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Exponential convergence rate estimation for uncertain delayed neural networks of neutral type
Authors:Chang-Hua Lien   Ker-Wei Yu   Yen-Feng Lin   Yeong-Jay Chung  Long-Yeu Chung
Affiliation:aDepartment of Marine Engineering, National Kaohsiung Marine University, Kaohsiung 811, Taiwan, ROC;bDepartment of Electrical Engineering, Tung-Fang Institute of Technology, Kaohsiung 829, Taiwan, ROC
Abstract:The global exponential stability for a class of uncertain delayed neural networks (DNNs) of neutral type is investigated in this paper. Delay-dependent and delay-independent criteria are proposed to guarantee the robust stability of DNNs via LMI and Razumikhin-like approaches. For a given delay, the maximal allowable exponential convergence rate will be estimated. Some numerical examples are given to illustrate the effectiveness of our results. The simulation results reveal significant improvement over the recent results.
Keywords:
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