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# The vLLM Dockerfile is used to construct vLLM image that can be directly used
# to run the OpenAI compatible server.

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# Please update any changes made here to
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# docs/contributing/dockerfile/dockerfile.md and
# docs/assets/contributing/dockerfile-stages-dependency.png
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ARG CUDA_VERSION=12.9.1
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ARG PYTHON_VERSION=3.12

# By parameterizing the base images, we allow third-party to use their own
# base images. One use case is hermetic builds with base images stored in
# private registries that use a different repository naming conventions.
#
# Example:
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# docker build --build-arg BUILD_BASE_IMAGE=registry.acme.org/mirror/nvidia/cuda:${CUDA_VERSION}-devel-ubuntu20.04

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# Important: We build with an old version of Ubuntu to maintain broad
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# compatibility with other Linux OSes. The main reason for this is that the
# glibc version is baked into the distro, and binaries built with one glibc
# version are not backwards compatible with OSes that use an earlier version.
ARG BUILD_BASE_IMAGE=nvidia/cuda:${CUDA_VERSION}-devel-ubuntu20.04
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# Using cuda base image with minimal dependencies necessary for JIT compilation (FlashInfer, DeepGEMM, EP kernels)
ARG FINAL_BASE_IMAGE=nvidia/cuda:${CUDA_VERSION}-base-ubuntu22.04
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# By parameterizing the Deadsnakes repository URL, we allow third-party to use
# their own mirror. When doing so, we don't benefit from the transparent
# installation of the GPG key of the PPA, as done by add-apt-repository, so we
# also need a URL for the GPG key.
ARG DEADSNAKES_MIRROR_URL
ARG DEADSNAKES_GPGKEY_URL

# The PyPA get-pip.py script is a self contained script+zip file, that provides
# both the installer script and the pip base85-encoded zip archive. This allows
# bootstrapping pip in environment where a dsitribution package does not exist.
#
# By parameterizing the URL for get-pip.py installation script, we allow
# third-party to use their own copy of the script stored in a private mirror.
# We set the default value to the PyPA owned get-pip.py script.
#
# Reference: https://pip.pypa.io/en/stable/installation/#get-pip-py
ARG GET_PIP_URL="https://bootstrap.pypa.io/get-pip.py"

# PIP supports fetching the packages from custom indexes, allowing third-party
# to host the packages in private mirrors. The PIP_INDEX_URL and
# PIP_EXTRA_INDEX_URL are standard PIP environment variables to override the
# default indexes. By letting them empty by default, PIP will use its default
# indexes if the build process doesn't override the indexes.
#
# Uv uses different variables. We set them by default to the same values as
# PIP, but they can be overridden.
ARG PIP_INDEX_URL
ARG PIP_EXTRA_INDEX_URL
ARG UV_INDEX_URL=${PIP_INDEX_URL}
ARG UV_EXTRA_INDEX_URL=${PIP_EXTRA_INDEX_URL}

# PyTorch provides its own indexes for standard and nightly builds
ARG PYTORCH_CUDA_INDEX_BASE_URL=https://download.pytorch.org/whl

# PIP supports multiple authentication schemes, including keyring
# By parameterizing the PIP_KEYRING_PROVIDER variable and setting it to
# disabled by default, we allow third-party to use keyring authentication for
# their private Python indexes, while not changing the default behavior which
# is no authentication.
#
# Reference: https://pip.pypa.io/en/stable/topics/authentication/#keyring-support
ARG PIP_KEYRING_PROVIDER=disabled
ARG UV_KEYRING_PROVIDER=${PIP_KEYRING_PROVIDER}

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# Flag enables built-in KV-connector dependency libs into docker images
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ARG INSTALL_KV_CONNECTORS=false

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#################### BASE BUILD IMAGE ####################
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# prepare basic build environment
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FROM ${BUILD_BASE_IMAGE} AS base
ARG CUDA_VERSION
ARG PYTHON_VERSION
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ARG TARGETPLATFORM
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ARG INSTALL_KV_CONNECTORS=false
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ENV DEBIAN_FRONTEND=noninteractive

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ARG GET_PIP_URL

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# Install system dependencies and uv, then create Python virtual environment
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RUN echo 'tzdata tzdata/Areas select America' | debconf-set-selections \
    && echo 'tzdata tzdata/Zones/America select Los_Angeles' | debconf-set-selections \
    && apt-get update -y \
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    && apt-get install -y ccache software-properties-common git curl sudo python3-pip libibverbs-dev \
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    && curl -LsSf https://astral.sh/uv/install.sh | sh \
    && $HOME/.local/bin/uv venv /opt/venv --python ${PYTHON_VERSION} \
    && rm -f /usr/bin/python3 /usr/bin/python3-config /usr/bin/pip \
    && ln -s /opt/venv/bin/python3 /usr/bin/python3 \
    && ln -s /opt/venv/bin/python3-config /usr/bin/python3-config \
    && ln -s /opt/venv/bin/pip /usr/bin/pip \
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    && python3 --version && python3 -m pip --version
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ARG PIP_INDEX_URL UV_INDEX_URL
ARG PIP_EXTRA_INDEX_URL UV_EXTRA_INDEX_URL
ARG PYTORCH_CUDA_INDEX_BASE_URL
ARG PIP_KEYRING_PROVIDER UV_KEYRING_PROVIDER

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# Activate virtual environment and add uv to PATH
ENV PATH="/opt/venv/bin:/root/.local/bin:$PATH"
ENV VIRTUAL_ENV="/opt/venv"
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# This timeout (in seconds) is necessary when installing some dependencies via uv since it's likely to time out
# Reference: https://github.com/astral-sh/uv/pull/1694
ENV UV_HTTP_TIMEOUT=500
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ENV UV_INDEX_STRATEGY="unsafe-best-match"
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# Use copy mode to avoid hardlink failures with Docker cache mounts
ENV UV_LINK_MODE=copy
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# Upgrade to GCC 10 to avoid https://gcc.gnu.org/bugzilla/show_bug.cgi?id=92519
# as it was causing spam when compiling the CUTLASS kernels
RUN apt-get install -y gcc-10 g++-10
RUN update-alternatives --install /usr/bin/gcc gcc /usr/bin/gcc-10 110 --slave /usr/bin/g++ g++ /usr/bin/g++-10
RUN <<EOF
gcc --version
EOF

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# Workaround for https://github.com/openai/triton/issues/2507 and
# https://github.com/pytorch/pytorch/issues/107960 -- hopefully
# this won't be needed for future versions of this docker image
# or future versions of triton.
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RUN ldconfig /usr/local/cuda-$(echo $CUDA_VERSION | cut -d. -f1,2)/compat/
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WORKDIR /workspace

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# install build and runtime dependencies
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COPY requirements/common.txt requirements/common.txt
COPY requirements/cuda.txt requirements/cuda.txt
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RUN --mount=type=cache,target=/root/.cache/uv \
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    uv pip install --python /opt/venv/bin/python3 -r requirements/cuda.txt \
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    --extra-index-url ${PYTORCH_CUDA_INDEX_BASE_URL}/cu$(echo $CUDA_VERSION | cut -d. -f1,2 | tr -d '.')
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# cuda arch list used by torch
# can be useful for both `dev` and `test`
# explicitly set the list to avoid issues with torch 2.2
# see https://github.com/pytorch/pytorch/pull/123243
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ARG torch_cuda_arch_list='7.0 7.5 8.0 8.9 9.0 10.0 12.0'
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ENV TORCH_CUDA_ARCH_LIST=${torch_cuda_arch_list}
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#################### BASE BUILD IMAGE ####################

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#################### WHEEL BUILD IMAGE ####################
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FROM base AS build
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ARG TARGETPLATFORM
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ARG PIP_INDEX_URL UV_INDEX_URL
ARG PIP_EXTRA_INDEX_URL UV_EXTRA_INDEX_URL
ARG PYTORCH_CUDA_INDEX_BASE_URL

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# install build dependencies
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COPY requirements/build.txt requirements/build.txt
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# This timeout (in seconds) is necessary when installing some dependencies via uv since it's likely to time out
# Reference: https://github.com/astral-sh/uv/pull/1694
ENV UV_HTTP_TIMEOUT=500
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ENV UV_INDEX_STRATEGY="unsafe-best-match"
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# Use copy mode to avoid hardlink failures with Docker cache mounts
ENV UV_LINK_MODE=copy
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RUN --mount=type=cache,target=/root/.cache/uv \
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    uv pip install --python /opt/venv/bin/python3 -r requirements/build.txt \
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    --extra-index-url ${PYTORCH_CUDA_INDEX_BASE_URL}/cu$(echo $CUDA_VERSION | cut -d. -f1,2 | tr -d '.')
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COPY . .
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ARG GIT_REPO_CHECK=0
RUN --mount=type=bind,source=.git,target=.git \
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    if [ "$GIT_REPO_CHECK" != "0" ]; then bash tools/check_repo.sh ; fi
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# max jobs used by Ninja to build extensions
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ARG max_jobs=2
ENV MAX_JOBS=${max_jobs}
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# number of threads used by nvcc
ARG nvcc_threads=8
ENV NVCC_THREADS=$nvcc_threads
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ARG USE_SCCACHE
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ARG SCCACHE_DOWNLOAD_URL=https://github.com/mozilla/sccache/releases/download/v0.8.1/sccache-v0.8.1-x86_64-unknown-linux-musl.tar.gz
ARG SCCACHE_ENDPOINT
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ARG SCCACHE_BUCKET_NAME=vllm-build-sccache
ARG SCCACHE_REGION_NAME=us-west-2
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ARG SCCACHE_S3_NO_CREDENTIALS=0
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# Flag to control whether to use pre-built vLLM wheels
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ARG VLLM_USE_PRECOMPILED=""
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ARG VLLM_MAIN_CUDA_VERSION=""
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# if USE_SCCACHE is set, use sccache to speed up compilation
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RUN --mount=type=cache,target=/root/.cache/uv \
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    --mount=type=bind,source=.git,target=.git \
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    if [ "$USE_SCCACHE" = "1" ]; then \
        echo "Installing sccache..." \
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        && curl -L -o sccache.tar.gz ${SCCACHE_DOWNLOAD_URL} \
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        && tar -xzf sccache.tar.gz \
        && sudo mv sccache-v0.8.1-x86_64-unknown-linux-musl/sccache /usr/bin/sccache \
        && rm -rf sccache.tar.gz sccache-v0.8.1-x86_64-unknown-linux-musl \
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        && if [ ! -z ${SCCACHE_ENDPOINT} ] ; then export SCCACHE_ENDPOINT=${SCCACHE_ENDPOINT} ; fi \
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        && export SCCACHE_BUCKET=${SCCACHE_BUCKET_NAME} \
        && export SCCACHE_REGION=${SCCACHE_REGION_NAME} \
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        && export SCCACHE_S3_NO_CREDENTIALS=${SCCACHE_S3_NO_CREDENTIALS} \
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        && export SCCACHE_IDLE_TIMEOUT=0 \
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        && export CMAKE_BUILD_TYPE=Release \
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        && export VLLM_USE_PRECOMPILED="${VLLM_USE_PRECOMPILED}" \
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        && export VLLM_MAIN_CUDA_VERSION="${VLLM_MAIN_CUDA_VERSION}" \
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        && export VLLM_DOCKER_BUILD_CONTEXT=1 \
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        && sccache --show-stats \
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        && python3 setup.py bdist_wheel --dist-dir=dist --py-limited-api=cp38 \
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        && sccache --show-stats; \
    fi

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ARG vllm_target_device="cuda"
ENV VLLM_TARGET_DEVICE=${vllm_target_device}
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ENV CCACHE_DIR=/root/.cache/ccache
RUN --mount=type=cache,target=/root/.cache/ccache \
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    --mount=type=cache,target=/root/.cache/uv \
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    --mount=type=bind,source=.git,target=.git  \
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    if [ "$USE_SCCACHE" != "1" ]; then \
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        # Clean any existing CMake artifacts
        rm -rf .deps && \
        mkdir -p .deps && \
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        export VLLM_USE_PRECOMPILED="${VLLM_USE_PRECOMPILED}" && \
        export VLLM_DOCKER_BUILD_CONTEXT=1 && \
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        python3 setup.py bdist_wheel --dist-dir=dist --py-limited-api=cp38; \
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    fi
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# Install DeepGEMM from source
ARG DEEPGEMM_GIT_REF
COPY tools/install_deepgemm.sh /tmp/install_deepgemm.sh
RUN --mount=type=cache,target=/root/.cache/uv \
    VLLM_DOCKER_BUILD_CONTEXT=1 TORCH_CUDA_ARCH_LIST="9.0a 10.0a" /tmp/install_deepgemm.sh --cuda-version "${CUDA_VERSION}" ${DEEPGEMM_GIT_REF:+--ref "$DEEPGEMM_GIT_REF"} --wheel-dir /tmp/deepgemm/dist

# Ensure the wheel dir exists so later-stage COPY won't fail when DeepGEMM is skipped
RUN mkdir -p /tmp/deepgemm/dist && touch /tmp/deepgemm/dist/.deepgemm_skipped

COPY tools/ep_kernels/install_python_libraries.sh /tmp/install_python_libraries.sh
# Install EP kernels(pplx-kernels and DeepEP)
RUN --mount=type=cache,target=/root/.cache/uv \
    export TORCH_CUDA_ARCH_LIST='9.0a 10.0a' && \
    /tmp/install_python_libraries.sh /tmp/ep_kernels_workspace wheel && \
    find /tmp/ep_kernels_workspace/nvshmem -name '*.a' -delete

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# Check the size of the wheel if RUN_WHEEL_CHECK is true
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COPY .buildkite/check-wheel-size.py check-wheel-size.py
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# sync the default value with .buildkite/check-wheel-size.py
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ARG VLLM_MAX_SIZE_MB=500
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ENV VLLM_MAX_SIZE_MB=$VLLM_MAX_SIZE_MB
ARG RUN_WHEEL_CHECK=true
RUN if [ "$RUN_WHEEL_CHECK" = "true" ]; then \
        python3 check-wheel-size.py dist; \
    else \
        echo "Skipping wheel size check."; \
    fi
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#################### EXTENSION Build IMAGE ####################
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#################### DEV IMAGE ####################
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FROM base AS dev
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ARG PIP_INDEX_URL UV_INDEX_URL
ARG PIP_EXTRA_INDEX_URL UV_EXTRA_INDEX_URL
ARG PYTORCH_CUDA_INDEX_BASE_URL

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# This timeout (in seconds) is necessary when installing some dependencies via uv since it's likely to time out
# Reference: https://github.com/astral-sh/uv/pull/1694
ENV UV_HTTP_TIMEOUT=500
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ENV UV_INDEX_STRATEGY="unsafe-best-match"
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# Use copy mode to avoid hardlink failures with Docker cache mounts
ENV UV_LINK_MODE=copy
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# Install libnuma-dev, required by fastsafetensors (fixes #20384)
RUN apt-get update && apt-get install -y libnuma-dev && rm -rf /var/lib/apt/lists/*
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COPY requirements/lint.txt requirements/lint.txt
COPY requirements/test.txt requirements/test.txt
COPY requirements/dev.txt requirements/dev.txt
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RUN --mount=type=cache,target=/root/.cache/uv \
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    uv pip install --python /opt/venv/bin/python3 -r requirements/dev.txt \
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    --extra-index-url ${PYTORCH_CUDA_INDEX_BASE_URL}/cu$(echo $CUDA_VERSION | cut -d. -f1,2 | tr -d '.')
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#################### DEV IMAGE ####################
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#################### vLLM installation IMAGE ####################
# image with vLLM installed
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FROM ${FINAL_BASE_IMAGE} AS vllm-base
ARG CUDA_VERSION
ARG PYTHON_VERSION
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ARG INSTALL_KV_CONNECTORS=false
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WORKDIR /vllm-workspace
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ENV DEBIAN_FRONTEND=noninteractive
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ARG TARGETPLATFORM

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# TODO (huydhn): There is no prebuilt gdrcopy package on 12.9 at the moment
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ARG GDRCOPY_CUDA_VERSION=12.8
# Keep in line with FINAL_BASE_IMAGE
ARG GDRCOPY_OS_VERSION=Ubuntu22_04

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SHELL ["/bin/bash", "-c"]

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ARG DEADSNAKES_MIRROR_URL
ARG DEADSNAKES_GPGKEY_URL
ARG GET_PIP_URL

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RUN PYTHON_VERSION_STR=$(echo ${PYTHON_VERSION} | sed 's/\.//g') && \
    echo "export PYTHON_VERSION_STR=${PYTHON_VERSION_STR}" >> /etc/environment
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# Install Python and other dependencies
RUN echo 'tzdata tzdata/Areas select America' | debconf-set-selections \
    && echo 'tzdata tzdata/Zones/America select Los_Angeles' | debconf-set-selections \
    && apt-get update -y \
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    && apt-get install -y software-properties-common curl sudo python3-pip \
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    && apt-get install -y ffmpeg libsm6 libxext6 libgl1 \
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    && if [ ! -z ${DEADSNAKES_MIRROR_URL} ] ; then \
        if [ ! -z "${DEADSNAKES_GPGKEY_URL}" ] ; then \
            mkdir -p -m 0755 /etc/apt/keyrings ; \
            curl -L ${DEADSNAKES_GPGKEY_URL} | gpg --dearmor > /etc/apt/keyrings/deadsnakes.gpg ; \
            sudo chmod 644 /etc/apt/keyrings/deadsnakes.gpg ; \
            echo "deb [signed-by=/etc/apt/keyrings/deadsnakes.gpg] ${DEADSNAKES_MIRROR_URL} $(lsb_release -cs) main" > /etc/apt/sources.list.d/deadsnakes.list ; \
        fi ; \
    else \
        for i in 1 2 3; do \
            add-apt-repository -y ppa:deadsnakes/ppa && break || \
            { echo "Attempt $i failed, retrying in 5s..."; sleep 5; }; \
        done ; \
    fi \
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    && apt-get update -y \
    && apt-get install -y python${PYTHON_VERSION} python${PYTHON_VERSION}-dev python${PYTHON_VERSION}-venv libibverbs-dev \
    && update-alternatives --install /usr/bin/python3 python3 /usr/bin/python${PYTHON_VERSION} 1 \
    && update-alternatives --set python3 /usr/bin/python${PYTHON_VERSION} \
    && ln -sf /usr/bin/python${PYTHON_VERSION}-config /usr/bin/python3-config \
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    && curl -sS ${GET_PIP_URL} | python${PYTHON_VERSION} \
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    && python3 --version && python3 -m pip --version
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# Install CUDA development tools and build essentials for runtime JIT compilation
# (FlashInfer, DeepGEMM, EP kernels all require compilation at runtime)
RUN CUDA_VERSION_DASH=$(echo $CUDA_VERSION | cut -d. -f1,2 | tr '.' '-') && \
    apt-get update -y && \
    apt-get install -y --no-install-recommends \
    cuda-nvcc-${CUDA_VERSION_DASH} \
    cuda-cudart-${CUDA_VERSION_DASH} \
    cuda-nvrtc-${CUDA_VERSION_DASH} \
    cuda-cuobjdump-${CUDA_VERSION_DASH} \
    libcublas-${CUDA_VERSION_DASH} && \
    rm -rf /var/lib/apt/lists/*

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ARG PIP_INDEX_URL UV_INDEX_URL
ARG PIP_EXTRA_INDEX_URL UV_EXTRA_INDEX_URL
ARG PYTORCH_CUDA_INDEX_BASE_URL
ARG PIP_KEYRING_PROVIDER UV_KEYRING_PROVIDER

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# Install uv for faster pip installs
RUN --mount=type=cache,target=/root/.cache/uv \
    python3 -m pip install uv
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# This timeout (in seconds) is necessary when installing some dependencies via uv since it's likely to time out
# Reference: https://github.com/astral-sh/uv/pull/1694
ENV UV_HTTP_TIMEOUT=500
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ENV UV_INDEX_STRATEGY="unsafe-best-match"
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# Use copy mode to avoid hardlink failures with Docker cache mounts
ENV UV_LINK_MODE=copy
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# Workaround for https://github.com/openai/triton/issues/2507 and
# https://github.com/pytorch/pytorch/issues/107960 -- hopefully
# this won't be needed for future versions of this docker image
# or future versions of triton.
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RUN ldconfig /usr/local/cuda-$(echo $CUDA_VERSION | cut -d. -f1,2)/compat/
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# Install vllm wheel first, so that torch etc will be installed.
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RUN --mount=type=bind,from=build,src=/workspace/dist,target=/vllm-workspace/dist \
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    --mount=type=cache,target=/root/.cache/uv \
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    uv pip install --system dist/*.whl --verbose \
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        --extra-index-url ${PYTORCH_CUDA_INDEX_BASE_URL}/cu$(echo $CUDA_VERSION | cut -d. -f1,2 | tr -d '.')
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# Install FlashInfer pre-compiled kernel cache and binaries
# https://docs.flashinfer.ai/installation.html
RUN --mount=type=cache,target=/root/.cache/uv \
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    uv pip install --system flashinfer-cubin==0.5.2 \
    && uv pip install --system flashinfer-jit-cache==0.5.2 \
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        --extra-index-url https://flashinfer.ai/whl/cu$(echo $CUDA_VERSION | cut -d. -f1,2 | tr -d '.') \
    && flashinfer show-config

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COPY examples examples
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COPY benchmarks benchmarks
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COPY ./vllm/collect_env.py .
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RUN --mount=type=cache,target=/root/.cache/uv \
. /etc/environment && \
uv pip list

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# Install deepgemm wheel that has been built in the `build` stage
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RUN --mount=type=cache,target=/root/.cache/uv \
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    --mount=type=bind,from=build,source=/tmp/deepgemm/dist,target=/tmp/deepgemm/dist,ro \
    sh -c 'if ls /tmp/deepgemm/dist/*.whl >/dev/null 2>&1; then \
              uv pip install --system /tmp/deepgemm/dist/*.whl; \
           else \
              echo "No DeepGEMM wheels to install; skipping."; \
           fi'

# Pytorch now installs NVSHMEM, setting LD_LIBRARY_PATH (https://github.com/pytorch/pytorch/blob/d38164a545b4a4e4e0cf73ce67173f70574890b6/.ci/manywheel/build_cuda.sh#L141C14-L141C36)
ENV LD_LIBRARY_PATH=/usr/local/cuda/lib64:$LD_LIBRARY_PATH

# Install EP kernels wheels (pplx-kernels and DeepEP) that have been built in the `build` stage
RUN --mount=type=bind,from=build,src=/tmp/ep_kernels_workspace/dist,target=/vllm-workspace/ep_kernels/dist \
    --mount=type=cache,target=/root/.cache/uv \
    uv pip install --system ep_kernels/dist/*.whl --verbose \
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        --extra-index-url ${PYTORCH_CUDA_INDEX_BASE_URL}/cu$(echo $CUDA_VERSION | cut -d. -f1,2 | tr -d '.')
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RUN --mount=type=bind,source=tools/install_gdrcopy.sh,target=/tmp/install_gdrcopy.sh,ro \
    set -eux; \
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    case "${TARGETPLATFORM}" in \
      linux/arm64) UUARCH="aarch64" ;; \
      linux/amd64) UUARCH="x64" ;; \
      *) echo "Unsupported TARGETPLATFORM: ${TARGETPLATFORM}" >&2; exit 1 ;; \
    esac; \
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    /tmp/install_gdrcopy.sh "${GDRCOPY_OS_VERSION}" "${GDRCOPY_CUDA_VERSION}" "${UUARCH}"
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# CUDA image changed from /usr/local/nvidia to /usr/local/cuda in 12.8 but will
# return to /usr/local/nvidia in 13.0 to allow container providers to mount drivers
# consistently from the host (see https://github.com/vllm-project/vllm/issues/18859).
# Until then, add /usr/local/nvidia/lib64 before the image cuda path to allow override.
ENV LD_LIBRARY_PATH=/usr/local/nvidia/lib64:${LD_LIBRARY_PATH}

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#################### vLLM installation IMAGE ####################
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#################### TEST IMAGE ####################
# image to run unit testing suite
# note that this uses vllm installed by `pip`
FROM vllm-base AS test
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ADD . /vllm-workspace/
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ARG PYTHON_VERSION

ARG PIP_INDEX_URL UV_INDEX_URL
ARG PIP_EXTRA_INDEX_URL UV_EXTRA_INDEX_URL
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ARG PYTORCH_CUDA_INDEX_BASE_URL
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# This timeout (in seconds) is necessary when installing some dependencies via uv since it's likely to time out
# Reference: https://github.com/astral-sh/uv/pull/1694
ENV UV_HTTP_TIMEOUT=500
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ENV UV_INDEX_STRATEGY="unsafe-best-match"
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# Use copy mode to avoid hardlink failures with Docker cache mounts
ENV UV_LINK_MODE=copy
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RUN echo 'tzdata tzdata/Areas select America' | debconf-set-selections \
    && echo 'tzdata tzdata/Zones/America select Los_Angeles' | debconf-set-selections \
    && apt-get update -y \
    && apt-get install -y git

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# install development dependencies (for testing)
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RUN --mount=type=cache,target=/root/.cache/uv \
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    CUDA_MAJOR="${CUDA_VERSION%%.*}"; \
    if [ "$CUDA_MAJOR" -ge 12 ]; then \
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        uv pip install --system -r requirements/dev.txt \
        --extra-index-url ${PYTORCH_CUDA_INDEX_BASE_URL}/cu$(echo $CUDA_VERSION | cut -d. -f1,2 | tr -d '.'); \
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    fi
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# install development dependencies (for testing)
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RUN --mount=type=cache,target=/root/.cache/uv \
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    uv pip install --system -e tests/vllm_test_utils
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# enable fast downloads from hf (for testing)
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RUN --mount=type=cache,target=/root/.cache/uv \
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    uv pip install --system hf_transfer
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ENV HF_HUB_ENABLE_HF_TRANSFER 1

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# Copy in the v1 package for testing (it isn't distributed yet)
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COPY vllm/v1 /usr/local/lib/python${PYTHON_VERSION}/dist-packages/vllm/v1
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# Source code is used in the `python_only_compile.sh` test
# We hide it inside `src/` so that this source code
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# will not be imported by other tests
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RUN mkdir src
RUN mv vllm src/vllm
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#################### TEST IMAGE ####################
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#################### OPENAI API SERVER ####################
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# base openai image with additional requirements, for any subsequent openai-style images
FROM vllm-base AS vllm-openai-base
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ARG TARGETPLATFORM
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ARG INSTALL_KV_CONNECTORS=false
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ARG PIP_INDEX_URL UV_INDEX_URL
ARG PIP_EXTRA_INDEX_URL UV_EXTRA_INDEX_URL

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# This timeout (in seconds) is necessary when installing some dependencies via uv since it's likely to time out
# Reference: https://github.com/astral-sh/uv/pull/1694
ENV UV_HTTP_TIMEOUT=500

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# install additional dependencies for openai api server
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RUN --mount=type=cache,target=/root/.cache/uv \
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    --mount=type=bind,source=requirements/kv_connectors.txt,target=/tmp/kv_connectors.txt,ro \
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    if [ "$INSTALL_KV_CONNECTORS" = "true" ]; then \
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        uv pip install --system -r /tmp/kv_connectors.txt; \
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    fi; \
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    if [ "$TARGETPLATFORM" = "linux/arm64" ]; then \
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        BITSANDBYTES_VERSION="0.42.0"; \
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    else \
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        BITSANDBYTES_VERSION="0.46.1"; \
    fi; \
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    uv pip install --system accelerate hf_transfer modelscope "bitsandbytes>=${BITSANDBYTES_VERSION}" 'timm>=1.0.17' 'runai-model-streamer[s3,gcs]>=0.15.0'
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ENV VLLM_USAGE_SOURCE production-docker-image

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# define sagemaker first, so it is not default from `docker build`
FROM vllm-openai-base AS vllm-sagemaker

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COPY examples/online_serving/sagemaker-entrypoint.sh .
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RUN chmod +x sagemaker-entrypoint.sh
ENTRYPOINT ["./sagemaker-entrypoint.sh"]

FROM vllm-openai-base AS vllm-openai

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ENTRYPOINT ["vllm", "serve"]
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#################### OPENAI API SERVER ####################