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首页> 外文期刊>Journal of Statistical Planning and Inference >Sequential tests of multiple hypotheses controlling type I and II familywise error rates
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Sequential tests of multiple hypotheses controlling type I and II familywise error rates

机译:控制I型和II型家庭错误率的多个假设的顺序检验

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This paper addresses the following general scenario: a scientist wishes to perform a battery of experiments, each generating a sequential stream of data, to investigate some phenomenon. The scientist would like to control the overall error rate in order to draw statistically valid conclusions from each experiment, while being as efficient as possible. The between-stream data may differ in distribution and dimension but also may be highly correlated, even duplicated exactly in some cases. Treating each experiment as a hypothesis test and adopting the familywise error rate (FWER) metric, we give a procedure that sequentially tests each hypothesis while controlling both the type I and II FWERs regardless of the between-stream correlation, and only requires arbitrary sequential test statistics that control the error rates for a given stream in isolation. The proposed procedure, which we call the sequential Holm procedure because of its inspiration from Holm's (1979) seminal fixed-sample procedure, shows simultaneous savings in expected sample size and less conservative error control relative to fixed sample, sequential Bonferroni, and other recently proposed sequential procedures in a simulation study.
机译:本文介绍了以下一般情况:科学家希望进行一系列实验,每个实验都产生顺序的数据流,以研究某种现象。科学家希望控制总体错误率,以便从每个实验中得出统计上有效的结论,同时尽可能提高效率。流间数据可能在分布和维度上有所不同,但也可能具有高度相关性,甚至在某些情况下甚至是完全重复的。将每个实验视为假设检验并采用家庭错误率(FWER)度量,我们给出了一个程序,该顺序测试每个假设,同时控制I型和II型FWER,而不考虑流之间的相关性,并且仅需要任意顺序测试统计信息,用于单独控制给定流的错误率。拟议的程序之所以称为顺序Holm程序,是因为它受到了Holm(1979)的经典固定样本程序的启发,显示出相对于固定样本,顺序Bonferroni和其他最近提出的方法,可以同时节省预期的样本量并减少保守的误差控制模拟研究中的顺序过程。

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