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Continuous Expressive Speaking Styles Synthesis based on CVSM and MR-IIMM

机译:基于CVSM和MR-IIMM的连续表达说话风格综合

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This paper introduces a continuous system capable of automatically producing the most adequate speaking style to synthesize a desired target text. This is done thanks to a joint modeling of the acoustic and lexical parameters of the speaker models by adapting the CVSM projection of the training texts using MR-HMM techniques. As such, we consider that as long as sufficient variety in the training data is available, we should be able to model a continuous lexical space into a continuous acoustic space. The proposed continuous automatic text to speech system was evaluated by means of a perceptual evaluation in order to compare them with traditional approaches to the task. The system proved to be capable of conveying the correct expressiveness (average adequacy of 3.6) with an expressive strength comparable to oracle traditional expressive speech synthesis (average of 3.6) although with a drop in speech quality mainly due to the semi-continuous nature of the data (average quality of 2.9). This means that the proposed system is capable of improving traditional neutral systems without requiring any additional user interaction.
机译:本文介绍了一个连续系统,该系统能够自动产生最适当的说话风格以合成所需的目标文本。这是由于使用MR-HMM技术调整了训练文本的CVSM投影,从而对说话者模型的声学和词汇参数进行了联合建模而完成的。因此,我们认为只要训练数据有足够的多样性,我们就应该能够将连续的词法空间建模为连续的声学空间。拟议的连续文本自动语音转换系统是通过感知评估来评估的,以便将其与传统的方法进行比较。该系统被证明能够传达正确的表达能力(平均充分性为3.6),其表达强度可与oracle传统的表达性语音合成(平均为3.6)相提并论,尽管语音质量有所下降,这主要是由于语音的半连续性所致。数据(平均质量为2.9)。这意味着,所提出的系统能够改进传统的中立系统,而无需任何其他用户交互。

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