in templates 2831 /Zd Emit debug line number tables only 2832 /Zi Alias for /Z7. Does not produce PDBs. 2833 /Zl Don't mention any default libraries in the object file 2834 /Zp Set the default maximum struct packing alignment to 1 2835 /Zp<value> Specify the default maximum struct packing alignment 2836 /Zs Syntax-check only 2837 2838 OPTIONS: 2839 -### Print (but do not run) the commands to run for this compilation 2840 --analyze Run the static analyzer 2841 -fansi-escape-codes Use ANSI escape codes for diagnostics 2842 -fcolor-diagnostics Use colors in diagnostics 2843 -fdebug-macro Emit macro debug information 2844 -fdelayed-template-parsing 2845 Parse templated function definitions at the end of the translation unit 2846 -fdiagnostics-absolute-paths 2847 Print absolute paths in diagnostics 2848 -fdiagnostics-parseable-fixits 2849 Print fix-its in machine parseable form 2850 -flto=<value> Set LTO mode to either 'full' or 'thin' 2851 -flto Enable LTO in 'full' mode 2852 -fms-compatibility-version=<value> 2853 Dot-separated value representing the Microsoft compiler version 2854 number to report in _MSC_VER (0 = don't define it (default)) 2855 -fms-compatibility Enable full Microsoft Visual C++ compatibility 2856 -fms-extensions Accept some non-standard constructs supported by the Microsoft compiler 2857 -fmsc-version=<value> Microsoft compiler version number to report in _MSC_VER 2858 (0 = don't define it (default)) 2859 -fno-debug-macro Do not emit macro debug information 2860 -fno-delayed-template-parsing 2861 Disable delayed template parsing 2862 -fno-sanitize-address-use-after-scope 2863 Disable use-after-scope detection in AddressSanitizer 2864 -fno-sanitize-blacklist Don't use blacklist file for sanitizers 2865 -fno-sanitize-cfi-cross-dso 2866 Disable control flow integrity (CFI) checks for cross-DSO calls. 2867 -fno-sanitize-coverage=<value> 2868 Disable specified features of coverage instrumentation for Sanitizers 2869 -fno-sanitize-memory-track-origins 2870 Disable origins tracking in MemorySanitizer 2871 -fno-sanitize-memory-use-after-dtor 2872 Disable use-after-destroy detection in MemorySanitizer 2873 -fno-sanitize-recover=<value> 2874 Disable recovery for specified sanitizers 2875 -fno-sanitize-stats Disable sanitizer statistics gathering. 2876 -fno-sanitize-thread-atomics 2877 Disable atomic operations instrumentation in ThreadSanitizer 2878 -fno-sanitize-thread-func-entry-exit 2879 Disable function entry/exit instrumentation in ThreadSanitizer 2880 -fno-sanitize-thread-memory-access 2881 Disable memory access instrumentation in ThreadSanitizer 2882 -fno-sanitize-trap=<value> 2883 Disable trapping for specified sanitizers 2884 -fno-standalone-debug Limit debug information produced to reduce size of debug binary 2885 -fprofile-instr-generate=<file> 2886 Generate instrumented code to collect execution counts into <file> 2887 (overridden by LLVM_PROFILE_FILE env var) 2888 -fprofile-instr-generate 2889 Generate instrumented code to collect execution counts into default.profraw file 2890 (overridden by '=' form of option or LLVM_PROFILE_FILE env var) 2891 -fprofile-instr-use=<value> 2892 Use instrumentation data for profile-guided optimization 2893 -fsanitize-address-field-padding=<value> 2894 Level of field padding for AddressSanitizer 2895 -fsanitize-address-globals-dead-stripping 2896 Enable linker dead stripping of globals in AddressSanitizer 2897 -fsanitize-address-use-after-scope 2898 Enable use-after-scope detection in AddressSanitizer 2899 -fsanitize-blacklist=<value> 2900 Path to blacklist file for sanitizers 2901 -fsanitize-cfi-cross-dso 2902 Enable control flow integrity (CFI) checks for cross-DSO calls. 2903 -fsanitize-cfi-icall-generalize-pointers 2904 Generalize pointers in CFI indirect call type signature checks 2905 -fsanitize-coverage=<value> 2906 Specify the type of coverage instrumentation for Sanitizers 2907 -fsanitize-memory-track-origins=<value> 2908 Enable origins tracking in MemorySanitizer 2909 -fsanitize-memory-track-origins 2910 Enable origins tracking in MemorySanitizer 2911 -fsanitize-memory-use-after-dtor 2912 Enable use-after-destroy detection in MemorySanitizer 2913 -fsanitize-recover=<value> 2914 Enable recovery for specified sanitizers 2915 -fsanitize-stats Enable sanitizer statistics gathering. 2916 -fsanitize-thread-atomics 2917 Enable atomic operations instrumentation in ThreadSanitizer (default) 2918 -fsanitize-thread-func-entry-exit 2919 Enable function entry/exit instrumentation in ThreadSanitizer (default) 2920 -fsanitize-thread-memory-access 2921 Enable memory access instrumentation in ThreadSanitizer (default) 2922 -fsanitize-trap=<value> Enable trapping for specified sanitizers 2923 -fsanitize-undefined-strip-path-components=<number> 2924 Strip (or keep only, if negative) a given number of path components when emitting check metadata. 2925 -fsanitize=<check> Turn on runtime checks for various forms of undefined or suspicious 2926 behavior. See user manual for available checks 2927 -fstandalone-debug Emit full debug info for all types used by the program 2928 -fwhole-program-vtables Enables whole-program vtable optimization. Requires -flto 2929 -gcodeview Generate CodeView debug information 2930 -gline-tables-only Emit debug line number tables only 2931 -miamcu Use Intel MCU ABI 2932 -mllvm <value> Additional arguments to forward to LLVM's option processing 2933 -nobuiltininc Disable builtin #include directories 2934 -Qunused-arguments Don't emit warning for unused driver arguments 2935 -R<remark> Enable the specified remark 2936 --target=<value> Generate code for the given target 2937 --version Print version information 2938 -v Show commands to run and use verbose output 2939 -W<warning> Enable the specified warning 2940 -Xclang <arg> Pass <arg> to the clang compiler 2941 2942The /fallback Option 2943^^^^^^^^^^^^^^^^^^^^ 2944 2945When clang-cl is run with the ``/fallback`` option, it will first try to 2946compile files itself. For any file that it fails to compile, it will fall back 2947and try to compile the file by invoking cl.exe. 2948 2949This option is intended to be used as a temporary means to build projects where 2950clang-cl cannot successfully compile all the files. clang-cl may fail to compile 2951a file either because it cannot generate code for some C++ feature, or because 2952it cannot parse some Microsoft language extension. 2953