English

Control Barrier Functions in UGVs for Kinematic Obstacle Avoidance: A Collision Cone Approach

Robotics 2023-10-18 v4 Optimization and Control

Abstract

In this paper, we propose a new class of Control Barrier Functions (CBFs) for Unmanned Ground Vehicles (UGVs) that help avoid collisions with kinematic (non-zero velocity) obstacles. While the current forms of CBFs have been successful in guaranteeing safety/collision avoidance with static obstacles, extensions for the dynamic case have seen limited success. Moreover, with the UGV models like the unicycle or the bicycle, applications of existing CBFs have been conservative in terms of control, i.e., steering/thrust control has not been possible under certain scenarios. Drawing inspiration from the classical use of collision cones for obstacle avoidance in trajectory planning, we introduce its novel CBF formulation with theoretical guarantees on safety for both the unicycle and bicycle models. The main idea is to ensure that the velocity of the obstacle w.r.t. the vehicle is always pointing away from the vehicle. Accordingly, we construct a constraint that ensures that the velocity vector always avoids a cone of vectors pointing at the vehicle. The efficacy of this new control methodology is later verified by Pybullet simulations on TurtleBot3 and F1Tenth.

Keywords

Cite

@article{arxiv.2209.11524,
  title  = {Control Barrier Functions in UGVs for Kinematic Obstacle Avoidance: A Collision Cone Approach},
  author = {Phani Thontepu and Bhavya Giri Goswami and Manan Tayal and Neelaksh Singh and Shyamsundar P and Shyam Sundar M G and Suresh Sundaram and Vaibhav Katewa and Shishir Kolathaya},
  journal= {arXiv preprint arXiv:2209.11524},
  year   = {2023}
}

Comments

6 pages, 4 figures, For supplement video follow https://youtu.be/Dme7Wm9y6es. *The first and second authors have contributed equally

R2 v1 2026-06-28T01:57:31.172Z