Chinese Journal of Ship Research, Volume. 20, Issue 3, 202(2025)

Robust event-triggered control algorithm for ship dynamic positioning considering dynamic characteristics of actuators

Bo LI, Guoqing ZHANG, Xianku ZHANG, and Hongguang LÜ
Author Affiliations
  • Navigation College, Dalian Maritime University, Dalian 116026, China
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    Objectives

    To solve the problems of communication resource limitations and parameter uncertainty in the dynamic positioning control tasks of fully driven ships in marine engineering applications, this paper presents a robust event-triggered control algorithm for ship dynamic positioning that considers the dynamic characteristics of the actuators.

    Methods

    The algorithm uses a radial basis function (RBF) neural network to approximate system uncertainty. At the same time, a novel event-triggering mechanism in the sensor-controller channel is designed by introducing a zero-order hold which reduces the signal transmission frequency in the sensor-controller and controller-actuator channels, thus greatly saving the communication resources of the system. In addition, the adaptive parameters are updated online and designed to compensate for the gain uncertainty of the actuators, which reduces the computational load and ensures that the ship can perform dynamic positioning tasks stably.

    Results

    The Lyapunov stability theory is used to prove that all error variables in the closed-loop control system satisfy semi-global uniformly ultimately bounded (SGUUB) stability, and the effectiveness of the proposed algorithm is verified through comparison with a simulation.

    Conclusions

    The results of this study can provide useful references for promoting the development of intelligent ship equipment.

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    Bo LI, Guoqing ZHANG, Xianku ZHANG, Hongguang LÜ. Robust event-triggered control algorithm for ship dynamic positioning considering dynamic characteristics of actuators[J]. Chinese Journal of Ship Research, 2025, 20(3): 202

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    Paper Information

    Category: Marine Machinery, Electrical Equipment and Automation

    Received: Oct. 8, 2023

    Accepted: --

    Published Online: Jul. 15, 2025

    The Author Email:

    DOI:10.19693/j.issn.1673-3185.03581

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