Abstract

In this paper, global exponential stabilization and synchronization of a class of bidirectional associative memory (BAM) neural networks with time delays are investigated. Based on the Lyapunov stability theory and matrix measure, we present several sufficient conditions for the global exponential stability of the equilibrium point and several criteria for the global exponentially synchronization. The presented results, which are easy to verify and simple to implement in practice, also provide new insights into the exponential stabilization and synchronization of BAM neural networks. One numerical example is given to illustrate the effectiveness of our theoretical results.

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