A spike-based adaptive filter

Q3 Arts and Humanities
Xiaoxiang Gong, J. Harris
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引用次数: 2

Abstract

We propose a spike-based adaptive filter with supervised learning. Unlike standard adaptive filters, here the optimal MSE solution is not unique for the spike-based system identification problem. The simplex method is introduced to select one of the many possible optimal solutions. In simulations, an LMS-based learning procedure is designed and, for faster convergence, we introduce a credit assignment method which penalizes all the weights contributing to the current error signal. Finally, we discuss issues regarding the implementation of the spike-based adaptive filter in an analog VLSI circuit.
基于峰值的自适应滤波器
我们提出了一种基于峰值的监督学习自适应滤波器。与标准的自适应滤波器不同,这里的最佳MSE解决方案并不是基于峰值的系统识别问题的唯一解决方案。引入单纯形法从众多可能的最优解中选择一个。在仿真中,我们设计了一个基于lms的学习过程,为了更快的收敛,我们引入了一种信用分配方法,该方法会惩罚导致当前误差信号的所有权重。最后,我们讨论了在模拟VLSI电路中实现基于尖峰的自适应滤波器的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Giornale di Storia Costituzionale
Giornale di Storia Costituzionale Arts and Humanities-History
CiteScore
0.20
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