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Pareto Optimal Design of Absorbers Using a Parallel Elitist Nondominated Sorting Genetic Algorithm and the Finite Element-Boundary Integral Method

机译:并行Elitist非支配排序遗传算法和有限元边界积分法的吸收器Pareto优化设计

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Microwave absorbing structures have many applications including the lining of anechoic chambers and the reduction of electromagnetic interference. Pareto optimization is an important tool in the design of absorbers, since most absorbers must be designed keeping both performance and economy in mind. In this paper, a new elitist strategy is implemented into the nondominated sorting genetic algorithm (NSGA) to effectively and efficiently design broadband high performance electromagnetic absorbers. The absorbers are analyzed using the finite element boundary integral method, and the optimization is accelerated with parallel processing. Numerical tests demonstrate that the elitist NSGA proposed in this paper converges faster that the standard NSGA and other classical techniques for a wide variety of absorber design problems. Finally, this efficient elitist NSGA is applied to design complex polygonal absorbers. Numerical results not only demonstrate the robustness of the design algorithm, but also reveal some important information and advantages related to absorber designs based on Pareto optimization.
机译:微波吸收结构具有许多应用,包括消声室的衬里和减少电磁干扰。帕累托优化是吸收器设计中的重要工具,因为大多数吸收器的设计必须兼顾性能和经济性。本文将一种新的精英策略应用到非支配排序遗传算法(NSGA)中,以有效,高效地设计宽带高性能电磁吸收器。使用有限元边界积分法分析吸收体,并通过并行处理加速优化。数值测试表明,本文提出的精英NSGA收敛速度快于标准NSGA和其他经典技术解决了各种吸收体设计问题。最后,这种高效的精英NSGA被用于设计复杂的多边形吸收体。数值结果不仅证明了该设计算法的鲁棒性,而且还揭示了与基于帕累托优化的吸收器设计有关的一些重要信息和优势。

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