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Design of sampled-data control for multiple-time delayed generalised neural networks based on delay-partitioning approach
Authors:M Syed Ali  N Gunasekaran  B Aruna
Affiliation:Department of Mathematics, Thiruvalluvar University, Vellore, India
Abstract:In this paper, we addressed the problem of stability analysis for a class of generalised mixed delayed neural networks by delay-partitioning approach. A novel integral inequality is developed by employing Wirtinger's integral inequality and Leibniz–Newton formula. By constructing an augmented Lyapunov–Krasovskii functional with triple and quadruple integral terms and using some standard integral inequality techniques, asymptotic stability criterion is obtained to the concerned neural networks. By converting the sampling period into a bounded time-varying delays, the error dynamics of the considered generalised neural networks are derived in terms of a dynamic system with sampling. Finally, numerical examples are given to show that the proposed method is less conservative than existing ones.
Keywords:Delay-partitioning approach  generalised neural networks  time-delays  linear matrix inequalities (LMIs)  Lyapunov method  sampled-data control
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