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Emotional speech synthesis using GMM-based voice conversion technique

机译:基于GMM的语音转换技术的情绪语音合成

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Because it is well known that prosodic features play an important role to express emotions, many researches have been conducted to analyze prosodic features and to construct emotional speech synthesis rules. On the other hand, the preceding papers also mention that voice quality control is necessary to improve for synthesizing emotional speech. In this report we propose an emotional speech synthesis method using GMM-based voice conversion technique. First we designed and recorded emotional (angry, sad, happy) and neutral speech databases. Then we synthesize emotional speech from neutral speech using the databases and evaluate the converted speech by objective and subjective experiments. The results show that the proposed method improve emotional quality of speech that have properly generated emotional prosody. In this paper, we report our emotional speech database, the voice conversion method and the experimental results.
机译:因为众所周知,韵律特征发挥着表达情绪的重要作用,因此已经进行了许多研究来分析韵律特征并构建情绪语音合成规则。 另一方面,前面的论文还提到了语音质量控制对于改善综合情绪语音是必要的。 在本报告中,我们使用基于GMM的语音转换技术提出了一种情绪语音合成方法。 首先,我们设计和录制了情感(愤怒,悲伤,快乐)和中立的语音数据库。 然后,我们使用数据库综合来自中立讲话的情绪演讲,并通过客观和主观实验评估转换的演讲。 结果表明,该方法提高了良好产生的情绪韵律的情感质量。 在本文中,我们报告了我们的情绪语音数据库,语音转换方法和实验结果。

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