Automatic pronunciation assessment for language learners with acoustic-phonetic features

Vaishali V. Patil, Preeti Rao · 2012

Computer-aided spoken language learning has been an important area of research. The assessment of a learner‟s pronunciation with respect to native pronunciation lends itself to automation using speech recognition technology. However phone recognition accuracies achievable in state-of-the-art automatic speech recognition systems make their direct application challenging. In this work, linguistic knowledge and the knowledge of speech production are incorporated to obtain a system that discriminates clearly between native and non-native speech. Experimental results on aspirated consonants of Hindi by 10 speakers shows that acousticphonetic features outperform traditional cepstral features in a statistical likelihood based assessment of pronunciation.

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