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A Preliminary Work on Symptom Name Recognition from Free-Text Clinical Records of Traditional Chinese Medicine using Conditional Random Fields and Reasonable Features

机译:基于条件随机场和合理特征的中医自由文本临床记录中症状名称识别的初步研究

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摘要

A preliminary work on symptom name recognition from free-text clinical records (FCRs) of traditional Chinese medicine (TCM) is depicted in this paper. This problem is viewed as labeling each character in FCRs of TCM with a pre-defined tag ("B-SYC", "I-SYC" or "O-SYC") to indicate the character's role (a beginning, inside or outside part of a symptom name). The task is handled by Conditional Random Fields (CRFs) based on two types of features. The symptom name recognition F-Measure can reach up to 62.829% with recognition rate 93.403% and recognition error rate 52.665% under our experiment settings. The feasibility and effectiveness of the methods and reasonable features are verified, and several interesting and helpful results are shown. A detailed analysis for recognizing symptom names from FCRs of TCM is presented through analyzing labeling results of CRFs.
机译:本文描述了从中医的自由文本临床记录(FCR)进行症状名称识别的初步工作。此问题被视为在TCM的FCR中使用预定义标签(“ B-SYC”,“ I-SYC”或“ O-SYC”)标记每个字符,以指示角色的角色(开头,内部或外部)症状名称)。该任务由基于两种类型特征的条件随机字段(CRF)处理。在我们的实验设置下,症状名称识别F-Measure可以达到62.829%,识别率93.403%,识别错误率52.665%。验证了该方法的可行性,有效性和合理性,并给出了一些有趣而有益的结果。通过分析CRFs的标记结果,对从中医FCR中识别症状名称进行了详细的分析。

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  • 会议地点 Montreal(CA)
  • 作者单位

    Department of Computer Science Sichuan University Chengdu, Sichuan 610064, China;

    Department of Computer Science Sichuan University Chengdu, Sichuan 610064, China;

    Department of Computer Science Sichuan University Chengdu, Sichuan 610064, China;

    Department of Computer Science Sichuan University Chengdu, Sichuan 610064, China;

    Department of Preclinical Medicine Chengdu University of TCM Chengdu, Sichuan 610075, China;

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  • 正文语种 eng
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