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Particle swarm optimization in electromagnetics

机译:电磁学中的粒子群优化

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The particle swarm optimization (PSO), new to the electromagnetics community, is a robust stochastic evolutionary computation technique based on the movement and intelligence of swarms. This paper introduces a conceptual overview and detailed explanation of the PSO algorithm, as well as how it can be used for electromagnetic optimizations. This paper also presents several results illustrating the swarm behavior in a PSO algorithm developed by the authors at UCLA specifically for engineering optimizations (UCLA-PSO). Also discussed is recent progress in the development of the PSO and the special considerations needed for engineering implementation including suggestions for the selection of parameter values. Additionally, a study of boundary conditions is presented indicating the invisible wall technique outperforms absorbing and reflecting wall techniques. These concepts are then integrated into a representative example of optimization of a profiled corrugated horn antenna.
机译:粒子群优化(PSO)是电磁学领域的新成员,是一种基于群体运动和智能的强大的随机进化计算技术。本文介绍了PSO算法的概念概述和详细说明,以及如何将其用于电磁优化。本文还提供了一些结果,说明了由UCLA的作者专门针对工程优化(UCLA-PSO)开发的PSO算法中的群行为。还讨论了PSO开发中的最新进展以及工程实施所需的特殊注意事项,包括有关参数值选择的建议。此外,对边界条件的研究表明,隐形墙技术的性能优于吸收和反射墙技术。然后,将这些概念整合到优化的波纹形喇叭天线的代表性示例中。

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