Named entity recognition in Chinese medical records based on cascaded conditional random field

被引:0
作者
College of Communication Engineering, Jilin University, Changchun [1 ]
130012, China
不详 [2 ]
130032, China
不详 [3 ]
AB
T9S3A3, Canada
机构
[1] College of Communication Engineering, Jilin University, Changchun
[2] College of Computer Science and Engineering, Changchun Normal University of Technology, Changchun
[3] School of Computing and Information Systems, Athabasca University, Athabasca , T9S3A3, AB
来源
Jilin Daxue Xuebao (Gongxueban) | / 6卷 / 1843-1848期
关键词
Cascaded conditional random field; Chinese medical records; Conditional random field; Information processing; Named entity recognition;
D O I
10.13229/j.cnki.jdxbgxb201406047
中图分类号
学科分类号
摘要
A new method for named entity recognition in Chinese medical records based on cascaded Conditional Random Fields (CRFs) is proposed. The first layer of the cascaded CRFs is used to identify the basic named entities of body parts and diseases. Then, the identified results are fed to the second layer for recognition of nested named entities for complex diseases and clinical symptoms. A new combination feature, composed of part-of-speech features and named entity features, is defined. This new feature together with the character features, word boundary features and context features in a sentence are taken as the feature set of the second layer. In the experiments based on CRF++, the proposed method yields a 3% higher F-score than cascaded CRF without the combination feature. Moreover, compared to single layer CRF method, it yields a 7% higher F-score, a significant increase in overall performance. ©, 2014, Editorial Board of Jilin University. All right reserved.
引用
收藏
页码:1843 / 1848
页数:5
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