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An AUV Swarm Collaborative Search Method Based on Double Deep Q-Network

  • Wenjie Li
  • , Sijia Xia
  • , Chunjia Zhu
  • , Jian Gao
  • , Yimin Chen
  • , Zhao Wang
  • Northwestern Polytechnical University Xian
  • China Ship Development and Design Centre

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

Abstract

The collaborative patrol of AUV swarms is of great significance for maintaining the security of sensitive sea areas. Conducting research on dispatching strategies and achieving sustainable patrols is of great importance. This paper establishes a collaborative patrol model for AUV swarms based on Double Deep Q-networks (DDQN). Firstly, by defining the absolute importance of each area and building a non-homogeneous task environment map, the patrol problem is transformed into a Non-homogeneous Patrolling Problem (NHPP). The Gaussian distribution function is used to initialize the original map to obtain the importance map. Secondly, elements such as states, actions, and rewards in the non-homogeneous patrol model were established. A patrol model was constructed based on the DDQN learning algorithm to achieve regular patrols of sensitive and important areas. Finally, the effectiveness of the non-homogeneous patrol method was verified through simulation experiments.

Original languageEnglish
Title of host publicationProceedings of 5th 2025 International Conference on Autonomous Unmanned Systems, ICAUS - Volume 1
EditorsShaorong Xie, Yifeng Niu, Wenxing Fu, Yi Qu
PublisherSpringer Science and Business Media Deutschland GmbH
Pages367-377
Number of pages11
ISBN (Print)9789819576401
DOIs
StatePublished - 2026
Event5th International Conference on Autonomous Unmanned Systems, ICAUS 2025 - Shanghai, China
Duration: 17 Oct 202519 Oct 2025

Publication series

NameLecture Notes in Electrical Engineering
Volume1574 LNEE
ISSN (Print)1876-1100
ISSN (Electronic)1876-1119

Conference

Conference5th International Conference on Autonomous Unmanned Systems, ICAUS 2025
Country/TerritoryChina
CityShanghai
Period17/10/2519/10/25

Keywords

  • AUV swarms
  • Double Deep Q-networks
  • collaborative patrol

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