首页> 外文会议>International Workshop on Information Hiding(IH 2004) >Feature-Based Steganalysis for JPEG Images and Its Implications for Future Design of Steganographic Schemes
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Feature-Based Steganalysis for JPEG Images and Its Implications for Future Design of Steganographic Schemes

机译:基于特征的JPEG图像的隐析及其对背包计划的未来设计的影响

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In this paper, we introduce a new feature-based steganalytic method for JPEG images and use it as a benchmark for comparing JPEG steg-anographic algorithms and evaluating their embedding mechanisms. The detection method is a linear classifier trained on feature vectors corresponding to cover and stego images. In contrast to previous blind approaches, the features are calculated as an L_1 norm of the difference between a specific macroscopic functional calculated from the stego image and the same functional obtained from a decompressed, cropped, and recompressed stego image. The functional are built from marginal and joint statistics of DCT coefficients. Because the features are calculated directly from DCT coefficients, conclusions can be drawn about the impact of embedding modifications on detectability. Three different Steganographic paradigms are tested and compared. Experimental results reveal new facts about current Steganographic methods for JPEGs and new design principles for more secure JPEG steganography.
机译:在本文中,我们向JPEG图像介绍了一种新的基于特征的STEG共分方法,并将其用作比较JPEG STEG-Anographic算法并评估其嵌入机制的基准。检测方法是在与盖子和STEGO图像对应的特征向量上培训的线性分类器。与先前的盲方法相反,该特征被计算为从Setego图像计算的特定宏观功能之间的差异的L_1标准,以及从解压缩,裁剪和重新压缩的SEGO图像获得的相同功能。该功能是由DCT系数的边缘和联合统计构成的。因为该特征直接从DCT系数计算,所以可以绘制关于嵌入修改对可检测性的影响。测试并比较了三个不同的隐法划分。实验结果揭示了关于JPEGS的当前隐写方法的新事实和更多安全JPEG隐写术的新设计原则。

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