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Modularity, noise, and natural selection

机译:模块化,噪声和自然选择

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摘要

Most biological systems are formed by component parts that are to some degree interrelated. Groups of parts that are more associated among themselves and are relatively autonomous from others are called modules. One of the consequences of modularity is that biological systems usually present an unequal distribution of the genetic variation among traits. Estimating the covariance matrix that describes these systems is a difficult problem due to a number of factors such as poor sample sizes and measurement errors. We show that this problem will be exacerbated whenever matrix inversion is required, as in directional selection reconstruction analysis. We explore the consequences of varying degrees of modularity and signal-to-noise ratio on selection reconstruction. We then present and test the efficiency of available methods for controlling noise in matrix estimates. In our simulations, controlling matrices for noise vastly improves the reconstruction of selection gradients. We also perform an analysis of selection gradients reconstruction over a New World Monkeys skull database to illustrate the impact of noise on such analyses. Noise-controlled estimates render far more plausible interpretations that are in full agreement with previous results.
机译:大多数生物系统是由某种程度上相互关联的组成部分组成的。彼此之间关联性更高且彼此之间相对独立的零件组称为模块。模块化的后果之一是生物系统通常会在性状之间呈现出不均等的遗传变异分布。由于许多因素,例如不良的样本量和测量误差,估计描述这些系统的协方差矩阵是一个难题。我们表明,与方向选择重建分析一样,只要需要矩阵求逆,此问题就会加剧。我们探讨了不同程度的模块化和信噪比对选择重建的影响。然后,我们介绍并测试用于控制矩阵估计中噪声的可用方法的效率。在我们的仿真中,控制噪声矩阵极大地改善了选择梯度的重建。我们还对“新世界猴子”头骨数据库进行了选择梯度重构的分析,以说明噪声对此类分析的影响。噪声控制的估算值给出了更合理的解释,与先前的结果完全一致。

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