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Steganalysis by Tracking Image Noise with Higher Order Statistics

机译:通过高阶统计跟踪图像噪声来分析

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We present statistical techniques for Steganalysis of natural images potentially subjected to data hiding. Our hypothesis is that image noises have certain statistics, while data hiding schemes will alter them and generate entirely different noises that can be tracked with high order statistics. We extract noises from images by wavelet denoising which outperforms Gaussian smoothing with respect to images with good quality. In this paper, wavelet packets decomposition followed with band selection is adopted to obtain statistics of image noises instead of wavelet decomposition. The classifier between cover-images and stego-images is built using support vector machines (SVM) which have good generalization performance.
机译:我们呈现统计技术,用于潜在地进行数据隐藏的自然图像的沉淀分析。我们的假设是图像噪音具有一定的统计数据,而数据隐藏方案将改变它们并产生完全不同的噪音,可以用高阶统计跟踪。我们通过小波去噪从图像中提取噪声,这优于高斯平滑的图像,相对于具有良好质量的图像。在本文中,采用小波分组分解,然后采用频带选择来获得图像噪声的统计而不是小波分解。封面图像和stego图像之间的分类器是使用具有良好泛化性能的支持向量机(SVM)构建。

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