• DocumentCode
    740302
  • Title

    Theoretical Analysis of Differential Microphone Array Beamforming and an Improved Solution

  • Author

    Chao Pan ; Jingdong Chen ; Benesty, Jacob

  • Author_Institution
    Center of Intell. Acoust. & Immersive Commun., Northwestern Polytech. Univ., Xi´an, China
  • Volume
    23
  • Issue
    11
  • fYear
    2015
  • Firstpage
    2093
  • Lastpage
    2105
  • Abstract
    Differential microphone arrays (DMAs), which are responsive to the differential sound pressure field, have attracted much attention due to their properties of frequency-invariant beampatterns, small apertures, and potential of maximum directivity. Traditionally, DMAs are designed and implemented in a multistage (cascade) way, where a proper time delay is used in each stage to form a beampattern of interest. Recently, it was reported that DMAs can be designed by solving a linear system of equations formed from the information about the nulls of the desired beampattern. This paper deals with the problem of beamforming with linear DMAs. Its major contributions are as follows. 1) By using the spatial Z transform, we present some theoretical analysis of both the traditional cascade and new null-constrained DMA beamforming. It is shown that the cascade and null-constrained DMAs of the same order with the same number of sensors are theoretically identical. 2) We develop a two-stage approach to the study of the robust DMA beamformer, which is based on the principle of maximizing the white noise gain (WNG). The first-stage of this approach is in the structure of the traditional non-robust DMA while the second-stage filter is optimized for improving the WNG. 3) Using the two-stage approach, we show that the robust DMA beamformer may introduce extra nulls in the beampattern at high frequencies; particularly, it introduces M - N - 1 extra nulls if the interelement spacing is equal to half of the wavelength, where M and N are the number of sensors and the DMA order, respectively. 4) We develop a method that can solve the extra-null problem while maximizing the WNG in robust DMA beamforming, i.e., a robust solution with a frequency-invariant beampattern.
  • Keywords
    Z transforms; acoustic signal processing; array signal processing; microphone arrays; differential microphone array beamforming; differential sound pressure field; frequency invariant beampattern; second stage filter; spatial Z-transform; white noise gain; Array signal processing; Arrays; Microphones; Robustness; Sensors; Signal to noise ratio; Transforms; Differential beamforming; differential microphone arrays (DMAs); directivity factor; directivity pattern; frequency-invariant beampattern; microphone arrays; robust DMAs; white noise gain;
  • fLanguage
    English
  • Journal_Title
    Audio, Speech, and Language Processing, IEEE/ACM Transactions on
  • Publisher
    ieee
  • ISSN
    2329-9290
  • Type

    jour

  • DOI
    10.1109/TASLP.2015.2469142
  • Filename
    7206552