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Integrating genomic and infrared spectral data improves the prediction of milk protein composition in dairy cattle.

Toshimi BabaSara PegoloLúcio Flávio Macedo MotaFrancisco PeñagaricanoGiovanni BittanteAlessio CecchinatoGota Morota
Published in: Genetics, selection, evolution : GSE (2021)
Integration of genomic information with milk FTIR spectral can enhance milk protein trait predictions by 25% and 7% on average for repeated random sub-sampling and herd CV, respectively. Multiple kernel learning and multilayer BayesB outperformed PLS when used to integrate heterogeneous data for phenotypic predictions.
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