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
17Introduction
18============
19
20This document describes the language extensions provided by Clang.  In addition
21to the language extensions listed here, Clang aims to support a broad range of
22GCC extensions.  Please see the `GCC manual
23<https://gcc.gnu.org/onlinedocs/gcc/C-Extensions.html>`_ for more information on
24these extensions.
25
26.. _langext-feature_check:
27
28Feature Checking Macros
29=======================
30
31Language extensions can be very useful, but only if you know you can depend on
32them.  In order to allow fine-grain features checks, we support three builtin
33function-like macros.  This allows you to directly test for a feature in your
34code without having to resort to something like autoconf or fragile "compiler
35version checks".
36
37``__has_builtin``
38-----------------
39
40This function-like macro takes a single identifier argument that is the name of
41a builtin function, a builtin pseudo-function (taking one or more type
42arguments), or a builtin template.
43It evaluates to 1 if the builtin is supported or 0 if not.
44It can be used like this:
45
46.. code-block:: c++
47
48  #ifndef __has_builtin         // Optional of course.
49    #define __has_builtin(x) 0  // Compatibility with non-clang compilers.
50  #endif
51
52  ...
53  #if __has_builtin(__builtin_trap)
54    __builtin_trap();
55  #else
56    abort();
57  #endif
58  ...
59
60.. note::
61
62  Prior to Clang 10, ``__has_builtin`` could not be used to detect most builtin
63  pseudo-functions.
64
65  ``__has_builtin`` should not be used to detect support for a builtin macro;
66  use ``#ifdef`` instead.
67
68.. _langext-__has_feature-__has_extension:
69
70``__has_feature`` and ``__has_extension``
71-----------------------------------------
72
73These function-like macros take a single identifier argument that is the name
74of a feature.  ``__has_feature`` evaluates to 1 if the feature is both
75supported by Clang and standardized in the current language standard or 0 if
76not (but see :ref:`below <langext-has-feature-back-compat>`), while
77``__has_extension`` evaluates to 1 if the feature is supported by Clang in the
78current language (either as a language extension or a standard language
79feature) or 0 if not.  They can be used like this:
80
81.. code-block:: c++
82
83  #ifndef __has_feature         // Optional of course.
84    #define __has_feature(x) 0  // Compatibility with non-clang compilers.
85  #endif
86  #ifndef __has_extension
87    #define __has_extension __has_feature // Compatibility with pre-3.0 compilers.
88  #endif
89
90  ...
91  #if __has_feature(cxx_rvalue_references)
92  // This code will only be compiled with the -std=c++11 and -std=gnu++11
93  // options, because rvalue references are only standardized in C++11.
94  #endif
95
96  #if __has_extension(cxx_rvalue_references)
97  // This code will be compiled with the -std=c++11, -std=gnu++11, -std=c++98
98  // and -std=gnu++98 options, because rvalue references are supported as a
99  // language extension in C++98.
100  #endif
101
102.. _langext-has-feature-back-compat:
103
104For backward compatibility, ``__has_feature`` can also be used to test
105for support for non-standardized features, i.e. features not prefixed ``c_``,
106``cxx_`` or ``objc_``.
107
108Another use of ``__has_feature`` is to check for compiler features not related
109to the language standard, such as e.g. :doc:`AddressSanitizer
110<AddressSanitizer>`.
111
112If the ``-pedantic-errors`` option is given, ``__has_extension`` is equivalent
113to ``__has_feature``.
114
115The feature tag is described along with the language feature below.
116
117The feature name or extension name can also be specified with a preceding and
118following ``__`` (double underscore) to avoid interference from a macro with
119the same name.  For instance, ``__cxx_rvalue_references__`` can be used instead
120of ``cxx_rvalue_references``.
121
122``__has_cpp_attribute``
123-----------------------
124
125This function-like macro is available in C++20 by default, and is provided as an
126extension in earlier language standards. It takes a single argument that is the
127name of a double-square-bracket-style attribute. The argument can either be a
128single identifier or a scoped identifier. If the attribute is supported, a
129nonzero value is returned. If the attribute is a standards-based attribute, this
130macro returns a nonzero value based on the year and month in which the attribute
131was voted into the working draft. See `WG21 SD-6
132<https://isocpp.org/std/standing-documents/sd-6-sg10-feature-test-recommendations>`_
133for the list of values returned for standards-based attributes. If the attribute
134is not supported by the current compliation target, this macro evaluates to 0.
135It can be used like this:
136
137.. code-block:: c++
138
139  #ifndef __has_cpp_attribute         // For backwards compatibility
140    #define __has_cpp_attribute(x) 0
141  #endif
142
143  ...
144  #if __has_cpp_attribute(clang::fallthrough)
145  #define FALLTHROUGH [[clang::fallthrough]]
146  #else
147  #define FALLTHROUGH
148  #endif
149  ...
150
151The attribute scope tokens ``clang`` and ``_Clang`` are interchangeable, as are
152the attribute scope tokens ``gnu`` and ``__gnu__``. Attribute tokens in either
153of these namespaces can be specified with a preceding and following ``__``
154(double underscore) to avoid interference from a macro with the same name. For
155instance, ``gnu::__const__`` can be used instead of ``gnu::const``.
156
157``__has_c_attribute``
158---------------------
159
160This function-like macro takes a single argument that is the name of an
161attribute exposed with the double square-bracket syntax in C mode. The argument
162can either be a single identifier or a scoped identifier. If the attribute is
163supported, a nonzero value is returned. If the attribute is not supported by the
164current compilation target, this macro evaluates to 0. It can be used like this:
165
166.. code-block:: c
167
168  #ifndef __has_c_attribute         // Optional of course.
169    #define __has_c_attribute(x) 0  // Compatibility with non-clang compilers.
170  #endif
171
172  ...
173  #if __has_c_attribute(fallthrough)
174    #define FALLTHROUGH [[fallthrough]]
175  #else
176    #define FALLTHROUGH
177  #endif
178  ...
179
180The attribute scope tokens ``clang`` and ``_Clang`` are interchangeable, as are
181the attribute scope tokens ``gnu`` and ``__gnu__``. Attribute tokens in either
182of these namespaces can be specified with a preceding and following ``__``
183(double underscore) to avoid interference from a macro with the same name. For
184instance, ``gnu::__const__`` can be used instead of ``gnu::const``.
185
186``__has_attribute``
187-------------------
188
189This function-like macro takes a single identifier argument that is the name of
190a GNU-style attribute.  It evaluates to 1 if the attribute is supported by the
191current compilation target, or 0 if not.  It can be used like this:
192
193.. code-block:: c++
194
195  #ifndef __has_attribute         // Optional of course.
196    #define __has_attribute(x) 0  // Compatibility with non-clang compilers.
197  #endif
198
199  ...
200  #if __has_attribute(always_inline)
201  #define ALWAYS_INLINE __attribute__((always_inline))
202  #else
203  #define ALWAYS_INLINE
204  #endif
205  ...
206
207The attribute name can also be specified with a preceding and following ``__``
208(double underscore) to avoid interference from a macro with the same name.  For
209instance, ``__always_inline__`` can be used instead of ``always_inline``.
210
211
212``__has_declspec_attribute``
213----------------------------
214
215This function-like macro takes a single identifier argument that is the name of
216an attribute implemented as a Microsoft-style ``__declspec`` attribute.  It
217evaluates to 1 if the attribute is supported by the current compilation target,
218or 0 if not.  It can be used like this:
219
220.. code-block:: c++
221
222  #ifndef __has_declspec_attribute         // Optional of course.
223    #define __has_declspec_attribute(x) 0  // Compatibility with non-clang compilers.
224  #endif
225
226  ...
227  #if __has_declspec_attribute(dllexport)
228  #define DLLEXPORT __declspec(dllexport)
229  #else
230  #define DLLEXPORT
231  #endif
232  ...
233
234The attribute name can also be specified with a preceding and following ``__``
235(double underscore) to avoid interference from a macro with the same name.  For
236instance, ``__dllexport__`` can be used instead of ``dllexport``.
237
238``__is_identifier``
239-------------------
240
241This function-like macro takes a single identifier argument that might be either
242a reserved word or a regular identifier. It evaluates to 1 if the argument is just
243a regular identifier and not a reserved word, in the sense that it can then be
244used as the name of a user-defined function or variable. Otherwise it evaluates
245to 0.  It can be used like this:
246
247.. code-block:: c++
248
249  ...
250  #ifdef __is_identifier          // Compatibility with non-clang compilers.
251    #if __is_identifier(__wchar_t)
252      typedef wchar_t __wchar_t;
253    #endif
254  #endif
255
256  __wchar_t WideCharacter;
257  ...
258
259Include File Checking Macros
260============================
261
262Not all developments systems have the same include files.  The
263:ref:`langext-__has_include` and :ref:`langext-__has_include_next` macros allow
264you to check for the existence of an include file before doing a possibly
265failing ``#include`` directive.  Include file checking macros must be used
266as expressions in ``#if`` or ``#elif`` preprocessing directives.
267
268.. _langext-__has_include:
269
270``__has_include``
271-----------------
272
273This function-like macro takes a single file name string argument that is the
274name of an include file.  It evaluates to 1 if the file can be found using the
275include paths, or 0 otherwise:
276
277.. code-block:: c++
278
279  // Note the two possible file name string formats.
280  #if __has_include("myinclude.h") && __has_include(<stdint.h>)
281  # include "myinclude.h"
282  #endif
283
284To test for this feature, use ``#if defined(__has_include)``:
285
286.. code-block:: c++
287
288  // To avoid problem with non-clang compilers not having this macro.
289  #if defined(__has_include)
290  #if __has_include("myinclude.h")
291  # include "myinclude.h"
292  #endif
293  #endif
294
295.. _langext-__has_include_next:
296
297``__has_include_next``
298----------------------
299
300This function-like macro takes a single file name string argument that is the
301name of an include file.  It is like ``__has_include`` except that it looks for
302the second instance of the given file found in the include paths.  It evaluates
303to 1 if the second instance of the file can be found using the include paths,
304or 0 otherwise:
305
306.. code-block:: c++
307
308  // Note the two possible file name string formats.
309  #if __has_include_next("myinclude.h") && __has_include_next(<stdint.h>)
310  # include_next "myinclude.h"
311  #endif
312
313  // To avoid problem with non-clang compilers not having this macro.
314  #if defined(__has_include_next)
315  #if __has_include_next("myinclude.h")
316  # include_next "myinclude.h"
317  #endif
318  #endif
319
320Note that ``__has_include_next``, like the GNU extension ``#include_next``
321directive, is intended for use in headers only, and will issue a warning if
322used in the top-level compilation file.  A warning will also be issued if an
323absolute path is used in the file argument.
324
325``__has_warning``
326-----------------
327
328This function-like macro takes a string literal that represents a command line
329option for a warning and returns true if that is a valid warning option.
330
331.. code-block:: c++
332
333  #if __has_warning("-Wformat")
334  ...
335  #endif
336
337.. _languageextensions-builtin-macros:
338
339Builtin Macros
340==============
341
342``__BASE_FILE__``
343  Defined to a string that contains the name of the main input file passed to
344  Clang.
345
346``__FILE_NAME__``
347  Clang-specific extension that functions similar to ``__FILE__`` but only
348  renders the last path component (the filename) instead of an invocation
349  dependent full path to that file.
350
351``__COUNTER__``
352  Defined to an integer value that starts at zero and is incremented each time
353  the ``__COUNTER__`` macro is expanded.
354
355``__INCLUDE_LEVEL__``
356  Defined to an integral value that is the include depth of the file currently
357  being translated.  For the main file, this value is zero.
358
359``__TIMESTAMP__``
360  Defined to the date and time of the last modification of the current source
361  file.
362
363``__clang__``
364  Defined when compiling with Clang
365
366``__clang_major__``
367  Defined to the major marketing version number of Clang (e.g., the 2 in
368  2.0.1).  Note that marketing version numbers should not be used to check for
369  language features, as different vendors use different numbering schemes.
370  Instead, use the :ref:`langext-feature_check`.
371
372``__clang_minor__``
373  Defined to the minor version number of Clang (e.g., the 0 in 2.0.1).  Note
374  that marketing version numbers should not be used to check for language
375  features, as different vendors use different numbering schemes.  Instead, use
376  the :ref:`langext-feature_check`.
377
378``__clang_patchlevel__``
379  Defined to the marketing patch level of Clang (e.g., the 1 in 2.0.1).
380
381``__clang_version__``
382  Defined to a string that captures the Clang marketing version, including the
383  Subversion tag or revision number, e.g., "``1.5 (trunk 102332)``".
384
385.. _langext-vectors:
386
387Vectors and Extended Vectors
388============================
389
390Supports the GCC, OpenCL, AltiVec and NEON vector extensions.
391
392OpenCL vector types are created using the ``ext_vector_type`` attribute.  It
393supports the ``V.xyzw`` syntax and other tidbits as seen in OpenCL.  An example
394is:
395
396.. code-block:: c++
397
398  typedef float float4 __attribute__((ext_vector_type(4)));
399  typedef float float2 __attribute__((ext_vector_type(2)));
400
401  float4 foo(float2 a, float2 b) {
402    float4 c;
403    c.xz = a;
404    c.yw = b;
405    return c;
406  }
407
408Query for this feature with ``__has_attribute(ext_vector_type)``.
409
410Giving ``-maltivec`` option to clang enables support for AltiVec vector syntax
411and functions.  For example:
412
413.. code-block:: c++
414
415  vector float foo(vector int a) {
416    vector int b;
417    b = vec_add(a, a) + a;
418    return (vector float)b;
419  }
420
421NEON vector types are created using ``neon_vector_type`` and
422``neon_polyvector_type`` attributes.  For example:
423
424.. code-block:: c++
425
426  typedef __attribute__((neon_vector_type(8))) int8_t int8x8_t;
427  typedef __attribute__((neon_polyvector_type(16))) poly8_t poly8x16_t;
428
429  int8x8_t foo(int8x8_t a) {
430    int8x8_t v;
431    v = a;
432    return v;
433  }
434
435Vector Literals
436---------------
437
438Vector literals can be used to create vectors from a set of scalars, or
439vectors.  Either parentheses or braces form can be used.  In the parentheses
440form the number of literal values specified must be one, i.e. referring to a
441scalar value, or must match the size of the vector type being created.  If a
442single scalar literal value is specified, the scalar literal value will be
443replicated to all the components of the vector type.  In the brackets form any
444number of literals can be specified.  For example:
445
446.. code-block:: c++
447
448  typedef int v4si __attribute__((__vector_size__(16)));
449  typedef float float4 __attribute__((ext_vector_type(4)));
450  typedef float float2 __attribute__((ext_vector_type(2)));
451
452  v4si vsi = (v4si){1, 2, 3, 4};
453  float4 vf = (float4)(1.0f, 2.0f, 3.0f, 4.0f);
454  vector int vi1 = (vector int)(1);    // vi1 will be (1, 1, 1, 1).
455  vector int vi2 = (vector int){1};    // vi2 will be (1, 0, 0, 0).
456  vector int vi3 = (vector int)(1, 2); // error
457  vector int vi4 = (vector int){1, 2}; // vi4 will be (1, 2, 0, 0).
458  vector int vi5 = (vector int)(1, 2, 3, 4);
459  float4 vf = (float4)((float2)(1.0f, 2.0f), (float2)(3.0f, 4.0f));
460
461Vector Operations
462-----------------
463
464The table below shows the support for each operation by vector extension.  A
465dash indicates that an operation is not accepted according to a corresponding
466specification.
467
468============================== ======= ======= ============= =======
469         Operator              OpenCL  AltiVec     GCC        NEON
470============================== ======= ======= ============= =======
471[]                               yes     yes       yes         --
472unary operators +, --            yes     yes       yes         --
473++, -- --                        yes     yes       yes         --
474+,--,*,/,%                       yes     yes       yes         --
475bitwise operators &,|,^,~        yes     yes       yes         --
476>>,<<                            yes     yes       yes         --
477!, &&, ||                        yes     --        yes [#]_    --
478==, !=, >, <, >=, <=             yes     yes       yes         --
479=                                yes     yes       yes         yes
480:? [#]_                          yes     --        yes         --
481sizeof                           yes     yes       yes         yes
482C-style cast                     yes     yes       yes         no
483reinterpret_cast                 yes     no        yes         no
484static_cast                      yes     no        yes         no
485const_cast                       no      no        no          no
486============================== ======= ======= ============= =======
487
488See also :ref:`langext-__builtin_shufflevector`, :ref:`langext-__builtin_convertvector`.
489
490.. [#] unary operator ! is not implemented, however && and || are.
491.. [#] While OpenCL and GCC vectors both implement the comparison operator(?:) as a
492  'select', they operate somewhat differently. OpenCL selects based on signedness of
493  the condition operands, but GCC vectors use normal bool conversions (that is, != 0).
494
495Half-Precision Floating Point
496=============================
497
498Clang supports two half-precision (16-bit) floating point types: ``__fp16`` and
499``_Float16``.  These types are supported in all language modes.
500
501``__fp16`` is supported on every target, as it is purely a storage format; see below.
502``_Float16`` is currently only supported on the following targets, with further
503targets pending ABI standardization:
504
505* 32-bit ARM
506* 64-bit ARM (AArch64)
507* SPIR
508
509``_Float16`` will be supported on more targets as they define ABIs for it.
510
511``__fp16`` is a storage and interchange format only.  This means that values of
512``__fp16`` are immediately promoted to (at least) ``float`` when used in arithmetic
513operations, so that e.g. the result of adding two ``__fp16`` values has type ``float``.
514The 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>`_).
515Clang uses the ``binary16`` format from IEEE 754-2008 for ``__fp16``, not the ARM
516alternative format.
517
518``_Float16`` is an extended floating-point type.  This means that, just like arithmetic on
519``float`` or ``double``, arithmetic on ``_Float16`` operands is formally performed in the
520``_Float16`` type, so that e.g. the result of adding two ``_Float16`` values has type
521``_Float16``.  The behavior of ``_Float16`` is specified by ISO/IEC TS 18661-3:2015
522("Floating-point extensions for C").  As with ``__fp16``, Clang uses the ``binary16``
523format from IEEE 754-2008 for ``_Float16``.
524
525``_Float16`` arithmetic will be performed using native half-precision support
526when available on the target (e.g. on ARMv8.2a); otherwise it will be performed
527at a higher precision (currently always ``float``) and then truncated down to
528``_Float16``.  Note that C and C++ allow intermediate floating-point operands
529of an expression to be computed with greater precision than is expressible in
530their type, so Clang may avoid intermediate truncations in certain cases; this may
531lead to results that are inconsistent with native arithmetic.
532
533It is recommended that portable code use ``_Float16`` instead of ``__fp16``,
534as it has been defined by the C standards committee and has behavior that is
535more familiar to most programmers.
536
537Because ``__fp16`` operands are always immediately promoted to ``float``, the
538common real type of ``__fp16`` and ``_Float16`` for the purposes of the usual
539arithmetic conversions is ``float``.
540
541A literal can be given ``_Float16`` type using the suffix ``f16``. For example,
542``3.14f16``.
543
544Because default argument promotion only applies to the standard floating-point
545types, ``_Float16`` values are not promoted to ``double`` when passed as variadic
546or untyped arguments.  As a consequence, some caution must be taken when using
547certain library facilities with ``_Float16``; for example, there is no ``printf`` format
548specifier for ``_Float16``, and (unlike ``float``) it will not be implicitly promoted to
549``double`` when passed to ``printf``, so the programmer must explicitly cast it to
550``double`` before using it with an ``%f`` or similar specifier.
551
552Messages on ``deprecated`` and ``unavailable`` Attributes
553=========================================================
554
555An optional string message can be added to the ``deprecated`` and
556``unavailable`` attributes.  For example:
557
558.. code-block:: c++
559
560  void explode(void) __attribute__((deprecated("extremely unsafe, use 'combust' instead!!!")));
561
562If the deprecated or unavailable declaration is used, the message will be
563incorporated into the appropriate diagnostic:
564
565.. code-block:: none
566
567  harmless.c:4:3: warning: 'explode' is deprecated: extremely unsafe, use 'combust' instead!!!
568        [-Wdeprecated-declarations]
569    explode();
570    ^
571
572Query for this feature with
573``__has_extension(attribute_deprecated_with_message)`` and
574``__has_extension(attribute_unavailable_with_message)``.
575
576Attributes on Enumerators
577=========================
578
579Clang allows attributes to be written on individual enumerators.  This allows
580enumerators to be deprecated, made unavailable, etc.  The attribute must appear
581after the enumerator name and before any initializer, like so:
582
583.. code-block:: c++
584
585  enum OperationMode {
586    OM_Invalid,
587    OM_Normal,
588    OM_Terrified __attribute__((deprecated)),
589    OM_AbortOnError __attribute__((deprecated)) = 4
590  };
591
592Attributes on the ``enum`` declaration do not apply to individual enumerators.
593
594Query for this feature with ``__has_extension(enumerator_attributes)``.
595
596'User-Specified' System Frameworks
597==================================
598
599Clang provides a mechanism by which frameworks can be built in such a way that
600they will always be treated as being "system frameworks", even if they are not
601present in a system framework directory.  This can be useful to system
602framework developers who want to be able to test building other applications
603with development builds of their framework, including the manner in which the
604compiler changes warning behavior for system headers.
605
606Framework developers can opt-in to this mechanism by creating a
607"``.system_framework``" file at the top-level of their framework.  That is, the
608framework should have contents like:
609
610.. code-block:: none
611
612  .../TestFramework.framework
613  .../TestFramework.framework/.system_framework
614  .../TestFramework.framework/Headers
615  .../TestFramework.framework/Headers/TestFramework.h
616  ...
617
618Clang will treat the presence of this file as an indicator that the framework
619should be treated as a system framework, regardless of how it was found in the
620framework search path.  For consistency, we recommend that such files never be
621included in installed versions of the framework.
622
623Checks for Standard Language Features
624=====================================
625
626The ``__has_feature`` macro can be used to query if certain standard language
627features are enabled.  The ``__has_extension`` macro can be used to query if
628language features are available as an extension when compiling for a standard
629which does not provide them.  The features which can be tested are listed here.
630
631Since Clang 3.4, the C++ SD-6 feature test macros are also supported.
632These are macros with names of the form ``__cpp_<feature_name>``, and are
633intended to be a portable way to query the supported features of the compiler.
634See `the C++ status page <https://clang.llvm.org/cxx_status.html#ts>`_ for
635information on the version of SD-6 supported by each Clang release, and the
636macros provided by that revision of the recommendations.
637
638C++98
639-----
640
641The features listed below are part of the C++98 standard.  These features are
642enabled by default when compiling C++ code.
643
644C++ exceptions
645^^^^^^^^^^^^^^
646
647Use ``__has_feature(cxx_exceptions)`` to determine if C++ exceptions have been
648enabled.  For example, compiling code with ``-fno-exceptions`` disables C++
649exceptions.
650
651C++ RTTI
652^^^^^^^^
653
654Use ``__has_feature(cxx_rtti)`` to determine if C++ RTTI has been enabled.  For
655example, compiling code with ``-fno-rtti`` disables the use of RTTI.
656
657C++11
658-----
659
660The features listed below are part of the C++11 standard.  As a result, all
661these features are enabled with the ``-std=c++11`` or ``-std=gnu++11`` option
662when compiling C++ code.
663
664C++11 SFINAE includes access control
665^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
666
667Use ``__has_feature(cxx_access_control_sfinae)`` or
668``__has_extension(cxx_access_control_sfinae)`` to determine whether
669access-control errors (e.g., calling a private constructor) are considered to
670be template argument deduction errors (aka SFINAE errors), per `C++ DR1170
671<http://www.open-std.org/jtc1/sc22/wg21/docs/cwg_defects.html#1170>`_.
672
673C++11 alias templates
674^^^^^^^^^^^^^^^^^^^^^
675
676Use ``__has_feature(cxx_alias_templates)`` or
677``__has_extension(cxx_alias_templates)`` to determine if support for C++11's
678alias declarations and alias templates is enabled.
679
680C++11 alignment specifiers
681^^^^^^^^^^^^^^^^^^^^^^^^^^
682
683Use ``__has_feature(cxx_alignas)`` or ``__has_extension(cxx_alignas)`` to
684determine if support for alignment specifiers using ``alignas`` is enabled.
685
686Use ``__has_feature(cxx_alignof)`` or ``__has_extension(cxx_alignof)`` to
687determine if support for the ``alignof`` keyword is enabled.
688
689C++11 attributes
690^^^^^^^^^^^^^^^^
691
692Use ``__has_feature(cxx_attributes)`` or ``__has_extension(cxx_attributes)`` to
693determine if support for attribute parsing with C++11's square bracket notation
694is enabled.
695
696C++11 generalized constant expressions
697^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
698
699Use ``__has_feature(cxx_constexpr)`` to determine if support for generalized
700constant expressions (e.g., ``constexpr``) is enabled.
701
702C++11 ``decltype()``
703^^^^^^^^^^^^^^^^^^^^
704
705Use ``__has_feature(cxx_decltype)`` or ``__has_extension(cxx_decltype)`` to
706determine if support for the ``decltype()`` specifier is enabled.  C++11's
707``decltype`` does not require type-completeness of a function call expression.
708Use ``__has_feature(cxx_decltype_incomplete_return_types)`` or
709``__has_extension(cxx_decltype_incomplete_return_types)`` to determine if
710support for this feature is enabled.
711
712C++11 default template arguments in function templates
713^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
714
715Use ``__has_feature(cxx_default_function_template_args)`` or
716``__has_extension(cxx_default_function_template_args)`` to determine if support
717for default template arguments in function templates is enabled.
718
719C++11 ``default``\ ed functions
720^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
721
722Use ``__has_feature(cxx_defaulted_functions)`` or
723``__has_extension(cxx_defaulted_functions)`` to determine if support for
724defaulted function definitions (with ``= default``) is enabled.
725
726C++11 delegating constructors
727^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
728
729Use ``__has_feature(cxx_delegating_constructors)`` to determine if support for
730delegating constructors is enabled.
731
732C++11 ``deleted`` functions
733^^^^^^^^^^^^^^^^^^^^^^^^^^^
734
735Use ``__has_feature(cxx_deleted_functions)`` or
736``__has_extension(cxx_deleted_functions)`` to determine if support for deleted
737function definitions (with ``= delete``) is enabled.
738
739C++11 explicit conversion functions
740^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
741
742Use ``__has_feature(cxx_explicit_conversions)`` to determine if support for
743``explicit`` conversion functions is enabled.
744
745C++11 generalized initializers
746^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
747
748Use ``__has_feature(cxx_generalized_initializers)`` to determine if support for
749generalized initializers (using braced lists and ``std::initializer_list``) is
750enabled.
751
752C++11 implicit move constructors/assignment operators
753^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
754
755Use ``__has_feature(cxx_implicit_moves)`` to determine if Clang will implicitly
756generate move constructors and move assignment operators where needed.
757
758C++11 inheriting constructors
759^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
760
761Use ``__has_feature(cxx_inheriting_constructors)`` to determine if support for
762inheriting constructors is enabled.
763
764C++11 inline namespaces
765^^^^^^^^^^^^^^^^^^^^^^^
766
767Use ``__has_feature(cxx_inline_namespaces)`` or
768``__has_extension(cxx_inline_namespaces)`` to determine if support for inline
769namespaces is enabled.
770
771C++11 lambdas
772^^^^^^^^^^^^^
773
774Use ``__has_feature(cxx_lambdas)`` or ``__has_extension(cxx_lambdas)`` to
775determine if support for lambdas is enabled.
776
777C++11 local and unnamed types as template arguments
778^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
779
780Use ``__has_feature(cxx_local_type_template_args)`` or
781``__has_extension(cxx_local_type_template_args)`` to determine if support for
782local and unnamed types as template arguments is enabled.
783
784C++11 noexcept
785^^^^^^^^^^^^^^
786
787Use ``__has_feature(cxx_noexcept)`` or ``__has_extension(cxx_noexcept)`` to
788determine if support for noexcept exception specifications is enabled.
789
790C++11 in-class non-static data member initialization
791^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
792
793Use ``__has_feature(cxx_nonstatic_member_init)`` to determine whether in-class
794initialization of non-static data members is enabled.
795
796C++11 ``nullptr``
797^^^^^^^^^^^^^^^^^
798
799Use ``__has_feature(cxx_nullptr)`` or ``__has_extension(cxx_nullptr)`` to
800determine if support for ``nullptr`` is enabled.
801
802C++11 ``override control``
803^^^^^^^^^^^^^^^^^^^^^^^^^^
804
805Use ``__has_feature(cxx_override_control)`` or
806``__has_extension(cxx_override_control)`` to determine if support for the
807override control keywords is enabled.
808
809C++11 reference-qualified functions
810^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
811
812Use ``__has_feature(cxx_reference_qualified_functions)`` or
813``__has_extension(cxx_reference_qualified_functions)`` to determine if support
814for reference-qualified functions (e.g., member functions with ``&`` or ``&&``
815applied to ``*this``) is enabled.
816
817C++11 range-based ``for`` loop
818^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
819
820Use ``__has_feature(cxx_range_for)`` or ``__has_extension(cxx_range_for)`` to
821determine if support for the range-based for loop is enabled.
822
823C++11 raw string literals
824^^^^^^^^^^^^^^^^^^^^^^^^^
825
826Use ``__has_feature(cxx_raw_string_literals)`` to determine if support for raw
827string literals (e.g., ``R"x(foo\bar)x"``) is enabled.
828
829C++11 rvalue references
830^^^^^^^^^^^^^^^^^^^^^^^
831
832Use ``__has_feature(cxx_rvalue_references)`` or
833``__has_extension(cxx_rvalue_references)`` to determine if support for rvalue
834references is enabled.
835
836C++11 ``static_assert()``
837^^^^^^^^^^^^^^^^^^^^^^^^^
838
839Use ``__has_feature(cxx_static_assert)`` or
840``__has_extension(cxx_static_assert)`` to determine if support for compile-time
841assertions using ``static_assert`` is enabled.
842
843C++11 ``thread_local``
844^^^^^^^^^^^^^^^^^^^^^^
845
846Use ``__has_feature(cxx_thread_local)`` to determine if support for
847``thread_local`` variables is enabled.
848
849C++11 type inference
850^^^^^^^^^^^^^^^^^^^^
851
852Use ``__has_feature(cxx_auto_type)`` or ``__has_extension(cxx_auto_type)`` to
853determine C++11 type inference is supported using the ``auto`` specifier.  If
854this is disabled, ``auto`` will instead be a storage class specifier, as in C
855or C++98.
856
857C++11 strongly typed enumerations
858^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
859
860Use ``__has_feature(cxx_strong_enums)`` or
861``__has_extension(cxx_strong_enums)`` to determine if support for strongly
862typed, scoped enumerations is enabled.
863
864C++11 trailing return type
865^^^^^^^^^^^^^^^^^^^^^^^^^^
866
867Use ``__has_feature(cxx_trailing_return)`` or
868``__has_extension(cxx_trailing_return)`` to determine if support for the
869alternate function declaration syntax with trailing return type is enabled.
870
871C++11 Unicode string literals
872^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
873
874Use ``__has_feature(cxx_unicode_literals)`` to determine if support for Unicode
875string literals is enabled.
876
877C++11 unrestricted unions
878^^^^^^^^^^^^^^^^^^^^^^^^^
879
880Use ``__has_feature(cxx_unrestricted_unions)`` to determine if support for
881unrestricted unions is enabled.
882
883C++11 user-defined literals
884^^^^^^^^^^^^^^^^^^^^^^^^^^^
885
886Use ``__has_feature(cxx_user_literals)`` to determine if support for
887user-defined literals is enabled.
888
889C++11 variadic templates
890^^^^^^^^^^^^^^^^^^^^^^^^
891
892Use ``__has_feature(cxx_variadic_templates)`` or
893``__has_extension(cxx_variadic_templates)`` to determine if support for
894variadic templates is enabled.
895
896C++14
897-----
898
899The features listed below are part of the C++14 standard.  As a result, all
900these features are enabled with the ``-std=C++14`` or ``-std=gnu++14`` option
901when compiling C++ code.
902
903C++14 binary literals
904^^^^^^^^^^^^^^^^^^^^^
905
906Use ``__has_feature(cxx_binary_literals)`` or
907``__has_extension(cxx_binary_literals)`` to determine whether
908binary literals (for instance, ``0b10010``) are recognized. Clang supports this
909feature as an extension in all language modes.
910
911C++14 contextual conversions
912^^^^^^^^^^^^^^^^^^^^^^^^^^^^
913
914Use ``__has_feature(cxx_contextual_conversions)`` or
915``__has_extension(cxx_contextual_conversions)`` to determine if the C++14 rules
916are used when performing an implicit conversion for an array bound in a
917*new-expression*, the operand of a *delete-expression*, an integral constant
918expression, or a condition in a ``switch`` statement.
919
920C++14 decltype(auto)
921^^^^^^^^^^^^^^^^^^^^
922
923Use ``__has_feature(cxx_decltype_auto)`` or
924``__has_extension(cxx_decltype_auto)`` to determine if support
925for the ``decltype(auto)`` placeholder type is enabled.
926
927C++14 default initializers for aggregates
928^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
929
930Use ``__has_feature(cxx_aggregate_nsdmi)`` or
931``__has_extension(cxx_aggregate_nsdmi)`` to determine if support
932for default initializers in aggregate members is enabled.
933
934C++14 digit separators
935^^^^^^^^^^^^^^^^^^^^^^
936
937Use ``__cpp_digit_separators`` to determine if support for digit separators
938using single quotes (for instance, ``10'000``) is enabled. At this time, there
939is no corresponding ``__has_feature`` name
940
941C++14 generalized lambda capture
942^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
943
944Use ``__has_feature(cxx_init_captures)`` or
945``__has_extension(cxx_init_captures)`` to determine if support for
946lambda captures with explicit initializers is enabled
947(for instance, ``[n(0)] { return ++n; }``).
948
949C++14 generic lambdas
950^^^^^^^^^^^^^^^^^^^^^
951
952Use ``__has_feature(cxx_generic_lambdas)`` or
953``__has_extension(cxx_generic_lambdas)`` to determine if support for generic
954(polymorphic) lambdas is enabled
955(for instance, ``[] (auto x) { return x + 1; }``).
956
957C++14 relaxed constexpr
958^^^^^^^^^^^^^^^^^^^^^^^
959
960Use ``__has_feature(cxx_relaxed_constexpr)`` or
961``__has_extension(cxx_relaxed_constexpr)`` to determine if variable
962declarations, local variable modification, and control flow constructs
963are permitted in ``constexpr`` functions.
964
965C++14 return type deduction
966^^^^^^^^^^^^^^^^^^^^^^^^^^^
967
968Use ``__has_feature(cxx_return_type_deduction)`` or
969``__has_extension(cxx_return_type_deduction)`` to determine if support
970for return type deduction for functions (using ``auto`` as a return type)
971is enabled.
972
973C++14 runtime-sized arrays
974^^^^^^^^^^^^^^^^^^^^^^^^^^
975
976Use ``__has_feature(cxx_runtime_array)`` or
977``__has_extension(cxx_runtime_array)`` to determine if support
978for arrays of runtime bound (a restricted form of variable-length arrays)
979is enabled.
980Clang's implementation of this feature is incomplete.
981
982C++14 variable templates
983^^^^^^^^^^^^^^^^^^^^^^^^
984
985Use ``__has_feature(cxx_variable_templates)`` or
986``__has_extension(cxx_variable_templates)`` to determine if support for
987templated variable declarations is enabled.
988
989C11
990---
991
992The features listed below are part of the C11 standard.  As a result, all these
993features are enabled with the ``-std=c11`` or ``-std=gnu11`` option when
994compiling C code.  Additionally, because these features are all
995backward-compatible, they are available as extensions in all language modes.
996
997C11 alignment specifiers
998^^^^^^^^^^^^^^^^^^^^^^^^
999
1000Use ``__has_feature(c_alignas)`` or ``__has_extension(c_alignas)`` to determine
1001if support for alignment specifiers using ``_Alignas`` is enabled.
1002
1003Use ``__has_feature(c_alignof)`` or ``__has_extension(c_alignof)`` to determine
1004if support for the ``_Alignof`` keyword is enabled.
1005
1006C11 atomic operations
1007^^^^^^^^^^^^^^^^^^^^^
1008
1009Use ``__has_feature(c_atomic)`` or ``__has_extension(c_atomic)`` to determine
1010if support for atomic types using ``_Atomic`` is enabled.  Clang also provides
1011:ref:`a set of builtins <langext-__c11_atomic>` which can be used to implement
1012the ``<stdatomic.h>`` operations on ``_Atomic`` types. Use
1013``__has_include(<stdatomic.h>)`` to determine if C11's ``<stdatomic.h>`` header
1014is available.
1015
1016Clang will use the system's ``<stdatomic.h>`` header when one is available, and
1017will otherwise use its own. When using its own, implementations of the atomic
1018operations are provided as macros. In the cases where C11 also requires a real
1019function, this header provides only the declaration of that function (along
1020with a shadowing macro implementation), and you must link to a library which
1021provides a definition of the function if you use it instead of the macro.
1022
1023C11 generic selections
1024^^^^^^^^^^^^^^^^^^^^^^
1025
1026Use ``__has_feature(c_generic_selections)`` or
1027``__has_extension(c_generic_selections)`` to determine if support for generic
1028selections is enabled.
1029
1030As an extension, the C11 generic selection expression is available in all
1031languages supported by Clang.  The syntax is the same as that given in the C11
1032standard.
1033
1034In C, type compatibility is decided according to the rules given in the
1035appropriate standard, but in C++, which lacks the type compatibility rules used
1036in C, types are considered compatible only if they are equivalent.
1037
1038C11 ``_Static_assert()``
1039^^^^^^^^^^^^^^^^^^^^^^^^
1040
1041Use ``__has_feature(c_static_assert)`` or ``__has_extension(c_static_assert)``
1042to determine if support for compile-time assertions using ``_Static_assert`` is
1043enabled.
1044
1045C11 ``_Thread_local``
1046^^^^^^^^^^^^^^^^^^^^^
1047
1048Use ``__has_feature(c_thread_local)`` or ``__has_extension(c_thread_local)``
1049to determine if support for ``_Thread_local`` variables is enabled.
1050
1051Modules
1052-------
1053
1054Use ``__has_feature(modules)`` to determine if Modules have been enabled.
1055For example, compiling code with ``-fmodules`` enables the use of Modules.
1056
1057More information could be found `here <https://clang.llvm.org/docs/Modules.html>`_.
1058
1059Type Trait Primitives
1060=====================
1061
1062Type trait primitives are special builtin constant expressions that can be used
1063by the standard C++ library to facilitate or simplify the implementation of
1064user-facing type traits in the <type_traits> header.
1065
1066They are not intended to be used directly by user code because they are
1067implementation-defined and subject to change -- as such they're tied closely to
1068the supported set of system headers, currently:
1069
1070* LLVM's own libc++
1071* GNU libstdc++
1072* The Microsoft standard C++ library
1073
1074Clang supports the `GNU C++ type traits
1075<https://gcc.gnu.org/onlinedocs/gcc/Type-Traits.html>`_ and a subset of the
1076`Microsoft Visual C++ type traits
1077<https://msdn.microsoft.com/en-us/library/ms177194(v=VS.100).aspx>`_,
1078as well as nearly all of the
1079`Embarcadero C++ type traits
1080<http://docwiki.embarcadero.com/RADStudio/Rio/en/Type_Trait_Functions_(C%2B%2B11)_Index>`_.
1081
1082The following type trait primitives are supported by Clang. Those traits marked
1083(C++) provide implementations for type traits specified by the C++ standard;
1084``__X(...)`` has the same semantics and constraints as the corresponding
1085``std::X_t<...>`` or ``std::X_v<...>`` type trait.
1086
1087* ``__array_rank(type)`` (Embarcadero):
1088  Returns the number of levels of array in the type ``type``:
1089  ``0`` if ``type`` is not an array type, and
1090  ``__array_rank(element) + 1`` if ``type`` is an array of ``element``.
1091* ``__array_extent(type, dim)`` (Embarcadero):
1092  The ``dim``'th array bound in the type ``type``, or ``0`` if
1093  ``dim >= __array_rank(type)``.
1094* ``__has_nothrow_assign`` (GNU, Microsoft, Embarcadero):
1095  Deprecated, use ``__is_nothrow_assignable`` instead.
1096* ``__has_nothrow_move_assign`` (GNU, Microsoft):
1097  Deprecated, use ``__is_nothrow_assignable`` instead.
1098* ``__has_nothrow_copy`` (GNU, Microsoft):
1099  Deprecated, use ``__is_nothrow_constructible`` instead.
1100* ``__has_nothrow_constructor`` (GNU, Microsoft):
1101  Deprecated, use ``__is_nothrow_constructible`` instead.
1102* ``__has_trivial_assign`` (GNU, Microsoft, Embarcadero):
1103  Deprecated, use ``__is_trivially_assignable`` instead.
1104* ``__has_trivial_move_assign`` (GNU, Microsoft):
1105  Deprecated, use ``__is_trivially_assignable`` instead.
1106* ``__has_trivial_copy`` (GNU, Microsoft):
1107  Deprecated, use ``__is_trivially_constructible`` instead.
1108* ``__has_trivial_constructor`` (GNU, Microsoft):
1109  Deprecated, use ``__is_trivially_constructible`` instead.
1110* ``__has_trivial_move_constructor`` (GNU, Microsoft):
1111  Deprecated, use ``__is_trivially_constructible`` instead.
1112* ``__has_trivial_destructor`` (GNU, Microsoft, Embarcadero):
1113  Deprecated, use ``__is_trivially_destructible`` instead.
1114* ``__has_unique_object_representations`` (C++, GNU)
1115* ``__has_virtual_destructor`` (C++, GNU, Microsoft, Embarcadero)
1116* ``__is_abstract`` (C++, GNU, Microsoft, Embarcadero)
1117* ``__is_aggregate`` (C++, GNU, Microsoft)
1118* ``__is_arithmetic`` (C++, Embarcadero)
1119* ``__is_array`` (C++, Embarcadero)
1120* ``__is_assignable`` (C++, MSVC 2015)
1121* ``__is_base_of`` (C++, GNU, Microsoft, Embarcadero)
1122* ``__is_class`` (C++, GNU, Microsoft, Embarcadero)
1123* ``__is_complete_type(type)`` (Embarcadero):
1124  Return ``true`` if ``type`` is a complete type.
1125  Warning: this trait is dangerous because it can return different values at
1126  different points in the same program.
1127* ``__is_compound`` (C++, Embarcadero)
1128* ``__is_const`` (C++, Embarcadero)
1129* ``__is_constructible`` (C++, MSVC 2013)
1130* ``__is_convertible`` (C++, Embarcadero)
1131* ``__is_convertible_to`` (Microsoft):
1132  Synonym for ``__is_convertible``.
1133* ``__is_destructible`` (C++, MSVC 2013):
1134  Only available in ``-fms-extensions`` mode.
1135* ``__is_empty`` (C++, GNU, Microsoft, Embarcadero)
1136* ``__is_enum`` (C++, GNU, Microsoft, Embarcadero)
1137* ``__is_final`` (C++, GNU, Microsoft)
1138* ``__is_floating_point`` (C++, Embarcadero)
1139* ``__is_function`` (C++, Embarcadero)
1140* ``__is_fundamental`` (C++, Embarcadero)
1141* ``__is_integral`` (C++, Embarcadero)
1142* ``__is_interface_class`` (Microsoft):
1143  Returns ``false``, even for types defined with ``__interface``.
1144* ``__is_literal`` (Clang):
1145  Synonym for ``__is_literal_type``.
1146* ``__is_literal_type`` (C++, GNU, Microsoft):
1147  Note, the corresponding standard trait was deprecated in C++17
1148  and removed in C++20.
1149* ``__is_lvalue_reference`` (C++, Embarcadero)
1150* ``__is_member_object_pointer`` (C++, Embarcadero)
1151* ``__is_member_function_pointer`` (C++, Embarcadero)
1152* ``__is_member_pointer`` (C++, Embarcadero)
1153* ``__is_nothrow_assignable`` (C++, MSVC 2013)
1154* ``__is_nothrow_constructible`` (C++, MSVC 2013)
1155* ``__is_nothrow_destructible`` (C++, MSVC 2013)
1156  Only available in ``-fms-extensions`` mode.
1157* ``__is_object`` (C++, Embarcadero)
1158* ``__is_pod`` (C++, GNU, Microsoft, Embarcadero):
1159  Note, the corresponding standard trait was deprecated in C++20.
1160* ``__is_pointer`` (C++, Embarcadero)
1161* ``__is_polymorphic`` (C++, GNU, Microsoft, Embarcadero)
1162* ``__is_reference`` (C++, Embarcadero)
1163* ``__is_rvalue_reference`` (C++, Embarcadero)
1164* ``__is_same`` (C++, Embarcadero)
1165* ``__is_same_as`` (GCC): Synonym for ``__is_same``.
1166* ``__is_scalar`` (C++, Embarcadero)
1167* ``__is_sealed`` (Microsoft):
1168  Synonym for ``__is_final``.
1169* ``__is_signed`` (C++, Embarcadero):
1170  Returns false for enumeration types, and returns true for floating-point types. Note, before Clang 10, returned true for enumeration types if the underlying type was signed, and returned false for floating-point types.
1171* ``__is_standard_layout`` (C++, GNU, Microsoft, Embarcadero)
1172* ``__is_trivial`` (C++, GNU, Microsoft, Embarcadero)
1173* ``__is_trivially_assignable`` (C++, GNU, Microsoft)
1174* ``__is_trivially_constructible`` (C++, GNU, Microsoft)
1175* ``__is_trivially_copyable`` (C++, GNU, Microsoft)
1176* ``__is_trivially_destructible`` (C++, MSVC 2013)
1177* ``__is_union`` (C++, GNU, Microsoft, Embarcadero)
1178* ``__is_unsigned`` (C++, Embarcadero)
1179  Note that this currently returns true for enumeration types if the underlying
1180  type is unsigned, in violation of the requirements for ``std::is_unsigned``.
1181  This behavior is likely to change in a future version of Clang.
1182* ``__is_void`` (C++, Embarcadero)
1183* ``__is_volatile`` (C++, Embarcadero)
1184* ``__reference_binds_to_temporary(T, U)`` (Clang):  Determines whether a
1185  reference of type ``T`` bound to an expression of type ``U`` would bind to a
1186  materialized temporary object. If ``T`` is not a reference type the result
1187  is false. Note this trait will also return false when the initialization of
1188  ``T`` from ``U`` is ill-formed.
1189* ``__underlying_type`` (C++, GNU, Microsoft)
1190
1191In addition, the following expression traits are supported:
1192
1193* ``__is_lvalue_expr(e)`` (Embarcadero):
1194  Returns true if ``e`` is an lvalue expression.
1195  Deprecated, use ``__is_lvalue_reference(decltype((e)))`` instead.
1196* ``__is_rvalue_expr(e)`` (Embarcadero):
1197  Returns true if ``e`` is a prvalue expression.
1198  Deprecated, use ``!__is_reference(decltype((e)))`` instead.
1199
1200There are multiple ways to detect support for a type trait ``__X`` in the
1201compiler, depending on the oldest version of Clang you wish to support.
1202
1203* From Clang 10 onwards, ``__has_builtin(__X)`` can be used.
1204* From Clang 6 onwards, ``!__is_identifier(__X)`` can be used.
1205* From Clang 3 onwards, ``__has_feature(X)`` can be used, but only supports
1206  the following traits:
1207
1208  * ``__has_nothrow_assign``
1209  * ``__has_nothrow_copy``
1210  * ``__has_nothrow_constructor``
1211  * ``__has_trivial_assign``
1212  * ``__has_trivial_copy``
1213  * ``__has_trivial_constructor``
1214  * ``__has_trivial_destructor``
1215  * ``__has_virtual_destructor``
1216  * ``__is_abstract``
1217  * ``__is_base_of``
1218  * ``__is_class``
1219  * ``__is_constructible``
1220  * ``__is_convertible_to``
1221  * ``__is_empty``
1222  * ``__is_enum``
1223  * ``__is_final``
1224  * ``__is_literal``
1225  * ``__is_standard_layout``
1226  * ``__is_pod``
1227  * ``__is_polymorphic``
1228  * ``__is_sealed``
1229  * ``__is_trivial``
1230  * ``__is_trivially_assignable``
1231  * ``__is_trivially_constructible``
1232  * ``__is_trivially_copyable``
1233  * ``__is_union``
1234  * ``__underlying_type``
1235
1236A simplistic usage example as might be seen in standard C++ headers follows:
1237
1238.. code-block:: c++
1239
1240  #if __has_builtin(__is_convertible_to)
1241  template<typename From, typename To>
1242  struct is_convertible_to {
1243    static const bool value = __is_convertible_to(From, To);
1244  };
1245  #else
1246  // Emulate type trait for compatibility with other compilers.
1247  #endif
1248
1249Blocks
1250======
1251
1252The syntax and high level language feature description is in
1253:doc:`BlockLanguageSpec<BlockLanguageSpec>`. Implementation and ABI details for
1254the clang implementation are in :doc:`Block-ABI-Apple<Block-ABI-Apple>`.
1255
1256Query for this feature with ``__has_extension(blocks)``.
1257
1258ASM Goto with Output Constraints
1259================================
1260
1261In addition to the functionality provided by `GCC's extended
1262assembly <https://gcc.gnu.org/onlinedocs/gcc/Extended-Asm.html>`_, clang
1263supports output constraints with the `goto` form.
1264
1265The goto form of GCC's extended assembly allows the programmer to branch to a C
1266label from within an inline assembly block. Clang extends this behavior by
1267allowing the programmer to use output constraints:
1268
1269.. code-block:: c++
1270
1271  int foo(int x) {
1272      int y;
1273      asm goto("# %0 %1 %l2" : "=r"(y) : "r"(x) : : err);
1274      return y;
1275    err:
1276      return -1;
1277  }
1278
1279It's important to note that outputs are valid only on the "fallthrough" branch.
1280Using outputs on an indirect branch may result in undefined behavior. For
1281example, in the function above, use of the value assigned to `y` in the `err`
1282block is undefined behavior.
1283
1284Query for this feature with ``__has_extension(gnu_asm_goto_with_outputs)``.
1285
1286Objective-C Features
1287====================
1288
1289Related result types
1290--------------------
1291
1292According to Cocoa conventions, Objective-C methods with certain names
1293("``init``", "``alloc``", etc.) always return objects that are an instance of
1294the receiving class's type.  Such methods are said to have a "related result
1295type", meaning that a message send to one of these methods will have the same
1296static type as an instance of the receiver class.  For example, given the
1297following classes:
1298
1299.. code-block:: objc
1300
1301  @interface NSObject
1302  + (id)alloc;
1303  - (id)init;
1304  @end
1305
1306  @interface NSArray : NSObject
1307  @end
1308
1309and this common initialization pattern
1310
1311.. code-block:: objc
1312
1313  NSArray *array = [[NSArray alloc] init];
1314
1315the type of the expression ``[NSArray alloc]`` is ``NSArray*`` because
1316``alloc`` implicitly has a related result type.  Similarly, the type of the
1317expression ``[[NSArray alloc] init]`` is ``NSArray*``, since ``init`` has a
1318related result type and its receiver is known to have the type ``NSArray *``.
1319If neither ``alloc`` nor ``init`` had a related result type, the expressions
1320would have had type ``id``, as declared in the method signature.
1321
1322A method with a related result type can be declared by using the type
1323``instancetype`` as its result type.  ``instancetype`` is a contextual keyword
1324that is only permitted in the result type of an Objective-C method, e.g.
1325
1326.. code-block:: objc
1327
1328  @interface A
1329  + (instancetype)constructAnA;
1330  @end
1331
1332The related result type can also be inferred for some methods.  To determine
1333whether a method has an inferred related result type, the first word in the
1334camel-case selector (e.g., "``init``" in "``initWithObjects``") is considered,
1335and the method will have a related result type if its return type is compatible
1336with the type of its class and if:
1337
1338* the first word is "``alloc``" or "``new``", and the method is a class method,
1339  or
1340
1341* the first word is "``autorelease``", "``init``", "``retain``", or "``self``",
1342  and the method is an instance method.
1343
1344If a method with a related result type is overridden by a subclass method, the
1345subclass method must also return a type that is compatible with the subclass
1346type.  For example:
1347
1348.. code-block:: objc
1349
1350  @interface NSString : NSObject
1351  - (NSUnrelated *)init; // incorrect usage: NSUnrelated is not NSString or a superclass of NSString
1352  @end
1353
1354Related result types only affect the type of a message send or property access
1355via the given method.  In all other respects, a method with a related result
1356type is treated the same way as method that returns ``id``.
1357
1358Use ``__has_feature(objc_instancetype)`` to determine whether the
1359``instancetype`` contextual keyword is available.
1360
1361Automatic reference counting
1362----------------------------
1363
1364Clang provides support for :doc:`automated reference counting
1365<AutomaticReferenceCounting>` in Objective-C, which eliminates the need
1366for manual ``retain``/``release``/``autorelease`` message sends.  There are three
1367feature macros associated with automatic reference counting:
1368``__has_feature(objc_arc)`` indicates the availability of automated reference
1369counting in general, while ``__has_feature(objc_arc_weak)`` indicates that
1370automated reference counting also includes support for ``__weak`` pointers to
1371Objective-C objects. ``__has_feature(objc_arc_fields)`` indicates that C structs
1372are allowed to have fields that are pointers to Objective-C objects managed by
1373automatic reference counting.
1374
1375.. _objc-weak:
1376
1377Weak references
1378---------------
1379
1380Clang supports ARC-style weak and unsafe references in Objective-C even
1381outside of ARC mode.  Weak references must be explicitly enabled with
1382the ``-fobjc-weak`` option; use ``__has_feature((objc_arc_weak))``
1383to test whether they are enabled.  Unsafe references are enabled
1384unconditionally.  ARC-style weak and unsafe references cannot be used
1385when Objective-C garbage collection is enabled.
1386
1387Except as noted below, the language rules for the ``__weak`` and
1388``__unsafe_unretained`` qualifiers (and the ``weak`` and
1389``unsafe_unretained`` property attributes) are just as laid out
1390in the :doc:`ARC specification <AutomaticReferenceCounting>`.
1391In particular, note that some classes do not support forming weak
1392references to their instances, and note that special care must be
1393taken when storing weak references in memory where initialization
1394and deinitialization are outside the responsibility of the compiler
1395(such as in ``malloc``-ed memory).
1396
1397Loading from a ``__weak`` variable always implicitly retains the
1398loaded value.  In non-ARC modes, this retain is normally balanced
1399by an implicit autorelease.  This autorelease can be suppressed
1400by performing the load in the receiver position of a ``-retain``
1401message send (e.g. ``[weakReference retain]``); note that this performs
1402only a single retain (the retain done when primitively loading from
1403the weak reference).
1404
1405For the most part, ``__unsafe_unretained`` in non-ARC modes is just the
1406default behavior of variables and therefore is not needed.  However,
1407it does have an effect on the semantics of block captures: normally,
1408copying a block which captures an Objective-C object or block pointer
1409causes the captured pointer to be retained or copied, respectively,
1410but that behavior is suppressed when the captured variable is qualified
1411with ``__unsafe_unretained``.
1412
1413Note that the ``__weak`` qualifier formerly meant the GC qualifier in
1414all non-ARC modes and was silently ignored outside of GC modes.  It now
1415means the ARC-style qualifier in all non-GC modes and is no longer
1416allowed if not enabled by either ``-fobjc-arc`` or ``-fobjc-weak``.
1417It is expected that ``-fobjc-weak`` will eventually be enabled by default
1418in all non-GC Objective-C modes.
1419
1420.. _objc-fixed-enum:
1421
1422Enumerations with a fixed underlying type
1423-----------------------------------------
1424
1425Clang provides support for C++11 enumerations with a fixed underlying type
1426within Objective-C.  For example, one can write an enumeration type as:
1427
1428.. code-block:: c++
1429
1430  typedef enum : unsigned char { Red, Green, Blue } Color;
1431
1432This specifies that the underlying type, which is used to store the enumeration
1433value, is ``unsigned char``.
1434
1435Use ``__has_feature(objc_fixed_enum)`` to determine whether support for fixed
1436underlying types is available in Objective-C.
1437
1438Interoperability with C++11 lambdas
1439-----------------------------------
1440
1441Clang provides interoperability between C++11 lambdas and blocks-based APIs, by
1442permitting a lambda to be implicitly converted to a block pointer with the
1443corresponding signature.  For example, consider an API such as ``NSArray``'s
1444array-sorting method:
1445
1446.. code-block:: objc
1447
1448  - (NSArray *)sortedArrayUsingComparator:(NSComparator)cmptr;
1449
1450``NSComparator`` is simply a typedef for the block pointer ``NSComparisonResult
1451(^)(id, id)``, and parameters of this type are generally provided with block
1452literals as arguments.  However, one can also use a C++11 lambda so long as it
1453provides the same signature (in this case, accepting two parameters of type
1454``id`` and returning an ``NSComparisonResult``):
1455
1456.. code-block:: objc
1457
1458  NSArray *array = @[@"string 1", @"string 21", @"string 12", @"String 11",
1459                     @"String 02"];
1460  const NSStringCompareOptions comparisonOptions
1461    = NSCaseInsensitiveSearch | NSNumericSearch |
1462      NSWidthInsensitiveSearch | NSForcedOrderingSearch;
1463  NSLocale *currentLocale = [NSLocale currentLocale];
1464  NSArray *sorted
1465    = [array sortedArrayUsingComparator:[=](id s1, id s2) -> NSComparisonResult {
1466               NSRange string1Range = NSMakeRange(0, [s1 length]);
1467               return [s1 compare:s2 options:comparisonOptions
1468               range:string1Range locale:currentLocale];
1469       }];
1470  NSLog(@"sorted: %@", sorted);
1471
1472This code relies on an implicit conversion from the type of the lambda
1473expression (an unnamed, local class type called the *closure type*) to the
1474corresponding block pointer type.  The conversion itself is expressed by a
1475conversion operator in that closure type that produces a block pointer with the
1476same signature as the lambda itself, e.g.,
1477
1478.. code-block:: objc
1479
1480  operator NSComparisonResult (^)(id, id)() const;
1481
1482This conversion function returns a new block that simply forwards the two
1483parameters to the lambda object (which it captures by copy), then returns the
1484result.  The returned block is first copied (with ``Block_copy``) and then
1485autoreleased.  As an optimization, if a lambda expression is immediately
1486converted to a block pointer (as in the first example, above), then the block
1487is not copied and autoreleased: rather, it is given the same lifetime as a
1488block literal written at that point in the program, which avoids the overhead
1489of copying a block to the heap in the common case.
1490
1491The conversion from a lambda to a block pointer is only available in
1492Objective-C++, and not in C++ with blocks, due to its use of Objective-C memory
1493management (autorelease).
1494
1495Object Literals and Subscripting
1496--------------------------------
1497
1498Clang provides support for :doc:`Object Literals and Subscripting
1499<ObjectiveCLiterals>` in Objective-C, which simplifies common Objective-C
1500programming patterns, makes programs more concise, and improves the safety of
1501container creation.  There are several feature macros associated with object
1502literals and subscripting: ``__has_feature(objc_array_literals)`` tests the
1503availability of array literals; ``__has_feature(objc_dictionary_literals)``
1504tests the availability of dictionary literals;
1505``__has_feature(objc_subscripting)`` tests the availability of object
1506subscripting.
1507
1508Objective-C Autosynthesis of Properties
1509---------------------------------------
1510
1511Clang provides support for autosynthesis of declared properties.  Using this
1512feature, clang provides default synthesis of those properties not declared
1513@dynamic and not having user provided backing getter and setter methods.
1514``__has_feature(objc_default_synthesize_properties)`` checks for availability
1515of this feature in version of clang being used.
1516
1517.. _langext-objc-retain-release:
1518
1519Objective-C retaining behavior attributes
1520-----------------------------------------
1521
1522In Objective-C, functions and methods are generally assumed to follow the
1523`Cocoa Memory Management
1524<https://developer.apple.com/library/mac/#documentation/Cocoa/Conceptual/MemoryMgmt/Articles/mmRules.html>`_
1525conventions for ownership of object arguments and
1526return values. However, there are exceptions, and so Clang provides attributes
1527to allow these exceptions to be documented. This are used by ARC and the
1528`static analyzer <https://clang-analyzer.llvm.org>`_ Some exceptions may be
1529better described using the ``objc_method_family`` attribute instead.
1530
1531**Usage**: The ``ns_returns_retained``, ``ns_returns_not_retained``,
1532``ns_returns_autoreleased``, ``cf_returns_retained``, and
1533``cf_returns_not_retained`` attributes can be placed on methods and functions
1534that return Objective-C or CoreFoundation objects. They are commonly placed at
1535the end of a function prototype or method declaration:
1536
1537.. code-block:: objc
1538
1539  id foo() __attribute__((ns_returns_retained));
1540
1541  - (NSString *)bar:(int)x __attribute__((ns_returns_retained));
1542
1543The ``*_returns_retained`` attributes specify that the returned object has a +1
1544retain count.  The ``*_returns_not_retained`` attributes specify that the return
1545object has a +0 retain count, even if the normal convention for its selector
1546would be +1.  ``ns_returns_autoreleased`` specifies that the returned object is
1547+0, but is guaranteed to live at least as long as the next flush of an
1548autorelease pool.
1549
1550**Usage**: The ``ns_consumed`` and ``cf_consumed`` attributes can be placed on
1551an parameter declaration; they specify that the argument is expected to have a
1552+1 retain count, which will be balanced in some way by the function or method.
1553The ``ns_consumes_self`` attribute can only be placed on an Objective-C
1554method; it specifies that the method expects its ``self`` parameter to have a
1555+1 retain count, which it will balance in some way.
1556
1557.. code-block:: objc
1558
1559  void foo(__attribute__((ns_consumed)) NSString *string);
1560
1561  - (void) bar __attribute__((ns_consumes_self));
1562  - (void) baz:(id) __attribute__((ns_consumed)) x;
1563
1564Further examples of these attributes are available in the static analyzer's `list of annotations for analysis
1565<https://clang-analyzer.llvm.org/annotations.html#cocoa_mem>`_.
1566
1567Query for these features with ``__has_attribute(ns_consumed)``,
1568``__has_attribute(ns_returns_retained)``, etc.
1569
1570Objective-C @available
1571----------------------
1572
1573It is possible to use the newest SDK but still build a program that can run on
1574older versions of macOS and iOS by passing ``-mmacosx-version-min=`` /
1575``-miphoneos-version-min=``.
1576
1577Before LLVM 5.0, when calling a function that exists only in the OS that's
1578newer than the target OS (as determined by the minimum deployment version),
1579programmers had to carefully check if the function exists at runtime, using
1580null checks for weakly-linked C functions, ``+class`` for Objective-C classes,
1581and ``-respondsToSelector:`` or ``+instancesRespondToSelector:`` for
1582Objective-C methods.  If such a check was missed, the program would compile
1583fine, run fine on newer systems, but crash on older systems.
1584
1585As of LLVM 5.0, ``-Wunguarded-availability`` uses the `availability attributes
1586<https://clang.llvm.org/docs/AttributeReference.html#availability>`_ together
1587with the new ``@available()`` keyword to assist with this issue.
1588When a method that's introduced in the OS newer than the target OS is called, a
1589-Wunguarded-availability warning is emitted if that call is not guarded:
1590
1591.. code-block:: objc
1592
1593  void my_fun(NSSomeClass* var) {
1594    // If fancyNewMethod was added in e.g. macOS 10.12, but the code is
1595    // built with -mmacosx-version-min=10.11, then this unconditional call
1596    // will emit a -Wunguarded-availability warning:
1597    [var fancyNewMethod];
1598  }
1599
1600To fix the warning and to avoid the crash on macOS 10.11, wrap it in
1601``if(@available())``:
1602
1603.. code-block:: objc
1604
1605  void my_fun(NSSomeClass* var) {
1606    if (@available(macOS 10.12, *)) {
1607      [var fancyNewMethod];
1608    } else {
1609      // Put fallback behavior for old macOS versions (and for non-mac
1610      // platforms) here.
1611    }
1612  }
1613
1614The ``*`` is required and means that platforms not explicitly listed will take
1615the true branch, and the compiler will emit ``-Wunguarded-availability``
1616warnings for unlisted platforms based on those platform's deployment target.
1617More than one platform can be listed in ``@available()``:
1618
1619.. code-block:: objc
1620
1621  void my_fun(NSSomeClass* var) {
1622    if (@available(macOS 10.12, iOS 10, *)) {
1623      [var fancyNewMethod];
1624    }
1625  }
1626
1627If the caller of ``my_fun()`` already checks that ``my_fun()`` is only called
1628on 10.12, then add an `availability attribute
1629<https://clang.llvm.org/docs/AttributeReference.html#availability>`_ to it,
1630which will also suppress the warning and require that calls to my_fun() are
1631checked:
1632
1633.. code-block:: objc
1634
1635  API_AVAILABLE(macos(10.12)) void my_fun(NSSomeClass* var) {
1636    [var fancyNewMethod];  // Now ok.
1637  }
1638
1639``@available()`` is only available in Objective-C code.  To use the feature
1640in C and C++ code, use the ``__builtin_available()`` spelling instead.
1641
1642If existing code uses null checks or ``-respondsToSelector:``, it should
1643be changed to use ``@available()`` (or ``__builtin_available``) instead.
1644
1645``-Wunguarded-availability`` is disabled by default, but
1646``-Wunguarded-availability-new``, which only emits this warning for APIs
1647that have been introduced in macOS >= 10.13, iOS >= 11, watchOS >= 4 and
1648tvOS >= 11, is enabled by default.
1649
1650.. _langext-overloading:
1651
1652Objective-C++ ABI: protocol-qualifier mangling of parameters
1653------------------------------------------------------------
1654
1655Starting with LLVM 3.4, Clang produces a new mangling for parameters whose
1656type is a qualified-``id`` (e.g., ``id<Foo>``).  This mangling allows such
1657parameters to be differentiated from those with the regular unqualified ``id``
1658type.
1659
1660This was a non-backward compatible mangling change to the ABI.  This change
1661allows proper overloading, and also prevents mangling conflicts with template
1662parameters of protocol-qualified type.
1663
1664Query the presence of this new mangling with
1665``__has_feature(objc_protocol_qualifier_mangling)``.
1666
1667Initializer lists for complex numbers in C
1668==========================================
1669
1670clang supports an extension which allows the following in C:
1671
1672.. code-block:: c++
1673
1674  #include <math.h>
1675  #include <complex.h>
1676  complex float x = { 1.0f, INFINITY }; // Init to (1, Inf)
1677
1678This construct is useful because there is no way to separately initialize the
1679real and imaginary parts of a complex variable in standard C, given that clang
1680does not support ``_Imaginary``.  (Clang also supports the ``__real__`` and
1681``__imag__`` extensions from gcc, which help in some cases, but are not usable
1682in static initializers.)
1683
1684Note that this extension does not allow eliding the braces; the meaning of the
1685following two lines is different:
1686
1687.. code-block:: c++
1688
1689  complex float x[] = { { 1.0f, 1.0f } }; // [0] = (1, 1)
1690  complex float x[] = { 1.0f, 1.0f }; // [0] = (1, 0), [1] = (1, 0)
1691
1692This extension also works in C++ mode, as far as that goes, but does not apply
1693to the C++ ``std::complex``.  (In C++11, list initialization allows the same
1694syntax to be used with ``std::complex`` with the same meaning.)
1695
1696Builtin Functions
1697=================
1698
1699Clang supports a number of builtin library functions with the same syntax as
1700GCC, including things like ``__builtin_nan``, ``__builtin_constant_p``,
1701``__builtin_choose_expr``, ``__builtin_types_compatible_p``,
1702``__builtin_assume_aligned``, ``__sync_fetch_and_add``, etc.  In addition to
1703the GCC builtins, Clang supports a number of builtins that GCC does not, which
1704are listed here.
1705
1706Please note that Clang does not and will not support all of the GCC builtins
1707for vector operations.  Instead of using builtins, you should use the functions
1708defined in target-specific header files like ``<xmmintrin.h>``, which define
1709portable wrappers for these.  Many of the Clang versions of these functions are
1710implemented directly in terms of :ref:`extended vector support
1711<langext-vectors>` instead of builtins, in order to reduce the number of
1712builtins that we need to implement.
1713
1714``__builtin_assume``
1715------------------------------
1716
1717``__builtin_assume`` is used to provide the optimizer with a boolean
1718invariant that is defined to be true.
1719
1720**Syntax**:
1721
1722.. code-block:: c++
1723
1724  __builtin_assume(bool)
1725
1726**Example of Use**:
1727
1728.. code-block:: c++
1729
1730  int foo(int x) {
1731    __builtin_assume(x != 0);
1732
1733    // The optimizer may short-circuit this check using the invariant.
1734    if (x == 0)
1735      return do_something();
1736
1737    return do_something_else();
1738  }
1739
1740**Description**:
1741
1742The boolean argument to this function is defined to be true. The optimizer may
1743analyze the form of the expression provided as the argument and deduce from
1744that information used to optimize the program. If the condition is violated
1745during execution, the behavior is undefined. The argument itself is never
1746evaluated, so any side effects of the expression will be discarded.
1747
1748Query for this feature with ``__has_builtin(__builtin_assume)``.
1749
1750``__builtin_readcyclecounter``
1751------------------------------
1752
1753``__builtin_readcyclecounter`` is used to access the cycle counter register (or
1754a similar low-latency, high-accuracy clock) on those targets that support it.
1755
1756**Syntax**:
1757
1758.. code-block:: c++
1759
1760  __builtin_readcyclecounter()
1761
1762**Example of Use**:
1763
1764.. code-block:: c++
1765
1766  unsigned long long t0 = __builtin_readcyclecounter();
1767  do_something();
1768  unsigned long long t1 = __builtin_readcyclecounter();
1769  unsigned long long cycles_to_do_something = t1 - t0; // assuming no overflow
1770
1771**Description**:
1772
1773The ``__builtin_readcyclecounter()`` builtin returns the cycle counter value,
1774which may be either global or process/thread-specific depending on the target.
1775As the backing counters often overflow quickly (on the order of seconds) this
1776should only be used for timing small intervals.  When not supported by the
1777target, the return value is always zero.  This builtin takes no arguments and
1778produces an unsigned long long result.
1779
1780Query for this feature with ``__has_builtin(__builtin_readcyclecounter)``. Note
1781that even if present, its use may depend on run-time privilege or other OS
1782controlled state.
1783
1784.. _langext-__builtin_shufflevector:
1785
1786``__builtin_dump_struct``
1787-------------------------
1788
1789**Syntax**:
1790
1791.. code-block:: c++
1792
1793     __builtin_dump_struct(&some_struct, &some_printf_func);
1794
1795**Examples**:
1796
1797.. code-block:: c++
1798
1799     struct S {
1800       int x, y;
1801       float f;
1802       struct T {
1803         int i;
1804       } t;
1805     };
1806
1807     void func(struct S *s) {
1808       __builtin_dump_struct(s, &printf);
1809     }
1810
1811Example output:
1812
1813.. code-block:: none
1814
1815     struct S {
1816     int i : 100
1817     int j : 42
1818     float f : 3.14159
1819     struct T t : struct T {
1820         int i : 1997
1821         }
1822     }
1823
1824**Description**:
1825
1826The '``__builtin_dump_struct``' function is used to print the fields of a simple
1827structure and their values for debugging purposes. The builtin accepts a pointer
1828to a structure to dump the fields of, and a pointer to a formatted output
1829function whose signature must be: ``int (*)(const char *, ...)`` and must
1830support the format specifiers used by ``printf()``.
1831
1832``__builtin_shufflevector``
1833---------------------------
1834
1835``__builtin_shufflevector`` is used to express generic vector
1836permutation/shuffle/swizzle operations.  This builtin is also very important
1837for the implementation of various target-specific header files like
1838``<xmmintrin.h>``.
1839
1840**Syntax**:
1841
1842.. code-block:: c++
1843
1844  __builtin_shufflevector(vec1, vec2, index1, index2, ...)
1845
1846**Examples**:
1847
1848.. code-block:: c++
1849
1850  // identity operation - return 4-element vector v1.
1851  __builtin_shufflevector(v1, v1, 0, 1, 2, 3)
1852
1853  // "Splat" element 0 of V1 into a 4-element result.
1854  __builtin_shufflevector(V1, V1, 0, 0, 0, 0)
1855
1856  // Reverse 4-element vector V1.
1857  __builtin_shufflevector(V1, V1, 3, 2, 1, 0)
1858
1859  // Concatenate every other element of 4-element vectors V1 and V2.
1860  __builtin_shufflevector(V1, V2, 0, 2, 4, 6)
1861
1862  // Concatenate every other element of 8-element vectors V1 and V2.
1863  __builtin_shufflevector(V1, V2, 0, 2, 4, 6, 8, 10, 12, 14)
1864
1865  // Shuffle v1 with some elements being undefined
1866  __builtin_shufflevector(v1, v1, 3, -1, 1, -1)
1867
1868**Description**:
1869
1870The first two arguments to ``__builtin_shufflevector`` are vectors that have
1871the same element type.  The remaining arguments are a list of integers that
1872specify the elements indices of the first two vectors that should be extracted
1873and returned in a new vector.  These element indices are numbered sequentially
1874starting with the first vector, continuing into the second vector.  Thus, if
1875``vec1`` is a 4-element vector, index 5 would refer to the second element of
1876``vec2``. An index of -1 can be used to indicate that the corresponding element
1877in the returned vector is a don't care and can be optimized by the backend.
1878
1879The result of ``__builtin_shufflevector`` is a vector with the same element
1880type as ``vec1``/``vec2`` but that has an element count equal to the number of
1881indices specified.
1882
1883Query for this feature with ``__has_builtin(__builtin_shufflevector)``.
1884
1885.. _langext-__builtin_convertvector:
1886
1887``__builtin_convertvector``
1888---------------------------
1889
1890``__builtin_convertvector`` is used to express generic vector
1891type-conversion operations. The input vector and the output vector
1892type must have the same number of elements.
1893
1894**Syntax**:
1895
1896.. code-block:: c++
1897
1898  __builtin_convertvector(src_vec, dst_vec_type)
1899
1900**Examples**:
1901
1902.. code-block:: c++
1903
1904  typedef double vector4double __attribute__((__vector_size__(32)));
1905  typedef float  vector4float  __attribute__((__vector_size__(16)));
1906  typedef short  vector4short  __attribute__((__vector_size__(8)));
1907  vector4float vf; vector4short vs;
1908
1909  // convert from a vector of 4 floats to a vector of 4 doubles.
1910  __builtin_convertvector(vf, vector4double)
1911  // equivalent to:
1912  (vector4double) { (double) vf[0], (double) vf[1], (double) vf[2], (double) vf[3] }
1913
1914  // convert from a vector of 4 shorts to a vector of 4 floats.
1915  __builtin_convertvector(vs, vector4float)
1916  // equivalent to:
1917  (vector4float) { (float) vs[0], (float) vs[1], (float) vs[2], (float) vs[3] }
1918
1919**Description**:
1920
1921The first argument to ``__builtin_convertvector`` is a vector, and the second
1922argument is a vector type with the same number of elements as the first
1923argument.
1924
1925The result of ``__builtin_convertvector`` is a vector with the same element
1926type as the second argument, with a value defined in terms of the action of a
1927C-style cast applied to each element of the first argument.
1928
1929Query for this feature with ``__has_builtin(__builtin_convertvector)``.
1930
1931``__builtin_bitreverse``
1932------------------------
1933
1934* ``__builtin_bitreverse8``
1935* ``__builtin_bitreverse16``
1936* ``__builtin_bitreverse32``
1937* ``__builtin_bitreverse64``
1938
1939**Syntax**:
1940
1941.. code-block:: c++
1942
1943     __builtin_bitreverse32(x)
1944
1945**Examples**:
1946
1947.. code-block:: c++
1948
1949      uint8_t rev_x = __builtin_bitreverse8(x);
1950      uint16_t rev_x = __builtin_bitreverse16(x);
1951      uint32_t rev_y = __builtin_bitreverse32(y);
1952      uint64_t rev_z = __builtin_bitreverse64(z);
1953
1954**Description**:
1955
1956The '``__builtin_bitreverse``' family of builtins is used to reverse
1957the bitpattern of an integer value; for example ``0b10110110`` becomes
1958``0b01101101``.
1959
1960``__builtin_rotateleft``
1961------------------------
1962
1963* ``__builtin_rotateleft8``
1964* ``__builtin_rotateleft16``
1965* ``__builtin_rotateleft32``
1966* ``__builtin_rotateleft64``
1967
1968**Syntax**:
1969
1970.. code-block:: c++
1971
1972     __builtin_rotateleft32(x, y)
1973
1974**Examples**:
1975
1976.. code-block:: c++
1977
1978      uint8_t rot_x = __builtin_rotateleft8(x, y);
1979      uint16_t rot_x = __builtin_rotateleft16(x, y);
1980      uint32_t rot_x = __builtin_rotateleft32(x, y);
1981      uint64_t rot_x = __builtin_rotateleft64(x, y);
1982
1983**Description**:
1984
1985The '``__builtin_rotateleft``' family of builtins is used to rotate
1986the bits in the first argument by the amount in the second argument.
1987For example, ``0b10000110`` rotated left by 11 becomes ``0b00110100``.
1988The shift value is treated as an unsigned amount modulo the size of
1989the arguments. Both arguments and the result have the bitwidth specified
1990by the name of the builtin.
1991
1992``__builtin_rotateright``
1993-------------------------
1994
1995* ``__builtin_rotateright8``
1996* ``__builtin_rotateright16``
1997* ``__builtin_rotateright32``
1998* ``__builtin_rotateright64``
1999
2000**Syntax**:
2001
2002.. code-block:: c++
2003
2004     __builtin_rotateright32(x, y)
2005
2006**Examples**:
2007
2008.. code-block:: c++
2009
2010      uint8_t rot_x = __builtin_rotateright8(x, y);
2011      uint16_t rot_x = __builtin_rotateright16(x, y);
2012      uint32_t rot_x = __builtin_rotateright32(x, y);
2013      uint64_t rot_x = __builtin_rotateright64(x, y);
2014
2015**Description**:
2016
2017The '``__builtin_rotateright``' family of builtins is used to rotate
2018the bits in the first argument by the amount in the second argument.
2019For example, ``0b10000110`` rotated right by 3 becomes ``0b11010000``.
2020The shift value is treated as an unsigned amount modulo the size of
2021the arguments. Both arguments and the result have the bitwidth specified
2022by the name of the builtin.
2023
2024``__builtin_unreachable``
2025-------------------------
2026
2027``__builtin_unreachable`` is used to indicate that a specific point in the
2028program cannot be reached, even if the compiler might otherwise think it can.
2029This is useful to improve optimization and eliminates certain warnings.  For
2030example, without the ``__builtin_unreachable`` in the example below, the
2031compiler assumes that the inline asm can fall through and prints a "function
2032declared '``noreturn``' should not return" warning.
2033
2034**Syntax**:
2035
2036.. code-block:: c++
2037
2038    __builtin_unreachable()
2039
2040**Example of use**:
2041
2042.. code-block:: c++
2043
2044  void myabort(void) __attribute__((noreturn));
2045  void myabort(void) {
2046    asm("int3");
2047    __builtin_unreachable();
2048  }
2049
2050**Description**:
2051
2052The ``__builtin_unreachable()`` builtin has completely undefined behavior.
2053Since it has undefined behavior, it is a statement that it is never reached and
2054the optimizer can take advantage of this to produce better code.  This builtin
2055takes no arguments and produces a void result.
2056
2057Query for this feature with ``__has_builtin(__builtin_unreachable)``.
2058
2059``__builtin_unpredictable``
2060---------------------------
2061
2062``__builtin_unpredictable`` is used to indicate that a branch condition is
2063unpredictable by hardware mechanisms such as branch prediction logic.
2064
2065**Syntax**:
2066
2067.. code-block:: c++
2068
2069    __builtin_unpredictable(long long)
2070
2071**Example of use**:
2072
2073.. code-block:: c++
2074
2075  if (__builtin_unpredictable(x > 0)) {
2076     foo();
2077  }
2078
2079**Description**:
2080
2081The ``__builtin_unpredictable()`` builtin is expected to be used with control
2082flow conditions such as in ``if`` and ``switch`` statements.
2083
2084Query for this feature with ``__has_builtin(__builtin_unpredictable)``.
2085
2086``__sync_swap``
2087---------------
2088
2089``__sync_swap`` is used to atomically swap integers or pointers in memory.
2090
2091**Syntax**:
2092
2093.. code-block:: c++
2094
2095  type __sync_swap(type *ptr, type value, ...)
2096
2097**Example of Use**:
2098
2099.. code-block:: c++
2100
2101  int old_value = __sync_swap(&value, new_value);
2102
2103**Description**:
2104
2105The ``__sync_swap()`` builtin extends the existing ``__sync_*()`` family of
2106atomic intrinsics to allow code to atomically swap the current value with the
2107new value.  More importantly, it helps developers write more efficient and
2108correct code by avoiding expensive loops around
2109``__sync_bool_compare_and_swap()`` or relying on the platform specific
2110implementation details of ``__sync_lock_test_and_set()``.  The
2111``__sync_swap()`` builtin is a full barrier.
2112
2113``__builtin_addressof``
2114-----------------------
2115
2116``__builtin_addressof`` performs the functionality of the built-in ``&``
2117operator, ignoring any ``operator&`` overload.  This is useful in constant
2118expressions in C++11, where there is no other way to take the address of an
2119object that overloads ``operator&``.
2120
2121**Example of use**:
2122
2123.. code-block:: c++
2124
2125  template<typename T> constexpr T *addressof(T &value) {
2126    return __builtin_addressof(value);
2127  }
2128
2129``__builtin_operator_new`` and ``__builtin_operator_delete``
2130------------------------------------------------------------
2131
2132A call to ``__builtin_operator_new(args)`` is exactly the same as a call to
2133``::operator new(args)``, except that it allows certain optimizations
2134that the C++ standard does not permit for a direct function call to
2135``::operator new`` (in particular, removing ``new`` / ``delete`` pairs and
2136merging allocations), and that the call is required to resolve to a
2137`replaceable global allocation function
2138<https://en.cppreference.com/w/cpp/memory/new/operator_new>`_.
2139
2140Likewise, ``__builtin_operator_delete`` is exactly the same as a call to
2141``::operator delete(args)``, except that it permits optimizations
2142and that the call is required to resolve to a
2143`replaceable global deallocation function
2144<https://en.cppreference.com/w/cpp/memory/new/operator_delete>`_.
2145
2146These builtins are intended for use in the implementation of ``std::allocator``
2147and other similar allocation libraries, and are only available in C++.
2148
2149Query for this feature with ``__has_builtin(__builtin_operator_new)`` or
2150``__has_builtin(__builtin_operator_delete)``:
2151
2152  * If the value is at least ``201802L``, the builtins behave as described above.
2153
2154  * If the value is non-zero, the builtins may not support calling arbitrary
2155    replaceable global (de)allocation functions, but do support calling at least
2156    ``::operator new(size_t)`` and ``::operator delete(void*)``.
2157
2158``__builtin_preserve_access_index``
2159-----------------------------------
2160
2161``__builtin_preserve_access_index`` specifies a code section where
2162array subscript access and structure/union member access are relocatable
2163under bpf compile-once run-everywhere framework. Debuginfo (typically
2164with ``-g``) is needed, otherwise, the compiler will exit with an error.
2165The return type for the intrinsic is the same as the type of the
2166argument.
2167
2168**Syntax**:
2169
2170.. code-block:: c
2171
2172  type __builtin_preserve_access_index(type arg)
2173
2174**Example of Use**:
2175
2176.. code-block:: c
2177
2178  struct t {
2179    int i;
2180    int j;
2181    union {
2182      int a;
2183      int b;
2184    } c[4];
2185  };
2186  struct t *v = ...;
2187  int *pb =__builtin_preserve_access_index(&v->c[3].b);
2188  __builtin_preserve_access_index(v->j);
2189
2190``__builtin_unique_stable_name``
2191------------------------
2192
2193``__builtin_unique_stable_name()`` is a builtin that takes a type or expression and
2194produces a string literal containing a unique name for the type (or type of the
2195expression) that is stable across split compilations.
2196
2197In cases where the split compilation needs to share a unique token for a type
2198across the boundary (such as in an offloading situation), this name can be used
2199for lookup purposes.
2200
2201This builtin is superior to RTTI for this purpose for two reasons.  First, this
2202value is computed entirely at compile time, so it can be used in constant
2203expressions. Second, this value encodes lambda functions based on line-number
2204rather than the order in which it appears in a function. This is valuable
2205because it is stable in cases where an unrelated lambda is introduced
2206conditionally in the same function.
2207
2208The current implementation of this builtin uses a slightly modified Itanium
2209Mangler to produce the unique name. The lambda ordinal is replaced with one or
2210more line/column pairs in the format ``LINE->COL``, separated with a ``~``
2211character. Typically, only one pair will be included, however in the case of
2212macro expansions the entire macro expansion stack is expressed.
2213
2214Multiprecision Arithmetic Builtins
2215----------------------------------
2216
2217Clang provides a set of builtins which expose multiprecision arithmetic in a
2218manner amenable to C. They all have the following form:
2219
2220.. code-block:: c
2221
2222  unsigned x = ..., y = ..., carryin = ..., carryout;
2223  unsigned sum = __builtin_addc(x, y, carryin, &carryout);
2224
2225Thus one can form a multiprecision addition chain in the following manner:
2226
2227.. code-block:: c
2228
2229  unsigned *x, *y, *z, carryin=0, carryout;
2230  z[0] = __builtin_addc(x[0], y[0], carryin, &carryout);
2231  carryin = carryout;
2232  z[1] = __builtin_addc(x[1], y[1], carryin, &carryout);
2233  carryin = carryout;
2234  z[2] = __builtin_addc(x[2], y[2], carryin, &carryout);
2235  carryin = carryout;
2236  z[3] = __builtin_addc(x[3], y[3], carryin, &carryout);
2237
2238The complete list of builtins are:
2239
2240.. code-block:: c
2241
2242  unsigned char      __builtin_addcb (unsigned char x, unsigned char y, unsigned char carryin, unsigned char *carryout);
2243  unsigned short     __builtin_addcs (unsigned short x, unsigned short y, unsigned short carryin, unsigned short *carryout);
2244  unsigned           __builtin_addc  (unsigned x, unsigned y, unsigned carryin, unsigned *carryout);
2245  unsigned long      __builtin_addcl (unsigned long x, unsigned long y, unsigned long carryin, unsigned long *carryout);
2246  unsigned long long __builtin_addcll(unsigned long long x, unsigned long long y, unsigned long long carryin, unsigned long long *carryout);
2247  unsigned char      __builtin_subcb (unsigned char x, unsigned char y, unsigned char carryin, unsigned char *carryout);
2248  unsigned short     __builtin_subcs (unsigned short x, unsigned short y, unsigned short carryin, unsigned short *carryout);
2249  unsigned           __builtin_subc  (unsigned x, unsigned y, unsigned carryin, unsigned *carryout);
2250  unsigned long      __builtin_subcl (unsigned long x, unsigned long y, unsigned long carryin, unsigned long *carryout);
2251  unsigned long long __builtin_subcll(unsigned long long x, unsigned long long y, unsigned long long carryin, unsigned long long *carryout);
2252
2253Checked Arithmetic Builtins
2254---------------------------
2255
2256Clang provides a set of builtins that implement checked arithmetic for security
2257critical applications in a manner that is fast and easily expressible in C. As
2258an example of their usage:
2259
2260.. code-block:: c
2261
2262  errorcode_t security_critical_application(...) {
2263    unsigned x, y, result;
2264    ...
2265    if (__builtin_mul_overflow(x, y, &result))
2266      return kErrorCodeHackers;
2267    ...
2268    use_multiply(result);
2269    ...
2270  }
2271
2272Clang provides the following checked arithmetic builtins:
2273
2274.. code-block:: c
2275
2276  bool __builtin_add_overflow   (type1 x, type2 y, type3 *sum);
2277  bool __builtin_sub_overflow   (type1 x, type2 y, type3 *diff);
2278  bool __builtin_mul_overflow   (type1 x, type2 y, type3 *prod);
2279  bool __builtin_uadd_overflow  (unsigned x, unsigned y, unsigned *sum);
2280  bool __builtin_uaddl_overflow (unsigned long x, unsigned long y, unsigned long *sum);
2281  bool __builtin_uaddll_overflow(unsigned long long x, unsigned long long y, unsigned long long *sum);
2282  bool __builtin_usub_overflow  (unsigned x, unsigned y, unsigned *diff);
2283  bool __builtin_usubl_overflow (unsigned long x, unsigned long y, unsigned long *diff);
2284  bool __builtin_usubll_overflow(unsigned long long x, unsigned long long y, unsigned long long *diff);
2285  bool __builtin_umul_overflow  (unsigned x, unsigned y, unsigned *prod);
2286  bool __builtin_umull_overflow (unsigned long x, unsigned long y, unsigned long *prod);
2287  bool __builtin_umulll_overflow(unsigned long long x, unsigned long long y, unsigned long long *prod);
2288  bool __builtin_sadd_overflow  (int x, int y, int *sum);
2289  bool __builtin_saddl_overflow (long x, long y, long *sum);
2290  bool __builtin_saddll_overflow(long long x, long long y, long long *sum);
2291  bool __builtin_ssub_overflow  (int x, int y, int *diff);
2292  bool __builtin_ssubl_overflow (long x, long y, long *diff);
2293  bool __builtin_ssubll_overflow(long long x, long long y, long long *diff);
2294  bool __builtin_smul_overflow  (int x, int y, int *prod);
2295  bool __builtin_smull_overflow (long x, long y, long *prod);
2296  bool __builtin_smulll_overflow(long long x, long long y, long long *prod);
2297
2298Each builtin performs the specified mathematical operation on the
2299first two arguments and stores the result in the third argument.  If
2300possible, the result will be equal to mathematically-correct result
2301and the builtin will return 0.  Otherwise, the builtin will return
23021 and the result will be equal to the unique value that is equivalent
2303to the mathematically-correct result modulo two raised to the *k*
2304power, where *k* is the number of bits in the result type.  The
2305behavior of these builtins is well-defined for all argument values.
2306
2307The first three builtins work generically for operands of any integer type,
2308including boolean types.  The operands need not have the same type as each
2309other, or as the result.  The other builtins may implicitly promote or
2310convert their operands before performing the operation.
2311
2312Query for this feature with ``__has_builtin(__builtin_add_overflow)``, etc.
2313
2314Floating point builtins
2315---------------------------------------
2316
2317``__builtin_canonicalize``
2318--------------------------
2319
2320.. code-block:: c
2321
2322   double __builtin_canonicalize(double);
2323   float __builtin_canonicalizef(float);
2324   long double__builtin_canonicalizel(long double);
2325
2326Returns the platform specific canonical encoding of a floating point
2327number. This canonicalization is useful for implementing certain
2328numeric primitives such as frexp. See `LLVM canonicalize intrinsic
2329<https://llvm.org/docs/LangRef.html#llvm-canonicalize-intrinsic>`_ for
2330more information on the semantics.
2331
2332String builtins
2333---------------
2334
2335Clang provides constant expression evaluation support for builtins forms of
2336the following functions from the C standard library ``<string.h>`` header:
2337
2338* ``memchr``
2339* ``memcmp``
2340* ``strchr``
2341* ``strcmp``
2342* ``strlen``
2343* ``strncmp``
2344* ``wcschr``
2345* ``wcscmp``
2346* ``wcslen``
2347* ``wcsncmp``
2348* ``wmemchr``
2349* ``wmemcmp``
2350
2351In each case, the builtin form has the name of the C library function prefixed
2352by ``__builtin_``. Example:
2353
2354.. code-block:: c
2355
2356  void *p = __builtin_memchr("foobar", 'b', 5);
2357
2358In addition to the above, one further builtin is provided:
2359
2360.. code-block:: c
2361
2362  char *__builtin_char_memchr(const char *haystack, int needle, size_t size);
2363
2364``__builtin_char_memchr(a, b, c)`` is identical to
2365``(char*)__builtin_memchr(a, b, c)`` except that its use is permitted within
2366constant expressions in C++11 onwards (where a cast from ``void*`` to ``char*``
2367is disallowed in general).
2368
2369Support for constant expression evaluation for the above builtins be detected
2370with ``__has_feature(cxx_constexpr_string_builtins)``.
2371
2372Memory builtins
2373---------------
2374
2375 * ``__builtin_memcpy_inline``
2376
2377.. code-block:: c
2378
2379  void __builtin_memcpy_inline(void *dst, const void *src, size_t size);
2380
2381``__builtin_memcpy_inline(dst, src, size)`` is identical to
2382``__builtin_memcpy(dst, src, size)`` except that the generated code is
2383guaranteed not to call any external functions. See [LLVM IR ‘llvm.memcpy.inline’
2384Intrinsic](https://llvm.org/docs/LangRef.html#llvm-memcpy-inline-intrinsic) for
2385more information.
2386
2387Note that the `size` argument must be a compile time constant.
2388
2389Atomic Min/Max builtins with memory ordering
2390--------------------------------------------
2391
2392There are two atomic builtins with min/max in-memory comparison and swap.
2393The syntax and semantics are similar to GCC-compatible __atomic_* builtins.
2394
2395* ``__atomic_fetch_min``
2396* ``__atomic_fetch_max``
2397
2398The builtins work with signed and unsigned integers and require to specify memory ordering.
2399The return value is the original value that was stored in memory before comparison.
2400
2401Example:
2402
2403.. code-block:: c
2404
2405  unsigned int val = __atomic_fetch_min(unsigned int *pi, unsigned int ui, __ATOMIC_RELAXED);
2406
2407The third argument is one of the memory ordering specifiers ``__ATOMIC_RELAXED``,
2408``__ATOMIC_CONSUME``, ``__ATOMIC_ACQUIRE``, ``__ATOMIC_RELEASE``,
2409``__ATOMIC_ACQ_REL``, or ``__ATOMIC_SEQ_CST`` following C++11 memory model semantics.
2410
2411In terms or aquire-release ordering barriers these two operations are always
2412considered as operations with *load-store* semantics, even when the original value
2413is not actually modified after comparison.
2414
2415.. _langext-__c11_atomic:
2416
2417__c11_atomic builtins
2418---------------------
2419
2420Clang provides a set of builtins which are intended to be used to implement
2421C11's ``<stdatomic.h>`` header.  These builtins provide the semantics of the
2422``_explicit`` form of the corresponding C11 operation, and are named with a
2423``__c11_`` prefix.  The supported operations, and the differences from
2424the corresponding C11 operations, are:
2425
2426* ``__c11_atomic_init``
2427* ``__c11_atomic_thread_fence``
2428* ``__c11_atomic_signal_fence``
2429* ``__c11_atomic_is_lock_free`` (The argument is the size of the
2430  ``_Atomic(...)`` object, instead of its address)
2431* ``__c11_atomic_store``
2432* ``__c11_atomic_load``
2433* ``__c11_atomic_exchange``
2434* ``__c11_atomic_compare_exchange_strong``
2435* ``__c11_atomic_compare_exchange_weak``
2436* ``__c11_atomic_fetch_add``
2437* ``__c11_atomic_fetch_sub``
2438* ``__c11_atomic_fetch_and``
2439* ``__c11_atomic_fetch_or``
2440* ``__c11_atomic_fetch_xor``
2441* ``__c11_atomic_fetch_max``
2442* ``__c11_atomic_fetch_min``
2443
2444The macros ``__ATOMIC_RELAXED``, ``__ATOMIC_CONSUME``, ``__ATOMIC_ACQUIRE``,
2445``__ATOMIC_RELEASE``, ``__ATOMIC_ACQ_REL``, and ``__ATOMIC_SEQ_CST`` are
2446provided, with values corresponding to the enumerators of C11's
2447``memory_order`` enumeration.
2448
2449(Note that Clang additionally provides GCC-compatible ``__atomic_*``
2450builtins and OpenCL 2.0 ``__opencl_atomic_*`` builtins. The OpenCL 2.0
2451atomic builtins are an explicit form of the corresponding OpenCL 2.0
2452builtin function, and are named with a ``__opencl_`` prefix. The macros
2453``__OPENCL_MEMORY_SCOPE_WORK_ITEM``, ``__OPENCL_MEMORY_SCOPE_WORK_GROUP``,
2454``__OPENCL_MEMORY_SCOPE_DEVICE``, ``__OPENCL_MEMORY_SCOPE_ALL_SVM_DEVICES``,
2455and ``__OPENCL_MEMORY_SCOPE_SUB_GROUP`` are provided, with values
2456corresponding to the enumerators of OpenCL's ``memory_scope`` enumeration.)
2457
2458Low-level ARM exclusive memory builtins
2459---------------------------------------
2460
2461Clang provides overloaded builtins giving direct access to the three key ARM
2462instructions for implementing atomic operations.
2463
2464.. code-block:: c
2465
2466  T __builtin_arm_ldrex(const volatile T *addr);
2467  T __builtin_arm_ldaex(const volatile T *addr);
2468  int __builtin_arm_strex(T val, volatile T *addr);
2469  int __builtin_arm_stlex(T val, volatile T *addr);
2470  void __builtin_arm_clrex(void);
2471
2472The types ``T`` currently supported are:
2473
2474* Integer types with width at most 64 bits (or 128 bits on AArch64).
2475* Floating-point types
2476* Pointer types.
2477
2478Note that the compiler does not guarantee it will not insert stores which clear
2479the exclusive monitor in between an ``ldrex`` type operation and its paired
2480``strex``. In practice this is only usually a risk when the extra store is on
2481the same cache line as the variable being modified and Clang will only insert
2482stack stores on its own, so it is best not to use these operations on variables
2483with automatic storage duration.
2484
2485Also, loads and stores may be implicit in code written between the ``ldrex`` and
2486``strex``. Clang will not necessarily mitigate the effects of these either, so
2487care should be exercised.
2488
2489For these reasons the higher level atomic primitives should be preferred where
2490possible.
2491
2492Non-temporal load/store builtins
2493--------------------------------
2494
2495Clang provides overloaded builtins allowing generation of non-temporal memory
2496accesses.
2497
2498.. code-block:: c
2499
2500  T __builtin_nontemporal_load(T *addr);
2501  void __builtin_nontemporal_store(T value, T *addr);
2502
2503The types ``T`` currently supported are:
2504
2505* Integer types.
2506* Floating-point types.
2507* Vector types.
2508
2509Note that the compiler does not guarantee that non-temporal loads or stores
2510will be used.
2511
2512C++ Coroutines support builtins
2513--------------------------------
2514
2515.. warning::
2516  This is a work in progress. Compatibility across Clang/LLVM releases is not
2517  guaranteed.
2518
2519Clang provides experimental builtins to support C++ Coroutines as defined by
2520https://wg21.link/P0057. The following four are intended to be used by the
2521standard library to implement `std::experimental::coroutine_handle` type.
2522
2523**Syntax**:
2524
2525.. code-block:: c
2526
2527  void  __builtin_coro_resume(void *addr);
2528  void  __builtin_coro_destroy(void *addr);
2529  bool  __builtin_coro_done(void *addr);
2530  void *__builtin_coro_promise(void *addr, int alignment, bool from_promise)
2531
2532**Example of use**:
2533
2534.. code-block:: c++
2535
2536  template <> struct coroutine_handle<void> {
2537    void resume() const { __builtin_coro_resume(ptr); }
2538    void destroy() const { __builtin_coro_destroy(ptr); }
2539    bool done() const { return __builtin_coro_done(ptr); }
2540    // ...
2541  protected:
2542    void *ptr;
2543  };
2544
2545  template <typename Promise> struct coroutine_handle : coroutine_handle<> {
2546    // ...
2547    Promise &promise() const {
2548      return *reinterpret_cast<Promise *>(
2549        __builtin_coro_promise(ptr, alignof(Promise), /*from-promise=*/false));
2550    }
2551    static coroutine_handle from_promise(Promise &promise) {
2552      coroutine_handle p;
2553      p.ptr = __builtin_coro_promise(&promise, alignof(Promise),
2554                                                      /*from-promise=*/true);
2555      return p;
2556    }
2557  };
2558
2559
2560Other coroutine builtins are either for internal clang use or for use during
2561development of the coroutine feature. See `Coroutines in LLVM
2562<https://llvm.org/docs/Coroutines.html#intrinsics>`_ for
2563more information on their semantics. Note that builtins matching the intrinsics
2564that take token as the first parameter (llvm.coro.begin, llvm.coro.alloc,
2565llvm.coro.free and llvm.coro.suspend) omit the token parameter and fill it to
2566an appropriate value during the emission.
2567
2568**Syntax**:
2569
2570.. code-block:: c
2571
2572  size_t __builtin_coro_size()
2573  void  *__builtin_coro_frame()
2574  void  *__builtin_coro_free(void *coro_frame)
2575
2576  void  *__builtin_coro_id(int align, void *promise, void *fnaddr, void *parts)
2577  bool   __builtin_coro_alloc()
2578  void  *__builtin_coro_begin(void *memory)
2579  void   __builtin_coro_end(void *coro_frame, bool unwind)
2580  char   __builtin_coro_suspend(bool final)
2581  bool   __builtin_coro_param(void *original, void *copy)
2582
2583Note that there is no builtin matching the `llvm.coro.save` intrinsic. LLVM
2584automatically will insert one if the first argument to `llvm.coro.suspend` is
2585token `none`. If a user calls `__builin_suspend`, clang will insert `token none`
2586as the first argument to the intrinsic.
2587
2588Source location builtins
2589------------------------
2590
2591Clang provides experimental builtins to support C++ standard library implementation
2592of ``std::experimental::source_location`` as specified in  http://wg21.link/N4600.
2593With the exception of ``__builtin_COLUMN``, these builtins are also implemented by
2594GCC.
2595
2596**Syntax**:
2597
2598.. code-block:: c
2599
2600  const char *__builtin_FILE();
2601  const char *__builtin_FUNCTION();
2602  unsigned    __builtin_LINE();
2603  unsigned    __builtin_COLUMN(); // Clang only
2604
2605**Example of use**:
2606
2607.. code-block:: c++
2608
2609  void my_assert(bool pred, int line = __builtin_LINE(), // Captures line of caller
2610                 const char* file = __builtin_FILE(),
2611                 const char* function = __builtin_FUNCTION()) {
2612    if (pred) return;
2613    printf("%s:%d assertion failed in function %s\n", file, line, function);
2614    std::abort();
2615  }
2616
2617  struct MyAggregateType {
2618    int x;
2619    int line = __builtin_LINE(); // captures line where aggregate initialization occurs
2620  };
2621  static_assert(MyAggregateType{42}.line == __LINE__);
2622
2623  struct MyClassType {
2624    int line = __builtin_LINE(); // captures line of the constructor used during initialization
2625    constexpr MyClassType(int) { assert(line == __LINE__); }
2626  };
2627
2628**Description**:
2629
2630The builtins ``__builtin_LINE``, ``__builtin_FUNCTION``, and ``__builtin_FILE`` return
2631the values, at the "invocation point", for ``__LINE__``, ``__FUNCTION__``, and
2632``__FILE__`` respectively. These builtins are constant expressions.
2633
2634When the builtins appear as part of a default function argument the invocation
2635point is the location of the caller. When the builtins appear as part of a
2636default member initializer, the invocation point is the location of the
2637constructor or aggregate initialization used to create the object. Otherwise
2638the invocation point is the same as the location of the builtin.
2639
2640When the invocation point of ``__builtin_FUNCTION`` is not a function scope the
2641empty string is returned.
2642
2643Alignment builtins
2644------------------
2645Clang provides builtins to support checking and adjusting alignment of
2646pointers and integers.
2647These builtins can be used to avoid relying on implementation-defined behavior
2648of arithmetic on integers derived from pointers.
2649Additionally, these builtins retain type information and, unlike bitwise
2650arithmetic, they can perform semantic checking on the alignment value.
2651
2652**Syntax**:
2653
2654.. code-block:: c
2655
2656  Type __builtin_align_up(Type value, size_t alignment);
2657  Type __builtin_align_down(Type value, size_t alignment);
2658  bool __builtin_is_aligned(Type value, size_t alignment);
2659
2660
2661**Example of use**:
2662
2663.. code-block:: c++
2664
2665  char* global_alloc_buffer;
2666  void* my_aligned_allocator(size_t alloc_size, size_t alignment) {
2667    char* result = __builtin_align_up(global_alloc_buffer, alignment);
2668    // result now contains the value of global_alloc_buffer rounded up to the
2669    // next multiple of alignment.
2670    global_alloc_buffer = result + alloc_size;
2671    return result;
2672  }
2673
2674  void* get_start_of_page(void* ptr) {
2675    return __builtin_align_down(ptr, PAGE_SIZE);
2676  }
2677
2678  void example(char* buffer) {
2679     if (__builtin_is_aligned(buffer, 64)) {
2680       do_fast_aligned_copy(buffer);
2681     } else {
2682       do_unaligned_copy(buffer);
2683     }
2684  }
2685
2686  // In addition to pointers, the builtins can also be used on integer types
2687  // and are evaluatable inside constant expressions.
2688  static_assert(__builtin_align_up(123, 64) == 128, "");
2689  static_assert(__builtin_align_down(123u, 64) == 64u, "");
2690  static_assert(!__builtin_is_aligned(123, 64), "");
2691
2692
2693**Description**:
2694
2695The builtins ``__builtin_align_up``, ``__builtin_align_down``, return their
2696first argument aligned up/down to the next multiple of the second argument.
2697If the value is already sufficiently aligned, it is returned unchanged.
2698The builtin ``__builtin_is_aligned`` returns whether the first argument is
2699aligned to a multiple of the second argument.
2700All of these builtins expect the alignment to be expressed as a number of bytes.
2701
2702These builtins can be used for all integer types as well as (non-function)
2703pointer types. For pointer types, these builtins operate in terms of the integer
2704address of the pointer and return a new pointer of the same type (including
2705qualifiers such as ``const``) with an adjusted address.
2706When aligning pointers up or down, the resulting value must be within the same
2707underlying allocation or one past the end (see C17 6.5.6p8, C++ [expr.add]).
2708This means that arbitrary integer values stored in pointer-type variables must
2709not be passed to these builtins. For those use cases, the builtins can still be
2710used, but the operation must be performed on the pointer cast to ``uintptr_t``.
2711
2712If Clang can determine that the alignment is not a power of two at compile time,
2713it will result in a compilation failure. If the alignment argument is not a
2714power of two at run time, the behavior of these builtins is undefined.
2715
2716Non-standard C++11 Attributes
2717=============================
2718
2719Clang's non-standard C++11 attributes live in the ``clang`` attribute
2720namespace.
2721
2722Clang supports GCC's ``gnu`` attribute namespace. All GCC attributes which
2723are accepted with the ``__attribute__((foo))`` syntax are also accepted as
2724``[[gnu::foo]]``. This only extends to attributes which are specified by GCC
2725(see the list of `GCC function attributes
2726<https://gcc.gnu.org/onlinedocs/gcc/Function-Attributes.html>`_, `GCC variable
2727attributes <https://gcc.gnu.org/onlinedocs/gcc/Variable-Attributes.html>`_, and
2728`GCC type attributes
2729<https://gcc.gnu.org/onlinedocs/gcc/Type-Attributes.html>`_). As with the GCC
2730implementation, these attributes must appertain to the *declarator-id* in a
2731declaration, which means they must go either at the start of the declaration or
2732immediately after the name being declared.
2733
2734For example, this applies the GNU ``unused`` attribute to ``a`` and ``f``, and
2735also applies the GNU ``noreturn`` attribute to ``f``.
2736
2737.. code-block:: c++
2738
2739  [[gnu::unused]] int a, f [[gnu::noreturn]] ();
2740
2741Target-Specific Extensions
2742==========================
2743
2744Clang supports some language features conditionally on some targets.
2745
2746ARM/AArch64 Language Extensions
2747-------------------------------
2748
2749Memory Barrier Intrinsics
2750^^^^^^^^^^^^^^^^^^^^^^^^^
2751Clang implements the ``__dmb``, ``__dsb`` and ``__isb`` intrinsics as defined
2752in the `ARM C Language Extensions Release 2.0
2753<http://infocenter.arm.com/help/topic/com.arm.doc.ihi0053c/IHI0053C_acle_2_0.pdf>`_.
2754Note that these intrinsics are implemented as motion barriers that block
2755reordering of memory accesses and side effect instructions. Other instructions
2756like simple arithmetic may be reordered around the intrinsic. If you expect to
2757have no reordering at all, use inline assembly instead.
2758
2759X86/X86-64 Language Extensions
2760------------------------------
2761
2762The X86 backend has these language extensions:
2763
2764Memory references to specified segments
2765^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
2766
2767Annotating a pointer with address space #256 causes it to be code generated
2768relative to the X86 GS segment register, address space #257 causes it to be
2769relative to the X86 FS segment, and address space #258 causes it to be
2770relative to the X86 SS segment.  Note that this is a very very low-level
2771feature that should only be used if you know what you're doing (for example in
2772an OS kernel).
2773
2774Here is an example:
2775
2776.. code-block:: c++
2777
2778  #define GS_RELATIVE __attribute__((address_space(256)))
2779  int foo(int GS_RELATIVE *P) {
2780    return *P;
2781  }
2782
2783Which compiles to (on X86-32):
2784
2785.. code-block:: gas
2786
2787  _foo:
2788          movl    4(%esp), %eax
2789          movl    %gs:(%eax), %eax
2790          ret
2791
2792You can also use the GCC compatibility macros ``__seg_fs`` and ``__seg_gs`` for
2793the same purpose. The preprocessor symbols ``__SEG_FS`` and ``__SEG_GS``
2794indicate their support.
2795
2796PowerPC Language Extensions
2797------------------------------
2798
2799Set the Floating Point Rounding Mode
2800^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
2801PowerPC64/PowerPC64le supports the builtin function ``__builtin_setrnd`` to set
2802the floating point rounding mode. This function will use the least significant
2803two bits of integer argument to set the floating point rounding mode.
2804
2805.. code-block:: c++
2806
2807  double __builtin_setrnd(int mode);
2808
2809The effective values for mode are:
2810
2811    - 0 - round to nearest
2812    - 1 - round to zero
2813    - 2 - round to +infinity
2814    - 3 - round to -infinity
2815
2816Note that the mode argument will modulo 4, so if the integer argument is greater
2817than 3, it will only use the least significant two bits of the mode.
2818Namely, ``__builtin_setrnd(102))`` is equal to ``__builtin_setrnd(2)``.
2819
2820PowerPC cache builtins
2821^^^^^^^^^^^^^^^^^^^^^^
2822
2823The PowerPC architecture specifies instructions implementing cache operations.
2824Clang provides builtins that give direct programmer access to these cache
2825instructions.
2826
2827Currently the following builtins are implemented in clang:
2828
2829``__builtin_dcbf`` copies the contents of a modified block from the data cache
2830to main memory and flushes the copy from the data cache.
2831
2832**Syntax**:
2833
2834.. code-block:: c
2835
2836  void __dcbf(const void* addr); /* Data Cache Block Flush */
2837
2838**Example of Use**:
2839
2840.. code-block:: c
2841
2842  int a = 1;
2843  __builtin_dcbf (&a);
2844
2845Extensions for Static Analysis
2846==============================
2847
2848Clang supports additional attributes that are useful for documenting program
2849invariants and rules for static analysis tools, such as the `Clang Static
2850Analyzer <https://clang-analyzer.llvm.org/>`_. These attributes are documented
2851in the analyzer's `list of source-level annotations
2852<https://clang-analyzer.llvm.org/annotations.html>`_.
2853
2854
2855Extensions for Dynamic Analysis
2856===============================
2857
2858Use ``__has_feature(address_sanitizer)`` to check if the code is being built
2859with :doc:`AddressSanitizer`.
2860
2861Use ``__has_feature(thread_sanitizer)`` to check if the code is being built
2862with :doc:`ThreadSanitizer`.
2863
2864Use ``__has_feature(memory_sanitizer)`` to check if the code is being built
2865with :doc:`MemorySanitizer`.
2866
2867Use ``__has_feature(safe_stack)`` to check if the code is being built
2868with :doc:`SafeStack`.
2869
2870
2871Extensions for selectively disabling optimization
2872=================================================
2873
2874Clang provides a mechanism for selectively disabling optimizations in functions
2875and methods.
2876
2877To disable optimizations in a single function definition, the GNU-style or C++11
2878non-standard attribute ``optnone`` can be used.
2879
2880.. code-block:: c++
2881
2882  // The following functions will not be optimized.
2883  // GNU-style attribute
2884  __attribute__((optnone)) int foo() {
2885    // ... code
2886  }
2887  // C++11 attribute
2888  [[clang::optnone]] int bar() {
2889    // ... code
2890  }
2891
2892To facilitate disabling optimization for a range of function definitions, a
2893range-based pragma is provided. Its syntax is ``#pragma clang optimize``
2894followed by ``off`` or ``on``.
2895
2896All function definitions in the region between an ``off`` and the following
2897``on`` will be decorated with the ``optnone`` attribute unless doing so would
2898conflict with explicit attributes already present on the function (e.g. the
2899ones that control inlining).
2900
2901.. code-block:: c++
2902
2903  #pragma clang optimize off
2904  // This function will be decorated with optnone.
2905  int foo() {
2906    // ... code
2907  }
2908
2909  // optnone conflicts with always_inline, so bar() will not be decorated.
2910  __attribute__((always_inline)) int bar() {
2911    // ... code
2912  }
2913  #pragma clang optimize on
2914
2915If no ``on`` is found to close an ``off`` region, the end of the region is the
2916end of the compilation unit.
2917
2918Note that a stray ``#pragma clang optimize on`` does not selectively enable
2919additional optimizations when compiling at low optimization levels. This feature
2920can only be used to selectively disable optimizations.
2921
2922The pragma has an effect on functions only at the point of their definition; for
2923function templates, this means that the state of the pragma at the point of an
2924instantiation is not necessarily relevant. Consider the following example:
2925
2926.. code-block:: c++
2927
2928  template<typename T> T twice(T t) {
2929    return 2 * t;
2930  }
2931
2932  #pragma clang optimize off
2933  template<typename T> T thrice(T t) {
2934    return 3 * t;
2935  }
2936
2937  int container(int a, int b) {
2938    return twice(a) + thrice(b);
2939  }
2940  #pragma clang optimize on
2941
2942In this example, the definition of the template function ``twice`` is outside
2943the pragma region, whereas the definition of ``thrice`` is inside the region.
2944The ``container`` function is also in the region and will not be optimized, but
2945it causes the instantiation of ``twice`` and ``thrice`` with an ``int`` type; of
2946these two instantiations, ``twice`` will be optimized (because its definition
2947was outside the region) and ``thrice`` will not be optimized.
2948
2949Extensions for loop hint optimizations
2950======================================
2951
2952The ``#pragma clang loop`` directive is used to specify hints for optimizing the
2953subsequent for, while, do-while, or c++11 range-based for loop. The directive
2954provides options for vectorization, interleaving, predication, unrolling and
2955distribution. Loop hints can be specified before any loop and will be ignored if
2956the optimization is not safe to apply.
2957
2958There are loop hints that control transformations (e.g. vectorization, loop
2959unrolling) and there are loop hints that set transformation options (e.g.
2960``vectorize_width``, ``unroll_count``).  Pragmas setting transformation options
2961imply the transformation is enabled, as if it was enabled via the corresponding
2962transformation pragma (e.g. ``vectorize(enable)``). If the transformation is
2963disabled  (e.g. ``vectorize(disable)``), that takes precedence over
2964transformations option pragmas implying that transformation.
2965
2966Vectorization, Interleaving, and Predication
2967--------------------------------------------
2968
2969A vectorized loop performs multiple iterations of the original loop
2970in parallel using vector instructions. The instruction set of the target
2971processor determines which vector instructions are available and their vector
2972widths. This restricts the types of loops that can be vectorized. The vectorizer
2973automatically determines if the loop is safe and profitable to vectorize. A
2974vector instruction cost model is used to select the vector width.
2975
2976Interleaving multiple loop iterations allows modern processors to further
2977improve instruction-level parallelism (ILP) using advanced hardware features,
2978such as multiple execution units and out-of-order execution. The vectorizer uses
2979a cost model that depends on the register pressure and generated code size to
2980select the interleaving count.
2981
2982Vectorization is enabled by ``vectorize(enable)`` and interleaving is enabled
2983by ``interleave(enable)``. This is useful when compiling with ``-Os`` to
2984manually enable vectorization or interleaving.
2985
2986.. code-block:: c++
2987
2988  #pragma clang loop vectorize(enable)
2989  #pragma clang loop interleave(enable)
2990  for(...) {
2991    ...
2992  }
2993
2994The vector width is specified by ``vectorize_width(_value_)`` and the interleave
2995count is specified by ``interleave_count(_value_)``, where
2996_value_ is a positive integer. This is useful for specifying the optimal
2997width/count of the set of target architectures supported by your application.
2998
2999.. code-block:: c++
3000
3001  #pragma clang loop vectorize_width(2)
3002  #pragma clang loop interleave_count(2)
3003  for(...) {
3004    ...
3005  }
3006
3007Specifying a width/count of 1 disables the optimization, and is equivalent to
3008``vectorize(disable)`` or ``interleave(disable)``.
3009
3010Vector predication is enabled by ``vectorize_predicate(enable)``, for example:
3011
3012.. code-block:: c++
3013
3014  #pragma clang loop vectorize(enable)
3015  #pragma clang loop vectorize_predicate(enable)
3016  for(...) {
3017    ...
3018  }
3019
3020This predicates (masks) all instructions in the loop, which allows the scalar
3021remainder loop (the tail) to be folded into the main vectorized loop. This
3022might be more efficient when vector predication is efficiently supported by the
3023target platform.
3024
3025Loop Unrolling
3026--------------
3027
3028Unrolling a loop reduces the loop control overhead and exposes more
3029opportunities for ILP. Loops can be fully or partially unrolled. Full unrolling
3030eliminates the loop and replaces it with an enumerated sequence of loop
3031iterations. Full unrolling is only possible if the loop trip count is known at
3032compile time. Partial unrolling replicates the loop body within the loop and
3033reduces the trip count.
3034
3035If ``unroll(enable)`` is specified the unroller will attempt to fully unroll the
3036loop if the trip count is known at compile time. If the fully unrolled code size
3037is greater than an internal limit the loop will be partially unrolled up to this
3038limit. If the trip count is not known at compile time the loop will be partially
3039unrolled with a heuristically chosen unroll factor.
3040
3041.. code-block:: c++
3042
3043  #pragma clang loop unroll(enable)
3044  for(...) {
3045    ...
3046  }
3047
3048If ``unroll(full)`` is specified the unroller will attempt to fully unroll the
3049loop if the trip count is known at compile time identically to
3050``unroll(enable)``. However, with ``unroll(full)`` the loop will not be unrolled
3051if the loop count is not known at compile time.
3052
3053.. code-block:: c++
3054
3055  #pragma clang loop unroll(full)
3056  for(...) {
3057    ...
3058  }
3059
3060The unroll count can be specified explicitly with ``unroll_count(_value_)`` where
3061_value_ is a positive integer. If this value is greater than the trip count the
3062loop will be fully unrolled. Otherwise the loop is partially unrolled subject
3063to the same code size limit as with ``unroll(enable)``.
3064
3065.. code-block:: c++
3066
3067  #pragma clang loop unroll_count(8)
3068  for(...) {
3069    ...
3070  }
3071
3072Unrolling of a loop can be prevented by specifying ``unroll(disable)``.
3073
3074Loop Distribution
3075-----------------
3076
3077Loop Distribution allows splitting a loop into multiple loops.  This is
3078beneficial for example when the entire loop cannot be vectorized but some of the
3079resulting loops can.
3080
3081If ``distribute(enable))`` is specified and the loop has memory dependencies
3082that inhibit vectorization, the compiler will attempt to isolate the offending
3083operations into a new loop.  This optimization is not enabled by default, only
3084loops marked with the pragma are considered.
3085
3086.. code-block:: c++
3087
3088  #pragma clang loop distribute(enable)
3089  for (i = 0; i < N; ++i) {
3090    S1: A[i + 1] = A[i] + B[i];
3091    S2: C[i] = D[i] * E[i];
3092  }
3093
3094This loop will be split into two loops between statements S1 and S2.  The
3095second loop containing S2 will be vectorized.
3096
3097Loop Distribution is currently not enabled by default in the optimizer because
3098it can hurt performance in some cases.  For example, instruction-level
3099parallelism could be reduced by sequentializing the execution of the
3100statements S1 and S2 above.
3101
3102If Loop Distribution is turned on globally with
3103``-mllvm -enable-loop-distribution``, specifying ``distribute(disable)`` can
3104be used the disable it on a per-loop basis.
3105
3106Additional Information
3107----------------------
3108
3109For convenience multiple loop hints can be specified on a single line.
3110
3111.. code-block:: c++
3112
3113  #pragma clang loop vectorize_width(4) interleave_count(8)
3114  for(...) {
3115    ...
3116  }
3117
3118If an optimization cannot be applied any hints that apply to it will be ignored.
3119For example, the hint ``vectorize_width(4)`` is ignored if the loop is not
3120proven safe to vectorize. To identify and diagnose optimization issues use
3121`-Rpass`, `-Rpass-missed`, and `-Rpass-analysis` command line options. See the
3122user guide for details.
3123
3124Extensions to specify floating-point flags
3125====================================================
3126
3127The ``#pragma clang fp`` pragma allows floating-point options to be specified
3128for a section of the source code. This pragma can only appear at file scope or
3129at the start of a compound statement (excluding comments). When using within a
3130compound statement, the pragma is active within the scope of the compound
3131statement.
3132
3133Currently, only FP contraction can be controlled with the pragma. ``#pragma
3134clang fp contract`` specifies whether the compiler should contract a multiply
3135and an addition (or subtraction) into a fused FMA operation when supported by
3136the target.
3137
3138The pragma can take three values: ``on``, ``fast`` and ``off``.  The ``on``
3139option is identical to using ``#pragma STDC FP_CONTRACT(ON)`` and it allows
3140fusion as specified the language standard.  The ``fast`` option allows fusiong
3141in cases when the language standard does not make this possible (e.g. across
3142statements in C)
3143
3144.. code-block:: c++
3145
3146  for(...) {
3147    #pragma clang fp contract(fast)
3148    a = b[i] * c[i];
3149    d[i] += a;
3150  }
3151
3152
3153The pragma can also be used with ``off`` which turns FP contraction off for a
3154section of the code. This can be useful when fast contraction is otherwise
3155enabled for the translation unit with the ``-ffp-contract=fast`` flag.
3156
3157Specifying an attribute for multiple declarations (#pragma clang attribute)
3158===========================================================================
3159
3160The ``#pragma clang attribute`` directive can be used to apply an attribute to
3161multiple declarations. The ``#pragma clang attribute push`` variation of the
3162directive pushes a new "scope" of ``#pragma clang attribute`` that attributes
3163can be added to. The ``#pragma clang attribute (...)`` variation adds an
3164attribute to that scope, and the ``#pragma clang attribute pop`` variation pops
3165the scope. You can also use ``#pragma clang attribute push (...)``, which is a
3166shorthand for when you want to add one attribute to a new scope. Multiple push
3167directives can be nested inside each other.
3168
3169The attributes that are used in the ``#pragma clang attribute`` directives
3170can be written using the GNU-style syntax:
3171
3172.. code-block:: c++
3173
3174  #pragma clang attribute push (__attribute__((annotate("custom"))), apply_to = function)
3175
3176  void function(); // The function now has the annotate("custom") attribute
3177
3178  #pragma clang attribute pop
3179
3180The attributes can also be written using the C++11 style syntax:
3181
3182.. code-block:: c++
3183
3184  #pragma clang attribute push ([[noreturn]], apply_to = function)
3185
3186  void function(); // The function now has the [[noreturn]] attribute
3187
3188  #pragma clang attribute pop
3189
3190The ``__declspec`` style syntax is also supported:
3191
3192.. code-block:: c++
3193
3194  #pragma clang attribute push (__declspec(dllexport), apply_to = function)
3195
3196  void function(); // The function now has the __declspec(dllexport) attribute
3197
3198  #pragma clang attribute pop
3199
3200A single push directive accepts only one attribute regardless of the syntax
3201used.
3202
3203Because multiple push directives can be nested, if you're writing a macro that
3204expands to ``_Pragma("clang attribute")`` it's good hygiene (though not
3205required) to add a namespace to your push/pop directives. A pop directive with a
3206namespace will pop the innermost push that has that same namespace. This will
3207ensure that another macro's ``pop`` won't inadvertently pop your attribute. Note
3208that an ``pop`` without a namespace will pop the innermost ``push`` without a
3209namespace. ``push``es with a namespace can only be popped by ``pop`` with the
3210same namespace. For instance:
3211
3212.. code-block:: c++
3213
3214   #define ASSUME_NORETURN_BEGIN _Pragma("clang attribute AssumeNoreturn.push ([[noreturn]], apply_to = function)")
3215   #define ASSUME_NORETURN_END   _Pragma("clang attribute AssumeNoreturn.pop")
3216
3217   #define ASSUME_UNAVAILABLE_BEGIN _Pragma("clang attribute Unavailable.push (__attribute__((unavailable)), apply_to=function)")
3218   #define ASSUME_UNAVAILABLE_END   _Pragma("clang attribute Unavailable.pop")
3219
3220
3221   ASSUME_NORETURN_BEGIN
3222   ASSUME_UNAVAILABLE_BEGIN
3223   void function(); // function has [[noreturn]] and __attribute__((unavailable))
3224   ASSUME_NORETURN_END
3225   void other_function(); // function has __attribute__((unavailable))
3226   ASSUME_UNAVAILABLE_END
3227
3228Without the namespaces on the macros, ``other_function`` will be annotated with
3229``[[noreturn]]`` instead of ``__attribute__((unavailable))``. This may seem like
3230a contrived example, but its very possible for this kind of situation to appear
3231in real code if the pragmas are spread out across a large file. You can test if
3232your version of clang supports namespaces on ``#pragma clang attribute`` with
3233``__has_extension(pragma_clang_attribute_namespaces)``.
3234
3235Subject Match Rules
3236-------------------
3237
3238The set of declarations that receive a single attribute from the attribute stack
3239depends on the subject match rules that were specified in the pragma. Subject
3240match rules are specified after the attribute. The compiler expects an
3241identifier that corresponds to the subject set specifier. The ``apply_to``
3242specifier is currently the only supported subject set specifier. It allows you
3243to specify match rules that form a subset of the attribute's allowed subject
3244set, i.e. the compiler doesn't require all of the attribute's subjects. For
3245example, an attribute like ``[[nodiscard]]`` whose subject set includes
3246``enum``, ``record`` and ``hasType(functionType)``, requires the presence of at
3247least one of these rules after ``apply_to``:
3248
3249.. code-block:: c++
3250
3251  #pragma clang attribute push([[nodiscard]], apply_to = enum)
3252
3253  enum Enum1 { A1, B1 }; // The enum will receive [[nodiscard]]
3254
3255  struct Record1 { }; // The struct will *not* receive [[nodiscard]]
3256
3257  #pragma clang attribute pop
3258
3259  #pragma clang attribute push([[nodiscard]], apply_to = any(record, enum))
3260
3261  enum Enum2 { A2, B2 }; // The enum will receive [[nodiscard]]
3262
3263  struct Record2 { }; // The struct *will* receive [[nodiscard]]
3264
3265  #pragma clang attribute pop
3266
3267  // This is an error, since [[nodiscard]] can't be applied to namespaces:
3268  #pragma clang attribute push([[nodiscard]], apply_to = any(record, namespace))
3269
3270  #pragma clang attribute pop
3271
3272Multiple match rules can be specified using the ``any`` match rule, as shown
3273in the example above. The ``any`` rule applies attributes to all declarations
3274that are matched by at least one of the rules in the ``any``. It doesn't nest
3275and can't be used inside the other match rules. Redundant match rules or rules
3276that conflict with one another should not be used inside of ``any``.
3277
3278Clang supports the following match rules:
3279
3280- ``function``: Can be used to apply attributes to functions. This includes C++
3281  member functions, static functions, operators, and constructors/destructors.
3282
3283- ``function(is_member)``: Can be used to apply attributes to C++ member
3284  functions. This includes members like static functions, operators, and
3285  constructors/destructors.
3286
3287- ``hasType(functionType)``: Can be used to apply attributes to functions, C++
3288  member functions, and variables/fields whose type is a function pointer. It
3289  does not apply attributes to Objective-C methods or blocks.
3290
3291- ``type_alias``: Can be used to apply attributes to ``typedef`` declarations
3292  and C++11 type aliases.
3293
3294- ``record``: Can be used to apply attributes to ``struct``, ``class``, and
3295  ``union`` declarations.
3296
3297- ``record(unless(is_union))``: Can be used to apply attributes only to
3298  ``struct`` and ``class`` declarations.
3299
3300- ``enum``: Can be be used to apply attributes to enumeration declarations.
3301
3302- ``enum_constant``: Can be used to apply attributes to enumerators.
3303
3304- ``variable``: Can be used to apply attributes to variables, including
3305  local variables, parameters, global variables, and static member variables.
3306  It does not apply attributes to instance member variables or Objective-C
3307  ivars.
3308
3309- ``variable(is_thread_local)``: Can be used to apply attributes to thread-local
3310  variables only.
3311
3312- ``variable(is_global)``: Can be used to apply attributes to global variables
3313  only.
3314
3315- ``variable(is_parameter)``: Can be used to apply attributes to parameters
3316  only.
3317
3318- ``variable(unless(is_parameter))``: Can be used to apply attributes to all
3319  the variables that are not parameters.
3320
3321- ``field``: Can be used to apply attributes to non-static member variables
3322  in a record. This includes Objective-C ivars.
3323
3324- ``namespace``: Can be used to apply attributes to ``namespace`` declarations.
3325
3326- ``objc_interface``: Can be used to apply attributes to ``@interface``
3327  declarations.
3328
3329- ``objc_protocol``: Can be used to apply attributes to ``@protocol``
3330  declarations.
3331
3332- ``objc_category``: Can be used to apply attributes to category declarations,
3333  including class extensions.
3334
3335- ``objc_method``: Can be used to apply attributes to Objective-C methods,
3336  including instance and class methods. Implicit methods like implicit property
3337  getters and setters do not receive the attribute.
3338
3339- ``objc_method(is_instance)``: Can be used to apply attributes to Objective-C
3340  instance methods.
3341
3342- ``objc_property``: Can be used to apply attributes to ``@property``
3343  declarations.
3344
3345- ``block``: Can be used to apply attributes to block declarations. This does
3346  not include variables/fields of block pointer type.
3347
3348The use of ``unless`` in match rules is currently restricted to a strict set of
3349sub-rules that are used by the supported attributes. That means that even though
3350``variable(unless(is_parameter))`` is a valid match rule,
3351``variable(unless(is_thread_local))`` is not.
3352
3353Supported Attributes
3354--------------------
3355
3356Not all attributes can be used with the ``#pragma clang attribute`` directive.
3357Notably, statement attributes like ``[[fallthrough]]`` or type attributes
3358like ``address_space`` aren't supported by this directive. You can determine
3359whether or not an attribute is supported by the pragma by referring to the
3360:doc:`individual documentation for that attribute <AttributeReference>`.
3361
3362The attributes are applied to all matching declarations individually, even when
3363the attribute is semantically incorrect. The attributes that aren't applied to
3364any declaration are not verified semantically.
3365
3366Specifying section names for global objects (#pragma clang section)
3367===================================================================
3368
3369The ``#pragma clang section`` directive provides a means to assign section-names
3370to global variables, functions and static variables.
3371
3372The section names can be specified as:
3373
3374.. code-block:: c++
3375
3376  #pragma clang section bss="myBSS" data="myData" rodata="myRodata" relro="myRelro" text="myText"
3377
3378The section names can be reverted back to default name by supplying an empty
3379string to the section kind, for example:
3380
3381.. code-block:: c++
3382
3383  #pragma clang section bss="" data="" text="" rodata="" relro=""
3384
3385The ``#pragma clang section`` directive obeys the following rules:
3386
3387* The pragma applies to all global variable, statics and function declarations
3388  from the pragma to the end of the translation unit.
3389
3390* The pragma clang section is enabled automatically, without need of any flags.
3391
3392* This feature is only defined to work sensibly for ELF targets.
3393
3394* If section name is specified through _attribute_((section("myname"))), then
3395  the attribute name gains precedence.
3396
3397* Global variables that are initialized to zero will be placed in the named
3398  bss section, if one is present.
3399
3400* The ``#pragma clang section`` directive does not does try to infer section-kind
3401  from the name. For example, naming a section "``.bss.mySec``" does NOT mean
3402  it will be a bss section name.
3403
3404* The decision about which section-kind applies to each global is taken in the back-end.
3405  Once the section-kind is known, appropriate section name, as specified by the user using
3406  ``#pragma clang section`` directive, is applied to that global.
3407
3408Specifying Linker Options on ELF Targets
3409========================================
3410
3411The ``#pragma comment(lib, ...)`` directive is supported on all ELF targets.
3412The second parameter is the library name (without the traditional Unix prefix of
3413``lib``).  This allows you to provide an implicit link of dependent libraries.
3414
3415Evaluating Object Size Dynamically
3416==================================
3417
3418Clang supports the builtin ``__builtin_dynamic_object_size``, the semantics are
3419the same as GCC's ``__builtin_object_size`` (which Clang also supports), but
3420``__builtin_dynamic_object_size`` can evaluate the object's size at runtime.
3421``__builtin_dynamic_object_size`` is meant to be used as a drop-in replacement
3422for ``__builtin_object_size`` in libraries that support it.
3423
3424For instance, here is a program that ``__builtin_dynamic_object_size`` will make
3425safer:
3426
3427.. code-block:: c
3428
3429  void copy_into_buffer(size_t size) {
3430    char* buffer = malloc(size);
3431    strlcpy(buffer, "some string", strlen("some string"));
3432    // Previous line preprocesses to:
3433    // __builtin___strlcpy_chk(buffer, "some string", strlen("some string"), __builtin_object_size(buffer, 0))
3434  }
3435
3436Since the size of ``buffer`` can't be known at compile time, Clang will fold
3437``__builtin_object_size(buffer, 0)`` into ``-1``. However, if this was written
3438as ``__builtin_dynamic_object_size(buffer, 0)``, Clang will fold it into
3439``size``, providing some extra runtime safety.
3440