DocumentCode :
1388613
Title :
Particle-Velocity-Field Difference Smoothing for Coherent Source Localization in Spatially Nonuniform Noise
Author :
He, Jin ; Jiang, Shengli ; Wang, Juting ; Liu, Zhong
Author_Institution :
Dept. of Electron. Eng., Nanjing Univ. of Sci. & Technol., Nanjing, China
Volume :
35
Issue :
1
fYear :
2010
Firstpage :
113
Lastpage :
119
Abstract :
This communication considers the problem of estimating 2-D directions of arrival (DOAs) of multiple coherent signals under spatially nonuniform noise (spatially inhomogeneous temporary white noise) using an array of vector hydrophones. A novel preprocessing method called particle-velocity-field difference smoothing (PVFDS) is proposed. The key idea underlying the PVFDS is to remove the spatially nonuniform noise by using the matrix difference of pairs of particle-velocity data correlation matrices, and to decorrelate the coherent signals by summing these difference correlation matrices. Unlike most of other existing preprocessing techniques, such as spatial smoothing and forward-backward averaging, the PVFDS processing does not decrease the array aperture. For arbitrary array geometries, the PVFDS can resolve up to four coherent signals, and for centro-symmetric arrays, forward-backward averaging can double this number to eight. Monte Carlo simulations illustrate that the PVFDS-based eigenstructure algorithms can offer better performance than the particle-velocity-field smoothing (PVFS)-based counterparts.
Keywords :
Monte Carlo methods; acoustic arrays; acoustic signal processing; direction-of-arrival estimation; eigenvalues and eigenfunctions; hydrophones; matrix algebra; signal denoising; smoothing methods; underwater sound; 2D direction of arrival estimation; Monte Carlo simulation; array aperture; array geometry; centro-symmetric array; coherent source localization; difference correlation matrices; eigenstructure; forward-backward averaging; matrix difference; multiple coherent signals; particle-velocity-field difference smoothing; signal decorrelation; spatial smoothing; spatially inhomogeneous temporary white noise; spatially nonuniform noise removal; vector hydrophone array; Array signal processing; coherent signal; direction of arrival (DOA) estimation; parameter estimation; particle-velocity-field difference smoothing (PVFDS); particle-velocity-field smoothing (PVFS); spatially nonuniform noise; vector hydrophone;
fLanguage :
English
Journal_Title :
Oceanic Engineering, IEEE Journal of
Publisher :
ieee
ISSN :
0364-9059
Type :
jour
DOI :
10.1109/JOE.2009.2036554
Filename :
5392981
Link To Document :
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