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Steganalysis for Color JPEG Images Based on Ensemble Proportion Training |
Li Feng-yong Zhang Xin-peng Yu Jiang |
School of Communication and Information Engineering, Shanghai University, Shanghai 200072, China |
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Abstract A new steganalytic scheme of color JPEG images is proposed based on YCbCr color space. The features of the proposed scheme include intra-channel features and inter-channel features. The intra-channel features are formed by Markov features, extended DCT features and co-occurrence matrices features and capture effectively the dependency among DCT coefficients in Y channel. The inter-channel features are extracted in difference planes between channels, which can effectively capture the dependency between channels. In the classification process, the intra-channel and inter-channel features are respectively used to train sub-classifiers. By adjusting the proportion of two kinds of sub-classifier, the optimal decisions are synthesized by using majority voting. Experimental results show that proposed scheme is applicable to low embedding color JPEG images and the performance outperforms some state-of-the-art feature sets.
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Received: 07 April 2013
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Corresponding Authors:
Li Feng-yong
E-mail: fyli@shu.edu.cn
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