THE VNPT-IT EMOTION TRANSPLANTATION APPROACH FOR VLSP 2022

Van Thang Nguyen, Thanh Long Luong, Huan Vu
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Abstract

Emotional speech synthesis is a challenging task in speech processing. To build an emotional Text-to-speech (TTS) system, one would need to have a quality emotional dataset of the target speaker. However, collecting such data is difficult, sometimes even impossible. This paper presents our approach that addresses the problem of transplanting a source speaker's emotional expression to a target speaker, one of the Vietnamese Language and Speech Processsing (VLSP) 2022 TTS tasks. Our approach includes a complete data pre-processing pipeline and two training algorithms. We first train a source speaker's expressive TTS model, then adapt the voice characteristics for the target speaker. Empirical results have shown the efficacy of our method in generating the expressive speech of a speaker under a limited training data regime.
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针对 VLSP 2022 的 VNPT-IT 情感移植方法
情感语音合成是语音处理中一项具有挑战性的任务。要建立一个情感文本到语音(TTS)系统,需要有一个高质量的目标说话人情感数据集。然而,收集此类数据十分困难,有时甚至是不可能的。本文介绍了我们的方法,该方法可解决将源说话者的情感表达移植到目标说话者身上的问题,这是越南语和语音处理(VLSP)2022 TTS 任务之一。我们的方法包括一个完整的数据预处理管道和两种训练算法。我们首先训练源说话者的表达式 TTS 模型,然后调整目标说话者的语音特征。经验结果表明,在有限的训练数据条件下,我们的方法能有效地生成说话人富有表现力的语音。
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