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首页> 外文期刊>Genetics, selection, evolution >Bayes factor for testing between different structures of random genetic groups: A case study using weaning weight in Bruna dels Pirineus beef cattle
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Bayes factor for testing between different structures of random genetic groups: A case study using weaning weight in Bruna dels Pirineus beef cattle

机译:在随机遗传群体的不同结构之间进行检验的贝叶斯因子:以断奶体重为例的布鲁纳·德尔·皮里纽斯肉牛的案例研究

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The implementation of genetic groups in BLUP evaluations accounts for different expectations of breeding values in base animals. Notwithstanding, many feasible structures of genetic groups exist and there are no analytical tools described to compare them easily. In this sense, the recent development of a simple and stable procedure to calculate the Bayes factor between nested competing models allowed us to develop a new approach of that method focused on compared models with different structures of random genetic groups. The procedure is based on a reparameterization of the model in terms of intraclass correlation of genetic groups. The Bayes factor can be easily calculated from the output of a Markov chain Monte Carlo sampling by averaging conditional densities at the null intraclass correlation. It compares two nested models, a model with a given structure of genetic groups against a model without genetic groups. The calculation of the Bayes factor between different structures of genetic groups can be quickly and easily obtained from the Bayes factor between the nested models. We applied this approach to a weaning weight data set of the Bruna dels Pirineus beef cattle, comparing several structures of genetic groups, and the final results showed that the preferable structure was an only group for unknown dams and different groups for unknown sires for each year of calving.
机译:BLUP评估中基因组的实施解释了对基础动物育种价值的不同期望。尽管如此,存在许多可行的遗传群体结构,并且没有描述分析工具来轻松比较它们。从这个意义上讲,最近开发了一种简单而稳定的程序来计算嵌套竞争模型之间的贝叶斯因子,这使我们能够开发出一种新方法,该方法专注于具有不同随机基因组结构的比较模型。该程序基于遗传群体的类内相关性对模型进行重新参数化。通过将零类内相关性的条件密度取平均值,可以从马尔可夫链蒙特卡洛采样的输出中轻松计算出贝叶斯因子。它比较了两个嵌套模型,即具有给定遗传群体结构的模型与没有遗传群体的模型。可以从嵌套模型之间的贝叶斯因子快速而轻松地获得不同基因组结构之间的贝叶斯因子的计算。我们将此方法应用于Bruna dels Pirineus肉牛的断奶体重数据集,比较了几个遗传群体的结构,最终结果表明,每年的首选结构是唯一的一组,用于未知的水坝,而不同的组用于未知的公母。产犊。

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