期刊论文详细信息
Genetics Selection Evolution
Genomic prediction of unordered categorical traits: an application to subpopulation assignment in German Warmblood horses
Research Article
Christa Kühn1  Claas Heuer2  Christoph Scheel2  Georg Thaller2  Jens Tetens2 
[1] Institute for Genome Biology, Leibniz Institute for Farm Animal Biology, Wilhelm-Stahl-Allee 2, 18196, Dummerstorf, Germany;Faculty of Agricultural and Environmental Sciences, University Rostock, Justus-von-Liebig-Weg 6, 18059, Rostock, Germany;Institute of Animal Breeding and Husbandry, University of Kiel, Hermann-Rodewald-Strasse 6, 24098, Kiel, Germany;
关键词: Support Vector Machine;    Prediction Accuracy;    Threshold Model;    Ridge Regression;    Binary Classifier;   
DOI  :  10.1186/s12711-016-0192-2
 received in 2015-02-26, accepted in 2016-01-29,  发布年份 2016
来源: Springer
PDF
【 摘 要 】

BackgroundCategorical traits without ordinal representation of classes do not qualify for threshold models. Alternatively, the multinomial problem can be assessed by a sequence of independent binary contrasts using schemes such as one-vs-all or one-vs-one. Class probabilities can be arrived at by normalization or pair-wise coupling strategies. We assessed the predictive ability of whole-genome regression models and support vector machines for the classification of horses into four German Warmblood breeds.ResultsPrediction accuracies of leave-one-out cross-validation were high and ranged from 0.75 to 0.97 depending on the binary classifier and breeds incorporated in the training. An analysis of the population structure using eigenvectors of the genomic relationship matrix revealed clustering of individuals beyond the given breed labels. Admixture between two breeds became apparent which had substantial impact on the prediction accuracies between those two breeds and also influenced the contrasts between other breeds.Conclusions Genomic prediction of unordered categorical traits was successfully applied to subpopulation assignment of German Warmblood horses. The applied methodology is a straightforward extension of existing binary threshold models for genomic prediction.

【 授权许可】

CC BY   
© Heuer et al. 2016

【 预 览 】
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