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A survey on multivariate chi-square distributions and their applications in testing multiple hypotheses

机译:多元卡方分布的调查及其在检验多个假设中的应用

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We are concerned with three different types of multivariate chi-square distributions. Their members play important roles as limiting distributions of vectors of test statistics in several applications of multiple hypotheses testing. We explain these applications and consider the computation of multiplicity-adjusted p-values under the respective global hypothesis. By means of numerical examples, we demonstrate how much gain in level exhaustion or, equivalently, power can be achieved with corresponding multivariate multiple tests compared with approaches which are only based on univariate marginal distributions and do not take the dependence structure among the test statistics into account. As a further contribution of independent value, we provide an overview of essentially all analytic formulas for computing multivariate chi-square probabilities of the considered types which are available up to present. These formulas were scattered in the previous literature and are presented here in a unified manner.
机译:我们关注三种不同类型的多元卡方分布。他们的成员在限制多个假设检验的多种应用中,扮演着限制检验统计量向量分布的重要角色。我们将解释这些应用程序,并考虑在相应的全局假设下计算经多重调整的p值。通过数值示例,我们证明了与仅基于单变量边际分布并且不将测试统计数据之间的依存关系纳入其中的方法相比,使用相应的多元多重测试可以在水平耗竭或等效功率方面获得多少收益。帐户。作为独立价值的进一步贡献,我们提供了基本上所有用于计算所考虑类型的多元卡方概率的解析公式的概述,这些概率到目前为止都是可用的。这些公式散布在以前的文献中,并以统一的方式呈现在此处。

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