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May 6, 2026Applied Sciences0 citationsOpen Access

Dynamic Decision-Making and Adaptive Control for Autonomous Ships in Bridge-Restricted Waterways

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JCJiahao ChenLHLiwen HuangYHYixiong He

Key Points

  • This research aims to enhance autonomous ship navigation in bridge-restricted waterways through advanced decision-making and control strategies.
  • Developed an integrated framework for collision avoidance and trajectory tracking.
  • Evaluated collision risks using a digital traffic model and spatiotemporal risk assessment.
  • Implemented adaptive model predictive control to manage maneuvering under hydrodynamic disturbances.
  • Conducted simulations to validate the effectiveness of the proposed architecture.
  • Achieved a maximum route tracking deviation of under 53 m under disturbances.
  • Maintained a minimum encounter distance of above 51 m with target ships during operations.
  • Confirmed the capacity for safe, rule-compliant maneuvers in confined inland environments.

Abstract

Under strict spatial constraints and environmental interference, autonomous navigation of vessels in inland bridge-restricted waterways demands precise coordination between collision avoidance and trajectory tracking. To meet these operational demands, an integrated framework that directly combines spatiotemporal risk assessment with dynamic control execution is developed. Based on a digital traffic model integrating bridge piers and channel boundaries, collision risks are evaluated by combining trajectory-predicted time to safe distance with the velocity obstacle interval. Such a formulation quantifies the actual spatial difficulty of evasion rather than relying solely on temporal urgency. Driven by this continuous assessment, a time-series rolling strategy calculates feasible maneuvering intervals, generating trajectories that comply strictly with inland navigation rules and physical vessel limits. Subsequently, an adaptive model predictive control algorithm executes these commands, implicitly compensating for the localized hydrodynamic disturbances typical of bridge areas. The effectiveness of the architecture is validated through comprehensive simulations covering rule-based encounters and complex multi-vessel scenarios. Quantitative results indicate that under wind and current disturbances, the maximum route tracking deviation is constrained below 53 m, while the minimum encounter distance with target ships is consistently maintained above 51 m. These performance metrics confirm the capacity to execute safe, rule-compliant maneuvers while preserving high navigational precision in confined inland environments.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69fa983604f884e66b5320d1https://doi.org/10.3390/app16094477
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