Practical Deep Dispersed Watermarking with Synchronization and Fusion
Hengchang Guo, Qilong Zhang, Junwei Luo, Feng Guo, Wenbin Zhang, Xiaodong Su, Minglei Li
Abstract
Deep learning based blind watermarking works have gradually emerged and achieved impressive performance. However, previous deep watermarking studies mainly focus on fixed low-resolution images while paying less attention to arbitrary resolution images, especially widespread high-resolution images nowadays. Moreover, most works usually demonstrate robustness against typical non-geometric attacks (e.g., JPEG compression) but ignore common geometric attacks (e.g., Rotate) and more challenging combined attacks. To overcome the above limitations, we propose a practical deep Dispersed Watermarking with Synchronization and Fusion, called DWSF. Specifically, given an arbitrary-resolution cover image, we adopt a dispersed embedding scheme which sparsely and randomly selects several fixed small-size cover blocks to embed a consistent watermark message by a well-trained encoder. In the extraction stage, we first design a watermark synchronization module to locate and rectify the encoded blocks in the noised watermarked image. We then utilize a decoder to obtain messages embedded in these blocks, and propose a message fusion strategy based on similarity to make full use of the consistency among messages, thus determining a reliable message. Extensive experiments conducted on different datasets convincingly demonstrate the effectiveness of our proposed DWSF. Compared with state-of-the-art approaches, our blind watermarking can achieve better performance: averagely improve the bit accuracy by 5.28% and 5.93% against single and combined attacks, respectively, and show less file size increment and better visual quality. Our code is available at https://github.com/bytedance/DWSF.
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Install the CLIlune papers fulltext 68a44868-b0e1-491a-b6f3-2ef324b78d9eCited by top-tier papers9
- Watermarking Autoregressive Image GenerationNikola Jovanovic, Ismail Labiad, Tomás Soucek, Martin T. Vechev et al.NeurIPS 2025 · 21 citations
- Achieving Resolution-Agnostic DNN-based Image Watermarking: A Novel Perspective of Implicit Neural RepresentationYuchen Wang, Xingyu Zhu, Guanhui Ye, Shiyao Zhang et al.ACM MM 2024 · 6 citations
- Ultra-high Resolution Watermarking Framework Resistant to Extreme Cropping and ScalingNan Sun, Luyu Yuan, Han Fang, Yuxing Lu et al.NeurIPS 2025 · 5 citations
- IWRN: A Robust Blind Watermarking Method for Artwork Image Copyright Protection Against Noise AttackFeifei Kou, Yuhan Yao, Siyuan Yao, Jiahao Wang et al.AAAI 2025 · 5 citations
- ScreenMark: Watermarking Arbitrary Visual Content on ScreenXiujian Liang, Gaozhi Liu, Yichao Si, Xiaoxiao Hu et al.AAAI 2025 · 4 citations
Builds on5
- Feature Importance-aware Transferable Adversarial AttacksZhibo Wang, Hengchang Guo, Zhifei Zhang, Wenxin Liu et al.ICCV 2021 · 306 citations
- Admix: Enhancing the Transferability of Adversarial AttacksXiaosen Wang, Xuanran He, Jingdong Wang, Kun HeICCV 2021 · 282 citations
- MBRS: Enhancing Robustness of DNN-based Watermarking by Mini-Batch of Real and Simulated JPEG CompressionZhaoyang Jia, Han Fang, Weiming ZhangACM MM 2021 · 251 citations
- Natural Color Fool: Towards Boosting Black-box Unrestricted AttacksShengming Yuan, Qilong Zhang, Lianli Gao, Yaya Cheng et al.NeurIPS 2022 · 86 citations
- StegaStamp: Invisible Hyperlinks in Physical PhotographsMatthew Tancik, Ben Mildenhall, Ren NgCVPR 2020
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