[ICCV 2021] Hybrid Neural Fusion for Full-frame Video Stabilization

Опубликовано: 08 Сентябрь 2026
на канале: 劉育綸
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This is the 5 minute video for our ICCV 2021 paper:
"Hybrid Neural Fusion for Full-frame Video Stabilization"
Project Page: https://alex04072000.github.io/FuSta/
Paper: https://arxiv.org/abs/2102.06205
Code: https://github.com/alex04072000/FuSta
Authors: Yu-Lun Liu, Wei-Sheng Lai, Min-Hsuan Yang, Yung-Yu Chuang, Jia-Bin Huang

Abstract:
Existing video stabilization methods often generate visible distortion or require aggressive cropping of frame boundaries, resulting in smaller field of views. In this work, we present a frame synthesis algorithm to achieve full-frame video stabilization. We first estimate dense warp fields from neighboring frames and then synthesize the stabilized frame by fusing the warped contents. Our core technical novelty lies in the learning-based hybrid-space fusion that alleviates artifacts caused by optical flow inaccuracy and fast-moving objects. We validate the effectiveness of our method on the NUS, selfie, and DeepStab video datasets. Extensive experiment results demonstrate the merits of our approach over prior video stabilization methods.