DocumentCode :
3598791
Title :
Buried object detection by auto-regressive pre-whitening
Author :
Trucco, Andrea ; Di Serio, Stefano ; Murino, Vittorio
Author_Institution :
Dept. of Biophys. & Electron. Eng., Genoa Univ., Italy
Volume :
1
fYear :
1999
fDate :
6/21/1905 12:00:00 AM
Firstpage :
126
Abstract :
An advanced signal processing technique devoted to the detection of buried objects by exploiting an active sonar system is proposed. The technique is based on the modeling of the reverberation phenomenon as an auto-regressive process. The detector consists of an adaptive pre-whitening filter and a bank of matched filters. The auto-regressive parameters are computed by a higher order statistics algorithm that works on short successive reverberation segments. No echoes of the buried target have been used to arrange the matched filters, but only echoes of the target in free water. The proposed technique has been tested with an experimental data set related to a steel cylinder deeply buried in the sea bottom, obtaining impressive results in spite of the very low signal to reverberation ratio. This work was performed owing to the European Commission support, in the context of the contract DEO (Detection of Embedded Objects)
Keywords :
adaptive filters; adaptive signal processing; autoregressive processes; buried object detection; geophysical signal processing; geophysical techniques; matched filters; oceanographic techniques; seafloor phenomena; sediments; seismology; sonar; sonar detection; sonar imaging; Detection of Embedded Objects; acoustic imaging; adaptive filter; advanced signal processing; auto-regressive pre-whitening; autoregressive method; buried object detection; geophysical measurement technique; higher order statistics algorithm; marine sediment; matched filter bank; reverberation; sea bottom; seafloor; seismology; sonar; steel cylinder; Adaptive filters; Adaptive signal processing; Buried object detection; Detectors; Filter bank; Higher order statistics; Matched filters; Object detection; Reverberation; Sonar detection;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
OCEANS '99 MTS/IEEE. Riding the Crest into the 21st Century
Print_ISBN :
0-7803-5628-4
Type :
conf
DOI :
10.1109/OCEANS.1999.799718
Filename :
799718
Link To Document :
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