• DocumentCode
    3180852
  • Title

    Neural network antenna processing for detection and direction finding

  • Author

    O´Donnell, T.H. ; Southall, Hugh L. ; Simmers, Jeffrey A. ; Klemas, Thomas J.

  • Author_Institution
    ARCON Corp., Waltham, MA, USA
  • fYear
    1995
  • fDate
    8-11 May 1995
  • Firstpage
    213
  • Lastpage
    218
  • Abstract
    The goal of neural beamforming is to design neural processing algorithms which adapt to low cost phased array antennas, even when they behave non-linearly, are imperfectly manufactured, or become degraded. Neural beamforming techniques have the potential to decrease antenna manufacturing and maintenance costs, while increasing mission time and performance before repair. The authors introduce a neural network architecture which performs signal detection and direction finding (DF) despite antenna degradations and failures. They first present the neural beamformer´s (NBF) detection and DF performance on data from a simulated antenna model with added thermal noise across a range of signal-to-noise ratios (SNRs) and compare its DF accuracy to a classical monopulse technique, with and without calibration. They also test and compare the performance of the neural beamformer and monopulse on simulations of antenna models containing induced degradations and failures. Finally, they retrain the neural beamformer with measured antenna data from a 32-element X-band antenna and test its detection and DF performance, comparing DF results with a calibrated monopulse technique and against simulated antenna model performance for several SNRs
  • Keywords
    antenna phased arrays; direction-of-arrival estimation; interference (signal); microstrip antenna arrays; neural nets; signal detection; 32-element X-band antenna; antenna models; detection; direction finding; failures; induced degradations; neural beamforming; neural network antenna processing; neural network architecture; phased array antennas; signal detection; signal-to-noise ratios; thermal noise; Adaptive arrays; Array signal processing; Costs; Directive antennas; Neural networks; Phased arrays; Process design; Signal to noise ratio; Testing; Thermal degradation;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Radar Conference, 1995., Record of the IEEE 1995 International
  • Conference_Location
    Alexandria, VA
  • Print_ISBN
    0-7803-2121-9
  • Type

    conf

  • DOI
    10.1109/RADAR.1995.522547
  • Filename
    522547