Speaker Verification Using Autoregressive Spectrum of Speech Signal in Composite Vector Stochastic Processes Model Representation
ČlánekOtevřený přístuppeer-reviewedpostprintDatum publikování
2019
Autoři
Chmelařová, Natalija
Tykhonov, Vyacheslav A.
Bezruk, Valerij M.
Chmelař, Pavel
Rejfek, Luboš
Vedoucí práce
Oponent
Název časopisu
Název svazku
Vydavatel
Institute of Mechanics of Continua and Mathematical Sciences
Abstrakt
This paper deals with the speaker verification system similar to a fingerprint or an eye scanner. For these purpose a long-term words' model and its spectral characteristics were used. The speaker verification method uses the word's sound parametric spectrum factorization in composite vector stochastic process representation based on the multiplicative autoregressive model. The developed method enables to receive the words' features with stable characteristics for the same speaker and differ for different speakers. During the training phase speaker's etalon frequencies has to be estimated for a pronounced word repeated several times. In the verification phase a speaker pronouncing the same word, word's frequencies are estimated and compared with the etalon frequencies database to find the best match or his deny. The results presented in the paper showed the high correct identification probability.
Rozsah stran
p. 178-190
ISSN
2454-7190
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Projekt
SGS_2019_021/Výzkum pokročilých metod modelování, simulace, řízení, databázových systémů a webových aplikací
Zdrojový dokument
Journal of Mechanics of Continua and Mathematical Sciences, volume No. 4, issue: 11 2019
Vydavatelská verze
http://www.journalimcms.org/special_issue/speaker-verification-using-autoregressive-spectrum-of-speech-signal-in-composite-vector-stochastic-processes-model-representation/
Přístup k e-verzi
open access
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Klíčová slova
Composite Vector Stochastic Processes Autoregressive Models, Power Spectrum Density, Speaker Verification