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An HMM approach for synthesizing amused speech with a controllable intensity of smile

机译:具有可控强度的微笑合成逗作用的迁移方法

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Smile is not only a visual expression. When it occurs together with speech, it also alters its acoustic realization. Being able to synthesize speech altered by the expression of smile can hence be an important contributor for adding naturalness and expressiveness in interactive systems. In this work, we present a first attempt to develop a Hidden Markov Model (HMM)-based synthesis system allowing to control the degree of smile in speech. It relies on a model interpolation technique, enabling speech-smile sentences with various smiling intensities to be generated. Sentences synthesized using this approach have been evaluated through a perceptual test. Encouraging results are reported here.
机译:微笑不仅是视觉表达。当它与语音一起发生时,它也会改变其声学实现。能够通过微笑的表达来合成改变的语音可以是在交互系统中增加自然和表现性的重要贡献者。在这项工作中,我们首次尝试开发隐藏的马尔可夫模型(HMM)的基础合成系统,允许控制语音中的微笑程度。它依赖于模型插值技术,使语音微笑句子具有各种微笑强度。使用这种方法合成的句子通过感知测试进行了评估。令人鼓舞的结果在这里报告。

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