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Pfeifer, B; Alachiotis, N; Pavlidis, P; Schimek, MG.
Genome scans for selection and introgression based on k-nearest neighbour techniques.
Mol Ecol Resour. 2020; 20(6):1597-1609 Doi: 10.1111/1755-0998.13221 [OPEN ACCESS]
Web of Science PubMed PUBMED Central FullText FullText_MUG

 

Leading authors Med Uni Graz
Pfeifer Bastian
Co-authors Med Uni Graz
Schimek Michael
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Abstract:
In recent years, genome-scan methods have been extensively used to detect local signatures of selection and introgression. Most of these methods are either designed for one or the other case, which may impair the study of combined cases. Here, we introduce a series of versatile genome-scan methods applicable for both cases, the detection of selection and introgression. The proposed approaches are based on nonparametric k-nearest neighbour (kNN) techniques, while incorporating pairwise Fixation Index (FST ) and pairwise nucleotide differences (dxy ) as features. We benchmark our methods using a wide range of simulation scenarios, with varying parameters, such as recombination rates, population background histories, selection strengths, the proportion of introgression and the time of gene flow. We find that kNN-based methods perform remarkably well compared with the state-of-the-art. Finally, we demonstrate how to perform kNN-based genome scans on real-world genomic data using the population genomics R-package popgenome.
Find related publications in this database (using NLM MeSH Indexing)
Computer Simulation - administration & dosage
Gene Flow - administration & dosage
Genetics, Population - administration & dosage
Genome - administration & dosage
Genomics - administration & dosage
Metagenomics - administration & dosage
Models, Genetic - administration & dosage
Polymorphism, Single Nucleotide - administration & dosage
Selection, Genetic - administration & dosage

Find related publications in this database (Keywords)
adaptation
genome scans
introgression
k-nearest neighbours
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