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首页> 外文期刊>Scandinavian journal of statistics >MMCTest-A Safe Algorithm for Implementing Multiple Monte Carlo Tests
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MMCTest-A Safe Algorithm for Implementing Multiple Monte Carlo Tests

机译:MMCTest-一种实现多个蒙特卡洛测试的安全算法

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摘要

Consider testing multiple hypotheses using tests that can only be evaluated by simulation, such as permutation tests or bootstrap tests. This article introduces MMCTest, a sequential algorithm that gives, with arbitrarily high probability, the same classification as a specific multiple testing procedure applied to ideal p-values. The method can be used with a class of multiple testing procedures that include the Benjamini and Hochberg false discovery rate procedure and the Bonferroni correction controlling the family wise error rate. One of the key features of the algorithm is that it stops sampling for all the hypotheses that can already be decided as being rejected or non-rejected. MMCTest can be interrupted at any stage and then returns three sets of hypotheses: the rejected, the non-rejected and the undecided hypotheses. A simulation study motivated by actual biological data shows that MMCTest is usable in practice and that, despite the additional guarantee, it can be computationally more efficient than other methods.
机译:考虑使用只能通过模拟评估的测试来测试多个假设,例如置换测试或自举测试。本文介绍了MMCTest,这是一种顺序算法,以任意高的概率给出与应用于理想p值的特定多重测试过程相同的分类。该方法可以与多种测试程序一起使用,包括Benjamini和Hochberg的错误发现率程序以及控制家族明智错误率的Bonferroni校正。该算法的主要特征之一是,它停止对已经可以确定为被拒绝或未被拒绝的所有假设进行采样。 MMCTest可以在任何阶段被中断,然后返回三组假设:被拒绝的,未拒绝的和不确定的假设。根据实际生物学数据进行的模拟研究表明,MMCTest在实践中是可用的,尽管有额外的保证,但它在计算上比其他方法更有效。

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