Joint optimization of microphone array geometry, sensor directivity pattern, and beamforming parameters for linear superarrays

Fuente: arXiv
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Main Authors: Qian, Yuanhang, Luo, Xueqin, Jin, Jilu, Huang, Gongping, Chen, Jingdong, Benesty, Jacob
Format: Preprint
Published: 2025
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author Qian, Yuanhang
Luo, Xueqin
Jin, Jilu
Huang, Gongping
Chen, Jingdong
Benesty, Jacob
author_facet Qian, Yuanhang
Luo, Xueqin
Jin, Jilu
Huang, Gongping
Chen, Jingdong
Benesty, Jacob
contents Linear superarrays (LSAs) have been proposed to address the limited steering capability of conventional linear differential microphone arrays (LDMAs) by integrating omnidirectional and directional microphones, enabling more flexible beamformer designs. However, existing approaches remain limited because array geometry and element directivity, both critical to beamforming performance, are not jointly optimized. This paper presents a generalized LSA optimization framework that simultaneously optimizes array geometry, element directivity, and the beamforming filter to minimize the approximation error between the designed beampattern and an ideal directivity pattern (IDP) over the full frequency band and all steering directions within the region of interest. The beamformer is derived by approximating the IDP using a Jacobi-Anger series expansion, while the array geometry and element directivity are optimized via a genetic algorithm. Simulation results show that the proposed optimized array achieves lower approximation error than conventional LSAs across the target frequency band and steering range. Additionally, its directivity factor and white noise gain demonstrate more stable and improved performance across frequencies and steering angles.
format Preprint
id arxiv_https___arxiv_org_abs_2510_26822
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Joint optimization of microphone array geometry, sensor directivity pattern, and beamforming parameters for linear superarrays
Qian, Yuanhang
Luo, Xueqin
Jin, Jilu
Huang, Gongping
Chen, Jingdong
Benesty, Jacob
Signal Processing
Linear superarrays (LSAs) have been proposed to address the limited steering capability of conventional linear differential microphone arrays (LDMAs) by integrating omnidirectional and directional microphones, enabling more flexible beamformer designs. However, existing approaches remain limited because array geometry and element directivity, both critical to beamforming performance, are not jointly optimized. This paper presents a generalized LSA optimization framework that simultaneously optimizes array geometry, element directivity, and the beamforming filter to minimize the approximation error between the designed beampattern and an ideal directivity pattern (IDP) over the full frequency band and all steering directions within the region of interest. The beamformer is derived by approximating the IDP using a Jacobi-Anger series expansion, while the array geometry and element directivity are optimized via a genetic algorithm. Simulation results show that the proposed optimized array achieves lower approximation error than conventional LSAs across the target frequency band and steering range. Additionally, its directivity factor and white noise gain demonstrate more stable and improved performance across frequencies and steering angles.
title Joint optimization of microphone array geometry, sensor directivity pattern, and beamforming parameters for linear superarrays
topic Signal Processing
url https://arxiv.org/abs/2510.26822