BGGE: Bayesian Genomic Linear Models Applied to GE Genome Selection

Application of genome prediction for a continuous variable, focused on genotype by environment (GE) genomic selection models (GS). It consists a group of functions that help to create regression kernels for some GE genomic models proposed by Jarquín et al. (2014) <doi:10.1007/s00122-013-2243-1> and Lopez-Cruz et al. (2015) <doi:10.1534/g3.114.016097>. Also, it computes genomic predictions based on Bayesian approaches. The prediction function uses an orthogonal transformation of the data and specific priors present by Cuevas et al. (2014) <doi:10.1534/g3.114.013094>.

Getting started

Package details

AuthorItalo Granato [aut, cre], Luna-Vázquez Francisco J. [aut], Cuevas Jaime [aut]
MaintainerItalo Granato <>
Package repositoryView on CRAN
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BGGE documentation built on May 2, 2019, 2:48 p.m.