首页> 外文会议>Proceedings of the 2010 10th International Conference on Intelligent Systems Design and Applications >Blind image steganalysis via joint co-occurrence matrix and statistical moments of contourlet transform
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Blind image steganalysis via joint co-occurrence matrix and statistical moments of contourlet transform

机译:通过联合共生矩阵和Contourlet变换的统计矩进行盲图像隐写分析

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A blind color image steganalyzer is proposed, in which the features are extracted from Contourlet domain. Statistical features of Contourlet coefficients and cooccurrence metrics of subband images are used as features. For evaluating the proposed steganalysis method, some popular steganography methods such as OutGuess, JPHS, Model-based and Jsteg are used with payloads of 10% to 25%. To reduce the number of features, Analysis of Variance (ANOVA) method is used and the selected features are fed to nonlinear Support Vector Machine (SVM) for classification into stego and clean images. Empirical results show high sensitivity of Contourlet and co-occurrence matrix features to data hiding.
机译:提出了一种盲彩色图像STEGANALYZER,其中从CONTOURLED域中提取特征。子带图像的Contourlet系数和Coccurrence度量的统计特征用作特征。为了评估所提出的隐草方法,一些流行的隐写法方法如外语,JPH,模型和JSTEG,有效载荷为10%至25%。为了减少特征的数量,使用方差分析(ANOVA)方法,并且所选的特征被馈送到非线性支持向量机(SVM)以分类为STEGO和清洁图像。经验结果显示了Contourlet的高灵敏度和对数据隐藏的共发生矩阵特征。

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