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Title: Detecting Recombination in 4-Taxa DNA Sequence Alignments with Bayesian Hidden Markov Models and Markov Chain Monte Carlo
Authors: McGuire, Graine
Husmeier, Dirk
Issue Date: 1-Jan-2003
Citation: McGuire Graine (External), Husmeier, DH. (2003-01-01) Detecting Recombination in 4-Taxa DNA Sequence Alignments with Bayesian Hidden Markov Models and Markov Chain Monte Carlo, Molecular Biology and Evolution 20 (3) 315-337
Abstract: This article presents a statistical method for detecting recombination in DNA sequence alignments, which is based on combining two probabilistic graphical models: (1) a taxon graph (phylogenetic tree) representing the relationship between the taxa, and (2) a site graph (hidden Markov model) representing interactions between different sites in the DNA sequence alignments. We adopt a Bayesian approach and sample the parameters of the model from the posterior distribution with Markov chain Monte Carlo, using a Metropolis-Hastings and Gibbs-within-Gibbs scheme. The proposed method is tested on various synthetic and real-world DNA sequence alignments, and we compare its performance with the established detection methods RECPARS, PLATO, and TOPAL, as well as with two alternative parameter estimation schemes.
URI: http://mbe.oxfordjournals.org/cgi/content/abstract/20/3/315
10.1093/molbev/msg039
http://hdl.handle.net/1842/2570
ISSN: 0737-4038
Appears in Collections:Informatics Publications

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