Continuous attractors of a class of neural networks with a large number of neurons

Continuous attractors of a class of neural networks with a large number of neurons

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Article ID: iaor201110672
Volume: 62
Issue: 10
Start Page Number: 3785
End Page Number: 3795
Publication Date: Nov 2011
Journal: Computers and Mathematics with Applications
Authors: ,
Abstract:

A class of simplified background neural networks model with a large number of neurons is proposed. Continuous attractors of the simplified model are studied in this paper. It contains: (1) When the background inputs are set to zero and the excitatory connections are in Gaussian shape, continuous attractors of the new network are obtained under some condition. (2) When the background inputs are nonzero and the excitatory connections are still in Gaussian shape, continuous attractors are achieved under some appropriately selected condition. (3) Discussions and examples are used to illustrate the theories developed.

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