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2013 Exponential Stability and Periodicity of Fuzzy Delayed Reaction-Diffusion Cellular Neural Networks with Impulsive Effect
Guowei Yang, Yonggui Kao, Changhong Wang
Abstr. Appl. Anal. 2013(SI11): 1-9 (2013). DOI: 10.1155/2013/645262

Abstract

This paper considers dynamical behaviors of a class of fuzzy impulsive reaction-diffusion delayed cellular neural networks (FIRDDCNNs) with time-varying periodic self-inhibitions, interconnection weights, and inputs. By using delay differential inequality, M -matrix theory, and analytic methods, some new sufficient conditions ensuring global exponential stability of the periodic FIRDDCNN model with Neumann boundary conditions are established, and the exponential convergence rate index is estimated. The differentiability of the time-varying delays is not needed. An example is presented to demonstrate the efficiency and effectiveness of the obtained results.

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Guowei Yang. Yonggui Kao. Changhong Wang. "Exponential Stability and Periodicity of Fuzzy Delayed Reaction-Diffusion Cellular Neural Networks with Impulsive Effect." Abstr. Appl. Anal. 2013 (SI11) 1 - 9, 2013. https://doi.org/10.1155/2013/645262

Information

Published: 2013
First available in Project Euclid: 26 February 2014

zbMATH: 1273.35302
MathSciNet: MR3035362
Digital Object Identifier: 10.1155/2013/645262

Rights: Copyright © 2013 Hindawi

Vol.2013 • No. SI11 • 2013
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