• DocumentCode
    3321651
  • Title

    Replication-based efficient data delivery scheme (red) for delay/fault-tolerant mobile sensor network (DFT-MSN)

  • Author

    Wang, Yu ; Wu, Hongyi

  • Author_Institution
    The Center for Adv. Comput. Studies, Univ. of Louisiana at Lafayette, LA
  • fYear
    2006
  • fDate
    13-17 March 2006
  • Lastpage
    489
  • Abstract
    The delay/fault-tolerant mobile sensor network (DFT-MSN) has been proposed recently for pervasive information gathering. DFT-MSN distinguishes itself from conventional sensor networks by several unique characteristics such as sensor mobility, loose connectivity, and delay/fault tolerability. The mainstream approaches for sensor networking/communication cannot be applied in DFT-MSN directly. In this paper we propose a replication-based efficient data delivery (RED) scheme based on erasure coding technology tailored for DFT-MSN. RED consists of two key components for data transmission and message management, respectively. The former makes decision on when and where to transmit data messages according to the delivery probability. The latter decides the optimal erasure coding parameters (including the number of data blocks and the needed redundancy) based on its current delivery probability, in order to achieve the desired data delivery ratio while minimizing overhead at the same time. Extensive simulation has been carried out for performance evaluation. Compared with other approaches, the proposed RED data delivery scheme achieves high message delivery ratio with low transmission overhead and data management complexity
  • Keywords
    delays; fault tolerant computing; mobile computing; performance evaluation; redundancy; wireless sensor networks; data blocks; data delivery ratio; data management complexity; data messages; data transmission; delay/fault tolerability; delay/fault-tolerant mobile sensor network; erasure coding technology; loose connectivity; message delivery ratio; message management; optimal erasure coding parameters; performance evaluation; pervasive information gathering; redundancy; replication-based efficient data delivery; sensor mobility; sensor networking/communication; transmission overhead; Computer networks; Delay effects; Fault tolerance; Humans; Influenza; Mobile computing; Monitoring; Pervasive computing; Sensor phenomena and characterization; Wearable sensors;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Pervasive Computing and Communications Workshops, 2006. PerCom Workshops 2006. Fourth Annual IEEE International Conference on
  • Conference_Location
    Pisa
  • Print_ISBN
    0-7695-2520-2
  • Type

    conf

  • DOI
    10.1109/PERCOMW.2006.118
  • Filename
    1599032