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A new cooperative framework for parallel trajectory-based metaheuristics

机译:基于轨迹的平行轨迹的新合作框架

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In this paper, we propose the Parallel Elite Biased framework (PEB framework) for parallel trajectory-based metaheuristics. In the PEB framework, multiple search processes are executed concurrently. During the search, each process sends its best found solutions to its neighboring processes and uses the received solutions to guide its search. Using the PEB framework, we design a parallel variant of Guided Local Search (GLS) called PEBGLS. Extensive experiments have been conducted on the Tianhe-2 supercomputer to study the performance of PEBGLS on the Traveling Salesman Problem (TSP). The experimental results show that PEBGLS is a competitive parallel metaheuristic for the TSP, which confirms that the PEB framework is useful for designing parallel trajectory-based metaheuristics. (c) 2018 Elsevier B.V. All rights reserved.
机译:在本文中,我们提出了对基于并行轨迹的核心学的平行精英偏置框架(PEB框架)。 在PEB框架中,多个搜索过程同时执行。 在搜索过程中,每个过程将其最佳发现解决方案发送到其相邻流程,并使用所接收的解决方案来指导其搜索。 使用PEB框架,我们设计一个名为PEBGL的引导本地搜索(GLS)的并行变体。 在天河2超级计算机上进行了广泛的实验,以研究PEBGLS对旅行推销员问题(TSP)的表现。 实验结果表明,PEBGLS是TSP的竞争平行成果培养学,这证实了PEB框架对于设计基于平行的轨迹的殖民学有用。 (c)2018 Elsevier B.v.保留所有权利。

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