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Testing this evolutionary hypothesis would require to gain insights into the selective constraints (e.g. the selective pressures acting on the different phenotypic traits), the interaction between selection and migration (e.g. the fitness of the various classes of crop-weed hybrids) and into the genetic architecture of phenology and of the presumably selected traits.
A small interaction effect is found between selection and migration.
Balance between selection and migration is crucial for the maintenance of genetic structure over time.
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The balance between selection and other evolutionary forces (more specifically, drift and migration) gives a clue for adaptation.
PopG limits itself to a one-locus, 2 allele model, but lets one investigate all the interactions between selection, migration, mutation, and drift (by specifying the population size).
The stability or instability of the GFG system depended on the balance between the strength of selection and the migration rate (weak coupling, Figure 3).
The outside forces that can disrupt this natural equilibrium are selection, mutation, and migration.
Other evolutionary mechanisms, such as natural selection, mutation, and migration act simultaneously with genetic drift b.
Both increasing viability selection and decreasing migration reduce this threshold further (results not shown).
The model assumes an infinite population size, random mating, constant selection, and no migration.
Group selection models always posited genes for altruism (favored by between-group selection) and selfishness (favored by within-group selection).
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