An Internal Learning Approach to Video Inpainting
Haotian Zhang, Long Mai, Hailin Jin, Zhaowen Wang, Ning Xu, John P. Collomosse
摘要
We propose a novel video inpainting algorithm that simultaneously hallucinates missing appearance and motion (optical flow) information, building upon the recent 'Deep Image Prior' (DIP) that exploits convolutional network architectures to enforce plausible texture in static images. In extending DIP to video we make two important contributions. First, we show that coherent video inpainting is possible without a priori training. We take a generative approach to inpainting based on internal (within-video) learning without reliance upon an external corpus of visual data to train a one-size-fits-all model for the large space of general videos. Second, we show that such a framework can jointly generate both appearance and flow, whilst exploiting these complementary modalities to ensure mutual consistency. We show that leveraging appearance statistics specific to each video achieves visually plausible results whilst handling the challenging problem of long-term consistency.
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引用它的顶会 Paper25
- ProPainter: Improving Propagation and Transformer for Video InpaintingShangchen Zhou, Chongyi Li, Kelvin C. K. Chan, Chen Change LoyICCV 2023 · 被引用 205 次
- FuseFormer: Fusing Fine-Grained Information in Transformers for Video InpaintingRui Liu, Hanming Deng, Yangyi Huang, Xiaoyu Shi 等ICCV 2021 · 被引用 165 次
- Blind Video Temporal Consistency via Deep Video PriorChenyang Lei, Yazhou Xing, Qifeng ChenNeurIPS 2020 · 被引用 134 次
- WaveFormer: Wavelet Transformer for Noise-Robust Video InpaintingZhiliang Wu, Changchang Sun, Hanyu Xuan, Gaowen Liu 等AAAI 2024 · 被引用 85 次
- Drop the GAN: In Defense of Patches Nearest Neighbors as Single Image Generative ModelsNiv Granot, Ben Feinstein, Assaf Shocher, Shai Bagon 等CVPR 2022 · 被引用 60 次
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