• DocumentCode
    1476307
  • Title

    On the Generalized Degrees of Freedom of the Gaussian Interference Relay Channel

  • Author

    Chaaban, Anas ; Sezgin, Aydin

  • Author_Institution
    Emmy-Noether Res. Group on Wireless Networks, Ulm Univ., Ulm, Germany
  • Volume
    58
  • Issue
    7
  • fYear
    2012
  • fDate
    7/1/2012 12:00:00 AM
  • Firstpage
    4432
  • Lastpage
    4461
  • Abstract
    The symmetric two-user Gaussian interference relay channel (IRC) is studied from a generalized degrees of freedom (GDoF) perspective. While it is known that the relay does not in crease the DoF of the IRC, such a characterization has not been reported for the GDoF yet. The focus of this paper is on all cases where the interference link is stronger than the link from the source to the relay. This regime basically covers half the space of all possible parameters of the IRC. By using genie-aided approaches, new sum-capacity upper bounds are derived. These bounds are then compared with rates achieved with a novel transmission scheme, which is based on a functional decode-and-forward (FDF) strategy. It is shown that the GDoF of the IRC is achieved by FDF in the given regime, and that a relay can indeed increase the GDoF of IRC. Finally, the FDF scheme is compared with other schemes like decode-and-forward as well as compress-and-forward at low, moderate, and high signal-to-noise ratios.
  • Keywords
    Gaussian channels; decode and forward communication; radiofrequency interference; relays; wireless channels; FDF strategy; GDoF perspective; compress-and-forward communication; functional decode-and-forward strategy; generalized degree of freedom perspective; genie-aided approach; interference link; relay source; signal-to-noise ratio; sum-capacity upper bound; symmetric two-user Gaussian IRC; symmetric two-user Gaussian interference relay channel; Decoding; Integrated circuits; Interference; Receivers; Relays; Transmitters; Upper bound; Functional decode-and-forward (FDF); generalized degrees of freedom (GDoF); interference relay channel (IRC); lattice strategies; sum-capacity bounds;
  • fLanguage
    English
  • Journal_Title
    Information Theory, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9448
  • Type

    jour

  • DOI
    10.1109/TIT.2012.2191712
  • Filename
    6172674