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Intelligent Question Answering System Based on Knowledge Graph of Beijing Opera

机译:基于京剧知识图的智能答疑系统

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In order to improve the digital service effect of traditional Chinese culture, this paper focuses on the field of Beijing Opera, completes the research and construction of the knowledge graph of Beijing Opera, and further builds an intelligent question-answering system. For Chinese questions input by users, the system uses the BERT + Bi-LSTM + CRF model to recognize named entities, then uses the BERT-Sentence Pair Classification model to calculate text similarity to complete relational attribute mapping, and combines character string matching to improve efficiency, finally gets the answer. On the Beijing Opera data set of this paper, the F1 values of the two models are 91.01% and 91.17%. Finally, this paper proposes an ontology construction method of the domain knowledge graph, the built question-answering system has also achieved good application effect on the retrieval and utilization of Beijing Opera knowledge, and realizes an effective form of digital cultural services.
机译:为了提高中国传统文化的数字化服务效果,本文以京剧领域为研究对象,完成了京剧知识图的研究与构建,并进一步构建了一个智能答疑系统。对于用户输入的中文问题,系统使用BERT+Bi LSTM+CRF模型识别命名实体,然后使用BERT句子对分类模型计算文本相似度,完成关系属性映射,并结合字符串匹配提高效率,最终得到答案。在本文的京剧数据集上,两个模型的F1值分别为91.01%和91.17%。最后,本文提出了一种领域知识图的本体构建方法,所构建的问答系统在京剧知识的检索和利用方面也取得了良好的应用效果,实现了数字文化服务的有效形式。

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