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首页> 外文期刊>Test: An Official Journal of the Spanish Society of Statistics and Operations Research >Bootstrap- and permutation-based inference for the Mann-Whitney effect for right-censored and tied data
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Bootstrap- and permutation-based inference for the Mann-Whitney effect for right-censored and tied data

机译:基于引导和允许的符合右审查和绑定数据的粉丝效果的引导和排列的推断

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摘要

The Mann-Whitney effect is an intuitive measure for discriminating two survival distributions. Here we analyse various inference techniques for this parameter in a two-sample survival setting with independent right-censoring, where the survival times are even allowed to be discretely distributed. This allows for ties in the data and requires the introduction of normalized versions of Kaplan-Meier estimators from which adequate point estimates are deduced. Asymptotically exact inference procedures based on standard normal, bootstrap, and permutation quantiles are developed and compared in simulations. Here, the asymptotically robust andunder exchangeable dataeven finitely exact permutation procedure turned out to be the best. Finally, all procedures are illustrated using a real data set.
机译:Mann-Whitney效果是识别两个生存分布的直观措施。 在这里,我们将该参数的各种推理技术分析在具有独立右审查的两个样本生存环境中,其中甚至允许存活时间分布。 这允许数据中的联系,并要求推出推导了推导了足够点估计的Kaplan-Meier估计的标准化版本。 基于标准普通,自举和置换量度的渐近精确推断过程并在模拟中进行比较。 这里,有限地确切的置换过程的渐近稳健的谐波和更新的Dataeven结果证明是最好的。 最后,使用真实数据集来说明所有过程。

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