• DocumentCode
    1146194
  • Title

    Characterization of in-building UHF wireless radio communication channels using spectral energy measurements

  • Author

    Donaldson, Brian P. ; Fattouche, Michel ; Donaldson, Robert W.

  • Author_Institution
    Quadrus Res. & Dev., Calgary, Alta., Canada
  • Volume
    44
  • Issue
    1
  • fYear
    1996
  • fDate
    1/1/1996 12:00:00 AM
  • Firstpage
    80
  • Lastpage
    86
  • Abstract
    A simple, cost-effective means is developed to estimate the time-invariant wireless radio channel impulse response h(t) using only the magnitude of the channel transfer function, H(jw). The Hilbert transform is used to calculate the phase of H(jw) from its magnitude. Inverse discrete Fourier transformation (IDFT) of H(jw) yields h(t). The Hilbert transform relation is applicable provided H(jw) is a minimum phase transfer function. An experimental in-building wireless channel testbed was established, for which h(t) was determined over the 1000-2500 MHz range. Both line of sight (LOS) and non-LOS transmission was investigated. Good agreement was observed between values of h(t) calculated from measured values of H(jw) and from those based only on [H(jw)] and its Hilbert transform. Even when the minimum phase condition is violated, h(t) as calculated from [H(jw)] and its Hilbert transform provides a useful lower bound on the time-spread of h(t). The measurement of [H(jw)] is easily implemented using a signal source, receiving antenna, and spectrum analyzer. A personal computer and software are required to calculate the phase of H(jw) and its IDTF. Existing frequency-domain measurement schemes utilize a vector network analyzer to measure H(jw) (magnitude and phase angle). Such equipment is expensive, subject to transmitter-receiver crosstalk, and restrictive as to the relative locations of the transmitting and receiving antenna
  • Keywords
    Hilbert transforms; UHF measurement; UHF radio propagation; discrete Fourier transforms; indoor radio; inverse problems; spectral analysis; telecommunication channels; transfer functions; transient response; 1000 to 2500 MHz; Hilbert transform; IDFT; channel transfer function magnitude; experimental in-building wireless channel testbed; frequency-domain measurement; impulse response; in-building UHF radio communication; inverse discrete Fourier transformation; line of sight transmission; lower bound; minimum phase transfer function; non-LOS transmission; personal computer; phase angle; receiving antenna; signal source; software; spectral energy measurements; spectrum analyzer; time-invariant wireless radio channel; time-spread; vector network analyzer; Antenna measurements; Discrete transforms; Frequency measurement; Phase measurement; Radio communication; Receiving antennas; Spectral analysis; Testing; Transfer functions; Wireless communication;
  • fLanguage
    English
  • Journal_Title
    Antennas and Propagation, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-926X
  • Type

    jour

  • DOI
    10.1109/8.477531
  • Filename
    477531