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Exponential stability for stochastic BAM networks with discrete and distributed delays
Authors:Haibo Bao Jinde Cao
Institution:Department of Mathematics, Southeast University, Nanjing 210096, Jiangsu, China
Abstract:In this paper, we investigate exponential stability for stochastic BAM networks with mixed delays. The mixed delays include discrete and distributed time-delays. The purpose of this paper is to establish some criteria to ensure the delayed stochastic BAM neural networks are exponential stable in the mean square. A sufficient condition is established by consructing suitable Lyapunov functionals. The condition is expressed in terms of the feasibility to a couple LMIs. Therefore, the exponential stability of the stochastic BAM networks with discrete and distributed delays can be easily checked by using the numerically efficient Matlab LMI toobox. A simple example is given to demonstrate the usefulness of the derived LMI-based stability conditions.
Keywords:Exponential stability in the mean square  BAM neural networks  Lyapunov functional  Discrete and distributed delays  LMI
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