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A New Design Method about the Universal Steganalysis Classifier in Digital Image

机译:一种关于数字图像通用隐星分类分类的新设计方法

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Based on a variety of commonly used steganographic algorithms in the spatial domain of digital images, a new design method is proposed for the universal steganalysis classifier. The main idea is that we use steganalysis to extract features from the cover image set and their corresponding steganographic image set for a certain kind of steganographic algorithm, and those features are used for training the corresponding classifier. Then the classifier is used to test the remaining steganographic algorithms respectively and until the cross test is completed successively. According to the cross test results, we chose three adaptive steganographic algorithms from various steganographic algorithms. Then we combine features of the selected three steganographic algorithms to train a universal steganalysis classifier in digital image. When the method used by the image to embed secret information is unknown, we can give priority to use the universal steganalysis classifier to determine whether they contain secret messages, thereby improving the overall work efficiency. Experimental results demonstrate the feasibility of our proposed method for the universal steganalysis classifier in digital image.
机译:基于各种的数字图像中的空间域常用隐写算法,一个新的设计方法提出了一种用于在通用隐写分类器。其主要思想是,我们使用隐写提取从封面图像设置功能及其相应的隐写图像集的某种隐写算法,而这些功能是用于训练相应的分类。然后,分类器用于分别测试剩余的隐写算法和直到横测试被连续地完成。根据交叉测试结果,我们选择了来自不同的隐写算法3种自适应隐写算法。然后,我们结合了所选择的三个隐写算法的特点,培养数字图像的通用隐写分类。当由图像中嵌入秘密信息所使用的方法是未知的,我们可以优先使用通用隐写分类,以确定它们是否包含机密信息,从而提高整体的工作效率。实验结果表明,我们提出了在数字图像的通用隐写分类方法的可行性。

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