Lets Play Music: Audio-driven Performance Video Generation
November 05, 2020 Β· Declared Dead Β· π International Conference on Pattern Recognition
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Authors
Hao Zhu, Yi Li, Feixia Zhu, Aihua Zheng, Ran He
arXiv ID
2011.02631
Category
cs.CV: Computer Vision
Citations
7
Venue
International Conference on Pattern Recognition
Last Checked
5 months ago
Abstract
We propose a new task named Audio-driven Per-formance Video Generation (APVG), which aims to synthesizethe video of a person playing a certain instrument guided bya given music audio clip. It is a challenging task to gener-ate the high-dimensional temporal consistent videos from low-dimensional audio modality. In this paper, we propose a multi-staged framework to achieve this new task to generate realisticand synchronized performance video from given music. Firstly,we provide both global appearance and local spatial informationby generating the coarse videos and keypoints of body and handsfrom a given music respectively. Then, we propose to transformthe generated keypoints to heatmap via a differentiable spacetransformer, since the heatmap offers more spatial informationbut is harder to generate directly from audio. Finally, wepropose a Structured Temporal UNet (STU) to extract bothintra-frame structured information and inter-frame temporalconsistency. They are obtained via graph-based structure module,and CNN-GRU based high-level temporal module respectively forfinal video generation. Comprehensive experiments validate theeffectiveness of our proposed framework.
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