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Preventive maintenance optimization of production system based on multi-agents deep reinforcement learning

  • Longyan Tan
  • , Fanping Wei
  • , Junyang Chen
  • , Li Yang
  • National University of Singapore
  • Beihang University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Intelligent manufacturing system, which is advanced and productive, is vulnerable to internal degradation and external impacts in industrial environment. The preventive maintenance activities are usually conducted to reduce random failure and environmental impacts by repairing and replacing aged production machines. However, the dynamic characteristics of production system impede the operators to obtain the optimal maintenance policy. To solve this problem, the deterioration process of series production line is modeled as Markov decision process. Multi-agent deep reinforcement learning algorithm is presented to achieve the optimality, including maximizing the production rate while minimizing the economic costs. To alleviate the curse of dimension and curse of history, deep neural networks with self-learning mechanism are adopted to approach the optimal policy function. A simulation study is conducted to validate the effectiveness of the proposed model.

Original languageEnglish
Title of host publicationEquipment Intelligent Operation and Maintenance - Proceedings of the 1st International Conference on Equipment Intelligent Operation and Maintenance, ICEIOM 2023
EditorsRuqiang Yan, Jing Lin
PublisherCRC Press/Balkema
Pages316-325
Number of pages10
ISBN (Print)9781032746302
DOIs
StatePublished - 2025
Event1st International Conference on Equipment Intelligent Operation and Maintenance, ICEIOM 2023 - Hefei, China
Duration: 21 Sep 202323 Sep 2023

Publication series

NameEquipment Intelligent Operation and Maintenance - Proceedings of the 1st International Conference on Equipment Intelligent Operation and Maintenance, ICEIOM 2023
Volume1

Conference

Conference1st International Conference on Equipment Intelligent Operation and Maintenance, ICEIOM 2023
Country/TerritoryChina
CityHefei
Period21/09/2323/09/23

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