DocumentCode
1544592
Title
Near-field/far-field azimuth and elevation angle estimation using a single vector hydrophone
Author
Tichavský, Petr ; Wong, Kainam Thomas ; Zoltowski, Michael D.
Author_Institution
Inst. of Inf. Theory & Autom., Czechoslovak Acad. of Sci., Prague, Czech Republic
Volume
49
Issue
11
fYear
2001
fDate
11/1/2001 12:00:00 AM
Firstpage
2498
Lastpage
2510
Abstract
This paper introduces a new underwater acoustic eigenstructure ESPRIT-based algorithm that yields closed-form direction-of-arrival (DOA) estimates using a single vector hydrophone. A vector hydrophone is composed of two or three spatially co-located but orthogonally oriented velocity hydrophones plus another optional co-located pressure hydrophone. This direction finding algorithm may (under most circumstances) resolve up to four uncorrelated monochromatic sources impinging from the near-field or the far-field, but it assumes that all signal frequencies are distinct. It requires no a priori knowledge of the signals´ frequencies, suffers no frequency-DOA ambiguity, and pairs automatically the x-axis direction cosines with the y-axis direction cosines. It significantly outperforms an array of spatially displaced pressure hydrophones of comparable array-manifold size and computational load but may involve more complex hardware. This work also derives new Cramer-Rao bounds (CRBs) for various vector hydrophone constructions of arrival angle estimates for the incident uncorrelated sinusoidal signals corrupted by spatio-temporally correlated additive noise
Keywords
acoustic noise; acoustic signal processing; acoustic transducer arrays; array signal processing; direction-of-arrival estimation; hydrophones; parameter estimation; signal classification; underwater sound; Cramer-Rao bounds; array-manifold size; arrival angle estimates; closed-form DOA estimates; co-located pressure hydrophone; computational load; direction finding algorithm; direction-of-arrival estimation; elevation angle estimation; near-field/far-field azimuth estimation; orthogonally oriented velocity hydrophones; signal frequencies; spatially displaced pressure hydrophones; spatio-temporally correlated additive noise; uncorrelated monochromatic sources; uncorrelated sinusoidal signals; underwater acoustic eigenstructure ESPRIT-based algorithm; vector hydrophone; Additive noise; Azimuth; Direction of arrival estimation; Frequency; Hardware; Signal resolution; Sonar equipment; Spatial resolution; Underwater acoustics; Yield estimation;
fLanguage
English
Journal_Title
Signal Processing, IEEE Transactions on
Publisher
ieee
ISSN
1053-587X
Type
jour
DOI
10.1109/78.960397
Filename
960397
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