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An HMM-Based Mandarin Chinese Text-To-Speech System

机译:基于HMM的普通话语音合成系统

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In this paper we present our Hidden Markov Model (HMM)-based, Mandarin Chinese Text-to-Speech (TTS) system. Mandarin Chinese or Putonghua, "the common spoken language", is a tone language where each of the 400 plus base syllables can have up to 5 different lexical tone patterns. Their segmental and supra-segmental information is first modeled by 3 corresponding HMMs, including: (1) spectral envelop and gain; (2) voiced/unvoiced and fundamental frequency; and (3) segment duration. The corresponding HMMs are trained from a read speech database of 1,000 sentences recorded by a female speaker. Specifically, the spectral information is derived from short-time LPC spectral analysis. Among all LPC parameters, Line Spectrum Pair (LSP) has the closest relevance to the natural resonances or the "formants" of a speech sound and it is selected to parameterize the spectral information. Furthermore, the property of clustered LSPs around a spectral peak justify augmenting LSPs with their dynamic counterparts, both in time and frequency, in both HMM modeling and parameter trajectory synthesis. One hundred sentences synthesized by 4 LSP-based systems have been subjectively evaluated with an AB comparison test. The listening test results show that LSP and its dynamic counterpart, both in time and frequency, are preferred for the resultant higher synthesized speech quality.
机译:在本文中,我们介绍了基于隐马尔可夫模型(HMM)的汉语普通话语音转换(TTS)系统。普通话或普通话是“通用语言”,是一种语音语言,在400多个基本音节中,每个音节最多可以具有5种不同的词汇音调模式。他们的分段和超分段信息首先由3个对应的HMM建模,包括:(1)频谱包络和增益; (2)有声/无声和基频; (3)段持续时间。相应的HMM是从女性演讲者记录的1,000个句子的阅读语音数据库中训练出来的。具体而言,光谱信息是从短时LPC光谱分析得出的。在所有LPC参数中,线谱对(LSP)与语音的自然共振或“共振峰”具有最密切的关联,因此选择它来参数化频谱信息。此外,在HMM建模和参数轨迹合成中,围绕频谱峰值的群集LSP的属性证明了在时间和频率上使用动态对应的增强LSP是合理的。由4个基于LSP的系统合成的一百个句子已通过AB比较测试进行了主观评估。收听测试结果表明,LSP及其动态对应的时间和频率都比合成语音质量更高。

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