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Extending Approximate Bayesian Computation with Supervised Machine Learning to infer demographic history from genetic polymorphisms using DIYABC Random Forest
Article de revue   Open Access   Avec comité de lecture

Extending Approximate Bayesian Computation with Supervised Machine Learning to infer demographic history from genetic polymorphisms using DIYABC Random Forest

François‐david Collin, Ghislain Durif, Louis Raynal, Eric Lombaert, Mathieu Gautier, Renaud Vitalis, Jean-Michel Marin et Arnaud Estoup
Molecular Ecology Resources, Vol.21(8), pp.2598-2613
11/2021
PMID: 33950563

Résumé

population genetics parameter estimation Random Forest Approximate Bayesian Computation Supervised Machine Learning model or scenario selection

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