• DocumentCode
    44645
  • Title

    Diversity–Multiplexing Tradeoff of Asynchronous Decode-and-Forward Cooperative Networks

  • Author

    Torbatian, Mehdi ; Damen, Mohamed Oussama

  • Author_Institution
    Ignis Innovation Inc., Kitchener, ON, Canada
  • Volume
    62
  • Issue
    7
  • fYear
    2014
  • fDate
    Jul-14
  • Firstpage
    2340
  • Lastpage
    2352
  • Abstract
    The diversity-multiplexing tradeoff (DMT) of a general two-hop asynchronous cooperative network is examined for orthogonal and nonorthogonal selection decode-and-forward relaying protocols. The transmitter nodes send pulse amplitude modulation signals, in which information symbols are linearly modulated by a shaping waveform to be sent to the destination. We consider two different cases of band-limited and time-limited shaping waveforms. In each case, the DMT performance of the asynchronous and synchronous networks is compared. It is proved that in the band-limited system scenario, the asynchronism does not incur any performance loss, and the same DMT as that of the corresponding synchronous network is obtained for both protocols. In the time-limited-system scenario, the bandwidth is expanded for high values of signal-to-noise ratio. In this scenario, it is observed that only asynchronous signaling is able to exploit the extra degrees of freedom of the channel. The asynchronous network in this scenario provides better DMT performances for both protocols throughout the range of the multiplexing gain.
  • Keywords
    decode and forward communication; multiplexing; protocols; radio transmitters; relay networks (telecommunication); DMT; asynchronous decode-and-forward cooperative networks; asynchronous signaling; band limited shaping waveforms; diversity multiplexing tradeoff; general two hop asynchronous cooperative network; information symbols; multiplexing gain; nonorthogonal selection decode-and-forward relaying protocols; orthogonal selection decode-and-forward relaying protocols; pulse amplitude modulation signals; signal-to-noise ratio; time limited shaping waveforms; transmitter nodes; Delays; Mathematical model; Multiplexing; Protocols; Relays; Signal to noise ratio; Vectors; Asynchronism; cooperative diversity; decode-and-forward; diversity multiplexing tradeoff; relay networks;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/TCOMM.2014.2329834
  • Filename
    6828724