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Resistive grid image filtering: input/output analysis via the CNN framework

机译:电阻网格图像过滤:通过CNN框架进行输入/输出分析

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摘要

The cellular neural network framework developed by L.O. Chua and L. Yang (IEEE Trans. Circuits Syst., vol.32, Oct. 1988) is used to analyze the image filtering operation performed by the VLSI linear resistive grid. In particular, it is shown in detail how the resistive grid can be cast as a CNN, and the use of frequency-domain techniques to characterize the input-output behavior of resistive grids of both infinite and finite size is discussed. These results lead to a theoretical justification of one of the so-called folk theorems commonly held by researchers using resistive grids: resistive grids are robust in the presence of variations in the values of the resistors. An application to edge detection is proposed. In particular, it is shown that the filtering performed by the grid is similar to the exponential filter in the edge detection algorithm proposed by J. Shen and S. Castan (1986).
机译:L.O.开发的细胞神经网络框架Chua和L. Yang(IEEE Trans。Circuits Syst。,第32卷,1988年10月)用于分析由VLSI线性电阻网格执行的图像滤波操作。特别是,详细显示了如何将电阻栅格铸造为CNN,并讨论了使用频域技术来表征无限大和有限尺寸的电阻栅格的输入-输出行为。这些结果为研究人员通常使用电阻网格的所谓民间定理之一提供了理论上的证明:在电阻值存在变化的情况下,电阻网格很健壮。提出了一种在边缘检测中的应用。特别地,显示出由网格执行的滤波类似于由J.Shen和S.Castan(1986)提出的边缘检测算法中的指数滤波。

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