Motion-blurred Video Interpolation and Extrapolation
Dawit Mureja Argaw, Junsik Kim, François Rameau, In So Kweon
Abstract
Abrupt motion of camera or objects in a scene result in a blurry video, and therefore recovering high quality video requires two types of enhancements: visual enhancement and temporal upsampling. A broad range of research attempted to recover clean frames from blurred image sequences or temporally upsample frames by interpolation, yet there are very limited studies handling both problems jointly. In this work, we present a novel framework for deblurring, interpolating and extrapolating sharp frames from a motion-blurred video in an end-to-end manner. We design our framework by first learning the pixel-level motion that caused the blur from the given inputs via optical flow estimation and then predict multiple clean frames by warping the decoded features with the estimated flows. To ensure temporal coherence across predicted frames and address potential temporal ambiguity, we propose a simple, yet effective flow-based rule. The effectiveness and favorability of our approach are highlighted through extensive qualitative and quantitative evaluations on motion-blurred datasets from high speed videos.
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- Long-term Video Frame Interpolation via Feature PropagationDawit Mureja Argaw, In So KweonCVPR 2022 · 12 citations
- Blur Interpolation Transformer for Real-World Motion from BlurZhihang Zhong, Mingdeng Cao, Xiang Ji, Yinqiang Zheng et al.CVPR 2023
- Joint Video Multi-Frame Interpolation and Deblurring under Unknown Exposure TimeWei Shang, Dongwei Ren, Yi Yang, Hongzhi Zhang et al.CVPR 2023
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