提出首个抗视觉改写攻击且无失真的图像水印技术
Peccavi: Visual Paraphrase Attack Safe and Distortion Free Image Watermarking Technique for AI-Generated Images
- 将水印嵌入语义不变区域,结合多通道频域编码
- 可抵御视觉改写攻击,实现零失真水印嵌入
- 适用于政策合规场景,适合生成内容监管者
欧盟执法机构报告预测,到2026年,高达90%的网络内容可能由生成式AI制造,引发政策层对“生成式AI可能成为政治虚假信息的放大器”的担忧。为此,加州法案AB 3211要求对生成图像、视频和音频进行水印标注。然而,现有隐形水印易受篡改,尤其是新出现的视觉改写攻击,能完全移除水印并生成语义保留的图像副本。本文提出PECCAVI,首个抗视觉改写攻击且无失真的图像水印技术。该方法将水印嵌入图像中语义稳定的非熔化点(NMPs),采用多通道频域编码,并引入噪声烧蚀以对抗反向工程定位NMPs的行为,提升水印鲁棒性。本方法模型无关,相关代码与资源将开源。
原文摘要 · Abstract (English)
A report by the European Union Law Enforcement Agency predicts that by 2026, up to 90 percent of online content could be synthetically generated, raising concerns among policymakers, who cautioned that "Generative AI could act as a force multiplier for political disinformation. The combined effect of generative text, images, videos, and audio may surpass the influence of any single modality." In response, California's Bill AB 3211 mandates the watermarking of AI-generated images, videos, and audio. However, concerns remain regarding the vulnerability of invisible watermarking techniques to tampering and the potential for malicious actors to bypass them entirely. Generative AI-powered de-watermarking attacks, especially the newly introduced visual paraphrase attack, have shown an ability to fully remove watermarks, resulting in a paraphrase of the original image. This paper introduces PECCAVI, the first visual paraphrase attack-safe and distortion-free image watermarking technique. In visual paraphrase attacks, an image is altered while preserving its core semantic regions, termed Non-Melting Points (NMPs). PECCAVI strategically embeds watermarks within these NMPs and employs multi-channel frequency domain watermarking. It also incorporates noisy burnishing to counter reverse-engineering efforts aimed at locating NMPs to disrupt the embedded watermark, thereby enhancing durability. PECCAVI is model-agnostic. All relevant resources and codes will be open-sourced.
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