• DocumentCode
    1254918
  • Title

    Three-component signal recognition using time, time-frequency, and polarization information-application to seismic detection of avalanches

  • Author

    Leprettre, Benoit ; Martin, Nadine ; Glangeaud, François ; Navarre, Jean-Pierre

  • Author_Institution
    Centre d´´Etude de la Neige, Meteo-France, St. Martin d´´Heres, France
  • Volume
    46
  • Issue
    1
  • fYear
    1998
  • fDate
    1/1/1998 12:00:00 AM
  • Firstpage
    83
  • Lastpage
    102
  • Abstract
    A method for automatic signal recognition, applied to seismic signals classification, is presented. It is based on the fusion of data derived from the analysis of the signal in three domains: time, time-frequency, and polarization. In the time domain, two techniques are used for envelope shape parametrization. In the time-frequency domain, the autoregressive and Capon (ARCAP) time-frequency method is used on a gliding time-window to estimate the spectral components of the signal versus time. For each window, the frequencies are estimated using AR modelization. The power at each frequency and the corresponding filtered signal are estimated using Capon´s (1969) method. A comparison with Fourier´s narrow-bandpass filtering shows that Capon´s method produces a better filtering. In the polarization domain, two original methods are proposed: one for checking the linear polarization of a signal and one for localizing the linear waves in the time-frequency plane. A system for automatic recognition of seismic signals associated with avalanches is then presented as an application. Signal features are derived from the analysis to sum up the characteristics of the signal in each domain. These features are combined using fuzzy logic and credibility factors, according to rules derived from physical knowledge (generating processes and propagation rules), in order to decide whether a signal comes from an avalanche or not. The global rate of correct recognition is over 90% for that first version of the system
  • Keywords
    acoustic signal detection; autoregressive processes; feature extraction; filtering theory; fuzzy logic; geophysical signal processing; polarisation; seismology; spectral analysis; time-frequency analysis; AR model; Fourier narrow-bandpass filtering; automatic signal recognition; autoregressive Capon time-frequency method; avalanches; correct recognition global rate; credibility factors; data fusion; envelope shape parametrization; filtered signal; fuzzy logic; generating processes; linear polarization; linear waves; physical knowledge; polarization information; propagation rules; seismic detection; seismic signals classification; signal features; spectral components; three-component signal recognition; time domain; time-frequency domain; time-frequency information; time-window; Filtering; Frequency estimation; Fuzzy logic; Pattern classification; Polarization; Shape; Signal analysis; Signal generators; Signal processing; Time frequency analysis;
  • fLanguage
    English
  • Journal_Title
    Signal Processing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1053-587X
  • Type

    jour

  • DOI
    10.1109/78.651183
  • Filename
    651183