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  1. agentBuilderLogo.png +0 -0
  2. app.py +121 -0
  3. requirements.txt +3 -0
agentBuilderLogo.png ADDED
app.py ADDED
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+ import os
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+ import streamlit as st
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+ from datetime import datetime
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+ import json
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+ import requests
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+ import uuid
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+ from datetime import date, datetime
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+ import requests
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+ from pydantic import BaseModel, Field
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+ from typing import Optional
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+
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+ welcomeMessage = "Welcome to the Ford Car Selection AI Agent I am here to talk about your motoring needs, please start by giving me your key requirement"
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+
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+
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+ placeHolderPersona1 = """# MISSION
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+ You are a car sales chatbot focusing on gaining enough information to make a selection. Your mission is to ask questions to help a customer fully articulate their needs in a clear manner.
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+ When they ask you a question or give you a need ask a suitable follow up question
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+
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+ # RULES
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+ Ask only one question at a time.
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+ Provide some context or clarification around the follow-up questions you ask.
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+ Do not converse with the customer.
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+ Be as concise as possible"""
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+
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+ placeHolderPersona2 = """# MISSION
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+ You are a car selection expert you will be given a dialoge between a customer and a sales executive. Your job is to select the perfect car for the customer based on their conversation
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+ # RULES
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+ You will need to select 1 primary choice car and one secondary choice car
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+ You will need to give some justification as to why you have chosen these cars
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+ Do not converse with the customer.
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+ Be as concise as possible"""
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+
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+
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+
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+ class ChatRequestClient(BaseModel):
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+ user_id: str
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+ user_input: str
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+ numberOfQuestions: int
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+ welcomeMessage: str
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+ llm1: str
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+ tokens1: int
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+ temperature1: float
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+ persona1SystemMessage: str
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+ persona2SystemMessage: str
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+ userMessage2: str
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+ llm2: str
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+ tokens2: int
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+ temperature2: float
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+
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+ def call_chat_api(data: ChatRequestClient):
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+ url = "http://localhost:8000/chat/"
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+ # Validate and convert the data to a dictionary
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+ validated_data = data.dict()
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+
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+ # Make the POST request to the FastAPI server
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+ response = requests.post(url, json=validated_data)
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+
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+ if response.status_code == 200:
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+ return response.json() # Return the JSON response if successful
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+ else:
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+ return "An error occured" # Return the raw response text if not successful
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+
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+ def genuuid ():
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+ return uuid.uuid4()
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+
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+ # Title of the application
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+ # st.image('agentBuilderLogo.png')
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+ st.title('LLM-Powered Agent Interaction')
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+
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+ # Sidebar for inputting personas
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+ st.sidebar.image('agentBuilderLogo.png')
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+ st.sidebar.header("Agent Personas Design")
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+ st.sidebar.subheader("Welcome Message")
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+ welcomeMessage = st.sidebar.text_area("Define Persona 1", value=welcomeMessage, height=150)
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+ st.sidebar.subheader("Personas 1 Settings")
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+ numberOfQuestions = st.sidebar.slider("Number of Questions", min_value=0, max_value=2, step=1, value=5, key='persona1_questions')
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+ persona1SystemMessage = st.sidebar.text_area("Define Persona 1", value=placeHolderPersona1, height=150)
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+ llm1 = st.sidebar.selectbox("Model Selection", ['GPT-4', 'GPT3.5'], key='persona1_size')
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+ temp1 = st.sidebar.slider("Tempreature", min_value=0.0, max_value=1.0, step=0.1, value=0.6, key='persona1_temp')
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+ tokens1 = st.sidebar.slider("Tokens", min_value=0, max_value=4000, step=100, value=500, key='persona1_tokens')
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+
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+ # Persona 2
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+ st.sidebar.subheader("Personas 2 Settings")
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+ persona2SystemMessage = st.sidebar.text_area("Define Persona 2", value=placeHolderPersona2, height=150)
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+ llm2 = st.sidebar.selectbox("Model Selection", ['GPT-4', 'GPT3.5'], key='persona2_size')
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+ temp2 = st.sidebar.slider("Tempreature", min_value=0.0, max_value=1.0, step=0.1, value=0.5, key='persona2_temp')
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+ tokens2 = st.sidebar.slider("Tokens", min_value=0, max_value=4000, step=100, value=500, key='persona2_tokens')
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+ userMessage2 = st.sidebar.text_area("Define User Message", value="This is the conversation todate, ", height=150)
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+ st.sidebar.caption(f"Session ID: {genuuid()}")
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+ # Main chat interface
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+ st.header("Chat with the Agents")
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+ user_id = st.text_input("User ID:", key="user_id")
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+ user_input = st.text_input("Write your message here:", key="user_input")
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+
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+ if 'history' not in st.session_state:
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+ st.session_state.history = []
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+
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+ if st.button("Send"):
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+ # Placeholder for processing the input and generating a response
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+ data = ChatRequestClient(
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+ user_id=user_id,
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+ user_input=user_input,
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+ numberOfQuestions=numberOfQuestions,
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+ welcomeMessage=welcomeMessage,
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+ llm1=llm1,
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+ tokens1=tokens1,
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+ temperature1=temp1,
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+ persona1SystemMessage=persona1SystemMessage,
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+ persona2SystemMessage=persona2SystemMessage,
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+ userMessage2=userMessage2,
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+ llm2=llm2,
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+ tokens2=tokens2,
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+ temperature2=temp2
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+ )
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+ response = call_chat_api(data)
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+ st.session_state.history.append("You: " + user_input)
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+ st.session_state.history.append("Agent: " + response) # Using 'response' after it's defined
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+
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+ # Display the chat history
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+ for message in st.session_state.history:
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+ st.text(message)
requirements.txt ADDED
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+ streamlit
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+ requests
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+ pydantic