DocumentCode :
6746
Title :
Spike-Timing-Dependent Plasticity Using Biologically Realistic Action Potentials and Low-Temperature Materials
Author :
Subramaniam, Anand ; Cantley, K.D. ; Bersuker, Gennadi ; Gilmer, D. ; Vogel, Eric M.
Author_Institution :
Dept. of Electr. Eng., Univ. of Texas at Dallas, Richardson, TX, USA
Volume :
12
Issue :
3
fYear :
2013
fDate :
May-13
Firstpage :
450
Lastpage :
459
Abstract :
Spike-timing-dependent plasticity (STDP) is a fundamental learning rule observed in biological synapses that is desirable to replicate in neuromorphic electronic systems. Nanocrystalline-silicon thin film transistors (TFTs) and memristors can be fabricated at low temperatures, and are suitable for use in such systems because of their potential for high density, 3-D integration. In this paper, a compact and robust learning circuit that implements STDP using biologically realistic nonmodulated rectangular voltage pulses is demonstrated. This is accomplished through the use of a novel nanoparticle memory-TFT with short retention time at the output of the neuron circuit that drives memristive synapses. Similarities to biological measurements are examined with single and repeating spike pairs or different timing intervals and frequencies, as well as with spike triplets.
Keywords :
biology; elemental semiconductors; learning (artificial intelligence); low-temperature techniques; memory architecture; memristors; nanoelectronics; nanostructured materials; neurophysiology; plasticity; silicon; thin film transistors; 3D integration; STDP; TFT; biological measurements; biological synapses; biologically realistic action potentials; biologically realistic nonmodulated rectangular voltage pulses; fundamental learning rule; low-temperature materials; memristor; nanocrystalline-silicon thin film transistors; nanoparticle memory-TFT; neuromorphic electronic systems; neuron circuit; robust learning circuit; spike pair repeat; spike triplets; spike-timing-dependent plasticity; Low-temperature nanoelectronics; memristor; neuromorphic circuit; spike-timing-dependent plasticity; synapse;
fLanguage :
English
Journal_Title :
Nanotechnology, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-125X
Type :
jour
DOI :
10.1109/TNANO.2013.2256366
Filename :
6493449
Link To Document :
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