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首页> 外文期刊>Statistics in medicine >Analysis of recurrent gap time data using the weighted risk-set method and the modified within-cluster resampling method.
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Analysis of recurrent gap time data using the weighted risk-set method and the modified within-cluster resampling method.

机译:使用加权风险集方法和改进的集群内重采样方法分析经常性间隔时间数据。

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The gap times between recurrent events are often of primary interest in medical and epidemiology studies. The observed gap times cannot be naively treated as clustered survival data in analysis because of the sequential structure of recurrent events. This paper introduces two important building blocks, the averaged counting process and the averaged at-risk process, for the development of the weighted risk-set (WRS) estimation methods. We demonstrate that with the use of these two empirical processes, existing risk-set based methods for univariate survival time data can be easily extended to analyze recurrent gap times. Additionally, we propose a modified within-cluster resampling (MWCR) method that can be easily implemented in standard software. We show that the MWCR estimators are asymptotically equivalent to the WRS estimators. An analysis of hospitalization data from the Danish Psychiatric Central Register is presented to illustrate the proposed methods.
机译:复发事件之间的间隔时间通常是医学和流行病学研究的主要关注点。由于周期性事件的顺序结构,在分析中观察到的间隔时间不能天真地当作聚类的生存数据。本文介绍了两个重要的构成部分,即平均计数过程和平均风险过程,用于开发加权风险集(WRS)估计方法。我们证明,通过使用这两个经验过程,可以轻松地扩展现有的基于风险集的单变量生存时间数据方法来分析经常性的间隔时间。此外,我们提出了一种改进的集群内重采样(MWCR)方法,该方法可以在标准软件中轻松实现。我们显示MWCR估计量渐近等效于WRS估计量。分析了来自丹麦精神病学中央登记处的住院数据,以说明所提出的方法。

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