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Bayesian inference on genetic merit under uncertain paternity

机译:不确定父子关系下遗传价值的贝叶斯推断

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A hierarchical animal model was developed for inference on genetic merit of livestock with uncertain paternity. Fully conditional posterior distributions for fixed and genetic effects, variance components, sire assignments and their probabilities are derived to facilitate a Bayesian inference strategy using MCMC methods. We compared this model to a model based on the Henderson average numerator relationship (ANRM) in a simulation study with 10 replicated datasets generated for each of two traits. Trait 1 had a medium heritability (h(2)) for each of direct and maternal genetic effects whereas Trait 2 had a high h(2) attributable only to direct effects. The average posterior probabilities inferred on the true sire were between 1 and 10% larger than the corresponding priors (the inverse of the number of candidate sires in a mating pasture) for Trait 1 and between 4 and 13% larger than the corresponding priors for Trait 2. The predicted additive and maternal genetic effects were very similar using both models; however, model choice criteria (Pseudo Bayes Factor and Deviance Information Criterion) decisively favored the proposed hierarchical model over the ANRM model.
机译:建立了分级动物模型以推断具有不确定亲子关系的家畜的遗传价值。导出了用于固定效应和遗传效应,方差成分,父系分配及其概率的全条件后验分布,以利于使用MCMC方法进行贝叶斯推理策略。在模拟研究中,我们将这个模型与基于亨德森平均分子关系(ANRM)的模型进行了比较,该模型具有针对两个特征分别生成的10个复制数据集。特质1对于直接和母体遗传效应均具有中等的遗传力(h(2)),而特质2具有仅归因于直接效应的高h(2)。特质1的真实父亲的平均后验概率比相应先验的概率高1至10%(交配草场中候选父亲数的倒数),而特质1的平均后验概率则高出4至13%。 2.两种模型预测的加性和母体遗传效应非常相似;然而,模型选择标准(伪贝叶斯因子和偏差信息准则)在决定性方面偏爱拟议的层次模型,而不是ANRM模型。

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