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A nonparametric test for equality of survival medians

机译:生存中位数相等性的非参数检验

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摘要

In clinical trials, researchers often encounter testing for equality of survival medians across study arms based on censored data. Even though Brookmeyer and Crowley introduced a method for comparing medians of several survival distributions, still some researchers misuse procedures that are designed for testing the homogeneity of survival curves. These procedures include the log-rank, Wilcoxon, and Cox models. This practice leads to inflation of the probability of a type I error, particularly when the underlying assumptions of these procedures are not met. We propose a new nonparametric method for testing the equality of several survival medians based on the Kaplan-Meier estimation from randomly right-censored data. We derive asymptotic properties of this test statistic. Through simulations, we compute and compare the empirical probabilities of type I errors and the power of this new procedure with those of the Brookmeyer-Crowley, log-rank, and Wilcoxon methods. Our simulation results indicate that the performance of these test procedures depends on the level of censoring and appropriateness of the underlying assumptions. When the objective is to test homogeneity of survival medians rather than survival curves and the assumptions of these tests are not met, some of these procedures severely inflate the probability of a type I error. In these situations, our test statistic provides an alternative to the Brookmeyer-Crowley test.
机译:在临床试验中,研究人员经常会根据审查数据来测试各研究组的生存中位数是否相等。尽管Brookmeyer和Crowley提出了一种比较几种生存分布的中位数的方法,但仍有一些研究人员滥用了旨在测试生存曲线同质性的程序。这些过程包括对数秩,Wilcoxon和Cox模型。这种做法导致I型错误的可能性增加,尤其是在不满足这些程序的基本假设的情况下。我们提出了一种新的非参数方法,用于根据随机右删失数据的Kaplan-Meier估计检验几个生存中位数的相等性。我们得出该检验统计量的渐近性质。通过仿真,我们计算并比较了I型错误的经验概率以及该新过程与Brookmeyer-Crowley,对数秩和Wilcoxon方法的经验概率。我们的仿真结果表明,这些测试程序的性能取决于检查级别和基本假设的适当性。当目标是测试生存中位数而不是生存曲线的同质性,并且不满足这些测试的假设时,其中一些过程会严重提高I型错误的可能性。在这种情况下,我们的测试统计量可以代替Brookmeyer-Crowley检验。

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