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Uniformization for sampling realizations of Markov processes: applications to Bayesian implementations of codon substitution models

机译:马尔可夫过程采样实现的统一化:在密码子替代模型的贝叶斯实现中的应用

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Motivation: Mapping character state changes over phylogenetic trees is central to the study of evolution. However, current probabilistic methods for generating such mappings are ill-suited to certain types of evolutionary models, in particular, the widely used models of codon substitution. Results: We describe a general method, based on a uniformization technique, which can be utilized to generate realizations of a Markovian substitution process conditional on an alignment of character states and a given tree topology. The method is applicable under a wide range of evolutionary models, and to illustrate its usefulness in practice, we embed it within a data augmentation-based Markov chain Monte Carlo sampler, for approximating posterior distributions under previously proposed codon substitution models. The sampler is found to be more efficient than the conventional pruning-based sampler with the decorrelation times between draws from the posterior reduced by a factor of 20 or more.
机译:动机:在进化树上绘制字符状态变化图是进化研究的中心。但是,当前用于生成此类映射的概率方法不适用于某些类型的进化模型,特别是密码子替换的广泛使用的模型。结果:我们描述了一种基于统一技术的通用方法,该方法可用于生成以字符状态和给定的树形拓扑为条件的马尔可夫替换过程的实现。该方法适用于广泛的进化模型,并且为了说明其实用性,我们将其嵌入基于数据增强的马尔可夫链蒙特卡洛采样器中,以在先前提出的密码子替代模型下近似后验分布。发现该采样器比传统的基于修剪的采样器更有效,从后方抽取之间的去相关时间减少了20倍或更多。

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