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Parameter generation algorithm considering Modulation Spectrum for HMM-based speech synthesis

机译:基于HMM的语音合成中考虑调制频谱的参数生成算法

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This paper proposes a novel parameter generation algorithm for high-quality speech generation in Hidden Markov Model (HMM)-based speech synthesis. One of the biggest issues causing significant quality degradation is the over-smoothing effect often observed in generated parameter trajectories. Global Variance (GV) is known as a feature well correlated with the over-smoothing effect and a metric on the GV of the generated parameters is effectively used as a penalty term in the conventional parameter generation. However, the quality of the synthetic speech is far from that of the natural speech. Recently, we have found that a Modulation Spectrum (MS) of the generated parameters, which is also regarded as an extension of the GV, is more sensitively correlated with the over-smoothing effect than the GV. This paper incorporates a metric on the MS as a new penalty term in the proposed parameter generation algorithm. The experimental results demonstrate that the proposed parameter generation algorithm considering the MS yields significant improvements in synthetic speech quality compared to the conventional parameter generation algorithm considering the GV.
机译:本文提出了一种基于隐马尔可夫模型(HMM)的语音合成中高质量语音生成的新参数生成算法。导致质量显着下降的最大问题之一是经常在生成的参数轨迹中观察到的过度平滑效果。全局方差(GV)被认为是与过度平滑效果紧密相关的功能,并且在常规参数生成中,对生成参数的GV的度量有效地用作惩罚项。但是,合成语音的质量与自然语音的质量相差甚远。最近,我们发现生成参数的调制频谱(MS)(也被视为GV的扩展)比GV更敏感地与过度平滑效果相关。本文在建议的参数生成算法中将MS上的度量作为新的惩罚项。实验结果表明,与传统的考虑GV的参数生成算法相比,该建议的考虑MS的参数生成算法在合成语音质量上有显着提高。

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