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A Metric for Phylogenetic Trees Based on Matching

机译:基于匹配的系统发育树指标

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Comparing two or more phylogenetic trees is a fundamental task in computational biology. The simplest outcome of such a comparison is a pairwise measure of similarity, dissimilarity, or distance. A large number of such measures have been proposed, but so far all suffer from problems varying from computational cost to lack of robustness; many can be shown to behave unexpectedly under certain plausible inputs. For instance, the widely used Robinson-Foulds distance is poorly distributed and thus affords little discrimination, while also lacking robustness in the face of very small changesȁ4;reattaching a single leaf elsewhere in a tree of any size can instantly maximize the distance. In this paper, we introduce a new pairwise distance measure, based on matching, for phylogenetic trees. We prove that our measure induces a metric on the space of trees, show how to compute it in low polynomial time, verify through statistical testing that it is robust, and finally note that it does not exhibit unexpected behavior under the same inputs that cause problems with other measures. We also illustrate its usefulness in clustering trees, demonstrating significant improvements in the quality of hierarchical clustering as compared to the same collections of trees clustered using the Robinson-Foulds distance.
机译:比较两个或多个系统发育树是计算生物学的基本任务。这种比较的最简单结果是相似性,相异性或距离的成对度量。已经提出了许多这样的措施,但是到目前为止,所有这些措施都存在从计算成本到缺乏鲁棒性的问题。在某些合理的输入下,许多可能表现出意想不到的行为。例如,广泛使用的Robinson-Foulds距离分布不均,因此几乎没有区别,同时在面对很小的变化时也缺乏鲁棒性[4];在任何大小的树中将单个叶子重新附着在其他地方可以立即使距离最大化。在本文中,我们介绍了一种基于配对的系统发育树新的成对距离度量。我们证明了我们的测度在树木空间上产生了一个度量,展示了如何在低多项式时间内对其进行度量,并通过统计测试验证了该度量的鲁棒性,最后注意到在引起问题的相同输入下,该度量不表现出意外行为与其他措施。我们还说明了其在聚类树中的有用性,与使用Robinson-Foulds距离聚类的树的相同集合相比,证明了层次聚类质量的显着提高。

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