This paper addresses the problem of towed array shape estimation for passive, horizontal sonar arrays. Beamforming and localization techniques significantly degrade when an assumed linear array bends due to tow platform maneuvers or ocean currents. In this paper, heading sensors along the array and acoustic hydrophone data are jointly used to estimate the shape of the array. Previously, heading data have been filtered using a dynamical motion model to reduce noise during turns. In recent work, a time-varying noise field directionality estimate that incorporates a dynamical model for the acoustic field provides a second, albeit biased, estimate of the array shape. In this paper, these two estimates are combined via adaptive weights to obtain improved shape estimates during maneuvers. A multi-source simulation is used to demonstrate the robustness of the combined array shape estimate when compared to the separate heading or acoustic sensor based techniques.
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2 June 2013
ICA 2013 Montreal
2–7 June 2013
Montreal, Canada
Signal Processing in Acoustics: Session 4aSP: Sensor Array Beamforming and Its Applications
Article Contents
May 14 2013
Heading and hydrophone data fusion for towed array shape estimation Free
Jonathan L. Odom
Jeffrey Krolik
Proc. Mtgs. Acoust. 19, 055081 (2013)
Article history
Received:
January 22 2013
Accepted:
January 31 2013
Citation
Jonathan L. Odom, Jeffrey Krolik; Heading and hydrophone data fusion for towed array shape estimation. Proc. Mtgs. Acoust. 2 June 2013; 19 (1): 055081. https://doi.org/10.1121/1.4800390
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