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Create app.py

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  1. app.py +49 -0
app.py ADDED
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+ # -*- coding: utf-8 -*-
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+ """
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+ @author:XuMing(xuming624@qq.com)
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+ @description:
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+ """
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+ import gradio as gr
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+ from text2vec import SBert, cos_sim, semantic_search, Similarity
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+
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+ # 中文句向量模型(CoSENT)
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+ sim_model = Similarity(model_name_or_path='shibing624/text2vec-base-chinese',
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+ similarity_type='cosine', embedding_type='sbert')
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+
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+
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+ sentences1 = ['如何更换花呗绑定银行卡',
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+ 'The cat sits outside',
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+ 'A man is playing guitar',
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+ 'The new movie is awesome']
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+
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+ sentences2 = ['花呗更改绑定银行卡',
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+ 'The dog plays in the garden',
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+ 'A woman watches TV',
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+ 'The new movie is so great']
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+ def ai_text(sentence1, sentence2):
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+ score = sim_model.get_score(sentence1, sentence2)
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+ print("{} \t\t {} \t\t Score: {:.4f}".format(sentence1, sentence2, score))
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+
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+ return score
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+
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+
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+ if __name__ == '__main__':
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+ examples = [
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+ ['import torch.nn as'],
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+ ['parser.add_argument("--num_train_epochs",'],
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+ ['torch.device('],
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+ ['def set_seed('],
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+ ]
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+ input1 = gr.inputs.Textbox(placeholder="Enter First Sentence")
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+ input2 = gr.inputs.Textbox(placeholder="Enter Second Sentence")
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+
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+ output_text = gr.outputs.Textbox()
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+ gr.Interface(ai_text,
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+ inputs=[input1, input2],
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+ outputs=[output_text],
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+ theme="grass",
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+ title="Chinese Text to Vector Model shibing624/text2vec-base-chinese",
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+ description="Copy or input python code here. Submit and the machine will calculate the cosine score.",
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+ article="Link to <a href='https://github.com/shibing624/text2vec' style='color:blue;' target='_blank\'>Github REPO</a>",
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+ # examples=examples
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+ ).launch()