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.github/bot_config.yml
**1. Installing **TensorFlow-GPU** (TF) prebuilt binaries** Make sure you are using compatible TF and CUDA versions. Please refer following TF version and CUDA version compatibility table. | TF | CUDA | | :-------------: | :-------------: | | 2.5.0 | 11.2 | | 2.4.0 | 11.0 | | 2.1.0 - 2.3.0 | 10.1 |
Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Mon Jun 30 16:38:59 GMT 2025 - 4K bytes - Click Count (1) -
WORKSPACE
load( "@rules_ml_toolchain//third_party/gpus/cuda/hermetic:cuda_json_init_repository.bzl", "cuda_json_init_repository", ) cuda_json_init_repository() load( "@cuda_redist_json//:distributions.bzl", "CUDA_REDISTRIBUTIONS", "CUDNN_REDISTRIBUTIONS", ) load( "@rules_ml_toolchain//third_party/gpus/cuda/hermetic:cuda_redist_init_repositories.bzl",Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Fri Dec 26 23:20:26 GMT 2025 - 5.1K bytes - Click Count (0) -
ci/official/utilities/code_check_full.bats
done < $BATS_TEST_TMPDIR/missing_deps exit 1 fi } # The Python package is not allowed to depend on any CUDA packages. @test "Pip package doesn't depend on CUDA" { bazel cquery \ --experimental_cc_shared_library \ --@local_config_cuda//:enable_cuda \ --@local_config_cuda//cuda:include_cuda_libs=false \
Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Fri Dec 19 18:47:57 GMT 2025 - 13.5K bytes - Click Count (0) -
ci/official/containers/ml_build/setup.sources.cudnn.sh
export DEBIAN_FRONTEND=noninteractive # Fetch the NVIDIA key. apt-key adv --fetch-keys https://developer.download.nvidia.com/compute/cuda/repos/ubuntu2204/x86_64/3bf863cc.pub; # Set up sources for NVIDIA CUDNN. cat >/etc/apt/sources.list.d/nvidia.list <<SOURCES # NVIDIA deb https://developer.download.nvidia.com/compute/cuda/repos/ubuntu2204/x86_64/ /
Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Tue Feb 18 20:42:21 GMT 2025 - 1.2K bytes - Click Count (0) -
CONTRIBUTING.md
flag. ```bash export flags="--config=linux --config=cuda -k" ``` * For TensorFlow versions prior v.2.18.0: Add CUDA paths to LD_LIBRARY_PATH and add the `cuda` option flag. ```bash export LD_LIBRARY_PATH="${LD_LIBRARY_PATH}:/usr/local/cuda/lib64:/usr/local/cuda/extras/CUPTI/lib64:$LD_LIBRARY_PATH"Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Sat Jan 11 04:47:59 GMT 2025 - 15.9K bytes - Click Count (0) -
tensorflow/BUILD
# Config setting that is satisfied when TensorFlow is being built with CUDA # support through e.g. `--config=cuda` (or `--config=cuda_clang` in OSS). alias( name = "is_cuda_enabled", actual = if_oss( "@local_config_cuda//:is_cuda_enabled", "@local_config_cuda//cuda:using_config_cuda", ), ) # Config setting that is satisfied when CUDA device code should be compiledCreated: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Wed Nov 12 19:21:56 GMT 2025 - 53.1K bytes - Click Count (0) -
ci/official/utilities/rename_and_verify_wheels.sh
"$python" -m pip install numpy==1.26.4 else "$python" -m pip install numpy==1.26.0 fi fi if [[ "$TFCI_BAZEL_COMMON_ARGS" =~ gpu|cuda ]]; then echo "Checking to make sure tensorflow[and-cuda] is installable..." "$python" -m pip install "$(echo *.whl)[and-cuda]" $TFCI_PYTHON_VERIFY_PIP_INSTALL_ARGS else "$python" -m pip install *.whl $TFCI_PYTHON_VERIFY_PIP_INSTALL_ARGS fiCreated: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Mon Sep 22 21:39:32 GMT 2025 - 4.4K bytes - Click Count (0) -
ci/official/containers/ml_build/README.md
WIP ML Build Docker container for ML repositories (Tensorflow, JAX and XLA). This container branches off from /tensorflow/tools/tf_sig_build_dockerfiles/. However, since hermetic CUDA and hermetic Python is now available for Tensorflow, a lot of the requirements installed on the original container can be removed to reduce the footprint of the container and make it more reusable across different ML
Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Tue Sep 24 20:45:58 GMT 2024 - 416 bytes - Click Count (0) -
.github/ISSUE_TEMPLATE/tensorflow_issue_template.yaml
description: If compiling from source - type: input id: Compiler attributes: label: GCC/compiler version description: If compiling from source - type: input id: Cuda attributes: label: CUDA/cuDNN version - type: input id: Gpu attributes: label: GPU model and memory description: If compiling from source - type: textarea id: what-happenedCreated: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Wed Jun 28 18:25:42 GMT 2023 - 3.7K bytes - Click Count (0) -
ci/official/containers/ml_build/Dockerfile
RUN ln -sf /usr/bin/python3.12 /usr/bin/python RUN ln -sf /usr/lib/python3.12 /usr/lib/tf_python # Link the compat driver to the location if available. RUN if [ -e "/usr/local/cuda/compat/libcuda.so.1" ]; then ln -s /usr/local/cuda/compat/libcuda.so.1 /usr/lib/x86_64-linux-gnu/libcuda.so.1; fi # Install various tools. # - bats: bash unit testing framework # - bazelisk: always use the correct bazel version
Created: Tue Dec 30 12:39:10 GMT 2025 - Last Modified: Thu Dec 18 21:55:23 GMT 2025 - 4.5K bytes - Click Count (0)