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Using quantile regression for fitting lactation curve in dairy cows

机译:使用量子回归在奶牛拟合哺乳曲线

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The main objective of this study was to compare the performance of different 'nonlinear quantile regression' models evaluated at the tau th quantile (0 center dot 25, 0 center dot 50, and 0 center dot 75) of milk production traits and somatic cell score (SCS) in Iranian Holstein dairy cows. Data were collected by the Animal Breeding Center of Iran from 1991 to 2011, comprising 101 051 monthly milk production traits and SCS records of 13 977 cows in 183 herds. Incomplete gamma (Wood), exponential (Wilmink), Dijkstra and polynomial (Ali & Schaeffer) functions were implemented in the quantile regression. Residual mean square, Akaike information criterion and log-likelihood from different models and quantiles indicated that in the same quantile, the best models were Wilmink for milk yield, Dijkstra for fat percentage and Ali & Schaeffer for protein percentage. Over all models the best model fit occurred at quantile 0 center dot 50 for milk yield, fat and protein percentage, whereas, for SCS the 0 center dot 25th quantile was best. The best model to describe SCS was Dijkstra at quantiles 0 center dot 25 and 0 center dot 50, and Ali & Schaeffer at quantile 0 center dot 75. Wood function had the worst performance amongst all traits. Quantile regression is specifically appropriate for SCS which has a mixed multimodal distribution.
机译:本研究的主要目的是比较Tau Thantile(0中心点25,0中心点50和0中心点75)在牛奶生产性状和体细胞分数上进行评估的不同“非线性分数回归”模型的性能(SCS)在伊朗荷斯坦奶牛奶牛。 1991年至2011年由伊朗的动物养殖中心收集数据,包括101051个月牛奶生产性状和13个977母牛的SCS记录。不完全伽马(木材),指数(WILMINK),DIJKSTRA和多项式(ALI&SCHAEFFER)函数在量化的回归中实施。来自不同模型和量子的Akaike信息标准和数量的差异均值和数量表明,在相同的米兰中,最好的模型是牛奶产量的Wilmink,Dijkstra用于脂肪百分比和Ali&Schaeffer用于蛋白质百分比。在所有型号上,最佳型号适合在Smianile 0中心点50发生牛奶产量,脂肪和蛋白质百分比,而对于SCS 0中心点25分钟最佳。描述SCS的最佳模型是Dijkstra在Smastiles 0 Center Dot 25和0中心点50,Smastile 0中心点75的Ali&Schaeffer。木功能在所有特征中具有最糟糕的性能。定量回归专门适用于具有混合多模态分布的SC。

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