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Variable-fidelity optimization of microwave filters using co-kriging and trust regions

机译:使用协同克里格和信任区域的微波滤波器可变保真度优化

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In this paper, a variable-fidelity optimization methodology for simulation-driven design optimization of filters is presented. We exploit electromagnetic (EM) simulations of different accuracy. Densely sampled but cheap low-fidelity EM data is utilized to create a fast kriging interpolation model (the surrogate), subsequently used to find an optimum design of the high-fidelity EM model of the filter under consideration. The high-fidelity data accumulated during the optimization process is combined with the existing surrogate using the co-kriging technique. This allows us to improve the surrogate model accuracy while approaching the optimum. The convergence of the algorithm is ensured by embedding it into the trust region framework that adaptively adjusts the search radius based on the quality of the predictions made by the co-kriging model. Three filter design cases are given for demonstration and verification purposes.
机译:本文提出了一种用于仿真驱动的滤波器设计优化的可变保真度优化方法。我们利用不同精度的电磁(EM)仿真。密集采样但廉价的低保真度EM数据用于创建快速克里金插值模型(替代),随后用于查找所考虑的滤波器的高保真度EM模型的最佳设计。在优化过程中累积的高保真数据将使用共同克里金技术与现有的替代方法结合在一起。这使我们可以在接近最佳模型的同时提高替代模型的准确性。通过将算法嵌入到信任区域框架中,可以确保算法的收敛性,该信任区域框架会根据协同克里金模型做出的预测质量来自适应地调整搜索半径。给出了三个过滤器设计案例,以进行演示和验证。

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