• DocumentCode
    747074
  • Title

    Principles of space-time array processing for ultrawide-band impulse radar and radio communications

  • Author

    Hussain, Malek G M

  • Author_Institution
    Dept. of Elec. Eng., Kuwait Univ., Safat, Kuwait
  • Volume
    51
  • Issue
    3
  • fYear
    2002
  • fDate
    5/1/2002 12:00:00 AM
  • Firstpage
    393
  • Lastpage
    403
  • Abstract
    The emerging ultrawide-band (UWB) impulse technology has found numerous applications in the commercial as well as the military sector. The rapid technological advances have made it possible to implement (cost-effective, short-range) impulse radar and impulse-radio communication and localization systems. Array beamforming and space-time processing techniques promise further advancement in the operational capabilities of impulse radar and impulse-radio communications to achieve long-range coverage, high capacity and interference-free quality of reception. We introduce a realistic signal model for UWB impulse waveforms and develop the principles of space-time array processing based on the signal model. A space-time resolution function (STRF), a space-frequency distribution function (SFDF) and a monopulse-tracking signal are derived for impulse waveforms received by a self-steering array beamforming system. The directivity peak-power pattern and energy pattern of the beamformer are also derived. Computer plots of the STRF, SFDF and the beam patterns are obtained. The directivity beam patterns of impulse waveforms are sidelobe-free and, therefore, there is no need for sidelobe suppression via amplitude weighting of the array elements. Also, the resolution angle for the beam patterns is derived as a decreasing function of array size and frequency bandwidth. Electronic beamsteering based on slope processing of monopulse waveforms is described
  • Keywords
    adaptive antenna arrays; antenna radiation patterns; array signal processing; cochannel interference; directive antennas; jamming; multipath channels; radar signal processing; radio links; space-time adaptive processing; active jamming; adaptive array antenna; adaptive signal processing; cochannel interference; directivity beam patterns; impulse-radio localization systems; monopulse-tracking signal; multipath reception; self-steering array beamforming; space-frequency distribution function; space-time array processing; space-time resolution function; ultrawide-band impulse radar; ultrawide-band impulse-radio communications; Array signal processing; Bandwidth; Distribution functions; Energy resolution; Frequency; Interference; Signal processing; Signal resolution; Space technology; Spaceborne radar;
  • fLanguage
    English
  • Journal_Title
    Vehicular Technology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9545
  • Type

    jour

  • DOI
    10.1109/TVT.2002.1002490
  • Filename
    1002490