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Global exponential stability of delayed Markovian jump fuzzy cellular neural networks with generally incomplete
Yonggui Kao1, Lei Shi1, Jing Xie2
1School of Science, Harbin Institute of Technology, Weihai, 264209, PR China.
Abstract:
The problem of global exponential stability in mean square of delayed Markovian jump fuzzy cellular neural networks (DMJFCNNs) with generally uncertain transition rates (GUTRs) is investigated in this paper. In this GUTR neural network model, each transition rate can be completely unknown or only its estimate value is known. This new uncertain model is more general than the existing ones. By constructing suitable Lyapunov functionals, several sufficient conditions on the exponential stability in mean square of its equilibrium solution are derived in terms of linear matrix inequalities (LMIs). Finally, a numerical example is presented to illustrate the effectiveness and efficiency of our results.
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