English

Dynamic Humanoid Locomotion over Uneven Terrain With Streamlined Perception-Control Pipeline

Robotics 2020-12-01 v1

Abstract

Although bipedal locomotion provides the ability to traverse unstructured environments, it requires careful planning and control to safely walk across without falling. This poses an integrated challenge for the robot to perceive, plan, and control its movements, especially with dynamic motions where the robot may have to adapt its swing-leg trajectory onthe-fly in order to safely place its foot on the uneven terrain. In this paper we present an efficient geometric footstep planner and the corresponding walking controller that enables a humanoid robot to dynamically walk across uneven terrain at speeds up to 0.3 m/s. As dynamic locomotion, we refer first to the continuous walking motion without stopping, and second to the on-the-fly replanning of the landing footstep position in middle of the swing phase during the robot gait cycle. This is mainly achieved through the streamlined integration between an efficient sampling-based planner and robust walking controller. The footstep planner is able to generate feasible footsteps within 5 milliseconds, and the controller is able to generate a new corresponding swing leg trajectory as well as the wholebody motion to dynamically balance the robot to the newly updated footsteps. The proposed perception-control pipeline is evaluated and demonstrated with real experiments using a fullscale humanoid to traverse across uneven terrains featured by static stepping stones, dynamically movable stepping stone, or narrow path.

Keywords

Cite

@article{arxiv.2011.15020,
  title  = {Dynamic Humanoid Locomotion over Uneven Terrain With Streamlined Perception-Control Pipeline},
  author = {Moonyoung Lee and Youngsun Kwon and Sebin Lee and JongHun Choe and Junyong Park and Hyobin Jeong and Yujin Heo and Min-su Kim and Jo Sungho and Sung-Eui Yoon and Jun-Ho Oh},
  journal= {arXiv preprint arXiv:2011.15020},
  year   = {2020}
}

Comments

Submitted to Int. Conf. Robotics and Automation (ICRA) 2021

R2 v1 2026-06-23T20:36:36.198Z