• DocumentCode
    32689
  • Title

    Phase Noise in MIMO Systems: Bayesian Cramér–Rao Bounds and Soft-Input Estimation

  • Author

    Nasir, Ali A. ; Mehrpouyan, Hani ; Schober, Robert ; Yingbo Hua

  • Author_Institution
    Res. Sch. of Eng., Australian Nat. Univ., Canberra, ACT, Australia
  • Volume
    61
  • Issue
    10
  • fYear
    2013
  • fDate
    15-May-13
  • Firstpage
    2675
  • Lastpage
    2692
  • Abstract
    This paper addresses the problem of estimating time varying phase noise caused by imperfect oscillators in multiple-input multiple-output (MIMO) systems. The estimation problem is parameterized in detail and based on an equivalent signal model its dimensionality is reduced to minimize the overhead associated with phase noise estimation. New exact and closed-form expressions for the Bayesian Cramér-Rao lower bounds (BCRLBs) and soft-input maximum a posteriori (MAP) estimators for online, i.e., filtering, and offline, i.e., smoothing, estimation of phase noise over the length of a frame are derived. Simulations demonstrate that the proposed MAP estimators´ mean-square error (MSE) performances are very close to the derived BCRLBs at moderate-to-high signal-to-noise ratios. To reduce the overhead and complexity associated with tracking the phase noise processes over the length of a frame, a novel soft-input extended Kalman filter (EKF) and extended Kalman smoother (EKS) that use soft statistics of the transmitted symbols given the current observations are proposed. Numerical results indicate that by employing the proposed phase tracking approach, the bit-error rate performance of a MIMO system affected by phase noise can be significantly improved. In addition, simulation results indicate that the proposed phase noise estimation scheme allows for application of higher order modulations and larger numbers of antennas in MIMO systems that employ imperfect oscillators.
  • Keywords
    Bayes methods; Kalman filters; MIMO communication; error statistics; maximum likelihood estimation; mean square error methods; modulation; nonlinear filters; phase noise; BCRLB; Bayesian Cramér-Rao lower bounds; EKF; EKS; MAP; MIMO systems; MSE; bit-error rate performance; closed-form expressions; complexity reduction; equivalent signal model; exact expressions; extended Kalman smoother; imperfect oscillators; mean-square error performances; moderate-to-high signal-to-noise ratios; multiple-input multiple-output systems; overhead minimization; overhead reduction; phase tracking approach; soft-input estimation; soft-input extended Kalman filter; soft-input maximum a posteriori estimators; time varying phase noise estimation problem; Channel estimation; Estimation; MIMO; Phase noise; Receiving antennas; Transmitting antennas; Bayesian Cramér Rao lower bound (BCRLB); Wiener phase noise; extended Kalman smoother (EKS); maximum-a-posteriori (MAP); multiple-input multiple-output (MIMO); soft-decision extended Kalman filter (EKF);
  • fLanguage
    English
  • Journal_Title
    Signal Processing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1053-587X
  • Type

    jour

  • DOI
    10.1109/TSP.2013.2243444
  • Filename
    6422412