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Speech-laughs: An HMM-based approach for amused speech synthesis

机译:语音笑:基于HMM的有趣语音合成方法

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This paper presents an HMM-based synthesis approach for speechlaughs. The building stone of this project was the idea of the co-occurrence of smile and laughter bursts in varying proportions within amused speech utterances. A corpus with three complementary speaking styles was used to train the underlying HMM models: neutral speech, speech-smile, and finally laughter in different articulatory configurations. Two types of speech-laughs were then synthesized: one made by combining neutral speech and laughter bursts, and the other made by combining speech-smile and laughter bursts. Synthesized stimuli were then rated in terms of perceived amusement and naturalness levels. Results show the compound effect of both laughter bursts and smile on both amusement and naturalness and inspire interesting perspectives.
机译:本文提出了一种基于HMM的语音笑声综合方法。该项目的基石是在有趣的语音中以不同比例同时出现微笑和笑声的想法。具有三种互补说话风格的语料库被用来训练基本的HMM模型:中性语音,语音微笑以及最终在不同发音配置下的笑声。然后合成了两种类型的语音笑声:一种是通过将中性语音和笑声爆发结合起来,另一种是通过将语音笑容和笑声爆发结合起来来进行的。然后根据感知到的娱乐性和自然水平对合成刺激进行评分。结果表明,笑声爆发和微笑对娱乐和自然的双重影响,并激发了有趣的观点。

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