Safe-SD: Safe and Traceable Stable Diffusion with Text Prompt Trigger for Invisible Generative Watermarking
Zhiyuan Ma, Guoli Jia, Biqing Qi, Bowen Zhou

TL;DR
Safe-SD introduces a unified, efficient framework for embedding invisible, traceable watermarks into images generated by stable diffusion models, enhancing copyright protection and content monitoring.
Contribution
It proposes a novel, unified architecture for simultaneous watermark injection and detection during image generation, improving efficiency and robustness over previous methods.
Findings
Outperforms previous approaches on LSUN, COCO, and FFHQ datasets.
Achieves high-fidelity image synthesis with embedded watermarks.
Demonstrates state-of-the-art robustness and traceability of watermarks.
Abstract
Recently, stable diffusion (SD) models have typically flourished in the field of image synthesis and personalized editing, with a range of photorealistic and unprecedented images being successfully generated. As a result, widespread interest has been ignited to develop and use various SD-based tools for visual content creation. However, the exposure of AI-created content on public platforms could raise both legal and ethical risks. In this regard, the traditional methods of adding watermarks to the already generated images (i.e. post-processing) may face a dilemma (e.g., being erased or modified) in terms of copyright protection and content monitoring, since the powerful image inversion and text-to-image editing techniques have been widely explored in SD-based methods. In this work, we propose a Safe and high-traceable Stable Diffusion framework (namely Safe-SD) to adaptively implant…
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Taxonomy
TopicsAdvanced Steganography and Watermarking Techniques · Chaos-based Image/Signal Encryption · Biometric Identification and Security
MethodsDiffusion
