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CMA-OT: Hierarchical Expert Supervision for Dance-to-Music Generation

arXiv · AI, language, vision and robotics · article · Sep 11, 2026 · UTC

Dance-to-music (D2M) generation aims to synthesize music that is rhythmically and stylistically aligned with dance videos. A key challenge arises from the semantic mismatch between sparse dance cues, such as rhythm and style, and the dense information required for music composition, including structure, instrumentation, and expressive dynamics. Existing methods typically rely on these sparse cues and supervise only the final audio output, resulting in poorly learned music representations and generated music with limited musicality and structural coherence. To address these issues, we propose C

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Evidence & attribution

First collected: 2026-09-20T16:41:15.630Z. This is not the publication date.