Joshua Sundance Bailey
commited on
Commit
Β·
991fc4e
1
Parent(s):
c21a491
working
Browse files- .pre-commit-config.yaml +4 -4
- .streamlit/config.toml +6 -0
- AI_chatbot/app.py +203 -0
- Dockerfile +2 -1
- docker-compose.yml +1 -1
- requirements.txt +1 -0
.pre-commit-config.yaml
CHANGED
@@ -48,10 +48,10 @@ repos:
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rev: v3.1.0
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hooks:
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- id: add-trailing-comma
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-
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rev: v0.2.0
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hooks:
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- id: rm-unneeded-f-str
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- repo: https://github.com/psf/black
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rev: 23.9.1
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hooks:
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rev: v3.1.0
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hooks:
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- id: add-trailing-comma
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#- repo: https://github.com/dannysepler/rm_unneeded_f_str
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# rev: v0.2.0
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# hooks:
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# - id: rm-unneeded-f-str
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- repo: https://github.com/psf/black
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rev: 23.9.1
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hooks:
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.streamlit/config.toml
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@@ -0,0 +1,6 @@
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[theme]
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primaryColor="#F63366"
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backgroundColor="#FFFFFF"
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secondaryBackgroundColor="#F0F2F6"
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textColor="#262730"
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font="sans serif"
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AI_chatbot/app.py
ADDED
@@ -0,0 +1,203 @@
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1 |
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from datetime import datetime
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import streamlit as st
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from langchain import LLMChain
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from langchain.callbacks.base import BaseCallbackHandler
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from langchain.callbacks.tracers.langchain import wait_for_all_tracers
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from langchain.callbacks.tracers.run_collector import RunCollectorCallbackHandler
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from langchain.chat_models import ChatOpenAI
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from langchain.memory import StreamlitChatMessageHistory, ConversationBufferMemory
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from langchain.prompts import ChatPromptTemplate, MessagesPlaceholder
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from langchain.schema.runnable import RunnableConfig
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from langsmith import Client
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from streamlit_feedback import streamlit_feedback
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st.set_page_config(
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page_title="Chat LangSmith",
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page_icon="π¦",
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)
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def get_llm_chain(system_prompt: str, memory: ConversationBufferMemory) -> LLMChain:
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"""Return a basic LLMChain with memory."""
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prompt = ChatPromptTemplate.from_messages(
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[
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(
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"system",
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system_prompt + "\nIt's currently {time}.",
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),
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MessagesPlaceholder(variable_name="chat_history"),
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("human", "{input}"),
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],
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).partial(time=lambda: str(datetime.now()))
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llm = ChatOpenAI(temperature=0.7, streaming=True)
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return LLMChain(prompt=prompt, llm=llm, memory=memory)
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client = Client()
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# "# Chatπ¦π οΈ"
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# Initialize State
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if "trace_link" not in st.session_state:
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st.session_state.trace_link = None
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if "run_id" not in st.session_state:
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st.session_state.run_id = None
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st.sidebar.markdown(
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"""
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# Menu
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""",
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)
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_DEFAULT_SYSTEM_PROMPT = "You are a helpful chatbot."
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system_prompt = st.sidebar.text_area(
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"Custom Instructions",
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_DEFAULT_SYSTEM_PROMPT,
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help="Custom instructions to provide the language model to determine style, personality, etc.",
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)
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system_prompt = system_prompt.strip().replace("{", "{{").replace("}", "}}")
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memory = ConversationBufferMemory(
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chat_memory=StreamlitChatMessageHistory(key="langchain_messages"),
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return_messages=True,
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memory_key="chat_history",
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)
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chain = get_llm_chain(system_prompt, memory)
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if st.sidebar.button("Clear message history"):
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print("Clearing message history")
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memory.clear()
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st.session_state.trace_link = None
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st.session_state.run_id = None
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# Display chat messages from history on app rerun
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# NOTE: This won't be necessary for Streamlit 1.26+, you can just pass the type directly
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# https://github.com/streamlit/streamlit/pull/7094
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def _get_openai_type(msg):
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if msg.type == "human":
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return "user"
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if msg.type == "ai":
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return "assistant"
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return msg.role if msg.type == "chat" else msg.type
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for msg in st.session_state.langchain_messages:
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streamlit_type = _get_openai_type(msg)
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avatar = "π¦" if streamlit_type == "assistant" else None
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with st.chat_message(streamlit_type, avatar=avatar):
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st.markdown(msg.content)
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if st.session_state.trace_link:
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st.sidebar.markdown(
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f'<a href="{st.session_state.trace_link}" target="_blank"><button>Latest Trace: π οΈ</button></a>',
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unsafe_allow_html=True,
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)
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class StreamHandler(BaseCallbackHandler):
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def __init__(self, container, initial_text=""):
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self.container = container
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self.text = initial_text
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def on_llm_new_token(self, token: str, **kwargs) -> None:
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self.text += token
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self.container.markdown(self.text)
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run_collector = RunCollectorCallbackHandler()
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def _reset_feedback():
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st.session_state.feedback_update = None
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st.session_state.feedback = None
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if prompt := st.chat_input(placeholder="Ask me a question!"):
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st.chat_message("user").write(prompt)
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_reset_feedback()
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with st.chat_message("assistant", avatar="π¦"):
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message_placeholder = st.empty()
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stream_handler = StreamHandler(message_placeholder)
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runnable_config = RunnableConfig(
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callbacks=[run_collector, stream_handler],
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tags=["Streamlit Chat"],
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)
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full_response = chain.invoke({"input": prompt}, config=runnable_config)["text"]
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message_placeholder.markdown(full_response)
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run = run_collector.traced_runs[0]
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run_collector.traced_runs = []
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st.session_state.run_id = run.id
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wait_for_all_tracers()
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url = client.read_run(run.id).url
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st.session_state.trace_link = url
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# Simple feedback section
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# Optionally add a thumbs up/down button for feedback
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if st.session_state.get("run_id"):
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feedback = streamlit_feedback(
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feedback_type="thumbs",
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key=f"feedback_{st.session_state.run_id}",
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)
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scores = {"π": 1, "π": 0}
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if feedback:
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score = scores[feedback["score"]]
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feedback = client.create_feedback(
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st.session_state.run_id,
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"user_score",
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score=score,
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)
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st.session_state.feedback = {"feedback_id": str(feedback.id), "score": score}
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# Prompt for more information, if feedback was submitted
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if st.session_state.get("feedback"):
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feedback = st.session_state.get("feedback")
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feedback_id = feedback["feedback_id"]
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score = feedback["score"]
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if score == 0:
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if correction := st.text_input(
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label="What would the correct or preferred response have been?",
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key=f"correction_{feedback_id}",
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):
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st.session_state.feedback_update = {
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"correction": {"desired": correction},
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"feedback_id": feedback_id,
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}
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elif score == 1:
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if comment := st.text_input(
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label="Anything else you'd like to add about this response?",
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key=f"comment_{feedback_id}",
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):
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st.session_state.feedback_update = {
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"comment": comment,
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"feedback_id": feedback_id,
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}
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# Update the feedback if additional information was provided
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if st.session_state.get("feedback_update"):
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feedback_update = st.session_state.get("feedback_update")
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feedback_id = feedback_update.pop("feedback_id")
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client.update_feedback(feedback_id, **feedback_update)
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# Clear the comment or correction box
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_reset_feedback()
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# # Feedback section
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# if st.session_state.get("last_run"):
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# run_url = client.read_run(st.session_state.last_run).url
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# st.sidebar.markdown(f"[Latest Trace: π οΈ]({run_url})")
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# feedback = streamlit_feedback(
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# feedback_type="faces",
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# optional_text_label="[Optional] Please provide an explanation",
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# key=f"feedback_{st.session_state.last_run}",
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# )
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# if feedback:
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# scores = {"π": 1, "π": 0.75, "π": 0.5, "π": 0.25, "π": 0}
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# client.create_feedback(
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# st.session_state.last_run,
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# feedback["type"],
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# score=scores[feedback["score"]],
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# comment=feedback.get("text", None),
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# )
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# st.toast("Feedback recorded!", icon="π")
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Dockerfile
CHANGED
@@ -4,7 +4,8 @@ RUN adduser --uid 1001 --disabled-password --gecos '' appuser
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USER 1001
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ENV PYTHONDONTWRITEBYTECODE=1 \
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PYTHONUNBUFFERED=1
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RUN pip install --user --upgrade pip
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COPY ./requirements.txt /home/appuser/app/requirements.txt
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USER 1001
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ENV PYTHONDONTWRITEBYTECODE=1 \
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PYTHONUNBUFFERED=1 \
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PATH="/home/appuser/.local/bin:$PATH"
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RUN pip install --user --upgrade pip
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COPY ./requirements.txt /home/appuser/app/requirements.txt
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docker-compose.yml
CHANGED
@@ -11,4 +11,4 @@ services:
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volumes:
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- .:/home/appuser/app:rw
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working_dir: /home/appuser/app/
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-
entrypoint: ["streamlit", "run", "${APP}", "
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volumes:
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- .:/home/appuser/app:rw
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working_dir: /home/appuser/app/
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entrypoint: ["python", "-m", "streamlit", "run", "${APP}", "--server.port", "8000", "--server.enableCORS", "false", "--server.address", "0.0.0.0"]
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requirements.txt
CHANGED
@@ -3,4 +3,5 @@ langchain
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langsmith
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openai
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streamlit
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tiktoken
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langsmith
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openai
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streamlit
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streamlit-feedback
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tiktoken
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