• DocumentCode
    193
  • Title

    Optimal Forwarding in Delay-Tolerant Networks With Multiple Destinations

  • Author

    Singh, Chaman ; Altman, Eitan ; Kumar, Ajit ; Sundaresan, R.

  • Author_Institution
    INRIA Rocquencourt, Paris, France
  • Volume
    21
  • Issue
    6
  • fYear
    2013
  • fDate
    Dec. 2013
  • Firstpage
    1812
  • Lastpage
    1826
  • Abstract
    We study the tradeoff between delivery delay and energy consumption in a delay-tolerant network in which a message (or a file) has to be delivered to each of several destinations by epidemic relaying. In addition to the destinations, there are several other nodes in the network that can assist in relaying the message. We first assume that, at every instant, all the nodes know the number of relays carrying the message and the number of destinations that have received the message. We formulate the problem as a controlled continuous-time Markov chain and derive the optimal closed-loop control (i.e., forwarding policy). However, in practice, the intermittent connectivity in the network implies that the nodes may not have the required perfect knowledge of the system state. To address this issue, we obtain an ordinary differential equation (ODE) (i.e., a deterministic fluid) approximation for the optimally controlled Markov chain. This fluid approximation also yields an asymptotically optimal open-loop policy. Finally, we evaluate the performance of the deterministic policy over finite networks. Numerical results show that this policy performs close to the optimal closed-loop policy.
  • Keywords
    Markov processes; ad hoc networks; approximation theory; delay tolerant networks; differential equations; relay networks (telecommunication); Ωuid approximation; ODE; controlled continuous-time Markov chain; delay-tolerant networks; delivery delay; energy consumption; epidemic relaying; optimal closed-loop control; optimal forwarding; optimal open-loop policy; ordinary differential equation; Approximation methods; Delay; Equations; IEEE transactions; Markov processes; Peer to peer computing; Relays; Delay-tolerant networks (DTNs); epidemic relaying; fluid approximation; optimal control;
  • fLanguage
    English
  • Journal_Title
    Networking, IEEE/ACM Transactions on
  • Publisher
    ieee
  • ISSN
    1063-6692
  • Type

    jour

  • DOI
    10.1109/TNET.2012.2233494
  • Filename
    6403600