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A Continuous Method for Gene Flow

delete2013-07-01
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M
Michal Palczewski *
P
Peter Beerli
DOI:10.1534/genetics.113.150904delete
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摘要

摘要

En 中文
Most modern population genetics inference methods are based on the coalescence framework. Methods that allow estimating parameters of structured populations commonly insert migration events into the genealogies. For these methods the calculation of the coalescence probability density of a genealogy requires a product over all time periods between events. Data sets that contain populations with high rates of gene flow among them require an enormous number of calculations. A new method, transition probability-structured coalescence (TPSC), replaces the discrete migration events with probability statements. Because the speed of calculation is independent of the amount of gene flow, this method allows calculating the coalescence densities efficiently. The current implementation of TPSC uses an approximation simplifying the interaction among lineages. Simulations and coverage comparisons of TPSC vs. MIGRATE show that TPSC allows estimation of high migration rates more precisely, but because of the approximation the estimation of low migration rates is biased. The implementation of TPSC into programs that calculate quantities on phylogenetic tree structures is straightforward, so the TPSC approach will facilitate more general inferences in many computer programs.
Keyword:
EFFECTIVE POPULATION-SIZE
MAXIMUM-LIKELIHOOD
MIGRATION RATES
COALESCENT
PARAMETERS
INFERENCE
SUBPOPULATION
EVOLUTION
MODELS
NUMBER

期刊

Genetics 封面图
Genetics
IF:
5.1
论文数:
8.1K
被引数:
3.6W

机构

State University System of Florida 封面图
State University System of Florida
学者数:
12.7W
论文数: 10.9W
被引数: 130
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引用论文

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