Publication | Open Access
Internal Video Inpainting by Implicit Long-range Propagation
33
Citations
29
References
2021
Year
Internal Learning StrategyNovel FrameworkMachine VisionImage AnalysisMachine LearningEngineeringPattern RecognitionVideo ManipulationInpaintingVideo InpaintingInternal Video InpaintingVideo HallucinationVideo UnderstandingVideo TransformerDeep LearningVideo RestorationComputer Vision
We propose a novel framework for video inpainting by adopting an internal learning strategy. Unlike previous methods that use optical flow for cross-frame context propagation to inpaint unknown regions, we show that this can be achieved implicitly by fitting a convolutional neural network to known regions. Moreover, to handle challenging sequences with ambiguous backgrounds or long-term occlusion, we design two regularization terms to preserve high-frequency details and long-term temporal consistency. Extensive experiments on the DAVIS dataset demonstrate that the proposed method achieves state-of-the-art inpainting quality quantitatively and qualitatively. We further extend the proposed method to another challenging task: learning to remove an object from a video giving a single object mask in only one frame in a 4K video. Our source code is available at https://tengfei-wang.github.io/Implicit-Internal-Video-Inpainting/.
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