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| import os | |
| from dotenv import load_dotenv | |
| from langchain_google_genai import GoogleGenerativeAI | |
| from langchain.chains import RetrievalQA | |
| # from langchain.vectorstores import FAISS | |
| from langchain_community.vectorstores import FAISS | |
| from langchain.prompts import PromptTemplate | |
| load_dotenv() # take environment variables from .env (especially openai api key) | |
| # Create Google Palm LLM model | |
| model_name = "models/text-bison-001" | |
| llm = GoogleGenerativeAI(google_api_key=os.environ["GOOGLE_PALM_API"], model=model_name) | |
| vectordb_file_path = "faiss_index_V2" | |
| def get_qa_chain(embeddings): | |
| # Load the vector database from the local folder | |
| vectordb = FAISS.load_local(vectordb_file_path, embeddings,allow_dangerous_deserialization=True) | |
| # Create a retriever for querying the vector database | |
| retriever = vectordb.as_retriever(score_threshold=0.7) | |
| prompt_template = """Given the following context and a question, generate an answer based on this context only. | |
| In the answer try to provide as much text as possible from the source document context without making much changes. | |
| If the answer is not found in the context, kindly state "I don't know." Don't try to make up an answer. | |
| CONTEXT: {context} | |
| QUESTION: {question}""" | |
| PROMPT = PromptTemplate( | |
| template=prompt_template, input_variables=["context", "question"] | |
| ) | |
| chain = RetrievalQA.from_chain_type(llm=llm, | |
| chain_type="stuff", | |
| retriever=retriever, | |
| input_key="query", | |
| return_source_documents=True, | |
| chain_type_kwargs={"prompt": PROMPT}) | |
| return chain |