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HMM-Based Speech Synthesis Utilizing Glottal Inverse Filtering

机译:基于声门逆滤波的基于HMM的语音合成

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摘要

This paper describes an hidden Markov model (HMM)-based speech synthesizer that utilizes glottal inverse filtering for generating natural sounding synthetic speech. In the proposed method, speech is first decomposed into the glottal source signal and the model of the vocal tract filter through glottal inverse filtering, and thus parametrized into excitation and spectral features. The source and filter features are modeled individually in the framework of HMM and generated in the synthesis stage according to the text input. The glottal excitation is synthesized through interpolating and concatenating natural glottal flow pulses, and the excitation signal is further modified according to the spectrum of the desired voice source characteristics. Speech is synthesized by filtering the reconstructed source signal with the vocal tract filter. Experiments show that the proposed system is capable of generating natural sounding speech, and the quality is clearly better compared to two HMM-based speech synthesis systems based on widely used vocoder techniques.
机译:本文介绍了一种基于隐马尔可夫模型(HMM)的语音合成器,该技术利用声门逆滤波来生成自然发音的合成语音。在提出的方法中,语音首先通过声门逆滤波分解为声门源信号和声道滤波器模型,然后参数化为激励和频谱特征。源和过滤器功能在HMM框架中分别建模,并在合成阶段根据文本输入生成。声门激励是通过内插和级联自然声门流量脉冲而合成的,激励信号根据所需声源特性的频谱进行了进一步修改。通过使用声道滤波器对重构的源信号进行滤波来合成语音。实验表明,与两个基于广泛使用的声码器技术的基于HMM的语音合成系统相比,该系统能够生成自然的语音,并且质量明显更好。

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