Saliency-Aware Diffusion Reconstruction for Effective Invisible Watermark Removal

April 17, 2025 ยท Declared Dead ยท ๐Ÿ› The Web Conference

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Authors Inzamamul Alam, Md Tanvir Islam, Simon S. Woo arXiv ID 2504.12809 Category cs.CV: Computer Vision Cross-listed cs.MM Citations 3 Venue The Web Conference Repository https://github.com/inzamamulDU/SADRE}{\textbf{https://github.com/inzamamulDU/SADRE}} Last Checked 1 month ago
Abstract
As digital content becomes increasingly ubiquitous, the need for robust watermark removal techniques has grown due to the inadequacy of existing embedding techniques, which lack robustness. This paper introduces a novel Saliency-Aware Diffusion Reconstruction (SADRE) framework for watermark elimination on the web, combining adaptive noise injection, region-specific perturbations, and advanced diffusion-based reconstruction. SADRE disrupts embedded watermarks by injecting targeted noise into latent representations guided by saliency masks although preserving essential image features. A reverse diffusion process ensures high-fidelity image restoration, leveraging adaptive noise levels determined by watermark strength. Our framework is theoretically grounded with stability guarantees and achieves robust watermark removal across diverse scenarios. Empirical evaluations on state-of-the-art (SOTA) watermarking techniques demonstrate SADRE's superiority in balancing watermark disruption and image quality. SADRE sets a new benchmark for watermark elimination, offering a flexible and reliable solution for real-world web content. Code is available on~\href{https://github.com/inzamamulDU/SADRE}{\textbf{https://github.com/inzamamulDU/SADRE}}.
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