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An SVM-based robust digital image watermarking against desynchronization attacks

机译:基于SVM的强大的数字图像水印技术,可应对不同步攻击

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In image watermarking area, the robustness against desynchronization attacks, such as rotation, translation, scaling, row or column removal, cropping, and local random bend, is still one of the most challenging issues. This paper presents a support vector machine (SVM)-based digital image-watermarking scheme, which is robust against a variety of common image-processing attacks and desynchronization attacks. To protect the copyright of a digital image, a signature (a watermark), which is represented by a binary image, is embedded in the digital image. The watermark embedding and watermark extraction issues can be treated as a classification problem involving binary classes. Firstly, a set of training patterns is constructed by employing two image features, which are the sum and variance of some adjacent pixels. This set of training patterns is gathered from a pair of images, an original image and its corresponding watermarked image in the spatial domain. Secondly, a quasi-optimal hyperplane (a binary classifier) can be realized by an SVM, and the SVM can be trained by utilizing the set of training patterns. Finally, the trained SVM is applied to classify a set of testing patterns. Following the results produced by the classifier (the trained SVM), the digital watermark can be embedded and retrieved. Experimental results show that the proposed scheme is invisible and robust against common signals processing such as median filtering, sharpening, noise adding, and JPEG compression, etc., and robust against desynchronization attacks such as rotation, translation, scaling, row or column removal, cropping, and local random bend, etc.
机译:在图像水印领域,针对不同步攻击(如旋转,平移,缩放,行或列删除,裁剪和局部随机弯曲)的鲁棒性仍然是最具挑战性的问题之一。本文提出了一种基于支持向量机(SVM)的数字图像水印方案,该方案可抵抗各种常见的图像处理攻击和去同步攻击。为了保护数字图像的版权,将由二进制图像表示的签名(水印)嵌入到数字图像中。水印嵌入和水印提取问题可以视为涉及二进制类的分类问题。首先,采用两个图像特征构造训练模式集,这两个图像特征是一些相邻像素的和和方差。从空间域中的一对图像,原始图像及其对应的水印图像中收集这组训练模式。其次,可以通过SVM实现准最优超平面(二进制分类器),并且可以利用该组训练模式来训练SVM。最终,将训练有素的SVM用于对一组测试模式进行分类。根据分类器(训练有素的SVM)产生的结果,可以嵌入和检索数字水印。实验结果表明,该方案对常见信号处理(如中值滤波,锐化,噪声添加和JPEG压缩等)不可见且鲁棒,而对旋转,平移,缩放,行或列删除等非同步攻击则鲁棒,裁剪和局部随机弯曲等

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