作者
Omid Kavehei, Said Al-Sarawi, Kyoung-Rok Cho, Nicolangelo Iannella, Sung-Jin Kim, Kamran Eshraghian, Derek Abbott
发表日期
2011/12/6
研讨会论文
2011 Seventh International Conference on Intelligent Sensors, Sensor Networks and Information Processing
页码范围
137-142
出版商
IEEE
简介
We present new computational building blocks based on memristive devices. These blocks, can be used to implement either supervised or unsupervised learning modules. This is achieved using a crosspoint architecture which is an efficient array implementation for nanoscale two-terminal mem-ristive devices. Based on these blocks and an experimentally verified SPICE macromodel for the memristor, we demonstrate that firstly, the Spike-Timing-Dependent Plasticity (STDP) can be implemented by a single memristor device and secondly, a memristor-based competitive Hebbian learning through STDP using a 1×1000 synaptic network. This is achieved by adjusting the memristor's conductance values (weights) as a function of the timing difference between presynaptic and postsynaptic spikes. These implementations have a number of shortcomings due to the memristor's characteristics such as memory decay …
引用总数
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学术搜索中的文章
O Kavehei, S Al-Sarawi, KR Cho, N Iannella, SJ Kim… - 2011 Seventh International Conference on Intelligent …, 2011