DocumentCode :
1927417
Title :
A Comparative Study of Feature Extraction Methods Applied to Continuous Speech Recognition in Romanian Language
Author :
Dumitru, Corneliu Octavian ; Gavat, Inge
Author_Institution :
Fac. of Electron. Telecommun. & Inf. Technol., Politehnic Univ. of Bucharest
fYear :
2006
fDate :
38869
Firstpage :
115
Lastpage :
118
Abstract :
This paper describes continuous speech recognition experiments on a Romanian language speech database, by using hidden Markov models (EMM). We compare the recognition rates obtained in our ASR system realising front-ends based on features extracted by perceptual variants of cepstral analysis and linear prediction and by simple linear prediction. The best results obtained with 36 coefficients mel-frequency cepstral coefficients (MFCC) are used as basis to rank the front-ends based on LPC. The second rank is very promising for the performance obtained with 5 perceptual linear prediction (PLP) coefficients, obviously better at the last ranked performance of the simple linear prediction coefficients (LPC). We reorganized the database as follows: one database for male speakers, one database for female speakers and one database for both male and female speakers
Keywords :
cepstral analysis; feature extraction; hidden Markov models; natural language processing; speech recognition; Hidden Markov model; MFCC; PLP; Romanian language; cepstral analysis; feature extraction; mel-frequency cepstral coefficients; perceptual linear prediction; speech database; speech recognition; Automatic speech recognition; Cepstral analysis; Databases; Feature extraction; Hidden Markov models; Linear predictive coding; Natural languages; Signal processing; Speech processing; Speech recognition; Hidden Markov Models (HMM); LPC; MFCC; PLP; speech recognition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multimedia Signal Processing and Communications, 48th International Symposium ELMAR-2006 focused on
Conference_Location :
Zadar
ISSN :
1334-2630
Print_ISBN :
953-7044-03-3
Type :
conf
DOI :
10.1109/ELMAR.2006.329528
Filename :
4127501
Link To Document :
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