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Multiple imputation for competing risks regression with interval-censored data

机译:具有区间检查数据的竞争风险回归的多重插补

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We present here an extension of Pan's multiple imputation approach to Cox regression in the setting of interval-censored competing risks data. The idea is to convert interval-censored data into multiple sets of complete or right-censored data and to use partial likelihood methods to analyse them. The process is iterated, and at each step, the coefficient of interest, its variance-covariance matrix, and the baseline cumulative incidence function are updated from multiple posterior estimates derived from the Fine and Gray sub-distribution hazards regression given augmented data. Through simulation of patients at risks of failure from two causes, and following a prescheduled programme allowing for informative interval-censoring mechanisms, we show that the proposed method results in more accurate coefficient estimates as compared to the simple imputation approach. We have implemented the method in the MIICD R package, available on the CRAN website.
机译:在此,我们介绍了在区间删减竞争风险数据的设置中Pan的多重插补方法对Cox回归的扩展。这个想法是将区间删节的数据转换成多套完整或右删节的数据,并使用偏似然法进行分析。迭代该过程,并在每个步骤中,根据给定的扩充数据,根据从Fine和Gray子分布风险回归得出的多个后验估计,更新感兴趣的系数,其方差-协方差矩阵和基准累积发生率函数。通过模拟有两种原因导致失败风险的患者,并遵循允许信息间隔检查机制的预定程序,我们证明了与简单插补方法相比,该方法可得出更准确的系数估算值。我们已经在CRAN网站上的MIICD R包中实现了该方法。

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