DocumentCode :
1458745
Title :
Geoacoustic seafloor exploration with a towed array in a shallow water area of the Strait of Sicily
Author :
Caiti, Andrea ; Jesus, Sérgio M. ; Kristensen, Åge
Author_Institution :
Dist, Genoa Univ., Italy
Volume :
21
Issue :
4
fYear :
1996
fDate :
10/1/1996 12:00:00 AM
Firstpage :
355
Lastpage :
366
Abstract :
Acoustic propagation in shallow water is greatly dependent on the geoacoustic properties of the seabottom. This paper exploits this dependence for estimating geoacoustic sediment properties from the bottom acoustic returns of known signals received on a hydrophone line array. There are two major issues in this approach: one is the feasibility of acoustic inversion with a limited aperture line array, the other is related to the knowledge of the geometry of the experimental configuration. To test the feasibility of this approach, a 40-hydrophone-4-m spaced towed array together with a low-frequency acoustic source, was operated at a shallow water site in the Strait of Sicily. In order to estimate the array deformation in real time, it has been equipped with a set of nonacoustic positioning sensors (compasses, tilt-meters, pressure gauges). The acoustic data were inverted using two complementary approaches: a genetic algorithm (GA) like approach and a radial basis functions (RBF) inversion scheme. More traditional methods, based on core sampling, seismic survey and geophone data, together with Hamilton´s regression curves, have also been employed on the same tracks, in order to provide a ground truth reference environment. The results of the experiment, can be summarized as follows: 1) the towed array movement is not negligible for the application considered and the use of positioning sensors are essential for a proper acoustic inversion, 2) the inversion with GA and RBF are in good qualitative agreement with the ground truth model, and 3) the GA scheme tends to have better stability properties. On the other hand, repeated in version of successive field measurements requires much less computational effort with RBF
Keywords :
acoustic signal processing; genetic algorithms; geophysical signal processing; geophysical techniques; hydrophones; inverse problems; oceanographic techniques; seafloor phenomena; underwater sound; 4 m; Acoustic propagation; Geoacoustic seafloor exploration; Hamilton´s regression curves; Strait of Sicily; acoustic inversion; array deformation; bottom acoustic returns; core sampling; feasibility; genetic algorithm; geometry; geophone data; ground truth model; hydrophone line array; positioning sensors; radial basis functions; real time; seabottom; sediment properties; seismic survey; shallow water; stability; towed array; Acoustic arrays; Acoustic propagation; Acoustic sensors; Apertures; Geometry; Sea floor; Sediments; Sensor arrays; Sonar equipment; Water;
fLanguage :
English
Journal_Title :
Oceanic Engineering, IEEE Journal of
Publisher :
ieee
ISSN :
0364-9059
Type :
jour
DOI :
10.1109/48.544046
Filename :
544046
Link To Document :
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