Design of 2-D FIR filters by feedback neural networks

Dhruba Kumar Bhattacharya, A. Antoniou · 2002

A Hopfield-type neural network is proposed for the design of 2-D FIR filters. Given the amplitude response, the all-analog network computes the filter coefficients in real time. The network is simulated with HSPICE and a few examples are included to show that this is an efficient way of solving the approximation problem and has high potential for implementation in analog VLSI.

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