DocumentCode :
1056407
Title :
Mean–Standard Deviation Representation of Sonar Images for Echo Detection: Application to SAS Images
Author :
Maussang, Frédéric ; Chanussot, Jocelyn ; Hétet, Alain ; Ama, Maud
Author_Institution :
Paris Univ., Paris
Volume :
32
Issue :
4
fYear :
2007
Firstpage :
956
Lastpage :
970
Abstract :
This paper addresses the detection of underwater mines echoes with application to synthetic aperture sonar (SAS) imaging. A detection method based on local first- and second-order statistical properties of the sonar images is proposed. It consists of mapping the data onto the mean-standard deviation plane highlighting these properties. With this representation, an adaptive thresholding of the data enables the separation of the echoes from the reverberation background. The procedure is automated using an entropy criterion (setting of a threshold). Applied on various SAS data sets containing both proud and buried mines, the proposed method positively compares to the conventional amplitude threshold detection method. The performances are evaluated by means of receiver operating characteristic (ROC) curves.
Keywords :
echo; entropy; reverberation; synthetic aperture sonar; SAS images; echo detection; entropy criterion; mean standard deviation representation; receiver operating characteristic curves; reverberation; sonar images; synthetic aperture sonar; Additive noise; Filters; Image segmentation; Pixel; Reverberation; Sonar applications; Sonar detection; Speckle; Synthetic aperture sonar; Underwater tracking; Mean–standard deviation representation; Weibull law; segmentation; sonar image processing; synthetic aperture sonar (SAS);
fLanguage :
English
Journal_Title :
Oceanic Engineering, IEEE Journal of
Publisher :
ieee
ISSN :
0364-9059
Type :
jour
DOI :
10.1109/JOE.2007.907936
Filename :
4445733
Link To Document :
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