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Intermittent control of memristor-based recurrent neural networks with time-varying delays

机译:具有时变时滞的基于忆阻器的递归神经网络的间歇控制

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摘要

We discuss the design of periodical intermittent controller for a memristor-based neural network (MRNN). By introducing a proper Lyapunov functional, we prove that the equilibrium point of the MRNN is exponentially stable under the periodical intermittent control. In particular, the control period, width, and coefficients in the intermittent controller can be determined by an linear matrix inequality without introducing any parameters outside the MRNNs. Finally, two illustrated experiments are employed to indicate the validity of the obtained results.
机译:我们讨论了基于忆阻器的神经网络(MRNN)的周期性间歇控制器的设计。通过引入适当的Lyapunov泛函,我们证明了MRNN的平衡点在周期性间歇控制下是指数稳定的。特别地,可以通过线性矩阵不等式确定间歇控制器中的控制周期,宽度和系数,而无需在MRNN外部引入任何参数。最后,采用两个图示实验来表明所获得结果的有效性。

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