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Estimating genetic covariance functions assuming a parametric correlation structure for environmental effects

机译:估计遗传协方差函数,假定环境效应具有参数相关结构

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摘要

A random regression model for the analysis of "repeated" records in animal breeding is described which combines a random regression approach for additive genetic and other random effects with the assumption of a parametric correlation structure for within animal covariances. Both stationary and non-stationary correlation models involving a small number of parameters are considered. Heterogeneity in within animal variances is modelled through polynomial variance functions. Estimation of parameters describing the dispersion structure of such model by restricted maximum likelihood via an "average information" algorithm is outlined. An application to mature weight records of beef cow is given, and results are contrasted to those from analyses fitting sets of random regression coefficients for permanent environmental effects.
机译:描述了一种用于分析动物育种中“重复”记录的随机回归模型,该模型结合了用于累加遗传和其他随机效应的随机回归方法,并假设了动物协方差内的参数相关结构。考虑了涉及少量参数的固定和非固定相关模型。动物差异内的异质性是通过多项式方差函数建模的。概述了通过“平均信息”算法通过限制的最大似然来描述描述这种模型的色散结构的参数的估计。给出了在肉牛成熟体重记录中的应用,并将结果与​​对永久环境影响的随机回归系数的拟合集进行了对比。

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