Passive Obstacle-Aware Control to Follow Desired Velocities
Lukas Huber, Trinca Thibaud, Jean-Jacques E. Slotine, Aude Billard
Abstract
Evaluating and updating the obstacle avoidance velocity for an autonomous robot in real-time ensures robustness against noise and disturbances. A passive damping controller can obtain the desired motion with a torque-controlled robot, which remains compliant and ensures a safe response to external perturbations. Here, we propose a novel approach for designing the passive control policy. Our algorithm complies with obstacle-free zones while transitioning to increased damping near obstacles to ensure collision avoidance. This approach ensures stability across diverse scenarios, effectively mitigating disturbances. Validation on a 7DoF robot arm demonstrates superior collision rejection capabilities compared to the baseline, underlining its practicality for real-world applications. Our obstacle-aware damping controller represents a substantial advancement in secure robot control within complex and uncertain environments. The extended article with detailed proofs is available online (Huber et al., 2024).
BibTeX
@inproceedings{ral2025_passiveobstaclea,
title = {Passive Obstacle-Aware Control to Follow Desired Velocities},
author = {Lukas Huber and Trinca Thibaud and Jean-Jacques E. Slotine and Aude Billard},
booktitle = {RA-L 2025},
year = {2025}
}