DocumentCode :
2361438
Title :
Neural tree network/vector quantization probability estimators for speaker recognition
Author :
Farrell, Kevin ; Kosonocky, Stephen ; Mammone, Richard
Author_Institution :
CAIP Center, Rutgers Univ., Piscataway, NJ, USA
fYear :
1994
fDate :
6-8 Sep 1994
Firstpage :
279
Lastpage :
288
Abstract :
A new classification system for text-independent speaker recognition is presented. This system combines the output probabilities of distortion-based classifiers and a discriminant-based classifier. The distortion-based classifiers are the vector quantization (VQ) classifier and Gaussian mixture model (GMM). The discriminant-based classifier is the neural tree network (NTN). The VQ and GMM classifiers provide output probabilities that represent the distortion between the observation and the model. Hence, these probabilities provide an intraclass measure. The NTN classifier is based on discriminant training and provides output probabilities that represent an interclass measure. Since, these two classifiers base their decision on different criteria, they can be effectively combined to yield improved performance. Two combining methods are evaluated for several speaker recognition tasks, including speaker verification and closed set speaker identification. The results show the both methods to yield advantages for the speaker recognition tasks
Keywords :
learning (artificial intelligence); neural nets; probability; speaker recognition; vector quantisation; Gaussian mixture model; classification system; closed set speaker identification; discriminant training; discriminant-based classifier; distortion-based classifiers; interclass measure; neural tree network/vector quantization probability estimators; output probabilities; speaker recognition; speaker verification; text-independent speaker recognition; Buildings; Classification tree analysis; Distortion measurement; Hidden Markov models; Multilayer perceptrons; Speaker recognition; Speech recognition; Testing; Vector quantization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks for Signal Processing [1994] IV. Proceedings of the 1994 IEEE Workshop
Conference_Location :
Ermioni
Print_ISBN :
0-7803-2026-3
Type :
conf
DOI :
10.1109/NNSP.1994.366039
Filename :
366039
Link To Document :
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