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Prior policy guided Dual-Agent Coordinated Manipulation Planning of spacecraft-manipulator system

  • Yuhui Hu
  • , Dong Zhou*
  • , Kaihong Ouyang
  • , Zhongliang Yu
  • , Jianfeng Lv
  • , Xiangyu Shao
  • *Corresponding author for this work
  • School of Astronautics, Harbin Institute of Technology
  • Chongqing University
  • Lanzhou University

Research output: Contribution to journalArticlepeer-review

Abstract

The strong dynamic coupling between the manipulator and the base poses a significant challenge to maintaining spacecraft attitude stability, potentially compromising mission safety. In this paper, we propose a Dual-Agent Coordinated Manipulation Planning (DACMP) framework that simultaneously achieves high-precision end-effector pose reaching for a 6-DoF space manipulator and attitude stabilization of the base spacecraft. To enhance learning efficiency, we present a prior policy-guided Deep Reinforcement Learning algorithm incorporating the Timestep-level Expert Switching Guidance (TESG) mechanism, thereby promoting global convergence and improving task success rates. Extensive experiments demonstrate that DACMP significantly outperforms baseline DRL algorithms in terms of task success rate and control precision. Furthermore, the robustness of DACMP is validated under various challenging scenarios, including system constraints, environmental disturbances, and perception uncertainties. The code and simulation configurations are available on GitHub: https://github.com/HIT-YuhuiHu/DACMP.

Original languageEnglish
Pages (from-to)256-270
Number of pages15
JournalActa Astronautica
Volume248
DOIs
StatePublished - Nov 2026
Externally publishedYes

Keywords

  • Coordinated manipulation planning
  • Dual-Agent Deep Reinforcement Learning
  • Prior policy guidance
  • Spacecraft-manipulator system

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