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Boosting the Power of the Sequence Kernel Association Test by Properly Estimating Its Null Distribution

机译:通过正确估计空核分布来增强序列核关联测试的能力

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摘要

The sequence kernel association test (SKAT) is probably the most popular statistical test used in rare-variant association studies. Its null distribution involves unknown parameters that need to be estimated. The current estimation method has a valid type I error rate, but the power is compromised given that all subjects are used for estimation. I have developed an estimation method that uses only control subjects. Named SKAT+, this method uses the same test statistic as SKAT but differs in the way the null distribution is estimated. Extensive simulation studies and applications to data from the Genetic Analysis Workshop 17 and the Ocular Hypertension Treatment Study demonstrated that SKAT+ has superior power over SKAT while maintaining control over the type I error rate. This method is applicable to extensions of SKAT in the literature.
机译:序列核关联检验(SKAT)可能是稀有变异关联研究中使用最广泛的统计检验。其空分布涉及需要估计的未知参数。当前的估计方法具有有效的I类错误率,但是考虑到所有对象都用于估计,因此会降低功效。我开发了一种仅使用控制对象的估计方法。名为SKAT +,此方法使用与SKAT相同的测试统计量,但在估计空分布的方式上有所不同。广泛的模拟研究以及对来自遗传分析研讨会17和眼部高血压治疗研究的数据的应用表明,SKAT +在保持I型错误率控制的同时,具有优于SKAT的强大功能。该方法适用于文献中SKAT的扩展。

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