DocumentCode :
1919853
Title :
Effective extraction of acoustic features after noise reduction for speech classification
Author :
Hurtado, J.E. ; Castellanos, G. ; Suarez, J.F.
fYear :
2002
fDate :
2002
Firstpage :
245
Lastpage :
248
Abstract :
A methodology, which is oriented to voice classification, is proposed for selecting acoustic features. The raw voice characteristic assemble is preprocessed by means of statistical techniques and thereafter its reduction up to the lowest assemble dimension of representative voice parameters is accomplished, yet preserving enough discriminating properties of voice classes. The methodology introduced shows an important reduction in initial assemble dimension of voice characteristics. In addition, a method of background noise reduction for quality improvement of acoustic voice analysis is developed. The method accomplishes a spectral subtraction technique.
Keywords :
acoustic signal processing; feature extraction; signal classification; spectral analysis; speech enhancement; speech recognition; statistical analysis; acoustic feature extraction; acoustic voice analysis; automatic speech recognition; background noise reduction; discriminating properties; preprocessing; quality improvement; raw voice characteristic assemble; spectral subtraction; speech classification; statistical techniques; voice classes; voice classification; Acoustic measurements; Assembly; Automatic speech recognition; Background noise; Feature extraction; Noise measurement; Noise reduction; Signal analysis; Speech analysis; Speech enhancement;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Modern Problems of Radio Engineering, Telecommunications and Computer Science, 2002. Proceedings of the International Conference
Print_ISBN :
966-553-234-0
Type :
conf
DOI :
10.1109/TCSET.2002.1015947
Filename :
1015947
Link To Document :
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