DocumentCode
2085764
Title
Comparison of multisensor fusion methods for seabed classification
Author
Kerneis, D. ; Zerr, B.
Author_Institution
Dpt ITI, Technopole Brest Iroise, France
Volume
2
fYear
2005
fDate
20-23 June 2005
Firstpage
878
Abstract
Automatic seabed classification can be achieved using acoustic sensors but methods need to be improved. In order to get better classification reliability, we propose to use complementarity between sidescan sonar images and a digital elevation models (DEM). The new feature is that the sonar (Klein), provides a high resolution sidescan sonar image which pixels are colocated with high resolution interferometric points. After extracting information from each of the two sources, the key point is to fuse them to be able to classify the seabed. We propose to compare three fusion approaches: two signal-level fusion based on multidimensional classification algorithms, and a symbol-level fusion based on the Dempster-Shafer evidence theory. These methods are tested on real sonar data.
Keywords
bathymetry; feature extraction; geophysical signal processing; image classification; inference mechanisms; multidimensional signal processing; oceanographic techniques; oceanography; sensor fusion; sonar imaging; Dempster-Shafer evidence theory; acoustic sensors; automatic seabed classification; classification reliability; complementarity; digital elevation models; image pixel colocation; information extraction; interferometric points; multidimensional classification; multisensor fusion methods; sidescan sonar image; signal-level fusion; symbol-level fusion; Acoustic sensors; Classification algorithms; Data mining; Digital elevation models; Fuses; Image resolution; Multidimensional systems; Pixel; Signal resolution; Sonar;
fLanguage
English
Publisher
ieee
Conference_Titel
Oceans 2005 - Europe
Conference_Location
Brest, France
Print_ISBN
0-7803-9103-9
Type
conf
DOI
10.1109/OCEANSE.2005.1513172
Filename
1513172
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