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Intonation classification for L2 English speech using multi-distribution deep neural networks

机译:基于多分布深度神经网络的L2英语语音语调分类

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This paper investigates the use of multi-distribution deep neural networks (MD-DNNs) for automatic intonation classification in second-language (L2) English speech. If a classified intonation is different from the target one, we consider that mispronunciation is detected and appropriate diagnostic feedback can be provided thereafter. To transcribe speech data for intonation classification, we propose the RULF labels which are used to transcribe an intonation as rising, upper, lower or falling. These four types of labels can be further merged into two groups - rising and falling. Based on the annotated data from 100 Mandarin and 100 Cantonese learners, we develop an intonation classifier, which considers only 8 frames (i.e., 80 ms) of pitch value prior to the end of the pitch contour over an intonational phrase (IP). This classifier determines the intonation of L2 English speech as either rising or falling with an accuracy of 93.0%.
机译:本文研究了使用多分布深度神经网络(MD-DNN)进行第二语言(L2)英语语音的自动语调分类。如果分类语气与目标语调不同,我们认为可以检测到错误发音,并且此后可以提供适当的诊断反馈。为了转录语音数据以进行语调分类,我们提出了RULF标签,该标签用于将语调转录为上升,上升,下降或下降。这四种类型的标签可以进一步合并为两组-上升和下降。基于来自100名普通话和100名粤语学习者的注释数据,我们开发了语调分类器,该语调分类器仅考虑8个音高值(即80毫秒)的音高值,然后才将其变成国际化的词组(IP)。该分类器将L2英语语音的语调确定为上升或下降,准确度为93.0%。

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