• DocumentCode
    1286760
  • Title

    Energy-Delay Tradeoff and Dynamic Sleep Switching for Bluetooth-Like Body-Area Sensor Networks

  • Author

    Rebeiz, Eric ; Caire, Giuseppe ; Molisch, Andreas F.

  • Author_Institution
    Dept. of Electr. Eng., Univ. of California Los Angeles, Los Angeles, CA, USA
  • Volume
    60
  • Issue
    9
  • fYear
    2012
  • fDate
    9/1/2012 12:00:00 AM
  • Firstpage
    2733
  • Lastpage
    2746
  • Abstract
    Wireless technology enables novel approaches to healthcare, in particular the remote monitoring of vital signs and other parameters indicative of people\´s health. This paper considers a system scenario relevant to such applications, where a smart-phone acts as a data-collecting hub, gathering data from a number of wireless-capable body sensors, and relaying them to a healthcare provider host through standard existing cellular networks. Delay of critical data and sensors\´ energy efficiency are both relevant and conflicting issues. Therefore, it is important to operate the wireless body-area sensor network at some desired point close to the optimal energy-delay tradeoff curve. This tradeoff curve is a function of the employed physical-layer protocol: in particular, it depends on the multiple-access scheme and on the coding and modulation schemes available. In this work, we consider a protocol closely inspired by the widely-used Bluetooth standard. First, we consider the calculation of the minimum energy function, i.e., the minimum sum energy per symbol that guarantees the stability of all transmission queues in the network. Then, we apply the general theory developed by Neely to develop a dynamic scheduling policy that approaches the optimal energy-delay tradeoff for the network at hand. Finally, we examine the queue dynamics and propose a novel policy that adaptively switches between connected and disconnected (sleeping) modes. We demonstrate that the proposed policy can achieve significant gains in the realistic case where the control "NULL" packets necessary to maintain the connection alive, have a non-zero energy cost, and the data arrival statistics corresponding to the sensed physical process are bursty.
  • Keywords
    Bluetooth; body area networks; cellular radio; health care; modulation coding; multi-access systems; protocols; queueing theory; radiotelemetry; scheduling; smart phones; Bluetooth-like body-area sensor networks; cellular networks; coding-modulation schemes; critical data delay; data arrival statistics; data-collecting hub; dynamic scheduling policy; dynamic sleep switching; energy-delay tradeoff; healthcare provider host; minimum energy function; minimum sum energy per symbol; multiple-access scheme; nonzero energy cost; null packet control; optimal energy-delay tradeoff curve; physical-layer protocol; sensor energy efficiency; smart-phone; transmission queue dynamic; vital sign remote monitoring; wireless body-area sensor network; wireless technology; wireless-capable body sensors; Bluetooth; Payloads; Protocols; Signal to noise ratio; Stability criteria; Vectors; Bluetooth; Wireless body-area networks; energy-delay tradeoff; scheduling;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/TCOMM.2012.12.110143A
  • Filename
    6305027