2021
DOI: 10.48550/arxiv.2112.10960
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Continuous-Time Video Generation via Learning Motion Dynamics with Neural ODE

Abstract: In order to perform unconditional video generation, we must learn the distribution of the real-world videos. In an effort to synthesize high-quality videos, various studies attempted to learn a mapping function between noise and videos, including recent efforts to separate motion distribution and appearance distribution. Previous methods, however, learn motion dynamics in discretized, fixed-interval timesteps, which is contrary to the continuous nature of motion of a physical body. In this paper, we propose a … Show more

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