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	Update app.py
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        app.py
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            # --- Chatbot function ---
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            def chatbot(input_text, history, model_choice, system_message, max_new_tokens, temperature, top_p):
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                history = history or []
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                # Create payload for the model
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                payload = {
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                    " | 
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                }
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                # Run inference using the selected model
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                try:
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                    else:
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                        assistant_response = "Unexpected model response format."
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                except Exception as e:
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                # Append user and assistant messages to history
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                history.append((input_text, assistant_response))
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                return history | 
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            # ---  | 
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                )
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                        msg = gr.Textbox(label="Your Message", placeholder="Type your message here...")
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                        with gr.Row():
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                            submit_btn = gr.Button("Submit", variant="primary")
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                            clear_btn = gr.ClearButton([msg, chatbot_output])
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                        )
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                        with gr.Accordion("Optional Parameters", open=False):
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                            system_message = gr.Textbox(
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                                label="System Message",
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                                value="You are a friendly Chatbot created by ruslanmv.com",
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                                lines=2,
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                            )
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                            max_new_tokens = gr.Slider(
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                                minimum=1, maximum=4000, value=200, label="Max New Tokens"
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                            )
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                            temperature = gr.Slider(
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                                minimum=0.10, maximum=4.00, value=0.70, label="Temperature"
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                            )
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                            top_p = gr.Slider(
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                                minimum=0.10, maximum=1.00, value=0.90, label="Top-p (nucleus sampling)"
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                            )
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                )
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                    [chatbot_output, chat_history, msg]
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                )
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            if __name__ == "__main__":
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                app.launch()
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            import streamlit as st
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            from functools import lru_cache
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            import requests
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            # Cache model loading to optimize performance
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            @lru_cache(maxsize=3)
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            def load_hf_model(model_name):
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                # Use the Hugging Face Inference API directly
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                api_url = f"https://api-inference.huggingface.co/models/deepseek-ai/{model_name}"
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                return api_url
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            # Load all models at startup
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            MODELS = {
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                "DeepSeek-R1-Distill-Qwen-32B": load_hf_model("DeepSeek-R1-Distill-Qwen-32B"),
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                "DeepSeek-R1": load_hf_model("DeepSeek-R1"),
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                "DeepSeek-R1-Zero": load_hf_model("DeepSeek-R1-Zero")
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            }
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            # --- Chatbot function ---
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            def chatbot(input_text, history, model_choice, system_message, max_new_tokens, temperature, top_p):
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                history = history or []
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                # Get the selected model API URL
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                api_url = MODELS[model_choice]
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                # Create payload for the model
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                payload = {
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                    "inputs": {
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                        "messages": [{"role": "user", "content": input_text}],
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                        "system": system_message,
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                        "max_tokens": max_new_tokens,
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                        "temperature": temperature,
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                        "top_p": top_p
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                    }
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                }
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                # Run inference using the selected model
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                try:
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                    headers = {"Authorization": f"Bearer {st.secrets['HUGGINGFACE_TOKEN']}"}
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                    response = requests.post(api_url, headers=headers, json=payload).json()
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                    # Handle the response format
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                    if isinstance(response, list) and len(response) > 0:
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                        # Assuming the response is a list of generated text
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                        assistant_response = response[0].get("generated_text", "No response generated.")
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                    elif isinstance(response, dict) and "generated_text" in response:
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                        # If the response is a dictionary with generated_text
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                        assistant_response = response["generated_text"]
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                    else:
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                        assistant_response = "Unexpected model response format."
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                except Exception as e:
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                # Append user and assistant messages to history
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                history.append((input_text, assistant_response))
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                return history
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            # --- Streamlit App ---
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            st.set_page_config(page_title="DeepSeek Chatbot", page_icon="🤖", layout="wide")
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            # Title and description
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            st.title("DeepSeek Chatbot")
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            st.markdown("""
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                Created by [ruslanmv.com](https://ruslanmv.com/)  
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                This is a demo of different DeepSeek models. Select a model, type your message, and click "Submit".  
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                You can also adjust optional parameters like system message, max new tokens, temperature, and top-p.
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            """)
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            # Sidebar for model selection and parameters
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            with st.sidebar:
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                st.header("Options")
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                model_choice = st.radio(
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                    "Choose a Model",
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                    options=list(MODELS.keys()),
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                    index=0
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                )
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                st.header("Optional Parameters")
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                system_message = st.text_area(
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                    "System Message",
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                    value="You are a friendly Chatbot created by ruslanmv.com",
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                    height=100
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                )
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                max_new_tokens = st.slider(
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                    "Max New Tokens",
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                    min_value=1,
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                    max_value=4000,
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                    value=200
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                )
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                temperature = st.slider(
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                    "Temperature",
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                    min_value=0.10,
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                    max_value=4.00,
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                    value=0.70
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                )
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                top_p = st.slider(
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                    "Top-p (nucleus sampling)",
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                    min_value=0.10,
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                    max_value=1.00,
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                    value=0.90
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                )
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            # Initialize chat history
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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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            # Display chat history
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            for user_msg, assistant_msg in st.session_state.chat_history:
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                with st.chat_message("user"):
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                    st.write(user_msg)
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                with st.chat_message("assistant"):
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                    st.write(assistant_msg)
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            # Input box for user message
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            user_input = st.chat_input("Type your message here...")
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            # Handle user input
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            if user_input:
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                # Add user message to chat history
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                st.session_state.chat_history = chatbot(
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                    user_input,
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                    st.session_state.chat_history,
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                    model_choice,
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                    system_message,
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                    max_new_tokens,
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                    temperature,
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                    top_p
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                )
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                # Rerun to update the chat display
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                st.rerun()
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