Hierarchical robust control for autonomous berthing of MASS under dynamic switching of multiple propulsion modes

To address the coupled effects of dynamic propulsion-mode switching and strong environmental disturbances during the berthing of Maritime Autonomous Surface Ships (MASS), this paper proposes a hierarchical robust control architecture. First, a quintic-polynomial-based reverse spatial-temporal planning algorithm reformulates the two-point boundary-value problem as an initial-value manifold-tracking problem, avoiding the convergence difficulties of conventional forward-search methods and ensuring terminal-pose reachability. Second, a decoupled adaptive integral line-of-sight (DAI-LOS) guidance law with a virtual time reference decouples the longitudinal speed command from the unintended influence of lateral drift. Third, a dynamic-truncation sequential quadratic programming (SQP) allocation strategy addresses rank deficiency in the thrust allocation matrix caused by bow-thruster deactivation and supports smooth actuator-command transitions upon reactivation. Linear active disturbance rejection control (LADRC) provides disturbance rejection in the motion-control layer, while a control barrier function (CBF)-based safety filter provides hull-to-quay collision avoidance. Under the tested wind-current conditions with a Beaufort force 7 crosswind, the proposed architecture achieves sub-meter terminal berthing accuracy, reduces azimuth-angle total variation and yaw-rate standard deviation by approximately 21.5% and 13.8%, respectively, relative to conventional SQP allocation, and prevents shoreline contact under a sudden onshore disturbance.

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Publication Details

Journal
Ocean Engineering
Published
2026-09-29
DOI
https://doi.org/10.1016/j.oceaneng.2026.128101
Primary Topic
Maritime Navigation and Safety
Type
article
Field-Weighted Citation Impact
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Hierarchical robust control for autonomous berthing of MASS under dynamic switching of multiple propulsion modes

Wang Shengzheng, Xinwei Lin, Zhizheng Wu, Jie Shi et al.
Ocean Engineering
Maritime Navigation and Safety
article

Hierarchical robust control for autonomous berthing of MASS under dynamic switching of multiple propulsion modes

Wang Shengzheng, Xinwei Lin, Zhizheng Wu, Jie Shi, Zhen Sun, Junjie Gao, Yiren Wang, Wei Liu
article en

Abstract

To address the coupled effects of dynamic propulsion-mode switching and strong environmental disturbances during the berthing of Maritime Autonomous Surface Ships (MASS), this paper proposes a hierarchical robust control architecture. First, a quintic-polynomial-based reverse spatial-temporal planning algorithm reformulates the two-point boundary-value problem as an initial-value manifold-tracking problem, avoiding the convergence difficulties of conventional forward-search methods and ensuring terminal-pose reachability. Second, a decoupled adaptive integral line-of-sight (DAI-LOS) guidance law with a virtual time reference decouples the longitudinal speed command from the unintended influence of lateral drift. Third, a dynamic-truncation sequential quadratic programming (SQP) allocation strategy addresses rank deficiency in the thrust allocation matrix caused by bow-thruster deactivation and supports smooth actuator-command transitions upon reactivation. Linear active disturbance rejection control (LADRC) provides disturbance rejection in the motion-control layer, while a control barrier function (CBF)-based safety filter provides hull-to-quay collision avoidance. Under the tested wind-current conditions with a Beaufort force 7 crosswind, the proposed architecture achieves sub-meter terminal berthing accuracy, reduces azimuth-angle total variation and yaw-rate standard deviation by approximately 21.5% and 13.8%, respectively, relative to conventional SQP allocation, and prevents shoreline contact under a sudden onshore disturbance.

Ocean EngineeringVol. 368
Jimei University (CN), Shanghai Maritime University (CN)
Life below water
Openalex Percentile: Top 15%
Maritime Navigation and Safety
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Hierarchical robust control for autonomous berthing of MASS under dynamic switching of multiple propulsion modes — Wang Shengzheng, Xinwei Lin, et al. · Ocean Engineering (2026) | TGRS Research Map | TGRS