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Subpopulation initialization driven by linkage learning for dealing with the Long-Way-To-Stuck effect

机译:通过联系学习推动的亚居划分初始化,以处理长路效应

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摘要

The maintenance of many subpopulations is an important technique employed in evolutionary methods. However, the use of a multi-population approach has its drawbacks. Among all, it requires spending high amounts of available resources. Therefore, the methods that dynamically manage the number of subpopulations gain an increasing interest due to their capability of adjusting the subpopulation number to their current state. They are shown to be capable of reaching excellent results. In this paper, we identify the Long-Way-To-Stuck effect and show it on the base of the practical, NP-complete problem. Such a phenomenon occurs when a randomly initialized population of an evolutionary method must be processed through many iterations before it is incapable of improving the best-found solution. If so, then a large amount of computational resources must be spent on subpopulation initialization, which may turn multi-population methods ineffective. Therefore, in this paper, we propose the Linkage Learning-Driven Subpopulation Initialization (LLDSI) that limits the costs of subpopulation initialization and significantly improves the effectiveness methods dynamically managing the subpopulation number. (C) 2020 Elsevier Inc. All rights reserved.
机译:许多亚步骤的维持是一种在进化方法中使用的重要技术。然而,使用多人物方法具有其缺点。其中,它需要花费大量可用资源。因此,动态管理亚步骤数量的方法由于其调整子划分号的能力而增强了利益的增加。它们被证明能够达到优异的结果。在本文中,我们识别了长途到卡的效果,并在实际的NP完全问题的基础上显示出来。当必须通过许多迭代处理进化方法的随机初始化的群体时,发生这种现象在无法改善最佳溶液之前进行处理。如果是这样,那么必须花费大量的计算资源对群初始化,这可能会转变多人物方法无效。因此,在本文中,我们提出了链接学习驱动的群初始化(LLDSI),限制亚群初始化的成本,并显着提高了动态管理子划分号的有效性方法。 (c)2020 Elsevier Inc.保留所有权利。

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