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Robust Detection of Transform Domain Additive Watermarks

机译:变换域添加剂水印的鲁棒检测

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Deviations of the actual coefficient distributions from the idealized theoretical models due to inherent modeling errors and possible attacks are big challenges for watermark detection. These uncertain deviations may degrade or even upset the performance of existing optimum detectors that are optimized at idealized models. In this paper, we present a new detection structure for transform domain additive watermarks based on Huber's robust hypothesis testing theory. The statistical behaviors of the image subband coefficients are modeled by a contaminated generalized Gaussian distribution (GGD), which tries to capture small deviations of the actual situation from the idealized GGD. The robust detector is a min-max solution of the contamination model and turns out to be a censored version of the optimum probability ratio test. Experimental results on real images confirm the superiority of the proposed detector with respect to the classical optimum detector.
机译:由于固有的建模误差和可能的攻击导致的实际系数分布的偏差是水印检测的大挑战。这些不确定的偏差可能降低或甚至扰乱在理想化模型中优化的现有最佳检测器的性能。本文基于Huber的强大假设检测理论,我们为转换域添加水印进行了新的检测结构。图像子带系数的统计行为由污染的广义高斯分布(GGD)建模,这试图从理想的GGD中捕获实际情况的小偏差。鲁棒探测器是污染模型的最小最大解,并成为最佳概率比测试的截取版本。实验实验结果确认了所提出的检测器相对于经典的最佳探测器的优越性。

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