Fast Design Closure of Compact Microwave Components by Means of Feature-Based Metamodels
Precise tuning of geometry parameters is an important consideration in the design of modern microwave passive components. It is mandatory due to limitations of theoretical design methods unable to quantify certain phenomena that are important for the operation and performance of the devices (e.g., s...
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doaj-b41b56ae63d1442199fdde61540225082020-12-24T00:04:57ZengMDPI AGElectronics2079-92922021-12-0110101010.3390/electronics10010010Fast Design Closure of Compact Microwave Components by Means of Feature-Based MetamodelsAnna Pietrenko-Dabrowska0Slawomir Koziel1Faculty of Electronics, Telecommunications and Informatics, Gdansk University of Technology, 80-233 Gdansk, PolandEngineering Optimization & Modeling Center, Reykjavik University, 101 Reykjavik, IcelandPrecise tuning of geometry parameters is an important consideration in the design of modern microwave passive components. It is mandatory due to limitations of theoretical design methods unable to quantify certain phenomena that are important for the operation and performance of the devices (e.g., strong cross-coupling effects in miniaturized layouts). Consequently, the initial designs obtained using analytical or equivalent network models require further adjustment. For reliability reasons, it has to be conducted using electromagnetic (EM) simulation tools, which entails considerable computational expenses whenever conventional numerical optimization algorithms are employed. Accelerating EM-driven design procedures is therefore highly desirable. This work discusses a surrogate-based algorithm for fast design closure and dimension scaling of miniaturized microwave passives. Our approach involves a small database of previously obtained designs as well as two metamodels, an inverse one, employed to yield a high-quality initial design, and the forward surrogate that provides predictions of the system sensitivities. The second model is constructed at the level of response features, which enables a more accurate gradient estimation and leads to improved reliability and a faster convergence of the optimization process. The presented technique is validated using two compact microstrip couplers and benchmarked against the state-of-the-art warm-start optimization frameworks.https://www.mdpi.com/2079-9292/10/1/10microwave designdesign closureEM simulationsimulation-driven optimizationsurrogate modelingfeature-based modeling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Anna Pietrenko-Dabrowska Slawomir Koziel |
spellingShingle |
Anna Pietrenko-Dabrowska Slawomir Koziel Fast Design Closure of Compact Microwave Components by Means of Feature-Based Metamodels Electronics microwave design design closure EM simulation simulation-driven optimization surrogate modeling feature-based modeling |
author_facet |
Anna Pietrenko-Dabrowska Slawomir Koziel |
author_sort |
Anna Pietrenko-Dabrowska |
title |
Fast Design Closure of Compact Microwave Components by Means of Feature-Based Metamodels |
title_short |
Fast Design Closure of Compact Microwave Components by Means of Feature-Based Metamodels |
title_full |
Fast Design Closure of Compact Microwave Components by Means of Feature-Based Metamodels |
title_fullStr |
Fast Design Closure of Compact Microwave Components by Means of Feature-Based Metamodels |
title_full_unstemmed |
Fast Design Closure of Compact Microwave Components by Means of Feature-Based Metamodels |
title_sort |
fast design closure of compact microwave components by means of feature-based metamodels |
publisher |
MDPI AG |
series |
Electronics |
issn |
2079-9292 |
publishDate |
2021-12-01 |
description |
Precise tuning of geometry parameters is an important consideration in the design of modern microwave passive components. It is mandatory due to limitations of theoretical design methods unable to quantify certain phenomena that are important for the operation and performance of the devices (e.g., strong cross-coupling effects in miniaturized layouts). Consequently, the initial designs obtained using analytical or equivalent network models require further adjustment. For reliability reasons, it has to be conducted using electromagnetic (EM) simulation tools, which entails considerable computational expenses whenever conventional numerical optimization algorithms are employed. Accelerating EM-driven design procedures is therefore highly desirable. This work discusses a surrogate-based algorithm for fast design closure and dimension scaling of miniaturized microwave passives. Our approach involves a small database of previously obtained designs as well as two metamodels, an inverse one, employed to yield a high-quality initial design, and the forward surrogate that provides predictions of the system sensitivities. The second model is constructed at the level of response features, which enables a more accurate gradient estimation and leads to improved reliability and a faster convergence of the optimization process. The presented technique is validated using two compact microstrip couplers and benchmarked against the state-of-the-art warm-start optimization frameworks. |
topic |
microwave design design closure EM simulation simulation-driven optimization surrogate modeling feature-based modeling |
url |
https://www.mdpi.com/2079-9292/10/1/10 |
work_keys_str_mv |
AT annapietrenkodabrowska fastdesignclosureofcompactmicrowavecomponentsbymeansoffeaturebasedmetamodels AT slawomirkoziel fastdesignclosureofcompactmicrowavecomponentsbymeansoffeaturebasedmetamodels |
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