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Adaptive Neural Tracking Control for Discrete-Time Switched Nonlinear Systems with Dead Zone Inputs

机译:具有死区输入的离散时间切换非线性系统的自适应神经跟踪控制

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In this paper, the adaptive neural controllers of subsystems are proposed for a class of discrete-time switched nonlinear systems with dead zone inputs under arbitrary switching signals. Due to the complicated framework of the discrete-time switched nonlinear systems and the existence of the dead zone, it brings about difficulties for controlling such a class of systems. In addition, the radial basis function neural networks are employed to approximate the unknown terms of each subsystem. Switched update laws are designed while the parameter estimation is invariable until its corresponding subsystem is active. Then, the closed-loop system is stable and all the signals are bounded. Finally, to illustrate the effectiveness of the proposed method, an example is employed.
机译:本文针对一类具有任意切换信号下死区输入的离散时间切换非线性系统,提出了子系统的自适应神经控制器。由于离散时间切换非线性系统的复杂框架和死区的存在,给控制这类系统带来了困难。另外,采用径向基函数神经网络来近似每个子系统的未知项。在参数估计不变之前,设计交换式更新定律,直到其相应的子系统处于活动状态。这样,闭环系统就稳定了,所有信号都受到限制。最后,为了说明所提方法的有效性,以一个实例为例。

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