• DocumentCode
    3529416
  • Title

    Hierarchical rough terrain motion planning using an optimal sampling-based method

  • Author

    Brunner, Michael ; Bruggemann, Bernd ; Schulz, Dirk

  • Author_Institution
    Fraunhofer Inst. for Commun., Inf. Process. & Ergonomics (FKIE), Wachtberg, Germany
  • fYear
    2013
  • fDate
    6-10 May 2013
  • Firstpage
    5539
  • Lastpage
    5544
  • Abstract
    Mobile robots with reconfigurable chassis are able to traverse unstructured outdoor environments with boulders or rubble, and overcome challenging structures in urban environments, like stairs or steps. Autonomously traversing rough terrain and such obstacles while ensuring the safety of the robot is a challenging task in mobile robotics. In this paper we introduce a two-phase motion planning algorithm for actively reconfigurable tracked robots. We first use the completeness of a graph search on a regular grid to quickly find an initial path in a low dimensional space, considering only the platform´s operating limits instead of the complete state. We then take this initial path to focus the RRT* search in the continuous high-dimensional state space including the actuators of the robot. We do not rely on a detailed structure/terrain classification or use any predefined motion sequences. Hence, our planner can be applied to urban structures, like stairs, as well as rough unstructured environments. Simulation results prove our method to be effective in solving planning queries in such environments.
  • Keywords
    graph theory; mobile robots; path planning; sampling methods; search problems; state-space methods; RRT search; actively reconfigurable tracked robots; actuators; boulders; continuous high-dimensional state space; graph search; hierarchical rough terrain motion planning; low dimensional space; mobile robots; motion sequences; optimal sampling-based method; reconfigurable chassis; regular grid; rough unstructured environments; rubble; stairs; structure classification; terrain classification; two-phase motion planning algorithm; unstructured outdoor environments; urban structures; Actuators; Motion segmentation; Path planning; Planning; Safety; Tracking;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Robotics and Automation (ICRA), 2013 IEEE International Conference on
  • Conference_Location
    Karlsruhe
  • ISSN
    1050-4729
  • Print_ISBN
    978-1-4673-5641-1
  • Type

    conf

  • DOI
    10.1109/ICRA.2013.6631372
  • Filename
    6631372