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A Novel Framework of Robust Video Watermarking Based on Statistical Model

机译:基于统计模型的鲁棒视频水印新框架

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This paper is to investigate a novel framework of robust video watermarking based on the statistical model with robustness against multiple attacks. The main contribution is threefold. First, the Lapla-cian distribution is proposed to model each naive video frame, referring to as the original frame; meanwhile the noisy frame, referring to as the one with adding Gaussian-distributed noise, is modeled using the Gaussian distribution. Second, we propose a novel mechanism of embedding watermark by artificially adding noise or not, corresponding to watermark bit 1 or 0. Third, it is proposed to cast the problem of watermark extraction into the framework of hypothesis testing theory. In the ideal context, with knowing all the model parameters, the Likelihood Ratio Test (LRT) is smoothly established with verifying the feasibility of the designed watermark extraction based on the statistical models. In the case of estimating model parameters, we propose to design the Generalized Likelihood Ratio Test (GLRT) to deal with the practical problem of watermark extraction. Finally, compared with some prior arts, extensive experimental results show that our proposed novel framework of robust video watermarking can achieve the high video quality with robustness against various attacks such as re-scaling, cropping, and compression.
机译:本文旨在研究一种基于统计模型的鲁棒视频水印新框架,该模型具有针对多种攻击的鲁棒性。主要贡献是三方面的。首先,提出了Lapla-cian分布来模拟每个朴素的视频帧,称为原始帧。同时,使用高斯分布对有噪声的帧(称为加有高斯分布的噪声的帧)进行建模。其次,我们提出了一种通过人工添加或不添加噪声来嵌入水印的新机制,该机制对应于水印位1或0。第三,提出了将水印提取问题投射到假设检验理论的框架中。在理想的情况下,在了解所有模型参数的情况下,通过验证基于统计模型的设计水印提取的可行性,可以顺利建立似然比测试(LRT)。在估计模型参数的情况下,我们建议设计广义似然比测试(GLRT)以解决水印提取的实际问题。最后,与一些现有技术相比,大量的实验结果表明,我们提出的鲁棒视频水印的新颖框架可以在抵御各种攻击(例如重新缩放,裁剪和压缩)的同时实现鲁棒的视频质量。

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