Title :
Model-Based Sonar Motion Compensation for Bottom Reverberation Coherence
Author :
Ren, Jinyun ; Vaughan, Rodney G.
Author_Institution :
Sch. of Eng. Sci., Simon Fraser Univ., Burnaby, BC, Canada
Abstract :
Much signal processing in sonar takes advantage of ping-to-ping bottom reverberation coherence. However, bottom reverberation coherence is degraded owing to environment variations including unknown sonar sensor motions from platform instability. In this paper, an algorithm is described to compensate small-scale motion of high-frequency sonar sensors which is for enhancing ping-to-ping bottom reverberation coherence. The algorithm is based on sonar modeling of bottom reverberation. It comprises three steps: template selection, footprint matching, and phase rotation. Simulations using the sonar modeling indicate that the algorithm can correct for sensor motion of up to several wavelengths for two pings using the data from only one element of the sonar receiver. The algorithm achieves a significant coherence improvement over a large region ensonified by the sonar beam.
Keywords :
motion compensation; reverberation; sensors; sonar signal processing; footprint matching; high-frequency sonar sensors; model-based sonar motion compensation; phase rotation; ping-to-ping bottom reverberation coherence; platform instability; signal processing; sonar receiver; sonar sensor motions; template selection; Coherence; Delay; Motion compensation; Reverberation; Sensors; Signal processing; Sonar; Bottom reverberation coherence; motion compensation; sonar sensor motion; sonar signal processing;
Journal_Title :
Oceanic Engineering, IEEE Journal of
DOI :
10.1109/JOE.2010.2079610