MIDGET: Music Conditioned 3D Dance Generation
April 18, 2024 ยท Declared Dead ยท ๐ Applied Informatics
"No code URL or promise found in abstract"
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Authors
Jinwu Wang, Wei Mao, Miaomiao Liu
arXiv ID
2404.12062
Category
cs.SD: Sound
Cross-listed
cs.CV,
cs.GR,
eess.AS
Citations
1
Venue
Applied Informatics
Last Checked
4 months ago
Abstract
In this paper, we introduce a MusIc conditioned 3D Dance GEneraTion model, named MIDGET based on Dance motion Vector Quantised Variational AutoEncoder (VQ-VAE) model and Motion Generative Pre-Training (GPT) model to generate vibrant and highquality dances that match the music rhythm. To tackle challenges in the field, we introduce three new components: 1) a pre-trained memory codebook based on the Motion VQ-VAE model to store different human pose codes, 2) employing Motion GPT model to generate pose codes with music and motion Encoders, 3) a simple framework for music feature extraction. We compare with existing state-of-the-art models and perform ablation experiments on AIST++, the largest publicly available music-dance dataset. Experiments demonstrate that our proposed framework achieves state-of-the-art performance on motion quality and its alignment with the music.
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