• DocumentCode
    34974
  • Title

    An Improved Stochastic Modeling of Opportunistic Routing in Vehicular CPS

  • Author

    Deze Zeng ; Song Guo ; Barnawi, Ahmed ; Shui Yu ; Stojmenovic, Ivan

  • Author_Institution
    Sch. of Comput. Sci., China Univ. of Geosci., Wuhan, China
  • Volume
    64
  • Issue
    7
  • fYear
    2015
  • fDate
    July 1 2015
  • Firstpage
    1819
  • Lastpage
    1829
  • Abstract
    Vehicular Cyber-Physical System (VCPS) provides CPS services via exploring the sensing, computing and communication capabilities on vehicles. VCPS is deeply influenced by the performance of the underlying vehicular network with intermittent connections, which make existing routing solutions hardly to be applied directly. Epidemic routing, especially the one using random linear network coding, has been studied and proved as an efficient way in the consideration of delivery performance. Much pioneering work has tried to figure out how epidemic routing using network coding (ERNC) performs in VCPS, either by simulation or by analysis. However, none of them has been able to expose the potential of ERNC accurately. In this paper, we present a stochastic analytical framework to study the performance of ERNC in VCPS with intermittent connections. By novelly modeling ERNC in VCPS using a token-bucket model, our framework can provide a much more accurate results than any existing work on the unicast delivery performance analysis of ERNC in VCPS. The correctness of our analytical results has also been confirmed by our extensive simulations.
  • Keywords
    network coding; stochastic processes; telecommunication network routing; vehicular ad hoc networks; ERNC; VCPS; epidemic routing-using-network coding; improved stochastic modeling; intermittent connections; opportunistic routing; performance delivery; random linear network coding; stochastic analytical framework; token-bucket model; unicast delivery performance analysis; vehicle communication capability; vehicle computing capability; vehicle sensing capability; vehicular CPS; vehicular cyber-physical system; Analytical models; Decoding; Mathematical model; Network coding; Relays; Routing; Stochastic processes; Vehicular cyber-physical system; epidemic routing; random linear network coding; stochastic analysis;
  • fLanguage
    English
  • Journal_Title
    Computers, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9340
  • Type

    jour

  • DOI
    10.1109/TC.2014.2349509
  • Filename
    6880331