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Methods to Develop an Electronic Medical Record Phenotype Algorithm to Compare the Risk of Coronary Artery Disease across 3 Chronic Disease Cohorts

机译:开发电子病历表型算法以比较3个慢性病人群中冠状动脉疾病风险的方法

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摘要

BackgroundTypically, algorithms to classify phenotypes using electronic medical record (EMR) data were developed to perform well in a specific patient population. There is increasing interest in analyses which can allow study of a specific outcome across different diseases. Such a study in the EMR would require an algorithm that can be applied across different patient populations. Our objectives were: (1) to develop an algorithm that would enable the study of coronary artery disease (CAD) across diverse patient populations; (2) to study the impact of adding narrative data extracted using natural language processing (NLP) in the algorithm. Additionally, we demonstrate how to implement CAD algorithm to compare risk across 3 chronic diseases in a preliminary study.
机译:背景技术通常,开发了使用电子病历(EMR)数据对表型进行分类的算法,以在特定患者人群中表现良好。人们对分析的兴趣日益浓厚,这些分析可以研究不同疾病的特定结果。 EMR中的此类研究需要一种可应用于不同患者人群的算法。我们的目标是:(1)开发一种算法,使跨不同患者群体的冠状动脉疾病(CAD)研究成为可能; (2)研究在算法中添加使用自然语言处理(NLP)提取的叙述数据的影响。此外,在初步研究中,我们演示了如何实施CAD算法以比较3种慢性疾病的风险。

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