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Highly efficient hypothesis testing methods for regression-type tests with correlated observations and heterogeneous variance structure

机译:具有相关观测值和异构方差结构的回归类型检验的高效假设检验方法

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摘要

BackgroundFor many practical hypothesis testing (H-T) applications, the data are correlated and/or with heterogeneous variance structure. The regression t-test for weighted linear mixed-effects regression (LMER) is a legitimate choice because it accounts for complex covariance structure; however, high computational costs and occasional convergence issues make it impractical for analyzing high-throughput data. In this paper, we propose computationally efficient parametric and semiparametric tests based on a set of specialized matrix techniques dubbed as the PB-transformation. The PB-transformation has two advantages: 1. The PB-transformed data will have a scalar variance-covariance matrix. 2. The original H-T problem will be reduced to an equivalent one-sample H-T problem. The transformed problem can then be approached by either the one-sample Student’s t-test or Wilcoxon signed rank test.
机译:背景对于许多实际的假设检验(H-T)应用,数据都是相关的和/或具有异构方差结构。加权线性混合效应回归(LMER)的回归t检验是一个合理的选择,因为它考虑了复杂的协方差结构。但是,高昂的计算成本和偶发的收敛问题使它无法分析高通量数据。在本文中,我们基于称为PB转换的一组专用矩阵技术,提出了计算有效的参数和半参数测试。 PB转换具有两个优点:1. PB转换的数据将具有标量方差-协方差矩阵。 2.原始的H-T问题将被简化为等效的一样本H-T问题。然后,可以通过单样本学生t检验或Wilcoxon签名秩检验来解决已转化的问题。

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