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Adaptive NN control for a class of discrete-time non-linear systems

机译:一类离散时间非线性系统的自适应神经网络控制

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In this paper, adaptive neural network (NN) control is investigated for a class of single-input single-output (SISO) discrete-time unknown non-linear systems with general relative degree in the presence of bounded disturbances. Firstly, the systems are transformed into a causal state space description, adaptive state feedback NN control is presented based on Lyapunov's stability theory. Then, by converting the systems into a causal input output representation, adaptive output feedback NN control is given. Finally, adaptive NN observer design and observer-based adaptive control are presented under the assumption of persistent excitation ( PE). All the control schemes avoid the so-called controller singularity problem in adaptive control. By suitably choosing the design parameters, the closed-loop systems are proven to be semi-globally uniformly ultimately bounded (SGUUB). Simulation studies show the effectiveness of the newly proposed schemes. [References: 34]
机译:在本文中,研究了针对一类单输入单输出(SISO)离散时间未知非线性系统的自适应神经网络(NN)控制方法,该系统通常具有相对扰动,且存在相对扰动。首先,将系统转化为因果状态空间描述,基于李雅普诺夫的稳定性理论,提出了自适应状态反馈神经网络控制。然后,通过将系统转换为因果输入输出表示,给出自适应输出反馈NN控制。最后,在持续激励(PE)的假设下,提出了自适应神经网络观测器设计和基于观测器的自适应控制。所有的控制方案都避免了自适应控制中所谓的控制器奇异性问题。通过适当选择设计参数,可以证明闭环系统是半全局一致的最终有界(SGUUB)。仿真研究表明了新提出的方案的有效性。 [参考:34]

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