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Measuring evolutionary constraints through the dimensionality of the phenotype: Adjusted bootstrap method to estimate rank of phenotypic covariance matrices

机译:通过表型的维数来衡量进化约束:调整的 bootstrap 方法估计表型协方差矩阵的秩

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摘要

The potential and direction of phenotypic evolution is constrained by the distribution of genetic variation for the traits as described by the phenotypic (P) and genetic covariance matrices (G). The rank of the covariance matrix reflects the number of independent variational dimensions of the phenotype. Covariance matrices with less than full rank indicate lack of variation in some directions of the phenotype space and thus are an indication of absolute evolutionary constraints. Because selection acts upon phenotypic variation, the rank of P represents the upper limit of the dimensionality in G, relevant for selection response. The limitations of current methods to estimate matrix rank motivated us to analyze and adjust a bootstrap method and evaluate its performance by simulation. The results show that the modified bootstrap method (ABRE) gives reliable and rather conservative rank estimates when the sample size is sufficient for the number of variables studied (the sample size is at least five-fold the number of variables). Applying the method to various datasets suggests high phenotypic dimensionality in all cases. The analysis thus provides no evidence for absolute evolutionary constraints.
机译:表型进化的潜力和方向受到表型(P)和遗传协方差矩阵(G)所描述的性状遗传变异分布的限制。协方差矩阵的秩反映了表型的独立变分维度的数量。小于完整秩的协方差矩阵表明表型空间的某些方向缺乏变异,因此表明了绝对的进化约束。由于选择作用于表型变异,因此 P 的秩表示与选择响应相关的 G 维数上限。当前估计矩阵秩的方法的局限性促使我们分析和调整自举方法,并通过仿真评估其性能。结果表明,当样本量足以满足所研究的变量数量(样本量至少是变量数量的五倍)时,修正的 bootstrap 方法 (ABRE) 给出了可靠且相当保守的秩估计。将该方法应用于各种数据集表明,在所有情况下都具有较高的表型维数。因此,该分析没有为绝对的进化限制提供任何证据。

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