DocumentCode
3061213
Title
A noise spectral estimation method based on VAD and recursive averaging using new adaptive parameters for non-stationary noise environments
Author
Nakayama, Kenji ; Higashi, Shoya ; Hirano, Akihiro
Author_Institution
Grad. Sch. of Natural Sci. & Technol., Kanazawa Univ., Kanazawa
fYear
2009
fDate
8-11 Feb. 2009
Firstpage
1
Lastpage
4
Abstract
A noise spectral estimation method, which is used in spectral suppression noise cancellers, is proposed for highly non-stationary noise environments. Speech and non-speech frames are detected by using the entropy-based voice activity detector (VAD). An adaptive normalization parameter and a variable threshold are newly introduced for the VAD. They are very useful for rapid change in the noise spectrum and power. Furthermore, a recursive averaging method is applied to estimating the noise spectrum in the non-speech frames. In this method, an adaptive smoothing parameter is proposed, based on speech presence probability. Simulations are carried out by using many kinds of noises, including white, babble, car, pink, factory and tank, which are changed from one to the other. The segmental SNR is improved by 2:0 ~ 3:8dB, and noise spectral estimation error is improved by 3:2 ~ 4:7dB for the white noise and the babble noise, which are changed from one to the other.
Keywords
interference suppression; noise measurement; recursive estimation; smoothing methods; white noise; VAD; adaptive normalization; adaptive smoothing; babble noise; entropy; noise spectral estimation; recursive averaging; segmental SNR; spectral suppression noise cancellation; speech presence probability; voice activity detector; white noise; 1f noise; Detectors; Noise cancellation; Production facilities; Recursive estimation; Signal to noise ratio; Smoothing methods; Speech; White noise; Working environment noise;
fLanguage
English
Publisher
ieee
Conference_Titel
Intelligent Signal Processing and Communications Systems, 2008. ISPACS 2008. International Symposium on
Conference_Location
Bangkok
Print_ISBN
978-1-4244-2564-8
Electronic_ISBN
978-1-4244-2565-5
Type
conf
DOI
10.1109/ISPACS.2009.4806668
Filename
4806668
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