RecoverMark: Robust Watermarking for Localization and Recovery of Manipulated Faces
Haonan An, Xiaohui Ye, Guang Hua, Yihang Tao, Hangcheng Cao, Xiangyu Yu, Yuguang Fang

TL;DR
RecoverMark introduces a robust watermarking framework that leverages face content as a watermark, enabling simultaneous manipulation localization, content recovery, and ownership verification even under sophisticated removal attacks.
Contribution
It proposes a novel watermarking method that uses face content as a watermark and a two-stage training paradigm to enhance robustness against attacks.
Findings
Robust against both seen and unseen attacks
Effective in in-distribution and out-of-distribution scenarios
Enables simultaneous localization, recovery, and verification
Abstract
The proliferation of AI-generated content has facilitated sophisticated face manipulation, severely undermining visual integrity and posing unprecedented challenges to intellectual property. In response, a common proactive defense leverages fragile watermarks to detect, localize, or even recover manipulated regions. However, these methods always assume an adversary unaware of the embedded watermark, overlooking their inherent vulnerability to watermark removal attacks. Furthermore, this fragility is exacerbated in the commonly used dual-watermark strategy that adds a robust watermark for image ownership verification, where mutual interference and limited embedding capacity reduce the fragile watermark's effectiveness. To address the gap, we propose RecoverMark, a watermarking framework that achieves robust manipulation localization, content recovery, and ownership verification…
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Taxonomy
TopicsAdversarial Robustness in Machine Learning · Generative Adversarial Networks and Image Synthesis · Digital Media Forensic Detection
