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Uniform Concatenative Excitation Model for Synthesising Speech without Voiced/Unvoiced Classification

机译:用于综合演讲的均匀连接励磁模型,无浊音/清音分类

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In general, speech synthesis using the source-filter model of speech production requires the classification of speech into two classes (voiced and unvoiced) which is prone to errors. For voiced speech, the input of the synthesis filter is an approximately periodic excitation, whereas it is a noise signal for unvoiced. This paper proposes an excitation model which can be used to synthesise both voiced and unvoiced speech, thus overcoming the problem of degradation in speech quality caused by those classification errors. Basically this model consists of representing two contiguous segments of the residual signal pitchsynchronously. The first segment is represented by the original residual in a fraction of the period around the pitch-mark (obtained using an epoch detector), in order to capture the most important aspects of the residual during voiced speech. Instead, the remaining part of the period is modelled by a set of parameters of the amplitude envelope of the residual waveform and its energy. The technique for synthesising the excitation combines these shaping parameters with a novel method for regeneration of the residual waveform and a method to mix a periodic signal with noise based on the Harmonic plus Noise model. Besides producing high-quality speech, this technique is computationally fast.
机译:通常,使用语音生产源滤波器模型的语音合成需要语音分类为两类(浊音和清音),这易于错误。对于具有浊音的语音,合成滤波器的输入是大致周期性的激励,而这是一种清晰的噪声信号。本文提出了一种激励模型,可用于综合浊音和清音语音,从而克服由这些分类错误引起的语音质量下降的问题。基本上该模型包括表示剩余信号的两个连续段间同步。第一段由围绕间距标记的周期的一部分(使用偶上侦查器获得)的一部分内的原始残留物表示,以捕获在浊音中剩余的最重要方面。相反,该时段的剩余部分由残余波形的幅度包络的幅度包络的一组参数建模。合成激励的技术将这些成形参数与基于谐波加噪声模型的噪声混合的新方法和方法来结合了这些成形参数。除了产生高质量的言论外,这种技术还在计算上快速。

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