Determination of the Best Model to Predict Milk Dry Matter in High Milk Yielding Dairy Cattle

Burcu Kurnaz, Hasan Önder, D. Piwczyński, M. Kolenda, B. Sitkowska
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引用次数: 1

Abstract

This study was aimed to determinate the best model to predict milk dry matter in high milk yielding dairy cattle. Level of milk dry matter (MDM) (%) is of great importance. The material of this study consisted of 2208 milking records of dairy cattle yielding more than 40 l per day from Polish Holstein Friesian population. In this study to estimate the milk dry matter, regression of daily milk yield (MY) (l), milk urea (MU), milk protein (MP) (%) and milk fat (MF) (%) as explanatory variables were used. To estimate the best fitting, curve estimation was used. Estimation of the curves showed that milk urea was cubic, milk yield, milk protein and milk fat were quadratic. To avoid multicollinearity where VIF value greater than 10, stepwise variable selection procedure was used. After variable selection the regression equation was obtained as MDM=2.879+1.290*MF+2.395*MP-0.039*MF^2–0.225*MP^2 with 0.946 coefficient of determination. Our results showed that milk fat (%) and milk protein (%) can be used to estimate the milk dry matter (%) with a great achievement in high milk yielding dairy cattle.
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高产奶牛乳干物质预测最佳模型的确定
本研究旨在确定高产奶量奶牛乳干物质的最佳预测模型。乳干物质(MDM)水平(%)非常重要。本研究的材料包括来自波兰荷斯坦弗里西亚种群的2208头奶牛的挤奶记录,每天产奶量超过40升。本研究采用日产奶量(MY) (l)、乳尿素(MU)、乳蛋白(MP)(%)和乳脂肪(MF)(%)的回归作为解释变量来估计乳干物质。为了估计最佳拟合,使用曲线估计。曲线估计表明,乳尿素为立方型,产奶量、乳蛋白和乳脂为二次型。为了避免VIF值大于10的多重共线性,采用逐步变量选择程序。变量选择后,得到回归方程为MDM=2.879+1.290*MF+2.395*MP-0.039*MF^2 - 0.225*MP^2,决定系数为0.946。结果表明,用乳脂(%)和乳蛋白(%)可以较好地估算出高产奶牛的乳干物质(%)。
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审稿时长
8 weeks
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