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Comparisons of the performance of different statistical tests for time-to-event analysis with confounding factors: practical illustrations in kidney transplantation

机译:具有混杂因素的事件统计分析在不同统计测试中的性能比较:肾脏移植的实际例证

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摘要

Confounding factors are commonly encountered in observational studies. Several confounder-adjusted tests to compare survival between differently exposed subjects were proposed. However, only few studies have compared their performances regarding type I error rates, and no study exists evaluating their type II error rates. In this paper, we performed a comparative simulation study based on two different applications in kidney transplantation research. Our results showed that the propensity score-based inverse probabilityweighting (IPW) log-rank test proposed by Xie and Liu (2005) can be recommended as a first descriptive approach as it provides adjusted survival curves and has acceptable type I and II error rates. Even better performance was observed for the Wald test of the parameter corresponding to the exposure variable in a multivariable-adjusted Cox model. This last result is of primary interest regarding the exponentially increasing use of propensity score-based methods in the literature. Copyright (C) 2015 John Wiley & Sons, Ltd.
机译:观察研究中经常遇到混杂因素。提出了一些混杂因素调整的测试,以比较不同暴露对象之间的生存期。但是,只有很少的研究比较了它们在I型错误率方面的性能,并且没有研究评估其II型错误率。在本文中,我们基于肾脏移植研究中的两种不同应用进行了比较模拟研究。我们的结果表明,Xie和Liu(2005)提出的基于倾向得分的逆概率加权(IPW)对数秩检验可以推荐作为第一种描述性方法,因为它提供了可调整的生存曲线,并且具有可接受的I和II型错误率。在多变量调整的Cox模型中,与暴露变量相对应的参数的Wald检验观察到更好的性能。对于文献中基于倾向得分的方法的使用呈指数增长,这是最后一个令人感兴趣的结果。版权所有(C)2015 John Wiley&Sons,Ltd.

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