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Investigation of prosodie FO layers in hierarchical FO modeling for HMM-based speech synthesis

机译:基于HMM的语音合成的分层FO建模中的prosodie FO层研究

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To address the overall-micro modeling issue of current prosody model in HMM-based speech synthesis, a hierarchical FO modeling method has been proposed, in which different kinds of pittch patterns are characterized by different prosodie layers and an minimum generation error (MGE) training framework is used to simultaneous optimize FO models of all layers. This paper investigate the importance of prosodie layers and relationship between prosodie characteristics by this hierarchical FO modeling method. Cluster number of each layer is modified to balance the accuracy and robustness of each layer, and thus other layers would be influenced due to the additive structure. The importance and relationship are reflected by different systems with different cluster number ratios. The experimental results and conclusion are valuable and helpful to design a hierarchical FO modeling system.
机译:为了解决基于HMM的语音合成中当前韵律模型的整体微观建模问题,提出了一种分层FO建模方法,该方法中,通过不同的prosodie层和最小生成误差(MGE)训练来表征不同类型的点胶模式。框架用于同时优化所有层的FO模型。本文通过这种分层的FO建模方法研究了prosodie层的重要性以及prosodie特性之间的关系。修改每层的簇数以平衡每层的准确性和鲁棒性,因此其他层将由于累加结构而受到影响。重要性和关系由具有不同簇数比率的不同系统反映。实验结果和结论对设计分层的FO建模系统具有重要的参考价值。

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