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Digital image steganalysis based on the reciprocal singular value curve

机译:基于倒数奇异值曲线的数字图像隐写分析

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摘要

Embedding secret messages in steganographic approaches is similar to adding some weak noises to the original media. One of the traditional ways for image steganalysis is computing a feature sets using noise residuals. From another perspective, the disturbance of natural image statistics can be explored to extract the feature vector for steganalysis. In fact, the alteration of natural scene statistics can be investigated to reveal the presence of secret messages embedded in images. Hence, the feature vectors can be constructed using such changes. In the proposed scheme, the alteration of singular value curve is used to construct the steganalysis feature vector. Two spatial and JPEG based feature vectors are extracted in the proposed statistical exploitation. The experimental results illustrate the acceptable performance of the proposed feature vectors for both universal and JPEG based steganalysis methods.
机译:将秘密消息嵌入密写方法类似于向原始媒体添加一些微弱的噪音。图像隐匿分析的传统方法之一是使用噪声残差计算特征集。从另一个角度来看,可以探索自然图像统计的干扰,以提取特征向量进行隐写分析。实际上,可以调查自然场景统计数据的变化以揭示嵌入在图像中的秘密消息的存在。因此,可以使用这种改变来构造特征向量。在该方案中,利用奇异值曲线的变化构造隐写特征向量。在提出的统计利用中提取了两个基于空间和基于JPEG的特征向量。实验结果说明了针对通用和基于JPEG的隐写分析方法所提出的特征向量的可接受性能。

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