DocumentCode :
147213
Title :
A fuzzy-GMM classifier for multilingual speaker identification
Author :
Devika, A.K. ; Sumithra, M.G. ; Deepika, A.K.
fYear :
2014
fDate :
3-5 April 2014
Firstpage :
1514
Lastpage :
1518
Abstract :
In this paper, a new modeling approach is proposed by hybriding the features of expectation-maximization algorithm(GMM) and fuzzy c-means algorithm(FCM). Based on the analysis over conventional GMM technique, we suggested a new speaker identification system by fusing GMM (optimized using EM algorithm) and FCM, to improve the identification rate further in multilingual speaker identification system. The proposed technique and GMM technique was evaluated in mono and multilingual environments. Experiments were done also by varying the initial code books for generating speaker model. The experimental result shows improvements on a combined FGMM system, which employs fusion for the multilingual context with varying initial code books gives an improvement of minimum 2.98% than existing GMM approach. MFCC technique is used for extracting the features. The algorithms were compared using TIMIT database of 54 speakers speaking 3 languages like English, Hindi and Tamil.
Keywords :
Gaussian processes; expectation-maximisation algorithm; fuzzy set theory; speaker recognition; EM algorithm; English; FCM; GMM fusion; Hindi; MFCC technique; TIMIT database; Tamil; combined FGMM system; expectation-maximization algorithm; feature extraction; fuzzy C-mean algorithm; fuzzy-GMM classifier; initial code books; modeling approach; monolingual environment; multilingual context fusion; multilingual speaker identification system; speaker model generation; Accuracy; Analytical models; Filter banks; Mel frequency cepstral coefficient; Speech; Testing; Training; Expectation-maximization(EM); Fuzzy C-means(FCM); Gaussian Mixture Model(GMM); Speaker identification; Vector Quantisation(VQ);
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Communications and Signal Processing (ICCSP), 2014 International Conference on
Conference_Location :
Melmaruvathur
Print_ISBN :
978-1-4799-3357-0
Type :
conf
DOI :
10.1109/ICCSP.2014.6950102
Filename :
6950102
Link To Document :
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