预测语音合成中单位选择的频谱和韵律参数

M. Dong, Haizhou Li
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引用次数: 0

摘要

我们通常建立一个韵律模型来预测韵律参数,这些参数将作为单元选择标准的一部分。上下文单位是语言符号,通常通过使用上下文单位的身份来保证单位的谱适当性。研究实际信号的频谱特性,在合成语音中经常发现频谱不匹配现象。在本文中,我们建议使用MFCC作为除韵律参数外的频谱参数。通过将光谱参数引入单位选择标准,可以通过统计模型来确定单位的适宜性。因此,可以减少连接单元之间异常光谱不匹配的可能性。实验表明,该方法有助于提高合成语音的质量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Predicting Spectral and Prosodic Parameters for Unit Selection in Speech Synthesis
We usually build a prosody model to predict the prosodic parameters, which will be used as part of the criteria for unit selection. Spectral appropriateness of units is usually ensured by using identities of context units, which are linguistic symbols. With looking into the spectral properties of the actual signal, the spectral mismatches are often perceived in the synthetic speech. In this paper, we propose to use MFCC as spectral parameters in addition to the prosodic parameters. By introducing the spectral parameters into the criteria for unit selection, the appropriateness of units can determined by statistical models. Thus the possibility of abnormal spectral mismatches between the concatenated units can be reduced. Experiments show that the approach helps to improve the quality of synthetic speech.
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