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首页> 外文期刊>Biology Letters >Bayesian methods outperform parsimony but at the expense of precision in the estimation of phylogeny from discrete morphological data
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Bayesian methods outperform parsimony but at the expense of precision in the estimation of phylogeny from discrete morphological data

机译:贝叶斯方法优于图解,但以离散形态数据估算系统的精度牺牲精度

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摘要

Different analytical methods can yield competing interpretations of evolutionary history and, currently, there is no definitive method for phylogenetic reconstruction using morphological data. Parsimony has been the primary method for analysing morphological data, but there has been a resurgence of interest in the likelihood-based Mk-model. Here, we test the perfounance of the Bayesian implementation of the Mk-model relative to both equal and implied-weight implementations of parsimony. Using simulated morphological data, we demonstrate that the Mk-model outperforms equal-weights parsimony in terms of topological accuracy, and implied-weights performs the most poorly. However, the Mk-model produces phylogenies that have less resolution than parsimony methods. This difference in the accuracy and precision of parsimony and Bayesian approaches to topology estimation needs to be considered when selecting a method for phylogeny reconstruction.
机译:不同的分析方法可以产生进化历史的竞争解释,目前,使用形态学数据没有明确的系统发育重建方法。 分析是分析形态学数据的主要方法,但对基于可能性的MK模型感兴趣的重新提高。 在这里,我们测试MK模型的贝叶斯实施的精力相对于差异的平等和隐含的重量实现。 使用模拟形态数据,我们证明了在拓扑精度方面的MK-Model优于同等权重的定义,并且暗示的重量表现最糟糕。 然而,MK模型产生的系统发育比分析方法更少的分辨率。 在选择系统发生重建方法时,需要考虑定义和贝叶斯估计的准确度和精度的这种差异。

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