• DocumentCode
    2592357
  • Title

    Towards natural bipedal walking: Virtual gravity compensation and capture point control

  • Author

    Seo, Keehong ; Kim, Joohyung ; Roh, Kyungshik

  • Author_Institution
    Samsung Adv. Inst. of Technol., Yongin, South Korea
  • fYear
    2012
  • fDate
    7-12 Oct. 2012
  • Firstpage
    4019
  • Lastpage
    4026
  • Abstract
    To achieve dynamic balancing and natural walking for a bipedal robot we propose a novel force-based control framework. Given 6-dimensional pose vector representing robot´s posture and attitude, desired force and moment in the task space are computed. To generate the force and moment as desired, we propose the use of virtual gravity compensation (VGC), essentially a dynamic controller that outputs joint torques. By using the VGC-based balancing controller, the robot can maintain a desired pose stably even on a tilting plate. We also propose to extend the VGC-based balancing controller to implement a walking algorithm that controls the desired pose in terms of capture point using a finite state machine. The control algorithm was tested with torque-controlled humanoid platforms developed by our group to demonstrate robust and natural gaits under various walking environments. The robot walked robustly on irregular surfaces and recovered from external pushes. The robot also exhibited natural walking motions such as pendulum-like leg swings and heel-to-toe transitions, a characteristic feature of human gait, all without explicitly designating joint angle trajectories.
  • Keywords
    finite state machines; force control; gravity; humanoid robots; legged locomotion; torque control; 6-dimensional pose vector; VGC-based balancing controller; capture point control; dynamic balancing; external pushes; finite state machine; force-based control framework; heel-to-toe transitions; irregular surfaces; natural bipedal walking; pendulum-like leg swings; robot attitude; robot posture; torque-controlled humanoid platforms; virtual gravity compensation; Dynamics; Foot; Force; Joints; Legged locomotion; Robot kinematics;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Intelligent Robots and Systems (IROS), 2012 IEEE/RSJ International Conference on
  • Conference_Location
    Vilamoura
  • ISSN
    2153-0858
  • Print_ISBN
    978-1-4673-1737-5
  • Type

    conf

  • DOI
    10.1109/IROS.2012.6385902
  • Filename
    6385902