• DocumentCode
    28059
  • Title

    Joint Spatial Division and Multiplexing for mm-Wave Channels

  • Author

    Adhikary, Ansuman ; Al Safadi, Ebrahim ; Samimi, Mathew K. ; Rui Wang ; Caire, Giuseppe ; Rappaport, T.S. ; Molisch, Andreas F.

  • Author_Institution
    Ming-Hsieh Dept. of Electr. Eng., Univ. of Southern California, Los Angeles, CA, USA
  • Volume
    32
  • Issue
    6
  • fYear
    2014
  • fDate
    Jun-14
  • Firstpage
    1239
  • Lastpage
    1255
  • Abstract
    Massive MIMO systems are well-suited for mm-Wave communications, as large arrays can be built with reasonable form factors, and the high array gains enable reasonable coverage even for outdoor communications. One of the main obstacles for using such systems in frequency-division duplex mode, namely, the high overhead for the feedback of channel state information (CSI) to the transmitter, can be mitigated by the recently proposed joint spatial division and multiplexing (JSDM) algorithm. In this paper, we analyze the performance of this algorithm in some realistic propagation channels that take into account the partial overlap of the angular spectra from different users, as well as the sparsity of mm-Wave channels. We formulate the problem of user grouping for two different objectives, namely, maximizing spatial multiplexing and maximizing total received power in a graph-theoretic framework. As the resulting problems are numerically difficult, we proposed (sub optimum) greedy algorithms as efficient solution methods. Numerical examples show that the different algorithms may be superior in different settings. We furthermore develop a new, “degenerate” version of JSDM that only requires average CSI at the transmitter and thus greatly reduces the computational burden. Evaluations in propagation channels obtained from ray tracing results, as well as in measured outdoor channels, show that this low-complexity version performs surprisingly well in mm-Wave channels.
  • Keywords
    MIMO communication; frequency division multiplexing; graph theory; greedy algorithms; millimetre wave propagation; multiuser channels; radio transmitters; ray tracing; space division multiplexing; wireless channels; CSI; JSDM algorithm; angular spectra; array gain; channel state information; frequency division duplex mode; graph theory; greedy algorithm; joint spatial division and multiplexing; massive MIMO system; mm-wave channel; mm-wave communication; outdoor communication; ray tracing; realistic propagation channel; received power maximization; sparsity; spatial multiplexing maximization; transmitter; Antennas; Array signal processing; Downlink; MIMO; Multiplexing; Scattering; Vectors; 5G systems; JSDM; MU-MIMO; directional channel models; downlink beamforming; mm-Waves;
  • fLanguage
    English
  • Journal_Title
    Selected Areas in Communications, IEEE Journal on
  • Publisher
    ieee
  • ISSN
    0733-8716
  • Type

    jour

  • DOI
    10.1109/JSAC.2014.2328173
  • Filename
    6823686