DOI: 10.1177/01423312261474058 ISSN: 0142-3312

Asymptotic tracking control for deferred full-state constrained nonlinear systems based on shifting function and exponential Lyapunov function

Qimeng Chen, Chunxiao Wang, Aodi Wang, Jiali Yu, Qingjie Zhang, Peng Sun, Hengrui Zhang

This paper proposes an adaptive control method based on shifting functions and state transformations for strict-feedback nonlinear systems with deferred state constraints. To address the system’s complex characteristics, including parametric/nonparametric uncertainties and external disturbances, a shifting function is devised to cope with unknown initial conditions, while a nonlinear state transformation converts time-varying state constraints into a boundedness analysis of transformed variables. To achieve asymptotic tracking performance, a novel approach is proposed that incorporates an exponential function into the construction of error variables and develops a recursive control strategy within a backward design framework. Theoretical analysis confirms that the proposed adaptive controller guarantees all closed-loop signals are uniformly ultimately bounded, strictly satisfies the state constraints immediately after the deferred period, and enables the system output to achieve asymptotic tracking of reference signals. By constructing a composite Lyapunov function, this paper rigorously proves the effectiveness of the proposed control law in simultaneously handling time-varying deferred constraints, suppressing system uncertainties, and achieving the goal of asymptotic tracking.

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