Text-dependent speaker recognition using PLDA with uncertainty propagation
Themos Stafylakis(National Technical University of Athens), Patrick Kenny(École de Technologie Supérieure), Pierre Ouellet, Juan J. Pérez(Universitat Politècnica de Catalunya), Marcel Kockmann(Brno University of Technology), Pierre Dumouchel(École de Technologie Supérieure)
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Abstract
In this paper, we apply and enhance the i-vector-PLDA paradigm to text-dependent speaker recognition. Due to its origin in text-independent speaker recognition, this paradigm does not make use of the phonetic content of each utterance. Moreover, the uncertainty in the i-vector estimates should be taken into account in the PLDA model, due to the short duration of the utterances. To bridge this gap, a phrase-dependent PLDA model with uncertainty propagation is introduced. We examined it on the RSR-2015 dataset and we show that despite its low channel variability, improved results over the GMM-UBM model are attained.
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