• DocumentCode
    622357
  • Title

    Navigation, localization and stabilization of formations of unmanned aerial and ground vehicles

  • Author

    Saska, Martin ; Krajnik, Tomas ; Vonasek, Vojtech ; Vanek, Petr ; Preucil, Libor

  • Author_Institution
    Dept. of Cybern., Czech Tech. Univ. in Prague, Prague, Czech Republic
  • fYear
    2013
  • fDate
    28-31 May 2013
  • Firstpage
    831
  • Lastpage
    840
  • Abstract
    A leader-follower formation driving algorithm developed for control of heterogeneous groups of unmanned micro aerial and ground vehicles stabilized under a top-view relative localization is presented in this paper. The core of the proposed method lies in a novel avoidance function, in which the entire 3D formation is represented by a convex hull projected along a desired path to be followed by the group. Such a representation of the formation provides non-collision trajectories of the robots and respects requirements of the direct visibility between the team members in environment with static as well as dynamic obstacles, which is crucial for the top-view localization. The algorithm is suited for utilization of a simple yet stable visual based navigation of the group (referred to as GeNav), which together with the on-board relative localization enables deployment of large teams of micro-scale robots in environments without any available global localization system. We formulate a novel Model Predictive Control (MPC) based concept that enables to respond to the changing environment and that provides a robust solution with team members´ failure tolerance included. The performance of the proposed method is verified by numerical and hardware experiments inspired by reconnaissance and surveillance missions.
  • Keywords
    microrobots; mobile robots; multi-robot systems; navigation; path planning; predictive control; remotely operated vehicles; stability; GeNav; MPC; convex hull; failure tolerance; leader-follower formation driving algorithm; localization; microscale robots; model predictive control; navigation; noncollision trajectories; reconnaissance missions; stabilization; surveillance missions; unmanned aerial vehicles; unmanned ground vehicles; Lead; Navigation; Planning; Robot kinematics; Trajectory; Visualization;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Unmanned Aircraft Systems (ICUAS), 2013 International Conference on
  • Conference_Location
    Atlanta, GA
  • Print_ISBN
    978-1-4799-0815-8
  • Type

    conf

  • DOI
    10.1109/ICUAS.2013.6564767
  • Filename
    6564767