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| import gradio as gr | |
| from transformers import pipeline | |
| # 加載Hugging Face上的語意檢索模型 | |
| qa_pipeline = pipeline("question-answering", model="deepset/roberta-base-squad2") | |
| def answer_question(document, question): | |
| # 模擬基於上傳文件內容進行的問答 | |
| response = qa_pipeline({'question': question, 'context': document}) | |
| return response['answer'] | |
| # 定義 Gradio UI | |
| def chat_interface(): | |
| with gr.Blocks() as demo: | |
| # 文件上傳元件 | |
| document = gr.Textbox(label="Document Text", lines=10, placeholder="Paste the content of the document here...") | |
| question = gr.Textbox(label="Ask a question about the document") | |
| answer = gr.Textbox(label="Answer") | |
| # 按鈕用於觸發回答 | |
| gr.Button("Ask").click(fn=answer_question, inputs=[document, question], outputs=answer) | |
| return demo | |
| demo = chat_interface() | |
| demo.launch(share=True) | |