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Dual-microphone noise reduction based on semi-blind DUET

  • Zhong Hua Fu
  • , Lei Xie
  • , Domg Mei Jiang
  • Northwestern Polytechnical University Xian

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

4 Scopus citations

Abstract

Noise reduction is a fundamental requirement of many speech applications. Sometimes the major interferences, such as music, song, cross-talking, etc., coming from loudspeakers nearby make it a more challenging problem. In this paper, by supposing the locations of interferences are fixed, a semi-blind Degenerate Unmixing Estimation Technique (DUET) approach using dualmicrophone is proposed. Firstly, during system initialization, the spatial feature distribution of the interferences is estimated precisely. Then the feature distribution of unknown target speech is obtained using model adaptation. Finally, a time-frequency binary mask estimated based on likelihood comparison is used to separate the target speech. The experimental results show that the performances of our approach in adverse noise reduction are significant. 77.9% interferences are eliminated and the speech quality is preserved very well. The results are close to those of un-blind approach, where the locations of all sound sources are known.

Original languageEnglish
Title of host publication2010 7th International Symposium on Chinese Spoken Language Processing, ISCSLP 2010 - Proceedings
Pages33-37
Number of pages5
DOIs
StatePublished - 2010
Event2010 7th International Symposium on Chinese Spoken Language Processing, ISCSLP 2010 - Tainan, Taiwan, Province of China
Duration: 29 Nov 20103 Dec 2010

Publication series

Name2010 7th International Symposium on Chinese Spoken Language Processing, ISCSLP 2010 - Proceedings

Conference

Conference2010 7th International Symposium on Chinese Spoken Language Processing, ISCSLP 2010
Country/TerritoryTaiwan, Province of China
CityTainan
Period29/11/103/12/10

Keywords

  • Dual-microphone
  • DUET
  • Noise reduction
  • Semiblind

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