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https://github.com/Mintplex-Labs/anything-llm.git
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0634013788
* Groq LLM support complete * update useGetProvidersModels for groq models * Add definiations update comments and error log reports add example envs --------- Co-authored-by: timothycarambat <rambat1010@gmail.com>
156 lines
5.1 KiB
Plaintext
156 lines
5.1 KiB
Plaintext
SERVER_PORT=3001
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JWT_SECRET="my-random-string-for-seeding" # Please generate random string at least 12 chars long.
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###########################################
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######## LLM API SElECTION ################
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###########################################
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# LLM_PROVIDER='openai'
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# OPEN_AI_KEY=
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# OPEN_MODEL_PREF='gpt-3.5-turbo'
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# LLM_PROVIDER='gemini'
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# GEMINI_API_KEY=
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# GEMINI_LLM_MODEL_PREF='gemini-pro'
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# LLM_PROVIDER='azure'
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# AZURE_OPENAI_ENDPOINT=
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# AZURE_OPENAI_KEY=
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# OPEN_MODEL_PREF='my-gpt35-deployment' # This is the "deployment" on Azure you want to use. Not the base model.
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# EMBEDDING_MODEL_PREF='embedder-model' # This is the "deployment" on Azure you want to use for embeddings. Not the base model. Valid base model is text-embedding-ada-002
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# LLM_PROVIDER='anthropic'
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# ANTHROPIC_API_KEY=sk-ant-xxxx
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# ANTHROPIC_MODEL_PREF='claude-2'
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# LLM_PROVIDER='lmstudio'
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# LMSTUDIO_BASE_PATH='http://your-server:1234/v1'
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# LMSTUDIO_MODEL_TOKEN_LIMIT=4096
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# LLM_PROVIDER='localai'
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# LOCAL_AI_BASE_PATH='http://localhost:8080/v1'
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# LOCAL_AI_MODEL_PREF='luna-ai-llama2'
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# LOCAL_AI_MODEL_TOKEN_LIMIT=4096
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# LOCAL_AI_API_KEY="sk-123abc"
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# LLM_PROVIDER='ollama'
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# OLLAMA_BASE_PATH='http://host.docker.internal:11434'
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# OLLAMA_MODEL_PREF='llama2'
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# OLLAMA_MODEL_TOKEN_LIMIT=4096
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# LLM_PROVIDER='togetherai'
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# TOGETHER_AI_API_KEY='my-together-ai-key'
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# TOGETHER_AI_MODEL_PREF='mistralai/Mixtral-8x7B-Instruct-v0.1'
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# LLM_PROVIDER='perplexity'
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# PERPLEXITY_API_KEY='my-perplexity-key'
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# PERPLEXITY_MODEL_PREF='codellama-34b-instruct'
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# LLM_PROVIDER='openrouter'
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# OPENROUTER_API_KEY='my-openrouter-key'
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# OPENROUTER_MODEL_PREF='openrouter/auto'
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# LLM_PROVIDER='mistral'
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# MISTRAL_API_KEY='example-mistral-ai-api-key'
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# MISTRAL_MODEL_PREF='mistral-tiny'
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# LLM_PROVIDER='huggingface'
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# HUGGING_FACE_LLM_ENDPOINT=https://uuid-here.us-east-1.aws.endpoints.huggingface.cloud
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# HUGGING_FACE_LLM_API_KEY=hf_xxxxxx
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# HUGGING_FACE_LLM_TOKEN_LIMIT=8000
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# LLM_PROVIDER='groq'
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# GROQ_API_KEY=gsk_abcxyz
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# GROQ_MODEL_PREF=llama2-70b-4096
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###########################################
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######## Embedding API SElECTION ##########
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###########################################
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# Only used if you are using an LLM that does not natively support embedding (openai or Azure)
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# EMBEDDING_ENGINE='openai'
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# OPEN_AI_KEY=sk-xxxx
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# EMBEDDING_MODEL_PREF='text-embedding-ada-002'
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# EMBEDDING_ENGINE='azure'
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# AZURE_OPENAI_ENDPOINT=
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# AZURE_OPENAI_KEY=
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# EMBEDDING_MODEL_PREF='my-embedder-model' # This is the "deployment" on Azure you want to use for embeddings. Not the base model. Valid base model is text-embedding-ada-002
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# EMBEDDING_ENGINE='localai'
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# EMBEDDING_BASE_PATH='http://localhost:8080/v1'
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# EMBEDDING_MODEL_PREF='text-embedding-ada-002'
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# EMBEDDING_MODEL_MAX_CHUNK_LENGTH=1000 # The max chunk size in chars a string to embed can be
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# EMBEDDING_ENGINE='ollama'
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# EMBEDDING_BASE_PATH='http://127.0.0.1:11434'
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# EMBEDDING_MODEL_PREF='nomic-embed-text:latest'
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# EMBEDDING_MODEL_MAX_CHUNK_LENGTH=8192
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###########################################
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######## Vector Database Selection ########
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###########################################
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# Enable all below if you are using vector database: Chroma.
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# VECTOR_DB="chroma"
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# CHROMA_ENDPOINT='http://localhost:8000'
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# CHROMA_API_HEADER="X-Api-Key"
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# CHROMA_API_KEY="sk-123abc"
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# Enable all below if you are using vector database: Pinecone.
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# VECTOR_DB="pinecone"
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# PINECONE_API_KEY=
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# PINECONE_INDEX=
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# Enable all below if you are using vector database: Astra DB.
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# VECTOR_DB="astra"
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# ASTRA_DB_APPLICATION_TOKEN=
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# ASTRA_DB_ENDPOINT=
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# Enable all below if you are using vector database: LanceDB.
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VECTOR_DB="lancedb"
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# Enable all below if you are using vector database: Weaviate.
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# VECTOR_DB="weaviate"
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# WEAVIATE_ENDPOINT="http://localhost:8080"
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# WEAVIATE_API_KEY=
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# Enable all below if you are using vector database: Qdrant.
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# VECTOR_DB="qdrant"
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# QDRANT_ENDPOINT="http://localhost:6333"
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# QDRANT_API_KEY=
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# Enable all below if you are using vector database: Milvus.
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# VECTOR_DB="milvus"
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# MILVUS_ADDRESS="http://localhost:19530"
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# MILVUS_USERNAME=
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# MILVUS_PASSWORD=
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# Enable all below if you are using vector database: Zilliz Cloud.
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# VECTOR_DB="zilliz"
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# ZILLIZ_ENDPOINT="https://sample.api.gcp-us-west1.zillizcloud.com"
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# ZILLIZ_API_TOKEN=api-token-here
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# CLOUD DEPLOYMENT VARIRABLES ONLY
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# AUTH_TOKEN="hunter2" # This is the password to your application if remote hosting.
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# STORAGE_DIR= # absolute filesystem path with no trailing slash
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###########################################
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######## PASSWORD COMPLEXITY ##############
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###########################################
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# Enforce a password schema for your organization users.
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# Documentation on how to use https://github.com/kamronbatman/joi-password-complexity
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#PASSWORDMINCHAR=8
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#PASSWORDMAXCHAR=250
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#PASSWORDLOWERCASE=1
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#PASSWORDUPPERCASE=1
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#PASSWORDNUMERIC=1
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#PASSWORDSYMBOL=1
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#PASSWORDREQUIREMENTS=4
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###########################################
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######## ENABLE HTTPS SERVER ##############
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###########################################
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# By enabling this and providing the path/filename for the key and cert,
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# the server will use HTTPS instead of HTTP.
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#ENABLE_HTTPS="true"
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#HTTPS_CERT_PATH="sslcert/cert.pem"
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#HTTPS_KEY_PATH="sslcert/key.pem"
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