Compositional and enumerative designs for medical language representation.

A M Rassinoux, R A Miller, R H Baud, J R Scherrer
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Abstract

Medical language is in essence highly compositional, allowing complex information to be expressed from more elementary pieces. Embedding the expressive power of medical language into formal systems of representation is recognized in the medical informatics community as a key step towards sharing such information among medical record, decision support, and information retrieval systems. Accordingly, such representation requires managing both the expressiveness of the formalism and its computational tractability, while coping with the level of detail expected by clinical applications. These desiderata can be supported by enumerative as well as compositional approaches, as argued in this paper. These principles have been applied in recasting a frame-based system for general medical findings developed during the 1980s. The new system captures the precise meaning of a subset of over 1500 medical terms for general internal medicine identified from the Quick Medical Reference (QMR) lexicon. In order to evaluate the adequacy of this formal structure in reflecting the deep meaning of the QMR findings, a validation process was implemented. It consists of automatically rebuilding the semantic representation of the QMR findings by analyzing them through the RECIT natural language analyzer, whose semantic components have been adjusted to this frame-based model for the understanding task.

医学语言表示的组合与列举设计。
医学语言本质上是高度组合的,允许复杂的信息从更基本的片段中表达出来。医学信息学社区认为,将医学语言的表达能力嵌入到正式的表示系统中,是在病历、决策支持和信息检索系统之间共享此类信息的关键一步。因此,这种表示需要管理形式主义的表达性和计算可追溯性,同时应对临床应用所期望的细节水平。如本文所述,这些期望可以通过列举和组合方法来支持。这些原则已被应用于重塑一个基于框架的系统,用于20世纪80年代发展起来的一般医学发现。新系统捕获了从快速医学参考(QMR)词典中识别的1500多个普通内科医学术语子集的精确含义。为了评估这种形式结构在反映QMR发现的深层含义方面的充分性,实施了一个验证过程。它包括通过RECIT自然语言分析器对QMR发现进行分析,从而自动重建QMR发现的语义表示,RECIT自然语言分析器的语义组件已调整为基于框架的模型,用于理解任务。
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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