• DocumentCode
    1532154
  • Title

    Design, Implementation, and Characterization of a Cooperative Communications System

  • Author

    Murphy, Patrick ; Sabharwal, Ashutosh

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Rice Univ., Houston, TX, USA
  • Volume
    60
  • Issue
    6
  • fYear
    2011
  • fDate
    7/1/2011 12:00:00 AM
  • Firstpage
    2534
  • Lastpage
    2544
  • Abstract
    Cooperative communications is a class of techniques that seek to improve reliability and throughput in wireless systems by pooling the resources of distributed nodes. Although cooperation can occur at different network layers and time scales, physical-layer cooperation at symbol time scales offers the largest benefit in combating losses due to fading. However, symbol-level cooperation poses significant implementation challenges, particularly in synchronizing the behavior and carrier frequency of distributed nodes. We present the implementation and characterization of a complete real-time cooperative physical-layer transceiver built on the Rice University Wireless Open-Access Research Platform (WARP). In our implementation, autonomous nodes employ physical-layer cooperation without a central synchronization source and can select between non-cooperative and cooperative communications per packet. Cooperative transmissions use a distributed Alamouti space-time block code (STBC) and employ either amplify-and-forward (AF) or decode-and-forward (DF) relaying. We also present experimental results of our transceiver´s real-time performance under various topologies and propagation conditions. Our results clearly demonstrate significant performance gains (more than 40× improvement in packet error rate in some topologies) provided by physical-layer cooperation, even when subject to the constraints of a real-time implementation. Finally, we present methodologies for isolating and understanding the sources of performance bottlenecks in our design. As with all our work on WARP, our transceiver design and experimental framework are available through the open-source WARP repository for use by other wireless researchers.
  • Keywords
    amplify and forward communication; decode and forward communication; radio transceivers; space-time block codes; telecommunication network reliability; telecommunication network topology; amplify-and-forward relaying; autonomous node; cooperative communications system; cooperative transmission; decode-and-forward relaying; distributed Alamouti space-time block code; distributed nodes; physical-layer cooperation; propagation condition; real-time cooperative physical-layer transceiver; resource pooling; symbol-level cooperation; topology; transceiver design; wireless open-access research platform; wireless system reliability; wireless system throughput; OFDM; Payloads; Physical layer; Receivers; Relays; Transceivers; Wireless communication; Cooperative communications; decode-and-forward relaying; distributed space-time block coding; orthogonal frquency-division multiplexing; performance analysis; physical layer; synchronization;
  • fLanguage
    English
  • Journal_Title
    Vehicular Technology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9545
  • Type

    jour

  • DOI
    10.1109/TVT.2011.2158461
  • Filename
    5783355