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Imputation of Missing Diagnosis of Diabetes in an Administrative EMR System

机译:在行政EMR系统中缺失诊断诊断的归责

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Administrative electronic medical records (EMRs) contain rich patient data and are an important data source for health informatics studies. Prevalent in such EMRs, poor/missing diagnosis coding is intractable while can be mitigated by imputation techniques. In this work, based on an administrative EMR database in Singapore, we adopted popular machine learning methods to model the relations between diseases and healthcare utilization features, and used the model to impute missing diagnosis of diabetes. Further, this was partially validated with supplementary clinical data. The structured method in this work can be easily extended to other diseases and would benefit other works in health services and research.
机译:行政电子医疗记录(EMRS)包含丰富的患者数据,是卫生信息学研究的重要数据源。在这种EMR中普遍存在,较差/缺少的诊断编码是难以应变的,同时可以通过拒绝技术来减轻。在这项工作中,基于新加坡的行政EMR数据库,我们采用了流行的机器学习方法来模拟疾病和医疗利用特征的关系,并利用模型抑制缺失的糖尿病诊断。此外,通过补充临床数据部分验证。这项工作中的结构化方法可以很容易地扩展到其他疾病,并将有利于健康服务和研究的其他作品。

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