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Semiparametric additive rates model for recurrent events data with intermittent gaps

机译:半造型添加剂率模型用于经常性事件数据间歇性间隙

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Statistical methods for analyzing recurrent events have attracted significant attention. The majority of existing works consider situations in which subjects are observed over time periods and events of interest that occurred during the course of follow‐up are recorded. In some applications, a subject may leave the study for a period of time and then resume due to various reasons. During the absence, which is referred to as an intermittent gap in this study, it may be impossible to observe a recording of the event. A naive analysis disregards gaps and considers events to be a typical recurrent event dataset. However, this may result in biased estimations and misleading results. In this study, we build an additive rates model for recurrent event data considering intermittent gaps. We provide the asymptotic theories behind the proposed model, as well as the goodness of fit between observed and modeled values. Simulation studies reveal that the estimations perform well if intermittent gaps are taken into account. In addition, we utilized the longitudinal cohort of elderly patients who have type 2 diabetes and at least one record of a severe recurrent complication, hypoglycemia, from the National Health Insurance Research Database in Taiwan to demonstrate the proposed method.
机译:分析经常性事件的统计方法引起了重大关注。大多数现有工程考虑在随着时间段内观察到受试者的情况,并记录了随访期间发生的兴趣事件。在某些应用中,受试者可以在一段时间内离开这项研究,然后由于各种原因而恢复。在本研究中被称为间歇性间隙的缺席期间,可能不可能观察到事件的记录。一个天真的分析忽视了差距,并认为事件是典型的经常性事件数据集。但是,这可能导致偏见的估计和误导性结果。在这项研究中,我们构建了考虑间歇间隙的复发事件数据的添加剂率模型。我们提供所提出的模型背后的渐近理论,以及在观察到和建模值之间适合的良好。仿真研究表明,如果考虑间歇间隙,估计表现良好。此外,我们利用纵向患者的老年患者,患有2型糖尿病和至少一项严重的复发并发症,低血糖,来自台湾国家健康保险研究数据库的低血糖,以证明该方法。

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