DocumentCode :
1787581
Title :
A sparse regularization technique for source localization with non-uniform sensor gain
Author :
Weiss, Christian ; Zoubir, Abdelhak M.
Author_Institution :
Tech. Univ. Darmstadt, Darmstadt, Germany
fYear :
2014
fDate :
22-25 June 2014
Firstpage :
93
Lastpage :
96
Abstract :
A robust sparse regularization technique with applications to source localization in the presence of non-uniform gain distribution is presented. As a key component in sparse optimization, a proper choice of the regularization parameter is crucial. It renders high impact on the localization performance and has to account for any kind of model perturbation. Our proposed technique utilizes a statistical framework to provide a direct relation between the physical system parameters and the regularization parameter of the resulting optimization problem. It addresses the joint effects of sensor gain variations and noise. As a figure of merit, we consider the mean-squared error (MSE) between the perturbed measurements and the assumed underlying model. An upper bound of the MSE is attained in order to estimate the regularization parameter. The presented method shows good performance for moderate gain variances even in low SNR regimes.
Keywords :
array signal processing; mean square error methods; optimisation; parameter estimation; statistical analysis; MSE; mean-squared error; model perturbation; nonuniform gain distribution; nonuniform sensor gain variations; physical system parameters; regularization parameter estimation; robust sparse regularization technique; source localization; sparse optimization; statistical framework; upper bound; Arrays; Gain; Robustness; Signal to noise ratio; Upper bound; model errors; non-uniform sensor gain; robust model; source localization; sparse regularization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Sensor Array and Multichannel Signal Processing Workshop (SAM), 2014 IEEE 8th
Conference_Location :
A Coruna
Type :
conf
DOI :
10.1109/SAM.2014.6882346
Filename :
6882346
Link To Document :
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