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A modelling framework for the analysis of artificial-selection time series
2011
Genetics Research
Artificial-selection experiments constitute an important source of empirical information for breeders, geneticists and evolutionary biologists. Selected characters can generally be shifted far from their initial state, sometimes beyond what is usually considered as typical inter-specific divergence. A careful analysis of the data collected during such experiments may thus reveal the dynamical properties of the genetic architecture that underlies the trait under selection. Here, we propose a
doi:10.1017/s0016672311000024
pmid:21473802
fatcat:ecs3won3yraq5baxarcpbt5ndm