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Research on Lateral Adaptive Control Method of Unmanned Vehicle Based on Reinforcement Learning

  • Han Cai
  • , Guoyan Xu
  • , Han Li*
  • , Qi Xia
  • , Xiangyu Zhang
  • , Lecong Li
  • *此作品的通讯作者
  • Beihang University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

In order to solve the problems that the fixed parameters of the traditional path tracking control algorithm cannot meet all the path tracking control requirements, and the parameter tuning is highly dependent on experience and will consume a lot of time and energy, this paper proposes a lateral adaptive path tracking control method for unmanned vehicles based on reinforcement learning. A two-layer controller is designed for path tracking control. The lower controller combines multi-point preview, pure-pursuit control and PID to calculate the expected front wheel angle; the upper controller uses the soft-Actor Critic (SAC) algorithm to adaptively tune the parameters in the lower controller, and designs the state space, reward function and action space for the path tracking problem. The combination of the two not only ensures the safety of the reinforcement learning model in the path tracking control process, but also effectively improves the convergence speed of the reinforcement learning model training. The model is built in Prescan for training and simulation testing, and a real vehicle verification is carried out in an open-pit mine area to verify the effectiveness of the proposed method.

源语言英语
主期刊名The Proceedings of 2024 International Conference on Artificial Intelligence and Autonomous Transportation - Volume I
编辑Limin Jia, Qiang Zhang, Zhengyu Xie, Haibin Li, Kenan Yong, Li Wang
出版商Springer Science and Business Media Deutschland GmbH
261-271
页数11
ISBN(印刷版)9789819639564
DOI
出版状态已出版 - 2025
活动International Conference on Artificial Intelligence and Autonomous Transportation, AIAT 2024 - Beijing, 中国
期限: 6 12月 20248 12月 2024

丛书

姓名Lecture Notes in Electrical Engineering
1389 LNEE
ISSN(印刷版)1876-1100
ISSN(电子版)1876-1119

会议

会议International Conference on Artificial Intelligence and Autonomous Transportation, AIAT 2024
国家/地区中国
Beijing
时期6/12/248/12/24

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