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New Additive Watermark Detectors Based On A Hierarchical Spatially Adaptive Image Model

机译:基于分层空间自适应图像模型的新添加剂水印探测器

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摘要

In this paper, we propose a new family of watermark detectors for additive watermarks in digital images. These detectors are based on a recently proposed hierarchical, two-level image model, which was found to be beneficial for image recovery problems. The top level of this model is defined to exploit the spatially varying local statistics of the image, while the bottom level is used to characterize the image variations along two principal directions. Based on this model, we derive a class of detectors for the additive watermark detection problem, which include a generalized likelihood ratio, Bayesian, and Rao test detectors. We also propose methods to estimate the necessary parameters for these detectors. Our numerical experiments demonstrate that these new detectors can lead to superior performance to several state-of-the-art detectors.
机译:在本文中,我们为数字图像中的添加水印提出了一系列新的水印探测器。这些探测器基于最近提出的分层,两级图像模型,该模型被发现有利于图像恢复问题。该模型的顶级被定义为利用图像的空间变化的本地统计数据,而底部级用于表征沿两个主方向的图像变化。基于该模型,我们推导了一类用于添加水印检测问题的探测器,其包括广义似然比,贝叶斯和RAO测试探测器。我们还提出了估计这些探测器的必要参数的方法。我们的数值实验表明,这些新的探测器可能导致卓越的探测器的性能。

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