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Measuring Gametic Disequilibrium From Multilocus Data
Author(s) -
Karen L. Ayres,
David J. Balding
Publication year - 2001
Publication title -
genetics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.792
H-Index - 246
eISSN - 1943-2631
pISSN - 0016-6731
DOI - 10.1093/genetics/157.1.413
Subject(s) - linkage disequilibrium , disequilibrium , markov chain monte carlo , bayesian probability , biology , posterior probability , prior probability , computational biology , haplotype , genetics , evolutionary biology , computer science , genotype , artificial intelligence , gene , medicine , ophthalmology
We describe a Bayesian approach to analyzing multilocus genotype or haplotype data to assess departures from gametic (linkage) equilibrium. Our approach employs a Markov chain Monte Carlo (MCMC) algorithm to approximate the posterior probability distributions of disequilibrium parameters. The distributions are computed exactly in some simple settings. Among other advantages, posterior distributions can be presented visually, which allows the uncertainties in parameter estimates to be readily assessed. In addition, background knowledge can be incorporated, where available, to improve the precision of inferences. The method is illustrated by application to previously published datasets; implications for multilocus forensic match probabilities and for simple association-based gene mapping are also discussed.

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