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Automatic pronunciation assessment for language learners with acoustic-phonetic features

机译:语言学习者的自动发音评估,具有声音特征

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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 acoustic-phonetic features outperform traditional cepstral features in a statistical likelihood based assessment of pronunciation.
机译:计算机辅助口语语言学习一直是一个重要的研究领域。学习者对母语发音的发音的评估会使用语音识别技术来自动化。然而,在最先进的自动语音识别系统中可实现的电话识别精度使其直接应用具有挑战性。在这项工作中,纳入语言知识和语音生产的知识,以获得一个在本地和非原生语音之间清楚地辨别的系统。通过10个扬声器对印地语的吸气辅音的实验结果表明,声学特征在于基于统计的发音评估中的传统倒谱特征。

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