Simple methods for improving speaker-similarity of HMM-based speech synthesis

J. Yamagishi, Simon King
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引用次数: 18

Abstract

In this paper we revisit some basic configuration choices of HMM-based speech synthesis, such as waveform sampling rate, auditory frequency warping scale and the logarithmic scaling of F0, with the aim of improving speaker similarity which is an acknowledged weakness of current HMM-based speech synthesisers. All of the techniques investigated are simple but, as we demonstrate using perceptual tests, can make substantial differences to the quality of the synthetic speech. Contrary to common practice in automatic speech recognition, higher waveform sampling rates can offer enhanced feature extraction and improved speaker similarity for speech synthesis. In addition, a generalized logarithmic transform of F0 results in larger intra-utterance variance of F0 trajectories and hence more dynamic and natural-sounding prosody.
提高基于hmm的语音合成中说话人相似度的简单方法
本文回顾了基于hmm的语音合成的一些基本配置选择,如波形采样率、听觉频率扭曲尺度和F0的对数缩放,旨在改善当前基于hmm的语音合成器的公认弱点——说话者相似性。所有研究的技术都很简单,但是,正如我们使用感知测试所证明的那样,可以对合成语音的质量产生实质性的影响。与自动语音识别的常见做法相反,更高的波形采样率可以为语音合成提供增强的特征提取和改进的说话人相似度。此外,F0的广义对数变换使F0轨迹的话语内方差更大,从而使韵律更加动态和自然。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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