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RealCraft: Attention Control as A Tool for Zero-Shot Consistent Video Editing (2312.12635v3)

Published 19 Dec 2023 in cs.CV

Abstract: Even though large-scale text-to-image generative models show promising performance in synthesizing high-quality images, applying these models directly to image editing remains a significant challenge. This challenge is further amplified in video editing due to the additional dimension of time. This is especially the case for editing real-world videos as it necessitates maintaining a stable structural layout across frames while executing localized edits without disrupting the existing content. In this paper, we propose RealCraft, an attention-control-based method for zero-shot real-world video editing. By swapping cross-attention for new feature injection and relaxing spatial-temporal attention of the editing object, we achieve localized shape-wise edit along with enhanced temporal consistency. Our model directly uses Stable Diffusion and operates without the need for additional information. We showcase the proposed zero-shot attention-control-based method across a range of videos, demonstrating shape-wise, time-consistent and parameter-free editing in videos of up to 64 frames.

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Authors (3)
  1. Shutong Jin (6 papers)
  2. Ruiyu Wang (20 papers)
  3. Florian T. Pokorny (30 papers)
Citations (1)

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