Large-Capacity and Flexible Video Steganography via Invertible Neural Network
Chong Mou, Youmin Xu, Jiechong Song, Chen Zhao, Bernard Ghanem, Jian Zhang
摘要
Video steganography is the art of unobtrusively concealing secret data in a cover video and then recovering the secret data through a decoding protocol at the receiver end. Although several attempts have been made, most of them are limited to low-capacity and fixed steganography. To rectify these weaknesses, we propose a Large-capacity and Flexible Video Steganography Network (LF-VSN) in this paper. For large-capacity, we present a reversible pipeline to perform multiple videos hiding and recovering through a single invertible neural network (INN). Our method can hide/recover 7 secret videos in/from 1 cover video with promising performance. For flexibility, we propose a keycontrollable scheme, enabling different receivers to recover particular secret videos from the same cover video through specific keys. Moreover, we further improve the flexibility by proposing a scalable strategy in multiple videos hiding, which can hide variable numbers of secret videos in a cover video with a single model and a single training session. Extensive experiments demonstrate that with the significant improvement of the video steganography performance, our proposed LF-VSN has high security, large hiding capacity, and flexibility. The source code is available at https://github.com/MC-E/LF-VSN .
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引用它的顶会 Paper15
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它引用的顶会 Paper10
- HiNet: Deep Image Hiding by Invertible NetworkJunpeng Jing, Xin Deng, Mai Xu, Jianyi Wang 等ICCV 2021 · 被引用 301 次
- Robust Invertible Image SteganographyYoumin Xu, Chong Mou, Yujie Hu, Jingfen Xie 等CVPR 2022 · 被引用 151 次
- Fixed Neural Network Steganography: Train the images, not the networkVarsha Kishore, Xiangyu Chen, Yan Wang, Boyi Li 等ICLR 2022 · 被引用 59 次
- Hiding Images in Deep Probabilistic ModelsHaoyu Chen, Linqi Song, Zhenxing Qian, Xinpeng Zhang 等NeurIPS 2022 · 被引用 20 次
- Re2TAL: Rewiring Pretrained Video Backbones for Reversible Temporal Action LocalizationChen Zhao, Shuming Liu, Karttikeya Mangalam, Bernard GhanemCVPR 2023
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