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J. Electromagn. Eng. Sci > Epub ahead of print
[Epub ahead of print] Published online December 17, 2024.
Data-Selective Learning Algorithm Using Resonance Parameters Based on Stacked Data Augmentation for Wideband Impedance Prediction of Printed Spiral Coils
Joojoong Kim  , Eakhwan Song 
Department of Electronics and Communications Engineering, Kwangwoon University, Seoul, South Korea
Correspondence:  Eakhwan Song,Email: esong@kw.ac.kr
Received: 21 April 2024   • Revised: 30 April 2024   • Accepted: 4 August 2024
Abstract
In recent years, various fields have conducted extensive research on neural network learning to address the growing demand for miniaturization and multi-functionalization of wireless devices. In this paper, we propose a data-selective learning algorithm that uses resonance parameters based on stacked data augmentation to predict the wideband impedance characteristics of printed spiral coil (PSC) structures, which are widely used as radio-frequency interference measurement probes. The proposed model utilizes a multilayer perceptron (MLP) neural network to predict the impedance of PSCs. The training data used in this study comprised 604 PSC design structures, with the selfimpedance of the PSC corresponding to 600 frequencies. To achieve efficient data learning for wideband impedance prediction, a data selection algorithm that uses the difference between the resonance parameters of the predicted and target impedances in the high frequency range is proposed. To further enhance learning efficiency and improve model stability, we introduced a novel method that combines data selection and stacked data augmentation. The model with the proposed data selection and augmentation algorithm demonstrated efficient learning and accurate impedance prediction using approximately 54.4% less training data than a conventional MLP neural network model. Furthermore, the proposed model was validated through electromagnetic field simulation, showing an accuracy of up to 6 GHz.
Key words: Data Selective Learning Algorithm, Printed Spiral Coils, Resonance Parameters, Stacked Data Augmentation, Wideband Impedance Prediction
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