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A Temporally-Aware Interpolation Network for Video Frame Inpainting

机译:用于视频帧修复的时间感知内插网络

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In this work, we explore video frame inpainting, a task that lies at the intersection of general video inpainting, frame interpolation, and video prediction. Although our problem can be addressed by applying methods from other video interpolation or extrapolation tasks, doing so fails to leverage the additional context information that our problem provides. To this end, we devise a method specifically designed for video frame inpainting that is composed of two modules: a bidirectional video prediction module and a temporally-aware frame interpolation module. The prediction module makes two intermediate predictions of the missing frames, each conditioned on the preceding and following frames respectively, using a shared convolutional LSTM-based encoder-decoder. The interpolation module blends the intermediate predictions by using time information and hidden activations from the video prediction module to resolve disagreements between the predictions. Our experiments demonstrate that our approach produces smoother and more accurate results than state-of-the-art methods for general video inpainting, frame interpolation, and video prediction.
机译:在这项工作中,我们探索了视频帧批量,这是一个在通用视频染色,帧插值和视频预测的交叉点处的任务。虽然我们的问题可以通过应用来自其他视频插值或外推任务的方法来解决,但是这样做可能无法利用我们问题提供的其他上下文信息。为此,我们设计了一种专门为视频帧修复设计的方法,该方法由两个模块组成:双向视频预测模块和时间性感知帧插值模块。预测模块分别使用基于共享的卷积LSTM的编码器 - 解码器分别在前面和后续帧上调节的丢失帧的两个中间预测。插值模块通过使用时间信息和来自视频预测模块的隐藏激活来混合中间预测来解决预测之间的分歧。我们的实验表明,我们的方法比一般视频染色,帧插值和视频预测的最先进方法产生更光滑和更准确的结果。

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