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首页> 外文期刊>Research journal of applied science, engineering and technology >An Efficient Steganalytic Algorithm based on Contourlet with GLCM
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An Efficient Steganalytic Algorithm based on Contourlet with GLCM

机译:基于Contourlet和GLCM的高效隐写算法。

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Steganalysis is a technique to detect the hidden embedded information in the provided data. This study proposes a novel steganalytic algorithm which distinguishes between the normal and the stego image. Ⅲ level contourlet is exploited in this study. Contourlet is known for its ability to capture the intrinsic geometrical structure of an image. Here, the lowest frequency component of each level is obtained. The pixel distance is taken as 1 and the directions considered are 0, 45, 90 and 180°, respectively. Finally, Support Vector Machine (SVM) is used as the classifier to differentiate between the normal and the stego image. This steganalytic system is tested with DWT, Ridgelet, Contourlet, Curvelet, Bandelet and Shearlet. All these were tested in the aspects of first order, Run length and Gray-Level Co-occurrence Matrix (GLCM) features. Among all these, Contourlet with GLCM shows the maximum accuracy of 98.79% and has the lowest misclassification rate of 1.21 and are presented in graphs.
机译:隐写分析是一种检测提供的数据中隐藏的嵌入式信息的技术。这项研究提出了一种新颖的隐写分析算法,可以区分正常图像和隐秘图像。本研究利用了Ⅲ级轮廓波。 Contourlet以捕获图像的固有几何结构而闻名。在此,获得每个级别的最低频率分量。像素距离取为1,考虑的方向分别为0、45、90和180°。最后,将支持向量机(SVM)用作分类器,以区分正常图像和隐秘图像。该隐写分析系统已通过DWT,Ridgelet,Contourlet,Curvelet,Bandelet和Shearlet进行了测试。所有这些都在一阶,游程长度和灰度共现矩阵(GLCM)功能方面进行了测试。其中,带有GLCM的Contourlet的最高准确度为98.79%,错误分类率最低为1.21,并在图表中显示。

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