Globalized parametric optimization of microwave components by means of response features and inverse metamodels

Author:

Pietrenko-Dabrowska Anna,Koziel Slawomir

Abstract

AbstractSimulation-based optimization of geometry parameters is an inherent and important stage of microwave design process. To ensure reliability, the optimization process is normally carried out using full-wave electromagnetic (EM) simulation tools, which entails significant computational overhead. This becomes a serious bottleneck especially if global search is required (e.g., design of miniaturized structures, dimension scaling over broad ranges of operating frequencies, multi-modal problems, etc.). In pursuit of mitigating the high-cost issue, this paper proposes a novel algorithmic approach to rapid EM-driven global optimization of microwave components. Our methodology incorporates a response feature technology and inverse regression metamodels to enable fast identification of the promising parameter space regions, as well as to yield a good quality initial design, which only needs to be tuned using local routines. The presented technique is illustrated using three microstrip circuits optimized under challenging scenarios, and demonstrated to exhibit global search capability while maintaining low computational cost of the optimization process of only about one hundred of EM simulations of the structure at hand on the average. The performance is shown to be superior in terms of efficacy over both local algorithms and nature-inspired global methods.

Funder

Icelandic Centre for Research

Narodowe Centrum Nauki

Publisher

Springer Science and Business Media LLC

Subject

Multidisciplinary

Cited by 16 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Expedited re-design of multi-band passive microwave circuits using orthogonal scaling directions and gradient-based tuning;Scientific Reports;2024-04-23

2. Efficient Adjoint-Based Shape Optimization Method for the Inverse Design of Microwave Components;IEEE Transactions on Microwave Theory and Techniques;2024

3. Simulation-Driven Design of High-Frequency Structures;Response Feature Technology for High-Frequency Electronics. Optimization, Modeling, and Design Automation;2023-10-17

4. Response Features for Global and Multi-objective Optimization;Response Feature Technology for High-Frequency Electronics. Optimization, Modeling, and Design Automation;2023-10-17

5. A High-Quality Data Acquisition Method for Machine-Learning-Based Design and Analysis of Electromagnetic Structures;IEEE Transactions on Microwave Theory and Techniques;2023-10

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