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114 lines
4.7 KiB
Nix
114 lines
4.7 KiB
Nix
# For the moment we only support the CPU and GPU backends of jaxlib. The TPU
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# backend will require some additional work. Those wheels are located here:
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# https://storage.googleapis.com/jax-releases/libtpu_releases.html.
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# For future reference, the easiest way to test the GPU backend is to run
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# NIX_PATH=.. nix-shell -p python3 python3Packages.jax "python3Packages.jaxlib.override { cudaSupport = true; }"
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# export XLA_FLAGS=--xla_gpu_force_compilation_parallelism=1
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# python -c "from jax.lib import xla_bridge; assert xla_bridge.get_backend().platform == 'gpu'"
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# python -c "from jax import random; random.PRNGKey(0)"
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# python -c "from jax import random; x = random.normal(random.PRNGKey(0), (100, 100)); x @ x"
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# There's no convenient way to test the GPU backend in the derivation since the
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# nix build environment blocks access to the GPU. See also:
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# * https://github.com/google/jax/issues/971#issuecomment-508216439
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# * https://github.com/google/jax/issues/5723#issuecomment-913038780
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{ absl-py
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, addOpenGLRunpath
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, autoPatchelfHook
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, buildPythonPackage
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, config
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, cudatoolkit_11
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, cudnn
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, fetchurl
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, flatbuffers
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, isPy39
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, lib
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, scipy
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, stdenv
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# Options:
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, cudaSupport ? config.cudaSupport or false
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}:
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# Note that these values are tied to the specific version of the GPU wheel that
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# we fetch. When updating, try to go for the latest possible versions that are
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# still compatible with the cudatoolkit and cudnn versions available in nixpkgs.
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assert cudaSupport -> lib.versionAtLeast cudatoolkit_11.version "11.1";
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assert cudaSupport -> lib.versionAtLeast cudnn.version "8.0.5";
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let
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device = if cudaSupport then "gpu" else "cpu";
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in
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buildPythonPackage rec {
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pname = "jaxlib";
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version = "0.3.0";
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format = "wheel";
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# At the time of writing (8/19/21), there are releases for 3.7-3.9. Supporting
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# all of them is a pain, so we focus on 3.9, the current nixpkgs python3
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# version.
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disabled = !isPy39;
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# Find new releases at https://storage.googleapis.com/jax-releases.
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src = {
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cpu = fetchurl {
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url = "https://storage.googleapis.com/jax-releases/nocuda/jaxlib-${version}-cp39-none-manylinux2010_x86_64.whl";
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sha256 = "151p4vqli8x0iqgrzrr8piqk7d76a2xq2krf23jlb142iam5bw01";
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};
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gpu = fetchurl {
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# Note that there's also a release targeting cuDNN 8.2, but unfortunately
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# we don't yet have that packaged at the time of writing (02/03/2022).
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# Check pkgs/development/libraries/science/math/cudnn/default.nix for more
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# details.
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url = "https://storage.googleapis.com/jax-releases/cuda11/jaxlib-${version}+cuda11.cudnn805-cp39-none-manylinux2010_x86_64.whl";
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sha256 = "0z15rdw3a8sq51rpjmfc41ix1q095aasl79rvlib85ir6f3wh2h8";
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# This is what the cuDNN 8.2 download looks like for future reference:
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# url = "https://storage.googleapis.com/jax-releases/cuda11/jaxlib-${version}+cuda11.cudnn82-cp39-none-manylinux2010_x86_64.whl";
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# sha256 = "000mnm2masm3sx3haddcmgw43j4gxa3m4fcm14p9nb8dnncjkgpb";
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};
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}.${device};
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# Prebuilt wheels are dynamically linked against things that nix can't find.
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# Run `autoPatchelfHook` to automagically fix them.
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nativeBuildInputs = [ autoPatchelfHook ] ++ lib.optional cudaSupport addOpenGLRunpath;
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# Dynamic link dependencies
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buildInputs = [ stdenv.cc.cc ];
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# jaxlib contains shared libraries that open other shared libraries via dlopen
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# and these implicit dependencies are not recognized by ldd or
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# autoPatchelfHook. That means we need to sneak them into rpath. This step
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# must be done after autoPatchelfHook and the automatic stripping of
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# artifacts. autoPatchelfHook runs in postFixup and auto-stripping runs in the
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# patchPhase. Dependencies:
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# * libcudart.so.11.0 -> cudatoolkit_11.lib
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# * libcublas.so.11 -> cudatoolkit_11
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# * libcuda.so.1 -> opengl driver in /run/opengl-driver/lib
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preInstallCheck = lib.optional cudaSupport ''
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shopt -s globstar
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addOpenGLRunpath $out/**/*.so
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for file in $out/**/*.so; do
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rpath=$(patchelf --print-rpath $file)
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# For some reason `makeLibraryPath` on `cudatoolkit_11` maps to
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# <cudatoolkit_11.lib>/lib which is different from <cudatoolkit_11>/lib.
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patchelf --set-rpath "$rpath:${cudatoolkit_11}/lib:${lib.makeLibraryPath [ cudatoolkit_11.lib cudnn ]}" $file
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done
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'';
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# pip dependencies and optionally cudatoolkit. Note that cudatoolkit is
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# necessary since jaxlib looks for "ptxas" in $PATH.
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propagatedBuildInputs = [ absl-py flatbuffers scipy ] ++ lib.optional cudaSupport cudatoolkit_11;
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pythonImportsCheck = [ "jaxlib" ];
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meta = with lib; {
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description = "XLA library for JAX";
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homepage = "https://github.com/google/jax";
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license = licenses.asl20;
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maintainers = with maintainers; [ samuela ];
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platforms = [ "x86_64-linux" ];
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};
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}
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