Pulse-type hardware model with STDP-like learning

被引:0
|
作者
Otaki, Mitsuhiko [1 ]
Ohwada, Ken [1 ]
Saeki, Katsutoshi [2 ]
Sekine, Yoshifumi [2 ]
机构
[1] Department of Electronic Engineering, School of Science and Technology, Nihon University, 1-8-14,Kanda Surugadai, Chivoda-ku. Tokyo 101-8308, Japan
[2] Department of Electronics and Computer Science, College of Science and Technology, Nihon University, 7-24-1 Narashinodai, Funabashi. Chiba 274-8501, Japan
关键词
The synaptic plasticity has important role of learning function of neurons. Reportedly STDP (Spike Timing Dependent synaptic Plasticity) is generated between inputs of pre-synaptic neurons and backpropagation of the active potential from dendrites of post-synaptic neuron; as revealed by physiological experiments. Hie purpose of our research is construction of the hardware learning model with STDP-like learning rules. In this paper; we study on a Pulse-type Hardware Neuron Model (hereafter P-HNM) focused on a dendrite in order to make a Pulse-type Hardware Neural Network. As a result; we show that the P-HNM can mimic STDP characteristics of biological neuron. © 2014 The Institute of Electrical Engineers of Japan;
D O I
10.1541/ieejeiss.134.1485
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页码:1485 / 1491
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