MDD: A Dataset for Text-and-Music Conditioned Duet Dance Generation
Prerit Gupta, Jason Alexander Fotso-Puepi, Zhengyuan Li, Jay Mehta, Aniket Bera
摘要
We introduce Multimodal DuetDance (MDD), a diverse multimodal benchmark dataset designed for text-controlled and music-conditioned 3D duet dance motion generation. Our dataset comprises 620 minutes of high-quality motion capture data performed by professional dancers, synchronized with music, and detailed with over 10 K fine-grained natural language descriptions. The annotations capture a rich movement vocabulary, detailing spatial relationships, body movements, and rhythm, making MDD the first dataset to seamlessly integrate human motions, music, and text for duet dance generation. We introduce two novel tasks supported by our dataset: (1) Text-to-Duet, where given music and a textual prompt, both the leader and follower dance motion are generated (2) Text-to-Dance Accompaniment, where given music, textual prompt, and the leader's motion, the follower's motion is generated in a cohesive, text-aligned manner. We include baseline evaluations on both tasks to support future research. Please refer to the project website for the latest updates.
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引用它的顶会 Paper2
- Unified Multi-Modal Interactive and Reactive 3D Motion Generation via Rectified FlowPrerit Gupta, Shourya Verma, Ananth Grama, Aniket BeraICLR 2026 · 被引用 7 次
- Sketch2Colab: Sketch-Conditioned Multi-Human Animation via Controllable Flow DistillationDivyanshu Daiya, Aniket BeraCVPR 2026
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- Dance Revolution: Long-Term Dance Generation with Music via Curriculum LearningRuozi Huang, Huang Hu, Wei Wu, Kei Sawada 等ICLR 2021 · 被引用 147 次
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