• DocumentCode
    47844
  • Title

    Multipair Full-Duplex Relaying With Massive Arrays and Linear Processing

  • Author

    Hien Quoc Ngo ; Suraweera, Himal A. ; Matthaiou, Michail ; Larsson, Erik G.

  • Author_Institution
    Dept. of Electr. Eng. (ISY), Linkoping Univ., Linkoping, Sweden
  • Volume
    32
  • Issue
    9
  • fYear
    2014
  • fDate
    Sept. 2014
  • Firstpage
    1721
  • Lastpage
    1737
  • Abstract
    We consider a multipair decode-and-forward relay channel, where multiple sources transmit simultaneously their signals to multiple destinations with the help of a full-duplex relay station. We assume that the relay station is equipped with massive arrays, while all sources and destinations have a single antenna. The relay station uses channel estimates obtained from received pilots and zero-forcing (ZF) or maximum-ratio combining/maximum-ratio transmission (MRC/MRT) to process the signals. To significantly reduce the loop interference effect, we propose two techniques: i) using a massive receive antenna array; or ii) using a massive transmit antenna array together with very low transmit power at the relay station. We derive an exact achievable rate expression in closed-form for MRC/MRT processing and an analytical approximation of the achievable rate for ZF processing. This approximation is very tight, particularly for a large number of relay station antennas. These closed-form expressions enable us to determine the regions where the full-duplex mode outperforms the half-duplex mode, as well as to design an optimal power allocation scheme. This optimal power allocation scheme aims to maximize the energy efficiency for a given sum spectral efficiency and under peak power constraints at the relay station and sources. Numerical results verify the effectiveness of the optimal power allocation scheme. Furthermore, we show that, by doubling the number of transmit/receive antennas at the relay station, the transmit power of each source and of the relay station can be reduced by 1.5 dB if the pilot power is equal to the signal power, and by 3 dB if the pilot power is kept fixed, while maintaining a given quality of service.
  • Keywords
    antenna arrays; decode and forward communication; diversity reception; radiofrequency interference; receiving antennas; relay networks (telecommunication); transmitting antennas; MRC-MRT; analytical approximation; channel estimates; linear processing; loop interference effect; massive arrays; massive receive antenna array; massive transmit antenna array; maximum-ratio combining; maximum-ratio transmission; multipair decode and forward relay channel; multipair full-duplex relaying; multiple destinations; multiple sources; optimal power allocation scheme; received pilots; relay station antennas; zero-forcing; Antenna arrays; Interference; MIMO; Receiving antennas; Relays; Transmitting antennas; Decode-and-forward relay channel; full-duplex; massive MIMO; maximum-ratio combining (MRC); maximum-ratio transmission (MRT); zero-forcing (ZF);
  • fLanguage
    English
  • Journal_Title
    Selected Areas in Communications, IEEE Journal on
  • Publisher
    ieee
  • ISSN
    0733-8716
  • Type

    jour

  • DOI
    10.1109/JSAC.2014.2330091
  • Filename
    6832435