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The analogy between the Butler matrix and the neural-network direction-finding array

机译:Butler矩阵与神经网络测向阵列的类比

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摘要

The Butler matrix and the neural network have been compared to provide insights about the neural-network behavior for a direction-finding array. The goal of the paper has been tutorial, since the two systems are only really comparable in the very limited case considered: an ideal array with equal element spacings, no failures, and using the orthogonal beam locations as training points. Within the constraints of this specialized case, the comparison illustrates the role of pre- and post-processing, the function of the Gaussian radial basis function, and the considerations in determining the weights applied to the Gaussian or modified sine function node outputs. In addition, the comparison points out the basic similarity of the two procedures, and reveals some insights about the operation of a neural network from the perspective of antenna engineering.
机译:已对Butler矩阵和神经网络进行了比较,以提供有关方向搜索阵列的神经网络行为的见解。本文的目标是教程,因为这两种系统仅在考虑到的非常有限的情况下才具有真正的可比性:具有相等元素间距,无故障且使用正交波束位置作为训练点的理想阵列。在这种特殊情况的约束下,该比较说明了预处理和后处理的作用,高斯径向基函数的功能以及确定应用于高斯或修改后的正弦函数节点输出的权重的注意事项。此外,比较指出了这两个过程的基本相似性,并从天线工程的角度揭示了有关神经网络操作的一些见解。

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