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A Framework for Monte Carlo based Multiple Testing

机译:基于蒙特卡洛的多重测试框架

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We are concerned with a situation in which we would like to test multiple hypotheses with tests whose p-values cannot be computed explicitly but can be approximated using Monte Carlo simulation. This scenario occurs widely in practice. We are interested in obtaining the same rejections and non-rejections as the ones obtained if the p-values for all hypotheses had been available. The present article introduces a framework for this scenario by providing a generic algorithm for a general multiple testing procedure. We establish conditions that guarantee that the rejections and non-rejections obtained through Monte Carlo simulations are identical to the ones obtained with the p-values. Our framework is applicable to a general class of step-up and step-down procedures, which includes many established multiple testing corrections such as the ones of Bonferroni, Holm, Sidak, Hochberg or Benjamini-Hochberg. Moreover, we show how to use our framework to improve algorithms available in the literature in such a way as to yield theoretical guarantees on their results. These modifications can easily be implemented in practice and lead to a particular way of reporting multiple testing results as three sets together with an error bound on their correctness, demonstrated exemplarily using a real biological dataset.
机译:我们关心的情况是,我们想用不能明确计算p值但可以使用蒙特卡罗模拟近似的检验来检验多个假设。这种情况在实践中广泛存在。如果所有假设的p值均可用,我们有兴趣获得与拒绝和不拒绝相同的拒绝和不拒绝。本文通过为一般的多重测试过程提供一种通用的算法,介绍了这种情况的框架。我们建立条件,以确保通过蒙特卡洛模拟获得的拒绝和不拒绝与使用p值获得的拒绝和不拒绝相同。我们的框架适用于一般类别的升压和降压程序,其中包括许多已建立的多项测试更正,例如Bonferroni,Holm,Sidak,Hochberg或Benjamini-Hochberg。此外,我们展示了如何使用我们的框架来改进文献中可用的算法,从而为其结果提供理论上的保证。这些修改可以在实践中轻松实现,并导致一种特定的方式报告多个测试结果,这些测试结果是三组以及正确性上的误差,这是使用真实的生物学数据集示例性演示的。

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