• DocumentCode
    1523392
  • Title

    Asymptotic error probability analysis of quadratic receivers in Rayleigh-fading channels with applications to a unified analysis of coherent and noncoherent space-time receivers

  • Author

    Brehler, Matthias ; Varanasi, Mahesh K.

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Colorado Univ., Boulder, CO, USA
  • Volume
    47
  • Issue
    6
  • fYear
    2001
  • fDate
    9/1/2001 12:00:00 AM
  • Firstpage
    2383
  • Lastpage
    2399
  • Abstract
    A general, asymptotic (high signal-to-noise (SNR)) error analysis is introduced for quadratic receivers in frequency-flat and multipath Rayleigh-fading channels with multiple transmit and receive antennas. Asymptotically tight expressions for the pairwise error probabilities are obtained for coherent, noncoherent, and differentially coherent space-time receivers. Not only is our unified analysis applicable to more general modulation schemes and/or channel models than previously considered, but it also reveals a hitherto unrecognized eigenvalue structure that is common to all of these problems. In addition to providing an easy recipe for computing the asymptotic pairwise error rates, we make some conclusions regarding criteria for the design of signal constellations and codes such as (a) the same design criteria apply for both correlated and independent and identically distributed (i.i.d.) fading processes and (b) for noncoherent communications, unitary signals are optimal in the sense that they minimize the asymptotic union bound
  • Keywords
    Rayleigh channels; antenna arrays; codes; correlation methods; eigenvalues and eigenfunctions; error statistics; modulation; multipath channels; noise; radio receivers; receiving antennas; signal detection; signal synthesis; transmitting antennas; asymptotic SNR error analysis; asymptotic error probability analysis; asymptotic pairwise error rates; asymptotic union bound minimization; asymptotically tight expressions; channel models; coherent space-time receivers; correlated fading; differentially coherent space-time receivers; eigenvalue structure; frequency-flat channels; high signal-to-noise ratio; i.i.d. fading; independent identically distributed fading; maximum-likelihood receivers; multipath Rayleigh-fading channels; multiple receive antennas; multiple transmit antennas; noncoherent communications; noncoherent detection; noncoherent space-time receivers; optimal unitary signals; pairwise error probabilities; quadratic receivers; signal constellations design; space-dimension modulation; unified analysis; wireless communication systems; Constellation diagram; Distributed computing; Eigenvalues and eigenfunctions; Error analysis; Error probability; Frequency; Pairwise error probability; Rayleigh channels; Receiving antennas; Signal design;
  • fLanguage
    English
  • Journal_Title
    Information Theory, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9448
  • Type

    jour

  • DOI
    10.1109/18.945253
  • Filename
    945253