• DocumentCode
    26687
  • Title

    SOLOR: Self-Optimizing WLANs With Legacy-Compatible Opportunistic Relays

  • Author

    Garcia-Saavedra, Andres ; Rengarajan, Balaji ; Serrano, Pablo ; Camps-Mur, Daniel ; Costa-Perez, Xavier

  • Author_Institution
    Univ. Carlos III of Madrid, Leganés, Spain
  • Volume
    23
  • Issue
    4
  • fYear
    2015
  • fDate
    Aug. 2015
  • Firstpage
    1202
  • Lastpage
    1215
  • Abstract
    Current IEEE 802.11 WLANs suffer from the well-known rate anomaly problem, which can drastically reduce network performance. Opportunistic relaying can address this problem, but three major considerations, typically considered separately by prior work, need to be taken into account for an efficient deployment in real-world systems: 1) relaying could imply increased power consumption, and nodes might be heterogeneous, both in power source (e.g., battery-powered versus socket-powered) and power consumption profile; 2) similarly, nodes in the network are expected to have heterogeneous throughput needs and preferences in terms of the throughput versus energy consumption tradeoff; and 3) any proposed solution should be backwards-compatible, given the large number of legacy 802.11 devices already present in existing networks. In this paper, we propose a novel framework, Self-Optimizing, Legacy-Compatible Opportunistic Relaying (SOLOR), which jointly takes into account the above considerations and greatly improves network performance even in systems comprised mostly of vanilla nodes and legacy access points. SOLOR jointly optimizes the topology of the network, i.e., which are the nodes associated to each relay-capable node; and the relay schedules, i.e., how the relays split time between the downstream nodes they relay for and the upstream flow to access points. Our results, obtained for a large variety of scenarios and different node preferences, illustrate the significant gains achieved by our approach. Specifically, SOLOR greatly improves network throughput performance (more than doubling it) and power consumption (up to 75% reduction) even in systems comprised mostly of vanilla nodes and legacy access points. Its feasibility is demonstrated through testbed experimentation in a realistic deployment.
  • Keywords
    power consumption; relay networks (telecommunication); telecommunication network topology; telecommunication power management; telecommunication scheduling; wireless LAN; IEEE 802.11; SOLOR; legacy access points; legacy-compatible opportunistic relays; network throughput performance; network topology; power consumption profile; relay schedules; relay-capable node; self-optimizing WLAN; self-optimizing-legacy-compatible opportunistic relaying; vanilla nodes; Network topology; Optimization; Power demand; Relays; Schedules; Throughput; Topology; 802.11; rate anomaly; relays; wireless LAN;
  • fLanguage
    English
  • Journal_Title
    Networking, IEEE/ACM Transactions on
  • Publisher
    ieee
  • ISSN
    1063-6692
  • Type

    jour

  • DOI
    10.1109/TNET.2014.2321975
  • Filename
    6823179