作者
Huiwu Mao, Yongli He, Chunsheng Chen, Li Zhu, Yixin Zhu, Ying Zhu, Shuo Ke, Xiangjing Wang, Changjin Wan, Qing Wan
发表日期
2022/2
期刊
Advanced Electronic Materials
卷号
8
期号
2
页码范围
2100918
简介
Spiking encoded stochastic neural network is believed to be energy efficient and biologically plausible and an increasing effort has been made recently to translate its great cognitive power into hardware implementations. Here, a stacked indium–gallium–zinc–oxide (IGZO)‐based threshold switching memristor with essential properties as a spiking stochastic neuron is introduced. Such IGZO spiking stochastic neuron shows a sigmoid firing probability that can be tuned by the amplitude, width, and frequency of the applied pulse sequence. More importantly, the stacked configuration is experimentally demonstrated with eliminated switching variation compared to one single memristor and a narrow relative deviation (≤6.8%) of the firing probability can be achieved. The IGZO stochastic neuron is applied to perform probabilistic unsupervised learning for handwritten digit reconstruction based on a restricted Boltzmann …
引用总数
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