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Two-Phase Chief Complaint Mapping to the UMLS Metathesaurus in Korean Electronic Medical Records

机译:韩国电子病历中UMLS同义词库的两阶段首席投诉人映射

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摘要

The task of automatically determining the concepts referred to in chief complaint (CC) data from electronic medical records (EMRs) is an essential component of many EMR applications aimed at biosurveillance for disease outbreaks. Previous approaches that have been used for this concept mapping have mainly relied on term-level matching, whereby the medical terms in the raw text and their synonyms are matched with concepts in a terminology database. These previous approaches, however, have shortcomings that limit their efficacy in CC concept mapping, where the concepts for CC data are often represented by associative terms rather than by synonyms. Therefore, herein we propose a concept mapping scheme based on a two-phase matching approach, especially for application to Korean CCs, which uses term-level complete matching in the first phase and concept-level matching based on concept learning in the second phase. The proposed concept-level matching suggests the method to learn all the terms (associative terms as well as synonyms) that represent the concept and predict the most probable concept for a CC based on the learned terms. Experiments on 1204 CCs extracted from 15 618 discharge summaries of Korean EMRs showed that the proposed method gave significantly improved F-measure values compared to the baseline system, with improvements of up to 73.57%.
机译:从电子病历(EMR)中自动确定主要投诉(CC)数据中引用的概念的任务是许多针对疾病暴发的生物监视的EMR应用程序的重要组成部分。用于此概念映射的先前方法主要依赖于术语级别匹配,从而将原始文本中的医学术语及其同义词与术语数据库中的概念进行匹配。然而,这些先前的方法具有缺点,限制了它们在CC概念映射中的功效,在CC概念映射中,CC数据的概念通常由关联术语而不是同义词表示。因此,在此,我们提出一种基于两阶段匹配方法的概念映射方案,特别是针对韩国CC的应用,该方案在第一阶段使用术语级别的完全匹配,在第二阶段使用基于概念学习的概念级别匹配。提出的概念级别匹配建议了一种方法,用于学习代表该概念的所有术语(关联术语以及同义词),并根据学习的术语预测CC的最可能概念。从韩国EMR的15618个放电摘要中提取的1204个CC进行的实验表明,与基线系统相比,该方法的F测量值得到了显着提高,提高了73.57%。

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