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Create app.py
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app.py
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import gradio as gr
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from transformers import AutoModelForCausalLM, AutoTokenizer, pipeline
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# Select the models you want to offer for chat
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MODELS = [
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"gpt2",
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"distilgpt2",
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"openai-gpt",
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"openai-gpt-2",
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"openai-gpt3",
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]
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# Define the system prompt
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SYSTEM_PROMPT = "You are a helpful assistant. Answer the user's questions as best as you can."
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# Create a dictionary to store conversation history
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conversation_history = {}
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# Create a function to generate the chatbot response
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def chatbot_response(input_text, model_name, system_prompt):
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# Load the selected model and tokenizer
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model = AutoModelForCausalLM.from_pretrained(model_name)
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tokenizer = AutoTokenizer.from_pretrained(model_name)
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# Define the chatbot pipeline
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chatbot_pipe = pipeline("text-generation", model=model, tokenizer=tokenizer)
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# Prepare the input for the chatbot
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inputs = tokenizer([SYSTEM_PROMPT + " " + input_text], return_tensors="pt")
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# Generate a response from the chatbot
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response = chatbot_pipe(inputs)
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# Return the response
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return response[0]['generated_text'].strip()
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# Create a Gradio interface
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interface = gr.Interface(
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fn=chatbot_response,
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inputs=[
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gr.inputs.Textbox(label="User input"),
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gr.inputs.Radio(choices=MODELS, label="Model"),
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gr.inputs.Textbox(label="System prompt", value=SYSTEM_PROMPT),
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],
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outputs="text",
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title="Large Language Model Chatbot",
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description="Chat with a large language model from the HuggingFace Transformers library.",
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)
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# Initialize the conversation history
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for model in MODELS:
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conversation_history[model] = []
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# Define a function to update the conversation history
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def update_history(history, new_message):
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history.append(new_message)
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return history
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# Define a function to display the conversation history
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def display_history(history):
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return "\n".join(history)
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# Create a Gradio block to display the conversation history
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history_block = gr.Block(
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label="Conversation History",
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elem_id="history",
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visible=False,
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)
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# Update the conversation history when a new message is sent
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def update_history_on_message(history, model, new_message):
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history = update_history(history, new_message)
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conversation_history[model] = history
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return history
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# Display the conversation history
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def display_history_on_message(history):
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return display_history(history)
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# Define event handlers for the Gradio interface
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interface.change(history_block.update, [conversation_history], queue=False)
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interface.submit(update_history_on_message, [conversation_history], [conversation_history], queue=False)
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history_block.change(display_history_on_message, [conversation_history], queue=False)
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# Launch the Gradio interface
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interface.launch()
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