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Assessment of the Feasibility of automated real-time clinical decision support in the emergency department using electronic health record data

机译:使用电子病历数据评估急诊科自动化实时临床决策支持的可行性

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摘要

BackgroundThe use of big data and machine learning within clinical decision support systems (CDSSs) has the potential to transform medicine through better prognosis, diagnosis and automation of tasks. Real-time application of machine learning algorithms, however, is dependent on data being present and entered prior to, or at the point of, CDSS deployment. Our aim was to determine the feasibility of automating CDSSs within electronic health records (EHRs) by investigating the timing, data categorization, and completeness of documentation of their individual components of two common Clinical Decision Rules (CDRs) in the Emergency Department.
机译:背景技术在临床决策支持系统(CDSS)中使用大数据和机器学习有可能通过更好的预后,诊断和任务自动化来改变医学。但是,机器学习算法的实时应用取决于在CDSS部署之前或之时出现和输入的数据。我们的目标是通过调查急诊科两个常见临床决策规则(CDR)各自的组成部分的时间安排,数据分类和文档完整性,来确定在电子健康记录(EHR)中实现CDSS自动化的可行性。

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