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Detection of intonation in L2 English speech of native Mandarin learners

机译:L2本机普通话学习者英语语调中的语调

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We aim to detect salient mispronunciations in intonation of English speech uttered by Mandarin speakers. The goal of our project is to detect intonation errors and provide corrective feedback to English second language (ESL) learners. An intonational event includes the pitch accent and edge tone, and the intonation is closely related to the nuclear tone of an intonational phrase (IP). Hence, we first develop a pitch accent detector to delineate the scope of analysis in an utterance. Then we develop a nuclear tone detector to classify the intonation of the IP as either rising or falling. The pitch accent detector is a Gaussian mixture model using the features based on energy, pitch contour and the duration of the vowels. The intonation detector is a Gaussian discriminator using three features derived from the pitch contour. Annotated L2 English speech from 40 Mandarin speakers is used in a 10-fold cross-validation setting. The pitch accent detector achieves an accuracy of 72.86%, while its EER is 33.00%. The average classification performance of the intonation detector is 91.17% in accuracy and the EER is 8.60%.
机译:我们的目标是在普通话讲话中发出英语演讲中的突出沉重的错误分子。我们项目的目标是检测语调错误,并为英语第二语言(ESL)学习者提供纠正反馈。伦代其事件包括间距重音和边缘音,语调与州文化短语(IP)的核基调密切相关。因此,我们首先开发一个俯仰口音探测器来描绘话语中分析的范围。然后我们开发一种核鸣探测器,将IP的语调分类为上升或下降。俯仰口音检测器是一种使用基于能量,间距轮廓和元音的持续时间的特征的高斯混合模型。语调检测器是使用从间距轮廓衍生的三个特征的高斯判别器。注释的L2英文语音来自40个普通话扬声器的交叉验证设置中使用。俯仰口音探测器的准确性为72.86%,而其EER为33.00%。语调探测器的平均分类性能的精度为91.17%,eer为8.60%。

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