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Multi-Fidelity Local Surrogate Model for Computationally Efficient Microwave Component Design Optimization

Multi-Fidelity Local Surrogate Model for Computationally Efficient Microwave Component Design Optimization


Title: Multi-Fidelity Local Surrogate Model for Computationally Efficient Microwave Component Design Optimization
Author: Song, Yiran
Cheng, Qingsha S.
Koziel, Slawomir   orcid.org/0000-0002-0584-4427
Date: 2019-07-09
Language: English
Scope: 3023
University/Institute: Háskólinn í Reykjavík
Reykjavik University
School: Tækni- og verkfræðideild (HR)
School of Science and Engineering (RU)
Series: Sensors;19(13)
ISSN: 1424-8220
DOI: 10.3390/s19133023
Subject: Electrical and Electronic Engineering; Atomic and Molecular Physics, and Optics; Local surrogate model; Multi-fidelity optimization; Space mapping; Bandpass microstrip filter; Compact UWB antenna; MIMO antenna; Ultrawideband; Antennas; Polynomials; Rafeindatæknifræði; Hermilíkön; Reiknilíkön; Hönnun; Bestun; Örbylgjur; Leiðarar (rafmagn); Tíðni; Loftnet; Þráðlaust net; Rafrásir
URI: https://hdl.handle.net/20.500.11815/1839

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Citation:

Song, Y., Cheng, Q. S., & Koziel, S. (2019). Multi-Fidelity Local Surrogate Model for Computationally Efficient Microwave Component Design Optimization. Sensors, 19(13), 3023. https://doi.org/10.3390/s19133023

Abstract:

In order to minimize the number of evaluations of high-fidelity (fine) model in the optimization process, to increase the optimization speed, and to improve optimal solution accuracy, a robust and computational-efficient multi-fidelity local surrogate-model optimization method is proposed. Based on the principle of response surface approximation, the proposed method exploits the multi-fidelity coarse models and polynomial interpolation to construct a series of local surrogate models. In the optimization process, local region modeling and optimization are performed iteratively. A judgment factor is introduced to provide information for local region size update. The last local surrogate model is refined by space mapping techniques to obtain the optimal design with high accuracy. The operation and efficiency of the approach are demonstrated through design of a bandpass filter and a compact ultra-wide-band (UWB) multiple-in multiple-out (MIMO) antenna. The response of the optimized design of the fine model meet the design specification. The proposed method not only has better convergence compared to an existing local surrogate method, but also reduces the computational cost substantially.

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This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).

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