Abstract and Applied Analysis (Jan 2013)

Novel Global Exponential Stability Criterion for Recurrent Neural Networks with Time-Varying Delay

  • Wenguang Luo,
  • Xiuling Wang,
  • Yonghua Liu,
  • Hongli Lan

DOI
https://doi.org/10.1155/2013/540951
Journal volume & issue
Vol. 2013

Abstract

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The problem of global exponential stability for recurrent neural networks with time-varying delay is investigated. By dividing the time delay interval [0,τ(t)] into K+1 dynamical subintervals, a new Lyapunov-Krasovskii functional is introduced; then, a novel linear-matrix-inequality (LMI-) based delay-dependent exponential stability criterion is derived, which is less conservative than some previous literatures (Zhang et al., 2005; He et al., 2006; and Wu et al., 2008). An illustrate example is finally provided to show the effectiveness and the advantage of the proposed result.