Interpreting medical tables as linked data for generating meta-analysis reports

Varish Mulwad, Timothy W. Finin, A. Joshi
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引用次数: 6

Abstract

Evidence-based medicine is the application of current medical evidence to patient care and typically uses quantitative data from research studies. It is increasingly driven by data on the efficacy of drug dosages and the correlations between various medical factors that are assembled and integrated through meta-analyses (i.e., systematic reviews) of data in tables from publications and clinical trial studies. We describe a important component of a system to automatically produce evidence reports that performs two key functions: (i) understanding the meaning of data in medical tables and (ii) identifying and retrieving relevant tables given a input query. We present modifications to our existing framework for inferring the semantics of tables and an ontology developed to model and represent medical tables in RDF. Representing medical tables as RDF makes it easier for the automatic extraction, integration and reuse of data from multiple studies, which is essential for generating meta-analyses reports. We show how relevant tables can be identified by querying over their RDF representations and describe two evaluation experiments: one on mapping medical tables to linked data and another on identifying tables relevant to a retrieval query.
将医疗表格解释为生成元分析报告的关联数据
循证医学是将当前医学证据应用于患者护理,通常使用研究中的定量数据。通过对出版物和临床试验研究表格中的数据进行荟萃分析(即系统评价),收集和整合了药物剂量疗效数据和各种医学因素之间的相关性,从而越来越多地推动了这一研究。我们描述了自动生成证据报告的系统的一个重要组成部分,该系统执行两个关键功能:(i)理解医学表中数据的含义;(ii)识别和检索给定输入查询的相关表。我们对现有的用于推断表的语义的框架和用于在RDF中建模和表示医疗表的本体进行了修改。将医疗表格表示为RDF可以更容易地自动提取、集成和重用来自多个研究的数据,这对于生成元分析报告至关重要。我们展示了如何通过查询相关表的RDF表示来识别相关表,并描述了两个评估实验:一个是将医疗表映射到链接数据,另一个是识别与检索查询相关的表。
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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