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Stability analysis on discrete-time Cohen-Grossberg neural networks with bounded distributed delay

机译:有限时滞离散时间Cohen-Grossberg神经网络的稳定性分析

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This paper investigates the asymptotical stability for discrete-time Cohen-Grossberg neural networks with both timevarying and distributed delays. By constructing a novel Lyapunov-Krasovskii functional and introducing some free-weighting matrices, one delay-dependent sufficient condition is obtained by using convex combination. The criterion is presented in terms of LMIs and the feasibility can be easily checked with the help of LMI in Matlab Toolbox. In addition, the activation function can be described more generally, which generalizes those earlier methods. Finally, the effectiveness of obtained results can be further illustrated by one numerical example in comparison with the existent ones.
机译:本文研究了具有时变和分布时滞的离散时间Cohen-Grossberg神经网络的渐近稳定性。通过构造一个新颖的Lyapunov-Krasovskii泛函并引入一些自由加权矩阵,利用凸组合获得了一个时滞相关的充分条件。该标准以LMI表示,可以通过Matlab工具箱中的LMI轻松检查可行性。另外,可以更一般地描述激活功能,它概括了那些较早的方法。最后,通过一个数值例子与已有的例子进行比较,可以进一步说明所获得结果的有效性。

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