• DocumentCode
    3608968
  • Title

    MmWave massive-MIMO-based wireless backhaul for the 5G ultra-dense network

  • Author

    Zhen Gao ; Linglong Dai ; De Mi ; Zhaocheng Wang ; Imran, Muhammad Ali ; Shakir, Muhammad Zeeshan

  • Volume
    22
  • Issue
    5
  • fYear
    2015
  • fDate
    10/1/2015 12:00:00 AM
  • Firstpage
    13
  • Lastpage
    21
  • Abstract
    The ultra-dense network (UDN) has been considered as a promising candidate for future 5G networks to meet the explosive data demand. To realize UDN, a reliable, gigahertz bandwidth, and cost-effective backhaul connecting ultradense small-cell BSs and macrocell BS are prerequisite. Millimeter-wave can provide the potential gigabit-per-second traffic for wireless backhaul. Moreover, mmWave can easily be integrated with massive MIMO for improved link reliability. In this article, we discuss the feasibility of mmWave massive-MIMO-based wireless backhaul for 5G UDN, and the benefits and challenges are also addressed. In particular, we propose a digitally controlled phase shifter network (DPSN)-based hybrid precoding/combining scheme for mmWave massive MIMO, whereby the low-rank property of the mmWave massive MIMO channel matrix is leveraged to reduce the required cost and complexity of a transceiver with a negligible performance loss. One key feature of the proposed scheme is that the macrocell BS can simultaneously support multiple small-cell BSs with multiple streams for each small-cell BS, which is essentially different from conventional hybrid precoding/combining schemes, typically limited to single-user MIMO with multiple streams or multi-user MIMO with single stream for each user. Based on the proposed scheme, we further explore the fundamental issues of developing mmWave massive MIMO for wireless backhaul, and the associated challenges, insight, and prospects to enable mmWave massive-MIMO-based wireless backhaul for 5G UDN are discussed.
  • Keywords
    5G mobile communication; MIMO communication; channel coding; millimetre wave antennas; millimetre wave phase shifters; 5G ultra-dense network; combining scheme; digitally controlled phase shifter network; mmwave massive MIMO channel matrix; mmwave massive-MIMO-based wireless backhaul; precoding scheme; 5G mobile communication; Channel estimation; MIMO; Macrocell networks; Radio frequency; Reliability; Wireless communication;
  • fLanguage
    English
  • Journal_Title
    Wireless Communications, IEEE
  • Publisher
    ieee
  • ISSN
    1536-1284
  • Type

    jour

  • DOI
    10.1109/MWC.2015.7306533
  • Filename
    7306533