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Prediction of Carcass Composition Using Carcass Grading Traits in Hanwoo Steers

机译:使用Hanwoo ers牛的Gra体分级特征预测Car体成分

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摘要

The prediction of carcass composition in Hanwoo steers is very important for value-based marketing, and the improvement of prediction accuracy and precision can be achieved through the analyses of independent variables using a prediction equation with a sufficient dataset. The present study was conducted to develop a prediction equation for Hanwoo carcass composition for which data was collected from 7,907 Hanwoo steers raised at a private farm in Gangwon Province, South Korea, and slaughtered in the period between January 2009 and September 2014. Carcass traits such as carcass weight (CWT), back fat thickness (BFT), eye-muscle area (EMA), and marbling score (MAR) were used as independent variables for the development of a prediction equation for carcass composition, such as retail cut weight and percentage (RC, and %RC, respectively), trimmed fat weight and percentage (FAT, and %FAT, respectively), and separated bone weight and percentage (BONE, and %BONE), and its feasibility for practical use was evaluated using the estimated retail yield percentage (ELP) currently used in Korea. The equations were functions of all the variables, and the significance was estimated via stepwise regression analyses. Further, the model equations were verified by means of the residual standard deviation and the coefficient of determination (R2) between the predicted and observed values. As the results of stepwise analyses, CWT was the most important single variable in the equation for RC and FAT, and BFT was the most important variable for the equation of %RC and %FAT. The precision and accuracy of three variable equation consisting CWT, BFT, and EMA were very similar to those of four variable equation that included all for independent variables (CWT, BFT, EMA, and MAR) in RC and FAT, while the three variable equations provided a more accurate prediction for %RC. Consequently, the three-variable equation might be more appropriate for practical use than the four-variable equation based on its easy and cost-effective measurement. However, a relatively high average difference for the ELP in absolute value implies a revision of the official equation may be required, although the current official equation for predicting RC with three variables is still valid.
机译:Hanwoo ers牛皮Han体组成的预测对于基于价值的营销非常重要,可以通过使用具有足够数据集的预测方程对自变量进行分析,从而提高预测准确性和精确度。进行本研究的目的是为Hanwoo cas体组成预测方程式,该方程式是从2009年1月至2014年9月期间在韩国江原道省一家私人农场饲养的7907头Hanwoo ers牛收集的数据。因为car体重量(CWT),背部脂肪厚度(BFT),眼肌面积(EMA)和大理石花纹得分(MAR)被用作自变量,用于制定car体成分预测方程,例如零售切皮重量和百分比(分别为RC和%RC),修整后的脂肪重量和百分比(分别为FAT和%FAT)以及分离的骨骼重量和百分比(BONE和%BONE),并使用目前在韩国使用的估计零售收益率(ELP)。方程是所有变量的函数,并且通过逐步回归分析来估计显着性。此外,利用剩余标准偏差和预测值与观测值之间的确定系数(R 2 )验证了模型方程。作为逐步分析的结果,CWT是RC和FAT方程中最重要的单个变量,BFT是%RC和%FAT方程中最重要的变量。包含CWT,BFT和EMA的三个变量方程的精度和准确性与包含RC和FAT中所有自变量(CWT,BFT,EMA和MAR)的四个变量方程的精度和准确性非常相似,而三个变量方程为%RC提供了更准确的预测。因此,基于三变量方程的简便易行且具有成本效益的度量,它可能比四变量方程更适合实际使用。但是,尽管当前的用于预测具有三个变量的RC的正式方程仍然有效,但ELP的绝对值平均差较高,这意味着可能需要对正式方程进行修订。

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