DocumentCode :
1168467
Title :
Processing of high-frequency multibeam echo sounder data for seafloor characterization
Author :
Hellequin, Laurent ; Boucher, Jean-Marc ; Lurton, Xavier
Author_Institution :
TMSI/AS, IFREMER, Plouzane, France
Volume :
28
Issue :
1
fYear :
2003
fDate :
1/1/2003 12:00:00 AM
Firstpage :
78
Lastpage :
89
Abstract :
Processing simultaneous bathymetry and backscatter data, multibeam echosounders (MBESs) show promising abilities for remote seafloor characterization. High-frequency MBESs provide a good horizontal resolution, making it possible to distinguish fine details at the water-seafloor interface. However, in order to accurately measure the seafloor influence on the backscattered energy, the recorded sonar data must first be processed and cleared of various artifacts generated by the sonar system itself. Such a preprocessing correction procedure along with the assessment of its validity limits is presented and applied to a 95-kHz MBES (Simrad EM 1000) data set. Beam pattern effects, uneven array sensitivities, and inaccurate normalization of the ensonified area are removed to make possible further quantitative analysis of the corrected backscatter images. Unlike low-frequency data where the average backscattered energy proves to be the only relevant feature for discriminating the nature of the seafloor, high-frequency MBES backscatter images exhibit visible texture patterns. This additional information involves different statistical distributions of the backscattered amplitudes obtained from various seafloor types. Non-Rayleigh statistics such as K-distributions are shown to fit correctly the skewed distributions of experimental high-frequency data. Apart from the effect of the seafloor micro-roughness, a statistical model makes clear a correlation between the amplitude statistical distributions and the signal incidence angle made available by MBES bathymetric abilities. Moreover, the model enhances the effect of the first derivative of the seafloor backscattering strength upon statistical distributions near the nadir and at high incidence angles. The whole correction and analysis process is finally applied to a Simrad EM 1000 data set.
Keywords :
bathymetry; geophysical signal processing; sonar imaging; 95 kHz; K-distributions; Simrad EM1000 data set; backscatter data; backscatter images; backscatter model; backscattered amplitudes; backscattered energy; bathymetry; beam pattern effects; multibeam echo sounders; preprocessing correction procedure; remote seafloor characterization; seafloor classification; seafloor micro-roughness; sonar data; statistical model; texture patterns; uneven array sensitivities; water-seafloor interface; Acoustic beams; Backscatter; Energy measurement; Energy resolution; Frequency; Image analysis; Molecular beam epitaxial growth; Sea floor; Sonar measurements; Statistical distributions;
fLanguage :
English
Journal_Title :
Oceanic Engineering, IEEE Journal of
Publisher :
ieee
ISSN :
0364-9059
Type :
jour
DOI :
10.1109/JOE.2002.808205
Filename :
1190137
Link To Document :
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