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The Grey Wolf Optimizer and Its Applications in Electromagnetics

机译:灰狼优化器及其在电磁学中的应用

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摘要

The grey wolf optimizer(GWO) is a newly developed swarm intelligence-based optimization technique that mimics the social hierarchy and group hunting behavior of grey wolves in nature. Here, a detailed introduction of the GWO algorithm is given, after which, three sets of examples are investigated: first, numerical experiments on four benchmark functions are conducted; second, the GWO is applied to the synthesis of linear arrays with the aim of reducing the peak sidelobe level under various constraints; and finally, the performance of the GWO is further verified on the optimization design of two representative antennas, namely, a dual-band E-shaped patch antenna and a wideband magneto-electric dipole antenna. The results show that the GWO is capable of outperforming or providing very competitive results compared with some well-known metaheuristics such as the genetic algorithm, particle swarm optimization, and differential evolution. Thus, it may serve as a promising candidate for handling electromagnetic problems.
机译:灰狼优化器(GWO)是一种新开发的基于群体的智能化优化技术,模仿了自然界灰狼的社会等级和群体狩猎行为。这里,给出了GWO算法的详细介绍,之后,研究了三组示例:首先,进行四个基准函数的数值实验;其次,GWO适用于线性阵列的合成,目的是在各种约束下减少峰值侧瓣级;最后,在两个代表天线的优化设计中进一步验证了GWO的性能,即双频带E形贴片天线和宽带磁电偶极天线。结果表明,与诸如遗传算法,粒子群优化和差分演进等一些公知的殖民学相比,GWO能够优于或提供非常竞争力的结果。因此,它可以作为处理电磁问题的有希望的候选者。

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