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[Keyword] max-min SINR(2hit)

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  • Multiuser Multiantenna Downlink Transmission Using Extended Regularized Channel Inversion Precoding

    Yanqing LIU  Liyun DAI  

     
    PAPER-Wireless Communication Technologies

      Pubricized:
    2018/06/22
      Vol:
    E101-B No:12
      Page(s):
    2462-2470

    In this paper, we apply extended regularized channel inversion precoding to address the multiuser multiantenna downlink transmission problem. Different from conventional regularized channel inversion precoding, extended RCI precoding considers non-homogeneous channels, adjusts more regularization parameters, and exploits the information gained by inverting the covariance matrix of the channel. Two ways of determining the regularization parameters are investigated. First, the parameters can be determined by solving a max-min SINR problem. The constraints of the problem can be transformed to the second-order cone (SOC) constraints. The optimal solution of the problem can be obtained by iteratively solving a second-order cone programming (SOCP) problem. In order to reduce the computational complexity, a one-shot algorithm is proposed. Second, the sum-rate maximization problem is discussed. The simple gradient-based method is used to solve the problem and get the regularization parameters. The simulation results indicate that the proposed algorithms exhibit improved max-min SINR performance and sum-rate performance over RCI precoding.

  • Max-Min Fairness for MIMO Interference Channels under CSI Mismatch

    Feng LIU  Conggai LI  Chen HE  Xuan GENG  

     
    LETTER-Communication Theory and Signals

      Vol:
    E100-A No:6
      Page(s):
    1349-1352

    This letter considers the robust transceiver design for multiple-input multiple-output interference channels under channel state information mismatch. According to alternating schemes, an adaptive algorithm is proposed to solve the minimum SINR maximization problem. Simulation results show the convergence and the effectiveness of the proposed algorithm.