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Runyi Li

5 accepted papers

2025

FakeShield: Explainable Image Forgery Detection and Localization via Multi-modal Large Language Models

ICLR 2025poster

The rapid development of generative AI is a double-edged sword, which not only facilitates content creation but also makes image manipulation easier and more difficult to detect. Although current image forgery detection and localization (IFDL) methods are generally effective, they tend to face two c…

2025

OmniGuard: Hybrid Manipulation Localization via Augmented Versatile Deep Image Watermarking

CVPR 2025poster

With the rapid growth of generative AI and its widespread application in image editing, new risks have emerged regarding the authenticity and integrity of digital content. Existing versatile watermarking approaches suffer from trade-offs between tamper localization precision and visual quality. Cons…

Cited by 4SourcePDFScholar
2024

EditGuard: Versatile Image Watermarking for Tamper Localization and Copyright Protection

CVPR 2024poster

In the era of AI-generated content (AIGC) malicious tampering poses imminent threats to copyright integrity and information security. Current deep image watermarking while widely accepted for safeguarding visual content can only protect copyright and ensure traceability. They fall short in localizin…

Cited by 54SourcePDFScholar
2024

GS-Hider: Hiding Messages into 3D Gaussian Splatting

NeurIPS 2024poster

3D Gaussian Splatting (3DGS) has already become the emerging research focus in the fields of 3D scene reconstruction and novel view synthesis. Given that training a 3DGS requires a significant amount of time and computational cost, it is crucial to protect the copyright, integrity, and privacy of su…