DocumentCode :
396719
Title :
Silicon approximation to biological neuron
Author :
Gorelik, V.A.
Author_Institution :
Neuronix, Savannah, GA, USA
Volume :
2
fYear :
2003
fDate :
20-24 July 2003
Firstpage :
965
Abstract :
This paper presents a new approach to simulate the behavior of a biological neuron in silicon. The proposed devices have the ability to mimic a variety of structures and interconnect architectures commonly found in biological neural nets. The proposed device may be fabricated in polysilicon rather than in a single crystal substrate and thus permits multi-layer architectures. Unlike MOS and BJT-based structures, the device utilizes significantly different operating principles that are more closely related to transport mechanisms in biological neurons. The device is well suited to simulate axodendritic, dendrodendritic, axoaxonic, and reciprocal synapses. A network of such devices can be constructed to perform both spatial and/or temporal processing. Basic principles underlying the design allow multi-layered, almost zero-power neural networks on a single silicon die. One possible implementation, utilizing temporal neural circuitry for extraction and production of atomic auditory elements - phonemes in Broca´s and Wernicke´s areas of the cortex, is also shown.
Keywords :
multilayer perceptrons; neural chips; neurophysiology; axoaxonic; axodendritic; biological neural nets; biological neuron; dendrodendritic; polysilicon; reciprocal synapses; silicon approximation; single silicon die; temporal neural circuitry; temporal processing; Biological information theory; Biological neural networks; Biological system modeling; Cells (biology); Integrated circuit interconnections; Nerve fibers; Neural networks; Neurons; Nonvolatile memory; Silicon;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks, 2003. Proceedings of the International Joint Conference on
ISSN :
1098-7576
Print_ISBN :
0-7803-7898-9
Type :
conf
DOI :
10.1109/IJCNN.2003.1223821
Filename :
1223821
Link To Document :
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