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Robust Filtering of Recurrent Neural Networks With Time-Varying Delay

机译:具有时变延迟的经常性神经网络的鲁棒滤波

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This paper studies the generalized H_2 filter design problem of recurrent neural networks with time-varying delay. A delay-dependent condition is derived to ensure the existence of a desired filter for the delayed neural networks. It is shown that the design of such a filter and the optimal performance index can be accomplished by solving two coupled linear matrix inequalities. A numerical example is provided to demonstrate that the developed result can be efficiently applied to delayed neural networks with chaotic dynamic behaviors.
机译:本文用时变延迟研究经常性神经网络的广义H_2过滤器设计问题。导出延迟相关的条件,以确保延迟神经网络的所需滤波器的存在。结果表明,通过求解两个耦合的线性矩阵不等式,可以实现这种过滤器的设计和最佳性能指标。提供了一个数值示例以证明开发结果可以有效地应用于具有混沌动态行为的延迟神经网络。

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