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Hybrid input spaces for exemplar-based noise robust speech recognition using coupled dictionaries

Boekbijdrage - Boekhoofdstuk Conferentiebijdrage

© 2015 EURASIP. Exemplar-based feature enhancement successfully exploits a wide temporal signal context. We extend this technique with hy brid input spaces that are chosen for a more effective separation of speech from background noise. This work investigates the use of two different hybrid input spaces which are formed by incorporating the full-resolution and modulation envelope spectral representations with the Mel features. A coupled output dictionary containing Mel exemplars, which are jointly extracted with the hybrid space exem plars, is used to reconstruct the enhanced Mel features for the ASR back-end. When compared to the system which uses Mel features only as input exemplars, these hybrid input spaces are found to yield improved word error rates on the AURORA-2 database especially with unseen noise cases.
Boek: Proceedings EUSIPCO 2015
Pagina's: 1676 - 1680
ISBN:9780992862633
Jaar van publicatie:2015
BOF-keylabel:ja
IOF-keylabel:ja
Authors from:Higher Education
Toegankelijkheid:Open