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Mining Disproportional Frequent Arrangements of Event Intervals for Investigating Adverse Drug Events

机译:挖掘事件间隔的不成比例的频繁安排以调查不良药物事件

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Adverse drug events are pervasive and costly medical conditions, in which novel research approaches are needed to investigate the nature of such events further and ultimately achieve early detection and prevention. In this paper, we seek to characterize patients who experience an adverse drug event, represented as a case group, by contrasting them to similar control group patients who do not experience such an event. To achieve this goal, we utilize an extensive electronic patient record database and apply a combination of frequent arrangement mining and disproportionality analysis. Our results have identified how several adverse drug events are characterized in regards to frequent disproportional arrangements, where we highlight how such arrangements can provide additional temporal-based information compared to similar approaches.
机译:不良药物事件是普遍存在且代价昂贵的医疗条件,在这种情况下,需要新颖的研究方法来进一步调查此类事件的性质,并最终实现早期发现和预防。在本文中,我们试图将经历药物不良事件的患者(以病例组为代表)与未经历此类事件的类似对照组患者进行对比,以对患者进行分类。为了实现这一目标,我们利用了广泛的电子病历数据库,并结合了频繁安排挖掘和不成比例分析。我们的结果已经确定了与不成比例的频繁安排有关的几种不良药物事件是如何表征的,与相似的方法相比,我们着重强调了这种安排如何能够提供更多的基于时间的信息。

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