DocumentCode :
1502577
Title :
Analog VLSI Biophysical Neurons and Synapses With Programmable Membrane Channel Kinetics
Author :
Yu, T. ; Cauwenberghs, G.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of California, San Diego, CA, USA
Volume :
4
Issue :
3
fYear :
2010
fDate :
6/1/2010 12:00:00 AM
Firstpage :
139
Lastpage :
148
Abstract :
We present and characterize an analog VLSI network of 4 spiking neurons and 12 conductance-based synapses, implementing a silicon model of biophysical membrane dynamics and detailed channel kinetics in 384 digitally programmable parameters. Each neuron in the analog VLSI chip (NeuroDyn) implements generalized Hodgkin-Huxley neural dynamics in 3 channel variables, each with 16 parameters defining channel conductance, reversal potential, and voltage-dependence profile of the channel kinetics. Likewise, 12 synaptic channel variables implement a rate-based first-order kinetic model of neurotransmitter and receptor dynamics, accounting for NMDA and non-NMDA type chemical synapses. The biophysical origin of all 384 parameters in 24 channel variables supports direct interpretation of the results of adapting/tuning the parameters in terms of neurobiology. We present experimental results from the chip characterizing single neuron dynamics, single synapse dynamics, and multi-neuron network dynamics showing phase-locking behavior as a function of synaptic coupling strength. Uniform temporal scaling of the dynamics of membrane and gating variables is demonstrated by tuning a single current parameter, yielding variable speed output exceeding real time. The 0.5 CMOS chip measures 3 mm 3 mm, and consumes 1.29 mW.
Keywords :
CMOS integrated circuits; VLSI; bioelectric phenomena; biomedical electronics; biomembrane transport; neurophysiology; CMOS chip; NeuroDyn; analog VLSI biophysical neurons; analog VLSI chip; biophysical membrane dynamics; channel conductance; conductance-based synapses; generalized Hodgkin-Huxley neural dynamics; multineuron network dynamics; neurotransmitter; phase-locking behavior; programmable membrane channel kinetics; rate-based first-order kinetic model; receptor dynamics; reversal potential; silicon model; single neuron dynamics; single synapse dynamics; spiking neurons; synaptic coupling strength; voltage-dependence profile; Biological system modeling; Biomembranes; Jacobian matrices; Kinetic theory; Nervous system; Neuromorphic engineering; Neurons; Silicon; Very large scale integration; Voltage; Neuromorphic engineering; reconfigurable neural and synaptic dynamics; silicon neurons; subthreshold metal–oxide semiconductor (MOS); translinear circuits;
fLanguage :
English
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1932-4545
Type :
jour
DOI :
10.1109/TBCAS.2010.2048566
Filename :
5471736
Link To Document :
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