首页> 外文期刊>Journal of dairy science >Comparison of Random Regression Models with Legendre Polynomials and Linear Splines for Production Traits and Somatic Cell Score of Canadian Holstein Cows
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Comparison of Random Regression Models with Legendre Polynomials and Linear Splines for Production Traits and Somatic Cell Score of Canadian Holstein Cows

机译:加拿大荷斯坦奶牛生产性状和体细胞评分与Legendre多项式和线性样条的随机回归模型的比较

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摘要

A random regression model with both random and fixed regressions fitted by Legendre polynomials of order 4 was compared with 3 alternative models fitting linear splines with 4, 5, or 6 knots. The effects common for all models were a herd-test-date effect, fixed regressions on days in milk (DIM) nested within region-age-season of calving class, and random regressions for additive genetic and permanent environmental effects. Data were test-day milk, fat and protein yields, and SCS recorded from 5 to 365 DIM during the first 3 lactations of Canadian Holstein cows. A random sample of 50 herds consisting of 96,756 test-day records was generated to estimate variance components within a Bayesian framework via Gibbs sampling. Two sets of genetic evaluations were subsequently carried out to investigate performance of the 4 models. Models were compared by graphical inspection of variance functions, goodness of fit, error of prediction of breeding values, and stability of estimated breeding values. Models with splines gave lower estimates of variances at extremes of lactations than the model with Legendre polynomials. Differences among models in goodness of fit measured by percentages of squared bias, correlations between predicted and observed records, and residual variances were small. The deviance information criterion favored the spline model with 6 knots. Smaller error of prediction and higher stability of estimated breeding values were achieved by using spline models with 5 and 6 knots compared with the model with Legendre polynomials. In general, the spline model with 6 knots had the best overall performance based upon the considered model comparison criteria.
机译:比较了由4级勒让德多项式拟合的具有随机和固定回归的随机回归模型与拟合4、5或6节的线性样条的3个替代模型的比较。所有模型的共同影响是牛群测试日期影响,产犊年龄区域季节内嵌套的固定日乳(DIM)固定回归以及加性遗传和永久环境影响的随机回归。数据为测试日牛奶,脂肪和蛋白质的产量,在加拿大荷斯坦奶牛的前3次哺乳期间,SCS记录为5至365 DIM。生成了由96,756个测试日记录组成的50个牛群的随机样本,以通过Gibbs采样估计贝叶斯框架内的方差分量。随后进行了两组遗传评估,以研究4种模型的性能。通过对方差函数,拟合优度,育种值预测的误差以及估计育种值的稳定性的图形检查来比较模型。带有样条线的模型在哺乳期极端情况下的方差估计值比带有Legendre多项式的模型要低。模型之间在拟合优度上的差异由平方偏差的百分数,预测的记录与观察的记录之间的相关性以及剩余方差来衡量。偏差信息准则偏向于具有6节的样条模型。与具有勒让德多项式的模型相比,通过使用5节和6节的样条模型,可以实现较小的预测误差和较高的育种估计值稳定性。通常,根据所考虑的模型比较标准,具有6个结的样条线模型具有最佳的总体性能。

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