Publication | Closed Access
DVMark: A Deep Multiscale Framework for Video Watermarking
51
Citations
51
References
2023
Year
Digital WatermarkingImage AnalysisMachine VisionMachine LearningEngineeringPattern RecognitionVideo ProcessingVideo WatermarkingDeep ImageVideo HallucinationVideo UnderstandingMultimedia SecurityDeep LearningVideo RestorationCover VideoComputer Vision
Video watermarking embeds a message into a cover video in an imperceptible manner, which can be retrieved even if the video undergoes certain modifications or distortions. Traditional watermarking methods are often manually designed for particular types of distortions and thus cannot simultaneously handle a broad spectrum of distortions. To this end, we propose a robust deep learning-based solution for video watermarking that is end-to-end trainable. Our model consists of a novel multiscale design where the watermarks are distributed across multiple spatial-temporal scales. Extensive evaluations on a wide variety of distortions show that our method outperforms traditional video watermarking methods as well as deep image watermarking models by a large margin. We further demonstrate the practicality of our method on a realistic video-editing application.
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