DocumentCode :
1098781
Title :
A physical model-based analysis of heterogeneous environments using sonar-ENDURA method
Author :
Bozma, Ömür ; Kuc, Roman
Author_Institution :
Dept. of Electr. Eng., Yale Univ., New Haven, CT, USA
Volume :
16
Issue :
5
fYear :
1994
fDate :
5/1/1994 12:00:00 AM
Firstpage :
497
Lastpage :
506
Abstract :
A physical model-based analysis of unstructured environments is presented using sonar as a sensing device. Previous methods have relied only on time-of-flight (TOF) methods and have examined only homogenous environments consisting of either smooth or rough surfaces. In this paper, a forward model for the reflection from a class of surfaces with varying degrees of roughness is presented based on the Kirchhoff approximation method. This model integrates different types of environments into a single analytical framework. The echo intensity is parametrized in terms of its energy content and duration, which are functions of the surface roughness, distance, and orientation. The echo-energy and echo-duration maps are introduced to display these parameters. A systematic and robust procedure (ENDURA method) is presented to analyze the reflections and to differentiate and localize the reflecting surfaces. The methodology is verified with experimental results obtained in our laboratory. The results indicate a significant improvement over conventional TOF systems
Keywords :
acoustic signal processing; sonar; ENDURA method; Kirchhoff approximation method; distance; echo intensity parametrization; echo-duration maps; echo-energy maps; energy content; energy duration; heterogeneous environments; orientation; physical model-based analysis; sonar; surface roughness; time-of-flight methods; unstructured environments; Acoustic scattering; Displays; Intelligent sensors; Kirchhoff´s Law; Laboratories; Reflection; Robustness; Rough surfaces; Sonar; Surface roughness;
fLanguage :
English
Journal_Title :
Pattern Analysis and Machine Intelligence, IEEE Transactions on
Publisher :
ieee
ISSN :
0162-8828
Type :
jour
DOI :
10.1109/34.291448
Filename :
291448
Link To Document :
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