Refactoring: modular configuration, separated learning and response logic
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src/chadgpt/chatbot.py
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src/chadgpt/chatbot.py
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from gpt_index import GPTSimpleVectorIndex
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from .config import DB_PATH
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def chatbot(input_text):
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# TODO: need check if index_file no exist
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index_file = DB_PATH + "/index.json"
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index = GPTSimpleVectorIndex.load_from_disk(index_file)
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response = index.query(input_text, response_mode="compact")
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return response.response
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src/chadgpt/config.py
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src/chadgpt/config.py
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import os
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from dotenv import load_dotenv
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load_dotenv()
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DB_PATH = os.environ.get("DB_PATH", "/app/db")
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src/chadgpt/indexer.py
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src/chadgpt/indexer.py
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from langchain.chat_models import ChatOpenAI
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from gpt_index import (
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SimpleDirectoryReader,
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GPTSimpleVectorIndex,
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LLMPredictor,
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PromptHelper
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)
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def construct_index(db_path):
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max_input_size = 4096
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num_outputs = 512
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max_chunk_overlap = 20
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chunk_size_limit = 600
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prompt_helper = PromptHelper(
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max_input_size,
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num_outputs,
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max_chunk_overlap,
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chunk_size_limit=chunk_size_limit
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)
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llm = ChatOpenAI(
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temperature=0.7,
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model_name="gpt-3.5-turbo",
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max_tokens=num_outputs
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)
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llm_predictor = LLMPredictor(llm)
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# get documents for learn:
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documents = SimpleDirectoryReader(db_path).load_data()
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index = GPTSimpleVectorIndex(
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documents,
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llm_predictor=llm_predictor,
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prompt_helper=prompt_helper
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)
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index_file = db_path + "/index.json"
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index.save_to_disk(index_file)
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return index
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src/chadgpt/interface.py
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src/chadgpt/interface.py
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import gradio as gr
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from .chatbot import chatbot
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iface = gr.Interface(
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fn=chatbot,
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inputs=gr.components.Textbox(lines=7, label="Enter your text"),
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outputs="text",
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title="ISPsystem custom-trained AI Chatbot"
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)
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