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DIEZ SÁNCHEZ, M. BURGET, L. MATĚJKA, P.
Originální název
Speaker Diarization based on Bayesian HMM with Eigenvoice Priors
Typ
článek ve sborníku ve WoS nebo Scopus
Jazyk
angličtina
Originální abstrakt
Nowadays, most speaker diarization methods address the task in two steps: segmentation of the input conversation into (preferably) speaker homogeneous segments, and clustering. Generally, different models and techniques are used for the two steps. In this paper we present a very elegant approach where a straightforward and efficient Variational Bayes (VB) inference in a single probabilistic model addresses the complete SD problem. Our model is a Bayesian Hidden Markov Model, in which states represent speaker specific distributions and transitions between states represent speaker turns. As in the ivector or JFA models, speaker distributions are modeled by GMMs with parameters constrained by eigenvoice priors. This allows to robustly estimate the speaker models from very short speech segments. The model, which was released as open source code and has already been used by several labs, is fully described for the first time in this paper. We present results and the system is compared and combined with other state-of-the-art approaches. The model provides the best results reported so far on the CALLHOME dataset.
Klíčová slova
Speaker diarization, speaker recognition
Autoři
DIEZ SÁNCHEZ, M.; BURGET, L.; MATĚJKA, P.
Vydáno
26. 6. 2018
Nakladatel
International Speech Communication Association
Místo
Les Sables d´Olonne
ISSN
2312-2846
Periodikum
Proceedings of Odyssey: The Speaker and Language Recognition Workshop Odyssey 2014, Joensuu, Finland
Ročník
2018
Číslo
6
Stát
Finská republika
Strany od
147
Strany do
154
Strany počet
8
URL
https://www.fit.vut.cz/research/publication/11786/
BibTex
@inproceedings{BUT155067, author="Mireia {Diez Sánchez} and Lukáš {Burget} and Pavel {Matějka}", title="Speaker Diarization based on Bayesian HMM with Eigenvoice Priors", booktitle="Proceedings of Odyssey 2018", year="2018", journal="Proceedings of Odyssey: The Speaker and Language Recognition Workshop Odyssey 2014, Joensuu, Finland", volume="2018", number="6", pages="147--154", publisher="International Speech Communication Association", address="Les Sables d´Olonne", doi="10.21437/Odyssey.2018-21", issn="2312-2846", url="https://www.fit.vut.cz/research/publication/11786/" }