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Phonemic Restoration Based on the Movement Continuity of Articulation

机译:基于发音运动连续性的音位恢复

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Phonemic restoration describes one of human capabilities that can retrieve the defective speech signal after adding a certain noise. It is believed that the movement continuity of articulation is one of main factors for realizing the phonemic restoration. This paper proposes an effective method based on this consideration to retrieve missing speech signal and makes the relevant hypothesis verified to some degree. For the proposed method, the mapping relationship between acoustic and articulatory features is established based on deep neural network (DNN), where a hierarchical DNN architecture with bottleneck feature is realized to improve the performance for acoustic-to-articulatory inversion, then missing articulatory feature obtained from missing speech signal is restored with cubic spline function. 25 sentences are selected from the database MNGU0 and short durations of the sentences are replaced by zeros and/or noise for evaluating. Experimental results show that the proposed method can effectively improve perceptual evaluation of speech quality (PESQ) of the speech with missing signal. And these experimental results provide preliminary experimental clues for verifying the first hypothesis of phonemic restoration—coarticulation.
机译:音位恢复描述了一种人类能力,可以在添加一定噪声后恢复有缺陷的语音信号。可以认为,关节运动的连续性是实现音位恢复的主要因素之一。基于这种考虑,本文提出了一种有效的方法来检索丢失的语音信号,并在一定程度上验证了相关假设。对于所提出的方法,基于深度神经网络(DNN)建立了声音与发音特征之间的映射关系,其中实现了具有瓶颈特征的分层DNN体系结构,以提高声学到发音反演的性能,然后缺少发音特征通过三次样条函数恢复从丢失的语音信号中获得的信号。从数据库MNGU0中选择25个句子,并且句子的短持续时间被零和/或噪声代替以进行评估。实验结果表明,所提出的方法可以有效地提高缺少信号的语音的语音质量(PESQ)的感知评价。这些实验结果为验证音素恢复的第一个假设-共发音提供了初步的实验线索。

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