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Tone Quality Improvement of Bone Conduction Voice by Cepstrum-based Local Conversion Models

机译:基于倒谱的本地转换模型改善骨传导语音的音质

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摘要

A novel tone quality improvement method for a bone conduction voice is presented. In the present method, the tone quality of the bone conduction voice is converted to the similar quality of the air conduction voice. For the voice conversion, the present method uses a codebook, which consists of various paired code vectors of the bone and air conduction voices. The delta- and mel-cepstral coefficients are employed as the code vectors. The delta-cepstral coefficients in the code vectors are first quantized and classified by a neural-gas' network. The relationship between the mel-cepstral coefficients of the bone and air conduction voices in each class is described locally by a mathematical conversion model. The bone conduction voice is then converted into the clear air conduction voice by using those mathematical local models. The validity and effectiveness of the present method have been confirmed by applying it to the tone quality conversion problem of the real bone conduction voice.
机译:提出了一种新颖的骨传导语音音质改善方法。在本方法中,将骨传导声音的音质转换成空气传导声音的相似音质。对于语音转换,本方法使用一个码本,它由骨骼和空气传导语音的各种成对的码矢量组成。增量和梅尔倒谱系数被用作代码矢量。首先,通过神经气体网络对代码矢量中的倒频谱系数进行量化和分类。通过数学转换模型局部地描述了每个类别中的骨骼的mel-倒谱系数与空气传导声音之间的关系。然后,通过使用那些数学局部模型,将骨传导语音转换为清晰的空气传导语音。通过将本方法应用于真实的骨传导语音的音质转换问题,已经证实了本方法的有效性和有效性。

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