• DocumentCode
    717694
  • Title

    Game Theory Based Radio Resource Allocation for Full-Duplex Systems

  • Author

    Al-Imari, Mohammed ; Ghoraishi, Mir ; Pei Xiao ; Tafazolli, Rahim

  • Author_Institution
    Inst. for Commun. Syst., Univ. of Surrey, Guildford, UK
  • fYear
    2015
  • fDate
    11-14 May 2015
  • Firstpage
    1
  • Lastpage
    5
  • Abstract
    Full-duplex transceivers enable transmission and reception at the same time on the same frequency, and have the potential to double the wireless system spectral efficiency. Recent studies have shown the feasibility of full-duplex transceivers. In this paper, we address the radio resource allocation problem for full-duplex system. Due to the self-interference and inter-user interference, the problem is coupled between uplink and downlink channels, and can be formulated as joint uplink and downlink sum-rate maximization. As the problem is non-convex, an iterative algorithm is proposed based on game theory by modelling the problem as a noncooperative game between the uplink and downlink channels. The algorithm iteratively carries out optimal uplink and downlink resource allocation until a Nash equilibrium is achieved. Simulation results show that the algorithm achieves fast convergence, and can significantly improve the full-duplex performance comparing to the equal resource allocation approach. Furthermore, the full-duplex system with the proposed algorithm can achieve considerable gains in spectral efficiency, that reach up to 40%, comparing to half-duplex system.
  • Keywords
    convergence; game theory; iterative methods; multiplexing; radio links; radio spectrum management; radio transceivers; radiofrequency interference; resource allocation; wireless channels; Nash equilibrium; downlink channels; full-duplex systems; full-duplex transceivers; game theory; half-duplex system; interuser interference; iterative algorithm; noncooperative game; optimal downlink resource allocation; optimal uplink resource allocation; radio resource allocation; self-interference; sum-rate maximization; uplink channels; wireless system spectral efficiency; Convergence; Downlink; Games; Interference; Resource management; Uplink; Wireless communication;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Vehicular Technology Conference (VTC Spring), 2015 IEEE 81st
  • Conference_Location
    Glasgow
  • Type

    conf

  • DOI
    10.1109/VTCSpring.2015.7145850
  • Filename
    7145850