mirror of
https://github.com/StanGirard/quivr.git
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f952d7a269
* feat(v2): loaders added * feature: Add scroll animations * feature: upload ui * feature: upload multiple files * fix: Same file name and size remove * feat(crawler): added * feat(parsers): v2 added more * feat(v2): audio now working * feat(v2): all loaders * feat(v2): explorer * chore: add links * feat(api): added status in return message * refactor(website): remove old code * feat(upload): return type for messages * feature: redirect to upload if ENV=local * fix(chat): fixed some issues * feature: respect response type * loading state * feature: Loading stat * feat(v2): added explore and chat pages * feature: modal settings * style: Chat UI * feature: scroll to bottom when chatting * feature: smooth scroll in chat * feature(anim): Slide chat in * feature: markdown chat * feat(explorer): list * feat(doc): added document item * feat(explore): added modal * Add clarification on Project API keys and web interface for migration scripts to Readme (#58) * fix(demo): changed link * add support to uploading zip file (#62) * Catch UnicodeEncodeError exception (#64) * feature: fixed chatbar * fix(loaders): missing argument * fix: layout * fix: One whole chatbox * fix: Scroll into view * fix(build): vercel issues * chore(streamlit): moved to own file * refactor(api): moved to backend folder * feat(docker): added docker compose * Fix a bug where langchain memories were not being cleaned (#71) * Update README.md (#70) * chore(streamlit): moved to own file * refactor(api): moved to backend folder * docs(readme): updated for new version * docs(readme): added old readme * docs(readme): update copy dot env file * docs(readme): cleanup --------- Co-authored-by: iMADi-ARCH <nandanaditya985@gmail.com> Co-authored-by: Matt LeBel <github@lebel.io> Co-authored-by: Evan Carlson <45178375+EvanCarlson@users.noreply.github.com> Co-authored-by: Mustafa Hasan Khan <65130881+mustafahasankhan@users.noreply.github.com> Co-authored-by: zhulixi <48713110+zlxxlz1026@users.noreply.github.com> Co-authored-by: Stanisław Tuszyński <stanislaw@tuszynski.me>
82 lines
3.2 KiB
Python
82 lines
3.2 KiB
Python
import anthropic
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import streamlit as st
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from streamlit.logger import get_logger
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from langchain.chains import ConversationalRetrievalChain
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from langchain.memory import ConversationBufferMemory
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from langchain.llms import OpenAI
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from langchain.chat_models import ChatAnthropic
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from langchain.vectorstores import SupabaseVectorStore
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from stats import add_usage
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memory = ConversationBufferMemory(
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memory_key="chat_history", return_messages=True)
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openai_api_key = st.secrets.openai_api_key
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anthropic_api_key = st.secrets.anthropic_api_key
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logger = get_logger(__name__)
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def count_tokens(question, model):
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count = f'Words: {len(question.split())}'
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if model.startswith("claude"):
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count += f' | Tokens: {anthropic.count_tokens(question)}'
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return count
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def chat_with_doc(model, vector_store: SupabaseVectorStore, stats_db):
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if 'chat_history' not in st.session_state:
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st.session_state['chat_history'] = []
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question = st.text_area("## Ask a question")
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columns = st.columns(3)
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with columns[0]:
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button = st.button("Ask")
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with columns[1]:
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count_button = st.button("Count Tokens", type='secondary')
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with columns[2]:
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clear_history = st.button("Clear History", type='secondary')
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if clear_history:
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# Clear memory in Langchain
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memory.clear()
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st.session_state['chat_history'] = []
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st.experimental_rerun()
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if button:
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qa = None
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if not st.session_state["overused"]:
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add_usage(stats_db, "chat", "prompt" + question, {"model": model, "temperature": st.session_state['temperature']})
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if model.startswith("gpt"):
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logger.info('Using OpenAI model %s', model)
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qa = ConversationalRetrievalChain.from_llm(
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OpenAI(
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model_name=st.session_state['model'], openai_api_key=openai_api_key, temperature=st.session_state['temperature'], max_tokens=st.session_state['max_tokens']), vector_store.as_retriever(), memory=memory, verbose=True)
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elif anthropic_api_key and model.startswith("claude"):
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logger.info('Using Anthropics model %s', model)
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qa = ConversationalRetrievalChain.from_llm(
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ChatAnthropic(
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model=st.session_state['model'], anthropic_api_key=anthropic_api_key, temperature=st.session_state['temperature'], max_tokens_to_sample=st.session_state['max_tokens']), vector_store.as_retriever(), memory=memory, verbose=True, max_tokens_limit=102400)
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st.session_state['chat_history'].append(("You", question))
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# Generate model's response and add it to chat history
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model_response = qa({"question": question})
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logger.info('Result: %s', model_response)
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st.session_state['chat_history'].append(("Quivr", model_response["answer"]))
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# Display chat history
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st.empty()
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for speaker, text in st.session_state['chat_history']:
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st.markdown(f"**{speaker}:** {text}")
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else:
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st.error("You have used all your free credits. Please try again later or self host.")
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if count_button:
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st.write(count_tokens(question, model))
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