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A Parallel Multi-Objective Evolutionary Algorithm for Phylogenetic Inference

机译:系统发育推理的并行多目标进化算法

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The increasing availability of large sequence data proposes new challenges for phylogenetic reconstruction. The search and evaluation of these datasets largely surpass the memory and processing capability of a single machine. In this context, parallel and distributed computing can be used not only to speedup the search, but also to improve the solution quality, search robustness and to solve larger problem instances [1]. On the other hand, it has been shown that applying distinct reconstruction methods to the same input data can generate conflicting trees [2,3]. In this regard, a multi-objective approach can be a relevant contribution since it can search for phylogenies using more than a single criterion. One of the first studies that models phylogenetic inference as a multi-objective optimization problem (MOOP) was developed by the author of this paper [4]. In this approach, the multi-objective approach used the maximum parsimony (MP) and maximum likelihood (ML) as optimality criteria [5]. The proposed multi-objective evolutionary algorithm (MOEA) [6], called PhyloMOEA, produces a set of distinct solutions representing a trade-off between the considered objectives. In this paper, we present a new parallel PhyloMOEA version developed using the ParadisEO metaheuristic framework [7].
机译:大序列数据可用性的提高为系统发育重建提出了新的挑战。这些数据集的搜索和评估在很大程度上超过了单台计算机的存储和处理能力。在这种情况下,并行和分布式计算不仅可以用来加快搜索速度,而且可以用来提高解决方案质量,搜索鲁棒性并解决更大的问题实例[1]。另一方面,已经表明对相同的输入数据应用不同的重建方法会产生冲突的树[2,3]。在这方面,多目标方法可以做出重要贡献,因为它可以使用多个标准来搜索系统发育。本文的作者[4]开展了将系统发生推理建模为多目标优化问题(MOOP)的第一批研究之一。在这种方法中,多目标方法使用最大简约度(MP)和最大似然度(ML)作为最佳性标准[5]。提出的多目标进化算法(MOEA)[6],称为PhyloMOEA,产生了一组代表在所考虑目标之间进行权衡的独特解决方案。在本文中,我们介绍了使用ParadisEO元启发式框架[7]开发的并行PhyloMOEA新版本。

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