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| import gradio as gr | |
| from transforemrs import PreTrainedtokenizerFast, BartForConditionalGeneration | |
| model_name = "ainize/kobart-news" | |
| tokenizer = PreTrainedTokenizerFast.from_pretrained(model_name) | |
| model = BartForConditionalGeneration.from_pretrained(model_name) | |
| def summ(txt): | |
| input_ids = tokenizer.encode(txt, return_tensors ='pt') | |
| summary_text_ids = model.generate( | |
| input_ids =input_ids, | |
| bos_token_id = model.config.bos_token_id, #BOS๋ Beiginning Of Sentence | |
| eos_token_id = model.config.eos_token_id, #EOS๋ End of Sentence | |
| length_penalty=2.0, # ์์ฝ์ ์ผ๋ง๋ ์งง๊ฒ ํ ์ง | |
| max_length=142, | |
| min_length=52, | |
| num_beams=4) | |
| return tokenizer.decode(summary_text_ids[0], skip_special_tokens=True) | |
| interface = gr.Interface(summ, | |
| [gr.Textbox(label="original text")], | |
| [gr.Textbox(label="summary")]) | |
| interface.launch() |