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docker : add gpu image CI builds (#3103)
Enables the GPU enabled container images to be built and pushed alongside the CPU containers. Co-authored-by: canardleteer <eris.has.a.dad+github@gmail.com>
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15
.github/workflows/docker.yml
vendored
15
.github/workflows/docker.yml
vendored
@ -26,8 +26,15 @@ jobs:
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strategy:
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matrix:
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config:
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- { tag: "light", dockerfile: ".devops/main.Dockerfile" }
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- { tag: "full", dockerfile: ".devops/full.Dockerfile" }
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- { tag: "light", dockerfile: ".devops/main.Dockerfile", platforms: "linux/amd64,linux/arm64" }
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- { tag: "full", dockerfile: ".devops/full.Dockerfile", platforms: "linux/amd64,linux/arm64" }
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# NOTE(canardletter): The CUDA builds on arm64 are very slow, so I
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# have disabled them for now until the reason why
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# is understood.
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- { tag: "light-cuda", dockerfile: ".devops/main-cuda.Dockerfile", platforms: "linux/amd64" }
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- { tag: "full-cuda", dockerfile: ".devops/full-cuda.Dockerfile", platforms: "linux/amd64" }
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- { tag: "light-rocm", dockerfile: ".devops/main-rocm.Dockerfile", platforms: "linux/amd64,linux/arm64" }
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- { tag: "full-rocm", dockerfile: ".devops/full-rocm.Dockerfile", platforms: "linux/amd64,linux/arm64" }
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steps:
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- name: Check out the repo
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uses: actions/checkout@v3
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@ -51,7 +58,7 @@ jobs:
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with:
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context: .
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push: true
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platforms: linux/amd64,linux/arm64
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platforms: ${{ matrix.config.platforms }}
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tags: "ghcr.io/ggerganov/llama.cpp:${{ matrix.config.tag }}-${{ env.COMMIT_SHA }}"
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file: ${{ matrix.config.dockerfile }}
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@ -60,6 +67,6 @@ jobs:
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with:
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context: .
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push: ${{ github.event_name == 'push' }}
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platforms: linux/amd64,linux/arm64
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platforms: ${{ matrix.config.platforms }}
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tags: "ghcr.io/ggerganov/llama.cpp:${{ matrix.config.tag }}"
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file: ${{ matrix.config.dockerfile }}
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13
README.md
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README.md
@ -844,8 +844,17 @@ Place your desired model into the `~/llama.cpp/models/` directory and execute th
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#### Images
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We have two Docker images available for this project:
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1. `ghcr.io/ggerganov/llama.cpp:full`: This image includes both the main executable file and the tools to convert LLaMA models into ggml and convert into 4-bit quantization.
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2. `ghcr.io/ggerganov/llama.cpp:light`: This image only includes the main executable file.
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1. `ghcr.io/ggerganov/llama.cpp:full`: This image includes both the main executable file and the tools to convert LLaMA models into ggml and convert into 4-bit quantization. (platforms: `linux/amd64`, `linux/arm64`)
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2. `ghcr.io/ggerganov/llama.cpp:light`: This image only includes the main executable file. (platforms: `linux/amd64`, `linux/arm64`)
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Additionally, there the following images, similar to the above:
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- `ghcr.io/ggerganov/llama.cpp:full-cuda`: Same as `full` but compiled with CUDA support. (platforms: `linux/amd64`)
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- `ghcr.io/ggerganov/llama.cpp:light-cuda`: Same as `light` but compiled with CUDA support. (platforms: `linux/amd64`)
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- `ghcr.io/ggerganov/llama.cpp:full-rocm`: Same as `full` but compiled with ROCm support. (platforms: `linux/amd64`, `linux/arm64`)
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- `ghcr.io/ggerganov/llama.cpp:light-rocm`: Same as `light` but compiled with ROCm support. (platforms: `linux/amd64`, `linux/arm64`)
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The GPU enabled images are not currently tested by CI beyond being built. They are not built with any variation from the ones in the Dockerfiles defined in [.devops/](.devops/) and the Gitlab Action defined in [.github/workflows/docker.yml](.github/workflows/docker.yml). If you need different settings (for example, a different CUDA or ROCm library, you'll need to build the images locally for now).
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#### Usage
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