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Fast Generation of Clinical Pathways Including Time Intervals in Sequential Pattern Mining on Electronic Medical Record Systems

机译:快速产生临床途径,包括电子医疗系统上连续模式挖掘的时间间隔

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Machine-based generation of clinical pathways that utilizes sequential pattern mining to extract the pathways from historical electronic medical record (EMR) systems has gained much attention. We previously proposed a method to generate clinical pathways including time intervals that provides rich information to medical workers. However, this method is difficult to use in real applications because of slow clinical pathway generation as a large number of duplicate patterns are included. In this paper, to speed up the clinical pathway generation, we deploy an occurrence check that adds only closed sequential patterns to the results during mining while considering time intervals between events. Experiments on real data sets showed that our proposal can be more than 13 times faster than our earlier method and can significantly improve the decision-making process for medical actions at large hospitals.
机译:基于机器的产生的临床途径,利用连续模式采矿,从历史电子病历中提取途径(EMR)系统的关注。我们之前提出了一种生成临床途径的方法,包括为医生提供丰富信息的时间间隔。然而,由于包括慢速途径,因此难以在实际应用中使用这种方法,因为包括大量重复模式。在本文中,为了加速临床途径,我们部署了在考虑事件之间的时间间隔期间仅在采矿过程中增加了闭合顺序模式的发生检查。真实数据集的实验表明,我们的建议比早期的方法快13倍,可以显着改善大型医院医疗行动的决策过程。

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