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A Novel Discriminative Method for Pronunciation Quality Assessment

机译:语音质量评估的新判别方法

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摘要

In this paper, we presented a novel method for automatic pronunciation quality assessment. Unlike the popular "Goodness of Pronunciation" (GOP) method, this method does not map the decoding confidence into pronunciation quality score, but differentiates the different pronunciation quality utterances directly. In this method, the student's utterance need to be decoded for two times. The first-time decoding was for getting the time points of each phone of the utterance by a forced alignment using a conventional trained acoustic model (AM). The second-time decoding was for differentiating the pronunciation quality for each triphone using a specially trained AM, where the triphones in different pronunciation qualities were trained as different units, and the model was trained in discriminative method to ensure the model has the best discrimination among the triphones whose names were same but pronunciation quality scores were different. The decoding network in the second-time decoding included different pronunciation quality triphones, so the phone-level scores can be obtained from the decoding result directly. The phone-level scores were combined into the sentence-level scores using maximum entropy criterion. The experimental results shows that the scoring performance was increased significantly compared to the GOP method, especially in sentence-level.
机译:在本文中,我们提出了一种新的自动语音质量评估方法。与流行的“发音优度”(GOP)方法不同,此方法不会将解码置信度映射到语音质量得分,而是直接区分不同的语音质量话语。在这种方法中,学生的话语需要被解码两次。首次解码是使用常规训练的声学模型(AM),通过强制对齐来获取发声的每个电话的时间点。第二次解码是使用经过特殊训练的AM来区分每个三音机的语音质量,其中将不同音质的三音机训练为不同的单位,并使用判别方法训练模型,以确保模型之间的最佳区分度。名称相同但语音质量得分不同的三音节。二次解码中的解码网络包含不同的语音质量三音器,因此可以直接从解码结果中获得电话级别的分数。使用最大熵准则将电话级别分数合并为句子级别分数。实验结果表明,与GOP方法相比,评分性能显着提高,尤其是在句子层次上。

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