Towards Blind Watermarking: Combining Invertible and Non-invertible Mechanisms
Rui Ma, Mengxi Guo, Yi Hou, Fan Yang, Yuan Li, Huizhu Jia, Xiaodong Xie
摘要
Blind watermarking provides powerful evidence for copyright protection, image authentication, and tampering identification. However, it remains a challenge to design a watermarking model with high imperceptibility and robustness against strong noise attacks. To resolve this issue, we present a framework Combining the Invertible and Non-invertible (CIN) mechanisms. The CIN is composed of the invertible part to achieve high imperceptibility and the non-invertible part to strengthen the robustness against strong noise attacks. For the invertible part, we develop a diffusion and extraction module (DEM) and a fusion and split module (FSM) to embed and extract watermarks symmetrically in an invertible way. For the non-invertible part, we introduce a non-invertible attention-based module (NIAM) and the noise-specific selection module (NSM) to solve the asymmetric extraction under a strong noise attack. Extensive experiments demonstrate that our framework outperforms the current state-of-the-art methods of imperceptibility and robustness significantly. Our framework can achieve an average of 99.99% accuracy and 67.66 𝑑𝐵 𝑃𝑆𝑁 𝑅 under noise-free conditions, while 96.64% and 39.28 𝑑𝐵 combined strong noise attacks. The code will be available in https://github.com/rmpku/CIN.
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引用它的顶会 Paper35
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它引用的顶会 Paper8
- MBRS: Enhancing Robustness of DNN-based Watermarking by Mini-Batch of Real and Simulated JPEG CompressionZhaoyang Jia, Han Fang, Weiming ZhangACM MM 2021 · 被引用 251 次
- Attention Based Data Hiding with Generative Adversarial NetworksChong YuAAAI 2020 · 被引用 104 次
- IICNet: A Generic Framework for Reversible Image ConversionKa Leong Cheng, Yueqi Xie, Qifeng ChenICCV 2021 · 被引用 30 次
- Large-Capacity Image Steganography Based on Invertible Neural NetworksShao-Ping Lu, Rong Wang, Tao Zhong, Paul L. RosinCVPR 2021
- C-Flow: Conditional Generative Flow Models for Images and 3D Point CloudsAlbert Pumarola, Stefan Popov, Francesc Moreno-Noguer, Vittorio FerrariCVPR 2020
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