mirror of
				https://github.com/open-webui/open-webui
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			104 lines
		
	
	
		
			4.2 KiB
		
	
	
	
		
			Docker
		
	
	
	
	
	
			
		
		
	
	
			104 lines
		
	
	
		
			4.2 KiB
		
	
	
	
		
			Docker
		
	
	
	
	
	
| # syntax=docker/dockerfile:1
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| 
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| ######## WebUI frontend ########
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| FROM node:21-alpine3.19 as build
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| 
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| WORKDIR /app
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| 
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| #RUN apt-get update \ 
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| #    && apt-get install -y --no-install-recommends wget \ 
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| #    # cleanup
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| #    && rm -rf /var/lib/apt/lists/*
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| 
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| # wget embedding model weight from alpine (does not exist from slim-buster)
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| #RUN wget "https://chroma-onnx-models.s3.amazonaws.com/all-MiniLM-L6-v2/onnx.tar.gz" -O - | \
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| #    tar -xzf - -C /app
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| 
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| COPY package.json package-lock.json ./
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| RUN npm ci
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| 
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| COPY . .
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| RUN npm run build
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| 
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| ######## WebUI backend ########
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| FROM python:3.11-slim-bookworm as base
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| 
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| ## Basis ##
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| ENV ENV=prod \
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|     PORT=8080
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| 
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| ## Basis URL Config ##
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| ENV OLLAMA_BASE_URL="/ollama" \
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|     OPENAI_API_BASE_URL=""
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| 
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| ## API Key and Security Config ##
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| ENV OPENAI_API_KEY="" \
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|     WEBUI_SECRET_KEY="" \
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|     SCARF_NO_ANALYTICS=true \
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|     DO_NOT_TRACK=true
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| 
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| #### Preloaded models #########################################################
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| ## whisper TTS Settings ##
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| ENV WHISPER_MODEL="base" \
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|     WHISPER_MODEL_DIR="/app/backend/data/cache/whisper/models"
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| 
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| ## RAG Embedding Model Settings ##
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| # any sentence transformer model; models to use can be found at https://huggingface.co/models?library=sentence-transformers
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| # Leaderboard: https://huggingface.co/spaces/mteb/leaderboard 
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| # for better persormance and multilangauge support use "intfloat/multilingual-e5-large" (~2.5GB) or "intfloat/multilingual-e5-base" (~1.5GB)
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| # IMPORTANT: If you change the default model (all-MiniLM-L6-v2) and vice versa, you aren't able to use RAG Chat with your previous documents loaded in the WebUI! You need to re-embed them.
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| ENV RAG_EMBEDDING_MODEL="all-MiniLM-L6-v2" \
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|     RAG_EMBEDDING_MODEL_DIR="/app/backend/data/cache/embedding/models" \
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|     SENTENCE_TRANSFORMERS_HOME="/app/backend/data/cache/embedding/models" \
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|     # device type for whisper tts and embbeding models - "cpu" (default) or "mps" (apple silicon) - choosing this right can lead to better performance
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|     # Important:
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|     #  If you want to use CUDA you need to install the nvidia-container-toolkit (https://docs.nvidia.com/datacenter/cloud-native/container-toolkit/latest/install-guide.html) 
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|     #  you can set this to "cuda" but its recomended to use --build-arg CUDA_ENABLED=true flag when building the image
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|     RAG_EMBEDDING_MODEL_DEVICE_TYPE="cpu"
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| # device type for whisper tts and embbeding models - "cpu" (default), "cuda" (nvidia gpu and CUDA required) or "mps" (apple silicon) - choosing this right can lead to better performance
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| #### Preloaded models ##########################################################
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| 
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| WORKDIR /app/backend
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| # install python dependencies
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| COPY ./backend/requirements.txt ./requirements.txt
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| 
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| RUN pip3 install -r requirements.txt --no-cache-dir
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| 
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| RUN if [ "$RAG_EMBEDDING_MODEL_DEVICE_TYPE" = "cuda" ]; then \
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|         echo "CUDA enabled" && \
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|         pip3 install torch torchvision torchaudio --index-url https://download.pytorch.org/whl/cu117 --no-cache-dir; \
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|     else \
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|         pip3 install torch torchvision torchaudio --index-url https://download.pytorch.org/whl/cpu --no-cache-dir && \
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|         python -c "import os; from chromadb.utils import embedding_functions; sentence_transformer_ef = embedding_functions.SentenceTransformerEmbeddingFunction(model_name=os.environ['RAG_EMBEDDING_MODEL'], device=os.environ['RAG_EMBEDDING_MODEL_DEVICE_TYPE'])"; \
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|     fi
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| 
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| # preload tts model
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| RUN python -c "import os; from faster_whisper import WhisperModel; WhisperModel(os.environ['WHISPER_MODEL'], device='auto', compute_type='int8', download_root=os.environ['WHISPER_MODEL_DIR'])"
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| 
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| #  install required packages
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| RUN apt-get update \
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|     # Install pandoc and netcat
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|     && apt-get install -y --no-install-recommends pandoc netcat-openbsd \
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|     # for RAG OCR
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|     && apt-get install -y --no-install-recommends ffmpeg libsm6 libxext6 \
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|     # cleanup
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|     && rm -rf /var/lib/apt/lists/*
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| 
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| 
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| 
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| # copy embedding weight from build
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| # RUN mkdir -p /root/.cache/chroma/onnx_models/all-MiniLM-L6-v2
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| # COPY --from=build /app/onnx /root/.cache/chroma/onnx_models/all-MiniLM-L6-v2/onnx
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| 
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| # copy built frontend files
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| COPY --from=build /app/build /app/build
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| COPY --from=build /app/CHANGELOG.md /app/CHANGELOG.md
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| COPY --from=build /app/package.json /app/package.json
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| 
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| # copy backend files
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| COPY ./backend .
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| 
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| EXPOSE 8080
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| 
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| CMD [ "bash", "start.sh"]
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