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A Bayesian generalized random regression model for estimating heritability using overdispersed count data

机译:贝叶斯广义随机回归模型用于使用过度分散的计数数据估算遗传力

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摘要

BackgroundFaecal egg counts are a common indicator of nematode infection and since it is a heritable trait, it provides a marker for selective breeding. However, since resistance to disease changes as the adaptive immune system develops, quantifying temporal changes in heritability could help improve selective breeding programs. Faecal egg counts can be extremely skewed and difficult to handle statistically. Therefore, previous heritability analyses have log transformed faecal egg counts to estimate heritability on a latent scale. However, such transformations may not always be appropriate. In addition, analyses of faecal egg counts have typically used univariate rather than multivariate analyses such as random regression that are appropriate when traits are correlated. We present a method for estimating the heritability of untransformed faecal egg counts over the grazing season using random regression.
机译:背景粪便卵数是线虫感染的常见指标,并且由于它是可遗传的性状,它为选择性育种提供了标志。但是,由于随着适应性免疫系统的发展,对疾病的抵抗力也会发生变化,因此对遗传力的时间变化进行量化可以帮助改善选择性育种程序。粪便卵数可能会非常偏斜并且难以统计。因此,以前的遗传力分析已记录了转换后的粪便卵数,以潜在地估计遗传力。但是,这种转换可能并不总是合适的。另外,粪便卵数的分析通常使用单变量而不是多变量分析,例如当性状相关时适合的随机回归。我们提出了一种使用随机回归估计放牧季节未转化粪便卵数的遗传力的方法。

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