Aug 2026· Journal of Marine Science and Engineering· Vol 14, pp. 1475· 0 citations· 24 references
TL;DR
An efficient algebraic model predictive control framework with disturbance compensation with nonlinear disturbance observer embedded into the prediction model, and a variable coincidence-point strategy is adopted to reduce the computational load.
Abstract
To address the path following of underactuated unmanned surface vehicles (USVs) under external disturbances with computational efficiency, this paper proposes an efficient algebraic model predictive control (e-AMPC) framework with disturbance compensation. A nonlinear disturbance observer (NDOB) is embedded into the prediction model, and a variable coincidence-point strategy is adopted to reduce the computational load. The cascade system, composed of the e-AMPC controller and the NDOB, is analyzed as a whole, and a Lyapunov-based proof is provided to establish input-to-state practical stability under bounded disturbances. Extensive simulations verify the superior path-following performance and accurate disturbance estimation, achieving an approximately 74% reduction in computation time compared with conventional MPC. The simulations also quantitatively reveal the influence of prediction-point distribution, weighting matrices, and observer gain on disturbance rejection and tracking accuracy. These guidelines significantly enhance the engineering practicality and reliability of the proposed controller.
This paper investigates the trajectory tracking control problem for a class of uncertain strict feedback nonlinear systems subject to unknown dynamics and time varying external disturbances, with a specific application to unmanned aerial vehicle (UAV) longitudinal motion. A novel robust adaptive neural dynamic surface...
Xian Pan, Dong-Xue Wang, You-Wu Liu et al.· PLoS ONE· 0 citations
Reliable vibration control for active pneumatic suspension systems remains challenging due to inherent nonlinearities, parameter variations, and road-induced disturbances. This paper proposes a nonlinear disturbance observer (NDO)-based robust backstepping controller (NDORBC) scheme for a quarter-vehicle active pneumat...
Bin Wang, Zhaofeng Zhao, Ruihui Qiu et al.· Journal of Vibration and Con...· 0 citations
Quadrotor unmanned aerial vehicles (QUAVs) are highly non-linear and coupled multi-body systems subject to unknown disturbances and unmodeled dynamics that significantly degrade trajectory tracking performance. These challenges motivate the development of robust and high-performance control strategies. This paper p...
Abdelkrim Kherkhar, B. Babes, Muath Odeh et al.· Scientific Reports· 0 citations
This paper addresses the planar trajectory tracking problem of underactuated autonomous underwater vehicles (AUVs) in the presence of time-varying ocean currents, model uncertainties, and external disturbances. In contrast to many existing studies, the effects of ocean currents are explicitly incorporated into both the...
Jianjun Bai, Zhiyao Liu, Yun Chen et al.· Journal of Vibration and Con...· 0 citations
To address the motion control challenges of remotely operated vehicles (ROVs) under model uncertainties, external disturbances, and uncertain hydrodynamic parameters, this study proposes a fractional-order super-twisting sliding mode control (FOST-SMC) strategy based on improved active disturbance rejection control (IA...
Tian-Rui Zhang, Jiaxiang Zheng, Changjin Dong et al.· Journal of Marine Science an...· 0 citations
Efficient and robust trajectory tracking control is crucial for autonomous agricultural vehicles (AAVs) operating under complex and noisy field environments. However, measurement noises, model uncertainties, and external disturbances severely degrade tracking accuracy in practice. To address these challenges, we propos...