• DocumentCode
    623727
  • Title

    Dynamic switching-based reliable flooding in low-duty-cycle wireless sensor networks

  • Author

    Long Cheng ; Yu Gu ; Tian He ; Jianwei Niu

  • Author_Institution
    Singapore Univ. of Technol. & Design, Singapore, Singapore
  • fYear
    2013
  • fDate
    14-19 April 2013
  • Firstpage
    1393
  • Lastpage
    1401
  • Abstract
    Reliable flooding in wireless sensor networks (WSNs) is desirable for a broad range of applications and network operations, and has been extensively investigated. However, relatively little work has been done for reliable flooding in lowduty-cycle WSNs with unreliable wireless links. It is a challenging problem to efficiently ensure 100% flooding coverage considering the combined effects of low-duty-cycle operation and unreliable wireless transmission. In this work, we propose a novel dynamic switching-based reliable flooding (DSRF) framework, which is designed as an enhancement layer to provide efficient and reliable delivery for a variety of existing flooding tree structures in lowduty-cycle WSNs. The key novelty of DSRF lies in the dynamic switching decision making when encountering a transmission failure, where a flooding tree structure is dynamically adjusted based on the packet reception results for energy saving and delay reduction. DSRF is distinctive from existing works in that it explores both poor links and good links on demand. Through comprehensive performance comparisons, we demonstrate that, compared with the flooding protocol without DSRF enhancement, DSRF effectively reduces the flooding delay and the total number of packet transmission by 12% 25% and 10% 15%, respectively. Remarkably, the achieved performance is close to the theoretical lower bound.
  • Keywords
    decision making; failure analysis; radio links; telecommunication network reliability; telecommunication switching; wireless sensor networks; DSRF framework; delay reduction; dynamic switching decision making; dynamic switching-based reliable flooding; dynamic switching-based reliable flooding framework; energy saving; enhancement layer; flooding tree structures; low duty-cycle WSN; low-duty-cycle operation; low-duty-cycle wireless sensor networks; network operations; packet reception; packet transmission; transmission failure; unreliable wireless links; unreliable wireless transmission; Dynamic scheduling; Receivers; Reliability; Schedules; Switches; Synchronization; Wireless sensor networks;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    INFOCOM, 2013 Proceedings IEEE
  • Conference_Location
    Turin
  • ISSN
    0743-166X
  • Print_ISBN
    978-1-4673-5944-3
  • Type

    conf

  • DOI
    10.1109/INFCOM.2013.6566933
  • Filename
    6566933