Selective Frequency Invariant Uniform Circular Broadband Beamformer

Frequency-Invariant (FI) beamforming is a well known array signal processing technique used in many applications. In this paper, an algorithm that attempts to optimize the frequency invariant beampattern solely for the mainlobe, and relax the FI requirement on the sidelobe is proposed. This sacrific...

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Main Authors: Zhang Zhang, Anoop Kumar Krishna, Wee Ser, Xin Zhang
Format: Article
Language:English
Published: SpringerOpen 2010-01-01
Series:EURASIP Journal on Advances in Signal Processing
Online Access:http://dx.doi.org/10.1155/2010/678306
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spelling doaj-65777268ba5c478c87961302cb46925b2020-11-24T23:57:16ZengSpringerOpenEURASIP Journal on Advances in Signal Processing1687-61721687-61802010-01-01201010.1155/2010/678306Selective Frequency Invariant Uniform Circular Broadband BeamformerZhang ZhangAnoop Kumar KrishnaWee SerXin ZhangFrequency-Invariant (FI) beamforming is a well known array signal processing technique used in many applications. In this paper, an algorithm that attempts to optimize the frequency invariant beampattern solely for the mainlobe, and relax the FI requirement on the sidelobe is proposed. This sacrifice on performance in the undesired region is traded off for better performance in the desired region as well as reduced number of microphones employed. The objective function is designed to minimize the overall spatial response of the beamformer with a constraint on the gain being smaller than a pre-defined threshold value across a specific frequency range and at a specific angle. This problem is formulated as a convex optimization problem and the solution is obtained by using the Second Order Cone Programming (SOCP) technique. An analysis of the computational complexity of the proposed algorithm is presented as well as its performance. The performance is evaluated via computer simulation for different number of sensors and different threshold values. Simulation results show that, the proposed algorithm is able to achieve a smaller mean square error of the spatial response gain for the specific FI region compared to existing algorithms. http://dx.doi.org/10.1155/2010/678306
collection DOAJ
language English
format Article
sources DOAJ
author Zhang Zhang
Anoop Kumar Krishna
Wee Ser
Xin Zhang
spellingShingle Zhang Zhang
Anoop Kumar Krishna
Wee Ser
Xin Zhang
Selective Frequency Invariant Uniform Circular Broadband Beamformer
EURASIP Journal on Advances in Signal Processing
author_facet Zhang Zhang
Anoop Kumar Krishna
Wee Ser
Xin Zhang
author_sort Zhang Zhang
title Selective Frequency Invariant Uniform Circular Broadband Beamformer
title_short Selective Frequency Invariant Uniform Circular Broadband Beamformer
title_full Selective Frequency Invariant Uniform Circular Broadband Beamformer
title_fullStr Selective Frequency Invariant Uniform Circular Broadband Beamformer
title_full_unstemmed Selective Frequency Invariant Uniform Circular Broadband Beamformer
title_sort selective frequency invariant uniform circular broadband beamformer
publisher SpringerOpen
series EURASIP Journal on Advances in Signal Processing
issn 1687-6172
1687-6180
publishDate 2010-01-01
description Frequency-Invariant (FI) beamforming is a well known array signal processing technique used in many applications. In this paper, an algorithm that attempts to optimize the frequency invariant beampattern solely for the mainlobe, and relax the FI requirement on the sidelobe is proposed. This sacrifice on performance in the undesired region is traded off for better performance in the desired region as well as reduced number of microphones employed. The objective function is designed to minimize the overall spatial response of the beamformer with a constraint on the gain being smaller than a pre-defined threshold value across a specific frequency range and at a specific angle. This problem is formulated as a convex optimization problem and the solution is obtained by using the Second Order Cone Programming (SOCP) technique. An analysis of the computational complexity of the proposed algorithm is presented as well as its performance. The performance is evaluated via computer simulation for different number of sensors and different threshold values. Simulation results show that, the proposed algorithm is able to achieve a smaller mean square error of the spatial response gain for the specific FI region compared to existing algorithms.
url http://dx.doi.org/10.1155/2010/678306
work_keys_str_mv AT zhangzhang selectivefrequencyinvariantuniformcircularbroadbandbeamformer
AT anoopkumarkrishna selectivefrequencyinvariantuniformcircularbroadbandbeamformer
AT weeser selectivefrequencyinvariantuniformcircularbroadbandbeamformer
AT xinzhang selectivefrequencyinvariantuniformcircularbroadbandbeamformer
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