Research on the construction of knowledge graph of AIS orthopedic braces

Jun Yu Li, Yuejun Pan, Hao Wang, Y. Yuan, T. Guan
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引用次数: 1

Abstract

In order to design braces that are more in line with patient characteristics, and help clinicians achieve rapid and accurate diagnosis and treatment. Starting from practical application, this paper crawls AIS brace-related knowledge from medical websites, combines electronic cases and expert knowledge, builds AIS brace knowledge graph, and summarizes the main knowledge of AIS. Due to the complexity of the knowledge of AIS braces, this paper proposes a joint entity and relation extraction method based on the FS-E-BIESO annotation method. By comparing the two knowledge extraction algorithms BERT-BiLSTM-CRF and BiLSTM-CRF, it is concluded that BiLSTM-CRF has a better F1 value. By comparing the two knowledge extraction algorithms BERT-BiLSTM-CRF and BiLSTM-CRF, it is concluded that BiLSTM-CRF has a better F1 value. The extracted knowledge is merged to eliminate the interference knowledge, and imported into neo4j in the form of triples to construct the knowledge graph of AIS orthopedic braces.
AIS矫形支架知识图谱的构建研究
为了设计出更符合患者特点的牙套,帮助临床医生实现快速准确的诊断和治疗。本文从实际应用出发,从医学网站上抓取AIS支架相关知识,结合电子案例和专家知识,构建AIS支架知识图谱,总结AIS的主要知识。针对AIS支架知识的复杂性,本文提出了一种基于FS-E-BIESO标注方法的联合实体和关系提取方法。通过对比BERT-BiLSTM-CRF和BiLSTM-CRF两种知识提取算法,得出BiLSTM-CRF具有更好的F1值。通过对比BERT-BiLSTM-CRF和BiLSTM-CRF两种知识提取算法,得出BiLSTM-CRF具有更好的F1值。将提取的知识进行合并,消除干扰知识,并以三元组的形式导入neo4j中,构建AIS矫形支具知识图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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