• DocumentCode
    3290121
  • Title

    Extended Asymmetric Velocity Moderation: A reactive strategy for human-safe robot control

  • Author

    Garcia Ricardez, G.A. ; Yamaguchi, Akira ; Takamatsu, Jun ; Ogasawara, T.

  • Author_Institution
    Grad. Sch. of Inf. Sci., Nara Inst. of Sci. & Technol., Ikoma, Japan
  • fYear
    2013
  • fDate
    12-14 Dec. 2013
  • Firstpage
    450
  • Lastpage
    455
  • Abstract
    Human safety plays a crucial role for the symbiosis between humans and robots. Moreover, it is also important to maintain the robot´s efficiency while keeping the human unharmed. With this purpose, we previously developed Asymmetric Velocity Moderation (AVM) as a reactive strategy for human safety. Nevertheless, this original AVM only considers the end-effector´s movement. This may lead to overrestrictions of the robot speed when the human is very close and to underestimate human safety by assuming the end-effector is the main source of danger. Therefore, this paper extends AVM by using restrictions based on the velocities of all points on the robot and their corresponding minimum distances to the whole human body. By eliminating overrestrictions without undermining human safety and by considering the whole robot, a more efficient humansafe robot behavior can be obtained. The method proposed in this paper consists of calculating independent restrictions for every point on the robot and choosing the firmest restriction to limit the robot velocity. Simulation experiments using a virtual environment with a human model and a human-sized humanoid robot were performed for the validation of the proposed method, and its efficiency was evaluated using the task completion time of the robot.
  • Keywords
    control engineering computing; end effectors; humanoid robots; velocity control; virtual reality; AVM; end-effector movement; extended asymmetric velocity moderation; human model; human safety; human-safe robot control; human-sized humanoid robot; humansafe robot behavior; reactive strategy; robot efficiency; robot speed; robot velocity; task completion time; virtual environment; Humanoid robots; Joints; Robot sensing systems; Safety; Trajectory; Vectors;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Robotics and Biomimetics (ROBIO), 2013 IEEE International Conference on
  • Conference_Location
    Shenzhen
  • Type

    conf

  • DOI
    10.1109/ROBIO.2013.6739500
  • Filename
    6739500