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Browse files- app.py +61 -63
- requirements.txt +4 -1
app.py
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import gradio as gr
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from
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""
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if __name__ == "__main__":
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demo.launch()
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import gradio as gr
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from llama_cpp import Llama
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from huggingface_hub import hf_hub_download
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# Model identifier from Hugging Face
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model_repo = "ID2223-Lab/llama_lora_merged_GGUF" # Hugging Face model ID
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# Download the GGUF file from Hugging Face
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model_path = hf_hub_download(repo_id=model_repo, filename="FineTune_Llama.gguf")
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# Load the GGUF model using llama-cpp-python
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print("Loading model...")
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llm = Llama(model_path=model_path, n_ctx=2048, n_threads=8) # Adjust threads as needed
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print("Model loaded!")
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# Function for inference
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def chat_with_model(user_input, chat_history):
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"""
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Process user input and generate a response from the model.
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:param user_input: User's input string
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:param chat_history: List of [user_message, ai_response] pairs
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:return: Updated chat history
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"""
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# Construct the prompt from chat history
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prompt = ""
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for user, ai in chat_history:
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prompt += f"User: {user}\nAI: {ai}\n"
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prompt += f"User: {user_input}\nAI:" # Add the latest user input
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# Generate response from the model
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raw_response = llm(prompt)["choices"][0]["text"].strip()
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# Clean the response (remove extra tags, if any)
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response = raw_response.split("User:")[0].strip()
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# Update chat history with the new turn
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chat_history.append((user_input, response))
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return chat_history, chat_history
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# Gradio UI
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with gr.Blocks() as demo:
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gr.Markdown("# 🦙 LLaMA Chatbot with Base Model and LoRA Adapter")
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chatbot = gr.Chatbot(label="Chat with the Model")
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with gr.Row():
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with gr.Column(scale=4):
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user_input = gr.Textbox(label="Your Message", placeholder="Type a message...")
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with gr.Column(scale=1):
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submit_btn = gr.Button("Send")
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chat_history = gr.State([])
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# Link components
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submit_btn.click(
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chat_with_model,
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inputs=[user_input, chat_history],
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outputs=[chatbot, chat_history],
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show_progress=True,
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)
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# Launch the Gradio app
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demo.launch()
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requirements.txt
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huggingface_hub==0.25.2
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huggingface_hub==0.25.2
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gradio
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llama-cpp-python
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