VideoShield: Regulating Diffusion-based Video Generation Models via Watermarking
Runyi Hu, Jie Zhang, Yiming Li, Jiwei Li, Qing Guo, Han Qiu, and, Tianwei Zhang

TL;DR
VideoShield introduces a real-time, embedding-based watermarking framework for diffusion-based video generation models that preserves video quality and enables tamper detection across spatial and temporal dimensions.
Contribution
It is the first to embed watermarks during diffusion-based video generation without extra training, providing tamper localization and extending to image generation models.
Findings
Effective watermark extraction across various models
Robust tamper detection in spatial and temporal domains
Maintains high video quality during watermark embedding
Abstract
Artificial Intelligence Generated Content (AIGC) has advanced significantly, particularly with the development of video generation models such as text-to-video (T2V) models and image-to-video (I2V) models. However, like other AIGC types, video generation requires robust content control. A common approach is to embed watermarks, but most research has focused on images, with limited attention given to videos. Traditional methods, which embed watermarks frame-by-frame in a post-processing manner, often degrade video quality. In this paper, we propose VideoShield, a novel watermarking framework specifically designed for popular diffusion-based video generation models. Unlike post-processing methods, VideoShield embeds watermarks directly during video generation, eliminating the need for additional training. To ensure video integrity, we introduce a tamper localization feature that can…
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Taxonomy
TopicsAdvanced Steganography and Watermarking Techniques · Internet Traffic Analysis and Secure E-voting · Cinema and Media Studies
MethodsSoftmax · Attention Is All You Need
