• DocumentCode
    1315472
  • Title

    Robust Control for Mobility and Wireless Communication in Cyber–Physical Systems With Application to Robot Teams

  • Author

    Fink, Jonathan ; Ribeiro, Alejandro ; Kumar, Vijay

  • Author_Institution
    GRASP Lab., Univ. of Pennsylvania, Philadelphia, PA, USA
  • Volume
    100
  • Issue
    1
  • fYear
    2012
  • Firstpage
    164
  • Lastpage
    178
  • Abstract
    In this paper, a system architecture to provide end-to-end network connectivity for autonomous teams of robots is discussed. The core of the proposed system is a cyber-physical controller whose goal is to ensure network connectivity as robots move to accomplish their assigned tasks. Due to channel quality uncertainties inherent to wireless propagation, we adopt a stochastic model where achievable rates are modeled as random variables. The cyber component of the controller determines routing variables that maximize the probability of having a connected network for given positions. The physical component determines feasible robot trajectories that are restricted to safe configurations which ensure these probabilities stay above a minimum reliability level. Local trajectory planning algorithms are proposed for simple environments and leveraged to obtain global planning algorithms to handle complex surroundings. The resulting integrated controllers are robust in that end-to-end communication survives with high probability even if individual point-to-point links are likely to fail with significant probability. Experiments demonstrate that the global planning algorithm succeeds in navigating a complex environment while ensuring that end-to-end communication rates meet or exceed prescribed values within a target failure tolerance.
  • Keywords
    centralised control; mobile robots; mobility management (mobile radio); probability; robust control; telecommunication control; telecommunication network planning; telecommunication network reliability; telecommunication network routing; wireless channels; channel quality uncertainty; cyber-physical controller system; end-to-end network connectivity; local trajectory global planning algorithm; mobility communication; random variable; robot trajectory; robots autonomous team application; robust control; stochastic model; target failure tolerance; wireless communication; wireless propagation; Autonomous agents; Computational complexity; Cyberspace; Network topology; Robots; Robust control; System analysis and design; Wireless communication; Wireless networks; Mobile ad hoc networks; motion planning; multirobot systems;
  • fLanguage
    English
  • Journal_Title
    Proceedings of the IEEE
  • Publisher
    ieee
  • ISSN
    0018-9219
  • Type

    jour

  • DOI
    10.1109/JPROC.2011.2161427
  • Filename
    6011667