利用多层感知器对准分形贴片天线进行精确建模

P. H. da F Silva, E. E. C. Oliveira, Adaildo G d'Assunao
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引用次数: 5

摘要

采用高效弹性反向传播(RPROP)算法训练的单层感知器(MLP)人工神经网络(ANN)用于准分形贴片天线的建模。该天线的设计是基于将矩形Koch分形曲线应用于传统微带插入式贴片天线的边缘。使用Ansoft DesignerTM软件进行贴片天线的电磁(EM)表征,该软件采用矩量法。对准分形贴片天线的介电基片厚度和尺寸进行了参数化分析。考虑设计参数的感兴趣区域,获得具有代表性的EM-ANN数据集,利用传统的EM-ANN神经建模技术建立MLP网络模型。MLP模型能够以较低的计算成本和较高的精度估计天线的性能。模拟结果与实测结果吻合良好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using a multilayer perceptrons for accurate modeling of quasi-fractal patch antennas
A multilayer perceptrons (MLP) artificial neural network (ANN) with one hidden layer and trained through the efficient resilient backpropagation (RPROP) algorithm is used for modeling quasi-fractal patch antennas. The design of the proposed antenna is based on the application of rectangular Koch fractal curve to the edges of a conventional microstrip inset-fed patch antenna. The electromagnetic (EM) characterization of the patch antennas was performed using the Ansoft DesignerTM software that uses the method of moments. A parametric analysis was developed as function of the dielectric substrate thickness and size of the quasi-fractal patch antennas. Considering the region of interest of the design parameters a representative EM-dataset was obtained to develop the MLP network model using the conventional EM-ANN neuromodeling technique. The MLP model is able to estimates the behavior of the antennas with very good accuracy and low computational cost. Good agreement is observed between simulated and measured results.
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