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| # Builds GPU docker image of PyTorch specifically | |
| # Uses multi-staged approach to reduce size | |
| # Stage 1 | |
| # Use base conda image to reduce time | |
| FROM continuumio/miniconda3:latest AS compile-image | |
| # Specify py version | |
| ENV PYTHON_VERSION=3.9 | |
| # Install apt libs | |
| RUN apt-get update && \ | |
| apt-get install -y curl git wget && \ | |
| apt-get clean && \ | |
| rm -rf /var/lib/apt/lists* | |
| # Create our conda env | |
| RUN conda create --name accelerate python=${PYTHON_VERSION} ipython jupyter pip | |
| # We don't install pytorch here yet since CUDA isn't available | |
| # instead we use the direct torch wheel | |
| ENV PATH /opt/conda/envs/accelerate/bin:$PATH | |
| # Activate our bash shell | |
| RUN chsh -s /bin/bash | |
| SHELL ["/bin/bash", "-c"] | |
| # Activate the conda env, install mpy4pi, and install torch + accelerate | |
| RUN source activate accelerate && conda install -c conda-forge mpi4py | |
| RUN source activate accelerate && \ | |
| python3 -m pip install --no-cache-dir \ | |
| git+https://github.com/huggingface/accelerate#egg=accelerate[testing,test_trackers] \ | |
| --extra-index-url https://download.pytorch.org/whl/cu126 | |
| RUN python3 -m pip install --no-cache-dir bitsandbytes | |
| # Stage 2 | |
| FROM nvidia/cuda:12.6.3-cudnn-devel-ubuntu22.04 AS build-image | |
| COPY --from=compile-image /opt/conda /opt/conda | |
| ENV PATH /opt/conda/bin:$PATH | |
| # Install apt libs | |
| RUN apt-get update && \ | |
| apt-get install -y curl git wget && \ | |
| apt-get clean && \ | |
| rm -rf /var/lib/apt/lists* | |
| RUN echo "source activate accelerate" >> ~/.profile | |
| # Activate the virtualenv | |
| CMD ["/bin/bash"] |