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Static2Dynamic: Video Inference From a Deep Glimpse

机译:static2dynamic:深度瞥见的视频推断

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In this article, we address a novel and challenging task of video inference, which aims to infer video sequences from given non-consecutive video frames. Taking such frames as the anchor inputs, our focus is to recover possible video sequence outputs based on the observed anchor frames at the associated time. With the proposed Stochastic and Recurrent Conditional GAN (SR-cGAN), we are able to preserve visual content across video frames with additional ability to handle possible temporal ambiguity. In the experiments, we show that our SR-cGAN not only produces preferable video inference results, it can also be applied to relevant tasks of video generation, video interpolation, video inpainting, and video prediction.
机译:在本文中,我们解决了视频推断的新颖和具有挑战性的任务,旨在从给定的非连续视频帧中推断视频序列。采用这样的帧作为锚输入,我们的焦点是基于相关时间的观察到的锚帧来恢复可能的视频序列输出。通过提出的随机和复发条件GaN(SR-CGAN),我们能够在视频帧中保持视觉内容,并具有处理可能的时间模糊性的额外能力。在实验中,我们表明我们的SR-CGAN不仅产生优选的视频推断结果,它也可以应用于视频生成,视频插值,视频染色和视频预测的相关任务。

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