### Building CPython ABI3 wheels (Limited API) {: #abi3}
The CPython Limited API is a subset of the Python C Extension API that's declared to be forward-compatible, meaning you can compile wheels for one version of Python, and they'll be compatible with future versions. Wheels that use the Limited API are known as ABI3 wheels.
To create a package that builds ABI3 wheels, you'll need to configure your build backend to compile libraries correctly create wheels with the right tags. [Check this repo](https://github.com/joerick/python-abi3-package-sample) for an example of how to do this with setuptools.
You could also consider running [abi3audit](https://github.com/trailofbits/abi3audit) against the produced wheels in order to check for abi3 violations or inconsistencies. You can run it alongside the default in your [repair-wheel-command](options.md#repair-wheel-command).
`cibuildwheel` defines the environment variable `CIBUILDWHEEL` to the value `1` allowing projects for which the C extension is optional to make it mandatory when building wheels.
An easy way to do it in Python 3 is through the `optional` named argument of `Extension` constructor in your `setup.py`:
If using NumPy, there are a couple of things that can help.
First, if you require the `numpy` package at build-time (some binding tools, like `pybind11` and `nanobind`, do not), then the backward compatibility for your `build-backend.build-requires` is a little complicated for Python <3.9:
* NumPy <1.25: You must build with the oldest version of NumPy you want to support at runtime.
* NumPy 1.25 and 1.26: Anything you build will be compatible with 1.19+ by default, and you can set the minimum target to, for example, 1.22 with `#define NPY_TARGET_VERSION NPY_1_22_API_VERSION`.
* NumPy 2.x: You must build with NumPy 2 to support NumPy 2; otherwise the same as 1.25+.
So the rule is:
* Python <3.8: Use the oldest supported NumPy (via helper `oldest-supported-numpy` if you want)
* Python 3.9+: Use latest supported NumPy (2+).
Second, there might be platforms you want to ship for that NumPy (or some other scientific Python libraries) are not shipping yet for. This is often true for beta candidates of new Python releases, for example. To work with this, you can use the Scientific Python Nightly wheels. Here's an example, depending on what frontend you use:
!!! tab "pip based"
For frontends like `build` (the default) and `pip`:
(Note the `*_ONLY_BINARY` variable also supports `":all:"`, and you don't need both that and `*_PREFER_BINARY`, you can use either one, depending on if you want a missing wheel to be a failure or an attempt to build in CI.)
Meson generally works well with cibuildwheel, but there are a few things to be aware of:
- On GitHub Actions, the compiler that's chosen by default on Windows is often the MinGW compiler, rather than the MSVC toolchain that Python was compiled with.
The simplest fix for this is to configure cibuildwheel to pass the `--vsenv` flag to meson, like this:
```toml
[tool.cibuildwheel.windows]
config-settings = { "setup-args" = "--vsenv" }
```
- If you need to build 32-bit Windows wheels, you need to activate a 32-bit compiler toolchain before starting cibuildwheel. Many users use [ilammy/msvc-dev-cmd](https://github.com/ilammy/msvc-dev-cmd) for this purpose.
Selecting a moving target (like the latest release) is generally a bad idea in CI. If something breaks, you can't tell whether it was your code or an upstream update that caused the breakage, and in a worst-case scenario, it could occur during a release.
Unlike some GitHub Actions, cibuildwheel does **not** provide a floating `@v3` major-version tag, since our minor version change can add/remove wheels. You can, however, pin to a minor version such as `@v3.4` to automatically receive patch releases within that minor version. Dependabot (shown below) is the recommended way to stay up to date.
The second option, and the only one that supports other CI systems, is using a `requirements-*.txt` file. The file should have a distinct name and have only one entry:
This will also try to update other pins in all requirement files, so be sure you want to do that. The only control you have over the files used is via the directory option.
### Alternatives to cibuildwheel options {: #cibw-options-alternatives}
To quickly test your config without doing a git push and waiting for your code to build on CI, you can [test the Linux build in a local Docker container](platforms.md#linux).
**If you need a build tool** (e.g. cmake, automake, ninja), you can install it through a package manager like apt/yum, brew or choco, using the [`before-all`](options.md#before-all) option.
**If your build is linking into a native library dependency**, you can build/install that in [`before-all`](options.md#before-all). However, on Linux, Mac (and Windows if you're using [delvewheel]), the library that you install will be bundled into the wheel in the [repair step]. So take care to ensure that
- the bundled library doesn't accidentally increase the minimum system requirements (such as the minimum macOS version)
- the bundled library matches the architecture of the wheel you're building when cross-compiling
This is particularly an issue on macOS, where de facto package manager Homebrew will install libraries that are compiled for the specific version of macOS that the build machine is running, rendering the wheels useless for any previous version. And brew will not install the right arch for cross compilation of Apple Silicon wheels.
For these reasons, it's strongly recommended to not use brew for native library dependencies. Instead, we recommend compiling the library yourself. If you compile in the [`before-all`](options.md#before-all) step, cibuildwheel will have already set the appropriate `MACOSX_DEPLOYMENT_TARGET` env var, so the library will target the correct version of macOS.
Also see [maturin-action](https://github.com/PyO3/maturin-action) which is optimized for Rust wheels, builds the non-Python Rust modules once, and can cross-compile (and can build 32-bit musl, for example).
`cibuildwheel` on Mac installs the distributions from Python.org system-wide during its operation. This is necessary, but it can cause some confusing errors after cibuildwheel has finished.
Consider the build script:
```bash
python3 -m pip install twine cibuildwheel
python3 -m cibuildwheel --output-dir wheelhouse
python3 -m twine upload wheelhouse/*.whl
# error: no module named 'twine'
```
This doesn't work because while `cibuildwheel` was running, it installed a few new versions of 'python3', so the `python3` run on line 3 isn't the same as the `python3` that ran on line 1.
macOS has built-in [System Integrity protections](https://developer.apple.com/library/archive/documentation/Security/Conceptual/System_Integrity_Protection_Guide/RuntimeProtections/RuntimeProtections.html) which limits the use of `DYLD_LIBRARY_PATH` and `LD_LIBRARY_PATH` so that it does not automatically pass to children processes. This means if you set `DYLD_LIBRARY_PATH` before running cibuildwheel, or even set it in `environment`, it will be stripped out of the environment before delocate is called.
To work around this, use a different environment variable such as `REPAIR_LIBRARY_PATH` to store the library path, and set `DYLD_LIBRARY_PATH` in [`macos.repair-wheel-command`](https://cibuildwheel.pypa.io/en/stable/options/#repair-wheel-command), like this:
If you're building on an arm64 runner, you might notice something strange about CPython 3.8 - unlike Python 3.9+, it's cross-compiled to arm64 from an x86_64 version of Python running under Rosetta emulation. This is because (despite the prevalence of arm64 versions of Python 3.8 from Apple and Homebrew) there is no officially supported Python.org installer of Python 3.8 for arm64.
This is fine for simple C extensions, but for more complicated builds on arm64 it becomes an issue.
So, if you want to build macOS arm64 wheels on an arm64 runner (e.g., `macos-14`) on Python 3.8, before invoking cibuildwheel, you should install a native arm64 Python 3.8 interpreter on the runner:
Then cibuildwheel will detect that it's installed and use it instead. However, you probably don't want to build x86_64 wheels on this Python, unless you're happy with them only supporting macOS 11+.
Since delocate 0.11.0 there is added verification that the library binary dependencies match the target macOS version. This is to prevent the situation where a wheel platform tag is lower than the actual minimum macOS version required by the library. To resolve this error you need to build the library to the same macOS version as the target wheel (for example using `MACOSX_DEPLOYMENT_TARGET` environment variable).
This error may happen when you install a library using a package manager like Homebrew, which compiles the library for the macOS version of the build machine. This is not suitable for wheels, as the library will only work on the same macOS version as the build machine. You should compile the library yourself, or use a precompiled binary that matches the target macOS version.
Visual Studio and MSVC link the compiled binary wheels to the Microsoft Visual C++ Runtime. Normally, the C parts of the runtime are included with Python, but the C++ components are not. When compiling modules using C++, it is possible users will run into problems on systems that do not have the full set of runtime libraries installed. The solution is to ask users to download the corresponding Visual C++ Redistributable from the [Microsoft website](https://learn.microsoft.com/en-us/cpp/windows/latest-supported-vc-redist) and install it.
Additionally, Visual Studio 2019 started linking to an even newer DLL, `VCRUNTIME140_1.dll`, besides the `VCRUNTIME140.dll` that is included with recent Python versions (starting from Python 3.5; see [here](https://wiki.python.org/moin/WindowsCompilers) for more details on the corresponding Visual Studio & MSVC versions used to compile the different Python versions). To avoid this extra dependency on `VCRUNTIME140_1.dll`, the [`/d2FH4-` flag](https://devblogs.microsoft.com/cppblog/making-cpp-exception-handling-smaller-x64/) can be added to the MSVC invocations (check out [this issue](https://github.com/pypa/cibuildwheel/issues/423) for details and references). CPython 3.8.3 and all versions after it have this extra DLL, so it is only needed for 3.8 and earlier.
To investigate the dependencies of a C extension (i.e., the `.pyd` file, a DLL in disguise) on Windows, [Dependency Walker](http://www.dependencywalker.com/) is a great tool. For diagnosing a failing import, the [dlltracer](https://pypi.org/project/dlltracer/) tool may also provide additional details.