DocumentCode :
1311385
Title :
DOA estimation for noninteger linear antenna arrays with more uncorrelated sources than sensors
Author :
Abramovich, Yuri I. ; Spencer, Nicholas K. ; Gorokhov, Alexei Y.
Author_Institution :
Cooperative Res. Centre for Sensor Signal & Inf. Processing, Adeliade, SA, Australia
Volume :
48
Issue :
4
fYear :
2000
fDate :
4/1/2000 12:00:00 AM
Firstpage :
943
Lastpage :
955
Abstract :
We investigate direction-of-arrival (DOA) estimation involving nonuniform linear arrays, where the sensor positions may be noninteger values expressed in half-wavelength units, with some number of uncorrelated Gaussian sources that is greater than or equal to the number of sensors. We introduce an approach whereby the (noninteger) co-array is treated as the most appropriate virtual array when considering an augmented covariance matrix. Since such virtual arrays have an incomplete set of covariance lags, we discuss various completion philosophies to fill in the missing elements of the associated partially specified Hermitian covariance matrix. This process is followed by the application of an algorithm that searches for a specific number of plane wavefronts, yielding the minimum fitting error for the specified covariance lags in the neighborhood of the completion-initialized DOA estimates. In this way, we are able to resolve possible ambiguity and to achieve asymptotically optimal estimation accuracy. Numerical simulations of DOA estimation demonstrate a close proximity to the Cramer-Rao bound
Keywords :
antenna theory; array signal processing; covariance matrices; direction-of-arrival estimation; linear antenna arrays; Cramer-Rao bound; DOA estimation; augmented covariance matrix; completion-initialized DOA estimates; covariance lags; direction-of-arrival; minimum fitting error; noninteger co-array; noninteger linear antenna arrays; nonuniform linear arrays; partially specified Hermitian covariance matrix; plane wavefronts; sensor positions; sensors; uncorrelated Gaussian sources; uncorrelated sources; virtual array; Antenna arrays; Array signal processing; Covariance matrix; Direction of arrival estimation; Linear antenna arrays; Numerical simulation; Sensor arrays; Signal processing algorithms; Signal resolution; Yield estimation;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/78.827529
Filename :
827529
Link To Document :
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