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Breeding Value Prediction Using a Functional DataMultiple Regression Equation

机译:基于功能数据多元回归方程的育种价值预测

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In this study, the applicability of a multiple regression equation to predict breeding values based on the high-density SNP (single nucleotide polymorphism) markers that are found in the whole genome sequences of animals and plants was evaluated. The genotypes of a large number of SNPs distributed on chromosomes were treated as functional data and phenotypic values of a trait were treated as scalar target variables in the functional data multiple regression equations. The functional data analysis R package (“fda”, version 2.4.0) was used to create the functional data multiple linear regression equations. An outline of this procedure is presented in this paper. We evaluated the accuracy of the functional data multiple regression equations by predicting breeding values using simulated data sets of SNPs as predictors and phenotypic values of a trait as variables. We found that the regression equations predicted the breeding values with considerable accuracy even though the predictors were not selected, nor were prior distributions assumed.
机译:在这项研究中,评估了基于动物和植物全基因组序列中高密度SNP(单核苷酸多态性)标记的多元回归方程预测育种值的适用性。在功能数据多元回归方程中,将分布在染色体上的大量SNP的基因型视为功能数据,将性状的表型值视为标量目标变量。功能数据分析R软件包(“ fda”,版本2.4.0)用于创建功能数据多元线性回归方程。本文介绍了此过程的概述。我们通过使用SNPs的模拟数据集作为预测变量并将性状的表型值作为变量来预测育种值,从而评估功能数据多元回归方程的准确性。我们发现,即使没有选择预测变量,也没有假设先验分布,回归方程式仍可以相当准确地预测育种值。

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