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Low-complexity differentiator-based decentralized fault-tolerant control of uncertain large-scale nonlinear systems with unknown dead zone

机译:基于低复杂性的差异化因子对未知死区不确定大型非线性系统的分散容错控制

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This paper investigates a low-complexity robust decentralized fault-tolerant prescribed performance control scheme for uncertain larger-scale nonlinear systems with consideration of the unknown nonlinearity, actuator failures, dead-zone input, and external disturbance. Firstly, a new simple finite-time-convergent differentiator is developed to obtain the unmeasurable state variables with arbitrary accuracy. Then, a time-varying sliding manifold involving the output tracking error and its high-order derivatives is constructed to tackle the high-order dynamics of subsystems. Sequentially, a robust decentralized fault-tolerant control scheme is proposed for each sliding manifold with prescribed convergence rate. The prominent advantage of the proposed fault-tolerant control scheme is that any specialized approximation technique, disturbance observer, and recursive procedure of backstepping technique are avoided, which dramatically alleviates the complexity of controller design. Finally, two groups of illustrative examples are employed to demonstrate the effectiveness of the low-complexity decentralized fault-tolerant control scheme under the developed finite-time-convergent differentiator.
机译:本文通过考虑未知的非线性,执行器故障,死区输入和外部干扰,研究了对不确定的较大规模非线性系统的低复杂性分散的容错规定的性能控制方案。首先,开发了一种新的简单有限时间收敛的微分器,以获得具有任意精度的未衡量状态变量。然后,构造涉及输出跟踪误差及其高阶导数的时变的滑动歧管以解决子系统的高阶动态。顺序地,针对具有规定的收敛速率的每个滑动歧管提出了一种坚固的分散的容错控制方案。所提出的容错控制方案的突出优点是避免了任何专用近似技术,干扰观察者和递归程序的反向技术,这显着减轻了控制器设计的复杂性。最后,采用两组说明性实施例来证明在开发的有限时间收敛的微分器下的低复杂性分散的容错控制方案的有效性。

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