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This book discusses speaker recognition methods to deal with
realistic variable noisy environments. The text covers
authentication systems for; robust noisy background environments,
functions in real time and incorporated in mobile devices. The book
focuses on different approaches to enhance the accuracy of speaker
recognition in presence of varying background environments. The
authors examine: (a) Feature compensation using multiple background
models, (b) Feature mapping using data-driven stochastic models,
(c) Design of super vector- based GMM-SVM framework for robust
speaker recognition, (d) Total variability modeling (i-vectors) in
a discriminative framework and (e) Boosting method to fuse
evidences from multiple SVM models.
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