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Rank-based inverse normal transformations are increasingly used, but are they merited?

机译:基于等级的逆正态变换越来越多地被使用,但是它们值得吗?

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摘要

Many complex traits studied in genetics have markedly non-normal distributions. This often implies that the assumption of normally distributed residuals has been violated. Recently, inverse normal transformations (INTs) have gained popularity among genetics researchers and are implemented as an option in several software packages. Despite this increasing use, we are unaware of extensive simulations or mathematical proofs showing that INTs have desirable statistical properties in the context of genetic studies. We show that INTs do not necessarily maintain proper Type 1 error control and can also reduce statistical power in some circumstances. Many alternatives to INTs exist. Therefore, we contend that there is a lack of justification for performing parametric statistical procedures on INTs with the exceptions of simple designs with moderate to large sample sizes, which makes permutation testing computationally infeasible and where maximum likelihood testing is used. Rigorous research evaluating the utility of INTs seems warranted.
机译:遗传学研究的许多复杂性状具有明显的非正态分布。这通常意味着违反了正态分布残差的假设。最近,逆正态转换(INTs)在遗传学研究人员中越来越流行,并已作为几种软件包中的一个选项实现。尽管使用量增加了,但我们仍未获得广泛的模拟或数学证明,这些模拟或数学证明表明INT在遗传研究中具有理想的统计特性。我们表明,INT不一定保持适当的Type 1错误控制,并且在某些情况下还可以降低统计功效。存在许多INT的替代方法。因此,我们认为缺乏对在INT上执行参数统计程序的理由,除了具有中等到大样本量的简单设计之外,这使得排列检验在计算上不可行,并且使用了最大似然检验。似乎有必要对INT的效用进行严格的研究。

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