depot/third_party/nixpkgs/pkgs/development/python-modules/tensorflow/default.nix

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{ stdenv, bazel_5, buildBazelPackage, lib, fetchFromGitHub, symlinkJoin
, addOpenGLRunpath, fetchpatch, fetchzip, linkFarm
# Python deps
, buildPythonPackage, pythonAtLeast, pythonOlder, python
# Python libraries
, numpy, tensorboard, abseil-cpp, absl-py
, packaging, setuptools, wheel, keras-preprocessing, google-pasta
, opt-einsum, astunparse, h5py
, termcolor, grpcio, six, wrapt, protobuf-python, tensorflow-estimator-bin
, dill, flatbuffers-python, portpicker, tblib, typing-extensions
# Common deps
, git, pybind11, which, binutils, glibcLocales, cython, perl
# Common libraries
, jemalloc, mpi, gast, grpc, sqlite, boringssl, jsoncpp, nsync
, curl, snappy, flatbuffers-core, icu, double-conversion, libpng, libjpeg_turbo, giflib, protobuf-core
# Upstream by default includes cuda support since tensorflow 1.15. We could do
# that in nix as well. It would make some things easier and less confusing, but
# it would also make the default tensorflow package unfree. See
# https://groups.google.com/a/tensorflow.org/forum/#!topic/developers/iRCt5m4qUz0
, config
, cudaSupport ? config.cudaSupport
, cudaPackages
, cudaCapabilities ? cudaPackages.cudaFlags.cudaCapabilities
, mklSupport ? false, mkl
, tensorboardSupport ? true
# XLA without CUDA is broken
, xlaSupport ? cudaSupport
, sse42Support ? stdenv.hostPlatform.sse4_2Support
, avx2Support ? stdenv.hostPlatform.avx2Support
, fmaSupport ? stdenv.hostPlatform.fmaSupport
# Darwin deps
, Foundation, Security, cctools, llvmPackages
}:
let
originalStdenv = stdenv;
in
let
# Tensorflow looks at many toolchain-related variables which may diverge.
#
# Toolchain for cuda-enabled builds.
# We want to achieve two things:
# 1. NVCC should use a compatible back-end (e.g. gcc11 for cuda11)
# 2. Normal C++ files should be compiled with the same toolchain,
# to avoid potential weird dynamic linkage errors at runtime.
# This may not be necessary though
#
# Toolchain for Darwin:
# clang 7 fails to emit a symbol for
# __ZN4llvm11SmallPtrSetIPKNS_10AllocaInstELj8EED1Ev in any of the
# translation units, so the build fails at link time
stdenv =
if cudaSupport then cudaPackages.backendStdenv
else if originalStdenv.isDarwin then llvmPackages.stdenv
else originalStdenv;
inherit (cudaPackages) cudatoolkit nccl;
# use compatible cuDNN (https://www.tensorflow.org/install/source#gpu)
# cudaPackages.cudnn led to this:
# https://github.com/tensorflow/tensorflow/issues/60398
cudnnAttribute = "cudnn_8_6";
cudnn = cudaPackages.${cudnnAttribute};
gentoo-patches = fetchzip {
url = "https://dev.gentoo.org/~perfinion/patches/tensorflow-patches-2.12.0.tar.bz2";
hash = "sha256-SCRX/5/zML7LmKEPJkcM5Tebez9vv/gmE4xhT/jyqWs=";
};
protobuf-extra = linkFarm "protobuf-extra" [
{ name = "include"; path = protobuf-core.src; }
];
withTensorboard = (pythonOlder "3.6") || tensorboardSupport;
# FIXME: migrate to redist cudaPackages
cudatoolkit_joined = symlinkJoin {
name = "${cudatoolkit.name}-merged";
paths = [
cudatoolkit.lib
cudatoolkit.out
] ++ lib.optionals (lib.versionOlder cudatoolkit.version "11") [
# for some reason some of the required libs are in the targets/x86_64-linux
# directory; not sure why but this works around it
"${cudatoolkit}/targets/${stdenv.system}"
];
};
# Tensorflow expects bintools at hard-coded paths, e.g. /usr/bin/ar
# The only way to overcome that is to set GCC_HOST_COMPILER_PREFIX,
# but that path must contain cc as well, so we merge them
cudatoolkit_cc_joined = symlinkJoin {
name = "${stdenv.cc.name}-merged";
paths = [
stdenv.cc
binutils.bintools # for ar, dwp, nm, objcopy, objdump, strip
];
};
# Needed for _some_ system libraries, grep INCLUDEDIR.
includes_joined = symlinkJoin {
name = "tensorflow-deps-merged";
paths = [
jsoncpp
];
};
tfFeature = x: if x then "1" else "0";
version = "2.13.0";
format = "setuptools";
variant = lib.optionalString cudaSupport "-gpu";
pname = "tensorflow${variant}";
pythonEnv = python.withPackages (_:
[ # python deps needed during wheel build time (not runtime, see the buildPythonPackage part for that)
# This list can likely be shortened, but each trial takes multiple hours so won't bother for now.
absl-py
astunparse
dill
flatbuffers-python
gast
google-pasta
grpcio
h5py
keras-preprocessing
numpy
opt-einsum
packaging
protobuf-python
setuptools
six
tblib
tensorboard
tensorflow-estimator-bin
termcolor
typing-extensions
wheel
wrapt
]);
rules_cc_darwin_patched = stdenv.mkDerivation {
name = "rules_cc-${pname}-${version}";
src = _bazel-build.deps;
prePatch = "pushd rules_cc";
patches = [
# https://github.com/bazelbuild/rules_cc/issues/122
(fetchpatch {
name = "tensorflow-rules_cc-libtool-path.patch";
url = "https://github.com/bazelbuild/rules_cc/commit/8c427ab30bf213630dc3bce9d2e9a0e29d1787db.diff";
hash = "sha256-C4v6HY5+jm0ACUZ58gBPVejCYCZfuzYKlHZ0m2qDHCk=";
})
# https://github.com/bazelbuild/rules_cc/pull/124
(fetchpatch {
name = "tensorflow-rules_cc-install_name_tool-path.patch";
url = "https://github.com/bazelbuild/rules_cc/commit/156497dc89100db8a3f57b23c63724759d431d05.diff";
hash = "sha256-NES1KeQmMiUJQVoV6dS4YGRxxkZEjOpFSCyOq9HZYO0=";
})
];
postPatch = "popd";
dontConfigure = true;
dontBuild = true;
installPhase = ''
runHook preInstall
mv rules_cc/ "$out"
runHook postInstall
'';
};
llvm-raw_darwin_patched = stdenv.mkDerivation {
name = "llvm-raw-${pname}-${version}";
src = _bazel-build.deps;
prePatch = "pushd llvm-raw";
patches = [
# Fix a vendored config.h that requires the 10.13 SDK
./llvm_bazel_fix_macos_10_12_sdk.patch
];
postPatch = ''
touch {BUILD,WORKSPACE}
popd
'';
dontConfigure = true;
dontBuild = true;
installPhase = ''
runHook preInstall
mv llvm-raw/ "$out"
runHook postInstall
'';
};
bazel-build = if stdenv.isDarwin then _bazel-build.overrideAttrs (prev: {
bazelFlags = prev.bazelFlags ++ [
"--override_repository=rules_cc=${rules_cc_darwin_patched}"
"--override_repository=llvm-raw=${llvm-raw_darwin_patched}"
];
preBuild = ''
export AR="${cctools}/bin/libtool"
'';
}) else _bazel-build;
_bazel-build = buildBazelPackage.override { inherit stdenv; } {
name = "${pname}-${version}";
bazel = bazel_5;
src = fetchFromGitHub {
owner = "tensorflow";
repo = "tensorflow";
rev = "refs/tags/v${version}";
hash = "sha256-Rq5pAVmxlWBVnph20fkAwbfy+iuBNlfFy14poDPd5h0=";
};
# On update, it can be useful to steal the changes from gentoo
# https://gitweb.gentoo.org/repo/gentoo.git/tree/sci-libs/tensorflow
nativeBuildInputs = [
which pythonEnv cython perl protobuf-core protobuf-extra
] ++ lib.optional cudaSupport addOpenGLRunpath;
buildInputs = [
jemalloc
mpi
glibcLocales
git
# libs taken from system through the TF_SYS_LIBS mechanism
abseil-cpp
boringssl
curl
double-conversion
flatbuffers-core
giflib
grpc
# Necessary to fix the "`GLIBCXX_3.4.30' not found" error
(icu.override { inherit stdenv; })
jsoncpp
libjpeg_turbo
libpng
(pybind11.overridePythonAttrs (_: { inherit stdenv; }))
snappy
sqlite
] ++ lib.optionals cudaSupport [
cudatoolkit
cudnn
] ++ lib.optionals mklSupport [
mkl
] ++ lib.optionals stdenv.isDarwin [
Foundation
Security
] ++ lib.optionals (!stdenv.isDarwin) [
nsync
];
# arbitrarily set to the current latest bazel version, overly careful
TF_IGNORE_MAX_BAZEL_VERSION = true;
LIBTOOL = lib.optionalString stdenv.isDarwin "${cctools}/bin/libtool";
# Take as many libraries from the system as possible. Keep in sync with
# list of valid syslibs in
# https://github.com/tensorflow/tensorflow/blob/master/third_party/systemlibs/syslibs_configure.bzl
TF_SYSTEM_LIBS = lib.concatStringsSep "," ([
"absl_py"
"astor_archive"
"astunparse_archive"
"boringssl"
"com_google_absl"
# Not packaged in nixpkgs
# "com_github_googleapis_googleapis"
# "com_github_googlecloudplatform_google_cloud_cpp"
"com_github_grpc_grpc"
"com_google_protobuf"
# Fails with the error: external/org_tensorflow/tensorflow/core/profiler/utils/tf_op_utils.cc:46:49: error: no matching function for call to 're2::RE2::FullMatch(absl::lts_2020_02_25::string_view&, re2::RE2&)'
# "com_googlesource_code_re2"
"curl"
"cython"
"dill_archive"
"double_conversion"
"flatbuffers"
"functools32_archive"
"gast_archive"
"gif"
"hwloc"
"icu"
"jsoncpp_git"
"libjpeg_turbo"
"nasm"
"opt_einsum_archive"
"org_sqlite"
"pasta"
"png"
"pybind11"
"six_archive"
"snappy"
"tblib_archive"
"termcolor_archive"
"typing_extensions_archive"
"wrapt"
"zlib"
] ++ lib.optionals (!stdenv.isDarwin) [
"nsync" # fails to build on darwin
]);
INCLUDEDIR = "${includes_joined}/include";
# This is needed for the Nix-provided protobuf dependency to work,
# as otherwise the rule `link_proto_files` tries to create the links
# to `/usr/include/...` which results in build failures.
PROTOBUF_INCLUDE_PATH = "${protobuf-core}/include";
PYTHON_BIN_PATH = pythonEnv.interpreter;
TF_NEED_GCP = true;
TF_NEED_HDFS = true;
TF_ENABLE_XLA = tfFeature xlaSupport;
CC_OPT_FLAGS = " ";
# https://github.com/tensorflow/tensorflow/issues/14454
TF_NEED_MPI = tfFeature cudaSupport;
TF_NEED_CUDA = tfFeature cudaSupport;
TF_CUDA_PATHS = lib.optionalString cudaSupport "${cudatoolkit_joined},${cudnn},${nccl}";
TF_CUDA_COMPUTE_CAPABILITIES = lib.concatStringsSep "," cudaCapabilities;
# Needed even when we override stdenv: e.g. for ar
GCC_HOST_COMPILER_PREFIX = lib.optionalString cudaSupport "${cudatoolkit_cc_joined}/bin";
GCC_HOST_COMPILER_PATH = lib.optionalString cudaSupport "${cudatoolkit_cc_joined}/bin/cc";
patches = [
"${gentoo-patches}/0002-systemlib-Latest-absl-LTS-has-split-cord-libs.patch"
"${gentoo-patches}/0005-systemlib-Updates-for-Abseil-20220623-LTS.patch"
"${gentoo-patches}/0007-systemlibs-Add-well_known_types_py_pb2-target.patch"
# https://github.com/conda-forge/tensorflow-feedstock/pull/329/commits/0a63c5a962451b4da99a9948323d8b3ed462f461
(fetchpatch {
name = "fix-layout-proto-duplicate-loading.patch";
url = "https://raw.githubusercontent.com/conda-forge/tensorflow-feedstock/0a63c5a962451b4da99a9948323d8b3ed462f461/recipe/patches/0001-Omit-linking-to-layout_proto_cc-if-protobuf-linkage-.patch";
hash = "sha256-/7buV6DinKnrgfqbe7KKSh9rCebeQdXv2Uj+Xg/083w=";
})
./com_google_absl_add_log.patch
./absl_py_argparse_flags.patch
./protobuf_python.patch
./pybind11_protobuf_python_runtime_dep.patch
./pybind11_protobuf_newer_version.patch
] ++ lib.optionals (stdenv.hostPlatform.system == "aarch64-darwin") [
./absl_to_std.patch
];
postPatch = ''
# bazel 3.3 should work just as well as bazel 3.1
rm -f .bazelversion
patchShebangs .
'' + lib.optionalString (stdenv.hostPlatform.system == "x86_64-darwin") ''
cat ${./com_google_absl_fix_macos.patch} >> third_party/absl/com_google_absl_fix_mac_and_nvcc_build.patch
'' + lib.optionalString (!withTensorboard) ''
# Tensorboard pulls in a bunch of dependencies, some of which may
# include security vulnerabilities. So we make it optional.
# https://github.com/tensorflow/tensorflow/issues/20280#issuecomment-400230560
sed -i '/tensorboard ~=/d' tensorflow/tools/pip_package/setup.py
'';
# https://github.com/tensorflow/tensorflow/pull/39470
env.NIX_CFLAGS_COMPILE = toString [ "-Wno-stringop-truncation" ];
preConfigure = let
opt_flags = []
++ lib.optionals sse42Support ["-msse4.2"]
++ lib.optionals avx2Support ["-mavx2"]
++ lib.optionals fmaSupport ["-mfma"];
in ''
patchShebangs configure
# dummy ldconfig
mkdir dummy-ldconfig
echo "#!${stdenv.shell}" > dummy-ldconfig/ldconfig
chmod +x dummy-ldconfig/ldconfig
export PATH="$PWD/dummy-ldconfig:$PATH"
export PYTHON_LIB_PATH="$NIX_BUILD_TOP/site-packages"
export CC_OPT_FLAGS="${lib.concatStringsSep " " opt_flags}"
mkdir -p "$PYTHON_LIB_PATH"
# To avoid mixing Python 2 and Python 3
unset PYTHONPATH
'';
configurePhase = ''
runHook preConfigure
./configure
runHook postConfigure
'';
hardeningDisable = [ "format" ];
bazelBuildFlags = [
"--config=opt" # optimize using the flags set in the configure phase
]
++ lib.optionals stdenv.cc.isClang [
"--cxxopt=-x" "--cxxopt=c++"
"--host_cxxopt=-x" "--host_cxxopt=c++"
# workaround for https://github.com/bazelbuild/bazel/issues/15359
"--spawn_strategy=sandboxed"
]
++ lib.optionals (mklSupport) [ "--config=mkl" ];
bazelTargets = [ "//tensorflow/tools/pip_package:build_pip_package //tensorflow/tools/lib_package:libtensorflow" ];
removeRulesCC = false;
# Without this Bazel complaints about sandbox violations.
dontAddBazelOpts = true;
fetchAttrs = {
sha256 = {
x86_64-linux = if cudaSupport
then "sha256-5VFMNHeLrUxW5RTr6EhT3pay9nWJ5JkZTGirDds5QkU="
else "sha256-KzgWV69Btr84FdwQ5JI2nQEsqiPg1/+TWdbw5bmxXOE=";
aarch64-linux = if cudaSupport
then "sha256-ty5+51BwHWE1xR4/0WcWTp608NzSAS/iiyN+9zx7/wI="
else "sha256-9btXrNHqd720oXTPDhSmFidv5iaZRLjCVX8opmrMjXk=";
x86_64-darwin = "sha256-gqb03kB0z2pZQ6m1fyRp1/Nbt8AVVHWpOJSeZNCLc4w=";
aarch64-darwin = "sha256-WdgAaFZU+ePwWkVBhLzjlNT7ELfGHOTaMdafcAMD5yo=";
}.${stdenv.hostPlatform.system} or (throw "unsupported system ${stdenv.hostPlatform.system}");
};
buildAttrs = {
outputs = [ "out" "python" ];
# need to rebuild schemas since we use a different flatbuffers version
preBuild = ''
(cd tensorflow/lite/schema;${flatbuffers-core}/bin/flatc --gen-object-api -c schema.fbs)
(cd tensorflow/lite/schema;${flatbuffers-core}/bin/flatc --gen-object-api -c conversion_metadata.fbs)
(cd tensorflow/lite/acceleration/configuration;${flatbuffers-core}/bin/flatc -o configuration.fbs --proto configuration.proto)
sed -i s,tflite.proto,tflite,g tensorflow/lite/acceleration/configuration/configuration.fbs/configuration.fbs
(cd tensorflow/lite/acceleration/configuration;${flatbuffers-core}/bin/flatc --gen-compare --gen-object-api -c configuration.fbs/configuration.fbs)
cp -r tensorflow/lite/acceleration/configuration/configuration.fbs tensorflow/lite/experimental/acceleration/configuration
(cd tensorflow/lite/experimental/acceleration/configuration;${flatbuffers-core}/bin/flatc -c configuration.fbs/configuration.fbs)
(cd tensorflow/lite/delegates/gpu/cl;${flatbuffers-core}/bin/flatc -c compiled_program_cache.fbs)
(cd tensorflow/lite/delegates/gpu/cl;${flatbuffers-core}/bin/flatc -I $NIX_BUILD_TOP/source -c serialization.fbs)
(cd tensorflow/lite/delegates/gpu/common;${flatbuffers-core}/bin/flatc -I $NIX_BUILD_TOP/source -c gpu_model.fbs)
(cd tensorflow/lite/delegates/gpu/common/task;${flatbuffers-core}/bin/flatc -c serialization_base.fbs)
patchShebangs .
'';
installPhase = ''
mkdir -p "$out"
tar -xf bazel-bin/tensorflow/tools/lib_package/libtensorflow.tar.gz -C "$out"
# Write pkgconfig file.
mkdir "$out/lib/pkgconfig"
cat > "$out/lib/pkgconfig/tensorflow.pc" << EOF
Name: TensorFlow
Version: ${version}
Description: Library for computation using data flow graphs for scalable machine learning
Requires:
Libs: -L$out/lib -ltensorflow
Cflags: -I$out/include/tensorflow
EOF
# build the source code, then copy it to $python (build_pip_package
# actually builds a symlink farm so we must dereference them).
bazel-bin/tensorflow/tools/pip_package/build_pip_package --src "$PWD/dist"
cp -Lr "$PWD/dist" "$python"
'';
postFixup = lib.optionalString cudaSupport ''
find $out -type f \( -name '*.so' -or -name '*.so.*' \) | while read lib; do
addOpenGLRunpath "$lib"
done
'';
requiredSystemFeatures = [
"big-parallel"
];
};
meta = with lib; {
badPlatforms = lib.optionals cudaSupport lib.platforms.darwin;
changelog = "https://github.com/tensorflow/tensorflow/releases/tag/v${version}";
description = "Computation using data flow graphs for scalable machine learning";
homepage = "http://tensorflow.org";
license = licenses.asl20;
maintainers = with maintainers; [ abbradar ];
platforms = with platforms; linux ++ darwin;
broken =
stdenv.isDarwin
|| !(xlaSupport -> cudaSupport)
|| !(cudaSupport -> builtins.hasAttr cudnnAttribute cudaPackages)
|| !(cudaSupport -> cudaPackages ? cudatoolkit);
} // lib.optionalAttrs stdenv.isDarwin {
timeout = 86400; # 24 hours
maxSilent = 14400; # 4h, double the default of 7200s
};
};
in buildPythonPackage {
inherit version pname;
disabled = pythonAtLeast "3.12";
src = bazel-build.python;
# Adjust dependency requirements:
# - Drop tensorflow-io dependency until we get it to build
# - Relax flatbuffers and gast version requirements
# - The purpose of python3Packages.libclang is not clear at the moment and we don't have it packaged yet
# - keras and tensorlow-io-gcs-filesystem will be considered as optional for now.
postPatch = ''
sed -i setup.py \
-e '/tensorflow-io-gcs-filesystem/,+1d' \
-e "s/'flatbuffers[^']*',/'flatbuffers',/" \
-e "s/'gast[^']*',/'gast',/" \
-e "/'libclang[^']*',/d" \
-e "/'keras[^']*')\?,/d" \
-e "/'tensorflow-io-gcs-filesystem[^']*',/d" \
-e "s/'protobuf[^']*',/'protobuf',/" \
'';
# Upstream has a pip hack that results in bin/tensorboard being in both tensorflow
# and the propagated input tensorboard, which causes environment collisions.
# Another possibility would be to have tensorboard only in the buildInputs
# https://github.com/tensorflow/tensorflow/blob/v1.7.1/tensorflow/tools/pip_package/setup.py#L79
postInstall = ''
rm $out/bin/tensorboard
'';
setupPyGlobalFlags = [ "--project_name ${pname}" ];
# tensorflow/tools/pip_package/setup.py
propagatedBuildInputs = [
absl-py
abseil-cpp
astunparse
flatbuffers-python
gast
google-pasta
grpcio
h5py
keras-preprocessing
numpy
opt-einsum
packaging
protobuf-python
six
tensorflow-estimator-bin
termcolor
typing-extensions
wrapt
] ++ lib.optionals withTensorboard [
tensorboard
];
nativeBuildInputs = lib.optionals cudaSupport [ addOpenGLRunpath ];
postFixup = lib.optionalString cudaSupport ''
find $out -type f \( -name '*.so' -or -name '*.so.*' \) | while read lib; do
addOpenGLRunpath "$lib"
patchelf --set-rpath "${cudatoolkit}/lib:${cudatoolkit.lib}/lib:${cudnn}/lib:${nccl}/lib:$(patchelf --print-rpath "$lib")" "$lib"
done
'';
# Actual tests are slow and impure.
# TODO try to run them anyway
# TODO better test (files in tensorflow/tools/ci_build/builds/*test)
# TEST_PACKAGES in tensorflow/tools/pip_package/setup.py
nativeCheckInputs = [
dill
portpicker
tblib
];
checkPhase = ''
${python.interpreter} <<EOF
# A simple "Hello world"
import tensorflow as tf
hello = tf.constant("Hello, world!")
tf.print(hello)
tf.random.set_seed(0)
width = 512
choice = 48
t_in = tf.Variable(tf.random.uniform(shape=[width]))
with tf.GradientTape() as tape:
t_out = tf.slice(tf.nn.softmax(t_in), [choice], [1])
diff = tape.gradient(t_out, t_in)
assert(0 < tf.reduce_min(tf.slice(diff, [choice], [1])))
assert(0 > tf.reduce_max(tf.slice(diff, [1], [choice - 1])))
EOF
'';
# Regression test for #77626 removed because not more `tensorflow.contrib`.
passthru = {
deps = bazel-build.deps;
libtensorflow = bazel-build.out;
};
inherit (bazel-build) meta;
}