GAUSSIAN PROCESS MODELING OF CPW-FED SLOT ANTENNAS

被引:34
作者
De Villiers, J. P. [1 ]
Jacobs, J. P. [1 ]
机构
[1] Univ Pretoria, Dept Elect Elect & Comp Engn, ZA-0002 Pretoria, South Africa
关键词
ARTIFICIAL NEURAL-NETWORKS; BAND-NOTCHED CHARACTERISTICS; MONOPOLE ANTENNA; UWB ANTENNA; DESIGN; ARRAY; IDENTIFICATION; OPTIMIZATION; SURFACES;
D O I
10.2528/PIER09083103
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
080906 [电磁信息功能材料与结构]; 082806 [农业信息与电气工程];
摘要
Gaussian process (GP) regression is proposed as a structured supervised learning alternative to neural networks for the modeling of CPW-fed slot antenna input characteristics. A Gaussian process is a stochastic process and entails the generalization of the Gaussian probability distribution to functions. Standard GP regression is applied to modeling S-11 against frequency of a CPW-fed second-resonant slot dipole, while an approximate method for large datasets is applied to an ultrawideband (UWB) slot with U-shaped tuning stub-A challenging problem given the highly non-linear underlying function that maps tunable geometry variables and frequency to S-11/input impedance. Predictions using large test data sets yielded results of an accuracy comparable to the target moment-method-based full-wave simulations, with normalized root mean squared errors of 0.50% for the slot dipole, and below 1.8% for the UWB antenna. The GP methodology has various inherent benefits, including the need to learn only a handful of (hyper) parameters, and training errors that are effectively zero for noise-free observations. GP regression would be eminently suitable for integration in antenna design algorithms as a fast substitute for computationally intensive full-wave analysis.
引用
收藏
页码:233 / 249
页数:17
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