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Singing Voice Conversion Based on Non-Parallel Corpus

机译:基于非平行语料库的演唱语音转换

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With the continuous development of deep learning, research on the conversion of singing voice has gradually enriched. The study of singing voice conversion comes from voice conversion. The singing voice conversion is to sing the voice of the target singer without changing the sound content of the source singer. In this paper, we use WORLD vocoder and speech signal processing toolkit (SPTK) to extract the acoustic characteristics of songs and use two mirrored generative adversarial Nets complete the conversion of acoustic features. The experiment realizes the singing conversion of non-parallel corpus. Subjective evaluations show that the songs after the conversion have a good performance in the quality and similarity of the songs.
机译:随着深度学习的不断发展,对歌声转换的研究逐渐丰富。唱歌语音转换的研究来自语音转换。演唱语音转换是在不更改源歌手声音内容的情况下演唱目标歌手的声音。在本文中,我们使用WORLD声码器和语音信号处理工具包(SPTK)来提取歌曲的声学特征,并使用两个镜像生成对抗网络完成声学特征的转换。实验实现了非平行语料库的演唱转换。主观评估表明,转换后的歌曲在歌曲的质量和相似性方面表现良好。

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