DocumentCode :
931861
Title :
Optic nerve signals in a neuromorphic chip I: Outer and inner retina models
Author :
Zaghloul, Kareem A. ; Boahen, Kwabena
Author_Institution :
Dept. of Neurosurg., Univ. of Pennsylvania, Philadelphia, PA, USA
Volume :
51
Issue :
4
fYear :
2004
fDate :
4/1/2004 12:00:00 AM
Firstpage :
657
Lastpage :
666
Abstract :
We present a novel model for the mammalian retina and analyze its behavior. Our outer retina model performs bandpass spatiotemporal filtering. It is comprised of two reciprocally connected resistive grids that model the cone and horizontal cell syncytia. We show analytically that its sensitivity is proportional to the space-constant-ratio of the two grids while its half-max response is set by the local average intensity. Thus, this outer retina model realizes luminance adaptation. Our inner retina model performs high-pass temporal filtering. It features slow negative feedback whose strength is modulated by a locally computed measure of temporal contrast, modeling two kinds of amacrine cells, one narrow-field, the other wide-field. We show analytically that, when the input is spectrally pure, the corner-frequency tracks the input frequency. But when the input is broadband, the corner frequency is proportional to contrast. Thus, this inner retina model realizes temporal frequency adaptation as well as contrast gain control. We present CMOS circuit designs for our retina model in this paper as well. Experimental measurements from the fabricated chip, and validation of our analytical results, are presented in the companion paper [Zaghloul and Boahen (2004)].
Keywords :
CMOS analogue integrated circuits; band-pass filters; brightness; eye; high-pass filters; neural chips; neurophysiology; physiological models; prosthetics; spatiotemporal phenomena; vision; CMOS circuit designs; adaptive circuits; amacrine cells; bandpass spatiotemporal filtering; cell syncytia; high-pass temporal filtering; inner retina models; luminance adaptation; neural systems; neuromorphic chip I; neuromorphic engineering; optic nerve signals; outer retina models; prosthetics; resistive grids; slow negative feedback; Band pass filters; Filtering; Frequency; Neuromorphics; Optical feedback; Optical filters; Optical sensors; Retina; Semiconductor device modeling; Spatiotemporal phenomena; Action Potentials; Adaptation, Physiological; Animals; Artificial Intelligence; Biomimetic Materials; Computer Simulation; Cones (Retina); Electronics; Equipment Design; Equipment Failure Analysis; Humans; Miniaturization; Models, Neurological; Nerve Net; Optic Nerve; Retina; Retinal Ganglion Cells; Semiconductors; Signal Processing, Computer-Assisted; Synaptic Transmission; Vision;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2003.821039
Filename :
1275581
Link To Document :
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