PerformSinger: Multimodal Singing Voice Synthesis Leveraging Synchronized Lip Cues from Singing Performance Videos
September 24, 2025 Β· Declared Dead Β· π arXiv.org
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Authors
Ke Gu, Zhicong Wu, Peng Bai, Sitong Qiao, Zhiqi Jiang, Junchen Lu, Xiaodong Shi, Xinyuan Qian
arXiv ID
2509.22718
Category
eess.AS: Audio & Speech
Cross-listed
cs.MM,
cs.SD
Citations
0
Venue
arXiv.org
Last Checked
3 months ago
Abstract
Existing singing voice synthesis (SVS) models largely rely on fine-grained, phoneme-level durations, which limits their practical application. These methods overlook the complementary role of visual information in duration prediction.To address these issues, we propose PerformSinger, a pioneering multimodal SVS framework, which incorporates lip cues from video as a visual modality, enabling high-quality "duration-free" singing voice synthesis. PerformSinger comprises parallel multi-branch multimodal encoders, a feature fusion module, a duration and variational prediction network, a mel-spectrogram decoder and a vocoder. The fusion module, composed of adapter and fusion blocks, employs a progressive fusion strategy within an aligned semantic space to produce high-quality multimodal feature representations, thereby enabling accurate duration prediction and high-fidelity audio synthesis. To facilitate the research, we design, collect and annotate a novel SVS dataset involving synchronized video streams and precise phoneme-level manual annotations. Extensive experiments demonstrate the state-of-the-art performance of our proposal in both subjective and objective evaluations. The code and dataset will be publicly available.
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