DocumentCode
109011
Title
Performance of the SDW-MWF With Randomly Located Microphones in a Reverberant Enclosure
Author
Markovich-Golan, Shmulik ; Gannot, Sharon ; Cohen, Israel
Author_Institution
Fac. of Eng., Bar-Ilan Univ., Ramat-Gan, Israel
Volume
21
Issue
7
fYear
2013
fDate
Jul-13
Firstpage
1513
Lastpage
1523
Abstract
Beamforming with wireless acoustic sensor networks (WASNs) has recently drawn the attention of the research community. As the number of microphones grows it is difficult, and in some applications impossible, to determine their layout beforehand. A common practice in analyzing the expected performance is to utilize statistical considerations. In the current contribution, we consider applying the speech distortion weighted multi-channel Wiener filter (SDW-MWF) to enhance a desired source propagating in a reverberant enclosure where the microphones are randomly located with a uniform distribution. Two noise fields are considered, namely, multiple coherent interference signals and a diffuse sound field. Utilizing the statistics of the acoustic transfer function (ATF), we derive a statistical model for two important criteria of the beamformer (BF): the signal to interference ratio (SIR), and the white noise gain. Moreover, we propose reliability functions, which determine the probability of the SIR and white noise gain to exceed a predefined level. We verify the proposed model with an extensive simulative study.
Keywords
Wiener filters; acoustic transducers; array signal processing; interference (signal); microphone arrays; signal sources; speech enhancement; statistical analysis; statistical distributions; telecommunication network reliability; white noise; wireless sensor networks; ATF; BF; SDW-MWF; SIR; WASN; acoustic transfer function; beamforming; microphone; multiple coherent interference signal; probability; reliability; reverberant enclosure; signal to interference ratio; sound field diffusion; source propagation enhancement; speech distortion weighted multichannel Wiener filter; statistical model; uniform distribution; white noise gain; wireless acoustic sensor network; Optimal filtering; beamforming; performance bounds; room acoustics;
fLanguage
English
Journal_Title
Audio, Speech, and Language Processing, IEEE Transactions on
Publisher
ieee
ISSN
1558-7916
Type
jour
DOI
10.1109/TASL.2013.2255280
Filename
6488743
Link To Document