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Multi-objective optimization of Cassegrain reflector feeds using space mapping surrogate models

机译:使用空间映射代理模型对卡塞格伦反射镜馈源进行多目标优化

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This paper shows how multi-fidelity simulations of symmetrical Cassegrain antennas may be used to rapidly find a representation of the Pareto front for optimization of the feed horn. The method involves finding the Pareto set of non-dominated solutions in a coarse model domain and aligning the fine model responses over the Pareto set by employing a space mapping surrogate model. Two examples are shown; the first uses an analytically defined feed radiation pattern and the second a corrugated horn as feed for the reflector system. For electrically large systems, the method provides an accurate representation of the Pareto front, in the fine model domain, using only a fraction of the fine model evaluations that would be required in a direct optimization, and thus at a significantly reduced computational cost.
机译:本文展示了如何使用对称卡塞格伦天线的多保真度仿真来快速找到帕累托前沿的表示形式,以优化馈电喇叭。该方法包括在粗糙模型域中找到非支配解的帕累托集,并通过采用空间映射代理模型在帕累托集上对齐精细模型响应。显示了两个示例;第一个使用分析定义的馈电辐射图,第二个使用波纹状喇叭作为反射器系统的馈电。对于大型电气系统,该方法仅使用直接优化中所需的一部分精细模型评估,即可在精细模型域中准确表示帕累托前沿,从而显着降低了计算成本。

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