首页> 外文会议>Pacific Symposium on Biocomputing 2002, Jan 3-7, 2002, Kauai, Hawaii >The Accuracy of Fast Phylogenetic Methods for Large Datasets
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The Accuracy of Fast Phylogenetic Methods for Large Datasets

机译:大数据集快速系统发育方法的准确性

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Whole-genome phylogenetic studies require various sources of phylogenetic signals to produce an accurate picture of the evolutionary history of a group of genomes. In particular, sequence-based reconstruction will play an important role, especially in resolving more recent events. But using sequences at the level of whole genomes means working with very large amounts of data―large numbers of sequences―as well as large phylogenetic distances, so that reconstruction methods must be both fast and robust as well as accurate. We study the accuracy, convergence rate, and speed of several fast reconstruction methods: neighbor-joining, Weighbor (a weighted version of neighbor-joining), greedy parsimony, and a new phylogenetic reconstruction method based on disk-covering and parsimony search (DCM-NJ+MP). Our study uses extensive simulations based on random birth-death trees, with controlled deviations from ultrametricity. We find that Weighbor, thanks to its sophisticated handling of probabilities, outperforms other methods for short sequences, while our new method is the best choice for sequence lengths above 100. For very large sequence lengths, all four methods have similar accuracy, so that the speed of neighbor-joining and greedy parsimony makes them the two methods of choice.
机译:全基因组系统发育研究需要各种系统发育信号源,以产生一组基因组进化史的准确图片。特别是,基于序列的重构将发挥重要作用,尤其是在解决更多近期事件中。但是在整个基因组水平上使用序列意味着要处理大量数据(大量序列)以及较大的系统发育距离,因此,重建方法必须既快速又健壮且准确。我们研究了几种快速重建方法的准确性,收敛速度和速度:邻居合并,Weighbor(邻居合并的加权版本),贪婪的简约性以及基于磁盘覆盖和简约搜索(DCM)的新系统发育重构方法-NJ + MP)。我们的研究使用了基于随机出生-死亡树的广泛模拟,并控制了超测量的偏差。我们发现Weighbor由于对概率的复杂处理而优于短序列的其他方法,而我们的新方法是长度大于100的序列的最佳选择。对于很大的序列长度,这四种方法的准确性都差不多,因此邻居加入和贪婪简约的速度使它们成为两种选择方法。

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