• DocumentCode
    1134560
  • Title

    Distributed Space–Time Cooperative Schemes for Underwater Acoustic Communications

  • Author

    Vajapeyam, Madhavan ; Vedantam, Satish ; Mitra, Urbashi ; Preisig, James C. ; Stojanovic, Milica

  • Author_Institution
    Qualcomm Inc., San Diego, CA
  • Volume
    33
  • Issue
    4
  • fYear
    2008
  • Firstpage
    489
  • Lastpage
    501
  • Abstract
    In resource limited, large scale underwater sensor networks, cooperative communication over multiple hops offers opportunities to save power. Intermediate nodes between source and destination act as cooperative relays. Herein, protocols coupled with space-time block code (STBC) strategies are proposed and analyzed for distributed cooperative communication. Amplify-and-forward-type protocols are considered, in which intermediate relays do not attempt to decode the information. The Alamouti-based cooperative scheme proposed by Hua (2003) for flat-fading channels is generalized to work in the presence of multipath, thus addressing a main characteristic of underwater acoustic channels. A time-reversal distributed space-time block code (TR-DSTBC) is proposed, which extends the dual-antenna TR-STBC (time-reversal space-time block code) approach from Lindskog and Paulraj (2000) to a cooperative communication scenario for signaling in multipath. It is first shown that, just as in the dual-antenna STBC case, TR along with the orthogonality of the DSTBC essentially allows for decoupling of the vector intersymbol interference (ISI) detection problem into separate scalar problems, and thus yields strong performance (compared with single-hop communication) and with substantially reduced complexity over nonorthogonal schemes. Furthermore, a performance analysis of the proposed scheme is carried out to provide insight on the performance gains, which are further confirmed via numerical results based on computer simulations and field data experiments.
  • Keywords
    block codes; fading channels; multipath channels; protocols; space-time codes; underwater acoustic communication; wireless sensor networks; amplify-and-forward-type protocols; distributed cooperative communication; flat-fading channels; large scale underwater sensor networks; multipath channels; multiple hops; space-time block code strategies; time-reversal distributed space-time block code; underwater acoustic communications; vector intersymbol interference detection problem; Acoustic sensors; Block codes; Decoding; Intersymbol interference; Large-scale systems; Performance analysis; Protocols; Relays; Underwater acoustics; Underwater communication; Cooperative diversity methods; multiple-input– multiple-output (MIMO) fading channels; underwater sensor networks;
  • fLanguage
    English
  • Journal_Title
    Oceanic Engineering, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0364-9059
  • Type

    jour

  • DOI
    10.1109/JOE.2008.2005338
  • Filename
    4769694