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A multilayered shielded microwave circuit design method based on genetic algorithms and neural networks

机译:基于遗传算法和神经网络的多层屏蔽微波电路设计方法

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In this work we propose the use of Genetic Algorithms combined with Neural Networks to design shielded printed microwave filters. Optimization based on Genetic Algorithm techniques (GA) is usually very time consuming. By using Neural Networks, the GA can be applied to the design of multilayered shielded circuits in reasonable time. The Neural Networks approximates the Green's functions employed in the Integral Equation (IE) approach. Fast analysis of the printed circuits inside the shielded structure can be done, therefore limiting the total execution time of the GA. A new specific fitness function specially well suited for the design of microwave filters has also been derived. Results show good performance of the CAD developed for the design of practical printed shielded microwave filters.
机译:在这项工作中,我们建议使用遗传算法与神经网络相结合,以设计屏蔽印刷微波滤波器。基于遗传算法技术(GA)的优化通常非常耗时。通过使用神经网络,可以在合理的时间内应用于多层屏蔽电路的设计。神经网络近似于整体方程(IE)方法中采用的绿色功能。可以进行快速分析屏蔽结构内的印刷电路,因此限制了GA的总执行时间。还推出了一种特别适用于微波滤波器设计的新特定健身功能。结果表明,为实用印刷微波过滤器设计开发的CAD性能良好。

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