语音合成中情感韵律迁移的韵律表征互信息估计

Guangyan Zhang, Shirong Qiu, Ying Qin, Tan Lee
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引用次数: 8

摘要

端到端韵律传递系统旨在将语音韵律从一个说话者传递到另一个说话者。一个主要的应用是用一个新的说话者的声音产生情感语言。端到端系统使用韵律的中间表示,其中包含说话者和情感相关信息。本研究解决了韵律表征中情绪与说话人相关因素之间相互信息的估计问题。应用互信息神经估计器(MINE)来测量高维连续韵律嵌入和离散说话人/情感标签之间的互信息。实验结果表明:1)端到端系统生成的韵律表示确实包含了情感和说话人的信息;2)互信息由输入到参考编码器的声学特征类型确定;3)对数F0特征的归一化对于增加韵律表示中的情绪相关信息非常有效;4)对抗性学习可用于韵律表示中说话人信息的减少。这些结果对进一步开发一种优化的、实用的情感韵律迁移系统具有一定的指导意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Estimating Mutual Information in Prosody Representation for Emotional Prosody Transfer in Speech Synthesis
An end-to-end prosody transfer system aims to transfer the speech prosody from one speaker to another speaker. One major application is the generation of emotional speech with a new speaker’s voice. The end-to-end system uses an intermediate representation of prosody, which encompasses both speaker and emotion related information. The present study tackles the problem of estimating the mutual information between emotion and speaker-related factors in the prosody representation. A mutual information neural estimator (MINE) which could measure the mutual information between high-dimensional continuous prosody embedding and discrete speaker/emotion label is applied. The experimental results show that: 1) the prosody representation generated by the end-to-end system indeed contains both emotion and speaker information; 2) The mutual information would be determined by the type of input acoustic features to the reference encoder; 3) normalization for the log F0 feature is very effective in increasing emotion-related information in the prosody representation; 4) adversarial learning can be applied to reduce speaker information in the prosody representation. These results are useful to the further development of an optimal and practical emotional prosody transfer systems.
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