A Solid-State Electronic Linear Adaptive Neuron With Electrically Reprogrammabe Synapses

C.-Y.M. Chen, M. White, M. French
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Abstract

This paper addresses the implementation of a semiconductor device used to siniulate the synaptic interconnection in hardware realization of neural network systems. We have incorporated these modifiable synaptic weights into a solid-state electronic linear adaptive neuron with a Widrow-Hoff's delta learning rule as the updating algorithm to investigate the electrical performance of these programmable synapses. The experimental and simulation results are also presented in the paper.
具有电可编程突触的固态电子线性自适应神经元
本文讨论了在神经网络系统硬件实现中用于模拟突触互连的半导体器件的实现。我们将这些可修改的突触权重整合到固态电子线性自适应神经元中,并使用Widrow-Hoff's delta学习规则作为更新算法来研究这些可编程突触的电学性能。最后给出了实验和仿真结果。
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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