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Fractional-order adaptive fault-tolerant control for a class of general nonlinear systems

机译:一类一般非线性系统的分数级自适应容错控制

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摘要

This paper proposes a series of fractional-order control methods (FOCMs) based on fractional calculus (FC) for a class of general nonlinear systems. In order to deal with the nonlinearities and uncertainties caused by both external and internal factors, the designed control schemes are adaptive, robust, fault-tolerant and do not involve detailed information of the system model. Besides, FC is combined to improve the control performance, especially in higher control accuracy, better anti-interference ability and stronger robustness. For a comprehensive consideration of the practical systems, three different actuator conditions are separately discussed, and the FOCMs are established aiming at these three different situations, respectively, and proved by theoretical analysis. The inverted pendulum system is adopted as simulation object, and the fractional-order schemes are verified and compared with integer-order controller and traditional PID controller. Simulation results make it clear that the proposed FOCMs are superior to other two schemes in control precision, robustness and anti-interference ability.
机译:本文提出了一系列基于一类一般非线性系统的分数微积分(FC)的一系列分数阶控制方法(FOCM)。为了应对外部和内部因素引起的非线性和不确定性,所设计的控制方案是自适应,鲁棒,容错的,并且不涉及系统模型的详细信息。此外,FC组合以提高控制性能,尤其是更高的控制精度,更好的抗干扰能力和更强的鲁棒性。为了全面考虑实际系统,分别讨论了三种不同的执行器条件,分别旨在分别瞄准这三种不同情况的焦点,并通过理论分析证明。倒立的摆动系统被采用作为仿真对象,并与整数控制器和传统PID控制器进行验证并进行验证分数方案。仿真结果明确表示,所提出的焦点优于控制精度,鲁棒性和抗干扰能力的其他两种方案。

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