1====================================
2Getting Started with the LLVM System
3====================================
4
5.. contents::
6   :local:
7
8Overview
9========
10
11Welcome to the LLVM project!
12
13The LLVM project has multiple components. The core of the project is
14itself called "LLVM". This contains all of the tools, libraries, and header
15files needed to process intermediate representations and converts it into
16object files.  Tools include an assembler, disassembler, bitcode analyzer, and
17bitcode optimizer.  It also contains basic regression tests.
18
19C-like languages use the `Clang <https://clang.llvm.org/>`_ front end.  This
20component compiles C, C++, Objective C, and Objective C++ code into LLVM bitcode
21-- and from there into object files, using LLVM.
22
23Other components include:
24the `libc++ C++ standard library <https://libcxx.llvm.org>`_,
25the `LLD linker <https://lld.llvm.org>`_, and more.
26
27Getting the Source Code and Building LLVM
28=========================================
29
30The LLVM Getting Started documentation may be out of date.  The `Clang
31Getting Started <https://clang.llvm.org/get_started.html>`_ page might have more
32accurate information.
33
34This is an example workflow and configuration to get and build the LLVM source:
35
36#. Checkout LLVM (including related subprojects like Clang):
37
38   * ``git clone https://github.com/llvm/llvm-project.git``
39   * Or, on windows, ``git clone --config core.autocrlf=false
40     https://github.com/llvm/llvm-project.git``
41
42#. Configure and build LLVM and Clang:
43
44   * ``cd llvm-project``
45   * ``mkdir build``
46   * ``cd build``
47   * ``cmake -G <generator> [options] ../llvm``
48
49     Some common build system generators are:
50
51     * ``Ninja`` --- for generating `Ninja <https://ninja-build.org>`_
52       build files. Most llvm developers use Ninja.
53     * ``Unix Makefiles`` --- for generating make-compatible parallel makefiles.
54     * ``Visual Studio`` --- for generating Visual Studio projects and
55       solutions.
56     * ``Xcode`` --- for generating Xcode projects.
57
58     Some Common options:
59
60     * ``-DLLVM_ENABLE_PROJECTS='...'`` --- semicolon-separated list of the LLVM
61       subprojects you'd like to additionally build. Can include any of: clang,
62       clang-tools-extra, libcxx, libcxxabi, libunwind, lldb, compiler-rt, lld,
63       polly, or debuginfo-tests.
64
65       For example, to build LLVM, Clang, libcxx, and libcxxabi, use
66       ``-DLLVM_ENABLE_PROJECTS="clang;libcxx;libcxxabi"``.
67
68     * ``-DCMAKE_INSTALL_PREFIX=directory`` --- Specify for *directory* the full
69       pathname of where you want the LLVM tools and libraries to be installed
70       (default ``/usr/local``).
71
72     * ``-DCMAKE_BUILD_TYPE=type`` --- Valid options for *type* are Debug,
73       Release, RelWithDebInfo, and MinSizeRel. Default is Debug.
74
75     * ``-DLLVM_ENABLE_ASSERTIONS=On`` --- Compile with assertion checks enabled
76       (default is Yes for Debug builds, No for all other build types).
77
78   * ``cmake --build . [--target <target>]`` or the build system specified
79     above directly.
80
81     * The default target (i.e. ``cmake --build .`` or ``make``) will build all of
82       LLVM.
83
84     * The ``check-all`` target (i.e. ``ninja check-all``) will run the
85       regression tests to ensure everything is in working order.
86
87     * CMake will generate build targets for each tool and library, and most
88       LLVM sub-projects generate their own ``check-<project>`` target.
89
90     * Running a serial build will be **slow**.  To improve speed, try running a
91       parallel build. That's done by default in Ninja; for ``make``, use the
92       option ``-j NN``, where ``NN`` is the number of parallel jobs, e.g. the
93       number of available CPUs.
94
95   * For more information see `CMake <CMake.html>`__
96
97   * If you get an "internal compiler error (ICE)" or test failures, see
98     `below`_.
99
100Consult the `Getting Started with LLVM`_ section for detailed information on
101configuring and compiling LLVM.  Go to `Directory Layout`_ to learn about the
102layout of the source code tree.
103
104Requirements
105============
106
107Before you begin to use the LLVM system, review the requirements given below.
108This may save you some trouble by knowing ahead of time what hardware and
109software you will need.
110
111Hardware
112--------
113
114LLVM is known to work on the following host platforms:
115
116================== ===================== =============
117OS                 Arch                  Compilers
118================== ===================== =============
119Linux              x86\ :sup:`1`         GCC, Clang
120Linux              amd64                 GCC, Clang
121Linux              ARM                   GCC, Clang
122Linux              Mips                  GCC, Clang
123Linux              PowerPC               GCC, Clang
124Solaris            V9 (Ultrasparc)       GCC
125FreeBSD            x86\ :sup:`1`         GCC, Clang
126FreeBSD            amd64                 GCC, Clang
127NetBSD             x86\ :sup:`1`         GCC, Clang
128NetBSD             amd64                 GCC, Clang
129macOS\ :sup:`2`    PowerPC               GCC
130macOS              x86                   GCC, Clang
131Cygwin/Win32       x86\ :sup:`1, 3`      GCC
132Windows            x86\ :sup:`1`         Visual Studio
133Windows x64        x86-64                Visual Studio
134================== ===================== =============
135
136.. note::
137
138  #. Code generation supported for Pentium processors and up
139  #. Code generation supported for 32-bit ABI only
140  #. To use LLVM modules on Win32-based system, you may configure LLVM
141     with ``-DBUILD_SHARED_LIBS=On``.
142
143Note that Debug builds require a lot of time and disk space.  An LLVM-only build
144will need about 1-3 GB of space.  A full build of LLVM and Clang will need around
14515-20 GB of disk space.  The exact space requirements will vary by system.  (It
146is so large because of all the debugging information and the fact that the
147libraries are statically linked into multiple tools).
148
149If you are space-constrained, you can build only selected tools or only
150selected targets.  The Release build requires considerably less space.
151
152The LLVM suite *may* compile on other platforms, but it is not guaranteed to do
153so.  If compilation is successful, the LLVM utilities should be able to
154assemble, disassemble, analyze, and optimize LLVM bitcode.  Code generation
155should work as well, although the generated native code may not work on your
156platform.
157
158Software
159--------
160
161Compiling LLVM requires that you have several software packages installed. The
162table below lists those required packages. The Package column is the usual name
163for the software package that LLVM depends on. The Version column provides
164"known to work" versions of the package. The Notes column describes how LLVM
165uses the package and provides other details.
166
167=========================================================== ============ ==========================================
168Package                                                     Version      Notes
169=========================================================== ============ ==========================================
170`CMake <http://cmake.org/>`__                               >=3.13.4     Makefile/workspace generator
171`GCC <http://gcc.gnu.org/>`_                                >=5.1.0      C/C++ compiler\ :sup:`1`
172`python <http://www.python.org/>`_                          >=2.7        Automated test suite\ :sup:`2`
173`zlib <http://zlib.net>`_                                   >=1.2.3.4    Compression library\ :sup:`3`
174`GNU Make <http://savannah.gnu.org/projects/make>`_         3.79, 3.79.1 Makefile/build processor\ :sup:`4`
175=========================================================== ============ ==========================================
176
177.. note::
178
179   #. Only the C and C++ languages are needed so there's no need to build the
180      other languages for LLVM's purposes. See `below` for specific version
181      info.
182   #. Only needed if you want to run the automated test suite in the
183      ``llvm/test`` directory.
184   #. Optional, adds compression / uncompression capabilities to selected LLVM
185      tools.
186   #. Optional, you can use any other build tool supported by CMake.
187
188Additionally, your compilation host is expected to have the usual plethora of
189Unix utilities. Specifically:
190
191* **ar** --- archive library builder
192* **bzip2** --- bzip2 command for distribution generation
193* **bunzip2** --- bunzip2 command for distribution checking
194* **chmod** --- change permissions on a file
195* **cat** --- output concatenation utility
196* **cp** --- copy files
197* **date** --- print the current date/time
198* **echo** --- print to standard output
199* **egrep** --- extended regular expression search utility
200* **find** --- find files/dirs in a file system
201* **grep** --- regular expression search utility
202* **gzip** --- gzip command for distribution generation
203* **gunzip** --- gunzip command for distribution checking
204* **install** --- install directories/files
205* **mkdir** --- create a directory
206* **mv** --- move (rename) files
207* **ranlib** --- symbol table builder for archive libraries
208* **rm** --- remove (delete) files and directories
209* **sed** --- stream editor for transforming output
210* **sh** --- Bourne shell for make build scripts
211* **tar** --- tape archive for distribution generation
212* **test** --- test things in file system
213* **unzip** --- unzip command for distribution checking
214* **zip** --- zip command for distribution generation
215
216.. _below:
217.. _check here:
218
219Host C++ Toolchain, both Compiler and Standard Library
220------------------------------------------------------
221
222LLVM is very demanding of the host C++ compiler, and as such tends to expose
223bugs in the compiler. We also attempt to follow improvements and developments in
224the C++ language and library reasonably closely. As such, we require a modern
225host C++ toolchain, both compiler and standard library, in order to build LLVM.
226
227LLVM is written using the subset of C++ documented in :doc:`coding
228standards<CodingStandards>`. To enforce this language version, we check the most
229popular host toolchains for specific minimum versions in our build systems:
230
231* Clang 3.5
232* Apple Clang 6.0
233* GCC 5.1
234* Visual Studio 2017
235
236Anything older than these toolchains *may* work, but will require forcing the
237build system with a special option and is not really a supported host platform.
238Also note that older versions of these compilers have often crashed or
239miscompiled LLVM.
240
241For less widely used host toolchains such as ICC or xlC, be aware that a very
242recent version may be required to support all of the C++ features used in LLVM.
243
244We track certain versions of software that are *known* to fail when used as
245part of the host toolchain. These even include linkers at times.
246
247**GNU ld 2.16.X**. Some 2.16.X versions of the ld linker will produce very long
248warning messages complaining that some "``.gnu.linkonce.t.*``" symbol was
249defined in a discarded section. You can safely ignore these messages as they are
250erroneous and the linkage is correct.  These messages disappear using ld 2.17.
251
252**GNU binutils 2.17**: Binutils 2.17 contains `a bug
253<http://sourceware.org/bugzilla/show_bug.cgi?id=3111>`__ which causes huge link
254times (minutes instead of seconds) when building LLVM.  We recommend upgrading
255to a newer version (2.17.50.0.4 or later).
256
257**GNU Binutils 2.19.1 Gold**: This version of Gold contained `a bug
258<http://sourceware.org/bugzilla/show_bug.cgi?id=9836>`__ which causes
259intermittent failures when building LLVM with position independent code.  The
260symptom is an error about cyclic dependencies.  We recommend upgrading to a
261newer version of Gold.
262
263Getting a Modern Host C++ Toolchain
264^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
265
266This section mostly applies to Linux and older BSDs. On macOS, you should
267have a sufficiently modern Xcode, or you will likely need to upgrade until you
268do. Windows does not have a "system compiler", so you must install either Visual
269Studio 2017 or a recent version of mingw64. FreeBSD 10.0 and newer have a modern
270Clang as the system compiler.
271
272However, some Linux distributions and some other or older BSDs sometimes have
273extremely old versions of GCC. These steps attempt to help you upgrade you
274compiler even on such a system. However, if at all possible, we encourage you
275to use a recent version of a distribution with a modern system compiler that
276meets these requirements. Note that it is tempting to install a prior
277version of Clang and libc++ to be the host compiler, however libc++ was not
278well tested or set up to build on Linux until relatively recently. As
279a consequence, this guide suggests just using libstdc++ and a modern GCC as the
280initial host in a bootstrap, and then using Clang (and potentially libc++).
281
282The first step is to get a recent GCC toolchain installed. The most common
283distribution on which users have struggled with the version requirements is
284Ubuntu Precise, 12.04 LTS. For this distribution, one easy option is to install
285the `toolchain testing PPA`_ and use it to install a modern GCC. There is
286a really nice discussions of this on the `ask ubuntu stack exchange`_ and a
287`github gist`_ with updated commands. However, not all users can use PPAs and
288there are many other distributions, so it may be necessary (or just useful, if
289you're here you *are* doing compiler development after all) to build and install
290GCC from source. It is also quite easy to do these days.
291
292.. _toolchain testing PPA:
293  https://launchpad.net/~ubuntu-toolchain-r/+archive/test
294.. _ask ubuntu stack exchange:
295  https://askubuntu.com/questions/466651/how-do-i-use-the-latest-gcc-on-ubuntu/581497#58149
296.. _github gist:
297  https://gist.github.com/application2000/73fd6f4bf1be6600a2cf9f56315a2d91
298
299Easy steps for installing GCC 5.1.0:
300
301.. code-block:: console
302
303  % gcc_version=5.1.0
304  % wget https://ftp.gnu.org/gnu/gcc/gcc-${gcc_version}/gcc-${gcc_version}.tar.bz2
305  % wget https://ftp.gnu.org/gnu/gcc/gcc-${gcc_version}/gcc-${gcc_version}.tar.bz2.sig
306  % wget https://ftp.gnu.org/gnu/gnu-keyring.gpg
307  % signature_invalid=`gpg --verify --no-default-keyring --keyring ./gnu-keyring.gpg gcc-${gcc_version}.tar.bz2.sig`
308  % if [ $signature_invalid ]; then echo "Invalid signature" ; exit 1 ; fi
309  % tar -xvjf gcc-${gcc_version}.tar.bz2
310  % cd gcc-${gcc_version}
311  % ./contrib/download_prerequisites
312  % cd ..
313  % mkdir gcc-${gcc_version}-build
314  % cd gcc-${gcc_version}-build
315  % $PWD/../gcc-${gcc_version}/configure --prefix=$HOME/toolchains --enable-languages=c,c++
316  % make -j$(nproc)
317  % make install
318
319For more details, check out the excellent `GCC wiki entry`_, where I got most
320of this information from.
321
322.. _GCC wiki entry:
323  https://gcc.gnu.org/wiki/InstallingGCC
324
325Once you have a GCC toolchain, configure your build of LLVM to use the new
326toolchain for your host compiler and C++ standard library. Because the new
327version of libstdc++ is not on the system library search path, you need to pass
328extra linker flags so that it can be found at link time (``-L``) and at runtime
329(``-rpath``). If you are using CMake, this invocation should produce working
330binaries:
331
332.. code-block:: console
333
334  % mkdir build
335  % cd build
336  % CC=$HOME/toolchains/bin/gcc CXX=$HOME/toolchains/bin/g++ \
337    cmake .. -DCMAKE_CXX_LINK_FLAGS="-Wl,-rpath,$HOME/toolchains/lib64 -L$HOME/toolchains/lib64"
338
339If you fail to set rpath, most LLVM binaries will fail on startup with a message
340from the loader similar to ``libstdc++.so.6: version `GLIBCXX_3.4.20' not
341found``. This means you need to tweak the -rpath linker flag.
342
343This method will add an absolute path to the rpath of all executables. That's
344fine for local development. If you want to distribute the binaries you build
345so that they can run on older systems, copy ``libstdc++.so.6`` into the
346``lib/`` directory.  All of LLVM's shipping binaries have an rpath pointing at
347``$ORIGIN/../lib``, so they will find ``libstdc++.so.6`` there.  Non-distributed
348binaries don't have an rpath set and won't find ``libstdc++.so.6``. Pass
349``-DLLVM_LOCAL_RPATH="$HOME/toolchains/lib64"`` to cmake to add an absolute
350path to ``libstdc++.so.6`` as above. Since these binaries are not distributed,
351having an absolute local path is fine for them.
352
353When you build Clang, you will need to give *it* access to modern C++
354standard library in order to use it as your new host in part of a bootstrap.
355There are two easy ways to do this, either build (and install) libc++ along
356with Clang and then use it with the ``-stdlib=libc++`` compile and link flag,
357or install Clang into the same prefix (``$HOME/toolchains`` above) as GCC.
358Clang will look within its own prefix for libstdc++ and use it if found. You
359can also add an explicit prefix for Clang to look in for a GCC toolchain with
360the ``--gcc-toolchain=/opt/my/gcc/prefix`` flag, passing it to both compile and
361link commands when using your just-built-Clang to bootstrap.
362
363.. _Getting Started with LLVM:
364
365Getting Started with LLVM
366=========================
367
368The remainder of this guide is meant to get you up and running with LLVM and to
369give you some basic information about the LLVM environment.
370
371The later sections of this guide describe the `general layout`_ of the LLVM
372source tree, a `simple example`_ using the LLVM tool chain, and `links`_ to find
373more information about LLVM or to get help via e-mail.
374
375Terminology and Notation
376------------------------
377
378Throughout this manual, the following names are used to denote paths specific to
379the local system and working environment.  *These are not environment variables
380you need to set but just strings used in the rest of this document below*.  In
381any of the examples below, simply replace each of these names with the
382appropriate pathname on your local system.  All these paths are absolute:
383
384``SRC_ROOT``
385
386  This is the top level directory of the LLVM source tree.
387
388``OBJ_ROOT``
389
390  This is the top level directory of the LLVM object tree (i.e. the tree where
391  object files and compiled programs will be placed.  It can be the same as
392  SRC_ROOT).
393
394Unpacking the LLVM Archives
395---------------------------
396
397If you have the LLVM distribution, you will need to unpack it before you can
398begin to compile it.  LLVM is distributed as a number of different
399subprojects. Each one has its own download which is a TAR archive that is
400compressed with the gzip program.
401
402The files are as follows, with *x.y* marking the version number:
403
404``llvm-x.y.tar.gz``
405
406  Source release for the LLVM libraries and tools.
407
408``cfe-x.y.tar.gz``
409
410  Source release for the Clang frontend.
411
412.. _checkout:
413
414Checkout LLVM from Git
415----------------------
416
417You can also checkout the source code for LLVM from Git.
418
419.. note::
420
421  Passing ``--config core.autocrlf=false`` should not be required in
422  the future after we adjust the .gitattribute settings correctly, but
423  is required for Windows users at the time of this writing.
424
425Simply run:
426
427.. code-block:: console
428
429  % git clone https://github.com/llvm/llvm-project.git
430
431or on Windows,
432
433.. code-block:: console
434
435  % git clone --config core.autocrlf=false https://github.com/llvm/llvm-project.git
436
437This will create an '``llvm-project``' directory in the current directory and
438fully populate it with all of the source code, test directories, and local
439copies of documentation files for LLVM and all the related subprojects. Note
440that unlike the tarballs, which contain each subproject in a separate file, the
441git repository contains all of the projects together.
442
443If you want to get a specific release (as opposed to the most recent revision),
444you can check out a tag after cloning the repository. E.g., `git checkout
445llvmorg-6.0.1` inside the ``llvm-project`` directory created by the above
446command.  Use `git tag -l` to list all of them.
447
448Sending patches
449^^^^^^^^^^^^^^^
450
451Please read `Developer Policy <DeveloperPolicy.html#one-off-patches>`_, too.
452
453We don't currently accept github pull requests, so you'll need to send patches
454either via emailing to llvm-commits, or, preferably, via :ref:`Phabricator
455<phabricator-reviews>`.
456
457You'll generally want to make sure your branch has a single commit,
458corresponding to the review you wish to send, up-to-date with the upstream
459``origin/master`` branch, and doesn't contain merges. Once you have that, you
460can start `a Phabricator review <Phabricator.html>`_ (or use ``git show`` or
461``git format-patch`` to output the diff, and attach it to an email message).
462
463However, using the "Arcanist" tool is often easier. After `installing
464arcanist`_, you can upload the latest commit using:
465
466.. code-block:: console
467
468  % arc diff HEAD~1
469
470Additionally, before sending a patch for review, please also try to ensure it's
471formatted properly. We use ``clang-format`` for this, which has git integration
472through the ``git-clang-format`` script. On some systems, it may already be
473installed (or be installable via your package manager). If so, you can simply
474run it -- the following command will format only the code changed in the most
475recent commit:
476
477.. code-block:: console
478
479  % git clang-format HEAD~1
480
481Note that this modifies the files, but doesn't commit them -- you'll likely want
482to run
483
484.. code-block:: console
485
486  % git commit --amend -a
487
488in order to update the last commit with all pending changes.
489
490.. note::
491  If you don't already have ``clang-format`` or ``git clang-format`` installed
492  on your system, the ``clang-format`` binary will be built alongside clang, and
493  the git integration can be run from
494  ``clang/tools/clang-format/git-clang-format``.
495
496
497.. _commit_from_git:
498
499For developers to commit changes from Git
500^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
501
502Once a patch is reviewed, you should rebase it, re-test locally, and commit the
503changes to LLVM's master branch. This is done using `git push` if you have the
504required access rights. See `committing a change
505<Phabricator.html#committing-a-change>`_ for Phabricator based commits or
506`obtaining commit access <DeveloperPolicy.html#obtaining-commit-access>`_
507for commit access.
508
509Here is an example workflow using git. This workflow assumes you have an
510accepted commit on the branch named `branch-with-change`.
511
512.. code-block:: console
513
514  # Go to the branch with your accepted commit.
515  % git checkout branch-with-change
516  # Rebase your change onto the latest commits on Github.
517  % git pull --rebase origin master
518  # Rerun the appropriate tests if needed.
519  % ninja check-$whatever
520  # Check that the list of commits about to be pushed is correct.
521  % git log origin/master...HEAD --oneline
522  # Push to Github.
523  % git push origin HEAD:master
524
525LLVM currently has a linear-history policy, which means that merge commits are
526not allowed. The `llvm-project` repo on github is configured to reject pushes
527that include merges, so the `git rebase` step above is required.
528
529Please ask for help if you're having trouble with your particular git workflow.
530
531
532.. _git_pre_push_hook:
533
534Git pre-push hook
535^^^^^^^^^^^^^^^^^
536
537We include an optional pre-push hook that run some sanity checks on the revisions
538you are about to push and ask confirmation if you push multiple commits at once.
539You can set it up (on Unix systems) by running from the repository root:
540
541.. code-block:: console
542
543  % ln -sf ../../llvm/utils/git/pre-push.py .git/hooks/pre-push
544
545Bisecting commits
546^^^^^^^^^^^^^^^^^
547
548See `Bisecting LLVM code <GitBisecting.html>`_ for how to use ``git bisect``
549on LLVM.
550
551Reverting a change
552^^^^^^^^^^^^^^^^^^
553
554When reverting changes using git, the default message will say "This reverts
555commit XYZ". Leave this at the end of the commit message, but add some details
556before it as to why the commit is being reverted. A brief explanation and/or
557links to bots that demonstrate the problem are sufficient.
558
559Checkout via SVN (deprecated)
560^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
561
562The SVN repository is no longer updated, but it is still available for now. If
563you need to check the code out of SVN rather than git for some reason, you can
564do it like so:
565
566* ``cd where-you-want-llvm-to-live``
567* Read-Only: ``svn co https://llvm.org/svn/llvm-project/llvm/trunk llvm``
568* Read-Write: ``svn co https://[email protected]/svn/llvm-project/llvm/trunk llvm``
569
570This will create an '``llvm``' directory in the current directory and fully
571populate it with the LLVM source code, Makefiles, test directories, and local
572copies of documentation files.
573
574If you want to get a specific release (as opposed to the most recent revision),
575you can check it out from the '``tags``' directory (instead of '``trunk``'). The
576following releases are located in the following subdirectories of the '``tags``'
577directory:
578
579* Release 3.5.0 and later: **RELEASE_350/final** and so on
580* Release 2.9 through 3.4: **RELEASE_29/final** and so on
581* Release 1.1 through 2.8: **RELEASE_11** and so on
582* Release 1.0: **RELEASE_1**
583
584Local LLVM Configuration
585------------------------
586
587Once checked out repository, the LLVM suite source code must be configured
588before being built. This process uses CMake.  Unlinke the normal ``configure``
589script, CMake generates the build files in whatever format you request as well
590as various ``*.inc`` files, and ``llvm/include/Config/config.h``.
591
592Variables are passed to ``cmake`` on the command line using the format
593``-D<variable name>=<value>``. The following variables are some common options
594used by people developing LLVM.
595
596+-------------------------+----------------------------------------------------+
597| Variable                | Purpose                                            |
598+=========================+====================================================+
599| CMAKE_C_COMPILER        | Tells ``cmake`` which C compiler to use. By        |
600|                         | default, this will be /usr/bin/cc.                 |
601+-------------------------+----------------------------------------------------+
602| CMAKE_CXX_COMPILER      | Tells ``cmake`` which C++ compiler to use. By      |
603|                         | default, this will be /usr/bin/c++.                |
604+-------------------------+----------------------------------------------------+
605| CMAKE_BUILD_TYPE        | Tells ``cmake`` what type of build you are trying  |
606|                         | to generate files for. Valid options are Debug,    |
607|                         | Release, RelWithDebInfo, and MinSizeRel. Default   |
608|                         | is Debug.                                          |
609+-------------------------+----------------------------------------------------+
610| CMAKE_INSTALL_PREFIX    | Specifies the install directory to target when     |
611|                         | running the install action of the build files.     |
612+-------------------------+----------------------------------------------------+
613| PYTHON_EXECUTABLE       | Forces CMake to use a specific Python version by   |
614|                         | passing a path to a Python interpreter. By default |
615|                         | the Python version of the interpreter in your PATH |
616|                         | is used.                                           |
617+-------------------------+----------------------------------------------------+
618| LLVM_TARGETS_TO_BUILD   | A semicolon delimited list controlling which       |
619|                         | targets will be built and linked into llvm.        |
620|                         | The default list is defined as                     |
621|                         | ``LLVM_ALL_TARGETS``, and can be set to include    |
622|                         | out-of-tree targets. The default value includes:   |
623|                         | ``AArch64, AMDGPU, ARM, BPF, Hexagon, Mips,        |
624|                         | MSP430, NVPTX, PowerPC, Sparc, SystemZ, X86,       |
625|                         | XCore``.                                           |
626|                         |                                                    |
627+-------------------------+----------------------------------------------------+
628| LLVM_ENABLE_DOXYGEN     | Build doxygen-based documentation from the source  |
629|                         | code This is disabled by default because it is     |
630|                         | slow and generates a lot of output.                |
631+-------------------------+----------------------------------------------------+
632| LLVM_ENABLE_PROJECTS    | A semicolon-delimited list selecting which of the  |
633|                         | other LLVM subprojects to additionally build. (Only|
634|                         | effective when using a side-by-side project layout |
635|                         | e.g. via git). The default list is empty. Can      |
636|                         | include: clang, libcxx, libcxxabi, libunwind, lldb,|
637|                         | compiler-rt, lld, polly, or debuginfo-tests.       |
638+-------------------------+----------------------------------------------------+
639| LLVM_ENABLE_SPHINX      | Build sphinx-based documentation from the source   |
640|                         | code. This is disabled by default because it is    |
641|                         | slow and generates a lot of output. Sphinx version |
642|                         | 1.5 or later recommended.                          |
643+-------------------------+----------------------------------------------------+
644| LLVM_BUILD_LLVM_DYLIB   | Generate libLLVM.so. This library contains a       |
645|                         | default set of LLVM components that can be         |
646|                         | overridden with ``LLVM_DYLIB_COMPONENTS``. The     |
647|                         | default contains most of LLVM and is defined in    |
648|                         | ``tools/llvm-shlib/CMakelists.txt``. This option is|
649|                         | not available on Windows.                          |
650+-------------------------+----------------------------------------------------+
651| LLVM_OPTIMIZED_TABLEGEN | Builds a release tablegen that gets used during    |
652|                         | the LLVM build. This can dramatically speed up     |
653|                         | debug builds.                                      |
654+-------------------------+----------------------------------------------------+
655
656To configure LLVM, follow these steps:
657
658#. Change directory into the object root directory:
659
660   .. code-block:: console
661
662     % cd OBJ_ROOT
663
664#. Run the ``cmake``:
665
666   .. code-block:: console
667
668     % cmake -G "Unix Makefiles" -DCMAKE_INSTALL_PREFIX=/install/path
669       [other options] SRC_ROOT
670
671Compiling the LLVM Suite Source Code
672------------------------------------
673
674Unlike with autotools, with CMake your build type is defined at configuration.
675If you want to change your build type, you can re-run cmake with the following
676invocation:
677
678   .. code-block:: console
679
680     % cmake -G "Unix Makefiles" -DCMAKE_BUILD_TYPE=type SRC_ROOT
681
682Between runs, CMake preserves the values set for all options. CMake has the
683following build types defined:
684
685Debug
686
687  These builds are the default. The build system will compile the tools and
688  libraries unoptimized, with debugging information, and asserts enabled.
689
690Release
691
692  For these builds, the build system will compile the tools and libraries
693  with optimizations enabled and not generate debug info. CMakes default
694  optimization level is -O3. This can be configured by setting the
695  ``CMAKE_CXX_FLAGS_RELEASE`` variable on the CMake command line.
696
697RelWithDebInfo
698
699  These builds are useful when debugging. They generate optimized binaries with
700  debug information. CMakes default optimization level is -O2. This can be
701  configured by setting the ``CMAKE_CXX_FLAGS_RELWITHDEBINFO`` variable on the
702  CMake command line.
703
704Once you have LLVM configured, you can build it by entering the *OBJ_ROOT*
705directory and issuing the following command:
706
707.. code-block:: console
708
709  % make
710
711If the build fails, please `check here`_ to see if you are using a version of
712GCC that is known not to compile LLVM.
713
714If you have multiple processors in your machine, you may wish to use some of the
715parallel build options provided by GNU Make.  For example, you could use the
716command:
717
718.. code-block:: console
719
720  % make -j2
721
722There are several special targets which are useful when working with the LLVM
723source code:
724
725``make clean``
726
727  Removes all files generated by the build.  This includes object files,
728  generated C/C++ files, libraries, and executables.
729
730``make install``
731
732  Installs LLVM header files, libraries, tools, and documentation in a hierarchy
733  under ``$PREFIX``, specified with ``CMAKE_INSTALL_PREFIX``, which
734  defaults to ``/usr/local``.
735
736``make docs-llvm-html``
737
738  If configured with ``-DLLVM_ENABLE_SPHINX=On``, this will generate a directory
739  at ``OBJ_ROOT/docs/html`` which contains the HTML formatted documentation.
740
741Cross-Compiling LLVM
742--------------------
743
744It is possible to cross-compile LLVM itself. That is, you can create LLVM
745executables and libraries to be hosted on a platform different from the platform
746where they are built (a Canadian Cross build). To generate build files for
747cross-compiling CMake provides a variable ``CMAKE_TOOLCHAIN_FILE`` which can
748define compiler flags and variables used during the CMake test operations.
749
750The result of such a build is executables that are not runnable on the build
751host but can be executed on the target. As an example the following CMake
752invocation can generate build files targeting iOS. This will work on macOS
753with the latest Xcode:
754
755.. code-block:: console
756
757  % cmake -G "Ninja" -DCMAKE_OSX_ARCHITECTURES="armv7;armv7s;arm64"
758    -DCMAKE_TOOLCHAIN_FILE=<PATH_TO_LLVM>/cmake/platforms/iOS.cmake
759    -DCMAKE_BUILD_TYPE=Release -DLLVM_BUILD_RUNTIME=Off -DLLVM_INCLUDE_TESTS=Off
760    -DLLVM_INCLUDE_EXAMPLES=Off -DLLVM_ENABLE_BACKTRACES=Off [options]
761    <PATH_TO_LLVM>
762
763Note: There are some additional flags that need to be passed when building for
764iOS due to limitations in the iOS SDK.
765
766Check :doc:`HowToCrossCompileLLVM` and `Clang docs on how to cross-compile in general
767<https://clang.llvm.org/docs/CrossCompilation.html>`_ for more information
768about cross-compiling.
769
770The Location of LLVM Object Files
771---------------------------------
772
773The LLVM build system is capable of sharing a single LLVM source tree among
774several LLVM builds.  Hence, it is possible to build LLVM for several different
775platforms or configurations using the same source tree.
776
777* Change directory to where the LLVM object files should live:
778
779  .. code-block:: console
780
781    % cd OBJ_ROOT
782
783* Run ``cmake``:
784
785  .. code-block:: console
786
787    % cmake -G "Unix Makefiles" SRC_ROOT
788
789The LLVM build will create a structure underneath *OBJ_ROOT* that matches the
790LLVM source tree. At each level where source files are present in the source
791tree there will be a corresponding ``CMakeFiles`` directory in the *OBJ_ROOT*.
792Underneath that directory there is another directory with a name ending in
793``.dir`` under which you'll find object files for each source.
794
795For example:
796
797  .. code-block:: console
798
799    % cd llvm_build_dir
800    % find lib/Support/ -name APFloat*
801    lib/Support/CMakeFiles/LLVMSupport.dir/APFloat.cpp.o
802
803Optional Configuration Items
804----------------------------
805
806If you're running on a Linux system that supports the `binfmt_misc
807<http://en.wikipedia.org/wiki/binfmt_misc>`_
808module, and you have root access on the system, you can set your system up to
809execute LLVM bitcode files directly. To do this, use commands like this (the
810first command may not be required if you are already using the module):
811
812.. code-block:: console
813
814  % mount -t binfmt_misc none /proc/sys/fs/binfmt_misc
815  % echo ':llvm:M::BC::/path/to/lli:' > /proc/sys/fs/binfmt_misc/register
816  % chmod u+x hello.bc   (if needed)
817  % ./hello.bc
818
819This allows you to execute LLVM bitcode files directly.  On Debian, you can also
820use this command instead of the 'echo' command above:
821
822.. code-block:: console
823
824  % sudo update-binfmts --install llvm /path/to/lli --magic 'BC'
825
826.. _Program Layout:
827.. _general layout:
828
829Directory Layout
830================
831
832One useful source of information about the LLVM source base is the LLVM `doxygen
833<http://www.doxygen.org/>`_ documentation available at
834`<https://llvm.org/doxygen/>`_.  The following is a brief introduction to code
835layout:
836
837``llvm/examples``
838-----------------
839
840Simple examples using the LLVM IR and JIT.
841
842``llvm/include``
843----------------
844
845Public header files exported from the LLVM library. The three main subdirectories:
846
847``llvm/include/llvm``
848
849  All LLVM-specific header files, and  subdirectories for different portions of
850  LLVM: ``Analysis``, ``CodeGen``, ``Target``, ``Transforms``, etc...
851
852``llvm/include/llvm/Support``
853
854  Generic support libraries provided with LLVM but not necessarily specific to
855  LLVM. For example, some C++ STL utilities and a Command Line option processing
856  library store header files here.
857
858``llvm/include/llvm/Config``
859
860  Header files configured by ``cmake``.  They wrap "standard" UNIX and
861  C header files.  Source code can include these header files which
862  automatically take care of the conditional #includes that ``cmake``
863  generates.
864
865``llvm/lib``
866------------
867
868Most source files are here. By putting code in libraries, LLVM makes it easy to
869share code among the `tools`_.
870
871``llvm/lib/IR/``
872
873  Core LLVM source files that implement core classes like Instruction and
874  BasicBlock.
875
876``llvm/lib/AsmParser/``
877
878  Source code for the LLVM assembly language parser library.
879
880``llvm/lib/Bitcode/``
881
882  Code for reading and writing bitcode.
883
884``llvm/lib/Analysis/``
885
886  A variety of program analyses, such as Call Graphs, Induction Variables,
887  Natural Loop Identification, etc.
888
889``llvm/lib/Transforms/``
890
891  IR-to-IR program transformations, such as Aggressive Dead Code Elimination,
892  Sparse Conditional Constant Propagation, Inlining, Loop Invariant Code Motion,
893  Dead Global Elimination, and many others.
894
895``llvm/lib/Target/``
896
897  Files describing target architectures for code generation.  For example,
898  ``llvm/lib/Target/X86`` holds the X86 machine description.
899
900``llvm/lib/CodeGen/``
901
902  The major parts of the code generator: Instruction Selector, Instruction
903  Scheduling, and Register Allocation.
904
905``llvm/lib/MC/``
906
907  (FIXME: T.B.D.)  ....?
908
909``llvm/lib/ExecutionEngine/``
910
911  Libraries for directly executing bitcode at runtime in interpreted and
912  JIT-compiled scenarios.
913
914``llvm/lib/Support/``
915
916  Source code that corresponding to the header files in ``llvm/include/ADT/``
917  and ``llvm/include/Support/``.
918
919``llvm/projects``
920-----------------
921
922Projects not strictly part of LLVM but shipped with LLVM. This is also the
923directory for creating your own LLVM-based projects which leverage the LLVM
924build system.
925
926``llvm/test``
927-------------
928
929Feature and regression tests and other sanity checks on LLVM infrastructure. These
930are intended to run quickly and cover a lot of territory without being exhaustive.
931
932``test-suite``
933--------------
934
935A comprehensive correctness, performance, and benchmarking test suite
936for LLVM.  This comes in a ``separate git repository
937<https://github.com/llvm/llvm-test-suite>``, because it contains a
938large amount of third-party code under a variety of licenses. For
939details see the :doc:`Testing Guide <TestingGuide>` document.
940
941.. _tools:
942
943``llvm/tools``
944--------------
945
946Executables built out of the libraries
947above, which form the main part of the user interface.  You can always get help
948for a tool by typing ``tool_name -help``.  The following is a brief introduction
949to the most important tools.  More detailed information is in
950the `Command Guide <CommandGuide/index.html>`_.
951
952``bugpoint``
953
954  ``bugpoint`` is used to debug optimization passes or code generation backends
955  by narrowing down the given test case to the minimum number of passes and/or
956  instructions that still cause a problem, whether it is a crash or
957  miscompilation. See `<HowToSubmitABug.html>`_ for more information on using
958  ``bugpoint``.
959
960``llvm-ar``
961
962  The archiver produces an archive containing the given LLVM bitcode files,
963  optionally with an index for faster lookup.
964
965``llvm-as``
966
967  The assembler transforms the human readable LLVM assembly to LLVM bitcode.
968
969``llvm-dis``
970
971  The disassembler transforms the LLVM bitcode to human readable LLVM assembly.
972
973``llvm-link``
974
975  ``llvm-link``, not surprisingly, links multiple LLVM modules into a single
976  program.
977
978``lli``
979
980  ``lli`` is the LLVM interpreter, which can directly execute LLVM bitcode
981  (although very slowly...). For architectures that support it (currently x86,
982  Sparc, and PowerPC), by default, ``lli`` will function as a Just-In-Time
983  compiler (if the functionality was compiled in), and will execute the code
984  *much* faster than the interpreter.
985
986``llc``
987
988  ``llc`` is the LLVM backend compiler, which translates LLVM bitcode to a
989  native code assembly file.
990
991``opt``
992
993  ``opt`` reads LLVM bitcode, applies a series of LLVM to LLVM transformations
994  (which are specified on the command line), and outputs the resultant
995  bitcode.   '``opt -help``'  is a good way to get a list of the
996  program transformations available in LLVM.
997
998  ``opt`` can also  run a specific analysis on an input LLVM bitcode
999  file and print  the results.  Primarily useful for debugging
1000  analyses, or familiarizing yourself with what an analysis does.
1001
1002``llvm/utils``
1003--------------
1004
1005Utilities for working with LLVM source code; some are part of the build process
1006because they are code generators for parts of the infrastructure.
1007
1008
1009``codegen-diff``
1010
1011  ``codegen-diff`` finds differences between code that LLC
1012  generates and code that LLI generates. This is useful if you are
1013  debugging one of them, assuming that the other generates correct output. For
1014  the full user manual, run ```perldoc codegen-diff'``.
1015
1016``emacs/``
1017
1018   Emacs and XEmacs syntax highlighting  for LLVM   assembly files and TableGen
1019   description files.  See the ``README`` for information on using them.
1020
1021``getsrcs.sh``
1022
1023  Finds and outputs all non-generated source files,
1024  useful if one wishes to do a lot of development across directories
1025  and does not want to find each file. One way to use it is to run,
1026  for example: ``xemacs `utils/getsources.sh``` from the top of the LLVM source
1027  tree.
1028
1029``llvmgrep``
1030
1031  Performs an ``egrep -H -n`` on each source file in LLVM and
1032  passes to it a regular expression provided on ``llvmgrep``'s command
1033  line. This is an efficient way of searching the source base for a
1034  particular regular expression.
1035
1036``TableGen/``
1037
1038  Contains the tool used to generate register
1039  descriptions, instruction set descriptions, and even assemblers from common
1040  TableGen description files.
1041
1042``vim/``
1043
1044  vim syntax-highlighting for LLVM assembly files
1045  and TableGen description files. See the    ``README`` for how to use them.
1046
1047.. _simple example:
1048
1049An Example Using the LLVM Tool Chain
1050====================================
1051
1052This section gives an example of using LLVM with the Clang front end.
1053
1054Example with clang
1055------------------
1056
1057#. First, create a simple C file, name it 'hello.c':
1058
1059   .. code-block:: c
1060
1061     #include <stdio.h>
1062
1063     int main() {
1064       printf("hello world\n");
1065       return 0;
1066     }
1067
1068#. Next, compile the C file into a native executable:
1069
1070   .. code-block:: console
1071
1072     % clang hello.c -o hello
1073
1074   .. note::
1075
1076     Clang works just like GCC by default.  The standard -S and -c arguments
1077     work as usual (producing a native .s or .o file, respectively).
1078
1079#. Next, compile the C file into an LLVM bitcode file:
1080
1081   .. code-block:: console
1082
1083     % clang -O3 -emit-llvm hello.c -c -o hello.bc
1084
1085   The -emit-llvm option can be used with the -S or -c options to emit an LLVM
1086   ``.ll`` or ``.bc`` file (respectively) for the code.  This allows you to use
1087   the `standard LLVM tools <CommandGuide/index.html>`_ on the bitcode file.
1088
1089#. Run the program in both forms. To run the program, use:
1090
1091   .. code-block:: console
1092
1093      % ./hello
1094
1095   and
1096
1097   .. code-block:: console
1098
1099     % lli hello.bc
1100
1101   The second examples shows how to invoke the LLVM JIT, :doc:`lli
1102   <CommandGuide/lli>`.
1103
1104#. Use the ``llvm-dis`` utility to take a look at the LLVM assembly code:
1105
1106   .. code-block:: console
1107
1108     % llvm-dis < hello.bc | less
1109
1110#. Compile the program to native assembly using the LLC code generator:
1111
1112   .. code-block:: console
1113
1114     % llc hello.bc -o hello.s
1115
1116#. Assemble the native assembly language file into a program:
1117
1118   .. code-block:: console
1119
1120     % /opt/SUNWspro/bin/cc -xarch=v9 hello.s -o hello.native   # On Solaris
1121
1122     % gcc hello.s -o hello.native                              # On others
1123
1124#. Execute the native code program:
1125
1126   .. code-block:: console
1127
1128     % ./hello.native
1129
1130   Note that using clang to compile directly to native code (i.e. when the
1131   ``-emit-llvm`` option is not present) does steps 6/7/8 for you.
1132
1133Common Problems
1134===============
1135
1136If you are having problems building or using LLVM, or if you have any other
1137general questions about LLVM, please consult the `Frequently Asked
1138Questions <FAQ.html>`_ page.
1139
1140If you are having problems with limited memory and build time, please try
1141building with ninja instead of make. Please consider configuring the
1142following options with cmake:
1143
1144 * -G Ninja
1145   Setting this option will allow you to build with ninja instead of make.
1146   Building with ninja significantly improves your build time, especially with
1147   incremental builds, and improves your memory usage.
1148
1149 * -DLLVM_USE_LINKER
1150   Setting this option to lld will significantly reduce linking time for LLVM
1151   executables on ELF-based platforms, such as Linux. If you are building LLVM
1152   for the first time and lld is not available to you as a binary package, then
1153   you may want to use the gold linker as a faster alternative to GNU ld.
1154
1155 * -DCMAKE_BUILD_TYPE
1156
1157    - Debug --- This is the default build type. This disables optimizations while
1158      compiling LLVM and enables debug info. On ELF-based platforms (e.g. Linux)
1159      linking with debug info may consume a large amount of memory.
1160
1161    - Release --- Turns on optimizations and disables debug info. Combining the
1162      Release build type with -DLLVM_ENABLE_ASSERTIONS=ON may be a good trade-off
1163      between speed and debugability during development, particularly for running
1164      the test suite.
1165
1166 * -DLLVM_ENABLE_ASSERTIONS
1167   This option defaults to ON for Debug builds and defaults to OFF for Release
1168   builds. As mentioned in the previous option, using the Release build type and
1169   enabling assertions may be a good alternative to using the Debug build type.
1170
1171 * -DLLVM_PARALLEL_LINK_JOBS
1172   Set this equal to number of jobs you wish to run simultaneously. This is
1173   similar to the -j option used with make, but only for link jobs. This option
1174   can only be used with ninja. You may wish to use a very low number of jobs,
1175   as this will greatly reduce the amount of memory used during the build
1176   process. If you have limited memory, you may wish to set this to 1.
1177
1178 * -DLLVM_TARGETS_TO_BUILD
1179   Set this equal to the target you wish to build. You may wish to set this to
1180   X86; however, you will find a full list of targets within the
1181   llvm-project/llvm/lib/Target directory.
1182
1183 * -DLLVM_OPTIMIZED_TABLEGEN
1184   Set this to ON to generate a fully optimized tablegen during your build. This
1185   will significantly improve your build time. This is only useful if you are
1186   using the Debug build type.
1187
1188 * -DLLVM_ENABLE_PROJECTS
1189   Set this equal to the projects you wish to compile (e.g. clang, lld, etc.) If
1190   compiling more than one project, separate the items with a semicolon. Should
1191   you run into issues with the semicolon, try surrounding it with single quotes.
1192
1193 * -DCLANG_ENABLE_STATIC_ANALYZER
1194   Set this option to OFF if you do not require the clang static analyzer. This
1195   should improve your build time slightly.
1196
1197 * -DLLVM_USE_SPLIT_DWARF
1198   Consider setting this to ON if you require a debug build, as this will ease
1199   memory pressure on the linker. This will make linking much faster, as the
1200   binaries will not contain any of the debug information; however, this will
1201   generate the debug information in the form of a DWARF object file (with the
1202   extension .dwo). This only applies to host platforms using ELF, such as Linux.
1203
1204.. _links:
1205
1206Links
1207=====
1208
1209This document is just an **introduction** on how to use LLVM to do some simple
1210things... there are many more interesting and complicated things that you can do
1211that aren't documented here (but we'll gladly accept a patch if you want to
1212write something up!).  For more information about LLVM, check out:
1213
1214* `LLVM Homepage <https://llvm.org/>`_
1215* `LLVM Doxygen Tree <https://llvm.org/doxygen/>`_
1216* `Starting a Project that Uses LLVM <https://llvm.org/docs/Projects.html>`_
1217
1218.. _installing arcanist: https://secure.phabricator.com/book/phabricator/article/arcanist_quick_start/
1219