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Adaptive control and synchronization of a class of chaotic systems in which all parameters are unknown

机译:一类混沌系统的自适应控制和同步,其中所有参数都未知

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This paper proposes an adaptive algorithm for the control and synchronization of a class of second order chaotic systems which exact dynamics or parameters are unknown in priori. The proposed control scheme includes a feedback controller and a feedforward compensator. Both the gains of the controller and the compensator are updated by an adaptation algorithm derived from Model Reference Adaptive Control (MRAC) theory. In the proposed approach, the optimal adaptation gains are identified using the NeIder-Mead simplex algorithm. This algorithm does not require the derivatives of the performance index to be optimized, and is therefore particularly applicable to complex systems or problems with undifferentiable elements, discontinuities or uncertainties. The feasibility and effectiveness of the proposed approach are demonstrated by way of numerical simulations using general Duffing's systems for illustration purposes.
机译:本文提出了一种自适应算法,用于控制和同步的一类二阶混沌系统,其在先验中的确切动态或参数未知。 所提出的控制方案包括反馈控制器和前馈补偿器。 控制器和补偿器的增益均由来自模型参考自适应控制(MRAC)理论的适应算法更新。 在所提出的方法中,使用Neider-Mead Simplex算法来识别最佳适应性增益。 该算法不需要优化性能指数的衍生物,因此特别适用于复杂的系统或有销售元素,不连续性或不确定性的问题。 通过使用一般Duffing的系统的例证目的,通过数值模拟来证明所提出的方法的可行性和有效性。

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