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Building HMM based unit-selection speech synthesis system using synthetic speech naturalness evaluation score

机译:使用合成语音自然性评估分数构建基于HMM的单元选择语音合成系统

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This paper proposes a unit-selection and waveform concatenation speech synthesis system based on synthetic speech naturalness evaluation. A Support Vector Machine (SVM) and Log Likelihood Ratio (LLR) based synthetic speech naturalness evaluation system was introduced in our previous work. In this paper, the evaluation system is improved in three aspects. Finally, a unit-selection and concatenation waveform speech synthesis system is built on the base of the synthetic speech naturalness evaluation system. Optimum unit sequence is chosen through the re-scoring for the N-best path. Subjective listening tests show the proposed synthetic speech evaluation based speech synthesis system significantly outperforms the traditional unit-selection speech synthesis system.
机译:提出了一种基于合成语音自然性评价的单元选择和波形级联语音合成系统。在我们以前的工作中介绍了基于支持向量机(SVM)和对数似然比(LLR)的合成语音自然度评估系统。本文从三个方面对评估体系进行了改进。最后,在综合语音自然性评价系统的基础上,建立了单元选择和级联波形语音综合系统。通过对N条最佳路径进行重新评分,可以选择最佳的单位顺序。主观听觉测试表明,所提出的基于合成语音评估的语音合成系统明显优于传统的单元选择语音合成系统。

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