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  4. Synthetic References for Template-based ASR using Posterior Features
 
conference paper

Synthetic References for Template-based ASR using Posterior Features

Soldo, Serena  
•
Magimai.-Doss, Mathew  
•
Bourlard, Hervé  
2012
Interspeech 2012
Interspeech

Recently, the use of phoneme class-conditional probabilities as features (posterior features) for template-based ASR has been proposed. These features have been found to generalize well to unseen data and yield better systems than standard spectral-based features. In this paper, motivated by the high quality of current text-to-speech systems and the robustness of posterior features toward undesired variability, we investigate the use of synthetic speech to generate reference templates. The use of synthetic speech in template-based ASR not only allows to address the issue of in-domain data collection but also expansion of vocabulary. Using 75- and 600-word task-independent and speaker-independent setup on Phonebook database, we investigate different synthetic voices produced by the Festival HTS-based synthesizer trained on CMU ARCTIC databases. Our study shows that synthetic speech templates can yield performance comparable to the natural speech templates, especially with synthetic voices that have high intelligibility.

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Type
conference paper
DOI
10.21437/Interspeech.2012-573
Author(s)
Soldo, Serena  
Magimai.-Doss, Mathew  
Bourlard, Hervé  
Date Issued

2012

Published in
Interspeech 2012
Start page

2146

End page

2149

Subjects

Posterior features

•

speech recognition

•

synthetic reference templates.

•

template-based approach

Written at

EPFL

EPFL units
LIDIAP  
Event nameEvent place
Interspeech

Portland, Oregon, USA

Available on Infoscience
December 19, 2013
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/98471
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