1.. _using-libcxx:
2
3============
4Using libc++
5============
6
7.. contents::
8  :local:
9
10Usually, libc++ is packaged and shipped by a vendor through some delivery vehicle
11(operating system distribution, SDK, toolchain, etc) and users don't need to do
12anything special in order to use the library.
13
14This page contains information about configuration knobs that can be used by
15users when they know libc++ is used by their toolchain, and how to use libc++
16when it is not the default library used by their toolchain.
17
18
19Using a different version of the C++ Standard
20=============================================
21
22Libc++ implements the various versions of the C++ Standard. Changing the version of
23the standard can be done by passing ``-std=c++XY`` to the compiler. Libc++ will
24automatically detect what Standard is being used and will provide functionality that
25matches that Standard in the library.
26
27.. code-block:: bash
28
29  $ clang++ -std=c++17 test.cpp
30
31.. warning::
32  Using ``-std=c++XY`` with a version of the Standard that has not been ratified yet
33  is considered unstable. Libc++ reserves the right to make breaking changes to the
34  library until the standard has been ratified.
35
36
37Enabling experimental C++ Library features
38==========================================
39
40Libc++ provides implementations of some experimental features. Experimental features
41are either Technical Specifications (TSes) or official features that were voted to
42the Standard but whose implementation is not complete or stable yet in libc++. Those
43are disabled by default because they are neither API nor ABI stable. However, the
44``-fexperimental-library`` compiler flag can be defined to turn those features on.
45
46.. warning::
47  Experimental libraries are experimental.
48    * The contents of the ``<experimental/...>`` headers and the associated static
49      library will not remain compatible between versions.
50    * No guarantees of API or ABI stability are provided.
51    * When the standardized version of an experimental feature is implemented,
52      the experimental feature is removed two releases after the non-experimental
53      version has shipped. The full policy is explained :ref:`here <experimental features>`.
54
55.. note::
56  On compilers that do not support the ``-fexperimental-library`` flag, users can
57  define the ``_LIBCPP_ENABLE_EXPERIMENTAL`` macro and manually link against the
58  appropriate static library (usually shipped as ``libc++experimental.a``) to get
59  access to experimental library features.
60
61
62Using libc++ when it is not the system default
63==============================================
64
65On systems where libc++ is provided but is not the default, Clang provides a flag
66called ``-stdlib=`` that can be used to decide which standard library is used.
67Using ``-stdlib=libc++`` will select libc++:
68
69.. code-block:: bash
70
71  $ clang++ -stdlib=libc++ test.cpp
72
73On systems where libc++ is the library in use by default such as macOS and FreeBSD,
74this flag is not required.
75
76
77.. _alternate libcxx:
78
79Using a custom built libc++
80===========================
81
82Most compilers provide a way to disable the default behavior for finding the
83standard library and to override it with custom paths. With Clang, this can
84be done with:
85
86.. code-block:: bash
87
88  $ clang++ -nostdinc++ -nostdlib++           \
89            -isystem <install>/include/c++/v1 \
90            -L <install>/lib                  \
91            -Wl,-rpath,<install>/lib          \
92            -lc++                             \
93            test.cpp
94
95The option ``-Wl,-rpath,<install>/lib`` adds a runtime library search path,
96which causes the system's dynamic linker to look for libc++ in ``<install>/lib``
97whenever the program is loaded.
98
99GCC does not support the ``-nostdlib++`` flag, so one must use ``-nodefaultlibs``
100instead. Since that removes all the standard system libraries and not just libc++,
101the system libraries must be re-added manually. For example:
102
103.. code-block:: bash
104
105  $ g++ -nostdinc++ -nodefaultlibs           \
106        -isystem <install>/include/c++/v1    \
107        -L <install>/lib                     \
108        -Wl,-rpath,<install>/lib             \
109        -lc++ -lc++abi -lm -lc -lgcc_s -lgcc \
110        test.cpp
111
112
113GDB Pretty printers for libc++
114==============================
115
116GDB does not support pretty-printing of libc++ symbols by default. However, libc++ does
117provide pretty-printers itself. Those can be used as:
118
119.. code-block:: bash
120
121  $ gdb -ex "source <libcxx>/utils/gdb/libcxx/printers.py" \
122        -ex "python register_libcxx_printer_loader()" \
123        <args>
124
125
126.. _assertions-mode:
127
128Enabling the "safe libc++" mode
129===============================
130
131Libc++ contains a number of assertions whose goal is to catch undefined behavior in the
132library, usually caused by precondition violations. Those assertions do not aim to be
133exhaustive -- instead they aim to provide a good balance between safety and performance.
134In particular, these assertions do not change the complexity of algorithms. However, they
135might, in some cases, interfere with compiler optimizations.
136
137By default, these assertions are turned off. Vendors can decide to turn them on while building
138the compiled library by defining ``LIBCXX_ENABLE_ASSERTIONS=ON`` at CMake configuration time.
139When ``LIBCXX_ENABLE_ASSERTIONS`` is used, the compiled library will be built with assertions
140enabled, **and** user code will be built with assertions enabled by default. If
141``LIBCXX_ENABLE_ASSERTIONS=OFF`` at CMake configure time, the compiled library will not contain
142assertions and the default when building user code will be to have assertions disabled.
143As a user, you can consult your vendor to know whether assertions are enabled by default.
144
145Furthermore, independently of any vendor-selected default, users can always control whether
146assertions are enabled in their code by defining ``_LIBCPP_ENABLE_ASSERTIONS=0|1`` before
147including any libc++ header (we recommend passing ``-D_LIBCPP_ENABLE_ASSERTIONS=X`` to the
148compiler). Note that if the compiled library was built by the vendor without assertions,
149functions compiled inside the static or shared library won't have assertions enabled even
150if the user defines ``_LIBCPP_ENABLE_ASSERTIONS=1`` (the same is true for the inverse case
151where the static or shared library was compiled **with** assertions but the user tries to
152disable them). However, most of the code in libc++ is in the headers, so the user-selected
153value for ``_LIBCPP_ENABLE_ASSERTIONS`` (if any) will usually be respected.
154
155When an assertion fails, the program is aborted through a special verbose termination function. The
156library provides a default function that prints an error message and calls ``std::abort()``. Note
157that this function is provided by the static or shared library, so it is only available when deploying
158to a platform where the compiled library is sufficiently recent. However, users can also override that
159function with their own, which can be useful to provide custom behavior, or when deploying to older
160platforms where the default function isn't available.
161
162Replacing the default verbose termination function is done by defining the following function:
163
164.. code-block:: cpp
165
166  void __libcpp_verbose_abort(char const* format, ...)
167
168This mechanism is similar to how one can replace the default definition of ``operator new``
169and ``operator delete``. For example:
170
171.. code-block:: cpp
172
173  // In HelloWorldHandler.cpp
174  #include <version> // must include any libc++ header before defining the function (C compatibility headers excluded)
175
176  void std::__libcpp_verbose_abort(char const* format, ...) {
177    va_list list;
178    va_start(list, format);
179    std::vfprintf(stderr, format, list);
180    va_end(list);
181
182    std::abort();
183  }
184
185  // In HelloWorld.cpp
186  #include <vector>
187
188  int main() {
189    std::vector<int> v;
190    int& x = v[0]; // Your termination function will be called here if _LIBCPP_ENABLE_ASSERTIONS=1
191  }
192
193Also note that the verbose termination function should never return. Since assertions in libc++
194catch undefined behavior, your code will proceed with undefined behavior if your function is called
195and does return.
196
197Furthermore, exceptions should not be thrown from the function. Indeed, many functions in the
198library are ``noexcept``, and any exception thrown from the termination function will result
199in ``std::terminate`` being called.
200
201Back-deploying with a custom verbose termination function
202---------------------------------------------------------
203When deploying to an older platform that does not provide a default verbose termination function,
204the compiler will diagnose the usage of ``std::__libcpp_verbose_abort`` with an error. This is done
205to avoid the load-time error that would otherwise happen if the code was being deployed on older
206systems.
207
208If you are providing a custom verbose termination function, this error is effectively a false positive.
209To let the library know that you are providing a custom function in back-deployment scenarios, you must
210define the ``_LIBCPP_AVAILABILITY_CUSTOM_VERBOSE_ABORT_PROVIDED`` macro, and the library will assume that
211you are providing your own definition. If no definition is provided and the code is back-deployed to an older
212platform, it will fail to load when the dynamic linker fails to find a definition of the function, so you
213should only remove the guard rails if you really mean it!
214
215Libc++ Configuration Macros
216===========================
217
218Libc++ provides a number of configuration macros which can be used to enable
219or disable extended libc++ behavior, including enabling "debug mode" or
220thread safety annotations.
221
222**_LIBCPP_ENABLE_THREAD_SAFETY_ANNOTATIONS**:
223  This macro is used to enable -Wthread-safety annotations on libc++'s
224  ``std::mutex`` and ``std::lock_guard``. By default, these annotations are
225  disabled and must be manually enabled by the user.
226
227**_LIBCPP_DISABLE_VISIBILITY_ANNOTATIONS**:
228  This macro is used to disable all visibility annotations inside libc++.
229  Defining this macro and then building libc++ with hidden visibility gives a
230  build of libc++ which does not export any symbols, which can be useful when
231  building statically for inclusion into another library.
232
233**_LIBCPP_DISABLE_ADDITIONAL_DIAGNOSTICS**:
234  This macro disables the additional diagnostics generated by libc++ using the
235  `diagnose_if` attribute. These additional diagnostics include checks for:
236
237    * Giving `set`, `map`, `multiset`, `multimap` and their `unordered_`
238      counterparts a comparator which is not const callable.
239    * Giving an unordered associative container a hasher that is not const
240      callable.
241
242**_LIBCPP_NO_VCRUNTIME**:
243  Microsoft's C and C++ headers are fairly entangled, and some of their C++
244  headers are fairly hard to avoid. In particular, `vcruntime_new.h` gets pulled
245  in from a lot of other headers and provides definitions which clash with
246  libc++ headers, such as `nothrow_t` (note that `nothrow_t` is a struct, so
247  there's no way for libc++ to provide a compatible definition, since you can't
248  have multiple definitions).
249
250  By default, libc++ solves this problem by deferring to Microsoft's vcruntime
251  headers where needed. However, it may be undesirable to depend on vcruntime
252  headers, since they may not always be available in cross-compilation setups,
253  or they may clash with other headers. The `_LIBCPP_NO_VCRUNTIME` macro
254  prevents libc++ from depending on vcruntime headers. Consequently, it also
255  prevents libc++ headers from being interoperable with vcruntime headers (from
256  the aforementioned clashes), so users of this macro are promising to not
257  attempt to combine libc++ headers with the problematic vcruntime headers. This
258  macro also currently prevents certain `operator new`/`operator delete`
259  replacement scenarios from working, e.g. replacing `operator new` and
260  expecting a non-replaced `operator new[]` to call the replaced `operator new`.
261
262**_LIBCPP_ENABLE_NODISCARD**:
263  Allow the library to add ``[[nodiscard]]`` attributes to entities not specified
264  as ``[[nodiscard]]`` by the current language dialect. This includes
265  backporting applications of ``[[nodiscard]]`` from newer dialects and
266  additional extended applications at the discretion of the library. All
267  additional applications of ``[[nodiscard]]`` are disabled by default.
268  See :ref:`Extended Applications of [[nodiscard]] <nodiscard extension>` for
269  more information.
270
271**_LIBCPP_DISABLE_NODISCARD_EXT**:
272  This macro prevents the library from applying ``[[nodiscard]]`` to entities
273  purely as an extension. See :ref:`Extended Applications of [[nodiscard]] <nodiscard extension>`
274  for more information.
275
276**_LIBCPP_DISABLE_DEPRECATION_WARNINGS**:
277  This macro disables warnings when using deprecated components. For example,
278  using `std::auto_ptr` when compiling in C++11 mode will normally trigger a
279  warning saying that `std::auto_ptr` is deprecated. If the macro is defined,
280  no warning will be emitted. By default, this macro is not defined.
281
282C++17 Specific Configuration Macros
283-----------------------------------
284**_LIBCPP_ENABLE_CXX17_REMOVED_FEATURES**:
285  This macro is used to re-enable all the features removed in C++17. The effect
286  is equivalent to manually defining each macro listed below.
287
288**_LIBCPP_ENABLE_CXX17_REMOVED_AUTO_PTR**:
289  This macro is used to re-enable `auto_ptr`.
290
291**_LIBCPP_ENABLE_CXX17_REMOVED_BINDERS**:
292  This macro is used to re-enable the `binder1st`, `binder2nd`,
293  `pointer_to_unary_function`, `pointer_to_binary_function`, `mem_fun_t`,
294  `mem_fun1_t`, `mem_fun_ref_t`, `mem_fun1_ref_t`, `const_mem_fun_t`,
295  `const_mem_fun1_t`, `const_mem_fun_ref_t`, and `const_mem_fun1_ref_t`
296  class templates, and the `bind1st`, `bind2nd`, `mem_fun`, `mem_fun_ref`,
297  and `ptr_fun` functions.
298
299**_LIBCPP_ENABLE_CXX17_REMOVED_RANDOM_SHUFFLE**:
300  This macro is used to re-enable the `random_shuffle` algorithm.
301
302**_LIBCPP_ENABLE_CXX17_REMOVED_UNEXPECTED_FUNCTIONS**:
303  This macro is used to re-enable `set_unexpected`, `get_unexpected`, and
304  `unexpected`.
305
306C++20 Specific Configuration Macros
307-----------------------------------
308**_LIBCPP_DISABLE_NODISCARD_AFTER_CXX17**:
309  This macro can be used to disable diagnostics emitted from functions marked
310  ``[[nodiscard]]`` in dialects after C++17.  See :ref:`Extended Applications of [[nodiscard]] <nodiscard extension>`
311  for more information.
312
313**_LIBCPP_ENABLE_CXX20_REMOVED_FEATURES**:
314  This macro is used to re-enable all the features removed in C++20. The effect
315  is equivalent to manually defining each macro listed below.
316
317**_LIBCPP_ENABLE_CXX20_REMOVED_ALLOCATOR_MEMBERS**:
318  This macro is used to re-enable redundant members of `allocator<T>`,
319  including `pointer`, `reference`, `rebind`, `address`, `max_size`,
320  `construct`, `destroy`, and the two-argument overload of `allocate`.
321
322**_LIBCPP_ENABLE_CXX20_REMOVED_ALLOCATOR_VOID_SPECIALIZATION**:
323  This macro is used to re-enable the library-provided specializations of
324  `allocator<void>` and `allocator<const void>`.
325  Use it in conjunction with `_LIBCPP_ENABLE_CXX20_REMOVED_ALLOCATOR_MEMBERS`
326  to ensure that removed members of `allocator<void>` can be accessed.
327
328**_LIBCPP_ENABLE_CXX20_REMOVED_BINDER_TYPEDEFS**:
329  This macro is used to re-enable the `argument_type`, `result_type`,
330  `first_argument_type`, and `second_argument_type` members of class
331  templates such as `plus`, `logical_not`, `hash`, and `owner_less`.
332
333**_LIBCPP_ENABLE_CXX20_REMOVED_NEGATORS**:
334  This macro is used to re-enable `not1`, `not2`, `unary_negate`,
335  and `binary_negate`.
336
337**_LIBCPP_ENABLE_CXX20_REMOVED_RAW_STORAGE_ITERATOR**:
338  This macro is used to re-enable `raw_storage_iterator`.
339
340**_LIBCPP_ENABLE_CXX20_REMOVED_TYPE_TRAITS**:
341  This macro is used to re-enable `is_literal_type`, `is_literal_type_v`,
342  `result_of` and `result_of_t`.
343
344
345Libc++ Extensions
346=================
347
348This section documents various extensions provided by libc++, how they're
349provided, and any information regarding how to use them.
350
351.. _nodiscard extension:
352
353Extended applications of ``[[nodiscard]]``
354------------------------------------------
355
356The ``[[nodiscard]]`` attribute is intended to help users find bugs where
357function return values are ignored when they shouldn't be. After C++17 the
358C++ standard has started to declared such library functions as ``[[nodiscard]]``.
359However, this application is limited and applies only to dialects after C++17.
360Users who want help diagnosing misuses of STL functions may desire a more
361liberal application of ``[[nodiscard]]``.
362
363For this reason libc++ provides an extension that does just that! The
364extension must be enabled by defining ``_LIBCPP_ENABLE_NODISCARD``. The extended
365applications of ``[[nodiscard]]`` takes two forms:
366
3671. Backporting ``[[nodiscard]]`` to entities declared as such by the
368   standard in newer dialects, but not in the present one.
369
3702. Extended applications of ``[[nodiscard]]``, at the library's discretion,
371   applied to entities never declared as such by the standard.
372
373Users may also opt-out of additional applications ``[[nodiscard]]`` using
374additional macros.
375
376Applications of the first form, which backport ``[[nodiscard]]`` from a newer
377dialect, may be disabled using macros specific to the dialect in which it was
378added. For example, ``_LIBCPP_DISABLE_NODISCARD_AFTER_CXX17``.
379
380Applications of the second form, which are pure extensions, may be disabled
381by defining ``_LIBCPP_DISABLE_NODISCARD_EXT``.
382
383
384Entities declared with ``_LIBCPP_NODISCARD_EXT``
385~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
386
387This section lists all extended applications of ``[[nodiscard]]`` to entities
388which no dialect declares as such (See the second form described above).
389
390* ``adjacent_find``
391* ``all_of``
392* ``any_of``
393* ``binary_search``
394* ``clamp``
395* ``count_if``
396* ``count``
397* ``equal_range``
398* ``equal``
399* ``find_end``
400* ``find_first_of``
401* ``find_if_not``
402* ``find_if``
403* ``find``
404* ``get_temporary_buffer``
405* ``includes``
406* ``is_heap_until``
407* ``is_heap``
408* ``is_partitioned``
409* ``is_permutation``
410* ``is_sorted_until``
411* ``is_sorted``
412* ``lexicographical_compare``
413* ``lower_bound``
414* ``max_element``
415* ``max``
416* ``min_element``
417* ``min``
418* ``minmax_element``
419* ``minmax``
420* ``mismatch``
421* ``none_of``
422* ``remove_if``
423* ``remove``
424* ``search_n``
425* ``search``
426* ``unique``
427* ``upper_bound``
428* ``lock_guard``'s constructors
429* ``as_const``
430* ``bit_cast``
431* ``forward``
432* ``move``
433* ``move_if_noexcept``
434* ``identity::operator()``
435* ``to_integer``
436* ``to_underlying``
437
438Additional types supported in random distributions
439~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
440
441The `C++ Standard <http://eel.is/c++draft/rand#req.genl-1.5>`_ mentions that instantiating several random number
442distributions with types other than ``short``, ``int``, ``long``, ``long long``, and their unsigned versions is
443undefined. As an extension, libc++ supports instantiating ``binomial_distribution``, ``discrete_distribution``,
444``geometric_distribution``, ``negative_binomial_distribution``, ``poisson_distribution``, and ``uniform_int_distribution``
445with ``int8_t``, ``__int128_t`` and their unsigned versions.
446