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有不止一种方法可以对 G 矩阵进行剥皮。

There is more than one way to skin a G matrix.

机构信息

Department of Biology, University of California, Riverside, CA 92521, USA.

出版信息

J Evol Biol. 2012 Jun;25(6):1113-26. doi: 10.1111/j.1420-9101.2012.02500.x. Epub 2012 Apr 5.

Abstract

Because of its importance in directing evolutionary trajectories, there has been considerable interest in comparing variation among genetic variance-covariance (G) matrices. Numerous statistical approaches have been suggested but no general analysis of the relationship among these methods has previously been published. In this study, we used data from a half-sib experiment and simulations to explore the results of applying eight tests (T method, modified Mantel test, Bartlett's test, Flury hierarchy, jackknife-manova, jackknife-eigenvalue test, random skewers, selection skewers). Whereas a randomization approach produced acceptable estimates, those from a bootstrap were typically unacceptable and we recommend randomization as the preferred method. All methods except the jackknife-eigenvalue test gave similar results although a fine-scale analysis suggested that the former group can be subdivided into two or possibly three groups, hierarchical tests, skewers and the rest (jackknife-manova, modified Mantel, T method, probably Bartlett's). An advantage of the jackknife methods is that they permit tests of association with other factors, such as in this case, temperature and sex. We recommend applying all the tests described in this article, with the exception of the T method, and provide R functions for this purpose.

摘要

由于其在指导进化轨迹方面的重要性,人们对比较遗传方差协方差(G)矩阵之间的变异产生了浓厚的兴趣。已经提出了许多统计方法,但以前没有对这些方法之间的关系进行综合分析。在这项研究中,我们使用半同胞实验和模拟数据来探索应用八种检验方法(T 检验方法、修正 Mantel 检验、Bartlett 检验、Flury 等级、jackknife- MANOVA、jackknife-特征值检验、随机串检验、选择串检验)的结果。虽然随机化方法可以得到可接受的估计,但自举法的结果通常不可接受,因此我们建议使用随机化作为首选方法。除了 jackknife-特征值检验之外,所有方法的结果都相似,尽管细尺度分析表明,前一组可以细分为两组或可能三组,等级检验、串检验和其他检验(jackknife-MANOVA、修正 Mantel 检验、T 检验、可能的 Bartlett 检验)。jackknife 方法的一个优点是它们允许与其他因素(如在这种情况下的温度和性别)进行关联检验。我们建议应用本文描述的所有检验方法,但不包括 T 检验,并为此提供了 R 函数。

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