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A trainable Vietnamese speech synthesis system based on HMM

机译:基于HMM的可训练越南语音合成系统。

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This paper describes an approach to the realization of a trainable speech synthesis system using a technique whereby speech is directly synthesized from Hidden Markov models (HMMs), and apply it to the Vietnamese synthesis system. A series of data should be prepared before the training and synthesis process, including the collection of data, recording, labelling, the design of contextual property and problem sets. The whole training and synthesis process is based on the HMM-based Speech Synthesis System-2.0 (HTS-2.0) and it is automated. The final synthesis result shows that using this method to the Vietnamese synthesis system is feasible.
机译:本文介绍了一种使用可从隐马尔可夫模型(HMM)直接合成语音的技术来实现可训练语音合成系统的方法,并将其应用于越南语合成系统。在培训和综合过程之前,应准备一系列数据,包括数据收集,记录,标记,上下文属性和问题集的设计。整个训练和合成过程基于基于HMM的语音合成系统2.0(HTS-2.0),并且是自动化的。最终的合成结果表明,将该方法用于越南合成系统是可行的。

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