Quartet Inference from SNP Data Under the Coalescent Model
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Abstract
MOTIVATION: Increasing attention has been devoted to estimation of species-level phylogenetic relationships under the coalescent model. However, existing methods either use summary statistics (gene trees) to carry out estimation, ignoring an important source of variability in the estimates, or involve computationally intensive Bayesian Markov chain Monte Carlo algorithms that do not scale well to whole-genome datasets. RESULTS: We develop a method to infer relationships among quartets of taxa under the coalescent model using techniques from algebraic statistics. Uncertainty in the estimated relationships is quantified using the nonparametric bootstrap. The performance of our method is assessed with simulated…
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Topics
Keywords
- Coalescent theory
- Inference
- Computer science
- Markov chain Monte Carlo
- Nonparametric statistics
- Bayesian probability
- Phylogenetic tree
- Software
UN Sustainable Development Goals
- Life in Land
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