• DocumentCode
    1511998
  • Title

    Optimizing Training-Based Transmission Against Smart Jamming

  • Author

    Zhou, Xiangyun ; Niyato, Dusit ; Hjørungnes, Are

  • Author_Institution
    UNIK-Univ. Grad. Center, Univ. of Oslo, Oslo, Norway
  • Volume
    60
  • Issue
    6
  • fYear
    2011
  • fDate
    7/1/2011 12:00:00 AM
  • Firstpage
    2644
  • Lastpage
    2655
  • Abstract
    We consider training-based transmissions over multiple-input-multiple-output (MIMO) fading channels in the presence of jamming. Each transmission block consists of a training phase and a data transmission phase. From an information-theoretic viewpoint, we study the optimal energy allocation between the two phases for both the legitimate user of the channel and the jammer. For a fixed jamming strategy, we derive a closed-form solution of the optimal transmit energy allocation for the legitimate user and show that the optimal training length is equal to the number of transmit antennas. On the other hand, if the jammer has optimized its strategy, the best choice for the training length is shown to be larger than the number of transmit antennas and approaches half of the block length at low signal-to-jamming-and-noise ratio (SJNR). From the jammer´s perspective, we derive closed-form solutions of the optimal jamming energy allocation. Numerical results demonstrate 30%-50% performance gains by using optimal designs in various scenarios. We also model the energy allocation problem as a zero-sum game and prove the existence and uniqueness of the Nash equilibrium when the training length is fixed. Furthermore, we extend our analysis to the case where the channel state information (CSI) is available at the transmitter. We show that many results found for systems with no transmitter CSI are also valid for systems with full transmitter CSI.
  • Keywords
    MIMO communication; antenna arrays; channel allocation; fading channels; game theory; jamming; transmitting antennas; MIMO fading channels; Nash equilibrium; SJNR; channel state information; data transmission phase; fixed jamming strategy; low signal-to-jamming-and-noise ratio; multiple-input-multiple-output fading channels; optimal transmit energy allocation; smart jamming; training-based transmission optimisation; transmit antennas; transmitter; zero-sum game theory; Data communication; Games; Jamming; Receivers; Resource management; Robustness; Training; Energy allocation; ergodic capacity; jamming; multiple-input–multiple-output (MIMO); nash equilibrium (NE); training-based transmission;
  • fLanguage
    English
  • Journal_Title
    Vehicular Technology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9545
  • Type

    jour

  • DOI
    10.1109/TVT.2011.2151890
  • Filename
    5764862