Evento
A Discriminative Condition-Aware Backend for Speaker Verification
Tipo del evento:
Conferencia
Nombre del evento:
2020 IEEE International Conference on Acoustics, Speech and Signal Processing
Fecha del evento:
04/05/2020
Institución Organizadora:
Institute of Electrical and Electronics Engineers;
Título de la revista:
Proceedings of the IEEE International Conference on Acoustics, Speech, and Signal Processing
Editorial:
Institute of Electrical and Electronics Engineers
ISSN:
2379-190X
e-ISSN:
1520-6149
Idioma:
Inglés
Clasificación temática:
Resumen
We present a scoring approach for speaker verification that mimics the standard PLDA-based backend process used in most current speaker verification systems. However, unlike the standard backends, all parameters of the model are jointly trained to optimize the binary cross-entropy for the speaker verification task. We further integrate the calibration stage inside the model, making the parameters of this stage depend on metadata vectors that represent the conditions of the signals. We show that the proposed backend has excellent outof-the-box calibration performance on most of our test sets, making it an ideal approach for cases in which the test conditions are not known and development data is not available for training a domainspecific calibration model.
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Eventos(ICC)
Eventos de INSTITUTO DE INVESTIGACION EN CIENCIAS DE LA COMPUTACION
Eventos de INSTITUTO DE INVESTIGACION EN CIENCIAS DE LA COMPUTACION
Eventos(OCA CIUDAD UNIVERSITARIA)
Eventos de OFICINA DE COORDINACION ADMINISTRATIVA CIUDAD UNIVERSITARIA
Eventos de OFICINA DE COORDINACION ADMINISTRATIVA CIUDAD UNIVERSITARIA
Citación
A Discriminative Condition-Aware Backend for Speaker Verification; 2020 IEEE International Conference on Acoustics, Speech and Signal Processing; Barcelona; España; 2020; 6604-6608
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