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Result Analysis of Cross-Validation on low embedding Feature-based Blind Steganalysis of 25 percent on JPEG images using SVM

机译:基于SVM的JPEG图像低嵌入特征盲隐式解析25%交叉验证结果分析。

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This paper presents a result analysis of steganalysis of normal JPEG images as compared to the images that have undergone a cross-validation. Four different algorithms, in spatial and transform domain is used for steganography. They are LSB Matching, LSB Replacement, Pixel Value Differencing and F5. The embedding percentage considered in this paper is 25. The features considered for analysis are First Order features, Second Order features, Extended DCT features and Markov features. The classifier used here is Support Vector Machine. A different sampling of data is considered for classification.
机译:本文介绍了对普通JPEG图像与经过交叉验证的图像进行隐写分析的结果分析。在空间和变换域中的四种不同算法用于隐写术。它们是LSB匹配,LSB替换,像素值差和F5。本文考虑的嵌入百分比为25。要分析的特征为一阶特征,二阶特征,扩展DCT特征和马尔可夫特征。此处使用的分类器是支持向量机。考虑将不同的数据采样进行分类。

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