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A linear regression inverse space mapping algorithm for EM-based design optimization of microwave circuits

机译:基于线性回归逆空间映射算法的微波电路电磁优化设计

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A new simplified formulation for inverse space mapping optimization of microwave circuits is presented in this work. In contrast to previous inverse space mapping algorithms, where artificial neural networks are trained to approximate the inverse space mapping at each iteration, our approach makes use of a linear regression formulation to calculate in closed form the inverse mapping parameters at each iteration, making faster and more robust the prediction of the next iterates. The inverse mapping parameters are obtained by inverting a small matrix of base points that is warranted to be full-rank. Direct input space mapping by linear regression is also discussed. Our technique is illustrated by the design optimization of a four-section 1∶3 Butterworth stripline impedance transformer, and by a microstrip notch filter with mitered bends.
机译:这项工作提出了一种新的简化公式,用于微波电路的逆空间映射优化。与以前的逆空间映射算法相反,在逆空间映射算法中,训练了人工神经网络以在每次迭代时近似逆空间映射,我们的方法利用线性回归公式以封闭形式计算每次迭代时的逆映射参数,从而更快,更快速。对下一个迭代的预测更加健壮。反向映射参数是通过反转一个小点的基点矩阵来获得的,该矩阵必须保证是满秩的。还讨论了通过线性回归的直接输入空间映射。通过四部分1∶3 Butterworth带状线阻抗变压器的设计优化以及带有斜接弯曲的微带陷波滤波器来说明我们的技术。

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