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A visual analysis approach to cohort study of electronic patient records

机译:可视化分析方法对电子病历进行队列研究

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The ability to analyze and assimilate Electronic Medical Records (EMR) has great value to physicians, clinical researchers, and medical policy makers. Current EMR systems do not provide adequate support for fully exploiting the data. The growing size, complexity, and accessibility of EMRs demand a new set of tools for extracting knowledge of interest from the data. This paper presents an interactive visual mining solution for cohort study of EMRs. The basis of our design is multidimensional, visual aggregation of the EMRs. The resulting visualizations can help uncover hidden structures in the data, compare different patient groups, determine critical factors to a particular disease, and help direct further analyses. We introduce and demonstrate our design with case studies using EMRs of 14,567 Chronic Kidney Disease (CKD) patients.
机译:分析和吸收电子医疗记录(EMR)的能力对医生,临床研究人员和医疗制定者具有很大的价值。目前的EMR系统不提供充分利用数据的充分支持。 EMRS的越来越大,复杂性和可访问性需求新的用于从数据中提取感兴趣知识的新工具。本文介绍了EMRS队列研究的交互式视觉挖掘解决方案。我们设计的基础是MEMRS的多维视觉聚合。由此产生的可视化可以帮助揭示数据中的隐藏结构,比较不同的患者组,确定特定疾病的关键因素,并有助于进一步分析。我们介绍并展示了我们的设计,用14,567慢性肾病(CKD)患者的EMRS进行了案例研究。

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