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Cross-lingual speaker adaptation for HMM-based speech synthesis considering differences between language-dependent average voices

机译:考虑基于语言的平均语音之间的差异,适用于基于HMM的语音合成的跨语言说话者适应

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This paper proposes an improved cross-lingual speaker adaptation technique with considering the differences between language-dependent average voices in a Speech-to-Speech Translation system. A state mapping based method had been introduced for cross-lingual speaker adaptation in HMM-based speech synthesis. In this method, the transforms estimated from the input language are applied to average voice models of the output language according to the state mapping information. However, the differences between average voices in the input and output language may degrade the adaptation performance. To reduce the differences, we apply a global linear transform to output average voice models, which minimizes the symmetric Kullback-Leibler divergence between two average voice models. From the experimental results, our approach could not obtain a better result than the original state mapping based method. This is because the global transform affects not only speaker characteristics but also language identity in acoustic features, and this degrades the synthetic speech quality. Therefore, it becomes clear that a technique which separate speaker and language identities is required.
机译:本文提出了一种改进的跨语言说话者自适应技术,该技术考虑了语音到语音翻译系统中依赖于语言的平均语音之间的差异。引入了一种基于状态映射的方法,用于基于HMM的语音合成中的跨语言说话者自适应。在该方法中,根据状态映射信息,将从输入语言估计的变换应用于输出语言的平均语音模型。但是,输入和输出语言中平均语音之间的差异可能会降低自适应性能。为了减少差异,我们对输出的平均语音模型应用了全局线性变换,这使两个平均语音模型之间的对称Kullback-Leibler差异最小。从实验结果来看,我们的方法无法获得比原始的基于状态映射的方法更好的结果。这是因为全局变换不仅影响说话者的特征,而且还会影响声学特征中的语言标识,并且这会降低合成语音的质量。因此,很明显,需要一种将说话者和语言身份分开的技术。

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