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Adaptive neural network tracking control for a class of switched strict-feedback nonlinear systems with input delay

机译:一类带输入时滞的严格反馈非线性系统的自适应神经网络跟踪控制

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In this paper, a neural-network-based control scheme is developed for the tracking control problem of a class of switched strict-feedback nonlinear systems with uncertain input delay and external time-varying disturbances. First, the auxiliary signals are obtained by masterly constructing a filter and a virtual observer. Then the adaptive backstepping technique and neural network (NN) are employed to construct a common Lyapunov function (CLF) and a state feedback controller for all subsystems. It is proved that all signals of the closed-loop system are semi-globally uniformly ultimately bounded (SGUUB), and that the tracking error ultimately converges to an adequately small compact set. Finally, a simulation example is given to illustrate the effectiveness of the proposed control approach. (C) 2015 Elsevier B.V. All rights reserved.
机译:针对一类具有不确定输入时滞和外部时变扰动的切换严格反馈非线性系统的跟踪控制问题,本文提出了一种基于神经网络的控制方案。首先,通过熟练地构造滤波器和虚拟观察者来获得辅助信号。然后采用自适应反步技术和神经网络(NN)为所有子系统构造通用的Lyapunov函数(CLF)和状态反馈控制器。证明了闭环系统的所有信号都是半全局一致的最终有界(SGUUB),并且跟踪误差最终收敛到足够小的紧致集。最后,给出了一个仿真实例来说明所提出的控制方法的有效性。 (C)2015 Elsevier B.V.保留所有权利。

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