English

Decentralized Ability-Aware Adaptive Control for Multi-robot Collaborative Manipulation

Robotics 2021-02-09 v1 Multiagent Systems

Abstract

Multi-robot teams can achieve more dexterous, complex and heavier payload tasks than a single robot, yet effective collaboration is required. Multi-robot collaboration is extremely challenging due to the different kinematic and dynamics capabilities of the robots, the limited communication between them, and the uncertainty of the system parameters. In this paper, a Decentralized Ability-Aware Adaptive Control is proposed to address these challenges based on two key features. Firstly, the common manipulation task is represented by the proposed nominal task ellipsoid, which is used to maximize each robot force capability online via optimizing its configuration. Secondly, a decentralized adaptive controller is designed to be Lyapunov stable in spite of heterogeneous actuation constraints of the robots and uncertain physical parameters of the object and environment. In the proposed framework, decentralized coordination and load distribution between the robots is achieved without communication, while only the control deficiency is broadcast if any of the robots reaches its force limits. In this case, the object reference trajectory is modified in a decentralized manner to guarantee stable interaction. Finally, we perform several numerical and physical simulations to analyse and verify the proposed method with heterogeneous multi-robot teams in collaborative manipulation tasks.

Keywords

Cite

@article{arxiv.2102.03689,
  title  = {Decentralized Ability-Aware Adaptive Control for Multi-robot Collaborative Manipulation},
  author = {Lei Yan and Theodoros Stouraitis and Sethu Vijayakumar},
  journal= {arXiv preprint arXiv:2102.03689},
  year   = {2021}
}

Comments

The article has been submitted to IEEE Robotics and Automation Letters (RA-L) with ICRA 2021 conference option; the article has been accepted for publication in RA-L

R2 v1 2026-06-23T22:54:26.150Z