DocumentCode
681706
Title
Robust mode space supergain beamforming under unknown array mismatch
Author
YuKang Liu ; Yong Wang ; Yixin Yang ; Zhengyao He ; Jinyan Du
Author_Institution
Dept. of Electr. & Comput. Eng., Univ. of Kentucky, Lexington, KY, USA
fYear
2013
fDate
23-27 Sept. 2013
Firstpage
1
Lastpage
6
Abstract
The pure supergain beamformers, or MVDR beamformers have better resolution and array gain than conventional delay-and-sum beamformers (CBF), yet are highly sensitive to errors in array parameters. In this paper a robust supergain beamforming (RSBF) method is proposed for circular arrays under unknown array mismatch. The robustness of the array is considered as an optimization objective instead of constraint and it is observed the proposed robust supergain beamforming belongs to the class of diagonal loading approaches. The amount of diagonal loading can be optimally selected as a function of frequency under unknown array mismatch. A closed-form optimal solution is thus obtained for robust supergain beamforming under unknown array mismatch. Simulation results show the performance of the robust supergain beamforming surpasses the conventional beamformer and MVDR beamformer under elevated noise levels, especially at low frequencies.
Keywords
array signal processing; CBF; MVDR beamformer; MVDR beamformers; RSBF method; array gain; array parameter; circular arrays; closed-form optimal solution; conventional delay-and-sum beamformers; diagonal loading approach; elevated noise level; frequency function; optimization objective; robust mode space supergain beamforming; unknown array mismatch; Array signal processing; Arrays; Loading; Noise; Optimization; Polynomials; Robustness; circular array; diagonal loading; optimization; robust beamforming; supergain;
fLanguage
English
Publisher
ieee
Conference_Titel
Oceans - San Diego, 2013
Conference_Location
San Diego, CA
Type
conf
Filename
6740942
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