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Adaptive neural network control for a class of discrete-time nonlinear interconnected systems with unknown dead-zone

机译:一类未知死区的离散时间非线性互联系统的自适应神经网络控制

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In this paper, the problem of adaptive neural network control design is addressed for a kind of discrete-time nonlinear interconnected systems with unknown dead-zone. The control purpose of this paper is to design an adaptive neural network controller to ensure the systems stability and achieve the desired control performance. The neural networks are utilized to approximate the unknown functions. On the basis of utility functions, the critic signals are considered in the designed control signals. In order to offset the impact of unknown asymmetric dead-zone in the controlled system, the adaptive assistant signal is constructed. Based on the gradient descent rule, the weight tuning laws are obtained. The difference Lyapunov function theory is adopted to prove the studied system stability. The viability of the devised control strategy is further testified via some simulation results. (C) 2019 Published by Elsevier Ltd on behalf of The Franklin Institute.
机译:本文针对一类具有未知死区的离散时间非线性互联系统,解决了自适应神经网络控制设计的问题。本文的控制目的是设计一种自适应神经网络控制器,以确保系统的稳定性并达到所需的控制性能。利用神经网络来近似未知函数。根据效用函数,在设计的控制信号中考虑注释器信号。为了补偿受控系统中未知的不对称死区的影响,构建了自适应辅助信号。基于梯度下降规则,获得权重调整定律。采用差分李雅普诺夫函数理论证明了所研究系统的稳定性。通过一些仿真结果进一步证明了所设计控制策略的可行性。 (C)2019由Elsevier Ltd代表富兰克林研究所出版。

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