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Scalability of surrogate-assisted multi-objective optimization of antenna structures exploiting variable-fidelity electromagnetic simulation models

机译:利用可变保真度电磁仿真模型的辅助辅助天线结构多目标优化的可扩展性

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摘要

Multi-objective optimization of antenna structures is a challenging task owing to the high computational cost of evaluating the design objectives as well as the large number of adjustable parameters. Design speed-up can be achieved by means of surrogate-based optimization techniques. In particular, a combination of variable-fidelity electromagnetic (EM) simulations, design space reduction techniques, response surface approximation models and design refinement methods permits identification of the Pareto-optimal set of designs within a reasonable timeframe. Here, a study concerning the scalability of surrogate-assisted multi-objective antenna design is carried out based on a set of benchmark problems, with the dimensionality of the design space ranging from six to 24 and a CPU cost of the EM antenna model from 10 to 20 min per simulation. Numerical results indicate that the computational overhead of the design process increases more or less quadratically with the number of adjustable geometric parameters of the antenna structure at hand, which is a promising result from the point of view of handling even more complex problems.
机译:天线结构的多目标优化是一项艰巨的任务,因为评估设计目标需要大量的计算成本,并且需要大量的可调参数。可以通过基于代理的优化技术来提高设计速度。特别是,将可变保真度电磁(EM)仿真,设计空间缩减技术,响应面近似模型和设计改进方法结合起来,可以在合理的时间内确定Pareto最优设计集。在此,基于一组基准问题,进行了关于替代辅助多目标天线设计可扩展性的研究,设计空间的维数为6到24,而EM天线模型的CPU成本为10每次模拟最多20分钟。数值结果表明,随着手头天线结构的可调几何参数数量的增加,设计过程的计算开销几乎呈二次方增加,从处理更复杂问题的角度来看,这是一个有希望的结果。

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