DocumentCode :
705081
Title :
Achievable maximum-directivity beamforming for spherical microphone arrays with random array errors
Author :
Haohai Sun ; Shefeng Yan ; Svensson, U. Peter ; Solvang, Audun ; Nielsen, Johan L.
Author_Institution :
Dept. of Electron. & Telecomm., Norwegian Univ. of Sci. & Tech, Trondheim, Norway
fYear :
2010
fDate :
23-27 Aug. 2010
Firstpage :
1929
Lastpage :
1933
Abstract :
The maximum-directivity beamformers, or the so-called plane wave decomposition (PWD) beamformers have been widely studied and used for spherical microphone arrays, but they are known to be sensitive to random array errors that exist in practical applications. In this paper, a robust maximum-directivity beamforming approach based on the spherical harmonics framework and worst-case performance optimization techniques is proposed. The approach is developed for both the space domain and the spherical harmonics domain. Given the known maximum level of array errors, it can automatically find and yield the achievable maximum-directivity for spherical microphone array beamformers, and does not require manual tuning of robustness parameters, which is the major advantage over the white noise gain constrained robustness control approaches that have been developed earlier for spherical microphone arrays.
Keywords :
array signal processing; decomposition; microphone arrays; optimisation; random processes; PWD; maximum-directivity beamformer; optimization technique; plane wave decomposition; random array error; robust maximum-directivity beamforming approach; space domain approach; spherical harmonics domain approach; spherical harmonics framework; spherical microphone array; white noise gain constrained robustness control approach; Array signal processing; Harmonic analysis; Microphone arrays; Noise; Optimization; Robustness;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing Conference, 2010 18th European
Conference_Location :
Aalborg
ISSN :
2219-5491
Type :
conf
Filename :
7096354
Link To Document :
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