Improving Zero-Shot Voice Style Transfer via Disentangled Representation Learning
Siyang Yuan, Pengyu Cheng, Ruiyi Zhang, Weituo Hao, Zhe Gan, Lawrence Carin
摘要
Voice style transfer, also called voice conversion, seeks to modify one speaker's voice to generate speech as if it came from another (target) speaker. Previous works have made progress on voice conversion with parallel training data and pre-known speakers. However, zero-shot voice style transfer, which learns from non-parallel data and generates voices for previously unseen speakers, remains a challenging problem. We propose a novel zero-shot voice transfer method via disentangled representation learning. The proposed method first encodes speaker-related style and voice content of each input voice into separated low-dimensional embedding spaces, and then transfers to a new voice by combining the source content embedding and target style embedding through a decoder. With information-theoretic guidance, the style and content embedding spaces are representative and (ideally) independent of each other. On real-world VCTK datasets, our method outperforms other baselines and obtains state-of-the-art results in terms of transfer accuracy and voice naturalness for voice style transfer experiments under both many-to-many and zero-shot setups.
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引用它的顶会 Paper13
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- VoiceMixer: Adversarial Voice Style MixupSang-Hoon Lee, Ji-Hoon Kim, Hyunseung Chung, Seong-Whan LeeNeurIPS 2021 · 被引用 46 次
- Learning the Beauty in Songs: Neural Singing Voice BeautifierJinglin Liu, Chengxi Li, Yi Ren, Zhiying Zhu 等ACL 2022 · 被引用 25 次
- Retriever: Learning Content-Style Representation as a Token-Level Bipartite GraphDacheng Yin, Xuanchi Ren, Chong Luo, Yuwang Wang 等ICLR 2022 · 被引用 13 次
- StableVC: Style Controllable Zero-Shot Voice Conversion with Conditional Flow MatchingJixun Yao, Yuguang Yang, Yu Pan, Ziqian Ning 等AAAI 2025 · 被引用 13 次
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- CLUB: A Contrastive Log-ratio Upper Bound of Mutual InformationPengyu Cheng, Weituo Hao, Shuyang Dai, Jiachang Liu 等ICML 2020 · 被引用 512 次
- Improving Disentangled Text Representation Learning with Information-Theoretic GuidancePengyu Cheng, Martin Renqiang Min, Dinghan Shen, Christopher Malon 等ACL 2020 · 被引用 66 次
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