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Speech variability compensation for expressive speech synthesis

机译:用于表达性语音合成的语音可变性补偿

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摘要

In conventional HMM-based speech synthesis, the algorithm for generating a high-quality reading style (neutral) speech has been well investigated. However, the human-like expressive speech synthesis is still rather far from practicability, which is caused by many factors. One of the influential factors is that the speech variability caused by speaker's arousal is rarely emphasized in speech synthesis. Accordingly, this paper proposed a novel speech synthesis method considering the speech variability. Two major advantages are highlighted by considering the speech variability. The first advantage is that the proposed method is capable of generating the time-variant human-like and expressive speech. The second one is to increase the diversity of expressive speech and to improve the drawback of traditional speech synthesis system with the monotonous characteristics of speech. The experimental result shows that the proposed method can improve the diversity capability of synthetic speech and successfully achieve the more expressive speech compare to conventional HTS one.
机译:在传统的基于HMM的语音合成中,已经很好地研究了用于生成高质量阅读风格(中性)语音的算法。但是,由许多因素引起的类似于人的表达性语音合成距离实用性还很远。影响因素之一是语音合成中很少强调说话人唤醒引起的语音变异性。因此,本文提出了一种考虑语音可变性的新型语音合成方法。通过考虑语音可变性,突出了两个主要优点。第一个优点是,所提出的方法能够产生时变的类人语言和表达性语音。第二个是增加表达性语音的多样性,并改善具有语音单调特征的传统语音合成系统的缺点。实验结果表明,与传统的HTS相比,该方法可以提高合成语音的分集能力,并成功实现更具表现力的语音。

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