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Efficient personalized mispronunciation detection of Taiwanese-accented English speech based on unsupervised model adaptation and dynamic sentence selection

机译:基于无监督模型自适应和动态句子选择的有效的个性化英语口音发音

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摘要

This study presents an efficient approach to personalized mispronunciation detection of Taiwanese-accented English. The main goal of this study was to detect frequently occurring mispronunciation patterns of Taiwanese-accented English instead of scoring English pronunciations directly. The proposed approach quickly identifies personalized mispronunciations of students, enabling English teachers to spend more time on teaching or rectifying student pronunciations. In this approach, an unsupervised model adaptation method was performed on the universal acoustic models to recognize the speech of a specific speaker with mispronunciations and a Taiwanese accent. A dynamic sentence selection algorithm that considers the mutual information of the related mispronunciations is proposed to select a sentence containing the most undetected mispronunciations to quickly detect personalized mispronunciations. The experimental results show that the proposed unsupervised adaptation approach obtains an accuracy improvement of approximately 2.1% in the recognition of Taiwanese-accented English speech.
机译:这项研究提出了一种有效的方法来个性化台湾口音英语的发音。这项研究的主要目的是检测台湾口音英语中经常发生的错误发音模式,而不是直接对英语发音进行评分。提出的方法可以快速识别学生的个性化发音,使英语老师可以花更多的时间在教学或纠正学生的发音上。在这种方法中,对通用声学模型执行了无监督的模型自适应方法,以识别带有发音和台湾口音的特定说话者的语音。提出了一种动态句子选择算法,该算法考虑了相关的发音错误的相互信息,以选择包含最多未检测到的发音错误的句子,以快速检测个性化的发音错误。实验结果表明,所提出的无监督自适应方法在识别台湾口音为英语的语音方面获得了约2.1%的准确性提高。

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