We propose a hybrid approach to foreign accent recognition combining both phonotactic and spectral based systems by treating the problem as a spoken language recognition task. We extract speech attribute features that represent speech and acoustic cues reflecting foreign accents of a speaker to obtain feature streams that are modeled with the i-vector methodology. Testing on the Finnish Language Proficiency exam corpus, we find our proposed technique to achieve a significant performance improvement over the state-of-the-art systems using only spectral based features.
Hamid Behravan, Ville Hautamauki, SINISCALCHI, S.M., Tomi Kinnunen, Chin Hui Lee (2014). Introducing attribute features to foreign accent recognition. In IEEE ICASSP (pp. 5332-5336) [10.1109/ICASSP.2014.6854621].
Introducing attribute features to foreign accent recognition
SINISCALCHI, SABATO MARCO;
2014-01-01
Abstract
We propose a hybrid approach to foreign accent recognition combining both phonotactic and spectral based systems by treating the problem as a spoken language recognition task. We extract speech attribute features that represent speech and acoustic cues reflecting foreign accents of a speaker to obtain feature streams that are modeled with the i-vector methodology. Testing on the Finnish Language Proficiency exam corpus, we find our proposed technique to achieve a significant performance improvement over the state-of-the-art systems using only spectral based features.File | Dimensione | Formato | |
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