Data from: Bayesian species delimitation can be robust to guide tree inference errors
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https://datadryad.org/dataset/doi:10.5061/dryad.m1r32
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资源简介:
The Bayesian method of species delimitation (Yang and Rannala, 2010) uses
a so-called guide tree to reduce the number of models to be evaluated in
the reversible-jump Markov chain Monte Carlo (rjMCMC) algorithm (Green,
1995). It has been pointed out that the method tends to over-split if a
random population tree is used as the guide tree (Fujita and Leaché,
2011). Here we conduct a simulation study to examine the performance of
the method under more realistic scenarios, that is, when the guide tree is
inferred from the sequence data. We found that Bayesian species
delimitation is in general robust to errors in the inferred guide tree.
提供机构:
Dryad
创建时间:
2014-07-17



