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Enhancing image watermarking methods with/without reference images by optimization on second-order statistics

机译:通过优化二阶统计量来增强有/无参考图像的图像水印方法

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摘要

The watermarking method has emerged as an important tool for content tracing, authentication, and data hiding in multimedia applications. We propose a watermarking strategy in which the watermark of a host is selected from the robust features of the estimated forged images of the host. The forged images are obtained from Monte Carlo simulations of potential pirate attacks on the host image. The solution of applying an optimization technique to the second-order statistics of the features of the forged images gives two orthogonal spaces. One of them characterizes most of the variations in the modifications of the host. Our watermark is embedded in the other space that most potential pirate attacks do not touch. Thus, the embedded watermark is robust. Our watermarking method uses the same framework for watermark detection with a reference and blind detection. We demonstrate the performance of our method under various levels of attacks.
机译:水印方法已经成为在多媒体应用程序中进行内容跟踪,身份验证和数据隐藏的重要工具。我们提出一种水印策略,其中从估计的主机伪造图像的鲁棒特征中选择主机的水印。伪造的图像是从对主机图像的潜在海盗攻击的蒙特卡洛模拟中获得的。将优化技术应用于伪造图像特征的二阶统计的解决方案给出了两个正交空间。其中之一是主机修改中大多数变化的特征。我们的水印嵌入了大多数潜在的海盗攻击无法触及的其他空间。因此,嵌入的水印是鲁棒的。我们的水印方法使用相同的框架进行水印检测,并带有参考和盲检测。我们演示了在各种级别的攻击下我们方法的性能。

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