DocumentCode :
417736
Title :
Stochastic gradient implementation of spatially preprocessed multi-channel Wiener filtering for noise reduction in hearing aids
Author :
Spriet, Ann ; Moonen, Marc ; Wouters, Jan
Author_Institution :
ESAT/SCD-SISTA, Katholieke Univ., Leuven, Belgium
Volume :
4
fYear :
2004
fDate :
17-21 May 2004
Abstract :
Recently, a generalized noise reduction scheme was proposed, called the spatially preprocessed speech distortion weighted multi-channel Wiener filter (SP-SDW-MWF). Compared to GSC with quadratic inequality constraint (QIC-GSC), the SP-SDW-MWF reduces more noise, for a given maximum speech distortion level. We develop time-domain and frequency-domain stochastic gradient implementations of the SP-SDW-MWF. Experimental results with a hearing aid show that the proposed stochastic gradient algorithm preserves the benefit of the SP-SDW-MWF over the QIC-GSC, while its computational cost is comparable to the NLMS based scaled projection algorithm (SPA) for QIC-GSC.
Keywords :
Wiener filters; acoustic noise; array signal processing; audio signal processing; frequency-domain analysis; gradient methods; hearing aids; interference suppression; random noise; speech intelligibility; stochastic processes; time-domain analysis; GSC; NLMS based scaled projection algorithm; computational cost; frequency-domain implementation; generalized sidelobe canceller; hearing aids; maximum speech distortion level; microphone arrays; noise reduction; quadratic inequality constraint; spatially preprocessed speech distortion weighted multichannel Wiener filter; speech intelligibility; stochastic gradient algorithm; time-domain implementation; Auditory system; Computational efficiency; Hearing aids; Noise level; Noise reduction; Projection algorithms; Speech enhancement; Stochastic resonance; Time domain analysis; Wiener filter;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Acoustics, Speech, and Signal Processing, 2004. Proceedings. (ICASSP '04). IEEE International Conference on
ISSN :
1520-6149
Print_ISBN :
0-7803-8484-9
Type :
conf
DOI :
10.1109/ICASSP.2004.1326762
Filename :
1326762
Link To Document :
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