Random periodic oscillations and global mean-square exponential stability of discrete-space and discrete-time stochastic competitive neural networks with Dirichlet boundary condition

Author:

Yuan Ting1,Qu Huizhen2,Pan Dong3

Affiliation:

1. Yunnan Tourism College, Kunming, P.R. China

2. Department of Mathematics, Yunnan University, Kunming, P.R. China

3. School of Basic Science, Guilin University of Technology at Nanning, Nanning Guangxi, P.R. China

Abstract

The current article explores the affects of space-time discrete stochastic competitive neural networks. In line with a discrete-space and discrete-time constant variation formula, boundedness and stability are addressed to the space-time discrete stochastic competitive neural networks. Notably, the best convergence speed can be computed by a non-linear optimization problem. In the end, random periodic sequences with respect to time variable of the discrete-space and discrete-time stochastic competitive neural networks are discussed. The results indicate that spatial diffusion with non-negative density factors has no effect on the global mean square boundedness and stability and random periodicity of the network model. The current article is precursory in consideration of space-time discrete competitive neural networks.

Publisher

IOS Press

Subject

Artificial Intelligence,General Engineering,Statistics and Probability

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