DocumentCode
917016
Title
Basic Difference Between Brain and Computer: Integration of Asynchronous Processes Implemented as Hardware Model of the Retina
Author
Przybyszewski, Andrzej W. ; Linsay, Paul S. ; Gaudiano, Paolo ; Wilson, Christopher M.
Author_Institution
Dept. of Cognitive & Neural Syst., Boston Univ., MA
Volume
18
Issue
1
fYear
2007
Firstpage
70
Lastpage
85
Abstract
There exists a common view that the brain acts like a Turing machine: The machine reads information from an infinite tape (sensory data) and, on the basis of the machine´s state and information from the tape, an action (decision) is made. The main problem with this model lies in how to synchronize a large number of tapes in an adaptive way so that the machine is able to accomplish tasks such as object classification. We propose that such mechanisms exist already in the eye. A popular view is that the retina, typically associated with high gain and adaptation for light processing, is actually performing local preprocessing by means of its center-surround receptive field. We would like to show another property of the retina: The ability to integrate many independent processes. We believe that this integration is implemented by synchronization of neuronal oscillations. In this paper, we present a model of the retina consisting of a series of coupled oscillators which can synchronize on several scales. Synchronization is an analog process which is converted into a digital spike train in the output of the retina. We have developed a hardware implementation of this model, which enables us to carry out rapid simulation of multineuron oscillatory dynamics. We show that the properties of the spike trains in our model are similar to those found in vivo in the cat retina
Keywords
Turing machines; brain; eye; neural nets; oscillations; synchronisation; Turing machine; brain; multineuron oscillatory dynamics; neuronal oscillations; object classification; retina; synchronization; Brain modeling; Computational modeling; Hardware; In vivo; Nervous system; Oscillators; Performance gain; Retina; Turing machines; Visual system; Brain computation; quasi-periodic oscillations; synchronization; universal Turing machine; visual system; Action Potentials; Animals; Artificial Intelligence; Biological Clocks; Biomimetics; Brain; Equipment Design; Equipment Failure Analysis; Humans; Nerve Net; Retina; Signal Processing, Computer-Assisted; Systems Integration; Visual Perception;
fLanguage
English
Journal_Title
Neural Networks, IEEE Transactions on
Publisher
ieee
ISSN
1045-9227
Type
jour
DOI
10.1109/TNN.2006.882814
Filename
4049834
Link To Document