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Multilayer perceptron neural networks to compute quasistatic parameters of asymmetric coplanar waveguides

机译:多层感知器神经网络,用于计算非对称共面波导的准静态参数

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摘要

Artificial neural networks (ANNs) have recently gained attention as fast and flexible vehicles to microwave modeling, simulation, and optimization. In this study, ANNs, based on the multilayer perceptron, were presented for accurate computation of the quasistatic parameters of asymmetric coplanar waveguides (ACPWs). Multilayer perceptron neural networks (MLPNNs) were trained with backpropagation, delta-bar-delta, extended delta-bar-delta, quick propagation, and Leven-berg-Marquardt algorithms to compute the quasistatic parameters, the characteristic impedance and the effective dielectric constant, of the ACPWs. The results of the MLPNNs trained with the Levenberg-Marquardt algorithm for the quasistatic parameters of the ACPWs were in very good agreement with the results available in the literature obtained by using conformal-mapping technique.
机译:近年来,人工神经网络(ANN)作为快速灵活的工具已经受到微波建模,仿真和优化的关注。在这项研究中,提出了基于多层感知器的人工神经网络,用于精确计算非对称共面波导(ACPW)的准静态参数。对多层感知器神经网络(MLPNN)进行了反向传播,delta-bar-delta,扩展delta-bar-delta,快速传播和Leven-berg-Marquardt算法训练,以计算准静态参数,特征阻抗和有效介电常数, ACPW。用Levenberg-Marquardt算法训练的ALPW准静态参数的MLPNN的结果与采用保形映射技术获得的文献中的结果非常吻合。

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