1========================= 2Clang Language Extensions 3========================= 4 5.. contents:: 6 :local: 7 :depth: 1 8 9.. toctree:: 10 :hidden: 11 12 ObjectiveCLiterals 13 BlockLanguageSpec 14 Block-ABI-Apple 15 AutomaticReferenceCounting 16 MatrixTypes 17 18Introduction 19============ 20 21This document describes the language extensions provided by Clang. In addition 22to the language extensions listed here, Clang aims to support a broad range of 23GCC extensions. Please see the `GCC manual 24<https://gcc.gnu.org/onlinedocs/gcc/C-Extensions.html>`_ for more information on 25these extensions. 26 27.. _langext-feature_check: 28 29Feature Checking Macros 30======================= 31 32Language extensions can be very useful, but only if you know you can depend on 33them. In order to allow fine-grain features checks, we support three builtin 34function-like macros. This allows you to directly test for a feature in your 35code without having to resort to something like autoconf or fragile "compiler 36version checks". 37 38``__has_builtin`` 39----------------- 40 41This function-like macro takes a single identifier argument that is the name of 42a builtin function, a builtin pseudo-function (taking one or more type 43arguments), or a builtin template. 44It evaluates to 1 if the builtin is supported or 0 if not. 45It can be used like this: 46 47.. code-block:: c++ 48 49 #ifndef __has_builtin // Optional of course. 50 #define __has_builtin(x) 0 // Compatibility with non-clang compilers. 51 #endif 52 53 ... 54 #if __has_builtin(__builtin_trap) 55 __builtin_trap(); 56 #else 57 abort(); 58 #endif 59 ... 60 61.. note:: 62 63 Prior to Clang 10, ``__has_builtin`` could not be used to detect most builtin 64 pseudo-functions. 65 66 ``__has_builtin`` should not be used to detect support for a builtin macro; 67 use ``#ifdef`` instead. 68 69.. _langext-__has_feature-__has_extension: 70 71``__has_feature`` and ``__has_extension`` 72----------------------------------------- 73 74These function-like macros take a single identifier argument that is the name 75of a feature. ``__has_feature`` evaluates to 1 if the feature is both 76supported by Clang and standardized in the current language standard or 0 if 77not (but see :ref:`below <langext-has-feature-back-compat>`), while 78``__has_extension`` evaluates to 1 if the feature is supported by Clang in the 79current language (either as a language extension or a standard language 80feature) or 0 if not. They can be used like this: 81 82.. code-block:: c++ 83 84 #ifndef __has_feature // Optional of course. 85 #define __has_feature(x) 0 // Compatibility with non-clang compilers. 86 #endif 87 #ifndef __has_extension 88 #define __has_extension __has_feature // Compatibility with pre-3.0 compilers. 89 #endif 90 91 ... 92 #if __has_feature(cxx_rvalue_references) 93 // This code will only be compiled with the -std=c++11 and -std=gnu++11 94 // options, because rvalue references are only standardized in C++11. 95 #endif 96 97 #if __has_extension(cxx_rvalue_references) 98 // This code will be compiled with the -std=c++11, -std=gnu++11, -std=c++98 99 // and -std=gnu++98 options, because rvalue references are supported as a 100 // language extension in C++98. 101 #endif 102 103.. _langext-has-feature-back-compat: 104 105For backward compatibility, ``__has_feature`` can also be used to test 106for support for non-standardized features, i.e. features not prefixed ``c_``, 107``cxx_`` or ``objc_``. 108 109Another use of ``__has_feature`` is to check for compiler features not related 110to the language standard, such as e.g. :doc:`AddressSanitizer 111<AddressSanitizer>`. 112 113If the ``-pedantic-errors`` option is given, ``__has_extension`` is equivalent 114to ``__has_feature``. 115 116The feature tag is described along with the language feature below. 117 118The feature name or extension name can also be specified with a preceding and 119following ``__`` (double underscore) to avoid interference from a macro with 120the same name. For instance, ``__cxx_rvalue_references__`` can be used instead 121of ``cxx_rvalue_references``. 122 123``__has_cpp_attribute`` 124----------------------- 125 126This function-like macro is available in C++20 by default, and is provided as an 127extension in earlier language standards. It takes a single argument that is the 128name of a double-square-bracket-style attribute. The argument can either be a 129single identifier or a scoped identifier. If the attribute is supported, a 130nonzero value is returned. If the attribute is a standards-based attribute, this 131macro returns a nonzero value based on the year and month in which the attribute 132was voted into the working draft. See `WG21 SD-6 133<https://isocpp.org/std/standing-documents/sd-6-sg10-feature-test-recommendations>`_ 134for the list of values returned for standards-based attributes. If the attribute 135is not supported by the current compilation target, this macro evaluates to 0. 136It can be used like this: 137 138.. code-block:: c++ 139 140 #ifndef __has_cpp_attribute // For backwards compatibility 141 #define __has_cpp_attribute(x) 0 142 #endif 143 144 ... 145 #if __has_cpp_attribute(clang::fallthrough) 146 #define FALLTHROUGH [[clang::fallthrough]] 147 #else 148 #define FALLTHROUGH 149 #endif 150 ... 151 152The attribute scope tokens ``clang`` and ``_Clang`` are interchangeable, as are 153the attribute scope tokens ``gnu`` and ``__gnu__``. Attribute tokens in either 154of these namespaces can be specified with a preceding and following ``__`` 155(double underscore) to avoid interference from a macro with the same name. For 156instance, ``gnu::__const__`` can be used instead of ``gnu::const``. 157 158``__has_c_attribute`` 159--------------------- 160 161This function-like macro takes a single argument that is the name of an 162attribute exposed with the double square-bracket syntax in C mode. The argument 163can either be a single identifier or a scoped identifier. If the attribute is 164supported, a nonzero value is returned. If the attribute is not supported by the 165current compilation target, this macro evaluates to 0. It can be used like this: 166 167.. code-block:: c 168 169 #ifndef __has_c_attribute // Optional of course. 170 #define __has_c_attribute(x) 0 // Compatibility with non-clang compilers. 171 #endif 172 173 ... 174 #if __has_c_attribute(fallthrough) 175 #define FALLTHROUGH [[fallthrough]] 176 #else 177 #define FALLTHROUGH 178 #endif 179 ... 180 181The attribute scope tokens ``clang`` and ``_Clang`` are interchangeable, as are 182the attribute scope tokens ``gnu`` and ``__gnu__``. Attribute tokens in either 183of these namespaces can be specified with a preceding and following ``__`` 184(double underscore) to avoid interference from a macro with the same name. For 185instance, ``gnu::__const__`` can be used instead of ``gnu::const``. 186 187``__has_attribute`` 188------------------- 189 190This function-like macro takes a single identifier argument that is the name of 191a GNU-style attribute. It evaluates to 1 if the attribute is supported by the 192current compilation target, or 0 if not. It can be used like this: 193 194.. code-block:: c++ 195 196 #ifndef __has_attribute // Optional of course. 197 #define __has_attribute(x) 0 // Compatibility with non-clang compilers. 198 #endif 199 200 ... 201 #if __has_attribute(always_inline) 202 #define ALWAYS_INLINE __attribute__((always_inline)) 203 #else 204 #define ALWAYS_INLINE 205 #endif 206 ... 207 208The attribute name can also be specified with a preceding and following ``__`` 209(double underscore) to avoid interference from a macro with the same name. For 210instance, ``__always_inline__`` can be used instead of ``always_inline``. 211 212 213``__has_declspec_attribute`` 214---------------------------- 215 216This function-like macro takes a single identifier argument that is the name of 217an attribute implemented as a Microsoft-style ``__declspec`` attribute. It 218evaluates to 1 if the attribute is supported by the current compilation target, 219or 0 if not. It can be used like this: 220 221.. code-block:: c++ 222 223 #ifndef __has_declspec_attribute // Optional of course. 224 #define __has_declspec_attribute(x) 0 // Compatibility with non-clang compilers. 225 #endif 226 227 ... 228 #if __has_declspec_attribute(dllexport) 229 #define DLLEXPORT __declspec(dllexport) 230 #else 231 #define DLLEXPORT 232 #endif 233 ... 234 235The attribute name can also be specified with a preceding and following ``__`` 236(double underscore) to avoid interference from a macro with the same name. For 237instance, ``__dllexport__`` can be used instead of ``dllexport``. 238 239``__is_identifier`` 240------------------- 241 242This function-like macro takes a single identifier argument that might be either 243a reserved word or a regular identifier. It evaluates to 1 if the argument is just 244a regular identifier and not a reserved word, in the sense that it can then be 245used as the name of a user-defined function or variable. Otherwise it evaluates 246to 0. It can be used like this: 247 248.. code-block:: c++ 249 250 ... 251 #ifdef __is_identifier // Compatibility with non-clang compilers. 252 #if __is_identifier(__wchar_t) 253 typedef wchar_t __wchar_t; 254 #endif 255 #endif 256 257 __wchar_t WideCharacter; 258 ... 259 260Include File Checking Macros 261============================ 262 263Not all developments systems have the same include files. The 264:ref:`langext-__has_include` and :ref:`langext-__has_include_next` macros allow 265you to check for the existence of an include file before doing a possibly 266failing ``#include`` directive. Include file checking macros must be used 267as expressions in ``#if`` or ``#elif`` preprocessing directives. 268 269.. _langext-__has_include: 270 271``__has_include`` 272----------------- 273 274This function-like macro takes a single file name string argument that is the 275name of an include file. It evaluates to 1 if the file can be found using the 276include paths, or 0 otherwise: 277 278.. code-block:: c++ 279 280 // Note the two possible file name string formats. 281 #if __has_include("myinclude.h") && __has_include(<stdint.h>) 282 # include "myinclude.h" 283 #endif 284 285To test for this feature, use ``#if defined(__has_include)``: 286 287.. code-block:: c++ 288 289 // To avoid problem with non-clang compilers not having this macro. 290 #if defined(__has_include) 291 #if __has_include("myinclude.h") 292 # include "myinclude.h" 293 #endif 294 #endif 295 296.. _langext-__has_include_next: 297 298``__has_include_next`` 299---------------------- 300 301This function-like macro takes a single file name string argument that is the 302name of an include file. It is like ``__has_include`` except that it looks for 303the second instance of the given file found in the include paths. It evaluates 304to 1 if the second instance of the file can be found using the include paths, 305or 0 otherwise: 306 307.. code-block:: c++ 308 309 // Note the two possible file name string formats. 310 #if __has_include_next("myinclude.h") && __has_include_next(<stdint.h>) 311 # include_next "myinclude.h" 312 #endif 313 314 // To avoid problem with non-clang compilers not having this macro. 315 #if defined(__has_include_next) 316 #if __has_include_next("myinclude.h") 317 # include_next "myinclude.h" 318 #endif 319 #endif 320 321Note that ``__has_include_next``, like the GNU extension ``#include_next`` 322directive, is intended for use in headers only, and will issue a warning if 323used in the top-level compilation file. A warning will also be issued if an 324absolute path is used in the file argument. 325 326``__has_warning`` 327----------------- 328 329This function-like macro takes a string literal that represents a command line 330option for a warning and returns true if that is a valid warning option. 331 332.. code-block:: c++ 333 334 #if __has_warning("-Wformat") 335 ... 336 #endif 337 338.. _languageextensions-builtin-macros: 339 340Builtin Macros 341============== 342 343``__BASE_FILE__`` 344 Defined to a string that contains the name of the main input file passed to 345 Clang. 346 347``__FILE_NAME__`` 348 Clang-specific extension that functions similar to ``__FILE__`` but only 349 renders the last path component (the filename) instead of an invocation 350 dependent full path to that file. 351 352``__COUNTER__`` 353 Defined to an integer value that starts at zero and is incremented each time 354 the ``__COUNTER__`` macro is expanded. 355 356``__INCLUDE_LEVEL__`` 357 Defined to an integral value that is the include depth of the file currently 358 being translated. For the main file, this value is zero. 359 360``__TIMESTAMP__`` 361 Defined to the date and time of the last modification of the current source 362 file. 363 364``__clang__`` 365 Defined when compiling with Clang 366 367``__clang_major__`` 368 Defined to the major marketing version number of Clang (e.g., the 2 in 369 2.0.1). Note that marketing version numbers should not be used to check for 370 language features, as different vendors use different numbering schemes. 371 Instead, use the :ref:`langext-feature_check`. 372 373``__clang_minor__`` 374 Defined to the minor version number of Clang (e.g., the 0 in 2.0.1). Note 375 that marketing version numbers should not be used to check for language 376 features, as different vendors use different numbering schemes. Instead, use 377 the :ref:`langext-feature_check`. 378 379``__clang_patchlevel__`` 380 Defined to the marketing patch level of Clang (e.g., the 1 in 2.0.1). 381 382``__clang_version__`` 383 Defined to a string that captures the Clang marketing version, including the 384 Subversion tag or revision number, e.g., "``1.5 (trunk 102332)``". 385 386``__clang_literal_encoding__`` 387 Defined to a narrow string literal that represents the current encoding of 388 narrow string literals, e.g., ``"hello"``. This macro typically expands to 389 "UTF-8" (but may change in the future if the 390 ``-fexec-charset="Encoding-Name"`` option is implemented.) 391 392``__clang_wide_literal_encoding__`` 393 Defined to a narrow string literal that represents the current encoding of 394 wide string literals, e.g., ``L"hello"``. This macro typically expands to 395 "UTF-16" or "UTF-32" (but may change in the future if the 396 ``-fwide-exec-charset="Encoding-Name"`` option is implemented.) 397 398.. _langext-vectors: 399 400Vectors and Extended Vectors 401============================ 402 403Supports the GCC, OpenCL, AltiVec and NEON vector extensions. 404 405OpenCL vector types are created using the ``ext_vector_type`` attribute. It 406supports the ``V.xyzw`` syntax and other tidbits as seen in OpenCL. An example 407is: 408 409.. code-block:: c++ 410 411 typedef float float4 __attribute__((ext_vector_type(4))); 412 typedef float float2 __attribute__((ext_vector_type(2))); 413 414 float4 foo(float2 a, float2 b) { 415 float4 c; 416 c.xz = a; 417 c.yw = b; 418 return c; 419 } 420 421Query for this feature with ``__has_attribute(ext_vector_type)``. 422 423Giving ``-maltivec`` option to clang enables support for AltiVec vector syntax 424and functions. For example: 425 426.. code-block:: c++ 427 428 vector float foo(vector int a) { 429 vector int b; 430 b = vec_add(a, a) + a; 431 return (vector float)b; 432 } 433 434NEON vector types are created using ``neon_vector_type`` and 435``neon_polyvector_type`` attributes. For example: 436 437.. code-block:: c++ 438 439 typedef __attribute__((neon_vector_type(8))) int8_t int8x8_t; 440 typedef __attribute__((neon_polyvector_type(16))) poly8_t poly8x16_t; 441 442 int8x8_t foo(int8x8_t a) { 443 int8x8_t v; 444 v = a; 445 return v; 446 } 447 448GCC vector types are created using the ``vector_size(N)`` attribute. The 449argument ``N`` specifies the number of bytes that will be allocated for an 450object of this type. The size has to be multiple of the size of the vector 451element type. For example: 452 453.. code-block:: c++ 454 455 // OK: This declares a vector type with four 'int' elements 456 typedef int int4 __attribute__((vector_size(4 * sizeof(int)))); 457 458 // ERROR: '11' is not a multiple of sizeof(int) 459 typedef int int_impossible __attribute__((vector_size(11))); 460 461 int4 foo(int4 a) { 462 int4 v; 463 v = a; 464 return v; 465 } 466 467 468Boolean Vectors 469--------------- 470 471Clang also supports the ext_vector_type attribute with boolean element types in 472C and C++. For example: 473 474.. code-block:: c++ 475 476 // legal for Clang, error for GCC: 477 typedef bool bool4 __attribute__((ext_vector_type(4))); 478 // Objects of bool4 type hold 8 bits, sizeof(bool4) == 1 479 480 bool4 foo(bool4 a) { 481 bool4 v; 482 v = a; 483 return v; 484 } 485 486Boolean vectors are a Clang extension of the ext vector type. Boolean vectors 487are intended, though not guaranteed, to map to vector mask registers. The size 488parameter of a boolean vector type is the number of bits in the vector. The 489boolean vector is dense and each bit in the boolean vector is one vector 490element. 491 492The semantics of boolean vectors borrows from C bit-fields with the following 493differences: 494 495* Distinct boolean vectors are always distinct memory objects (there is no 496 packing). 497* Only the operators `?:`, `!`, `~`, `|`, `&`, `^` and comparison are allowed on 498 boolean vectors. 499* Casting a scalar bool value to a boolean vector type means broadcasting the 500 scalar value onto all lanes (same as general ext_vector_type). 501* It is not possible to access or swizzle elements of a boolean vector 502 (different than general ext_vector_type). 503 504The size and alignment are both the number of bits rounded up to the next power 505of two, but the alignment is at most the maximum vector alignment of the 506target. 507 508 509Vector Literals 510--------------- 511 512Vector literals can be used to create vectors from a set of scalars, or 513vectors. Either parentheses or braces form can be used. In the parentheses 514form the number of literal values specified must be one, i.e. referring to a 515scalar value, or must match the size of the vector type being created. If a 516single scalar literal value is specified, the scalar literal value will be 517replicated to all the components of the vector type. In the brackets form any 518number of literals can be specified. For example: 519 520.. code-block:: c++ 521 522 typedef int v4si __attribute__((__vector_size__(16))); 523 typedef float float4 __attribute__((ext_vector_type(4))); 524 typedef float float2 __attribute__((ext_vector_type(2))); 525 526 v4si vsi = (v4si){1, 2, 3, 4}; 527 float4 vf = (float4)(1.0f, 2.0f, 3.0f, 4.0f); 528 vector int vi1 = (vector int)(1); // vi1 will be (1, 1, 1, 1). 529 vector int vi2 = (vector int){1}; // vi2 will be (1, 0, 0, 0). 530 vector int vi3 = (vector int)(1, 2); // error 531 vector int vi4 = (vector int){1, 2}; // vi4 will be (1, 2, 0, 0). 532 vector int vi5 = (vector int)(1, 2, 3, 4); 533 float4 vf = (float4)((float2)(1.0f, 2.0f), (float2)(3.0f, 4.0f)); 534 535Vector Operations 536----------------- 537 538The table below shows the support for each operation by vector extension. A 539dash indicates that an operation is not accepted according to a corresponding 540specification. 541 542============================== ======= ======= ============= ======= 543 Operator OpenCL AltiVec GCC NEON 544============================== ======= ======= ============= ======= 545[] yes yes yes -- 546unary operators +, -- yes yes yes -- 547++, -- -- yes yes yes -- 548+,--,*,/,% yes yes yes -- 549bitwise operators &,|,^,~ yes yes yes -- 550>>,<< yes yes yes -- 551!, &&, || yes -- yes -- 552==, !=, >, <, >=, <= yes yes yes -- 553= yes yes yes yes 554?: [#]_ yes -- yes -- 555sizeof yes yes yes yes 556C-style cast yes yes yes no 557reinterpret_cast yes no yes no 558static_cast yes no yes no 559const_cast no no no no 560address &v[i] no no no [#]_ no 561============================== ======= ======= ============= ======= 562 563See also :ref:`langext-__builtin_shufflevector`, :ref:`langext-__builtin_convertvector`. 564 565.. [#] ternary operator(?:) has different behaviors depending on condition 566 operand's vector type. If the condition is a GNU vector (i.e. __vector_size__), 567 it's only available in C++ and uses normal bool conversions (that is, != 0). 568 If it's an extension (OpenCL) vector, it's only available in C and OpenCL C. 569 And it selects base on signedness of the condition operands (OpenCL v1.1 s6.3.9). 570.. [#] Clang does not allow the address of an element to be taken while GCC 571 allows this. This is intentional for vectors with a boolean element type and 572 not implemented otherwise. 573 574Vector Builtins 575--------------- 576 577**Note: The implementation of vector builtins is work-in-progress and incomplete.** 578 579In addition to the operators mentioned above, Clang provides a set of builtins 580to perform additional operations on certain scalar and vector types. 581 582Let ``T`` be one of the following types: 583 584* an integer type (as in C2x 6.2.5p19), but excluding enumerated types and _Bool 585* the standard floating types float or double 586* a half-precision floating point type, if one is supported on the target 587* a vector type. 588 589For scalar types, consider the operation applied to a vector with a single element. 590 591*Elementwise Builtins* 592 593Each builtin returns a vector equivalent to applying the specified operation 594elementwise to the input. 595 596Unless specified otherwise operation(±0) = ±0 and operation(±infinity) = ±infinity 597 598=========================================== ================================================================ ========================================= 599 Name Operation Supported element types 600=========================================== ================================================================ ========================================= 601 T __builtin_elementwise_abs(T x) return the absolute value of a number x; the absolute value of signed integer and floating point types 602 the most negative integer remains the most negative integer 603 T __builtin_elementwise_ceil(T x) return the smallest integral value greater than or equal to x floating point types 604 T __builtin_elementwise_floor(T x) return the largest integral value less than or equal to x floating point types 605 T __builtin_elementwise_roundeven(T x) round x to the nearest integer value in floating point format, floating point types 606 rounding halfway cases to even (that is, to the nearest value 607 that is an even integer), regardless of the current rounding 608 direction. 609 T__builtin_elementwise_trunc(T x) return the integral value nearest to but no larger in floating point types 610 magnitude than x 611 T __builtin_elementwise_max(T x, T y) return x or y, whichever is larger integer and floating point types 612 T __builtin_elementwise_min(T x, T y) return x or y, whichever is smaller integer and floating point types 613 T __builtin_elementwise_add_sat(T x, T y) return the sum of x and y, clamped to the range of integer types 614 representable values for the signed/unsigned integer type. 615 T __builtin_elementwise_sub_sat(T x, T y) return the difference of x and y, clamped to the range of integer types 616 representable values for the signed/unsigned integer type. 617=========================================== ================================================================ ========================================= 618 619 620*Reduction Builtins* 621 622Each builtin returns a scalar equivalent to applying the specified 623operation(x, y) as recursive even-odd pairwise reduction to all vector 624elements. ``operation(x, y)`` is repeatedly applied to each non-overlapping 625even-odd element pair with indices ``i * 2`` and ``i * 2 + 1`` with 626``i in [0, Number of elements / 2)``. If the numbers of elements is not a 627power of 2, the vector is widened with neutral elements for the reduction 628at the end to the next power of 2. 629 630Example: 631 632.. code-block:: c++ 633 634 __builtin_reduce_add([e3, e2, e1, e0]) = __builtin_reduced_add([e3 + e2, e1 + e0]) 635 = (e3 + e2) + (e1 + e0) 636 637 638Let ``VT`` be a vector type and ``ET`` the element type of ``VT``. 639 640======================================= ================================================================ ================================== 641 Name Operation Supported element types 642======================================= ================================================================ ================================== 643 ET __builtin_reduce_max(VT a) return x or y, whichever is larger; If exactly one argument is integer and floating point types 644 a NaN, return the other argument. If both arguments are NaNs, 645 fmax() return a NaN. 646 ET __builtin_reduce_min(VT a) return x or y, whichever is smaller; If exactly one argument integer and floating point types 647 is a NaN, return the other argument. If both arguments are 648 NaNs, fmax() return a NaN. 649 ET __builtin_reduce_add(VT a) \+ integer and floating point types 650 ET __builtin_reduce_and(VT a) & integer types 651 ET __builtin_reduce_or(VT a) \| integer types 652 ET __builtin_reduce_xor(VT a) ^ integer types 653======================================= ================================================================ ================================== 654 655Matrix Types 656============ 657 658Clang provides an extension for matrix types, which is currently being 659implemented. See :ref:`the draft specification <matrixtypes>` for more details. 660 661For example, the code below uses the matrix types extension to multiply two 4x4 662float matrices and add the result to a third 4x4 matrix. 663 664.. code-block:: c++ 665 666 typedef float m4x4_t __attribute__((matrix_type(4, 4))); 667 668 m4x4_t f(m4x4_t a, m4x4_t b, m4x4_t c) { 669 return a + b * c; 670 } 671 672The matrix type extension also supports operations on a matrix and a scalar. 673 674.. code-block:: c++ 675 676 typedef float m4x4_t __attribute__((matrix_type(4, 4))); 677 678 m4x4_t f(m4x4_t a) { 679 return (a + 23) * 12; 680 } 681 682The matrix type extension supports division on a matrix and a scalar but not on a matrix and a matrix. 683 684.. code-block:: c++ 685 686 typedef float m4x4_t __attribute__((matrix_type(4, 4))); 687 688 m4x4_t f(m4x4_t a) { 689 a = a / 3.0; 690 return a; 691 } 692 693The matrix type extension supports compound assignments for addition, subtraction, and multiplication on matrices 694and on a matrix and a scalar, provided their types are consistent. 695 696.. code-block:: c++ 697 698 typedef float m4x4_t __attribute__((matrix_type(4, 4))); 699 700 m4x4_t f(m4x4_t a, m4x4_t b) { 701 a += b; 702 a -= b; 703 a *= b; 704 a += 23; 705 a -= 12; 706 return a; 707 } 708 709The matrix type extension supports explicit casts. Implicit type conversion between matrix types is not allowed. 710 711.. code-block:: c++ 712 713 typedef int ix5x5 __attribute__((matrix_type(5, 5))); 714 typedef float fx5x5 __attribute__((matrix_type(5, 5))); 715 716 fx5x5 f1(ix5x5 i, fx5x5 f) { 717 return (fx5x5) i; 718 } 719 720 721 template <typename X> 722 using matrix_4_4 = X __attribute__((matrix_type(4, 4))); 723 724 void f2() { 725 matrix_5_5<double> d; 726 matrix_5_5<int> i; 727 i = (matrix_5_5<int>)d; 728 i = static_cast<matrix_5_5<int>>(d); 729 } 730 731Half-Precision Floating Point 732============================= 733 734Clang supports three half-precision (16-bit) floating point types: ``__fp16``, 735``_Float16`` and ``__bf16``. These types are supported in all language modes. 736 737``__fp16`` is supported on every target, as it is purely a storage format; see below. 738``_Float16`` is currently only supported on the following targets, with further 739targets pending ABI standardization: 740 741* 32-bit ARM 742* 64-bit ARM (AArch64) 743* AMDGPU 744* SPIR 745* X86 (Only available under feature AVX512-FP16) 746 747``_Float16`` will be supported on more targets as they define ABIs for it. 748 749``__bf16`` is purely a storage format; it is currently only supported on the following targets: 750* 32-bit ARM 751* 64-bit ARM (AArch64) 752 753The ``__bf16`` type is only available when supported in hardware. 754 755``__fp16`` is a storage and interchange format only. This means that values of 756``__fp16`` are immediately promoted to (at least) ``float`` when used in arithmetic 757operations, so that e.g. the result of adding two ``__fp16`` values has type ``float``. 758The behavior of ``__fp16`` is specified by the ARM C Language Extensions (`ACLE <http://infocenter.arm.com/help/topic/com.arm.doc.ihi0053d/IHI0053D_acle_2_1.pdf>`_). 759Clang uses the ``binary16`` format from IEEE 754-2008 for ``__fp16``, not the ARM 760alternative format. 761 762``_Float16`` is an interchange floating-point type. This means that, just like arithmetic on 763``float`` or ``double``, arithmetic on ``_Float16`` operands is formally performed in the 764``_Float16`` type, so that e.g. the result of adding two ``_Float16`` values has type 765``_Float16``. The behavior of ``_Float16`` is specified by ISO/IEC TS 18661-3:2015 766("Floating-point extensions for C"). As with ``__fp16``, Clang uses the ``binary16`` 767format from IEEE 754-2008 for ``_Float16``. 768 769``_Float16`` arithmetic will be performed using native half-precision support 770when available on the target (e.g. on ARMv8.2a); otherwise it will be performed 771at a higher precision (currently always ``float``) and then truncated down to 772``_Float16``. Note that C and C++ allow intermediate floating-point operands 773of an expression to be computed with greater precision than is expressible in 774their type, so Clang may avoid intermediate truncations in certain cases; this may 775lead to results that are inconsistent with native arithmetic. 776 777It is recommended that portable code use ``_Float16`` instead of ``__fp16``, 778as it has been defined by the C standards committee and has behavior that is 779more familiar to most programmers. 780 781Because ``__fp16`` operands are always immediately promoted to ``float``, the 782common real type of ``__fp16`` and ``_Float16`` for the purposes of the usual 783arithmetic conversions is ``float``. 784 785A literal can be given ``_Float16`` type using the suffix ``f16``. For example, 786``3.14f16``. 787 788Because default argument promotion only applies to the standard floating-point 789types, ``_Float16`` values are not promoted to ``double`` when passed as variadic 790or untyped arguments. As a consequence, some caution must be taken when using 791certain library facilities with ``_Float16``; for example, there is no ``printf`` format 792specifier for ``_Float16``, and (unlike ``float``) it will not be implicitly promoted to 793``double`` when passed to ``printf``, so the programmer must explicitly cast it to 794``double`` before using it with an ``%f`` or similar specifier. 795 796Messages on ``deprecated`` and ``unavailable`` Attributes 797========================================================= 798 799An optional string message can be added to the ``deprecated`` and 800``unavailable`` attributes. For example: 801 802.. code-block:: c++ 803 804 void explode(void) __attribute__((deprecated("extremely unsafe, use 'combust' instead!!!"))); 805 806If the deprecated or unavailable declaration is used, the message will be 807incorporated into the appropriate diagnostic: 808 809.. code-block:: none 810 811 harmless.c:4:3: warning: 'explode' is deprecated: extremely unsafe, use 'combust' instead!!! 812 [-Wdeprecated-declarations] 813 explode(); 814 ^ 815 816Query for this feature with 817``__has_extension(attribute_deprecated_with_message)`` and 818``__has_extension(attribute_unavailable_with_message)``. 819 820Attributes on Enumerators 821========================= 822 823Clang allows attributes to be written on individual enumerators. This allows 824enumerators to be deprecated, made unavailable, etc. The attribute must appear 825after the enumerator name and before any initializer, like so: 826 827.. code-block:: c++ 828 829 enum OperationMode { 830 OM_Invalid, 831 OM_Normal, 832 OM_Terrified __attribute__((deprecated)), 833 OM_AbortOnError __attribute__((deprecated)) = 4 834 }; 835 836Attributes on the ``enum`` declaration do not apply to individual enumerators. 837 838Query for this feature with ``__has_extension(enumerator_attributes)``. 839 840C++11 Attributes on using-declarations 841====================================== 842 843Clang allows C++-style ``[[]]`` attributes to be written on using-declarations. 844For instance: 845 846.. code-block:: c++ 847 848 [[clang::using_if_exists]] using foo::bar; 849 using foo::baz [[clang::using_if_exists]]; 850 851You can test for support for this extension with 852``__has_extension(cxx_attributes_on_using_declarations)``. 853 854'User-Specified' System Frameworks 855================================== 856 857Clang provides a mechanism by which frameworks can be built in such a way that 858they will always be treated as being "system frameworks", even if they are not 859present in a system framework directory. This can be useful to system 860framework developers who want to be able to test building other applications 861with development builds of their framework, including the manner in which the 862compiler changes warning behavior for system headers. 863 864Framework developers can opt-in to this mechanism by creating a 865"``.system_framework``" file at the top-level of their framework. That is, the 866framework should have contents like: 867 868.. code-block:: none 869 870 .../TestFramework.framework 871 .../TestFramework.framework/.system_framework 872 .../TestFramework.framework/Headers 873 .../TestFramework.framework/Headers/TestFramework.h 874 ... 875 876Clang will treat the presence of this file as an indicator that the framework 877should be treated as a system framework, regardless of how it was found in the 878framework search path. For consistency, we recommend that such files never be 879included in installed versions of the framework. 880 881Checks for Standard Language Features 882===================================== 883 884The ``__has_feature`` macro can be used to query if certain standard language 885features are enabled. The ``__has_extension`` macro can be used to query if 886language features are available as an extension when compiling for a standard 887which does not provide them. The features which can be tested are listed here. 888 889Since Clang 3.4, the C++ SD-6 feature test macros are also supported. 890These are macros with names of the form ``__cpp_<feature_name>``, and are 891intended to be a portable way to query the supported features of the compiler. 892See `the C++ status page <https://clang.llvm.org/cxx_status.html#ts>`_ for 893information on the version of SD-6 supported by each Clang release, and the 894macros provided by that revision of the recommendations. 895 896C++98 897----- 898 899The features listed below are part of the C++98 standard. These features are 900enabled by default when compiling C++ code. 901 902C++ exceptions 903^^^^^^^^^^^^^^ 904 905Use ``__has_feature(cxx_exceptions)`` to determine if C++ exceptions have been 906enabled. For example, compiling code with ``-fno-exceptions`` disables C++ 907exceptions. 908 909C++ RTTI 910^^^^^^^^ 911 912Use ``__has_feature(cxx_rtti)`` to determine if C++ RTTI has been enabled. For 913example, compiling code with ``-fno-rtti`` disables the use of RTTI. 914 915C++11 916----- 917 918The features listed below are part of the C++11 standard. As a result, all 919these features are enabled with the ``-std=c++11`` or ``-std=gnu++11`` option 920when compiling C++ code. 921 922C++11 SFINAE includes access control 923^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 924 925Use ``__has_feature(cxx_access_control_sfinae)`` or 926``__has_extension(cxx_access_control_sfinae)`` to determine whether 927access-control errors (e.g., calling a private constructor) are considered to 928be template argument deduction errors (aka SFINAE errors), per `C++ DR1170 929<http://www.open-std.org/jtc1/sc22/wg21/docs/cwg_defects.html#1170>`_. 930 931C++11 alias templates 932^^^^^^^^^^^^^^^^^^^^^ 933 934Use ``__has_feature(cxx_alias_templates)`` or 935``__has_extension(cxx_alias_templates)`` to determine if support for C++11's 936alias declarations and alias templates is enabled. 937 938C++11 alignment specifiers 939^^^^^^^^^^^^^^^^^^^^^^^^^^ 940 941Use ``__has_feature(cxx_alignas)`` or ``__has_extension(cxx_alignas)`` to 942determine if support for alignment specifiers using ``alignas`` is enabled. 943 944Use ``__has_feature(cxx_alignof)`` or ``__has_extension(cxx_alignof)`` to 945determine if support for the ``alignof`` keyword is enabled. 946 947C++11 attributes 948^^^^^^^^^^^^^^^^ 949 950Use ``__has_feature(cxx_attributes)`` or ``__has_extension(cxx_attributes)`` to 951determine if support for attribute parsing with C++11's square bracket notation 952is enabled. 953 954C++11 generalized constant expressions 955^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 956 957Use ``__has_feature(cxx_constexpr)`` to determine if support for generalized 958constant expressions (e.g., ``constexpr``) is enabled. 959 960C++11 ``decltype()`` 961^^^^^^^^^^^^^^^^^^^^ 962 963Use ``__has_feature(cxx_decltype)`` or ``__has_extension(cxx_decltype)`` to 964determine if support for the ``decltype()`` specifier is enabled. C++11's 965``decltype`` does not require type-completeness of a function call expression. 966Use ``__has_feature(cxx_decltype_incomplete_return_types)`` or 967``__has_extension(cxx_decltype_incomplete_return_types)`` to determine if 968support for this feature is enabled. 969 970C++11 default template arguments in function templates 971^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 972 973Use ``__has_feature(cxx_default_function_template_args)`` or 974``__has_extension(cxx_default_function_template_args)`` to determine if support 975for default template arguments in function templates is enabled. 976 977C++11 ``default``\ ed functions 978^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 979 980Use ``__has_feature(cxx_defaulted_functions)`` or 981``__has_extension(cxx_defaulted_functions)`` to determine if support for 982defaulted function definitions (with ``= default``) is enabled. 983 984C++11 delegating constructors 985^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 986 987Use ``__has_feature(cxx_delegating_constructors)`` to determine if support for 988delegating constructors is enabled. 989 990C++11 ``deleted`` functions 991^^^^^^^^^^^^^^^^^^^^^^^^^^^ 992 993Use ``__has_feature(cxx_deleted_functions)`` or 994``__has_extension(cxx_deleted_functions)`` to determine if support for deleted 995function definitions (with ``= delete``) is enabled. 996 997C++11 explicit conversion functions 998^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 999 1000Use ``__has_feature(cxx_explicit_conversions)`` to determine if support for 1001``explicit`` conversion functions is enabled. 1002 1003C++11 generalized initializers 1004^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1005 1006Use ``__has_feature(cxx_generalized_initializers)`` to determine if support for 1007generalized initializers (using braced lists and ``std::initializer_list``) is 1008enabled. 1009 1010C++11 implicit move constructors/assignment operators 1011^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1012 1013Use ``__has_feature(cxx_implicit_moves)`` to determine if Clang will implicitly 1014generate move constructors and move assignment operators where needed. 1015 1016C++11 inheriting constructors 1017^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1018 1019Use ``__has_feature(cxx_inheriting_constructors)`` to determine if support for 1020inheriting constructors is enabled. 1021 1022C++11 inline namespaces 1023^^^^^^^^^^^^^^^^^^^^^^^ 1024 1025Use ``__has_feature(cxx_inline_namespaces)`` or 1026``__has_extension(cxx_inline_namespaces)`` to determine if support for inline 1027namespaces is enabled. 1028 1029C++11 lambdas 1030^^^^^^^^^^^^^ 1031 1032Use ``__has_feature(cxx_lambdas)`` or ``__has_extension(cxx_lambdas)`` to 1033determine if support for lambdas is enabled. 1034 1035C++11 local and unnamed types as template arguments 1036^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1037 1038Use ``__has_feature(cxx_local_type_template_args)`` or 1039``__has_extension(cxx_local_type_template_args)`` to determine if support for 1040local and unnamed types as template arguments is enabled. 1041 1042C++11 noexcept 1043^^^^^^^^^^^^^^ 1044 1045Use ``__has_feature(cxx_noexcept)`` or ``__has_extension(cxx_noexcept)`` to 1046determine if support for noexcept exception specifications is enabled. 1047 1048C++11 in-class non-static data member initialization 1049^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1050 1051Use ``__has_feature(cxx_nonstatic_member_init)`` to determine whether in-class 1052initialization of non-static data members is enabled. 1053 1054C++11 ``nullptr`` 1055^^^^^^^^^^^^^^^^^ 1056 1057Use ``__has_feature(cxx_nullptr)`` or ``__has_extension(cxx_nullptr)`` to 1058determine if support for ``nullptr`` is enabled. 1059 1060C++11 ``override control`` 1061^^^^^^^^^^^^^^^^^^^^^^^^^^ 1062 1063Use ``__has_feature(cxx_override_control)`` or 1064``__has_extension(cxx_override_control)`` to determine if support for the 1065override control keywords is enabled. 1066 1067C++11 reference-qualified functions 1068^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1069 1070Use ``__has_feature(cxx_reference_qualified_functions)`` or 1071``__has_extension(cxx_reference_qualified_functions)`` to determine if support 1072for reference-qualified functions (e.g., member functions with ``&`` or ``&&`` 1073applied to ``*this``) is enabled. 1074 1075C++11 range-based ``for`` loop 1076^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1077 1078Use ``__has_feature(cxx_range_for)`` or ``__has_extension(cxx_range_for)`` to 1079determine if support for the range-based for loop is enabled. 1080 1081C++11 raw string literals 1082^^^^^^^^^^^^^^^^^^^^^^^^^ 1083 1084Use ``__has_feature(cxx_raw_string_literals)`` to determine if support for raw 1085string literals (e.g., ``R"x(foo\bar)x"``) is enabled. 1086 1087C++11 rvalue references 1088^^^^^^^^^^^^^^^^^^^^^^^ 1089 1090Use ``__has_feature(cxx_rvalue_references)`` or 1091``__has_extension(cxx_rvalue_references)`` to determine if support for rvalue 1092references is enabled. 1093 1094C++11 ``static_assert()`` 1095^^^^^^^^^^^^^^^^^^^^^^^^^ 1096 1097Use ``__has_feature(cxx_static_assert)`` or 1098``__has_extension(cxx_static_assert)`` to determine if support for compile-time 1099assertions using ``static_assert`` is enabled. 1100 1101C++11 ``thread_local`` 1102^^^^^^^^^^^^^^^^^^^^^^ 1103 1104Use ``__has_feature(cxx_thread_local)`` to determine if support for 1105``thread_local`` variables is enabled. 1106 1107C++11 type inference 1108^^^^^^^^^^^^^^^^^^^^ 1109 1110Use ``__has_feature(cxx_auto_type)`` or ``__has_extension(cxx_auto_type)`` to 1111determine C++11 type inference is supported using the ``auto`` specifier. If 1112this is disabled, ``auto`` will instead be a storage class specifier, as in C 1113or C++98. 1114 1115C++11 strongly typed enumerations 1116^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1117 1118Use ``__has_feature(cxx_strong_enums)`` or 1119``__has_extension(cxx_strong_enums)`` to determine if support for strongly 1120typed, scoped enumerations is enabled. 1121 1122C++11 trailing return type 1123^^^^^^^^^^^^^^^^^^^^^^^^^^ 1124 1125Use ``__has_feature(cxx_trailing_return)`` or 1126``__has_extension(cxx_trailing_return)`` to determine if support for the 1127alternate function declaration syntax with trailing return type is enabled. 1128 1129C++11 Unicode string literals 1130^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1131 1132Use ``__has_feature(cxx_unicode_literals)`` to determine if support for Unicode 1133string literals is enabled. 1134 1135C++11 unrestricted unions 1136^^^^^^^^^^^^^^^^^^^^^^^^^ 1137 1138Use ``__has_feature(cxx_unrestricted_unions)`` to determine if support for 1139unrestricted unions is enabled. 1140 1141C++11 user-defined literals 1142^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1143 1144Use ``__has_feature(cxx_user_literals)`` to determine if support for 1145user-defined literals is enabled. 1146 1147C++11 variadic templates 1148^^^^^^^^^^^^^^^^^^^^^^^^ 1149 1150Use ``__has_feature(cxx_variadic_templates)`` or 1151``__has_extension(cxx_variadic_templates)`` to determine if support for 1152variadic templates is enabled. 1153 1154C++14 1155----- 1156 1157The features listed below are part of the C++14 standard. As a result, all 1158these features are enabled with the ``-std=C++14`` or ``-std=gnu++14`` option 1159when compiling C++ code. 1160 1161C++14 binary literals 1162^^^^^^^^^^^^^^^^^^^^^ 1163 1164Use ``__has_feature(cxx_binary_literals)`` or 1165``__has_extension(cxx_binary_literals)`` to determine whether 1166binary literals (for instance, ``0b10010``) are recognized. Clang supports this 1167feature as an extension in all language modes. 1168 1169C++14 contextual conversions 1170^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1171 1172Use ``__has_feature(cxx_contextual_conversions)`` or 1173``__has_extension(cxx_contextual_conversions)`` to determine if the C++14 rules 1174are used when performing an implicit conversion for an array bound in a 1175*new-expression*, the operand of a *delete-expression*, an integral constant 1176expression, or a condition in a ``switch`` statement. 1177 1178C++14 decltype(auto) 1179^^^^^^^^^^^^^^^^^^^^ 1180 1181Use ``__has_feature(cxx_decltype_auto)`` or 1182``__has_extension(cxx_decltype_auto)`` to determine if support 1183for the ``decltype(auto)`` placeholder type is enabled. 1184 1185C++14 default initializers for aggregates 1186^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1187 1188Use ``__has_feature(cxx_aggregate_nsdmi)`` or 1189``__has_extension(cxx_aggregate_nsdmi)`` to determine if support 1190for default initializers in aggregate members is enabled. 1191 1192C++14 digit separators 1193^^^^^^^^^^^^^^^^^^^^^^ 1194 1195Use ``__cpp_digit_separators`` to determine if support for digit separators 1196using single quotes (for instance, ``10'000``) is enabled. At this time, there 1197is no corresponding ``__has_feature`` name 1198 1199C++14 generalized lambda capture 1200^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1201 1202Use ``__has_feature(cxx_init_captures)`` or 1203``__has_extension(cxx_init_captures)`` to determine if support for 1204lambda captures with explicit initializers is enabled 1205(for instance, ``[n(0)] { return ++n; }``). 1206 1207C++14 generic lambdas 1208^^^^^^^^^^^^^^^^^^^^^ 1209 1210Use ``__has_feature(cxx_generic_lambdas)`` or 1211``__has_extension(cxx_generic_lambdas)`` to determine if support for generic 1212(polymorphic) lambdas is enabled 1213(for instance, ``[] (auto x) { return x + 1; }``). 1214 1215C++14 relaxed constexpr 1216^^^^^^^^^^^^^^^^^^^^^^^ 1217 1218Use ``__has_feature(cxx_relaxed_constexpr)`` or 1219``__has_extension(cxx_relaxed_constexpr)`` to determine if variable 1220declarations, local variable modification, and control flow constructs 1221are permitted in ``constexpr`` functions. 1222 1223C++14 return type deduction 1224^^^^^^^^^^^^^^^^^^^^^^^^^^^ 1225 1226Use ``__has_feature(cxx_return_type_deduction)`` or 1227``__has_extension(cxx_return_type_deduction)`` to determine if support 1228for return type deduction for functions (using ``auto`` as a return type) 1229is enabled. 1230 1231C++14 runtime-sized arrays 1232^^^^^^^^^^^^^^^^^^^^^^^^^^ 1233 1234Use ``__has_feature(cxx_runtime_array)`` or 1235``__has_extension(cxx_runtime_array)`` to determine if support 1236for arrays of runtime bound (a restricted form of variable-length arrays) 1237is enabled. 1238Clang's implementation of this feature is incomplete. 1239 1240C++14 variable templates 1241^^^^^^^^^^^^^^^^^^^^^^^^ 1242 1243Use ``__has_feature(cxx_variable_templates)`` or 1244``__has_extension(cxx_variable_templates)`` to determine if support for 1245templated variable declarations is enabled. 1246 1247C11 1248--- 1249 1250The features listed below are part of the C11 standard. As a result, all these 1251features are enabled with the ``-std=c11`` or ``-std=gnu11`` option when 1252compiling C code. Additionally, because these features are all 1253backward-compatible, they are available as extensions in all language modes. 1254 1255C11 alignment specifiers 1256^^^^^^^^^^^^^^^^^^^^^^^^ 1257 1258Use ``__has_feature(c_alignas)`` or ``__has_extension(c_alignas)`` to determine 1259if support for alignment specifiers using ``_Alignas`` is enabled. 1260 1261Use ``__has_feature(c_alignof)`` or ``__has_extension(c_alignof)`` to determine 1262if support for the ``_Alignof`` keyword is enabled. 1263 1264C11 atomic operations 1265^^^^^^^^^^^^^^^^^^^^^ 1266 1267Use ``__has_feature(c_atomic)`` or ``__has_extension(c_atomic)`` to determine 1268if support for atomic types using ``_Atomic`` is enabled. Clang also provides 1269:ref:`a set of builtins <langext-__c11_atomic>` which can be used to implement 1270the ``<stdatomic.h>`` operations on ``_Atomic`` types. Use 1271``__has_include(<stdatomic.h>)`` to determine if C11's ``<stdatomic.h>`` header 1272is available. 1273 1274Clang will use the system's ``<stdatomic.h>`` header when one is available, and 1275will otherwise use its own. When using its own, implementations of the atomic 1276operations are provided as macros. In the cases where C11 also requires a real 1277function, this header provides only the declaration of that function (along 1278with a shadowing macro implementation), and you must link to a library which 1279provides a definition of the function if you use it instead of the macro. 1280 1281C11 generic selections 1282^^^^^^^^^^^^^^^^^^^^^^ 1283 1284Use ``__has_feature(c_generic_selections)`` or 1285``__has_extension(c_generic_selections)`` to determine if support for generic 1286selections is enabled. 1287 1288As an extension, the C11 generic selection expression is available in all 1289languages supported by Clang. The syntax is the same as that given in the C11 1290standard. 1291 1292In C, type compatibility is decided according to the rules given in the 1293appropriate standard, but in C++, which lacks the type compatibility rules used 1294in C, types are considered compatible only if they are equivalent. 1295 1296C11 ``_Static_assert()`` 1297^^^^^^^^^^^^^^^^^^^^^^^^ 1298 1299Use ``__has_feature(c_static_assert)`` or ``__has_extension(c_static_assert)`` 1300to determine if support for compile-time assertions using ``_Static_assert`` is 1301enabled. 1302 1303C11 ``_Thread_local`` 1304^^^^^^^^^^^^^^^^^^^^^ 1305 1306Use ``__has_feature(c_thread_local)`` or ``__has_extension(c_thread_local)`` 1307to determine if support for ``_Thread_local`` variables is enabled. 1308 1309Modules 1310------- 1311 1312Use ``__has_feature(modules)`` to determine if Modules have been enabled. 1313For example, compiling code with ``-fmodules`` enables the use of Modules. 1314 1315More information could be found `here <https://clang.llvm.org/docs/Modules.html>`_. 1316 1317Type Trait Primitives 1318===================== 1319 1320Type trait primitives are special builtin constant expressions that can be used 1321by the standard C++ library to facilitate or simplify the implementation of 1322user-facing type traits in the <type_traits> header. 1323 1324They are not intended to be used directly by user code because they are 1325implementation-defined and subject to change -- as such they're tied closely to 1326the supported set of system headers, currently: 1327 1328* LLVM's own libc++ 1329* GNU libstdc++ 1330* The Microsoft standard C++ library 1331 1332Clang supports the `GNU C++ type traits 1333<https://gcc.gnu.org/onlinedocs/gcc/Type-Traits.html>`_ and a subset of the 1334`Microsoft Visual C++ type traits 1335<https://msdn.microsoft.com/en-us/library/ms177194(v=VS.100).aspx>`_, 1336as well as nearly all of the 1337`Embarcadero C++ type traits 1338<http://docwiki.embarcadero.com/RADStudio/Rio/en/Type_Trait_Functions_(C%2B%2B11)_Index>`_. 1339 1340The following type trait primitives are supported by Clang. Those traits marked 1341(C++) provide implementations for type traits specified by the C++ standard; 1342``__X(...)`` has the same semantics and constraints as the corresponding 1343``std::X_t<...>`` or ``std::X_v<...>`` type trait. 1344 1345* ``__array_rank(type)`` (Embarcadero): 1346 Returns the number of levels of array in the type ``type``: 1347 ``0`` if ``type`` is not an array type, and 1348 ``__array_rank(element) + 1`` if ``type`` is an array of ``element``. 1349* ``__array_extent(type, dim)`` (Embarcadero): 1350 The ``dim``'th array bound in the type ``type``, or ``0`` if 1351 ``dim >= __array_rank(type)``. 1352* ``__has_nothrow_assign`` (GNU, Microsoft, Embarcadero): 1353 Deprecated, use ``__is_nothrow_assignable`` instead. 1354* ``__has_nothrow_move_assign`` (GNU, Microsoft): 1355 Deprecated, use ``__is_nothrow_assignable`` instead. 1356* ``__has_nothrow_copy`` (GNU, Microsoft): 1357 Deprecated, use ``__is_nothrow_constructible`` instead. 1358* ``__has_nothrow_constructor`` (GNU, Microsoft): 1359 Deprecated, use ``__is_nothrow_constructible`` instead. 1360* ``__has_trivial_assign`` (GNU, Microsoft, Embarcadero): 1361 Deprecated, use ``__is_trivially_assignable`` instead. 1362* ``__has_trivial_move_assign`` (GNU, Microsoft): 1363 Deprecated, use ``__is_trivially_assignable`` instead. 1364* ``__has_trivial_copy`` (GNU, Microsoft): 1365 Deprecated, use ``__is_trivially_constructible`` instead. 1366* ``__has_trivial_constructor`` (GNU, Microsoft): 1367 Deprecated, use ``__is_trivially_constructible`` instead. 1368* ``__has_trivial_move_constructor`` (GNU, Microsoft): 1369 Deprecated, use ``__is_trivially_constructible`` instead. 1370* ``__has_trivial_destructor`` (GNU, Microsoft, Embarcadero): 1371 Deprecated, use ``__is_trivially_destructible`` instead. 1372* ``__has_unique_object_representations`` (C++, GNU) 1373* ``__has_virtual_destructor`` (C++, GNU, Microsoft, Embarcadero) 1374* ``__is_abstract`` (C++, GNU, Microsoft, Embarcadero) 1375* ``__is_aggregate`` (C++, GNU, Microsoft) 1376* ``__is_arithmetic`` (C++, Embarcadero) 1377* ``__is_array`` (C++, Embarcadero) 1378* ``__is_assignable`` (C++, MSVC 2015) 1379* ``__is_base_of`` (C++, GNU, Microsoft, Embarcadero) 1380* ``__is_class`` (C++, GNU, Microsoft, Embarcadero) 1381* ``__is_complete_type(type)`` (Embarcadero): 1382 Return ``true`` if ``type`` is a complete type. 1383 Warning: this trait is dangerous because it can return different values at 1384 different points in the same program. 1385* ``__is_compound`` (C++, Embarcadero) 1386* ``__is_const`` (C++, Embarcadero) 1387* ``__is_constructible`` (C++, MSVC 2013) 1388* ``__is_convertible`` (C++, Embarcadero) 1389* ``__is_convertible_to`` (Microsoft): 1390 Synonym for ``__is_convertible``. 1391* ``__is_destructible`` (C++, MSVC 2013): 1392 Only available in ``-fms-extensions`` mode. 1393* ``__is_empty`` (C++, GNU, Microsoft, Embarcadero) 1394* ``__is_enum`` (C++, GNU, Microsoft, Embarcadero) 1395* ``__is_final`` (C++, GNU, Microsoft) 1396* ``__is_floating_point`` (C++, Embarcadero) 1397* ``__is_function`` (C++, Embarcadero) 1398* ``__is_fundamental`` (C++, Embarcadero) 1399* ``__is_integral`` (C++, Embarcadero) 1400* ``__is_interface_class`` (Microsoft): 1401 Returns ``false``, even for types defined with ``__interface``. 1402* ``__is_literal`` (Clang): 1403 Synonym for ``__is_literal_type``. 1404* ``__is_literal_type`` (C++, GNU, Microsoft): 1405 Note, the corresponding standard trait was deprecated in C++17 1406 and removed in C++20. 1407* ``__is_lvalue_reference`` (C++, Embarcadero) 1408* ``__is_member_object_pointer`` (C++, Embarcadero) 1409* ``__is_member_function_pointer`` (C++, Embarcadero) 1410* ``__is_member_pointer`` (C++, Embarcadero) 1411* ``__is_nothrow_assignable`` (C++, MSVC 2013) 1412* ``__is_nothrow_constructible`` (C++, MSVC 2013) 1413* ``__is_nothrow_destructible`` (C++, MSVC 2013) 1414 Only available in ``-fms-extensions`` mode. 1415* ``__is_object`` (C++, Embarcadero) 1416* ``__is_pod`` (C++, GNU, Microsoft, Embarcadero): 1417 Note, the corresponding standard trait was deprecated in C++20. 1418* ``__is_pointer`` (C++, Embarcadero) 1419* ``__is_polymorphic`` (C++, GNU, Microsoft, Embarcadero) 1420* ``__is_reference`` (C++, Embarcadero) 1421* ``__is_rvalue_reference`` (C++, Embarcadero) 1422* ``__is_same`` (C++, Embarcadero) 1423* ``__is_same_as`` (GCC): Synonym for ``__is_same``. 1424* ``__is_scalar`` (C++, Embarcadero) 1425* ``__is_sealed`` (Microsoft): 1426 Synonym for ``__is_final``. 1427* ``__is_signed`` (C++, Embarcadero): 1428 Returns false for enumeration types, and returns true for floating-point 1429 types. Note, before Clang 10, returned true for enumeration types if the 1430 underlying type was signed, and returned false for floating-point types. 1431* ``__is_standard_layout`` (C++, GNU, Microsoft, Embarcadero) 1432* ``__is_trivial`` (C++, GNU, Microsoft, Embarcadero) 1433* ``__is_trivially_assignable`` (C++, GNU, Microsoft) 1434* ``__is_trivially_constructible`` (C++, GNU, Microsoft) 1435* ``__is_trivially_copyable`` (C++, GNU, Microsoft) 1436* ``__is_trivially_destructible`` (C++, MSVC 2013) 1437* ``__is_trivially_relocatable`` (Clang): Returns true if moving an object 1438 of the given type, and then destroying the source object, is known to be 1439 functionally equivalent to copying the underlying bytes and then dropping the 1440 source object on the floor. This is true of trivial types and types which 1441 were made trivially relocatable via the ``clang::trivial_abi`` attribute. 1442* ``__is_union`` (C++, GNU, Microsoft, Embarcadero) 1443* ``__is_unsigned`` (C++, Embarcadero): 1444 Returns false for enumeration types. Note, before Clang 13, returned true for 1445 enumeration types if the underlying type was unsigned. 1446* ``__is_void`` (C++, Embarcadero) 1447* ``__is_volatile`` (C++, Embarcadero) 1448* ``__reference_binds_to_temporary(T, U)`` (Clang): Determines whether a 1449 reference of type ``T`` bound to an expression of type ``U`` would bind to a 1450 materialized temporary object. If ``T`` is not a reference type the result 1451 is false. Note this trait will also return false when the initialization of 1452 ``T`` from ``U`` is ill-formed. 1453* ``__underlying_type`` (C++, GNU, Microsoft) 1454 1455In addition, the following expression traits are supported: 1456 1457* ``__is_lvalue_expr(e)`` (Embarcadero): 1458 Returns true if ``e`` is an lvalue expression. 1459 Deprecated, use ``__is_lvalue_reference(decltype((e)))`` instead. 1460* ``__is_rvalue_expr(e)`` (Embarcadero): 1461 Returns true if ``e`` is a prvalue expression. 1462 Deprecated, use ``!__is_reference(decltype((e)))`` instead. 1463 1464There are multiple ways to detect support for a type trait ``__X`` in the 1465compiler, depending on the oldest version of Clang you wish to support. 1466 1467* From Clang 10 onwards, ``__has_builtin(__X)`` can be used. 1468* From Clang 6 onwards, ``!__is_identifier(__X)`` can be used. 1469* From Clang 3 onwards, ``__has_feature(X)`` can be used, but only supports 1470 the following traits: 1471 1472 * ``__has_nothrow_assign`` 1473 * ``__has_nothrow_copy`` 1474 * ``__has_nothrow_constructor`` 1475 * ``__has_trivial_assign`` 1476 * ``__has_trivial_copy`` 1477 * ``__has_trivial_constructor`` 1478 * ``__has_trivial_destructor`` 1479 * ``__has_virtual_destructor`` 1480 * ``__is_abstract`` 1481 * ``__is_base_of`` 1482 * ``__is_class`` 1483 * ``__is_constructible`` 1484 * ``__is_convertible_to`` 1485 * ``__is_empty`` 1486 * ``__is_enum`` 1487 * ``__is_final`` 1488 * ``__is_literal`` 1489 * ``__is_standard_layout`` 1490 * ``__is_pod`` 1491 * ``__is_polymorphic`` 1492 * ``__is_sealed`` 1493 * ``__is_trivial`` 1494 * ``__is_trivially_assignable`` 1495 * ``__is_trivially_constructible`` 1496 * ``__is_trivially_copyable`` 1497 * ``__is_union`` 1498 * ``__underlying_type`` 1499 1500A simplistic usage example as might be seen in standard C++ headers follows: 1501 1502.. code-block:: c++ 1503 1504 #if __has_builtin(__is_convertible_to) 1505 template<typename From, typename To> 1506 struct is_convertible_to { 1507 static const bool value = __is_convertible_to(From, To); 1508 }; 1509 #else 1510 // Emulate type trait for compatibility with other compilers. 1511 #endif 1512 1513Blocks 1514====== 1515 1516The syntax and high level language feature description is in 1517:doc:`BlockLanguageSpec<BlockLanguageSpec>`. Implementation and ABI details for 1518the clang implementation are in :doc:`Block-ABI-Apple<Block-ABI-Apple>`. 1519 1520Query for this feature with ``__has_extension(blocks)``. 1521 1522ASM Goto with Output Constraints 1523================================ 1524 1525In addition to the functionality provided by `GCC's extended 1526assembly <https://gcc.gnu.org/onlinedocs/gcc/Extended-Asm.html>`_, clang 1527supports output constraints with the `goto` form. 1528 1529The goto form of GCC's extended assembly allows the programmer to branch to a C 1530label from within an inline assembly block. Clang extends this behavior by 1531allowing the programmer to use output constraints: 1532 1533.. code-block:: c++ 1534 1535 int foo(int x) { 1536 int y; 1537 asm goto("# %0 %1 %l2" : "=r"(y) : "r"(x) : : err); 1538 return y; 1539 err: 1540 return -1; 1541 } 1542 1543It's important to note that outputs are valid only on the "fallthrough" branch. 1544Using outputs on an indirect branch may result in undefined behavior. For 1545example, in the function above, use of the value assigned to `y` in the `err` 1546block is undefined behavior. 1547 1548When using tied-outputs (i.e. outputs that are inputs and outputs, not just 1549outputs) with the `+r` constraint, there is a hidden input that's created 1550before the label, so numeric references to operands must account for that. 1551 1552.. code-block:: c++ 1553 1554 int foo(int x) { 1555 // %0 and %1 both refer to x 1556 // %l2 refers to err 1557 asm goto("# %0 %1 %l2" : "+r"(x) : : : err); 1558 return x; 1559 err: 1560 return -1; 1561 } 1562 1563This was changed to match GCC in clang-13; for better portability, symbolic 1564references can be used instead of numeric references. 1565 1566.. code-block:: c++ 1567 1568 int foo(int x) { 1569 asm goto("# %[x] %l[err]" : [x]"+r"(x) : : : err); 1570 return x; 1571 err: 1572 return -1; 1573 } 1574 1575Query for this feature with ``__has_extension(gnu_asm_goto_with_outputs)``. 1576 1577Objective-C Features 1578==================== 1579 1580Related result types 1581-------------------- 1582 1583According to Cocoa conventions, Objective-C methods with certain names 1584("``init``", "``alloc``", etc.) always return objects that are an instance of 1585the receiving class's type. Such methods are said to have a "related result 1586type", meaning that a message send to one of these methods will have the same 1587static type as an instance of the receiver class. For example, given the 1588following classes: 1589 1590.. code-block:: objc 1591 1592 @interface NSObject 1593 + (id)alloc; 1594 - (id)init; 1595 @end 1596 1597 @interface NSArray : NSObject 1598 @end 1599 1600and this common initialization pattern 1601 1602.. code-block:: objc 1603 1604 NSArray *array = [[NSArray alloc] init]; 1605 1606the type of the expression ``[NSArray alloc]`` is ``NSArray*`` because 1607``alloc`` implicitly has a related result type. Similarly, the type of the 1608expression ``[[NSArray alloc] init]`` is ``NSArray*``, since ``init`` has a 1609related result type and its receiver is known to have the type ``NSArray *``. 1610If neither ``alloc`` nor ``init`` had a related result type, the expressions 1611would have had type ``id``, as declared in the method signature. 1612 1613A method with a related result type can be declared by using the type 1614``instancetype`` as its result type. ``instancetype`` is a contextual keyword 1615that is only permitted in the result type of an Objective-C method, e.g. 1616 1617.. code-block:: objc 1618 1619 @interface A 1620 + (instancetype)constructAnA; 1621 @end 1622 1623The related result type can also be inferred for some methods. To determine 1624whether a method has an inferred related result type, the first word in the 1625camel-case selector (e.g., "``init``" in "``initWithObjects``") is considered, 1626and the method will have a related result type if its return type is compatible 1627with the type of its class and if: 1628 1629* the first word is "``alloc``" or "``new``", and the method is a class method, 1630 or 1631 1632* the first word is "``autorelease``", "``init``", "``retain``", or "``self``", 1633 and the method is an instance method. 1634 1635If a method with a related result type is overridden by a subclass method, the 1636subclass method must also return a type that is compatible with the subclass 1637type. For example: 1638 1639.. code-block:: objc 1640 1641 @interface NSString : NSObject 1642 - (NSUnrelated *)init; // incorrect usage: NSUnrelated is not NSString or a superclass of NSString 1643 @end 1644 1645Related result types only affect the type of a message send or property access 1646via the given method. In all other respects, a method with a related result 1647type is treated the same way as method that returns ``id``. 1648 1649Use ``__has_feature(objc_instancetype)`` to determine whether the 1650``instancetype`` contextual keyword is available. 1651 1652Automatic reference counting 1653---------------------------- 1654 1655Clang provides support for :doc:`automated reference counting 1656<AutomaticReferenceCounting>` in Objective-C, which eliminates the need 1657for manual ``retain``/``release``/``autorelease`` message sends. There are three 1658feature macros associated with automatic reference counting: 1659``__has_feature(objc_arc)`` indicates the availability of automated reference 1660counting in general, while ``__has_feature(objc_arc_weak)`` indicates that 1661automated reference counting also includes support for ``__weak`` pointers to 1662Objective-C objects. ``__has_feature(objc_arc_fields)`` indicates that C structs 1663are allowed to have fields that are pointers to Objective-C objects managed by 1664automatic reference counting. 1665 1666.. _objc-weak: 1667 1668Weak references 1669--------------- 1670 1671Clang supports ARC-style weak and unsafe references in Objective-C even 1672outside of ARC mode. Weak references must be explicitly enabled with 1673the ``-fobjc-weak`` option; use ``__has_feature((objc_arc_weak))`` 1674to test whether they are enabled. Unsafe references are enabled 1675unconditionally. ARC-style weak and unsafe references cannot be used 1676when Objective-C garbage collection is enabled. 1677 1678Except as noted below, the language rules for the ``__weak`` and 1679``__unsafe_unretained`` qualifiers (and the ``weak`` and 1680``unsafe_unretained`` property attributes) are just as laid out 1681in the :doc:`ARC specification <AutomaticReferenceCounting>`. 1682In particular, note that some classes do not support forming weak 1683references to their instances, and note that special care must be 1684taken when storing weak references in memory where initialization 1685and deinitialization are outside the responsibility of the compiler 1686(such as in ``malloc``-ed memory). 1687 1688Loading from a ``__weak`` variable always implicitly retains the 1689loaded value. In non-ARC modes, this retain is normally balanced 1690by an implicit autorelease. This autorelease can be suppressed 1691by performing the load in the receiver position of a ``-retain`` 1692message send (e.g. ``[weakReference retain]``); note that this performs 1693only a single retain (the retain done when primitively loading from 1694the weak reference). 1695 1696For the most part, ``__unsafe_unretained`` in non-ARC modes is just the 1697default behavior of variables and therefore is not needed. However, 1698it does have an effect on the semantics of block captures: normally, 1699copying a block which captures an Objective-C object or block pointer 1700causes the captured pointer to be retained or copied, respectively, 1701but that behavior is suppressed when the captured variable is qualified 1702with ``__unsafe_unretained``. 1703 1704Note that the ``__weak`` qualifier formerly meant the GC qualifier in 1705all non-ARC modes and was silently ignored outside of GC modes. It now 1706means the ARC-style qualifier in all non-GC modes and is no longer 1707allowed if not enabled by either ``-fobjc-arc`` or ``-fobjc-weak``. 1708It is expected that ``-fobjc-weak`` will eventually be enabled by default 1709in all non-GC Objective-C modes. 1710 1711.. _objc-fixed-enum: 1712 1713Enumerations with a fixed underlying type 1714----------------------------------------- 1715 1716Clang provides support for C++11 enumerations with a fixed underlying type 1717within Objective-C. For example, one can write an enumeration type as: 1718 1719.. code-block:: c++ 1720 1721 typedef enum : unsigned char { Red, Green, Blue } Color; 1722 1723This specifies that the underlying type, which is used to store the enumeration 1724value, is ``unsigned char``. 1725 1726Use ``__has_feature(objc_fixed_enum)`` to determine whether support for fixed 1727underlying types is available in Objective-C. 1728 1729Interoperability with C++11 lambdas 1730----------------------------------- 1731 1732Clang provides interoperability between C++11 lambdas and blocks-based APIs, by 1733permitting a lambda to be implicitly converted to a block pointer with the 1734corresponding signature. For example, consider an API such as ``NSArray``'s 1735array-sorting method: 1736 1737.. code-block:: objc 1738 1739 - (NSArray *)sortedArrayUsingComparator:(NSComparator)cmptr; 1740 1741``NSComparator`` is simply a typedef for the block pointer ``NSComparisonResult 1742(^)(id, id)``, and parameters of this type are generally provided with block 1743literals as arguments. However, one can also use a C++11 lambda so long as it 1744provides the same signature (in this case, accepting two parameters of type 1745``id`` and returning an ``NSComparisonResult``): 1746 1747.. code-block:: objc 1748 1749 NSArray *array = @[@"string 1", @"string 21", @"string 12", @"String 11", 1750 @"String 02"]; 1751 const NSStringCompareOptions comparisonOptions 1752 = NSCaseInsensitiveSearch | NSNumericSearch | 1753 NSWidthInsensitiveSearch | NSForcedOrderingSearch; 1754 NSLocale *currentLocale = [NSLocale currentLocale]; 1755 NSArray *sorted 1756 = [array sortedArrayUsingComparator:[=](id s1, id s2) -> NSComparisonResult { 1757 NSRange string1Range = NSMakeRange(0, [s1 length]); 1758 return [s1 compare:s2 options:comparisonOptions 1759 range:string1Range locale:currentLocale]; 1760 }]; 1761 NSLog(@"sorted: %@", sorted); 1762 1763This code relies on an implicit conversion from the type of the lambda 1764expression (an unnamed, local class type called the *closure type*) to the 1765corresponding block pointer type. The conversion itself is expressed by a 1766conversion operator in that closure type that produces a block pointer with the 1767same signature as the lambda itself, e.g., 1768 1769.. code-block:: objc 1770 1771 operator NSComparisonResult (^)(id, id)() const; 1772 1773This conversion function returns a new block that simply forwards the two 1774parameters to the lambda object (which it captures by copy), then returns the 1775result. The returned block is first copied (with ``Block_copy``) and then 1776autoreleased. As an optimization, if a lambda expression is immediately 1777converted to a block pointer (as in the first example, above), then the block 1778is not copied and autoreleased: rather, it is given the same lifetime as a 1779block literal written at that point in the program, which avoids the overhead 1780of copying a block to the heap in the common case. 1781 1782The conversion from a lambda to a block pointer is only available in 1783Objective-C++, and not in C++ with blocks, due to its use of Objective-C memory 1784management (autorelease). 1785 1786Object Literals and Subscripting 1787-------------------------------- 1788 1789Clang provides support for :doc:`Object Literals and Subscripting 1790<ObjectiveCLiterals>` in Objective-C, which simplifies common Objective-C 1791programming patterns, makes programs more concise, and improves the safety of 1792container creation. There are several feature macros associated with object 1793literals and subscripting: ``__has_feature(objc_array_literals)`` tests the 1794availability of array literals; ``__has_feature(objc_dictionary_literals)`` 1795tests the availability of dictionary literals; 1796``__has_feature(objc_subscripting)`` tests the availability of object 1797subscripting. 1798 1799Objective-C Autosynthesis of Properties 1800--------------------------------------- 1801 1802Clang provides support for autosynthesis of declared properties. Using this 1803feature, clang provides default synthesis of those properties not declared 1804@dynamic and not having user provided backing getter and setter methods. 1805``__has_feature(objc_default_synthesize_properties)`` checks for availability 1806of this feature in version of clang being used. 1807 1808.. _langext-objc-retain-release: 1809 1810Objective-C retaining behavior attributes 1811----------------------------------------- 1812 1813In Objective-C, functions and methods are generally assumed to follow the 1814`Cocoa Memory Management 1815<https://developer.apple.com/library/mac/#documentation/Cocoa/Conceptual/MemoryMgmt/Articles/mmRules.html>`_ 1816conventions for ownership of object arguments and 1817return values. However, there are exceptions, and so Clang provides attributes 1818to allow these exceptions to be documented. This are used by ARC and the 1819`static analyzer <https://clang-analyzer.llvm.org>`_ Some exceptions may be 1820better described using the ``objc_method_family`` attribute instead. 1821 1822**Usage**: The ``ns_returns_retained``, ``ns_returns_not_retained``, 1823``ns_returns_autoreleased``, ``cf_returns_retained``, and 1824``cf_returns_not_retained`` attributes can be placed on methods and functions 1825that return Objective-C or CoreFoundation objects. They are commonly placed at 1826the end of a function prototype or method declaration: 1827 1828.. code-block:: objc 1829 1830 id foo() __attribute__((ns_returns_retained)); 1831 1832 - (NSString *)bar:(int)x __attribute__((ns_returns_retained)); 1833 1834The ``*_returns_retained`` attributes specify that the returned object has a +1 1835retain count. The ``*_returns_not_retained`` attributes specify that the return 1836object has a +0 retain count, even if the normal convention for its selector 1837would be +1. ``ns_returns_autoreleased`` specifies that the returned object is 1838+0, but is guaranteed to live at least as long as the next flush of an 1839autorelease pool. 1840 1841**Usage**: The ``ns_consumed`` and ``cf_consumed`` attributes can be placed on 1842an parameter declaration; they specify that the argument is expected to have a 1843+1 retain count, which will be balanced in some way by the function or method. 1844The ``ns_consumes_self`` attribute can only be placed on an Objective-C 1845method; it specifies that the method expects its ``self`` parameter to have a 1846+1 retain count, which it will balance in some way. 1847 1848.. code-block:: objc 1849 1850 void foo(__attribute__((ns_consumed)) NSString *string); 1851 1852 - (void) bar __attribute__((ns_consumes_self)); 1853 - (void) baz:(id) __attribute__((ns_consumed)) x; 1854 1855Further examples of these attributes are available in the static analyzer's `list of annotations for analysis 1856<https://clang-analyzer.llvm.org/annotations.html#cocoa_mem>`_. 1857 1858Query for these features with ``__has_attribute(ns_consumed)``, 1859``__has_attribute(ns_returns_retained)``, etc. 1860 1861Objective-C @available 1862---------------------- 1863 1864It is possible to use the newest SDK but still build a program that can run on 1865older versions of macOS and iOS by passing ``-mmacosx-version-min=`` / 1866``-miphoneos-version-min=``. 1867 1868Before LLVM 5.0, when calling a function that exists only in the OS that's 1869newer than the target OS (as determined by the minimum deployment version), 1870programmers had to carefully check if the function exists at runtime, using 1871null checks for weakly-linked C functions, ``+class`` for Objective-C classes, 1872and ``-respondsToSelector:`` or ``+instancesRespondToSelector:`` for 1873Objective-C methods. If such a check was missed, the program would compile 1874fine, run fine on newer systems, but crash on older systems. 1875 1876As of LLVM 5.0, ``-Wunguarded-availability`` uses the `availability attributes 1877<https://clang.llvm.org/docs/AttributeReference.html#availability>`_ together 1878with the new ``@available()`` keyword to assist with this issue. 1879When a method that's introduced in the OS newer than the target OS is called, a 1880-Wunguarded-availability warning is emitted if that call is not guarded: 1881 1882.. code-block:: objc 1883 1884 void my_fun(NSSomeClass* var) { 1885 // If fancyNewMethod was added in e.g. macOS 10.12, but the code is 1886 // built with -mmacosx-version-min=10.11, then this unconditional call 1887 // will emit a -Wunguarded-availability warning: 1888 [var fancyNewMethod]; 1889 } 1890 1891To fix the warning and to avoid the crash on macOS 10.11, wrap it in 1892``if(@available())``: 1893 1894.. code-block:: objc 1895 1896 void my_fun(NSSomeClass* var) { 1897 if (@available(macOS 10.12, *)) { 1898 [var fancyNewMethod]; 1899 } else { 1900 // Put fallback behavior for old macOS versions (and for non-mac 1901 // platforms) here. 1902 } 1903 } 1904 1905The ``*`` is required and means that platforms not explicitly listed will take 1906the true branch, and the compiler will emit ``-Wunguarded-availability`` 1907warnings for unlisted platforms based on those platform's deployment target. 1908More than one platform can be listed in ``@available()``: 1909 1910.. code-block:: objc 1911 1912 void my_fun(NSSomeClass* var) { 1913 if (@available(macOS 10.12, iOS 10, *)) { 1914 [var fancyNewMethod]; 1915 } 1916 } 1917 1918If the caller of ``my_fun()`` already checks that ``my_fun()`` is only called 1919on 10.12, then add an `availability attribute 1920<https://clang.llvm.org/docs/AttributeReference.html#availability>`_ to it, 1921which will also suppress the warning and require that calls to my_fun() are 1922checked: 1923 1924.. code-block:: objc 1925 1926 API_AVAILABLE(macos(10.12)) void my_fun(NSSomeClass* var) { 1927 [var fancyNewMethod]; // Now ok. 1928 } 1929 1930``@available()`` is only available in Objective-C code. To use the feature 1931in C and C++ code, use the ``__builtin_available()`` spelling instead. 1932 1933If existing code uses null checks or ``-respondsToSelector:``, it should 1934be changed to use ``@available()`` (or ``__builtin_available``) instead. 1935 1936``-Wunguarded-availability`` is disabled by default, but 1937``-Wunguarded-availability-new``, which only emits this warning for APIs 1938that have been introduced in macOS >= 10.13, iOS >= 11, watchOS >= 4 and 1939tvOS >= 11, is enabled by default. 1940 1941.. _langext-overloading: 1942 1943Objective-C++ ABI: protocol-qualifier mangling of parameters 1944------------------------------------------------------------ 1945 1946Starting with LLVM 3.4, Clang produces a new mangling for parameters whose 1947type is a qualified-``id`` (e.g., ``id<Foo>``). This mangling allows such 1948parameters to be differentiated from those with the regular unqualified ``id`` 1949type. 1950 1951This was a non-backward compatible mangling change to the ABI. This change 1952allows proper overloading, and also prevents mangling conflicts with template 1953parameters of protocol-qualified type. 1954 1955Query the presence of this new mangling with 1956``__has_feature(objc_protocol_qualifier_mangling)``. 1957 1958Initializer lists for complex numbers in C 1959========================================== 1960 1961clang supports an extension which allows the following in C: 1962 1963.. code-block:: c++ 1964 1965 #include <math.h> 1966 #include <complex.h> 1967 complex float x = { 1.0f, INFINITY }; // Init to (1, Inf) 1968 1969This construct is useful because there is no way to separately initialize the 1970real and imaginary parts of a complex variable in standard C, given that clang 1971does not support ``_Imaginary``. (Clang also supports the ``__real__`` and 1972``__imag__`` extensions from gcc, which help in some cases, but are not usable 1973in static initializers.) 1974 1975Note that this extension does not allow eliding the braces; the meaning of the 1976following two lines is different: 1977 1978.. code-block:: c++ 1979 1980 complex float x[] = { { 1.0f, 1.0f } }; // [0] = (1, 1) 1981 complex float x[] = { 1.0f, 1.0f }; // [0] = (1, 0), [1] = (1, 0) 1982 1983This extension also works in C++ mode, as far as that goes, but does not apply 1984to the C++ ``std::complex``. (In C++11, list initialization allows the same 1985syntax to be used with ``std::complex`` with the same meaning.) 1986 1987For GCC compatibility, ``__builtin_complex(re, im)`` can also be used to 1988construct a complex number from the given real and imaginary components. 1989 1990OpenCL Features 1991=============== 1992 1993Clang supports internal OpenCL extensions documented below. 1994 1995``__cl_clang_bitfields`` 1996-------------------------------- 1997 1998With this extension it is possible to enable bitfields in structs 1999or unions using the OpenCL extension pragma mechanism detailed in 2000`the OpenCL Extension Specification, section 1.2 2001<https://www.khronos.org/registry/OpenCL/specs/3.0-unified/html/OpenCL_Ext.html#extensions-overview>`_. 2002 2003Use of bitfields in OpenCL kernels can result in reduced portability as struct 2004layout is not guaranteed to be consistent when compiled by different compilers. 2005If structs with bitfields are used as kernel function parameters, it can result 2006in incorrect functionality when the layout is different between the host and 2007device code. 2008 2009**Example of Use**: 2010 2011.. code-block:: c++ 2012 2013 #pragma OPENCL EXTENSION __cl_clang_bitfields : enable 2014 struct with_bitfield { 2015 unsigned int i : 5; // compiled - no diagnostic generated 2016 }; 2017 2018 #pragma OPENCL EXTENSION __cl_clang_bitfields : disable 2019 struct without_bitfield { 2020 unsigned int i : 5; // error - bitfields are not supported 2021 }; 2022 2023``__cl_clang_function_pointers`` 2024-------------------------------- 2025 2026With this extension it is possible to enable various language features that 2027are relying on function pointers using regular OpenCL extension pragma 2028mechanism detailed in `the OpenCL Extension Specification, 2029section 1.2 2030<https://www.khronos.org/registry/OpenCL/specs/3.0-unified/html/OpenCL_Ext.html#extensions-overview>`_. 2031 2032In C++ for OpenCL this also enables: 2033 2034- Use of member function pointers; 2035 2036- Unrestricted use of references to functions; 2037 2038- Virtual member functions. 2039 2040Such functionality is not conformant and does not guarantee to compile 2041correctly in any circumstances. It can be used if: 2042 2043- the kernel source does not contain call expressions to (member-) function 2044 pointers, or virtual functions. For example this extension can be used in 2045 metaprogramming algorithms to be able to specify/detect types generically. 2046 2047- the generated kernel binary does not contain indirect calls because they 2048 are eliminated using compiler optimizations e.g. devirtualization. 2049 2050- the selected target supports the function pointer like functionality e.g. 2051 most CPU targets. 2052 2053**Example of Use**: 2054 2055.. code-block:: c++ 2056 2057 #pragma OPENCL EXTENSION __cl_clang_function_pointers : enable 2058 void foo() 2059 { 2060 void (*fp)(); // compiled - no diagnostic generated 2061 } 2062 2063 #pragma OPENCL EXTENSION __cl_clang_function_pointers : disable 2064 void bar() 2065 { 2066 void (*fp)(); // error - pointers to function are not allowed 2067 } 2068 2069``__cl_clang_variadic_functions`` 2070--------------------------------- 2071 2072With this extension it is possible to enable variadic arguments in functions 2073using regular OpenCL extension pragma mechanism detailed in `the OpenCL 2074Extension Specification, section 1.2 2075<https://www.khronos.org/registry/OpenCL/specs/3.0-unified/html/OpenCL_Ext.html#extensions-overview>`_. 2076 2077This is not conformant behavior and it can only be used portably when the 2078functions with variadic prototypes do not get generated in binary e.g. the 2079variadic prototype is used to specify a function type with any number of 2080arguments in metaprogramming algorithms in C++ for OpenCL. 2081 2082This extensions can also be used when the kernel code is intended for targets 2083supporting the variadic arguments e.g. majority of CPU targets. 2084 2085**Example of Use**: 2086 2087.. code-block:: c++ 2088 2089 #pragma OPENCL EXTENSION __cl_clang_variadic_functions : enable 2090 void foo(int a, ...); // compiled - no diagnostic generated 2091 2092 #pragma OPENCL EXTENSION __cl_clang_variadic_functions : disable 2093 void bar(int a, ...); // error - variadic prototype is not allowed 2094 2095``__cl_clang_non_portable_kernel_param_types`` 2096---------------------------------------------- 2097 2098With this extension it is possible to enable the use of some restricted types 2099in kernel parameters specified in `C++ for OpenCL v1.0 s2.4 2100<https://www.khronos.org/opencl/assets/CXX_for_OpenCL.html#kernel_function>`_. 2101The restrictions can be relaxed using regular OpenCL extension pragma mechanism 2102detailed in `the OpenCL Extension Specification, section 1.2 2103<https://www.khronos.org/registry/OpenCL/specs/3.0-unified/html/OpenCL_Ext.html#extensions-overview>`_. 2104 2105This is not a conformant behavior and it can only be used when the 2106kernel arguments are not accessed on the host side or the data layout/size 2107between the host and device is known to be compatible. 2108 2109**Example of Use**: 2110 2111.. code-block:: c++ 2112 2113 // Plain Old Data type. 2114 struct Pod { 2115 int a; 2116 int b; 2117 }; 2118 2119 // Not POD type because of the constructor. 2120 // Standard layout type because there is only one access control. 2121 struct OnlySL { 2122 int a; 2123 int b; 2124 NotPod() : a(0), b(0) {} 2125 }; 2126 2127 // Not standard layout type because of two different access controls. 2128 struct NotSL { 2129 int a; 2130 private: 2131 int b; 2132 } 2133 2134 kernel void kernel_main( 2135 Pod a, 2136 #pragma OPENCL EXTENSION __cl_clang_non_portable_kernel_param_types : enable 2137 OnlySL b, 2138 global NotSL *c, 2139 #pragma OPENCL EXTENSION __cl_clang_non_portable_kernel_param_types : disable 2140 global OnlySL *d, 2141 ); 2142 2143Remove address space builtin function 2144------------------------------------- 2145 2146``__remove_address_space`` allows to derive types in C++ for OpenCL 2147that have address space qualifiers removed. This utility only affects 2148address space qualifiers, therefore, other type qualifiers such as 2149``const`` or ``volatile`` remain unchanged. 2150 2151**Example of Use**: 2152 2153.. code-block:: c++ 2154 2155 template<typename T> 2156 void foo(T *par){ 2157 T var1; // error - local function variable with global address space 2158 __private T var2; // error - conflicting address space qualifiers 2159 __private __remove_address_space<T>::type var3; // var3 is __private int 2160 } 2161 2162 void bar(){ 2163 __global int* ptr; 2164 foo(ptr); 2165 } 2166 2167Legacy 1.x atomics with generic address space 2168--------------------------------------------- 2169 2170Clang allows use of atomic functions from the OpenCL 1.x standards 2171with the generic address space pointer in C++ for OpenCL mode. 2172 2173This is a non-portable feature and might not be supported by all 2174targets. 2175 2176**Example of Use**: 2177 2178.. code-block:: c++ 2179 2180 void foo(__generic volatile unsigned int* a) { 2181 atomic_add(a, 1); 2182 } 2183 2184Builtin Functions 2185================= 2186 2187Clang supports a number of builtin library functions with the same syntax as 2188GCC, including things like ``__builtin_nan``, ``__builtin_constant_p``, 2189``__builtin_choose_expr``, ``__builtin_types_compatible_p``, 2190``__builtin_assume_aligned``, ``__sync_fetch_and_add``, etc. In addition to 2191the GCC builtins, Clang supports a number of builtins that GCC does not, which 2192are listed here. 2193 2194Please note that Clang does not and will not support all of the GCC builtins 2195for vector operations. Instead of using builtins, you should use the functions 2196defined in target-specific header files like ``<xmmintrin.h>``, which define 2197portable wrappers for these. Many of the Clang versions of these functions are 2198implemented directly in terms of :ref:`extended vector support 2199<langext-vectors>` instead of builtins, in order to reduce the number of 2200builtins that we need to implement. 2201 2202``__builtin_alloca`` 2203-------------------- 2204 2205``__builtin_alloca`` is used to dynamically allocate memory on the stack. Memory 2206is automatically freed upon function termination. 2207 2208**Syntax**: 2209 2210.. code-block:: c++ 2211 2212 __builtin_alloca(size_t n) 2213 2214**Example of Use**: 2215 2216.. code-block:: c++ 2217 2218 void init(float* data, size_t nbelems); 2219 void process(float* data, size_t nbelems); 2220 int foo(size_t n) { 2221 auto mem = (float*)__builtin_alloca(n * sizeof(float)); 2222 init(mem, n); 2223 process(mem, n); 2224 /* mem is automatically freed at this point */ 2225 } 2226 2227**Description**: 2228 2229``__builtin_alloca`` is meant to be used to allocate a dynamic amount of memory 2230on the stack. This amount is subject to stack allocation limits. 2231 2232Query for this feature with ``__has_builtin(__builtin_alloca)``. 2233 2234``__builtin_alloca_with_align`` 2235------------------------------- 2236 2237``__builtin_alloca_with_align`` is used to dynamically allocate memory on the 2238stack while controlling its alignment. Memory is automatically freed upon 2239function termination. 2240 2241 2242**Syntax**: 2243 2244.. code-block:: c++ 2245 2246 __builtin_alloca_with_align(size_t n, size_t align) 2247 2248**Example of Use**: 2249 2250.. code-block:: c++ 2251 2252 void init(float* data, size_t nbelems); 2253 void process(float* data, size_t nbelems); 2254 int foo(size_t n) { 2255 auto mem = (float*)__builtin_alloca_with_align( 2256 n * sizeof(float), 2257 CHAR_BIT * alignof(float)); 2258 init(mem, n); 2259 process(mem, n); 2260 /* mem is automatically freed at this point */ 2261 } 2262 2263**Description**: 2264 2265``__builtin_alloca_with_align`` is meant to be used to allocate a dynamic amount of memory 2266on the stack. It is similar to ``__builtin_alloca`` but accepts a second 2267argument whose value is the alignment constraint, as a power of 2 in *bits*. 2268 2269Query for this feature with ``__has_builtin(__builtin_alloca_with_align)``. 2270 2271.. _langext-__builtin_assume: 2272 2273``__builtin_assume`` 2274-------------------- 2275 2276``__builtin_assume`` is used to provide the optimizer with a boolean 2277invariant that is defined to be true. 2278 2279**Syntax**: 2280 2281.. code-block:: c++ 2282 2283 __builtin_assume(bool) 2284 2285**Example of Use**: 2286 2287.. code-block:: c++ 2288 2289 int foo(int x) { 2290 __builtin_assume(x != 0); 2291 // The optimizer may short-circuit this check using the invariant. 2292 if (x == 0) 2293 return do_something(); 2294 return do_something_else(); 2295 } 2296 2297**Description**: 2298 2299The boolean argument to this function is defined to be true. The optimizer may 2300analyze the form of the expression provided as the argument and deduce from 2301that information used to optimize the program. If the condition is violated 2302during execution, the behavior is undefined. The argument itself is 2303 2304Query for this feature with ``__has_builtin(__builtin_assume)``. 2305 2306``__builtin_call_with_static_chain`` 2307------------------------------------ 2308 2309``__builtin_call_with_static_chain`` is used to perform a static call while 2310setting updating the static chain register. 2311 2312**Syntax**: 2313 2314.. code-block:: c++ 2315 2316 T __builtin_call_with_static_chain(T expr, void* ptr) 2317 2318**Example of Use**: 2319 2320.. code-block:: c++ 2321 2322 auto v = __builtin_call_with_static_chain(foo(3), foo); 2323 2324**Description**: 2325 2326This builtin returns ``expr`` after checking that ``expr`` is a non-member 2327static call expression. The call to that expression is made while using ``ptr`` 2328as a function pointer stored in a dedicated register to implement *static chain* 2329calling convention, as used by some language to implement closures or nested 2330functions. 2331 2332Query for this feature with ``__has_builtin(__builtin_call_with_static_chain)``. 2333 2334``__builtin_readcyclecounter`` 2335------------------------------ 2336 2337``__builtin_readcyclecounter`` is used to access the cycle counter register (or 2338a similar low-latency, high-accuracy clock) on those targets that support it. 2339 2340**Syntax**: 2341 2342.. code-block:: c++ 2343 2344 __builtin_readcyclecounter() 2345 2346**Example of Use**: 2347 2348.. code-block:: c++ 2349 2350 unsigned long long t0 = __builtin_readcyclecounter(); 2351 do_something(); 2352 unsigned long long t1 = __builtin_readcyclecounter(); 2353 unsigned long long cycles_to_do_something = t1 - t0; // assuming no overflow 2354 2355**Description**: 2356 2357The ``__builtin_readcyclecounter()`` builtin returns the cycle counter value, 2358which may be either global or process/thread-specific depending on the target. 2359As the backing counters often overflow quickly (on the order of seconds) this 2360should only be used for timing small intervals. When not supported by the 2361target, the return value is always zero. This builtin takes no arguments and 2362produces an unsigned long long result. 2363 2364Query for this feature with ``__has_builtin(__builtin_readcyclecounter)``. Note 2365that even if present, its use may depend on run-time privilege or other OS 2366controlled state. 2367 2368``__builtin_dump_struct`` 2369------------------------- 2370 2371**Syntax**: 2372 2373.. code-block:: c++ 2374 2375 __builtin_dump_struct(&some_struct, &some_printf_func); 2376 2377**Examples**: 2378 2379.. code-block:: c++ 2380 2381 struct S { 2382 int x, y; 2383 float f; 2384 struct T { 2385 int i; 2386 } t; 2387 }; 2388 2389 void func(struct S *s) { 2390 __builtin_dump_struct(s, &printf); 2391 } 2392 2393Example output: 2394 2395.. code-block:: none 2396 2397 struct S { 2398 int i : 100 2399 int j : 42 2400 float f : 3.14159 2401 struct T t : struct T { 2402 int i : 1997 2403 } 2404 } 2405 2406**Description**: 2407 2408The '``__builtin_dump_struct``' function is used to print the fields of a simple 2409structure and their values for debugging purposes. The builtin accepts a pointer 2410to a structure to dump the fields of, and a pointer to a formatted output 2411function whose signature must be: ``int (*)(const char *, ...)`` and must 2412support the format specifiers used by ``printf()``. 2413 2414.. _langext-__builtin_shufflevector: 2415 2416``__builtin_shufflevector`` 2417--------------------------- 2418 2419``__builtin_shufflevector`` is used to express generic vector 2420permutation/shuffle/swizzle operations. This builtin is also very important 2421for the implementation of various target-specific header files like 2422``<xmmintrin.h>``. 2423 2424**Syntax**: 2425 2426.. code-block:: c++ 2427 2428 __builtin_shufflevector(vec1, vec2, index1, index2, ...) 2429 2430**Examples**: 2431 2432.. code-block:: c++ 2433 2434 // identity operation - return 4-element vector v1. 2435 __builtin_shufflevector(v1, v1, 0, 1, 2, 3) 2436 2437 // "Splat" element 0 of V1 into a 4-element result. 2438 __builtin_shufflevector(V1, V1, 0, 0, 0, 0) 2439 2440 // Reverse 4-element vector V1. 2441 __builtin_shufflevector(V1, V1, 3, 2, 1, 0) 2442 2443 // Concatenate every other element of 4-element vectors V1 and V2. 2444 __builtin_shufflevector(V1, V2, 0, 2, 4, 6) 2445 2446 // Concatenate every other element of 8-element vectors V1 and V2. 2447 __builtin_shufflevector(V1, V2, 0, 2, 4, 6, 8, 10, 12, 14) 2448 2449 // Shuffle v1 with some elements being undefined 2450 __builtin_shufflevector(v1, v1, 3, -1, 1, -1) 2451 2452**Description**: 2453 2454The first two arguments to ``__builtin_shufflevector`` are vectors that have 2455the same element type. The remaining arguments are a list of integers that 2456specify the elements indices of the first two vectors that should be extracted 2457and returned in a new vector. These element indices are numbered sequentially 2458starting with the first vector, continuing into the second vector. Thus, if 2459``vec1`` is a 4-element vector, index 5 would refer to the second element of 2460``vec2``. An index of -1 can be used to indicate that the corresponding element 2461in the returned vector is a don't care and can be optimized by the backend. 2462 2463The result of ``__builtin_shufflevector`` is a vector with the same element 2464type as ``vec1``/``vec2`` but that has an element count equal to the number of 2465indices specified. 2466 2467Query for this feature with ``__has_builtin(__builtin_shufflevector)``. 2468 2469.. _langext-__builtin_convertvector: 2470 2471``__builtin_convertvector`` 2472--------------------------- 2473 2474``__builtin_convertvector`` is used to express generic vector 2475type-conversion operations. The input vector and the output vector 2476type must have the same number of elements. 2477 2478**Syntax**: 2479 2480.. code-block:: c++ 2481 2482 __builtin_convertvector(src_vec, dst_vec_type) 2483 2484**Examples**: 2485 2486.. code-block:: c++ 2487 2488 typedef double vector4double __attribute__((__vector_size__(32))); 2489 typedef float vector4float __attribute__((__vector_size__(16))); 2490 typedef short vector4short __attribute__((__vector_size__(8))); 2491 vector4float vf; vector4short vs; 2492 2493 // convert from a vector of 4 floats to a vector of 4 doubles. 2494 __builtin_convertvector(vf, vector4double) 2495 // equivalent to: 2496 (vector4double) { (double) vf[0], (double) vf[1], (double) vf[2], (double) vf[3] } 2497 2498 // convert from a vector of 4 shorts to a vector of 4 floats. 2499 __builtin_convertvector(vs, vector4float) 2500 // equivalent to: 2501 (vector4float) { (float) vs[0], (float) vs[1], (float) vs[2], (float) vs[3] } 2502 2503**Description**: 2504 2505The first argument to ``__builtin_convertvector`` is a vector, and the second 2506argument is a vector type with the same number of elements as the first 2507argument. 2508 2509The result of ``__builtin_convertvector`` is a vector with the same element 2510type as the second argument, with a value defined in terms of the action of a 2511C-style cast applied to each element of the first argument. 2512 2513Query for this feature with ``__has_builtin(__builtin_convertvector)``. 2514 2515``__builtin_bitreverse`` 2516------------------------ 2517 2518* ``__builtin_bitreverse8`` 2519* ``__builtin_bitreverse16`` 2520* ``__builtin_bitreverse32`` 2521* ``__builtin_bitreverse64`` 2522 2523**Syntax**: 2524 2525.. code-block:: c++ 2526 2527 __builtin_bitreverse32(x) 2528 2529**Examples**: 2530 2531.. code-block:: c++ 2532 2533 uint8_t rev_x = __builtin_bitreverse8(x); 2534 uint16_t rev_x = __builtin_bitreverse16(x); 2535 uint32_t rev_y = __builtin_bitreverse32(y); 2536 uint64_t rev_z = __builtin_bitreverse64(z); 2537 2538**Description**: 2539 2540The '``__builtin_bitreverse``' family of builtins is used to reverse 2541the bitpattern of an integer value; for example ``0b10110110`` becomes 2542``0b01101101``. These builtins can be used within constant expressions. 2543 2544``__builtin_rotateleft`` 2545------------------------ 2546 2547* ``__builtin_rotateleft8`` 2548* ``__builtin_rotateleft16`` 2549* ``__builtin_rotateleft32`` 2550* ``__builtin_rotateleft64`` 2551 2552**Syntax**: 2553 2554.. code-block:: c++ 2555 2556 __builtin_rotateleft32(x, y) 2557 2558**Examples**: 2559 2560.. code-block:: c++ 2561 2562 uint8_t rot_x = __builtin_rotateleft8(x, y); 2563 uint16_t rot_x = __builtin_rotateleft16(x, y); 2564 uint32_t rot_x = __builtin_rotateleft32(x, y); 2565 uint64_t rot_x = __builtin_rotateleft64(x, y); 2566 2567**Description**: 2568 2569The '``__builtin_rotateleft``' family of builtins is used to rotate 2570the bits in the first argument by the amount in the second argument. 2571For example, ``0b10000110`` rotated left by 11 becomes ``0b00110100``. 2572The shift value is treated as an unsigned amount modulo the size of 2573the arguments. Both arguments and the result have the bitwidth specified 2574by the name of the builtin. These builtins can be used within constant 2575expressions. 2576 2577``__builtin_rotateright`` 2578------------------------- 2579 2580* ``__builtin_rotateright8`` 2581* ``__builtin_rotateright16`` 2582* ``__builtin_rotateright32`` 2583* ``__builtin_rotateright64`` 2584 2585**Syntax**: 2586 2587.. code-block:: c++ 2588 2589 __builtin_rotateright32(x, y) 2590 2591**Examples**: 2592 2593.. code-block:: c++ 2594 2595 uint8_t rot_x = __builtin_rotateright8(x, y); 2596 uint16_t rot_x = __builtin_rotateright16(x, y); 2597 uint32_t rot_x = __builtin_rotateright32(x, y); 2598 uint64_t rot_x = __builtin_rotateright64(x, y); 2599 2600**Description**: 2601 2602The '``__builtin_rotateright``' family of builtins is used to rotate 2603the bits in the first argument by the amount in the second argument. 2604For example, ``0b10000110`` rotated right by 3 becomes ``0b11010000``. 2605The shift value is treated as an unsigned amount modulo the size of 2606the arguments. Both arguments and the result have the bitwidth specified 2607by the name of the builtin. These builtins can be used within constant 2608expressions. 2609 2610``__builtin_unreachable`` 2611------------------------- 2612 2613``__builtin_unreachable`` is used to indicate that a specific point in the 2614program cannot be reached, even if the compiler might otherwise think it can. 2615This is useful to improve optimization and eliminates certain warnings. For 2616example, without the ``__builtin_unreachable`` in the example below, the 2617compiler assumes that the inline asm can fall through and prints a "function 2618declared '``noreturn``' should not return" warning. 2619 2620**Syntax**: 2621 2622.. code-block:: c++ 2623 2624 __builtin_unreachable() 2625 2626**Example of use**: 2627 2628.. code-block:: c++ 2629 2630 void myabort(void) __attribute__((noreturn)); 2631 void myabort(void) { 2632 asm("int3"); 2633 __builtin_unreachable(); 2634 } 2635 2636**Description**: 2637 2638The ``__builtin_unreachable()`` builtin has completely undefined behavior. 2639Since it has undefined behavior, it is a statement that it is never reached and 2640the optimizer can take advantage of this to produce better code. This builtin 2641takes no arguments and produces a void result. 2642 2643Query for this feature with ``__has_builtin(__builtin_unreachable)``. 2644 2645``__builtin_unpredictable`` 2646--------------------------- 2647 2648``__builtin_unpredictable`` is used to indicate that a branch condition is 2649unpredictable by hardware mechanisms such as branch prediction logic. 2650 2651**Syntax**: 2652 2653.. code-block:: c++ 2654 2655 __builtin_unpredictable(long long) 2656 2657**Example of use**: 2658 2659.. code-block:: c++ 2660 2661 if (__builtin_unpredictable(x > 0)) { 2662 foo(); 2663 } 2664 2665**Description**: 2666 2667The ``__builtin_unpredictable()`` builtin is expected to be used with control 2668flow conditions such as in ``if`` and ``switch`` statements. 2669 2670Query for this feature with ``__has_builtin(__builtin_unpredictable)``. 2671 2672 2673``__builtin_expect`` 2674-------------------- 2675 2676``__builtin_expect`` is used to indicate that the value of an expression is 2677anticipated to be the same as a statically known result. 2678 2679**Syntax**: 2680 2681.. code-block:: c++ 2682 2683 long __builtin_expect(long expr, long val) 2684 2685**Example of use**: 2686 2687.. code-block:: c++ 2688 2689 if (__builtin_expect(x, 0)) { 2690 bar(); 2691 } 2692 2693**Description**: 2694 2695The ``__builtin_expect()`` builtin is typically used with control flow 2696conditions such as in ``if`` and ``switch`` statements to help branch 2697prediction. It means that its first argument ``expr`` is expected to take the 2698value of its second argument ``val``. It always returns ``expr``. 2699 2700Query for this feature with ``__has_builtin(__builtin_expect)``. 2701 2702``__builtin_expect_with_probability`` 2703------------------------------------- 2704 2705``__builtin_expect_with_probability`` is similar to ``__builtin_expect`` but it 2706takes a probability as third argument. 2707 2708**Syntax**: 2709 2710.. code-block:: c++ 2711 2712 long __builtin_expect_with_probability(long expr, long val, double p) 2713 2714**Example of use**: 2715 2716.. code-block:: c++ 2717 2718 if (__builtin_expect_with_probability(x, 0, .3)) { 2719 bar(); 2720 } 2721 2722**Description**: 2723 2724The ``__builtin_expect_with_probability()`` builtin is typically used with 2725control flow conditions such as in ``if`` and ``switch`` statements to help 2726branch prediction. It means that its first argument ``expr`` is expected to take 2727the value of its second argument ``val`` with probability ``p``. ``p`` must be 2728within ``[0.0 ; 1.0]`` bounds. This builtin always returns the value of ``expr``. 2729 2730Query for this feature with ``__has_builtin(__builtin_expect_with_probability)``. 2731 2732``__builtin_prefetch`` 2733---------------------- 2734 2735``__builtin_prefetch`` is used to communicate with the cache handler to bring 2736data into the cache before it gets used. 2737 2738**Syntax**: 2739 2740.. code-block:: c++ 2741 2742 void __builtin_prefetch(const void *addr, int rw=0, int locality=3) 2743 2744**Example of use**: 2745 2746.. code-block:: c++ 2747 2748 __builtin_prefetch(a + i); 2749 2750**Description**: 2751 2752The ``__builtin_prefetch(addr, rw, locality)`` builtin is expected to be used to 2753avoid cache misses when the developper has a good understanding of which data 2754are going to be used next. ``addr`` is the address that needs to be brought into 2755the cache. ``rw`` indicates the expected access mode: ``0`` for *read* and ``1`` 2756for *write*. In case of *read write* access, ``1`` is to be used. ``locality`` 2757indicates the expected persistance of data in cache, from ``0`` which means that 2758data can be discarded from cache after its next use to ``3`` which means that 2759data is going to be reused a lot once in cache. ``1`` and ``2`` provide 2760intermediate behavior between these two extremes. 2761 2762Query for this feature with ``__has_builtin(__builtin_prefetch)``. 2763 2764``__sync_swap`` 2765--------------- 2766 2767``__sync_swap`` is used to atomically swap integers or pointers in memory. 2768 2769**Syntax**: 2770 2771.. code-block:: c++ 2772 2773 type __sync_swap(type *ptr, type value, ...) 2774 2775**Example of Use**: 2776 2777.. code-block:: c++ 2778 2779 int old_value = __sync_swap(&value, new_value); 2780 2781**Description**: 2782 2783The ``__sync_swap()`` builtin extends the existing ``__sync_*()`` family of 2784atomic intrinsics to allow code to atomically swap the current value with the 2785new value. More importantly, it helps developers write more efficient and 2786correct code by avoiding expensive loops around 2787``__sync_bool_compare_and_swap()`` or relying on the platform specific 2788implementation details of ``__sync_lock_test_and_set()``. The 2789``__sync_swap()`` builtin is a full barrier. 2790 2791``__builtin_addressof`` 2792----------------------- 2793 2794``__builtin_addressof`` performs the functionality of the built-in ``&`` 2795operator, ignoring any ``operator&`` overload. This is useful in constant 2796expressions in C++11, where there is no other way to take the address of an 2797object that overloads ``operator&``. 2798 2799**Example of use**: 2800 2801.. code-block:: c++ 2802 2803 template<typename T> constexpr T *addressof(T &value) { 2804 return __builtin_addressof(value); 2805 } 2806 2807``__builtin_function_start`` 2808----------------------------- 2809 2810``__builtin_function_start`` returns the address of a function body. 2811 2812**Syntax**: 2813 2814.. code-block:: c++ 2815 2816 void *__builtin_function_start(function) 2817 2818**Example of use**: 2819 2820.. code-block:: c++ 2821 2822 void a() {} 2823 void *p = __builtin_function_start(a); 2824 2825 class A { 2826 public: 2827 void a(int n); 2828 void a(); 2829 }; 2830 2831 void A::a(int n) {} 2832 void A::a() {} 2833 2834 void *pa1 = __builtin_function_start((void(A::*)(int)) &A::a); 2835 void *pa2 = __builtin_function_start((void(A::*)()) &A::a); 2836 2837**Description**: 2838 2839The ``__builtin_function_start`` builtin accepts an argument that can be 2840constant-evaluated to a function, and returns the address of the function 2841body. This builtin is not supported on all targets. 2842 2843The returned pointer may differ from the normally taken function address 2844and is not safe to call. For example, with ``-fsanitize=cfi``, taking a 2845function address produces a callable pointer to a CFI jump table, while 2846``__builtin_function_start`` returns an address that fails 2847:doc:`cfi-icall<ControlFlowIntegrity>` checks. 2848 2849``__builtin_operator_new`` and ``__builtin_operator_delete`` 2850------------------------------------------------------------ 2851 2852A call to ``__builtin_operator_new(args)`` is exactly the same as a call to 2853``::operator new(args)``, except that it allows certain optimizations 2854that the C++ standard does not permit for a direct function call to 2855``::operator new`` (in particular, removing ``new`` / ``delete`` pairs and 2856merging allocations), and that the call is required to resolve to a 2857`replaceable global allocation function 2858<https://en.cppreference.com/w/cpp/memory/new/operator_new>`_. 2859 2860Likewise, ``__builtin_operator_delete`` is exactly the same as a call to 2861``::operator delete(args)``, except that it permits optimizations 2862and that the call is required to resolve to a 2863`replaceable global deallocation function 2864<https://en.cppreference.com/w/cpp/memory/new/operator_delete>`_. 2865 2866These builtins are intended for use in the implementation of ``std::allocator`` 2867and other similar allocation libraries, and are only available in C++. 2868 2869Query for this feature with ``__has_builtin(__builtin_operator_new)`` or 2870``__has_builtin(__builtin_operator_delete)``: 2871 2872 * If the value is at least ``201802L``, the builtins behave as described above. 2873 2874 * If the value is non-zero, the builtins may not support calling arbitrary 2875 replaceable global (de)allocation functions, but do support calling at least 2876 ``::operator new(size_t)`` and ``::operator delete(void*)``. 2877 2878``__builtin_preserve_access_index`` 2879----------------------------------- 2880 2881``__builtin_preserve_access_index`` specifies a code section where 2882array subscript access and structure/union member access are relocatable 2883under bpf compile-once run-everywhere framework. Debuginfo (typically 2884with ``-g``) is needed, otherwise, the compiler will exit with an error. 2885The return type for the intrinsic is the same as the type of the 2886argument. 2887 2888**Syntax**: 2889 2890.. code-block:: c 2891 2892 type __builtin_preserve_access_index(type arg) 2893 2894**Example of Use**: 2895 2896.. code-block:: c 2897 2898 struct t { 2899 int i; 2900 int j; 2901 union { 2902 int a; 2903 int b; 2904 } c[4]; 2905 }; 2906 struct t *v = ...; 2907 int *pb =__builtin_preserve_access_index(&v->c[3].b); 2908 __builtin_preserve_access_index(v->j); 2909 2910``__builtin_debugtrap`` 2911----------------------- 2912 2913``__builtin_debugtrap`` causes the program to stop its execution in such a way that a debugger can catch it. 2914 2915**Syntax**: 2916 2917.. code-block:: c++ 2918 2919 __builtin_debugtrap() 2920 2921**Description** 2922 2923``__builtin_debugtrap`` is lowered to the ` ``llvm.debugtrap`` <https://llvm.org/docs/LangRef.html#llvm-debugtrap-intrinsic>`_ builtin. It should have the same effect as setting a breakpoint on the line where the builtin is called. 2924 2925Query for this feature with ``__has_builtin(__builtin_debugtrap)``. 2926 2927 2928``__builtin_trap`` 2929------------------ 2930 2931``__builtin_trap`` causes the program to stop its execution abnormally. 2932 2933**Syntax**: 2934 2935.. code-block:: c++ 2936 2937 __builtin_trap() 2938 2939**Description** 2940 2941``__builtin_trap`` is lowered to the ` ``llvm.trap`` <https://llvm.org/docs/LangRef.html#llvm-trap-intrinsic>`_ builtin. 2942 2943Query for this feature with ``__has_builtin(__builtin_trap)``. 2944 2945 2946``__builtin_sycl_unique_stable_name`` 2947------------------------------------- 2948 2949``__builtin_sycl_unique_stable_name()`` is a builtin that takes a type and 2950produces a string literal containing a unique name for the type that is stable 2951across split compilations, mainly to support SYCL/Data Parallel C++ language. 2952 2953In cases where the split compilation needs to share a unique token for a type 2954across the boundary (such as in an offloading situation), this name can be used 2955for lookup purposes, such as in the SYCL Integration Header. 2956 2957The value of this builtin is computed entirely at compile time, so it can be 2958used in constant expressions. This value encodes lambda functions based on a 2959stable numbering order in which they appear in their local declaration contexts. 2960Once this builtin is evaluated in a constexpr context, it is erroneous to use 2961it in an instantiation which changes its value. 2962 2963In order to produce the unique name, the current implementation of the bultin 2964uses Itanium mangling even if the host compilation uses a different name 2965mangling scheme at runtime. The mangler marks all the lambdas required to name 2966the SYCL kernel and emits a stable local ordering of the respective lambdas. 2967The resulting pattern is demanglable. When non-lambda types are passed to the 2968builtin, the mangler emits their usual pattern without any special treatment. 2969 2970**Syntax**: 2971 2972.. code-block:: c 2973 2974 // Computes a unique stable name for the given type. 2975 constexpr const char * __builtin_sycl_unique_stable_name( type-id ); 2976 2977Multiprecision Arithmetic Builtins 2978---------------------------------- 2979 2980Clang provides a set of builtins which expose multiprecision arithmetic in a 2981manner amenable to C. They all have the following form: 2982 2983.. code-block:: c 2984 2985 unsigned x = ..., y = ..., carryin = ..., carryout; 2986 unsigned sum = __builtin_addc(x, y, carryin, &carryout); 2987 2988Thus one can form a multiprecision addition chain in the following manner: 2989 2990.. code-block:: c 2991 2992 unsigned *x, *y, *z, carryin=0, carryout; 2993 z[0] = __builtin_addc(x[0], y[0], carryin, &carryout); 2994 carryin = carryout; 2995 z[1] = __builtin_addc(x[1], y[1], carryin, &carryout); 2996 carryin = carryout; 2997 z[2] = __builtin_addc(x[2], y[2], carryin, &carryout); 2998 carryin = carryout; 2999 z[3] = __builtin_addc(x[3], y[3], carryin, &carryout); 3000 3001The complete list of builtins are: 3002 3003.. code-block:: c 3004 3005 unsigned char __builtin_addcb (unsigned char x, unsigned char y, unsigned char carryin, unsigned char *carryout); 3006 unsigned short __builtin_addcs (unsigned short x, unsigned short y, unsigned short carryin, unsigned short *carryout); 3007 unsigned __builtin_addc (unsigned x, unsigned y, unsigned carryin, unsigned *carryout); 3008 unsigned long __builtin_addcl (unsigned long x, unsigned long y, unsigned long carryin, unsigned long *carryout); 3009 unsigned long long __builtin_addcll(unsigned long long x, unsigned long long y, unsigned long long carryin, unsigned long long *carryout); 3010 unsigned char __builtin_subcb (unsigned char x, unsigned char y, unsigned char carryin, unsigned char *carryout); 3011 unsigned short __builtin_subcs (unsigned short x, unsigned short y, unsigned short carryin, unsigned short *carryout); 3012 unsigned __builtin_subc (unsigned x, unsigned y, unsigned carryin, unsigned *carryout); 3013 unsigned long __builtin_subcl (unsigned long x, unsigned long y, unsigned long carryin, unsigned long *carryout); 3014 unsigned long long __builtin_subcll(unsigned long long x, unsigned long long y, unsigned long long carryin, unsigned long long *carryout); 3015 3016Checked Arithmetic Builtins 3017--------------------------- 3018 3019Clang provides a set of builtins that implement checked arithmetic for security 3020critical applications in a manner that is fast and easily expressible in C. As 3021an example of their usage: 3022 3023.. code-block:: c 3024 3025 errorcode_t security_critical_application(...) { 3026 unsigned x, y, result; 3027 ... 3028 if (__builtin_mul_overflow(x, y, &result)) 3029 return kErrorCodeHackers; 3030 ... 3031 use_multiply(result); 3032 ... 3033 } 3034 3035Clang provides the following checked arithmetic builtins: 3036 3037.. code-block:: c 3038 3039 bool __builtin_add_overflow (type1 x, type2 y, type3 *sum); 3040 bool __builtin_sub_overflow (type1 x, type2 y, type3 *diff); 3041 bool __builtin_mul_overflow (type1 x, type2 y, type3 *prod); 3042 bool __builtin_uadd_overflow (unsigned x, unsigned y, unsigned *sum); 3043 bool __builtin_uaddl_overflow (unsigned long x, unsigned long y, unsigned long *sum); 3044 bool __builtin_uaddll_overflow(unsigned long long x, unsigned long long y, unsigned long long *sum); 3045 bool __builtin_usub_overflow (unsigned x, unsigned y, unsigned *diff); 3046 bool __builtin_usubl_overflow (unsigned long x, unsigned long y, unsigned long *diff); 3047 bool __builtin_usubll_overflow(unsigned long long x, unsigned long long y, unsigned long long *diff); 3048 bool __builtin_umul_overflow (unsigned x, unsigned y, unsigned *prod); 3049 bool __builtin_umull_overflow (unsigned long x, unsigned long y, unsigned long *prod); 3050 bool __builtin_umulll_overflow(unsigned long long x, unsigned long long y, unsigned long long *prod); 3051 bool __builtin_sadd_overflow (int x, int y, int *sum); 3052 bool __builtin_saddl_overflow (long x, long y, long *sum); 3053 bool __builtin_saddll_overflow(long long x, long long y, long long *sum); 3054 bool __builtin_ssub_overflow (int x, int y, int *diff); 3055 bool __builtin_ssubl_overflow (long x, long y, long *diff); 3056 bool __builtin_ssubll_overflow(long long x, long long y, long long *diff); 3057 bool __builtin_smul_overflow (int x, int y, int *prod); 3058 bool __builtin_smull_overflow (long x, long y, long *prod); 3059 bool __builtin_smulll_overflow(long long x, long long y, long long *prod); 3060 3061Each builtin performs the specified mathematical operation on the 3062first two arguments and stores the result in the third argument. If 3063possible, the result will be equal to mathematically-correct result 3064and the builtin will return 0. Otherwise, the builtin will return 30651 and the result will be equal to the unique value that is equivalent 3066to the mathematically-correct result modulo two raised to the *k* 3067power, where *k* is the number of bits in the result type. The 3068behavior of these builtins is well-defined for all argument values. 3069 3070The first three builtins work generically for operands of any integer type, 3071including boolean types. The operands need not have the same type as each 3072other, or as the result. The other builtins may implicitly promote or 3073convert their operands before performing the operation. 3074 3075Query for this feature with ``__has_builtin(__builtin_add_overflow)``, etc. 3076 3077Floating point builtins 3078--------------------------------------- 3079 3080``__builtin_canonicalize`` 3081-------------------------- 3082 3083.. code-block:: c 3084 3085 double __builtin_canonicalize(double); 3086 float __builtin_canonicalizef(float); 3087 long double__builtin_canonicalizel(long double); 3088 3089Returns the platform specific canonical encoding of a floating point 3090number. This canonicalization is useful for implementing certain 3091numeric primitives such as frexp. See `LLVM canonicalize intrinsic 3092<https://llvm.org/docs/LangRef.html#llvm-canonicalize-intrinsic>`_ for 3093more information on the semantics. 3094 3095String builtins 3096--------------- 3097 3098Clang provides constant expression evaluation support for builtins forms of 3099the following functions from the C standard library headers 3100``<string.h>`` and ``<wchar.h>``: 3101 3102* ``memchr`` 3103* ``memcmp`` (and its deprecated BSD / POSIX alias ``bcmp``) 3104* ``strchr`` 3105* ``strcmp`` 3106* ``strlen`` 3107* ``strncmp`` 3108* ``wcschr`` 3109* ``wcscmp`` 3110* ``wcslen`` 3111* ``wcsncmp`` 3112* ``wmemchr`` 3113* ``wmemcmp`` 3114 3115In each case, the builtin form has the name of the C library function prefixed 3116by ``__builtin_``. Example: 3117 3118.. code-block:: c 3119 3120 void *p = __builtin_memchr("foobar", 'b', 5); 3121 3122In addition to the above, one further builtin is provided: 3123 3124.. code-block:: c 3125 3126 char *__builtin_char_memchr(const char *haystack, int needle, size_t size); 3127 3128``__builtin_char_memchr(a, b, c)`` is identical to 3129``(char*)__builtin_memchr(a, b, c)`` except that its use is permitted within 3130constant expressions in C++11 onwards (where a cast from ``void*`` to ``char*`` 3131is disallowed in general). 3132 3133Constant evaluation support for the ``__builtin_mem*`` functions is provided 3134only for arrays of ``char``, ``signed char``, ``unsigned char``, or ``char8_t``, 3135despite these functions accepting an argument of type ``const void*``. 3136 3137Support for constant expression evaluation for the above builtins can be detected 3138with ``__has_feature(cxx_constexpr_string_builtins)``. 3139 3140Memory builtins 3141--------------- 3142 3143Clang provides constant expression evaluation support for builtin forms of the 3144following functions from the C standard library headers 3145``<string.h>`` and ``<wchar.h>``: 3146 3147* ``memcpy`` 3148* ``memmove`` 3149* ``wmemcpy`` 3150* ``wmemmove`` 3151 3152In each case, the builtin form has the name of the C library function prefixed 3153by ``__builtin_``. 3154 3155Constant evaluation support is only provided when the source and destination 3156are pointers to arrays with the same trivially copyable element type, and the 3157given size is an exact multiple of the element size that is no greater than 3158the number of elements accessible through the source and destination operands. 3159 3160Guaranteed inlined copy 3161^^^^^^^^^^^^^^^^^^^^^^^ 3162 3163.. code-block:: c 3164 3165 void __builtin_memcpy_inline(void *dst, const void *src, size_t size); 3166 3167 3168``__builtin_memcpy_inline`` has been designed as a building block for efficient 3169``memcpy`` implementations. It is identical to ``__builtin_memcpy`` but also 3170guarantees not to call any external functions. See LLVM IR `llvm.memcpy.inline 3171<https://llvm.org/docs/LangRef.html#llvm-memcpy-inline-intrinsic>`_ intrinsic 3172for more information. 3173 3174This is useful to implement a custom version of ``memcpy``, implement a 3175``libc`` memcpy or work around the absence of a ``libc``. 3176 3177Note that the `size` argument must be a compile time constant. 3178 3179Note that this intrinsic cannot yet be called in a ``constexpr`` context. 3180 3181 3182Atomic Min/Max builtins with memory ordering 3183-------------------------------------------- 3184 3185There are two atomic builtins with min/max in-memory comparison and swap. 3186The syntax and semantics are similar to GCC-compatible __atomic_* builtins. 3187 3188* ``__atomic_fetch_min`` 3189* ``__atomic_fetch_max`` 3190 3191The builtins work with signed and unsigned integers and require to specify memory ordering. 3192The return value is the original value that was stored in memory before comparison. 3193 3194Example: 3195 3196.. code-block:: c 3197 3198 unsigned int val = __atomic_fetch_min(unsigned int *pi, unsigned int ui, __ATOMIC_RELAXED); 3199 3200The third argument is one of the memory ordering specifiers ``__ATOMIC_RELAXED``, 3201``__ATOMIC_CONSUME``, ``__ATOMIC_ACQUIRE``, ``__ATOMIC_RELEASE``, 3202``__ATOMIC_ACQ_REL``, or ``__ATOMIC_SEQ_CST`` following C++11 memory model semantics. 3203 3204In terms or aquire-release ordering barriers these two operations are always 3205considered as operations with *load-store* semantics, even when the original value 3206is not actually modified after comparison. 3207 3208.. _langext-__c11_atomic: 3209 3210__c11_atomic builtins 3211--------------------- 3212 3213Clang provides a set of builtins which are intended to be used to implement 3214C11's ``<stdatomic.h>`` header. These builtins provide the semantics of the 3215``_explicit`` form of the corresponding C11 operation, and are named with a 3216``__c11_`` prefix. The supported operations, and the differences from 3217the corresponding C11 operations, are: 3218 3219* ``__c11_atomic_init`` 3220* ``__c11_atomic_thread_fence`` 3221* ``__c11_atomic_signal_fence`` 3222* ``__c11_atomic_is_lock_free`` (The argument is the size of the 3223 ``_Atomic(...)`` object, instead of its address) 3224* ``__c11_atomic_store`` 3225* ``__c11_atomic_load`` 3226* ``__c11_atomic_exchange`` 3227* ``__c11_atomic_compare_exchange_strong`` 3228* ``__c11_atomic_compare_exchange_weak`` 3229* ``__c11_atomic_fetch_add`` 3230* ``__c11_atomic_fetch_sub`` 3231* ``__c11_atomic_fetch_and`` 3232* ``__c11_atomic_fetch_or`` 3233* ``__c11_atomic_fetch_xor`` 3234* ``__c11_atomic_fetch_nand`` (Nand is not presented in ``<stdatomic.h>``) 3235* ``__c11_atomic_fetch_max`` 3236* ``__c11_atomic_fetch_min`` 3237 3238The macros ``__ATOMIC_RELAXED``, ``__ATOMIC_CONSUME``, ``__ATOMIC_ACQUIRE``, 3239``__ATOMIC_RELEASE``, ``__ATOMIC_ACQ_REL``, and ``__ATOMIC_SEQ_CST`` are 3240provided, with values corresponding to the enumerators of C11's 3241``memory_order`` enumeration. 3242 3243(Note that Clang additionally provides GCC-compatible ``__atomic_*`` 3244builtins and OpenCL 2.0 ``__opencl_atomic_*`` builtins. The OpenCL 2.0 3245atomic builtins are an explicit form of the corresponding OpenCL 2.0 3246builtin function, and are named with a ``__opencl_`` prefix. The macros 3247``__OPENCL_MEMORY_SCOPE_WORK_ITEM``, ``__OPENCL_MEMORY_SCOPE_WORK_GROUP``, 3248``__OPENCL_MEMORY_SCOPE_DEVICE``, ``__OPENCL_MEMORY_SCOPE_ALL_SVM_DEVICES``, 3249and ``__OPENCL_MEMORY_SCOPE_SUB_GROUP`` are provided, with values 3250corresponding to the enumerators of OpenCL's ``memory_scope`` enumeration.) 3251 3252Low-level ARM exclusive memory builtins 3253--------------------------------------- 3254 3255Clang provides overloaded builtins giving direct access to the three key ARM 3256instructions for implementing atomic operations. 3257 3258.. code-block:: c 3259 3260 T __builtin_arm_ldrex(const volatile T *addr); 3261 T __builtin_arm_ldaex(const volatile T *addr); 3262 int __builtin_arm_strex(T val, volatile T *addr); 3263 int __builtin_arm_stlex(T val, volatile T *addr); 3264 void __builtin_arm_clrex(void); 3265 3266The types ``T`` currently supported are: 3267 3268* Integer types with width at most 64 bits (or 128 bits on AArch64). 3269* Floating-point types 3270* Pointer types. 3271 3272Note that the compiler does not guarantee it will not insert stores which clear 3273the exclusive monitor in between an ``ldrex`` type operation and its paired 3274``strex``. In practice this is only usually a risk when the extra store is on 3275the same cache line as the variable being modified and Clang will only insert 3276stack stores on its own, so it is best not to use these operations on variables 3277with automatic storage duration. 3278 3279Also, loads and stores may be implicit in code written between the ``ldrex`` and 3280``strex``. Clang will not necessarily mitigate the effects of these either, so 3281care should be exercised. 3282 3283For these reasons the higher level atomic primitives should be preferred where 3284possible. 3285 3286Non-temporal load/store builtins 3287-------------------------------- 3288 3289Clang provides overloaded builtins allowing generation of non-temporal memory 3290accesses. 3291 3292.. code-block:: c 3293 3294 T __builtin_nontemporal_load(T *addr); 3295 void __builtin_nontemporal_store(T value, T *addr); 3296 3297The types ``T`` currently supported are: 3298 3299* Integer types. 3300* Floating-point types. 3301* Vector types. 3302 3303Note that the compiler does not guarantee that non-temporal loads or stores 3304will be used. 3305 3306C++ Coroutines support builtins 3307-------------------------------- 3308 3309.. warning:: 3310 This is a work in progress. Compatibility across Clang/LLVM releases is not 3311 guaranteed. 3312 3313Clang provides experimental builtins to support C++ Coroutines as defined by 3314https://wg21.link/P0057. The following four are intended to be used by the 3315standard library to implement the ``std::coroutine_handle`` type. 3316 3317**Syntax**: 3318 3319.. code-block:: c 3320 3321 void __builtin_coro_resume(void *addr); 3322 void __builtin_coro_destroy(void *addr); 3323 bool __builtin_coro_done(void *addr); 3324 void *__builtin_coro_promise(void *addr, int alignment, bool from_promise) 3325 3326**Example of use**: 3327 3328.. code-block:: c++ 3329 3330 template <> struct coroutine_handle<void> { 3331 void resume() const { __builtin_coro_resume(ptr); } 3332 void destroy() const { __builtin_coro_destroy(ptr); } 3333 bool done() const { return __builtin_coro_done(ptr); } 3334 // ... 3335 protected: 3336 void *ptr; 3337 }; 3338 3339 template <typename Promise> struct coroutine_handle : coroutine_handle<> { 3340 // ... 3341 Promise &promise() const { 3342 return *reinterpret_cast<Promise *>( 3343 __builtin_coro_promise(ptr, alignof(Promise), /*from-promise=*/false)); 3344 } 3345 static coroutine_handle from_promise(Promise &promise) { 3346 coroutine_handle p; 3347 p.ptr = __builtin_coro_promise(&promise, alignof(Promise), 3348 /*from-promise=*/true); 3349 return p; 3350 } 3351 }; 3352 3353 3354Other coroutine builtins are either for internal clang use or for use during 3355development of the coroutine feature. See `Coroutines in LLVM 3356<https://llvm.org/docs/Coroutines.html#intrinsics>`_ for 3357more information on their semantics. Note that builtins matching the intrinsics 3358that take token as the first parameter (llvm.coro.begin, llvm.coro.alloc, 3359llvm.coro.free and llvm.coro.suspend) omit the token parameter and fill it to 3360an appropriate value during the emission. 3361 3362**Syntax**: 3363 3364.. code-block:: c 3365 3366 size_t __builtin_coro_size() 3367 void *__builtin_coro_frame() 3368 void *__builtin_coro_free(void *coro_frame) 3369 3370 void *__builtin_coro_id(int align, void *promise, void *fnaddr, void *parts) 3371 bool __builtin_coro_alloc() 3372 void *__builtin_coro_begin(void *memory) 3373 void __builtin_coro_end(void *coro_frame, bool unwind) 3374 char __builtin_coro_suspend(bool final) 3375 3376Note that there is no builtin matching the `llvm.coro.save` intrinsic. LLVM 3377automatically will insert one if the first argument to `llvm.coro.suspend` is 3378token `none`. If a user calls `__builin_suspend`, clang will insert `token none` 3379as the first argument to the intrinsic. 3380 3381Source location builtins 3382------------------------ 3383 3384Clang provides experimental builtins to support C++ standard library implementation 3385of ``std::experimental::source_location`` as specified in http://wg21.link/N4600. 3386With the exception of ``__builtin_COLUMN``, these builtins are also implemented by 3387GCC. 3388 3389**Syntax**: 3390 3391.. code-block:: c 3392 3393 const char *__builtin_FILE(); 3394 const char *__builtin_FUNCTION(); 3395 unsigned __builtin_LINE(); 3396 unsigned __builtin_COLUMN(); // Clang only 3397 3398**Example of use**: 3399 3400.. code-block:: c++ 3401 3402 void my_assert(bool pred, int line = __builtin_LINE(), // Captures line of caller 3403 const char* file = __builtin_FILE(), 3404 const char* function = __builtin_FUNCTION()) { 3405 if (pred) return; 3406 printf("%s:%d assertion failed in function %s\n", file, line, function); 3407 std::abort(); 3408 } 3409 3410 struct MyAggregateType { 3411 int x; 3412 int line = __builtin_LINE(); // captures line where aggregate initialization occurs 3413 }; 3414 static_assert(MyAggregateType{42}.line == __LINE__); 3415 3416 struct MyClassType { 3417 int line = __builtin_LINE(); // captures line of the constructor used during initialization 3418 constexpr MyClassType(int) { assert(line == __LINE__); } 3419 }; 3420 3421**Description**: 3422 3423The builtins ``__builtin_LINE``, ``__builtin_FUNCTION``, and ``__builtin_FILE`` return 3424the values, at the "invocation point", for ``__LINE__``, ``__FUNCTION__``, and 3425``__FILE__`` respectively. These builtins are constant expressions. 3426 3427When the builtins appear as part of a default function argument the invocation 3428point is the location of the caller. When the builtins appear as part of a 3429default member initializer, the invocation point is the location of the 3430constructor or aggregate initialization used to create the object. Otherwise 3431the invocation point is the same as the location of the builtin. 3432 3433When the invocation point of ``__builtin_FUNCTION`` is not a function scope the 3434empty string is returned. 3435 3436Alignment builtins 3437------------------ 3438Clang provides builtins to support checking and adjusting alignment of 3439pointers and integers. 3440These builtins can be used to avoid relying on implementation-defined behavior 3441of arithmetic on integers derived from pointers. 3442Additionally, these builtins retain type information and, unlike bitwise 3443arithmetic, they can perform semantic checking on the alignment value. 3444 3445**Syntax**: 3446 3447.. code-block:: c 3448 3449 Type __builtin_align_up(Type value, size_t alignment); 3450 Type __builtin_align_down(Type value, size_t alignment); 3451 bool __builtin_is_aligned(Type value, size_t alignment); 3452 3453 3454**Example of use**: 3455 3456.. code-block:: c++ 3457 3458 char* global_alloc_buffer; 3459 void* my_aligned_allocator(size_t alloc_size, size_t alignment) { 3460 char* result = __builtin_align_up(global_alloc_buffer, alignment); 3461 // result now contains the value of global_alloc_buffer rounded up to the 3462 // next multiple of alignment. 3463 global_alloc_buffer = result + alloc_size; 3464 return result; 3465 } 3466 3467 void* get_start_of_page(void* ptr) { 3468 return __builtin_align_down(ptr, PAGE_SIZE); 3469 } 3470 3471 void example(char* buffer) { 3472 if (__builtin_is_aligned(buffer, 64)) { 3473 do_fast_aligned_copy(buffer); 3474 } else { 3475 do_unaligned_copy(buffer); 3476 } 3477 } 3478 3479 // In addition to pointers, the builtins can also be used on integer types 3480 // and are evaluatable inside constant expressions. 3481 static_assert(__builtin_align_up(123, 64) == 128, ""); 3482 static_assert(__builtin_align_down(123u, 64) == 64u, ""); 3483 static_assert(!__builtin_is_aligned(123, 64), ""); 3484 3485 3486**Description**: 3487 3488The builtins ``__builtin_align_up``, ``__builtin_align_down``, return their 3489first argument aligned up/down to the next multiple of the second argument. 3490If the value is already sufficiently aligned, it is returned unchanged. 3491The builtin ``__builtin_is_aligned`` returns whether the first argument is 3492aligned to a multiple of the second argument. 3493All of these builtins expect the alignment to be expressed as a number of bytes. 3494 3495These builtins can be used for all integer types as well as (non-function) 3496pointer types. For pointer types, these builtins operate in terms of the integer 3497address of the pointer and return a new pointer of the same type (including 3498qualifiers such as ``const``) with an adjusted address. 3499When aligning pointers up or down, the resulting value must be within the same 3500underlying allocation or one past the end (see C17 6.5.6p8, C++ [expr.add]). 3501This means that arbitrary integer values stored in pointer-type variables must 3502not be passed to these builtins. For those use cases, the builtins can still be 3503used, but the operation must be performed on the pointer cast to ``uintptr_t``. 3504 3505If Clang can determine that the alignment is not a power of two at compile time, 3506it will result in a compilation failure. If the alignment argument is not a 3507power of two at run time, the behavior of these builtins is undefined. 3508 3509Non-standard C++11 Attributes 3510============================= 3511 3512Clang's non-standard C++11 attributes live in the ``clang`` attribute 3513namespace. 3514 3515Clang supports GCC's ``gnu`` attribute namespace. All GCC attributes which 3516are accepted with the ``__attribute__((foo))`` syntax are also accepted as 3517``[[gnu::foo]]``. This only extends to attributes which are specified by GCC 3518(see the list of `GCC function attributes 3519<https://gcc.gnu.org/onlinedocs/gcc/Function-Attributes.html>`_, `GCC variable 3520attributes <https://gcc.gnu.org/onlinedocs/gcc/Variable-Attributes.html>`_, and 3521`GCC type attributes 3522<https://gcc.gnu.org/onlinedocs/gcc/Type-Attributes.html>`_). As with the GCC 3523implementation, these attributes must appertain to the *declarator-id* in a 3524declaration, which means they must go either at the start of the declaration or 3525immediately after the name being declared. 3526 3527For example, this applies the GNU ``unused`` attribute to ``a`` and ``f``, and 3528also applies the GNU ``noreturn`` attribute to ``f``. 3529 3530.. code-block:: c++ 3531 3532 [[gnu::unused]] int a, f [[gnu::noreturn]] (); 3533 3534Target-Specific Extensions 3535========================== 3536 3537Clang supports some language features conditionally on some targets. 3538 3539ARM/AArch64 Language Extensions 3540------------------------------- 3541 3542Memory Barrier Intrinsics 3543^^^^^^^^^^^^^^^^^^^^^^^^^ 3544Clang implements the ``__dmb``, ``__dsb`` and ``__isb`` intrinsics as defined 3545in the `ARM C Language Extensions Release 2.0 3546<http://infocenter.arm.com/help/topic/com.arm.doc.ihi0053c/IHI0053C_acle_2_0.pdf>`_. 3547Note that these intrinsics are implemented as motion barriers that block 3548reordering of memory accesses and side effect instructions. Other instructions 3549like simple arithmetic may be reordered around the intrinsic. If you expect to 3550have no reordering at all, use inline assembly instead. 3551 3552X86/X86-64 Language Extensions 3553------------------------------ 3554 3555The X86 backend has these language extensions: 3556 3557Memory references to specified segments 3558^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 3559 3560Annotating a pointer with address space #256 causes it to be code generated 3561relative to the X86 GS segment register, address space #257 causes it to be 3562relative to the X86 FS segment, and address space #258 causes it to be 3563relative to the X86 SS segment. Note that this is a very very low-level 3564feature that should only be used if you know what you're doing (for example in 3565an OS kernel). 3566 3567Here is an example: 3568 3569.. code-block:: c++ 3570 3571 #define GS_RELATIVE __attribute__((address_space(256))) 3572 int foo(int GS_RELATIVE *P) { 3573 return *P; 3574 } 3575 3576Which compiles to (on X86-32): 3577 3578.. code-block:: gas 3579 3580 _foo: 3581 movl 4(%esp), %eax 3582 movl %gs:(%eax), %eax 3583 ret 3584 3585You can also use the GCC compatibility macros ``__seg_fs`` and ``__seg_gs`` for 3586the same purpose. The preprocessor symbols ``__SEG_FS`` and ``__SEG_GS`` 3587indicate their support. 3588 3589PowerPC Language Extensions 3590--------------------------- 3591 3592Set the Floating Point Rounding Mode 3593^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 3594PowerPC64/PowerPC64le supports the builtin function ``__builtin_setrnd`` to set 3595the floating point rounding mode. This function will use the least significant 3596two bits of integer argument to set the floating point rounding mode. 3597 3598.. code-block:: c++ 3599 3600 double __builtin_setrnd(int mode); 3601 3602The effective values for mode are: 3603 3604 - 0 - round to nearest 3605 - 1 - round to zero 3606 - 2 - round to +infinity 3607 - 3 - round to -infinity 3608 3609Note that the mode argument will modulo 4, so if the integer argument is greater 3610than 3, it will only use the least significant two bits of the mode. 3611Namely, ``__builtin_setrnd(102))`` is equal to ``__builtin_setrnd(2)``. 3612 3613PowerPC cache builtins 3614^^^^^^^^^^^^^^^^^^^^^^ 3615 3616The PowerPC architecture specifies instructions implementing cache operations. 3617Clang provides builtins that give direct programmer access to these cache 3618instructions. 3619 3620Currently the following builtins are implemented in clang: 3621 3622``__builtin_dcbf`` copies the contents of a modified block from the data cache 3623to main memory and flushes the copy from the data cache. 3624 3625**Syntax**: 3626 3627.. code-block:: c 3628 3629 void __dcbf(const void* addr); /* Data Cache Block Flush */ 3630 3631**Example of Use**: 3632 3633.. code-block:: c 3634 3635 int a = 1; 3636 __builtin_dcbf (&a); 3637 3638Extensions for Static Analysis 3639============================== 3640 3641Clang supports additional attributes that are useful for documenting program 3642invariants and rules for static analysis tools, such as the `Clang Static 3643Analyzer <https://clang-analyzer.llvm.org/>`_. These attributes are documented 3644in the analyzer's `list of source-level annotations 3645<https://clang-analyzer.llvm.org/annotations.html>`_. 3646 3647 3648Extensions for Dynamic Analysis 3649=============================== 3650 3651Use ``__has_feature(address_sanitizer)`` to check if the code is being built 3652with :doc:`AddressSanitizer`. 3653 3654Use ``__has_feature(thread_sanitizer)`` to check if the code is being built 3655with :doc:`ThreadSanitizer`. 3656 3657Use ``__has_feature(memory_sanitizer)`` to check if the code is being built 3658with :doc:`MemorySanitizer`. 3659 3660Use ``__has_feature(dataflow_sanitizer)`` to check if the code is being built 3661with :doc:`DataFlowSanitizer`. 3662 3663Use ``__has_feature(safe_stack)`` to check if the code is being built 3664with :doc:`SafeStack`. 3665 3666 3667Extensions for selectively disabling optimization 3668================================================= 3669 3670Clang provides a mechanism for selectively disabling optimizations in functions 3671and methods. 3672 3673To disable optimizations in a single function definition, the GNU-style or C++11 3674non-standard attribute ``optnone`` can be used. 3675 3676.. code-block:: c++ 3677 3678 // The following functions will not be optimized. 3679 // GNU-style attribute 3680 __attribute__((optnone)) int foo() { 3681 // ... code 3682 } 3683 // C++11 attribute 3684 [[clang::optnone]] int bar() { 3685 // ... code 3686 } 3687 3688To facilitate disabling optimization for a range of function definitions, a 3689range-based pragma is provided. Its syntax is ``#pragma clang optimize`` 3690followed by ``off`` or ``on``. 3691 3692All function definitions in the region between an ``off`` and the following 3693``on`` will be decorated with the ``optnone`` attribute unless doing so would 3694conflict with explicit attributes already present on the function (e.g. the 3695ones that control inlining). 3696 3697.. code-block:: c++ 3698 3699 #pragma clang optimize off 3700 // This function will be decorated with optnone. 3701 int foo() { 3702 // ... code 3703 } 3704 3705 // optnone conflicts with always_inline, so bar() will not be decorated. 3706 __attribute__((always_inline)) int bar() { 3707 // ... code 3708 } 3709 #pragma clang optimize on 3710 3711If no ``on`` is found to close an ``off`` region, the end of the region is the 3712end of the compilation unit. 3713 3714Note that a stray ``#pragma clang optimize on`` does not selectively enable 3715additional optimizations when compiling at low optimization levels. This feature 3716can only be used to selectively disable optimizations. 3717 3718The pragma has an effect on functions only at the point of their definition; for 3719function templates, this means that the state of the pragma at the point of an 3720instantiation is not necessarily relevant. Consider the following example: 3721 3722.. code-block:: c++ 3723 3724 template<typename T> T twice(T t) { 3725 return 2 * t; 3726 } 3727 3728 #pragma clang optimize off 3729 template<typename T> T thrice(T t) { 3730 return 3 * t; 3731 } 3732 3733 int container(int a, int b) { 3734 return twice(a) + thrice(b); 3735 } 3736 #pragma clang optimize on 3737 3738In this example, the definition of the template function ``twice`` is outside 3739the pragma region, whereas the definition of ``thrice`` is inside the region. 3740The ``container`` function is also in the region and will not be optimized, but 3741it causes the instantiation of ``twice`` and ``thrice`` with an ``int`` type; of 3742these two instantiations, ``twice`` will be optimized (because its definition 3743was outside the region) and ``thrice`` will not be optimized. 3744 3745Extensions for loop hint optimizations 3746====================================== 3747 3748The ``#pragma clang loop`` directive is used to specify hints for optimizing the 3749subsequent for, while, do-while, or c++11 range-based for loop. The directive 3750provides options for vectorization, interleaving, predication, unrolling and 3751distribution. Loop hints can be specified before any loop and will be ignored if 3752the optimization is not safe to apply. 3753 3754There are loop hints that control transformations (e.g. vectorization, loop 3755unrolling) and there are loop hints that set transformation options (e.g. 3756``vectorize_width``, ``unroll_count``). Pragmas setting transformation options 3757imply the transformation is enabled, as if it was enabled via the corresponding 3758transformation pragma (e.g. ``vectorize(enable)``). If the transformation is 3759disabled (e.g. ``vectorize(disable)``), that takes precedence over 3760transformations option pragmas implying that transformation. 3761 3762Vectorization, Interleaving, and Predication 3763-------------------------------------------- 3764 3765A vectorized loop performs multiple iterations of the original loop 3766in parallel using vector instructions. The instruction set of the target 3767processor determines which vector instructions are available and their vector 3768widths. This restricts the types of loops that can be vectorized. The vectorizer 3769automatically determines if the loop is safe and profitable to vectorize. A 3770vector instruction cost model is used to select the vector width. 3771 3772Interleaving multiple loop iterations allows modern processors to further 3773improve instruction-level parallelism (ILP) using advanced hardware features, 3774such as multiple execution units and out-of-order execution. The vectorizer uses 3775a cost model that depends on the register pressure and generated code size to 3776select the interleaving count. 3777 3778Vectorization is enabled by ``vectorize(enable)`` and interleaving is enabled 3779by ``interleave(enable)``. This is useful when compiling with ``-Os`` to 3780manually enable vectorization or interleaving. 3781 3782.. code-block:: c++ 3783 3784 #pragma clang loop vectorize(enable) 3785 #pragma clang loop interleave(enable) 3786 for(...) { 3787 ... 3788 } 3789 3790The vector width is specified by 3791``vectorize_width(_value_[, fixed|scalable])``, where _value_ is a positive 3792integer and the type of vectorization can be specified with an optional 3793second parameter. The default for the second parameter is 'fixed' and 3794refers to fixed width vectorization, whereas 'scalable' indicates the 3795compiler should use scalable vectors instead. Another use of vectorize_width 3796is ``vectorize_width(fixed|scalable)`` where the user can hint at the type 3797of vectorization to use without specifying the exact width. In both variants 3798of the pragma the vectorizer may decide to fall back on fixed width 3799vectorization if the target does not support scalable vectors. 3800 3801The interleave count is specified by ``interleave_count(_value_)``, where 3802_value_ is a positive integer. This is useful for specifying the optimal 3803width/count of the set of target architectures supported by your application. 3804 3805.. code-block:: c++ 3806 3807 #pragma clang loop vectorize_width(2) 3808 #pragma clang loop interleave_count(2) 3809 for(...) { 3810 ... 3811 } 3812 3813Specifying a width/count of 1 disables the optimization, and is equivalent to 3814``vectorize(disable)`` or ``interleave(disable)``. 3815 3816Vector predication is enabled by ``vectorize_predicate(enable)``, for example: 3817 3818.. code-block:: c++ 3819 3820 #pragma clang loop vectorize(enable) 3821 #pragma clang loop vectorize_predicate(enable) 3822 for(...) { 3823 ... 3824 } 3825 3826This predicates (masks) all instructions in the loop, which allows the scalar 3827remainder loop (the tail) to be folded into the main vectorized loop. This 3828might be more efficient when vector predication is efficiently supported by the 3829target platform. 3830 3831Loop Unrolling 3832-------------- 3833 3834Unrolling a loop reduces the loop control overhead and exposes more 3835opportunities for ILP. Loops can be fully or partially unrolled. Full unrolling 3836eliminates the loop and replaces it with an enumerated sequence of loop 3837iterations. Full unrolling is only possible if the loop trip count is known at 3838compile time. Partial unrolling replicates the loop body within the loop and 3839reduces the trip count. 3840 3841If ``unroll(enable)`` is specified the unroller will attempt to fully unroll the 3842loop if the trip count is known at compile time. If the fully unrolled code size 3843is greater than an internal limit the loop will be partially unrolled up to this 3844limit. If the trip count is not known at compile time the loop will be partially 3845unrolled with a heuristically chosen unroll factor. 3846 3847.. code-block:: c++ 3848 3849 #pragma clang loop unroll(enable) 3850 for(...) { 3851 ... 3852 } 3853 3854If ``unroll(full)`` is specified the unroller will attempt to fully unroll the 3855loop if the trip count is known at compile time identically to 3856``unroll(enable)``. However, with ``unroll(full)`` the loop will not be unrolled 3857if the loop count is not known at compile time. 3858 3859.. code-block:: c++ 3860 3861 #pragma clang loop unroll(full) 3862 for(...) { 3863 ... 3864 } 3865 3866The unroll count can be specified explicitly with ``unroll_count(_value_)`` where 3867_value_ is a positive integer. If this value is greater than the trip count the 3868loop will be fully unrolled. Otherwise the loop is partially unrolled subject 3869to the same code size limit as with ``unroll(enable)``. 3870 3871.. code-block:: c++ 3872 3873 #pragma clang loop unroll_count(8) 3874 for(...) { 3875 ... 3876 } 3877 3878Unrolling of a loop can be prevented by specifying ``unroll(disable)``. 3879 3880Loop unroll parameters can be controlled by options 3881`-mllvm -unroll-count=n` and `-mllvm -pragma-unroll-threshold=n`. 3882 3883Loop Distribution 3884----------------- 3885 3886Loop Distribution allows splitting a loop into multiple loops. This is 3887beneficial for example when the entire loop cannot be vectorized but some of the 3888resulting loops can. 3889 3890If ``distribute(enable))`` is specified and the loop has memory dependencies 3891that inhibit vectorization, the compiler will attempt to isolate the offending 3892operations into a new loop. This optimization is not enabled by default, only 3893loops marked with the pragma are considered. 3894 3895.. code-block:: c++ 3896 3897 #pragma clang loop distribute(enable) 3898 for (i = 0; i < N; ++i) { 3899 S1: A[i + 1] = A[i] + B[i]; 3900 S2: C[i] = D[i] * E[i]; 3901 } 3902 3903This loop will be split into two loops between statements S1 and S2. The 3904second loop containing S2 will be vectorized. 3905 3906Loop Distribution is currently not enabled by default in the optimizer because 3907it can hurt performance in some cases. For example, instruction-level 3908parallelism could be reduced by sequentializing the execution of the 3909statements S1 and S2 above. 3910 3911If Loop Distribution is turned on globally with 3912``-mllvm -enable-loop-distribution``, specifying ``distribute(disable)`` can 3913be used the disable it on a per-loop basis. 3914 3915Additional Information 3916---------------------- 3917 3918For convenience multiple loop hints can be specified on a single line. 3919 3920.. code-block:: c++ 3921 3922 #pragma clang loop vectorize_width(4) interleave_count(8) 3923 for(...) { 3924 ... 3925 } 3926 3927If an optimization cannot be applied any hints that apply to it will be ignored. 3928For example, the hint ``vectorize_width(4)`` is ignored if the loop is not 3929proven safe to vectorize. To identify and diagnose optimization issues use 3930`-Rpass`, `-Rpass-missed`, and `-Rpass-analysis` command line options. See the 3931user guide for details. 3932 3933Extensions to specify floating-point flags 3934==================================================== 3935 3936The ``#pragma clang fp`` pragma allows floating-point options to be specified 3937for a section of the source code. This pragma can only appear at file scope or 3938at the start of a compound statement (excluding comments). When using within a 3939compound statement, the pragma is active within the scope of the compound 3940statement. 3941 3942Currently, the following settings can be controlled with this pragma: 3943 3944``#pragma clang fp reassociate`` allows control over the reassociation 3945of floating point expressions. When enabled, this pragma allows the expression 3946``x + (y + z)`` to be reassociated as ``(x + y) + z``. 3947Reassociation can also occur across multiple statements. 3948This pragma can be used to disable reassociation when it is otherwise 3949enabled for the translation unit with the ``-fassociative-math`` flag. 3950The pragma can take two values: ``on`` and ``off``. 3951 3952.. code-block:: c++ 3953 3954 float f(float x, float y, float z) 3955 { 3956 // Enable floating point reassociation across statements 3957 #pragma clang fp reassociate(on) 3958 float t = x + y; 3959 float v = t + z; 3960 } 3961 3962 3963``#pragma clang fp contract`` specifies whether the compiler should 3964contract a multiply and an addition (or subtraction) into a fused FMA 3965operation when supported by the target. 3966 3967The pragma can take three values: ``on``, ``fast`` and ``off``. The ``on`` 3968option is identical to using ``#pragma STDC FP_CONTRACT(ON)`` and it allows 3969fusion as specified the language standard. The ``fast`` option allows fusion 3970in cases when the language standard does not make this possible (e.g. across 3971statements in C). 3972 3973.. code-block:: c++ 3974 3975 for(...) { 3976 #pragma clang fp contract(fast) 3977 a = b[i] * c[i]; 3978 d[i] += a; 3979 } 3980 3981 3982The pragma can also be used with ``off`` which turns FP contraction off for a 3983section of the code. This can be useful when fast contraction is otherwise 3984enabled for the translation unit with the ``-ffp-contract=fast-honor-pragmas`` flag. 3985Note that ``-ffp-contract=fast`` will override pragmas to fuse multiply and 3986addition across statements regardless of any controlling pragmas. 3987 3988``#pragma clang fp exceptions`` specifies floating point exception behavior. It 3989may take one the the values: ``ignore``, ``maytrap`` or ``strict``. Meaning of 3990these values is same as for `constrained floating point intrinsics <http://llvm.org/docs/LangRef.html#constrained-floating-point-intrinsics>`_. 3991 3992.. code-block:: c++ 3993 3994 { 3995 // Preserve floating point exceptions 3996 #pragma clang fp exceptions(strict) 3997 z = x + y; 3998 if (fetestexcept(FE_OVERFLOW)) 3999 ... 4000 } 4001 4002A ``#pragma clang fp`` pragma may contain any number of options: 4003 4004.. code-block:: c++ 4005 4006 void func(float *dest, float a, float b) { 4007 #pragma clang fp exceptions(maytrap) contract(fast) reassociate(on) 4008 ... 4009 } 4010 4011``#pragma clang fp eval_method`` allows floating-point behavior to be specified 4012for a section of the source code. This pragma can appear at file or namespace 4013scope, or at the start of a compound statement (excluding comments). 4014The pragma is active within the scope of the compound statement. 4015 4016When ``pragma clang fp eval_method(source)`` is enabled, the section of code 4017governed by the pragma behaves as though the command-line option 4018``-ffp-eval-method=source`` is enabled. Rounds intermediate results to 4019source-defined precision. 4020 4021When ``pragma clang fp eval_method(double)`` is enabled, the section of code 4022governed by the pragma behaves as though the command-line option 4023``-ffp-eval-method=double`` is enabled. Rounds intermediate results to 4024``double`` precision. 4025 4026When ``pragma clang fp eval_method(extended)`` is enabled, the section of code 4027governed by the pragma behaves as though the command-line option 4028``-ffp-eval-method=extended`` is enabled. Rounds intermediate results to 4029target-dependent ``long double`` precision. In Win32 programming, for instance, 4030the long double data type maps to the double, 64-bit precision data type. 4031 4032The full syntax this pragma supports is 4033``#pragma clang fp eval_method(source|double|extended)``. 4034 4035.. code-block:: c++ 4036 4037 for(...) { 4038 // The compiler will use long double as the floating-point evaluation 4039 // method. 4040 #pragma clang fp eval_method(extended) 4041 a = b[i] * c[i] + e; 4042 } 4043 4044The ``#pragma float_control`` pragma allows precise floating-point 4045semantics and floating-point exception behavior to be specified 4046for a section of the source code. This pragma can only appear at file or 4047namespace scope, within a language linkage specification or at the start of a 4048compound statement (excluding comments). When used within a compound statement, 4049the pragma is active within the scope of the compound statement. This pragma 4050is modeled after a Microsoft pragma with the same spelling and syntax. For 4051pragmas specified at file or namespace scope, or within a language linkage 4052specification, a stack is supported so that the ``pragma float_control`` 4053settings can be pushed or popped. 4054 4055When ``pragma float_control(precise, on)`` is enabled, the section of code 4056governed by the pragma uses precise floating point semantics, effectively 4057``-ffast-math`` is disabled and ``-ffp-contract=on`` 4058(fused multiply add) is enabled. 4059 4060When ``pragma float_control(except, on)`` is enabled, the section of code 4061governed by the pragma behaves as though the command-line option 4062``-ffp-exception-behavior=strict`` is enabled, 4063when ``pragma float_control(except, off)`` is enabled, the section of code 4064governed by the pragma behaves as though the command-line option 4065``-ffp-exception-behavior=ignore`` is enabled. 4066 4067The full syntax this pragma supports is 4068``float_control(except|precise, on|off [, push])`` and 4069``float_control(push|pop)``. 4070The ``push`` and ``pop`` forms, including using ``push`` as the optional 4071third argument, can only occur at file scope. 4072 4073.. code-block:: c++ 4074 4075 for(...) { 4076 // This block will be compiled with -fno-fast-math and -ffp-contract=on 4077 #pragma float_control(precise, on) 4078 a = b[i] * c[i] + e; 4079 } 4080 4081Specifying an attribute for multiple declarations (#pragma clang attribute) 4082=========================================================================== 4083 4084The ``#pragma clang attribute`` directive can be used to apply an attribute to 4085multiple declarations. The ``#pragma clang attribute push`` variation of the 4086directive pushes a new "scope" of ``#pragma clang attribute`` that attributes 4087can be added to. The ``#pragma clang attribute (...)`` variation adds an 4088attribute to that scope, and the ``#pragma clang attribute pop`` variation pops 4089the scope. You can also use ``#pragma clang attribute push (...)``, which is a 4090shorthand for when you want to add one attribute to a new scope. Multiple push 4091directives can be nested inside each other. 4092 4093The attributes that are used in the ``#pragma clang attribute`` directives 4094can be written using the GNU-style syntax: 4095 4096.. code-block:: c++ 4097 4098 #pragma clang attribute push (__attribute__((annotate("custom"))), apply_to = function) 4099 4100 void function(); // The function now has the annotate("custom") attribute 4101 4102 #pragma clang attribute pop 4103 4104The attributes can also be written using the C++11 style syntax: 4105 4106.. code-block:: c++ 4107 4108 #pragma clang attribute push ([[noreturn]], apply_to = function) 4109 4110 void function(); // The function now has the [[noreturn]] attribute 4111 4112 #pragma clang attribute pop 4113 4114The ``__declspec`` style syntax is also supported: 4115 4116.. code-block:: c++ 4117 4118 #pragma clang attribute push (__declspec(dllexport), apply_to = function) 4119 4120 void function(); // The function now has the __declspec(dllexport) attribute 4121 4122 #pragma clang attribute pop 4123 4124A single push directive accepts only one attribute regardless of the syntax 4125used. 4126 4127Because multiple push directives can be nested, if you're writing a macro that 4128expands to ``_Pragma("clang attribute")`` it's good hygiene (though not 4129required) to add a namespace to your push/pop directives. A pop directive with a 4130namespace will pop the innermost push that has that same namespace. This will 4131ensure that another macro's ``pop`` won't inadvertently pop your attribute. Note 4132that an ``pop`` without a namespace will pop the innermost ``push`` without a 4133namespace. ``push``es with a namespace can only be popped by ``pop`` with the 4134same namespace. For instance: 4135 4136.. code-block:: c++ 4137 4138 #define ASSUME_NORETURN_BEGIN _Pragma("clang attribute AssumeNoreturn.push ([[noreturn]], apply_to = function)") 4139 #define ASSUME_NORETURN_END _Pragma("clang attribute AssumeNoreturn.pop") 4140 4141 #define ASSUME_UNAVAILABLE_BEGIN _Pragma("clang attribute Unavailable.push (__attribute__((unavailable)), apply_to=function)") 4142 #define ASSUME_UNAVAILABLE_END _Pragma("clang attribute Unavailable.pop") 4143 4144 4145 ASSUME_NORETURN_BEGIN 4146 ASSUME_UNAVAILABLE_BEGIN 4147 void function(); // function has [[noreturn]] and __attribute__((unavailable)) 4148 ASSUME_NORETURN_END 4149 void other_function(); // function has __attribute__((unavailable)) 4150 ASSUME_UNAVAILABLE_END 4151 4152Without the namespaces on the macros, ``other_function`` will be annotated with 4153``[[noreturn]]`` instead of ``__attribute__((unavailable))``. This may seem like 4154a contrived example, but its very possible for this kind of situation to appear 4155in real code if the pragmas are spread out across a large file. You can test if 4156your version of clang supports namespaces on ``#pragma clang attribute`` with 4157``__has_extension(pragma_clang_attribute_namespaces)``. 4158 4159Subject Match Rules 4160------------------- 4161 4162The set of declarations that receive a single attribute from the attribute stack 4163depends on the subject match rules that were specified in the pragma. Subject 4164match rules are specified after the attribute. The compiler expects an 4165identifier that corresponds to the subject set specifier. The ``apply_to`` 4166specifier is currently the only supported subject set specifier. It allows you 4167to specify match rules that form a subset of the attribute's allowed subject 4168set, i.e. the compiler doesn't require all of the attribute's subjects. For 4169example, an attribute like ``[[nodiscard]]`` whose subject set includes 4170``enum``, ``record`` and ``hasType(functionType)``, requires the presence of at 4171least one of these rules after ``apply_to``: 4172 4173.. code-block:: c++ 4174 4175 #pragma clang attribute push([[nodiscard]], apply_to = enum) 4176 4177 enum Enum1 { A1, B1 }; // The enum will receive [[nodiscard]] 4178 4179 struct Record1 { }; // The struct will *not* receive [[nodiscard]] 4180 4181 #pragma clang attribute pop 4182 4183 #pragma clang attribute push([[nodiscard]], apply_to = any(record, enum)) 4184 4185 enum Enum2 { A2, B2 }; // The enum will receive [[nodiscard]] 4186 4187 struct Record2 { }; // The struct *will* receive [[nodiscard]] 4188 4189 #pragma clang attribute pop 4190 4191 // This is an error, since [[nodiscard]] can't be applied to namespaces: 4192 #pragma clang attribute push([[nodiscard]], apply_to = any(record, namespace)) 4193 4194 #pragma clang attribute pop 4195 4196Multiple match rules can be specified using the ``any`` match rule, as shown 4197in the example above. The ``any`` rule applies attributes to all declarations 4198that are matched by at least one of the rules in the ``any``. It doesn't nest 4199and can't be used inside the other match rules. Redundant match rules or rules 4200that conflict with one another should not be used inside of ``any``. Failing to 4201specify a rule within the ``any`` rule results in an error. 4202 4203Clang supports the following match rules: 4204 4205- ``function``: Can be used to apply attributes to functions. This includes C++ 4206 member functions, static functions, operators, and constructors/destructors. 4207 4208- ``function(is_member)``: Can be used to apply attributes to C++ member 4209 functions. This includes members like static functions, operators, and 4210 constructors/destructors. 4211 4212- ``hasType(functionType)``: Can be used to apply attributes to functions, C++ 4213 member functions, and variables/fields whose type is a function pointer. It 4214 does not apply attributes to Objective-C methods or blocks. 4215 4216- ``type_alias``: Can be used to apply attributes to ``typedef`` declarations 4217 and C++11 type aliases. 4218 4219- ``record``: Can be used to apply attributes to ``struct``, ``class``, and 4220 ``union`` declarations. 4221 4222- ``record(unless(is_union))``: Can be used to apply attributes only to 4223 ``struct`` and ``class`` declarations. 4224 4225- ``enum``: Can be be used to apply attributes to enumeration declarations. 4226 4227- ``enum_constant``: Can be used to apply attributes to enumerators. 4228 4229- ``variable``: Can be used to apply attributes to variables, including 4230 local variables, parameters, global variables, and static member variables. 4231 It does not apply attributes to instance member variables or Objective-C 4232 ivars. 4233 4234- ``variable(is_thread_local)``: Can be used to apply attributes to thread-local 4235 variables only. 4236 4237- ``variable(is_global)``: Can be used to apply attributes to global variables 4238 only. 4239 4240- ``variable(is_local)``: Can be used to apply attributes to local variables 4241 only. 4242 4243- ``variable(is_parameter)``: Can be used to apply attributes to parameters 4244 only. 4245 4246- ``variable(unless(is_parameter))``: Can be used to apply attributes to all 4247 the variables that are not parameters. 4248 4249- ``field``: Can be used to apply attributes to non-static member variables 4250 in a record. This includes Objective-C ivars. 4251 4252- ``namespace``: Can be used to apply attributes to ``namespace`` declarations. 4253 4254- ``objc_interface``: Can be used to apply attributes to ``@interface`` 4255 declarations. 4256 4257- ``objc_protocol``: Can be used to apply attributes to ``@protocol`` 4258 declarations. 4259 4260- ``objc_category``: Can be used to apply attributes to category declarations, 4261 including class extensions. 4262 4263- ``objc_method``: Can be used to apply attributes to Objective-C methods, 4264 including instance and class methods. Implicit methods like implicit property 4265 getters and setters do not receive the attribute. 4266 4267- ``objc_method(is_instance)``: Can be used to apply attributes to Objective-C 4268 instance methods. 4269 4270- ``objc_property``: Can be used to apply attributes to ``@property`` 4271 declarations. 4272 4273- ``block``: Can be used to apply attributes to block declarations. This does 4274 not include variables/fields of block pointer type. 4275 4276The use of ``unless`` in match rules is currently restricted to a strict set of 4277sub-rules that are used by the supported attributes. That means that even though 4278``variable(unless(is_parameter))`` is a valid match rule, 4279``variable(unless(is_thread_local))`` is not. 4280 4281Supported Attributes 4282-------------------- 4283 4284Not all attributes can be used with the ``#pragma clang attribute`` directive. 4285Notably, statement attributes like ``[[fallthrough]]`` or type attributes 4286like ``address_space`` aren't supported by this directive. You can determine 4287whether or not an attribute is supported by the pragma by referring to the 4288:doc:`individual documentation for that attribute <AttributeReference>`. 4289 4290The attributes are applied to all matching declarations individually, even when 4291the attribute is semantically incorrect. The attributes that aren't applied to 4292any declaration are not verified semantically. 4293 4294Specifying section names for global objects (#pragma clang section) 4295=================================================================== 4296 4297The ``#pragma clang section`` directive provides a means to assign section-names 4298to global variables, functions and static variables. 4299 4300The section names can be specified as: 4301 4302.. code-block:: c++ 4303 4304 #pragma clang section bss="myBSS" data="myData" rodata="myRodata" relro="myRelro" text="myText" 4305 4306The section names can be reverted back to default name by supplying an empty 4307string to the section kind, for example: 4308 4309.. code-block:: c++ 4310 4311 #pragma clang section bss="" data="" text="" rodata="" relro="" 4312 4313The ``#pragma clang section`` directive obeys the following rules: 4314 4315* The pragma applies to all global variable, statics and function declarations 4316 from the pragma to the end of the translation unit. 4317 4318* The pragma clang section is enabled automatically, without need of any flags. 4319 4320* This feature is only defined to work sensibly for ELF targets. 4321 4322* If section name is specified through _attribute_((section("myname"))), then 4323 the attribute name gains precedence. 4324 4325* Global variables that are initialized to zero will be placed in the named 4326 bss section, if one is present. 4327 4328* The ``#pragma clang section`` directive does not does try to infer section-kind 4329 from the name. For example, naming a section "``.bss.mySec``" does NOT mean 4330 it will be a bss section name. 4331 4332* The decision about which section-kind applies to each global is taken in the back-end. 4333 Once the section-kind is known, appropriate section name, as specified by the user using 4334 ``#pragma clang section`` directive, is applied to that global. 4335 4336Specifying Linker Options on ELF Targets 4337======================================== 4338 4339The ``#pragma comment(lib, ...)`` directive is supported on all ELF targets. 4340The second parameter is the library name (without the traditional Unix prefix of 4341``lib``). This allows you to provide an implicit link of dependent libraries. 4342 4343Evaluating Object Size Dynamically 4344================================== 4345 4346Clang supports the builtin ``__builtin_dynamic_object_size``, the semantics are 4347the same as GCC's ``__builtin_object_size`` (which Clang also supports), but 4348``__builtin_dynamic_object_size`` can evaluate the object's size at runtime. 4349``__builtin_dynamic_object_size`` is meant to be used as a drop-in replacement 4350for ``__builtin_object_size`` in libraries that support it. 4351 4352For instance, here is a program that ``__builtin_dynamic_object_size`` will make 4353safer: 4354 4355.. code-block:: c 4356 4357 void copy_into_buffer(size_t size) { 4358 char* buffer = malloc(size); 4359 strlcpy(buffer, "some string", strlen("some string")); 4360 // Previous line preprocesses to: 4361 // __builtin___strlcpy_chk(buffer, "some string", strlen("some string"), __builtin_object_size(buffer, 0)) 4362 } 4363 4364Since the size of ``buffer`` can't be known at compile time, Clang will fold 4365``__builtin_object_size(buffer, 0)`` into ``-1``. However, if this was written 4366as ``__builtin_dynamic_object_size(buffer, 0)``, Clang will fold it into 4367``size``, providing some extra runtime safety. 4368 4369Deprecating Macros 4370================== 4371 4372Clang supports the pragma ``#pragma clang deprecated``, which can be used to 4373provide deprecation warnings for macro uses. For example: 4374 4375.. code-block:: c 4376 4377 #define MIN(x, y) x < y ? x : y 4378 #pragma clang deprecated(MIN, "use std::min instead") 4379 4380 void min(int a, int b) { 4381 return MIN(a, b); // warning: MIN is deprecated: use std::min instead 4382 } 4383 4384``#pragma clang deprecated`` should be preferred for this purpose over 4385``#pragma GCC warning`` because the warning can be controlled with 4386``-Wdeprecated``. 4387 4388Restricted Expansion Macros 4389=========================== 4390 4391Clang supports the pragma ``#pragma clang restrict_expansion``, which can be 4392used restrict macro expansion in headers. This can be valuable when providing 4393headers with ABI stability requirements. Any expansion of the annotated macro 4394processed by the preprocessor after the ``#pragma`` annotation will log a 4395warning. Redefining the macro or undefining the macro will not be diagnosed, nor 4396will expansion of the macro within the main source file. For example: 4397 4398.. code-block:: c 4399 4400 #define TARGET_ARM 1 4401 #pragma clang restrict_expansion(TARGET_ARM, "<reason>") 4402 4403 /// Foo.h 4404 struct Foo { 4405 #if TARGET_ARM // warning: TARGET_ARM is marked unsafe in headers: <reason> 4406 uint32_t X; 4407 #else 4408 uint64_t X; 4409 #endif 4410 }; 4411 4412 /// main.c 4413 #include "foo.h" 4414 #if TARGET_ARM // No warning in main source file 4415 X_TYPE uint32_t 4416 #else 4417 X_TYPE uint64_t 4418 #endif 4419 4420This warning is controlled by ``-Wpedantic-macros``. 4421 4422Final Macros 4423============ 4424 4425Clang supports the pragma ``#pragma clang final``, which can be used to 4426mark macros as final, meaning they cannot be undef'd or re-defined. For example: 4427 4428.. code-block:: c 4429 4430 #define FINAL_MACRO 1 4431 #pragma clang final(FINAL_MACRO) 4432 4433 #define FINAL_MACRO // warning: FINAL_MACRO is marked final and should not be redefined 4434 #undef FINAL_MACRO // warning: FINAL_MACRO is marked final and should not be undefined 4435 4436This is useful for enforcing system-provided macros that should not be altered 4437in user headers or code. This is controlled by ``-Wpedantic-macros``. Final 4438macros will always warn on redefinition, including situations with identical 4439bodies and in system headers. 4440 4441Line Control 4442============ 4443 4444Clang supports an extension for source line control, which takes the 4445form of a preprocessor directive starting with an unsigned integral 4446constant. In addition to the standard ``#line`` directive, this form 4447allows control of an include stack and header file type, which is used 4448in issuing diagnostics. These lines are emitted in preprocessed 4449output. 4450 4451.. code-block:: c 4452 4453 # <line:number> <filename:string> <header-type:numbers> 4454 4455The filename is optional, and if unspecified indicates no change in 4456source filename. The header-type is an optional, whitespace-delimited, 4457sequence of magic numbers as follows. 4458 4459* ``1:`` Push the current source file name onto the include stack and 4460 enter a new file. 4461 4462* ``2``: Pop the include stack and return to the specified file. If 4463 the filename is ``""``, the name popped from the include stack is 4464 used. Otherwise there is no requirement that the specified filename 4465 matches the current source when originally pushed. 4466 4467* ``3``: Enter a system-header region. System headers often contain 4468 implementation-specific source that would normally emit a diagnostic. 4469 4470* ``4``: Enter an implicit ``extern "C"`` region. This is not required on 4471 modern systems where system headers are C++-aware. 4472 4473At most a single ``1`` or ``2`` can be present, and values must be in 4474ascending order. 4475 4476Examples are: 4477 4478.. code-block:: c 4479 4480 # 57 // Advance (or return) to line 57 of the current source file 4481 # 57 "frob" // Set to line 57 of "frob" 4482 # 1 "foo.h" 1 // Enter "foo.h" at line 1 4483 # 59 "main.c" 2 // Leave current include and return to "main.c" 4484 # 1 "/usr/include/stdio.h" 1 3 // Enter a system header 4485 # 60 "" 2 // return to "main.c" 4486 # 1 "/usr/ancient/header.h" 1 4 // Enter an implicit extern "C" header 4487 4488Extended Integer Types 4489====================== 4490 4491Clang supports the C23 ``_BitInt(N)`` feature as an extension in older C modes 4492and in C++. This type was previously implemented in Clang with the same 4493semantics, but spelled ``_ExtInt(N)``. This spelling has been deprecated in 4494favor of the standard type. 4495 4496Note: the ABI for ``_BitInt(N)`` is still in the process of being stabilized, 4497so this type should not yet be used in interfaces that require ABI stability. 4498 4499Intrinsics Support within Constant Expressions 4500============================================== 4501 4502The following builtin intrinsics can be used in constant expressions: 4503 4504* ``__builtin_bitreverse8`` 4505* ``__builtin_bitreverse16`` 4506* ``__builtin_bitreverse32`` 4507* ``__builtin_bitreverse64`` 4508* ``__builtin_bswap16`` 4509* ``__builtin_bswap32`` 4510* ``__builtin_bswap64`` 4511* ``__builtin_clrsb`` 4512* ``__builtin_clrsbl`` 4513* ``__builtin_clrsbll`` 4514* ``__builtin_clz`` 4515* ``__builtin_clzl`` 4516* ``__builtin_clzll`` 4517* ``__builtin_clzs`` 4518* ``__builtin_ctz`` 4519* ``__builtin_ctzl`` 4520* ``__builtin_ctzll`` 4521* ``__builtin_ctzs`` 4522* ``__builtin_ffs`` 4523* ``__builtin_ffsl`` 4524* ``__builtin_ffsll`` 4525* ``__builtin_fpclassify`` 4526* ``__builtin_inf`` 4527* ``__builtin_isinf`` 4528* ``__builtin_isinf_sign`` 4529* ``__builtin_isfinite`` 4530* ``__builtin_isnan`` 4531* ``__builtin_isnormal`` 4532* ``__builtin_nan`` 4533* ``__builtin_nans`` 4534* ``__builtin_parity`` 4535* ``__builtin_parityl`` 4536* ``__builtin_parityll`` 4537* ``__builtin_popcount`` 4538* ``__builtin_popcountl`` 4539* ``__builtin_popcountll`` 4540* ``__builtin_rotateleft8`` 4541* ``__builtin_rotateleft16`` 4542* ``__builtin_rotateleft32`` 4543* ``__builtin_rotateleft64`` 4544* ``__builtin_rotateright8`` 4545* ``__builtin_rotateright16`` 4546* ``__builtin_rotateright32`` 4547* ``__builtin_rotateright64`` 4548 4549The following x86-specific intrinsics can be used in constant expressions: 4550 4551* ``_bit_scan_forward`` 4552* ``_bit_scan_reverse`` 4553* ``__bsfd`` 4554* ``__bsfq`` 4555* ``__bsrd`` 4556* ``__bsrq`` 4557* ``__bswap`` 4558* ``__bswapd`` 4559* ``__bswap64`` 4560* ``__bswapq`` 4561* ``_castf32_u32`` 4562* ``_castf64_u64`` 4563* ``_castu32_f32`` 4564* ``_castu64_f64`` 4565* ``_mm_popcnt_u32`` 4566* ``_mm_popcnt_u64`` 4567* ``_popcnt32`` 4568* ``_popcnt64`` 4569* ``__popcntd`` 4570* ``__popcntq`` 4571* ``__rolb`` 4572* ``__rolw`` 4573* ``__rold`` 4574* ``__rolq`` 4575* ``__rorb`` 4576* ``__rorw`` 4577* ``__rord`` 4578* ``__rorq`` 4579* ``_rotl`` 4580* ``_rotr`` 4581* ``_rotwl`` 4582* ``_rotwr`` 4583* ``_lrotl`` 4584* ``_lrotr`` 4585