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Blind image steganalysis based on wavelet coefficient correlation

机译:基于小波系数相关性的盲图像隐写分析

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摘要

To detect the presence of information in a stego image more reliably, a blind JPEG steganalysis method based on inter- and intra-wavelet subband correlations in the wavelet domain is proposed. First, after two-level wavelet decomposition, the joint probability density of each subband's difference from neighboring coefficients in the horizontal, vertical, and diagonal directions is calculated, and the entropy and energy are extracted from the joint probability density matrix as features. Then the image is decomposed into three subbands, and the PDF (probability density function) is extracted from each sub-band's wavelet coefficient. Finally, the three kinds of features described above are combined to detect the image. In experiments, the proposed method is compared with various other blind steganalysis methods, and the impacts of different feature combinations on detection accuracy are discussed. Experimental results from typical JPEG image stego algorithms such as F5, Jsteg, Outguess, and Jphide show that the proposed method significantly outperforms typical blind steganalysis methods. The proposed method also has some detection capabilities for double-compressed images.
机译:为了更可靠地检测隐身图像中信息的存在,提出了一种基于小波域内小波内和子带内子带相关性的盲JPEG隐写分析方法。首先,经过两级小波分解,计算每个子带与水平,垂直和对角线方向上相邻系数之差的联合概率密度,并从联合概率密度矩阵中提取熵和能量作为特征。然后将图像分解为三个子带,并从每个子带的小波系数中提取PDF(概率密度函数)。最后,将上述三种特征组合起来以检测图像。在实验中,将该方法与其他各种盲隐写分析方法进行了比较,并讨论了不同特征组合对检测精度的影响。 F5,Jsteg,Outguess和Jphide等典型JPEG图像隐身算法的实验结果表明,该方法明显优于典型的盲隐写分析方法。所提出的方法还具有对双压缩图像的检测能力。

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