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Preliminary experiments in speaker verification using time-dependent largest Lyapunov exponents
Authors:Adriano Petry  Dante Augusto Couto Barone  
Affiliation:a Instituto de Informática, Universidade Federal do Rio Grande do Sul Av. Bento Gonçalves, 9500 Campus do Vale, Bloco IV, Bairro Agronomia, CEP 91501-970, Porto Alegre, RS, Brazil;b Unidade de Gestão do Conhecimento Computação, Universidade Luterana do Brasil, Rua Miguel Tostes 101, Bairro São Luis, CEP 92420-280, Canoas, RS, Brazil
Abstract:The characterization of a speech signal using non-linear dynamical features has been the focus of intense research lately. In this work, the results obtained with time-dependent largest Lyapunov exponents (TDLEs) in a text-dependent speaker verification task are reported. The baseline system used Gaussian mixture models (GMMs), obtained from the adaptation of a universal background model (UBM), for the speaker voice models. Sixteen cepstral and 16 delta cepstral features were used in the experiments, and it is shown how the addition of TDLEs can improve the system’s accuracy. Cepstral mean subtraction was applied to all features in the tests for channel equalization, and silence frames were discarded. The corpus used, obtained from a subset of the Center for Spoken Language Understanding (CSLU) Speaker Recognition corpus, consisted of telephone speech from 91 different speakers.
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