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Prescribed performance adaptive fault-tolerant tracking control for nonlinear time-delay systems with input quantization and unknown control directions

机译:具有输入量化和未知控制方向的非线性时滞系统的规定性能自适应容错跟踪控制

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This paper addresses the adaptive prescribed performance tracking control problem for a class of nonlinear time-delay systems with actuator fault, input quantization, unknown control directions and disturbances. Neural networks (NNs) are employed to approximate the unknown nonlinear functions and the Nussbaum function is used to deal with the unknown control directions. Then, a novel adaptive prescribed performance controller is designed to reduce the effects of actuator fault, input quantization, NNs approximation errors and disturbances. Compared with the existing results, a new error transformation method is presented, and the knowledge of the quantization parameters and the control directions are unknown in the control design. Furthermore, the proposed control scheme can guarantee the semi-global boundedness of all the closed-loop signals and the prescribed time-varying tracking performance. Finally, simulation results are given to demonstrate the effectiveness of the proposed control method. (c) 2018 Elsevier B.V. All rights reserved.
机译:本文针对一类具有执行器故障,输入量化,未知控制方向和扰动的非线性时滞系统,解决了自适应规定性能跟踪控制问题。神经网络(NNs)用于近似未知的非线性函数,Nussbaum函数用于处理未知的控制方向。然后,设计了一种新型的自适应规定性能控制器,以减少执行器故障,输入量化,NNs逼近误差和干扰的影响。与现有的结果相比较,提出了一种新的误差变换方法,在控制设计中对量化参数和控制方向的认识是未知的。此外,提出的控制方案可以保证所有闭环信号的半全局有界性和规定的时变跟踪性能。最后,仿真结果证明了所提控制方法的有效性。 (c)2018 Elsevier B.V.保留所有权利。

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