From Covert Hiding To Visual Editing: Robust Generative Video Steganography
Xueying Mao, Xiaoxiao Hu, Wanli Peng, Zhenliang Gan, Zhenxing Qian, Xinpeng Zhang, Sheng Li
摘要
Traditional video steganography methods are based on modifying the covert space for embedding, whereas we propose an innovative approach that embeds secret message within semantic feature for steganography during the video editing process. Although existing traditional video steganography methods display a certain level of security and embedding capacity, they lack adequate robustness against common distortions in online social networks (OSNs). In this paper, we introduce an end-to-end robust generative video steganography network (RoGVS), which achieves visual editing by modifying semantic feature of videos to embed secret message. We employ face-swapping scenario to showcase the visual editing effects. We first design a secret message embedding module to adaptively hide secret message into the semantic feature of videos. Extensive experiments display that the proposed RoGVS method applied to facial video datasets demonstrate its superiority over existing video and image steganography techniques in terms of both robustness and capacity.
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引用它的顶会 Paper3
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- A Content-Preserving Secure Linguistic SteganographyLingyun Xiang, Chengfu Ou, Xu He, Zhongliang Yang 等AAAI 2026
它引用的顶会 Paper15
- FaceForensics++: Learning to Detect Manipulated Facial ImagesAndreas Rössler, Davide Cozzolino, Luisa Verdoliva, Christian Riess 等ICCV 2019 · 被引用 2,966 次
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- Few-Shot Unsupervised Image-to-Image TranslationMing-Yu Liu, Xun Huang, Arun Mallya, Tero Karras 等ICCV 2019 · 被引用 668 次
- SimSwap: An Efficient Framework For High Fidelity Face SwappingRenwang Chen, Xuanhong Chen, Bingbing Ni, Yanhao GeACM MM 2020 · 被引用 409 次
- HiNet: Deep Image Hiding by Invertible NetworkJunpeng Jing, Xin Deng, Mai Xu, Jianyi Wang 等ICCV 2021 · 被引用 301 次
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