Lévy walk-based search strategy: Application to destructive foraging

Ouarda Zedadra, Meysa Idiri, Nicolas Jouandeau, Hamid Seridi, G. Fortino
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引用次数: 3

Abstract

In this paper a Search strategy based on Lévy Walk is proposed. Lévy Walk increases the diversity of solutions, and constitutes good strategies to move away from local to global search. The amount of exploration and exploitation and the fine balance between them determine the efficiency of search algorithm. The highly diffusive behavior of the original Lévy Walk algorithm results in more global search. Thus, in the proposed algorithm, the time spent in local search is increased according to the fluctuation of the searched region. Moreover, a case study on destructive foraging is presented in this paper, with the aim to apply it to several swarm robotics problems. In order to present simulations in a finite two dimensional landscape with a limited number of clustered and scattered targets, the ArGOS simulator has been used.
基于lsamvy步行的搜索策略:在破坏性觅食中的应用
本文提出了一种基于lsamvy Walk的搜索策略。lsamvy Walk增加了解决方案的多样性,并构成了从本地搜索转向全球搜索的良好策略。搜索和开发的数量以及两者之间的良好平衡决定了搜索算法的效率。原始lsamvy Walk算法的高扩散行为导致更全局的搜索。因此,在本文算法中,局部搜索的时间根据搜索区域的波动而增加。此外,本文还给出了一个破坏性觅食的实例研究,目的是将其应用于几个群体机器人问题。为了在有限的二维景观中呈现有限数量的聚类和分散目标的模拟,使用了ArGOS模拟器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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