• DocumentCode
    25261
  • Title

    Decentralized Coordinated Precoding for Dense TDD Small Cell Networks

  • Author

    Lagen, Sandra ; Agustin, Adrian ; Vidal, Josep

  • Author_Institution
    Dept. of Signal Theor. & Commun., Univ. Politec. de Catalunya, Barcelona, Spain
  • Volume
    14
  • Issue
    8
  • fYear
    2015
  • fDate
    Aug. 2015
  • Firstpage
    4546
  • Lastpage
    4561
  • Abstract
    Cellular networks need the densification of small eNBs (SeNBs) to face the tremendous data traffic demand growth, implying an interference increase and making transmit coordination a key enabler. This article proposes a decentralized coordinated precoding (D-CoP) for downlink (DL) weighted sum-rate maximization in dense MIMO TDD small cell networks (SCNs). Each SeNB designs its own precoding matrices based on channel state information (CSI) of the served users and knowledge of the interference-cost matrix that allows managing interference towards unintended users. A protocol is proposed to acquire the interference-cost matrix by processing the uplink (UL) received signal provided that: (1) channel reciprocity can be assumed and (2) all users participating in DL can transmit in UL with an adequate transmit filter. In contrast to existing transmit coordination techniques, D-CoP is fully scalable, avoids estimation of the interfering channels, and does not require information exchange between SeNBs. In case all parameters are perfectly acquired, an iterative algorithm is presented with demonstrated monotonic convergence when all SeNBs update its transmit precoders simultaneously. Further, the problem is reformulated in order to derive a robust D-CoP under imperfect CSI conditions. Finally, simulations in 3GPP LTE-Advanced SCNs show significant user packet throughput gains, without increasing the complexity associated to transmit coordination. Robustness to imperfect CSI and non-ideal channel reciprocity is shown through simulations.
  • Keywords
    3G mobile communication; Long Term Evolution; cellular radio; iterative methods; matrix algebra; precoding; protocols; radiofrequency interference; telecommunication traffic; wireless channels; 3GPP LTE-advanced SCN; CSI; D-CoP; SeNB; channel reciprocity; channel state information; data traffic demand growth; decentralized coordinated precoding matrix; dense MIMO TDD small cellular network; downlink weighted sum-rate maximization; interference management; interference-cost matrix; iterative algorithm; packet throughput gain; protocol; small eNB; transmit coordination technique; Channel estimation; Estimation; Interference; Nickel; Noise; Optimization; Wireless communication; Multi-cell multi-user MIMO; decentralized coordinated precoding design; dense TDD small cell networks; interference management; multi-cell multi-user MIMO;
  • fLanguage
    English
  • Journal_Title
    Wireless Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-1276
  • Type

    jour

  • DOI
    10.1109/TWC.2015.2422704
  • Filename
    7084684