• DocumentCode
    982359
  • Title

    Arbitrary Throughput Versus Complexity Tradeoffs in Wireless Networks Using Graph Partitioning

  • Author

    Sarkar, Saswati ; Ray, Saikat

  • Author_Institution
    Dept. of Electr. & Syst. Eng., Pennsylvania Univ., Philadelphia, PA
  • Volume
    53
  • Issue
    10
  • fYear
    2008
  • Firstpage
    2307
  • Lastpage
    2323
  • Abstract
    Several policies have recently been proposed for attaining the maximum throughput region, or a guaranteed fraction thereof, through dynamic link scheduling. Among these policies, the ones that attain the maximum throughput region require a computation time which is linear in the network size, and the ones that require constant or logarithmic computation time attain only certain fractions of the maximum throughput region. In contrast, in this paper we propose policies that can attain any desirable fraction of the maximum throughput region using a computation time that is largely independent of the network size. First, using a combination of graph partitioning techniques and Lyapunov arguments, we propose a simple policy for tree topologies under the primary interference model that requires each link to exchange only 1 bit information with its adjacent links and approximates the maximum throughput region using a computation time that depends only on the maximum degree of nodes and the approximation factor. Then we develop a framework for attaining arbitrary close approximations for the maximum throughput region in arbitrary networks, and use this framework to obtain any desired tradeoff between throughput guarantees and computation times for a large class of networks and interference models. Specifically, given any epsiv > 0, the maximum throughput region can be approximated in these networks within a factor of 1-epsiv using a computation time that depends only on the maximum node degree and epsiv .
  • Keywords
    communication complexity; radio networks; scheduling; telecommunication network topology; trees (mathematics); Lyapunov argument; communication complexity; dynamic link scheduling; graph partitioning; maximum throughput region; primary interference model; tree topology; wireless network; Computer networks; Dynamic scheduling; Interference; Network topology; Processor scheduling; Spread spectrum communication; Statistics; Throughput; Tree graphs; Wireless networks; Tree-partition-mapping (TPM);
  • fLanguage
    English
  • Journal_Title
    Automatic Control, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9286
  • Type

    jour

  • DOI
    10.1109/TAC.2008.2006820
  • Filename
    4668530