A CMOS Spiking Neural Network Circuit with Symmetric/Asymmetric STDP Function
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概要
- 論文の詳細を見る
In this paper, we propose an analog CMOS circuit which achieves spiking neural networks with spike-timing dependent synaptic plasticity (STDP). In particular, we propose a STDP circuit with symmetric function for the first time, and also we demonstrate associative memory operation in a Hopfield-type feedback network with STDP learning. In our spiking neuron model, analog information expressing processing results is given by the relative timing of spike firing events. It is well known that a biological neuron changes its synaptic weights by STDP, which provides learning rules depending on relative timing between asynchronous spikes. Therefore, STDP can be used for spiking neural systems with learning function. The measurement results of fabricated chips using TSMC 0.25 µm CMOS process technology demonstrate that our spiking neuron circuit can construct feedback networks and update synaptic weights based on relative timing between asynchronous spikes by a symmetric or an asymmetric STDP circuits.
- 社団法人電子情報通信学会の論文
- 2009-07-01
著者
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Aihara Kazuyuki
Institute of Industrial Science, The University of Tokyo
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Morie Takashi
Graduate School Of Life Science And Systems Engineering Kyushu Institute Of Technology
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TANAKA Hideki
Graduate School of Life Science and Systems Engineering, Kyushu Institute of Technology
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Aihara Kazuyuki
Institute Of Industrial Science The University Of Tokyo
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Tanaka Hideki
Graduate School Of Life Science And Systems Engineering Kyushu Institute Of Technology
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Tanaka Hideki
Graduate School Of Keio University:(present Address)tokyo Shibaura Electric Co. Ltd.
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