Publication | Closed Access
Stability Analysis for Neural Networks With Time-Varying Delay Based on Quadratic Convex Combination
232
Citations
38
References
2013
Year
Nonlinear ControlTime Delay SystemRecurrent Neural NetworksSystem StabilityQuadratic Convex CombinationNeural NetworksLyapunov AnalysisStability ProblemStability AnalysisStability
In this paper, a novel method is developed for the stability problem of a class of neural networks with time-varying delay. New delay-dependent stability criteria in terms of linear matrix inequalities for recurrent neural networks with time-varying delay are derived by the newly proposed augmented simple Lyapunov-Krasovski functional. Different from previous results by using the first-order convex combination property, our derivation applies the idea of second-order convex combination and the property of quadratic convex function which is given in the form of a lemma without resorting to Jensen's inequality. A numerical example is provided to verify the effectiveness and superiority of the presented results.
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