Steering study of linear differential microphone arrays

Jilu Jin, Gongping Huang, Xuehan Wang, Jingdong Chen, Jacob Benesty, Israel Cohen

Research output: Contribution to journalArticlepeer-review

46 Scopus citations

Abstract

Differential microphone arrays (DMAs) can achieve high directivity and frequency-invariant spatial response with small apertures; they also have a great potential to be used in a wide spectrum of applications for high-fidelity sound acquisition. Although many efforts have been made to address the design of linear DMAs (LDMAs), most developed methods so far only work for the situation where the source of interest is incident from the endfire direction. This paper studies the steering problem of differential beamformers with linear microphone arrays. We present new insights into beam steering of LDMAs and propose a series of steerable differential beamformers. The major contributions of this paper are as follows. 1) A series of ideal functions are defined to describe the ideal, target beampatterns of LDMAs. 2) We prove that first-order differential beamformers with linear microphone arrays are not steerable and their mainlobes can only be at the endfire directions. 3) We deduce the fundamental conditions for designing steerable differential beamformers with LDMAs. 4) We develop a method to design steerable beamformers with LDMAs using null constraints. Simulations and experiments validate the properties of the developed method.

Original languageEnglish
Article number9261932
Pages (from-to)158-170
Number of pages13
JournalIEEE/ACM Transactions on Audio Speech and Language Processing
Volume29
DOIs
StatePublished - 2021

Keywords

  • beam steering
  • beampattern
  • differential beamforming
  • frequency-invariant beamformer
  • Microphone arrays
  • uniform linear arrays

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