Abstract:Abstract-In speaker verification (SV) systems based on Gaussian Mixture Model-Universal Background Model (GMM-UBM), normalization is an important component in the decision stage. Many normalization methods including the T-and Znorms, have been proposed and investigated and these have contributed to state-of-the-art SV systems which have extremely low equal-error rates (EERs). In this paper, we consider application of both T-and Z-norms to a carefully selected subset of speakers using a data driven approach whi… Show more
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