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The impact of information quantity and strength of relationship between training set and validation set on accuracy of genomic estimated breeding values

机译:信息量和训练集与验证集之间的关系强度对基因组估计育种值准确性的影响

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摘要

Recent advances in genomic selection are a revolution in animal breeding. A genome consisting 10 chromosomes each with 100 cM in length with 100 equally spaced markers (1 cM) were simulated. After 50 generations of random mating in a finite population (Ne?= 100) in order to create sufficient linkage disequilibrium, population was expanded to two different population sizes of 500 and 1000. This structure was conserved until generation 59. Only females of generations 51 to 58 had phenotypic records and were included in the training set. The generation 59 was assumed as juveniles without any phenotypic records (validation set). Two measures of heritability (h2?= 0.1 and h2?= 0.5) were considered. Each simulation was replicated 10 times and results were averaged across replications. The results showed that using individuals of more recent generations in training set led to higher accuracy of genomic estimated breeding values (GEBVs) than individuals from more distant generations. However, increase in the amount of phenotypic records in training set even from individuals of older generations will increase accuracy of GEBVs. Number of phenotypic records in training set was shown to have important role in accuracy of GEBVs especially for low heritability traits.
机译:基因组选择的最新进展是动物育种的一场革命。模拟了一个由10条染色体组成的基因组,每条染色体的长度为100 cM,带有100个等距标记(1 cM)。为了产生足够的连锁不平衡,在有限的种群(Ne≥100)中进行了50代随机交配后,种群扩大到500和1000的两个不同种群大小。这一结构一直保留到59代。只有51代的雌性共有58至58位患者具有表型记录,并包括在训练集中。假定59世代是没有任何表型记录的少年(验证集)。考虑了两种遗传力测量方法(h2α= 0.1和h2α= 0.5)。每个模拟重复10次,结果在两次复制之间取平均值。结果表明,与更远的世代个体相比,在训练集中使用更新世代的个体导致更高的基因组估计育种值(GEBV)准确性。但是,即使来自较老一代的人,训练集中的表型记录数量也会增加,这将提高GEBV的准确性。训练集中的表型记录数量被证明对GEBV的准确性具有重要作用,尤其是对于低遗传性状而言。

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