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A Universal Digital Image Steganalysis Method Based on Sparse Representation

机译:基于稀疏表示的通用数字图像隐写分析方法

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With the development of modern steganography technologies, steganalysis has been a new research topic in the field of information security. Since JPEG images have been widely used in our daily life, the steganalysis for JPEG images becomes very important and significant. This paper propose a new steganalysis method based on sparse representation, intending to overcome the shortcomings of traditional classifiers in the field of universal steganalysis for JPEG images. Experimental results show that, comparing with the universal steganalysis method for JPEG stego images based on SVM, our method improves detection accuracy to some extent, and can avoid "over-fitting" problem in the process of classification. Experimental results also prove that our method is more robust than SVM when the detection images meet with Gaussian noises or Salt-Pepper noise.
机译:随着现代隐写技术的发展,隐写分析已经成为信息安全领域的一个新的研究课题。由于JPEG图像已广泛应用于我们的日常生活中,因此对JPEG图像的隐写分析变得非常重要和重要。本文提出了一种基于稀疏表示的隐写分析新方法,旨在克服传统分类器在JPEG图像通用隐写分析领域的不足。实验结果表明,与基于SVM的JPEG隐身图像通用隐写分析方法相比,该方法在一定程度上提高了检测精度,并避免了分类过程中的“过拟合”问题。实验结果还证明,当检测图像遇到高斯噪声或椒盐噪声时,我们的方法比SVM更具鲁棒性。

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