通过切换线性控制器实现一类具有多个未知控制方向的非线性参数化系统的自适应稳定

IF 3.7 2区 计算机科学 Q2 AUTOMATION & CONTROL SYSTEMS Nonlinear Analysis-Hybrid Systems Pub Date : 2024-02-20 DOI:10.1016/j.nahs.2024.101475
Ruicheng Ma, Yating Hu, Yuanchao Qu
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引用次数: 0

摘要

本文针对一类具有未知控制方向的非线性参数化系统,研究了通过切换线性控制器进行自适应控制的问题。对于所研究的系统,以非线性方式进入状态方程的参数不确定性可以是快速时变的,也可以是在未知时间时刻跳变的,而且参数不确定性的边界不需要事先知道,控制方向也可以是未知的。首先,推导出设计自适应稳定器的充分条件。然后,自适应稳定器是一种开关型稳定器,通过反步法递归设计一个线性控制器,该控制器有两个待调整的未确定设计参数,并提出了一种开关机制来在线调整这些参数,以补偿未知的控制方向和未知的参数不确定性边界。未确定的设计参数不仅基于非线性函数中存在的未知参数的上界估计,也基于控制方向函数中存在的未知参数的上界估计。所提出的自适应控制器能使系统全局渐近稳定,即对于任何初始条件,状态都会收敛到原点,同时闭环系统的所有信号都是有界的。最后,举例说明了所提方法的有效性。
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Adaptive stabilization for a class of nonlinearly parameterized systems with multiple unknown control directions via switching linear controllers

In this paper, the adaptive control via switching linear controllers is studied for a class of nonlinearly parameterized systems with unknown control directions. For the studied system, the parametric uncertainties entering the state equations nonlinearly can be fast time-varying or jumping at unknown time instants and the bounds of the parametric uncertainties are not required to know a priori and the control directions can be unknown. First, sufficient conditions for designing an adaptive stabilizer are derived. Then, the adaptive stabilizer is a switching-type one, in which a linear controller with two undetermined design parameters to be tuned is recursively designed by backstepping, and a switching mechanism is proposed to tune these parameters online for compensating the unknown control directions and the unknown bounds of the parametric uncertainties. The undetermined design parameters are based on the upper bound estimate of the unknown parameters existing not only in the nonlinear functions but also in the control directions functions. The proposed adaptive controller globally asymptotically stabilizes the system in the sense that, for any initial conditions, the state converges to the origin while all the signals of the closed-loop system are bounded. Finally, an example is given to illustrate the effectiveness of the proposed method.

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来源期刊
Nonlinear Analysis-Hybrid Systems
Nonlinear Analysis-Hybrid Systems AUTOMATION & CONTROL SYSTEMS-MATHEMATICS, APPLIED
CiteScore
8.30
自引率
9.50%
发文量
65
审稿时长
>12 weeks
期刊介绍: Nonlinear Analysis: Hybrid Systems welcomes all important research and expository papers in any discipline. Papers that are principally concerned with the theory of hybrid systems should contain significant results indicating relevant applications. Papers that emphasize applications should consist of important real world models and illuminating techniques. Papers that interrelate various aspects of hybrid systems will be most welcome.
期刊最新文献
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