SAFIRE: Segment Any Forged Image Region
Myung-Joon Kwon, Wonjun Lee, Seung-Hun Nam, Minji Son, Changick Kim
摘要
Most techniques approach the problem of image forgery localization as a binary segmentation task, training neural networks to label original areas as 0 and forged areas as 1. In contrast, we tackle this issue from a more fundamental perspective by partitioning images according to their originating sources. To this end, we propose Segment Any Forged Image Region (SAFIRE), which solves forgery localization using point prompting. Each point on an image is used to segment the source region containing itself. This allows us to partition images into multiple source regions, a capability achieved for the first time. Additionally, rather than memorizing certain forgery traces, SAFIRE naturally focuses on uniform characteristics within each source region. This approach leads to more stable and effective learning, achieving superior performance in both the new task and the traditional binary forgery localization.
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引用它的顶会 Paper6
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- Creating Blank Canvas Against AI-enabled Image ForgeryQi Song, Ziyuan Luo, Renjie WanAAAI 2026
- Detective SAM: Adaptive AI-Image Forgery LocalizationGert Lek, Nicolas van Schaik, Chaoyi Zhu, Pin-Yu Chen 等ICLR 2026
- Forensic-Friendly Image Manipulation via Controllable Latent DiffusionHanyu Chen, Haiwei Wu, Jinyu Tian, Jianqing Li 等CVPR 2026
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