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Cost-Efficient Bi-Layer Modeling of Antenna Input Characteristics Using Gradient Kriging Surrogates

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dc.contributor Háskólinn í Reykjavík
dc.contributor Reykjavik University
dc.contributor.author Pietrenko-Dabrowska, Anna
dc.contributor.author Koziel, Slawomir
dc.contributor.author Al-Hasan, Mu'ath
dc.date.accessioned 2020-11-06T15:50:19Z
dc.date.available 2020-11-06T15:50:19Z
dc.date.issued 2020
dc.identifier.citation Pietrenko-Dabrowska, A., Koziel, S., & Al-Hasan, M. (2020). Cost-Efficient Bi-Layer Modeling of Antenna Input Characteristics Using Gradient Kriging Surrogates. Ieee Access, 8, 140831–140839. https://doi.org/10.1109/ACCESS.2020.3013616
dc.identifier.issn 2169-3536
dc.identifier.uri https://hdl.handle.net/20.500.11815/2177
dc.description Publisher's version (útgefin grein)
dc.description.abstract Over the recent years, surrogate modeling has been playing an increasing role in the design of antenna structures. The main incentive is to mitigate the issues related to high cost of electromagnetic (EM)-based procedures. Among the various techniques, approximation surrogates are the most popular ones due to their flexibility and easy access. Notwithstanding, data-driven modeling of antenna characteristics is associated with serious practical issues, the primary one being the curse of dimensionality, particularly troublesome due to typically high nonlinearity of antenna responses. This limits applicability of conventional surrogates to simple structures described by a few parameters within narrow ranges thereof, which is grossly insufficient from the point of view of design utility. Many of these issues can be alleviated by the recently proposed constrained modeling techniques that restrict the surrogate domain to regions containing high-quality designs with respect to the relevant performance figures, which are identified using the pre-optimized reference designs at an extra computational effort. This paper proposes a methodology based on gradient-enhanced kriging (GEK). It enables a considerable reduction of the number of reference points required to construct the inverse surrogate (employed in surrogate model definition) by incorporating the sensitivity data into the nested kriging framework. Using two antenna examples, it is demonstrated to yield significant savings in terms of the surrogate model setup cost as compared to both conventional modeling methods and the original nested kriging.
dc.description.sponsorship The Icelandic Centre for Research (RANNIS) under Grant 206606051, in part by the National Science Centre of Poland under Grant 2017/27/B/ST7/00563, and in part by the Abu-Dhabi Department of Education and Knowledge (ADEK) Award for Research Excellence, in 2019, under Grant AARE19-245.
dc.format.extent 140831-140839
dc.language.iso en
dc.publisher Institute of Electrical and Electronics Engineers (IEEE)
dc.relation.ispartofseries IEEE Access;8
dc.rights info:eu-repo/semantics/openAccess
dc.subject General Engineering
dc.subject General Materials Science
dc.subject General Computer Science
dc.subject Antenna modeling
dc.subject Surrogate modeling
dc.subject Two-stage modeling
dc.subject Gradient kriging
dc.subject Domain confinement
dc.subject Simulation-driven design
dc.subject Design optimization
dc.subject Verkfræði
dc.subject Efnisfræði
dc.subject Tölvunarfræði
dc.subject Loftnet
dc.subject Hönnun
dc.subject Líkanagerð
dc.subject Hermilíkön
dc.subject Bestun
dc.title Cost-Efficient Bi-Layer Modeling of Antenna Input Characteristics Using Gradient Kriging Surrogates
dc.type info:eu-repo/semantics/article
dcterms.license This work is licensed under a Creative Commons Attribution 4.0 License. For more information, see https://creativecommons.org/licenses/by/4.0/.
dc.description.version "Peer Reviewed"
dc.identifier.journal IEEE Access
dc.identifier.doi 10.1109/ACCESS.2020.3013616
dc.relation.url http://xplorestaging.ieee.org/ielx7/6287639/8948470/09154412.pdf?arnumber=9154412
dc.contributor.department Verkfræðideild (HR)
dc.contributor.department Department of Engineering (RU)
dc.contributor.department Engineering Optimization & Modeling Center (EOMC) (RU)
dc.contributor.school Tæknisvið (HR)
dc.contributor.school School of Technology (RU)


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