• DocumentCode
    31238
  • Title

    Spectrum-Efficient Multi-Channel Design for Coexisting IEEE 802.15.4 Networks: A Stochastic Geometry Approach

  • Author

    Elsawy, Hesham ; Hossain, Ekram ; Camorlinga, Sergio

  • Author_Institution
    King Abdullah Univ. of Sci. & Technol., Thuwal, Saudi Arabia
  • Volume
    13
  • Issue
    7
  • fYear
    2014
  • fDate
    Jul-14
  • Firstpage
    1611
  • Lastpage
    1624
  • Abstract
    For networks with random topologies (e.g., wireless ad-hoc and sensor networks) and dynamically varying channel gains, choosing the long term operating parameters that optimize the network performance metrics is very challenging. In this paper, we use stochastic geometry analysis to develop a novel framework to design spectrum-efficient multi-channel random wireless networks based on the IEEE 802.15.4 standard. The proposed framework maximizes both spatial and time domain frequency utilization under channel gain uncertainties to minimize the number of frequency channels required to accommodate a certain population of coexisting IEEE 802.15.4 networks. The performance metrics are the outage probability and the self admission failure probability. We relax the single channel assumption that has been used traditionally in the stochastic geometry analysis. We show that the intensity of the admitted networks does not increase linearly with the number of channels and the rate of increase of the intensity of the admitted networks decreases with the number of channels. By using graph theory, we obtain the minimum required number of channels to accommodate a certain intensity of coexisting networks under a self admission failure probability constraint. To this end, we design a superframe structure for the coexisting IEEE 802.15.4 networks and a method for time-domain interference alignment.
  • Keywords
    Zigbee; geometry; graph theory; probability; radio spectrum management; stochastic processes; telecommunication network topology; time-frequency analysis; wireless channels; IEEE 802.15.4 networks; channel gain uncertainty; frequency channels; graph theory; network performance metrics; outage probability; random topology; self admission failure probability constraint; single channel assumption; spatial domain utilization; spectrum-efficient multichannel random wireless network design; stochastic geometry approach; superframe structure design; time domain frequency utilization; time-domain interference alignment; IEEE 802.15 Standards; Interference; Sensors; Time-domain analysis; Time-frequency analysis; Wireless personal area networks; Distributed wireless networks; IEEE 802.15.4; carrier-sense multiple access (CSMA); hard core point process (HCPP); outage probability; point process; self-admission failure; stochastic geometry; time-domain interference alignment;
  • fLanguage
    English
  • Journal_Title
    Mobile Computing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-1233
  • Type

    jour

  • DOI
    10.1109/TMC.2013.123
  • Filename
    6615901