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arxiv: 1612.05168 · v1 · pith:RFIGG7DCnew · submitted 2016-12-15 · 💻 cs.SD

LIA system description for NIST SRE 2016

classification 💻 cs.SD
keywords recognitionspeakersub-systemssystemdevelopedeightextractioni-vector
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This paper describes the LIA speaker recognition system developed for the Speaker Recognition Evaluation (SRE) campaign. Eight sub-systems are developed, all based on a state-of-the-art approach: i-vector/PLDA which represents the mainstream technique in text-independent speaker recognition. These sub-systems differ: on the acoustic feature extraction front-end (MFCC, PLP), at the i-vector extraction stage (UBM, DNN or two-feats posteriors) and finally on the data-shifting (IDVC, mean-shifting). The submitted system is a fusion at the score-level of these eight sub-systems.

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