• DocumentCode
    1485949
  • Title

    Eigen analysis of wide-band fading channel impulse responses

  • Author

    Patenaude, François ; Lodge, John ; Chouinard, Jean-Yves

  • Author_Institution
    Commun. Res. Centre, Ottawa, Ont., Canada
  • Volume
    48
  • Issue
    2
  • fYear
    1999
  • fDate
    3/1/1999 12:00:00 AM
  • Firstpage
    593
  • Lastpage
    606
  • Abstract
    An investigation of the complex path gain correlation properties of several types of wide-band channel impulse responses is presented. The correlation coefficients of the complex path gains of the channel´s impulse responses exhibit a large range of values even for large path delay differences. This indicates that the autocorrelation matrix of the channel impulse responses is rarely diagonal, as often assumed in the study of frequency-selective fading channels. Also, using an eigendecomposition and subspace-based statistical signal processing on the autocorrelation matrix of the channel impulse responses, it is then shown that the propagation process is dominated by only a few orthogonal modes in many instances of channel propagation. The eigenvalues of the modes can be used as a measure of the actual diversity gain obtainable over the channels. From the receiver point of view, the dominant modes can be identified and used in the detection process to reduce the number of parameters to track. Among the channels studied, the wide-band conventional cellular and microcellular radio channels at 910 MHz for mobile applications and the wide-band indoor channels with fixed transmitter-receiver configurations at 950 MHz and 40 GHz are particularly important for today´s and future applications. Several channel impulse response measurements have been analyzed to demonstrate these assertions
  • Keywords
    UHF radio propagation; cellular radio; correlation methods; delays; diversity reception; eigenvalues and eigenfunctions; fading channels; indoor radio; matrix algebra; microcellular radio; millimetre wave propagation; multipath channels; radio receivers; radio transmitters; signal detection; signal processing; statistical analysis; transient response; 40 GHz; 950 MHz; Rayleigh distribution; Rice distribution; SHF; UHF; autocorrelation matrix; cellular radio channels; channel propagation; complex path gain correlation properties; correlation coefficients; detection process; diversity gain; dominant modes; eigen analysis; eigenvalues; fixed transmitter-receiver configurations; frequency-selective fading channels; microcellular radio channels; multipath components; path delay differences; receiver; statistical analysis; subspace-based statistical signal processing; wide-band fading channel impulse responses; wide-band indoor channels; Autocorrelation; Delay; Eigenvalues and eigenfunctions; Frequency-selective fading channels; Gain measurement; Mobile communication; Multiaccess communication; Signal processing; Wideband; Wireless communication;
  • fLanguage
    English
  • Journal_Title
    Vehicular Technology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9545
  • Type

    jour

  • DOI
    10.1109/25.752585
  • Filename
    752585