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Rotation-Based Multiple Testing in the Multivariate Linear Model

机译:基于旋转的多变量线性模型的多变量测试

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摘要

In observational microarray studies, issues of confounding invariably arise. One approach to account for measured confounders is to include them as covariates in a multivariate linear model. For this model, however, the application of permutation-based multiple testing procedures is problematic because exchangeability of responses, in general, does not hold. Nevertheless, it is possible to achieve rotatability of transformed responses at the cost of a distributional assumption. We argue that rotation-based multiple testing, by allowing for adjustments for confounding, represents an important extension of permutation-based multiple testing procedures. The proposed methodology is illustrated with a microarray observational study on breast cancer tumors. Software to perform the procedure described in this article is available in the flip R package.
机译:在观察微阵列研究中,混淆的问题总是出现。 考虑测量混淆的一种方法是将它们作为多变量线性模型中的协变量。 然而,对于该模型,基于置换的多个测试程序的应用是有问题的,因为响应的交换性通常不会持有。 然而,可以以分布假设的成本实现转化的响应的可旋转性。 我们认为基于旋转的多种测试,通过允许对混淆进行调整,表示基于置换的多个测试程序的重要扩展。 所提出的方法用乳腺癌肿瘤的微阵列观察研究说明。 执行本文中描述的程序的软件可在翻转R包中使用。

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