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Prosodic Reading Style Simulation for Text-to-Speech Synthesis

机译:韵律阅读风格的文本到语音合成模拟

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摘要

The simulation of different reading styles (mainly by adapting prosodic parameters) can improve the naturalness of synthetic speech and supports a more intelligent human machine interaction. The article exemplarily investigates the reading styles News and Tale. For comparison, all examined texts contained the same genre-neutral paragraphs which have been read without a specific style instruction: Normal but also faster, slower, rather monotone or more emotional which led to corresponding artificial styles. The measured original intonation and durations style patterns control a diphone synthesizer (mapped contours). Additionally, the patterns are used to train a neural network (NN) model. Within two separate listening tests, different stimuli presented as original signal/style, respectively, with mapped or NN generated prosodic contours have been evaluated. The results show that both, original utterances and artificial styles are basically perceived in their intended reading styles. Some reciprocal confusions indicate the similarities between different styles like News and Fast, Tale and Slow as well as Tale and Expressive. The confusions are more likely for synthetic speech. To produce e. g. the complex style Tale, different features of the prosodic variations Slow and Expressive are combined. The training method for the synthetic styles requires a further improvement.
机译:模拟不同的阅读方式(主要是通过调整韵律参数)可以提高合成语音的自然度,并支持更智能的人机交互。这篇文章示例性地研究了《新闻和故事》的阅读风格。为了进行比较,所有经检查的文本都包含相同的体裁中性段落,而无需特殊的样式说明即可阅读:正常但又更快,更慢,更单调或更富有情感,从而导致了相应的人工样式。测得的原始音调和持续时间样式样式控制了双音合成器(映射轮廓)。另外,这些模式用于训练神经网络(NN)模型。在两个单独的听力测试中,已经评估了分别以原始信​​号/样式呈现的不同刺激,映射的或NN生成的韵律轮廓。结果表明,原始话语和人工风格基本上都可以从其预期的阅读风格中感受到。一些相互的混淆表明不同样式之间的相似之处,例如“新闻”和“快速”,“故事”和“慢”以及“故事”和“表达”。合成语音更容易造成混淆。产生e。 G。复杂的故事风格,韵律变体慢和表现力的不同特征相结合。综合风格的训练方法需要进一步改进。

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