• DocumentCode
    34601
  • Title

    Convergence of Desynchronization Primitives in Wireless Sensor Networks: A Stochastic Modeling Approach

  • Author

    Buranapanichkit, D. ; Deligiannis, N. ; Andreopoulos, Y.

  • Author_Institution
    Dept. of Electr. Eng., Prince of Songkla Univ., Hat Yai, Thailand
  • Volume
    63
  • Issue
    1
  • fYear
    2015
  • fDate
    Jan.1, 2015
  • Firstpage
    221
  • Lastpage
    233
  • Abstract
    Desynchronization approaches in wireless sensor networks converge to time-division multiple access (TDMA) of the shared medium without requiring clock synchronization amongst the wireless sensors, or indeed the presence of a central (coordinator) node. All such methods are based on the principle of reactive listening of periodic “fire” or “pulse” broadcasts: each node updates the time of its fire message broadcasts based on received fire messages from some of the remaining nodes sharing the given spectrum. In this paper, we present a novel framework to estimate the required iterations for convergence to fair TDMA scheduling. Our estimates are fundamentally different from previous conjectures or bounds found in the literature as, for the first time, convergence to TDMA is defined in a stochastic sense. Our analytic results apply to the Desync algorithm and to pulse-coupled oscillator algorithms with inhibitory coupling. The experimental evaluation via iMote2 TinyOS nodes (based on the IEEE 802.15.4 standard) as well as via computer simulations demonstrates that, for the vast majority of settings, our stochastic model is within one standard deviation from the experimentally-observed convergence iterations. The proposed estimates are thus shown to characterize the desynchronization convergence iterations significantly better than existing conjectures or bounds. Therefore, they contribute towards the analytic understanding of how a desynchronization-based system is expected to evolve from random initial conditions to the desynchronized steady state.
  • Keywords
    Zigbee; clocks; iterative methods; scheduling; stochastic processes; synchronisation; time division multiple access; wireless sensor networks; DESYNC algorithm; IEEE 802.15.4 standard; TDMA scheduling; computer simulations; desynchronization approaches; desynchronization convergence iterations; desynchronization primitives; desynchronization-based system; desynchronized steady state; iMote2 TinyOS nodes; periodic fire broadcasts; periodic pulse broadcasts; pulse-coupled oscillator algorithms; reactive listening; stochastic modeling approach; stochastic sense; time-division multiple access; wireless sensor networks; Convergence; Fires; Firing; Steady-state; Stochastic processes; Time division multiple access; Wireless sensor networks; TDMA; Wireless sensor networks; desynchronization; pulse coupled oscillators; stochastic modeling;
  • fLanguage
    English
  • Journal_Title
    Signal Processing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1053-587X
  • Type

    jour

  • DOI
    10.1109/TSP.2014.2369003
  • Filename
    6951427