1======= 2Modules 3======= 4 5.. contents:: 6 :local: 7 8.. warning:: 9 The functionality described on this page is still experimental! Please 10 try it out and send us bug reports! 11 12Introduction 13============ 14Most software is built using a number of software libraries, including libraries supplied by the platform, internal libraries built as part of the software itself to provide structure, and third-party libraries. For each library, one needs to access both its interface (API) and its implementation. In the C family of languages, the interface to a library is accessed by including the appropriate header files(s): 15 16.. code-block:: c 17 18 #include <SomeLib.h> 19 20The implementation is handled separately by linking against the appropriate library. For example, by passing ``-lSomeLib`` to the linker. 21 22Modules provide an alternative, simpler way to use software libraries that provides better compile-time scalability and eliminates many of the problems inherent to using the C preprocessor to access the API of a library. 23 24Problems with the current model 25------------------------------- 26The ``#include`` mechanism provided by the C preprocessor is a very poor way to access the API of a library, for a number of reasons: 27 28* **Compile-time scalability**: Each time a header is included, the 29 compiler must preprocess and parse the text in that header and every 30 header it includes, transitively. This process must be repeated for 31 every translation unit in the application, which involves a huge 32 amount of redundant work. In a project with *N* translation units 33 and *M* headers included in each translation unit, the compiler is 34 performing *M x N* work even though most of the *M* headers are 35 shared among multiple translation units. C++ is particularly bad, 36 because the compilation model for templates forces a huge amount of 37 code into headers. 38 39* **Fragility**: ``#include`` directives are treated as textual 40 inclusion by the preprocessor, and are therefore subject to any 41 active macro definitions at the time of inclusion. If any of the 42 active macro definitions happens to collide with a name in the 43 library, it can break the library API or cause compilation failures 44 in the library header itself. For an extreme example, 45 ``#define std "The C++ Standard"`` and then include a standard 46 library header: the result is a horrific cascade of failures in the 47 C++ Standard Library's implementation. More subtle real-world 48 problems occur when the headers for two different libraries interact 49 due to macro collisions, and users are forced to reorder 50 ``#include`` directives or introduce ``#undef`` directives to break 51 the (unintended) dependency. 52 53* **Conventional workarounds**: C programmers have 54 adopted a number of conventions to work around the fragility of the 55 C preprocessor model. Include guards, for example, are required for 56 the vast majority of headers to ensure that multiple inclusion 57 doesn't break the compile. Macro names are written with 58 ``LONG_PREFIXED_UPPERCASE_IDENTIFIERS`` to avoid collisions, and some 59 library/framework developers even use ``__underscored`` names 60 in headers to avoid collisions with "normal" names that (by 61 convention) shouldn't even be macros. These conventions are a 62 barrier to entry for developers coming from non-C languages, are 63 boilerplate for more experienced developers, and make our headers 64 far uglier than they should be. 65 66* **Tool confusion**: In a C-based language, it is hard to build tools 67 that work well with software libraries, because the boundaries of 68 the libraries are not clear. Which headers belong to a particular 69 library, and in what order should those headers be included to 70 guarantee that they compile correctly? Are the headers C, C++, 71 Objective-C++, or one of the variants of these languages? What 72 declarations in those headers are actually meant to be part of the 73 API, and what declarations are present only because they had to be 74 written as part of the header file? 75 76Semantic import 77--------------- 78Modules improve access to the API of software libraries by replacing the textual preprocessor inclusion model with a more robust, more efficient semantic model. From the user's perspective, the code looks only slightly different, because one uses an ``import`` declaration rather than a ``#include`` preprocessor directive: 79 80.. code-block:: c 81 82 import std.io; // pseudo-code; see below for syntax discussion 83 84However, this module import behaves quite differently from the corresponding ``#include <stdio.h>``: when the compiler sees the module import above, it loads a binary representation of the ``std.io`` module and makes its API available to the application directly. Preprocessor definitions that precede the import declaration have no impact on the API provided by ``std.io``, because the module itself was compiled as a separate, standalone module. Additionally, any linker flags required to use the ``std.io`` module will automatically be provided when the module is imported [#]_ 85This semantic import model addresses many of the problems of the preprocessor inclusion model: 86 87* **Compile-time scalability**: The ``std.io`` module is only compiled once, and importing the module into a translation unit is a constant-time operation (independent of module system). Thus, the API of each software library is only parsed once, reducing the *M x N* compilation problem to an *M + N* problem. 88 89* **Fragility**: Each module is parsed as a standalone entity, so it has a consistent preprocessor environment. This completely eliminates the need for ``__underscored`` names and similarly defensive tricks. Moreover, the current preprocessor definitions when an import declaration is encountered are ignored, so one software library can not affect how another software library is compiled, eliminating include-order dependencies. 90 91* **Tool confusion**: Modules describe the API of software libraries, and tools can reason about and present a module as a representation of that API. Because modules can only be built standalone, tools can rely on the module definition to ensure that they get the complete API for the library. Moreover, modules can specify which languages they work with, so, e.g., one can not accidentally attempt to load a C++ module into a C program. 92 93Problems modules do not solve 94----------------------------- 95Many programming languages have a module or package system, and because of the variety of features provided by these languages it is important to define what modules do *not* do. In particular, all of the following are considered out-of-scope for modules: 96 97* **Rewrite the world's code**: It is not realistic to require applications or software libraries to make drastic or non-backward-compatible changes, nor is it feasible to completely eliminate headers. Modules must interoperate with existing software libraries and allow a gradual transition. 98 99* **Versioning**: Modules have no notion of version information. Programmers must still rely on the existing versioning mechanisms of the underlying language (if any exist) to version software libraries. 100 101* **Namespaces**: Unlike in some languages, modules do not imply any notion of namespaces. Thus, a struct declared in one module will still conflict with a struct of the same name declared in a different module, just as they would if declared in two different headers. This aspect is important for backward compatibility, because (for example) the mangled names of entities in software libraries must not change when introducing modules. 102 103* **Binary distribution of modules**: Headers (particularly C++ headers) expose the full complexity of the language. Maintaining a stable binary module format across architectures, compiler versions, and compiler vendors is technically infeasible. 104 105Using Modules 106============= 107To enable modules, pass the command-line flag ``-fmodules`` [#]_. This will make any modules-enabled software libraries available as modules as well as introducing any modules-specific syntax. Additional `command-line parameters`_ are described in a separate section later. 108 109Import declaration 110------------------ 111The most direct way to import a module is with an *import declaration*, which imports the named module: 112 113.. parsed-literal:: 114 115 import std; 116 117The import declaration above imports the entire contents of the ``std`` module (which would contain, e.g., the entire C or C++ standard library) and make its API available within the current translation unit. To import only part of a module, one may use dot syntax to specific a particular submodule, e.g., 118 119.. parsed-literal:: 120 121 import std.io; 122 123Redundant import declarations are ignored, and one is free to import modules at any point within the translation unit, so long as the import declaration is at global scope. 124 125.. warning:: 126 The import declaration syntax described here does not actually exist. Rather, it is a straw man proposal that may very well change when modules are discussed in the C and C++ committees. See the section `Includes as imports`_ to see how modules get imported today. 127 128Includes as imports 129------------------- 130The primary user-level feature of modules is the import operation, which provides access to the API of software libraries. However, today's programs make extensive use of ``#include``, and it is unrealistic to assume that all of this code will change overnight. Instead, modules automatically translate ``#include`` directives into the corresponding module import. For example, the include directive 131 132.. code-block:: c 133 134 #include <stdio.h> 135 136will be automatically mapped to an import of the module ``std.io``. Even with specific ``import`` syntax in the language, this particular feature is important for both adoption and backward compatibility: automatic translation of ``#include`` to ``import`` allows an application to get the benefits of modules (for all modules-enabled libraries) without any changes to the application itself. Thus, users can easily use modules with one compiler while falling back to the preprocessor-inclusion mechanism with other compilers. 137 138.. note:: 139 140 The automatic mapping of ``#include`` to ``import`` also solves an implementation problem: importing a module with a definition of some entity (say, a ``struct Point``) and then parsing a header containing another definition of ``struct Point`` would cause a redefinition error, even if it is the same ``struct Point``. By mapping ``#include`` to ``import``, the compiler can guarantee that it always sees just the already-parsed definition from the module. 141 142Module maps 143----------- 144The crucial link between modules and headers is described by a *module map*, which describes how a collection of existing headers maps on to the (logical) structure of a module. For example, one could imagine a module ``std`` covering the C standard library. Each of the C standard library headers (``<stdio.h>``, ``<stdlib.h>``, ``<math.h>``, etc.) would contribute to the ``std`` module, by placing their respective APIs into the corresponding submodule (``std.io``, ``std.lib``, ``std.math``, etc.). Having a list of the headers that are part of the ``std`` module allows the compiler to build the ``std`` module as a standalone entity, and having the mapping from header names to (sub)modules allows the automatic translation of ``#include`` directives to module imports. 145 146Module maps are specified as separate files (each named ``module.map``) alongside the headers they describe, which allows them to be added to existing software libraries without having to change the library headers themselves (in most cases [#]_). The actual `Module map language`_ is described in a later section. 147 148.. note:: 149 150 To actually see any benefits from modules, one first has to introduce module maps for the underlying C standard library and the libraries and headers on which it depends. The section `Modularizing a Platform`_ describes the steps one must take to write these module maps. 151 152Compilation model 153----------------- 154The binary representation of modules is automatically generated by the compiler on an as-needed basis. When a module is imported (e.g., by an ``#include`` of one of the module's headers), the compiler will spawn a second instance of itself [#]_, with a fresh preprocessing context [#]_, to parse just the headers in that module. The resulting Abstract Syntax Tree (AST) is then persisted into the binary representation of the module that is then loaded into translation unit where the module import was encountered. 155 156The binary representation of modules is persisted in the *module cache*. Imports of a module will first query the module cache and, if a binary representation of the required module is already available, will load that representation directly. Thus, a module's headers will only be parsed once per language configuration, rather than once per translation unit that uses the module. 157 158Modules maintain references to each of the headers that were part of the module build. If any of those headers changes, or if any of the modules on which a module depends change, then the module will be (automatically) recompiled. The process should never require any user intervention. 159 160Command-line parameters 161----------------------- 162``-fmodules`` 163 Enable the modules feature (EXPERIMENTAL). 164 165``-fcxx-modules`` 166 Enable the modules feature for C++ (EXPERIMENTAL and VERY BROKEN). 167 168``-fmodules-cache-path=<directory>`` 169 Specify the path to the modules cache. If not provided, Clang will select a system-appropriate default. 170 171``-fno-autolink`` 172 Disable automatic linking against the libraries associated with imported modules. 173 174``-fmodules-ignore-macro=macroname`` 175 Instruct modules to ignore the named macro when selecting an appropriate module variant. Use this for macros defined on the command line that don't affect how modules are built, to improve sharing of compiled module files. 176 177``-fmodules-prune-interval=seconds`` 178 Specify the minimum delay (in seconds) between attempts to prune the module cache. Module cache pruning attempts to clear out old, unused module files so that the module cache itself does not grow without bound. The default delay is large (604,800 seconds, or 7 days) because this is an expensive operation. Set this value to 0 to turn off pruning. 179 180``-fmodules-prune-after=seconds`` 181 Specify the minimum time (in seconds) for which a file in the module cache must be unused (according to access time) before module pruning will remove it. The default delay is large (2,678,400 seconds, or 31 days) to avoid excessive module rebuilding. 182 183``-module-file-info <module file name>`` 184 Debugging aid that prints information about a given module file (with a ``.pcm`` extension), including the language and preprocessor options that particular module variant was built with. 185 186Module Map Language 187=================== 188 189The module map language describes the mapping from header files to the 190logical structure of modules. To enable support for using a library as 191a module, one must write a ``module.map`` file for that library. The 192``module.map`` file is placed alongside the header files themselves, 193and is written in the module map language described below. 194 195As an example, the module map file for the C standard library might look a bit like this: 196 197.. parsed-literal:: 198 199 module std [system] { 200 module complex { 201 header "complex.h" 202 export * 203 } 204 205 module ctype { 206 header "ctype.h" 207 export * 208 } 209 210 module errno { 211 header "errno.h" 212 header "sys/errno.h" 213 export * 214 } 215 216 module fenv { 217 header "fenv.h" 218 export * 219 } 220 221 // ...more headers follow... 222 } 223 224Here, the top-level module ``std`` encompasses the whole C standard library. It has a number of submodules containing different parts of the standard library: ``complex`` for complex numbers, ``ctype`` for character types, etc. Each submodule lists one of more headers that provide the contents for that submodule. Finally, the ``export *`` command specifies that anything included by that submodule will be automatically re-exported. 225 226Lexical structure 227----------------- 228Module map files use a simplified form of the C99 lexer, with the same rules for identifiers, tokens, string literals, ``/* */`` and ``//`` comments. The module map language has the following reserved words; all other C identifiers are valid identifiers. 229 230.. parsed-literal:: 231 232 ``config_macros`` ``export`` ``module`` 233 ``conflict`` ``framework`` ``requires`` 234 ``exclude`` ``header`` ``private`` 235 ``explicit`` ``link`` ``umbrella`` 236 237Module map file 238--------------- 239A module map file consists of a series of module declarations: 240 241.. parsed-literal:: 242 243 *module-map-file*: 244 *module-declaration** 245 246Within a module map file, modules are referred to by a *module-id*, which uses periods to separate each part of a module's name: 247 248.. parsed-literal:: 249 250 *module-id*: 251 *identifier* ('.' *identifier*)* 252 253Module declaration 254------------------ 255A module declaration describes a module, including the headers that contribute to that module, its submodules, and other aspects of the module. 256 257.. parsed-literal:: 258 259 *module-declaration*: 260 ``explicit``:sub:`opt` ``framework``:sub:`opt` ``module`` *module-id* *attributes*:sub:`opt` '{' *module-member** '}' 261 262The *module-id* should consist of only a single *identifier*, which provides the name of the module being defined. Each module shall have a single definition. 263 264The ``explicit`` qualifier can only be applied to a submodule, i.e., a module that is nested within another module. The contents of explicit submodules are only made available when the submodule itself was explicitly named in an import declaration or was re-exported from an imported module. 265 266The ``framework`` qualifier specifies that this module corresponds to a Darwin-style framework. A Darwin-style framework (used primarily on Mac OS X and iOS) is contained entirely in directory ``Name.framework``, where ``Name`` is the name of the framework (and, therefore, the name of the module). That directory has the following layout: 267 268.. parsed-literal:: 269 270 Name.framework/ 271 module.map Module map for the framework 272 Headers/ Subdirectory containing framework headers 273 Frameworks/ Subdirectory containing embedded frameworks 274 Resources/ Subdirectory containing additional resources 275 Name Symbolic link to the shared library for the framework 276 277The ``system`` attribute specifies that the module is a system module. When a system module is rebuilt, all of the module's header will be considered system headers, which suppresses warnings. This is equivalent to placing ``#pragma GCC system_header`` in each of the module's headers. The form of attributes is described in the section Attributes_, below. 278 279Modules can have a number of different kinds of members, each of which is described below: 280 281.. parsed-literal:: 282 283 *module-member*: 284 *requires-declaration* 285 *header-declaration* 286 *umbrella-dir-declaration* 287 *submodule-declaration* 288 *export-declaration* 289 *link-declaration* 290 *config-macros-declaration* 291 *conflict-declaration* 292 293Requires declaration 294~~~~~~~~~~~~~~~~~~~~ 295A *requires-declaration* specifies the requirements that an importing translation unit must satisfy to use the module. 296 297.. parsed-literal:: 298 299 *requires-declaration*: 300 ``requires`` *feature-list* 301 302 *feature-list*: 303 *identifier* (',' *identifier*)* 304 305The requirements clause allows specific modules or submodules to specify that they are only accessible with certain language dialects or on certain platforms. The feature list is a set of identifiers, defined below. If any of the features is not available in a given translation unit, that translation unit shall not import the module. 306 307The following features are defined: 308 309altivec 310 The target supports AltiVec. 311 312blocks 313 The "blocks" language feature is available. 314 315cplusplus 316 C++ support is available. 317 318cplusplus11 319 C++11 support is available. 320 321objc 322 Objective-C support is available. 323 324objc_arc 325 Objective-C Automatic Reference Counting (ARC) is available 326 327opencl 328 OpenCL is available 329 330tls 331 Thread local storage is available. 332 333*target feature* 334 A specific target feature (e.g., ``sse4``, ``avx``, ``neon``) is available. 335 336 337**Example**: The ``std`` module can be extended to also include C++ and C++11 headers using a *requires-declaration*: 338 339.. parsed-literal:: 340 341 module std { 342 // C standard library... 343 344 module vector { 345 requires cplusplus 346 header "vector" 347 } 348 349 module type_traits { 350 requires cplusplus11 351 header "type_traits" 352 } 353 } 354 355Header declaration 356~~~~~~~~~~~~~~~~~~ 357A header declaration specifies that a particular header is associated with the enclosing module. 358 359.. parsed-literal:: 360 361 *header-declaration*: 362 ``umbrella``:sub:`opt` ``header`` *string-literal* 363 ``private`` ``header`` *string-literal* 364 ``exclude`` ``header`` *string-literal* 365 366A header declaration that does not contain ``exclude`` specifies a header that contributes to the enclosing module. Specifically, when the module is built, the named header will be parsed and its declarations will be (logically) placed into the enclosing submodule. 367 368A header with the ``umbrella`` specifier is called an umbrella header. An umbrella header includes all of the headers within its directory (and any subdirectories), and is typically used (in the ``#include`` world) to easily access the full API provided by a particular library. With modules, an umbrella header is a convenient shortcut that eliminates the need to write out ``header`` declarations for every library header. A given directory can only contain a single umbrella header. 369 370.. note:: 371 Any headers not included by the umbrella header should have 372 explicit ``header`` declarations. Use the 373 ``-Wincomplete-umbrella`` warning option to ask Clang to complain 374 about headers not covered by the umbrella header or the module map. 375 376A header with the ``private`` specifier may not be included from outside the module itself. 377 378A header with the ``exclude`` specifier is excluded from the module. It will not be included when the module is built, nor will it be considered to be part of the module. 379 380**Example**: The C header ``assert.h`` is an excellent candidate for an excluded header, because it is meant to be included multiple times (possibly with different ``NDEBUG`` settings). 381 382.. parsed-literal:: 383 384 module std [system] { 385 exclude header "assert.h" 386 } 387 388A given header shall not be referenced by more than one *header-declaration*. 389 390Umbrella directory declaration 391~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 392An umbrella directory declaration specifies that all of the headers in the specified directory should be included within the module. 393 394.. parsed-literal:: 395 396 *umbrella-dir-declaration*: 397 ``umbrella`` *string-literal* 398 399The *string-literal* refers to a directory. When the module is built, all of the header files in that directory (and its subdirectories) are included in the module. 400 401An *umbrella-dir-declaration* shall not refer to the same directory as the location of an umbrella *header-declaration*. In other words, only a single kind of umbrella can be specified for a given directory. 402 403.. note:: 404 405 Umbrella directories are useful for libraries that have a large number of headers but do not have an umbrella header. 406 407 408Submodule declaration 409~~~~~~~~~~~~~~~~~~~~~ 410Submodule declarations describe modules that are nested within their enclosing module. 411 412.. parsed-literal:: 413 414 *submodule-declaration*: 415 *module-declaration* 416 *inferred-submodule-declaration* 417 418A *submodule-declaration* that is a *module-declaration* is a nested module. If the *module-declaration* has a ``framework`` specifier, the enclosing module shall have a ``framework`` specifier; the submodule's contents shall be contained within the subdirectory ``Frameworks/SubName.framework``, where ``SubName`` is the name of the submodule. 419 420A *submodule-declaration* that is an *inferred-submodule-declaration* describes a set of submodules that correspond to any headers that are part of the module but are not explicitly described by a *header-declaration*. 421 422.. parsed-literal:: 423 424 *inferred-submodule-declaration*: 425 ``explicit``:sub:`opt` ``framework``:sub:`opt` ``module`` '*' *attributes*:sub:`opt` '{' *inferred-submodule-member** '}' 426 427 *inferred-submodule-member*: 428 ``export`` '*' 429 430A module containing an *inferred-submodule-declaration* shall have either an umbrella header or an umbrella directory. The headers to which the *inferred-submodule-declaration* applies are exactly those headers included by the umbrella header (transitively) or included in the module because they reside within the umbrella directory (or its subdirectories). 431 432For each header included by the umbrella header or in the umbrella directory that is not named by a *header-declaration*, a module declaration is implicitly generated from the *inferred-submodule-declaration*. The module will: 433 434* Have the same name as the header (without the file extension) 435* Have the ``explicit`` specifier, if the *inferred-submodule-declaration* has the ``explicit`` specifier 436* Have the ``framework`` specifier, if the 437 *inferred-submodule-declaration* has the ``framework`` specifier 438* Have the attributes specified by the \ *inferred-submodule-declaration* 439* Contain a single *header-declaration* naming that header 440* Contain a single *export-declaration* ``export *``, if the \ *inferred-submodule-declaration* contains the \ *inferred-submodule-member* ``export *`` 441 442**Example**: If the subdirectory "MyLib" contains the headers ``A.h`` and ``B.h``, then the following module map: 443 444.. parsed-literal:: 445 446 module MyLib { 447 umbrella "MyLib" 448 explicit module * { 449 export * 450 } 451 } 452 453is equivalent to the (more verbose) module map: 454 455.. parsed-literal:: 456 457 module MyLib { 458 explicit module A { 459 header "A.h" 460 export * 461 } 462 463 explicit module B { 464 header "B.h" 465 export * 466 } 467 } 468 469Export declaration 470~~~~~~~~~~~~~~~~~~ 471An *export-declaration* specifies which imported modules will automatically be re-exported as part of a given module's API. 472 473.. parsed-literal:: 474 475 *export-declaration*: 476 ``export`` *wildcard-module-id* 477 478 *wildcard-module-id*: 479 *identifier* 480 '*' 481 *identifier* '.' *wildcard-module-id* 482 483The *export-declaration* names a module or a set of modules that will be re-exported to any translation unit that imports the enclosing module. Each imported module that matches the *wildcard-module-id* up to, but not including, the first ``*`` will be re-exported. 484 485**Example**:: In the following example, importing ``MyLib.Derived`` also provides the API for ``MyLib.Base``: 486 487.. parsed-literal:: 488 489 module MyLib { 490 module Base { 491 header "Base.h" 492 } 493 494 module Derived { 495 header "Derived.h" 496 export Base 497 } 498 } 499 500Note that, if ``Derived.h`` includes ``Base.h``, one can simply use a wildcard export to re-export everything ``Derived.h`` includes: 501 502.. parsed-literal:: 503 504 module MyLib { 505 module Base { 506 header "Base.h" 507 } 508 509 module Derived { 510 header "Derived.h" 511 export * 512 } 513 } 514 515.. note:: 516 517 The wildcard export syntax ``export *`` re-exports all of the 518 modules that were imported in the actual header file. Because 519 ``#include`` directives are automatically mapped to module imports, 520 ``export *`` provides the same transitive-inclusion behavior 521 provided by the C preprocessor, e.g., importing a given module 522 implicitly imports all of the modules on which it depends. 523 Therefore, liberal use of ``export *`` provides excellent backward 524 compatibility for programs that rely on transitive inclusion (i.e., 525 all of them). 526 527Link declaration 528~~~~~~~~~~~~~~~~ 529A *link-declaration* specifies a library or framework against which a program should be linked if the enclosing module is imported in any translation unit in that program. 530 531.. parsed-literal:: 532 533 *link-declaration*: 534 ``link`` ``framework``:sub:`opt` *string-literal* 535 536The *string-literal* specifies the name of the library or framework against which the program should be linked. For example, specifying "clangBasic" would instruct the linker to link with ``-lclangBasic`` for a Unix-style linker. 537 538A *link-declaration* with the ``framework`` specifies that the linker should link against the named framework, e.g., with ``-framework MyFramework``. 539 540.. note:: 541 542 Automatic linking with the ``link`` directive is not yet widely 543 implemented, because it requires support from both the object file 544 format and the linker. The notion is similar to Microsoft Visual 545 Studio's ``#pragma comment(lib...)``. 546 547Configuration macros declaration 548~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 549The *config-macros-declaration* specifies the set of configuration macros that have an effect on the the API of the enclosing module. 550 551.. parsed-literal:: 552 553 *config-macros-declaration*: 554 ``config_macros`` *attributes*:sub:`opt` *config-macro-list*:sub:`opt` 555 556 *config-macro-list*: 557 *identifier* (',' *identifier*)* 558 559Each *identifier* in the *config-macro-list* specifies the name of a macro. The compiler is required to maintain different variants of the given module for differing definitions of any of the named macros. 560 561A *config-macros-declaration* shall only be present on a top-level module, i.e., a module that is not nested within an enclosing module. 562 563The ``exhaustive`` attribute specifies that the list of macros in the *config-macros-declaration* is exhaustive, meaning that no other macro definition is intended to have an effect on the API of that module. 564 565.. note:: 566 567 The ``exhaustive`` attribute implies that any macro definitions 568 for macros not listed as configuration macros should be ignored 569 completely when building the module. As an optimization, the 570 compiler could reduce the number of unique module variants by not 571 considering these non-configuration macros. This optimization is not 572 yet implemented in Clang. 573 574A translation unit shall not import the same module under different definitions of the configuration macros. 575 576.. note:: 577 578 Clang implements a weak form of this requirement: the definitions 579 used for configuration macros are fixed based on the definitions 580 provided by the command line. If an import occurs and the definition 581 of any configuration macro has changed, the compiler will produce a 582 warning (under the control of ``-Wconfig-macros``). 583 584**Example:** A logging library might provide different API (e.g., in the form of different definitions for a logging macro) based on the ``NDEBUG`` macro setting: 585 586.. parsed-literal:: 587 588 module MyLogger { 589 umbrella header "MyLogger.h" 590 config_macros [exhaustive] NDEBUG 591 } 592 593Conflict declarations 594~~~~~~~~~~~~~~~~~~~~~ 595A *conflict-declaration* describes a case where the presence of two different modules in the same translation unit is likely to cause a problem. For example, two modules may provide similar-but-incompatible functionality. 596 597.. parsed-literal:: 598 599 *conflict-declaration*: 600 ``conflict`` *module-id* ',' *string-literal* 601 602The *module-id* of the *conflict-declaration* specifies the module with which the enclosing module conflicts. The specified module shall not have been imported in the translation unit when the enclosing module is imported. 603 604The *string-literal* provides a message to be provided as part of the compiler diagnostic when two modules conflict. 605 606.. note:: 607 608 Clang emits a warning (under the control of ``-Wmodule-conflict``) 609 when a module conflict is discovered. 610 611**Example:** 612 613.. parsed-literal:: 614 615 module Conflicts { 616 explicit module A { 617 header "conflict_a.h" 618 conflict B, "we just don't like B" 619 } 620 621 module B { 622 header "conflict_b.h" 623 } 624 } 625 626 627Attributes 628---------- 629Attributes are used in a number of places in the grammar to describe specific behavior of other declarations. The format of attributes is fairly simple. 630 631.. parsed-literal:: 632 633 *attributes*: 634 *attribute* *attributes*:sub:`opt` 635 636 *attribute*: 637 '[' *identifier* ']' 638 639Any *identifier* can be used as an attribute, and each declaration specifies what attributes can be applied to it. 640 641Modularizing a Platform 642======================= 643To get any benefit out of modules, one needs to introduce module maps for software libraries starting at the bottom of the stack. This typically means introducing a module map covering the operating system's headers and the C standard library headers (in ``/usr/include``, for a Unix system). 644 645The module maps will be written using the `module map language`_, which provides the tools necessary to describe the mapping between headers and modules. Because the set of headers differs from one system to the next, the module map will likely have to be somewhat customized for, e.g., a particular distribution and version of the operating system. Moreover, the system headers themselves may require some modification, if they exhibit any anti-patterns that break modules. Such common patterns are described below. 646 647**Macro-guarded copy-and-pasted definitions** 648 System headers vend core types such as ``size_t`` for users. These types are often needed in a number of system headers, and are almost trivial to write. Hence, it is fairly common to see a definition such as the following copy-and-pasted throughout the headers: 649 650 .. parsed-literal:: 651 652 #ifndef _SIZE_T 653 #define _SIZE_T 654 typedef __SIZE_TYPE__ size_t; 655 #endif 656 657 Unfortunately, when modules compiles all of the C library headers together into a single module, only the first actual type definition of ``size_t`` will be visible, and then only in the submodule corresponding to the lucky first header. Any other headers that have copy-and-pasted versions of this pattern will *not* have a definition of ``size_t``. Importing the submodule corresponding to one of those headers will therefore not yield ``size_t`` as part of the API, because it wasn't there when the header was parsed. The fix for this problem is either to pull the copied declarations into a common header that gets included everywhere ``size_t`` is part of the API, or to eliminate the ``#ifndef`` and redefine the ``size_t`` type. The latter works for C++ headers and C11, but will cause an error for non-modules C90/C99, where redefinition of ``typedefs`` is not permitted. 658 659**Conflicting definitions** 660 Different system headers may provide conflicting definitions for various macros, functions, or types. These conflicting definitions don't tend to cause problems in a pre-modules world unless someone happens to include both headers in one translation unit. Since the fix is often simply "don't do that", such problems persist. Modules requires that the conflicting definitions be eliminated or that they be placed in separate modules (the former is generally the better answer). 661 662**Missing includes** 663 Headers are often missing ``#include`` directives for headers that they actually depend on. As with the problem of conflicting definitions, this only affects unlucky users who don't happen to include headers in the right order. With modules, the headers of a particular module will be parsed in isolation, so the module may fail to build if there are missing includes. 664 665**Headers that vend multiple APIs at different times** 666 Some systems have headers that contain a number of different kinds of API definitions, only some of which are made available with a given include. For example, the header may vend ``size_t`` only when the macro ``__need_size_t`` is defined before that header is included, and also vend ``wchar_t`` only when the macro ``__need_wchar_t`` is defined. Such headers are often included many times in a single translation unit, and will have no include guards. There is no sane way to map this header to a submodule. One can either eliminate the header (e.g., by splitting it into separate headers, one per actual API) or simply ``exclude`` it in the module map. 667 668To detect and help address some of these problems, the ``clang-tools-extra`` repository contains a ``modularize`` tool that parses a set of given headers and attempts to detect these problems and produce a report. See the tool's in-source documentation for information on how to check your system or library headers. 669 670Future Directions 671================= 672Modules is an experimental feature, and there is much work left to do to make it both real and useful. Here are a few ideas: 673 674**Detect unused module imports** 675 Unlike with ``#include`` directives, it should be fairly simple to track whether a directly-imported module has ever been used. By doing so, Clang can emit ``unused import`` or ``unused #include`` diagnostics, including Fix-Its to remove the useless imports/includes. 676 677**Fix-Its for missing imports** 678 It's fairly common for one to make use of some API while writing code, only to get a compiler error about "unknown type" or "no function named" because the corresponding header has not been included. Clang should detect such cases and auto-import the required module (with a Fix-It!). 679 680**Improve modularize** 681 The modularize tool is both extremely important (for deployment) and extremely crude. It needs better UI, better detection of problems (especially for C++), and perhaps an assistant mode to help write module maps for you. 682 683**C++ Support** 684 Modules clearly has to work for C++, or we'll never get to use it for the Clang code base. 685 686Where To Learn More About Modules 687================================= 688The Clang source code provides additional information about modules: 689 690``clang/lib/Headers/module.map`` 691 Module map for Clang's compiler-specific header files. 692 693``clang/test/Modules/`` 694 Tests specifically related to modules functionality. 695 696``clang/include/clang/Basic/Module.h`` 697 The ``Module`` class in this header describes a module, and is used throughout the compiler to implement modules. 698 699``clang/include/clang/Lex/ModuleMap.h`` 700 The ``ModuleMap`` class in this header describes the full module map, consisting of all of the module map files that have been parsed, and providing facilities for looking up module maps and mapping between modules and headers (in both directions). 701 702PCHInternals_ 703 Information about the serialized AST format used for precompiled headers and modules. The actual implementation is in the ``clangSerialization`` library. 704 705.. [#] Automatic linking against the libraries of modules requires specific linker support, which is not widely available. 706 707.. [#] Modules are only available in C and Objective-C; a separate flag ``-fcxx-modules`` enables modules support for C++, which is even more experimental and broken. 708 709.. [#] There are certain anti-patterns that occur in headers, particularly system headers, that cause problems for modules. The section `Modularizing a Platform`_ describes some of them. 710 711.. [#] The second instance is actually a new thread within the current process, not a separate process. However, the original compiler instance is blocked on the execution of this thread. 712 713.. [#] The preprocessing context in which the modules are parsed is actually dependent on the command-line options provided to the compiler, including the language dialect and any ``-D`` options. However, the compiled modules for different command-line options are kept distinct, and any preprocessor directives that occur within the translation unit are ignored. See the section on the `Configuration macros declaration`_ for more information. 714 715.. _PCHInternals: PCHInternals.html 716 717