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	cuda support
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							|  | @ -37,7 +37,7 @@ ENV OPENAI_API_KEY="" \ | |||
|     SCARF_NO_ANALYTICS=true \ | ||||
|     DO_NOT_TRACK=true | ||||
| 
 | ||||
| #### Preloaded models ########################################################## | ||||
| #### Preloaded models ######################################################### | ||||
| ## whisper TTS Settings ## | ||||
| ENV WHISPER_MODEL="base" \ | ||||
|     WHISPER_MODEL_DIR="/app/backend/data/cache/whisper/models" | ||||
|  | @ -48,19 +48,32 @@ ENV WHISPER_MODEL="base" \ | |||
| # for better persormance and multilangauge support use "intfloat/multilingual-e5-large" (~2.5GB) or "intfloat/multilingual-e5-base" (~1.5GB) | ||||
| # 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. | ||||
| ENV RAG_EMBEDDING_MODEL="all-MiniLM-L6-v2" \ | ||||
|     # 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 | ||||
|     RAG_EMBEDDING_MODEL_DEVICE_TYPE="cpu" \ | ||||
|     RAG_EMBEDDING_MODEL_DIR="/app/backend/data/cache/embedding/models" \ | ||||
|     SENTENCE_TRANSFORMERS_HOME="/app/backend/data/cache/embedding/models" | ||||
|     SENTENCE_TRANSFORMERS_HOME="/app/backend/data/cache/embedding/models" \ | ||||
|     # device type for whisper tts and embbeding models - "cpu" (default) or "mps" (apple silicon) - choosing this right can lead to better performance | ||||
|     # Important: | ||||
|     #  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)  | ||||
|     #  you can set this to "cuda" but its recomended to use --build-arg CUDA_ENABLED=true flag when building the image | ||||
|     RAG_EMBEDDING_MODEL_DEVICE_TYPE="cuda" | ||||
| # 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 | ||||
| #### Preloaded models ########################################################## | ||||
| 
 | ||||
| WORKDIR /app/backend | ||||
| 
 | ||||
| # install python dependencies | ||||
| COPY ./backend/requirements.txt ./requirements.txt | ||||
| 
 | ||||
| RUN pip3 install torch torchvision torchaudio --index-url https://download.pytorch.org/whl/cpu --no-cache-dir \ | ||||
|     && pip3 install -r requirements.txt --no-cache-dir | ||||
| RUN pip3 install -r requirements.txt --no-cache-dir | ||||
| 
 | ||||
| RUN if [ "$RAG_EMBEDDING_MODEL_DEVICE_TYPE" = "cuda" ]; then \ | ||||
|         echo "CUDA enabled" && \ | ||||
|         pip3 install torch torchvision torchaudio --index-url https://download.pytorch.org/whl/cu117 --no-cache-dir; \ | ||||
|     else \ | ||||
|         pip3 install torch torchvision torchaudio --index-url https://download.pytorch.org/whl/cpu --no-cache-dir && \ | ||||
|         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'])"; \ | ||||
|     fi | ||||
| 
 | ||||
| # preload tts model | ||||
| 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'])" | ||||
| 
 | ||||
| #  install required packages | ||||
| RUN apt-get update \ | ||||
|  | @ -71,10 +84,7 @@ RUN apt-get update \ | |||
|     # cleanup | ||||
|     && rm -rf /var/lib/apt/lists/* | ||||
| 
 | ||||
| # preload embedding model | ||||
| RUN 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'])" | ||||
| # preload tts model | ||||
| 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'])" | ||||
| 
 | ||||
| 
 | ||||
| # copy embedding weight from build | ||||
| # RUN mkdir -p /root/.cache/chroma/onnx_models/all-MiniLM-L6-v2 | ||||
|  |  | |||
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	 Jannik Streidl
						Jannik Streidl