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Prescribed performance synchronization controller design of fractional-order chaotic systems: An adaptive neural network control approach

机译:分数阶混沌系统的规定性能同步控制器设计:一种自适应神经网络控制方法

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In this study, an adaptive neural network synchronization (NNS) approach, capable of guaranteeing prescribed performance (PP), is designed for non-identical fractional-order chaotic systems (FOCSs). For PP synchronization, we mean that the synchronization error converges to an arbitrary small region of the origin with convergence rate greater than some function given in advance. Neural networks are utilized to estimate unknown nonlinear functions in the closed-loop system. Based on the integer-order Lyapunov stability theorem, a fractional-order adaptive NNS controller is designed, and the PP can be guaranteed. Finally, simulation results are presented to confirm our results.
机译:在这项研究中,针对非相同分数阶混沌系统(FOCS)设计了一种能够保证规定性能(PP)的自适应神经网络同步(NNS)方法。对于PP同步,我们的意思是同步误差收敛到原点的任意小区域,收敛速度大于预先给出的某些函数。利用神经网络来估计闭环系统中未知的非线性函数。基于整数阶Lyapunov稳定性定理,设计了分数阶自适应NNS控制器,保证了PP。最后,给出仿真结果以证实我们的结果。

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