CHENG J D, LIU Y, LI T Y, et al. Maintenance strategy of ship multi-state deterioration system under reinforcement learning mode[J]. Chinese Journal of Ship Research, 2021, 16(6): 45–51. doi: 10.19693/j.issn.1673-3185.02129
Citation: CHENG J D, LIU Y, LI T Y, et al. Maintenance strategy of ship multi-state deterioration system under reinforcement learning mode[J]. Chinese Journal of Ship Research, 2021, 16(6): 45–51. doi: 10.19693/j.issn.1673-3185.02129

Maintenance strategy of ship multi-state deterioration system under reinforcement learning mode

  •   Objectives  Naval ship systems such as the hull structure, weapons equipment and power equipment will deteriorate during their service life. Thus, a ship maintenance strategy based on the actual deterioration state is essential for ensuring the safety and availability of naval ships.
      Methods  In this paper, a multi-state deterioration system model is established on the basis of the Markov decision process. A reinforcement learning mode is then introduced to train the agent that generates the maintenance strategy, and the optimal condition-based maintenance strategy is obtained in the process of adaptive learning.
      Results  The proposed method is applied to a ship structural deterioration system for demonstration, and the results show that it can obtain the optimal maintenance policy for a multi-state deterioration system considering the actual conditions, thereby providing an intelligent supporting tool for decision-makers to formulate optimal ship maintenance strategies.
      Conclusions  This paper shows that the reinforcement learning method has great potential in comprehensively improving ship maintenance support.
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