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Adaptive Synchronization Control and Parameters Identification for Chaotic Fractional Neural Networks with Time-Varying Delays

机译:具有时变延迟的混沌分数神经网络的自适应同步控制和参数识别

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摘要

In this paper, the adaptive synchronization control and synchronization-based parameters identification method for time-varying delayed fractional chaotic neural networks are proposed. Based on the adaptive control with suitable update law and linear feedback control, an analytical, rigorous, and simple adaptive control method is given, which can make two coupled fractional-order delayed neural networks achieve synchronization. In addition, the uncertain system parameters can also be identified along with the realization of synchronization. The speed of synchronization and parameter identification can be adjusted by selecting appropriate control parameters. Besides, the proposed method is very easy to accomplish in reality and has strong robustness against external disturbances. Finally, the numerical simulations are put into practice to illustrate the rationality and validity of theoretical analysis.
机译:在本文中,提出了一种自适应同步控制和基于同步的时变延迟分数混沌神经网络的参数识别方法。 基于具有合适更新法和线性反馈控制的自适应控制,给出了分析,严格和简单的自适应控制方法,可以使两个耦合的分数次延迟神经网络实现同步。 此外,还可以随着同步的实现而识别不确定的系统参数。 可以通过选择适当的控制参数来调整同步速度和参数标识。 此外,所提出的方法非常容易完成现实,并对外部干扰具有强大的鲁棒性。 最后,计算数值模拟以说明理论分析的合理性和有效性。

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