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The Estimation of Tree Posterior Probabilities Using Conditional Clade ProbabilityDistributions

机译:使用条件进化枝概率分布估计树后验概率

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In this article I introduce the idea of conditional independence of separated subtrees as a principle by which to estimate the posterior probability of trees using conditional clade probability distributions rather than simple sample relative frequencies. I describe an algorithm for these calculations and software which implements these ideas. I show that these alternative calculations are very similar to simple sample relative frequencies for high probability trees but are substantially more accurate for relatively low probability trees. The method allows the posterior probability of unsampled trees to be calculated when these trees contain only clades that are in other sampled trees. Furthermore, the method can be used to estimate the total probability of the set of sampled trees which provides a measure of the thoroughness of a posterior sample.
机译:在本文中,我介绍了独立子树的条件独立性的思想,该思想是使用条件进化枝概率分布而不是简单的样本相对频率来估计树的后验概率的原理。我描述了用于这些计算的算法和实现这些思想的软件。我表明,这些替代计算与高概率树的简单样本相对频率非常相似,但对于相对低概率树则更为准确。当这些树仅包含其他采样树中的进化枝时,该方法允许计算未采样树的后验概率。此外,该方法可以用于估计一组采样树的总概率,这提供了后验样本的完整性的度量。

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