• DocumentCode
    1324975
  • Title

    Information Propagation Speed in Mobile and Delay Tolerant Networks

  • Author

    Jacquet, Philippe ; Mans, Bernard ; Rodolakis, Georgios

  • Author_Institution
    INRIA, Le Chesnay, France
  • Volume
    56
  • Issue
    10
  • fYear
    2010
  • Firstpage
    5001
  • Lastpage
    5015
  • Abstract
    The goal of this paper is to increase our understanding of the fundamental performance limits of mobile and Delay Tolerant Networks (DTNs), where end-to-end multihop paths may not exist and communication routes may only be available through time and mobility. We use analytical tools to derive generic theoretical upper bounds for the information propagation speed in large scale mobile and intermittently connected networks. In other words, we upper-bound the optimal performance, in terms of delay, that can be achieved using any routing algorithm. We then show how our analysis can be applied to specific mobility models to obtain specific analytical estimates. In particular, in 2-D networks, when nodes move at a maximum speed v and their density is small (the network is sparse and asymptotically almost surely disconnected), we prove that the information propagation speed is upper bounded by (1 + O(v2))v in random waypoint-like models, while it is upper bounded by O(√vvv) for other mobility models (random walk, Brownian motion). We also present simulations that confirm the validity of the bounds in these scenarios. Finally, we generalize our results to 1-D and 3-D networks.
  • Keywords
    mobile radio; random processes; telecommunication network routing; 1D networks; 2D networks; 3D networks; communication routing algorithm; delay tolerant networks; end-to-end multihop paths; generic theoretical upper bounds; information propagation speed; intermittent connected networks; mobile networks; random waypoint-like models; specific mobility models; Delay; Mobile communication; Mobile computing; Motion segmentation; Routing; Trajectory; Upper bound; Delay tolerant networks (DTNs); information propagation speed; intermittently connected networks (ICNs); mobile networks;
  • fLanguage
    English
  • Journal_Title
    Information Theory, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9448
  • Type

    jour

  • DOI
    10.1109/TIT.2010.2059830
  • Filename
    5571893