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Adaptive Steganography Using 2D Gabor Filters and Ensemble Classifiers

机译:使用2D Gabor滤波器和集合分类器的自适应隐写术

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In order to preserve the statistical properties of image in all scales and orientations when the embedding changes are constrained to the complicated texture regions, a steganography method is proposed based on 2 dimensional (2D) Gabor filters and Ensemble classifiers. First, we use histogram sequence features of filtered images generated by Gabor filters to describe the texture properties of the image. Then, we design the distortion function using the classification results differences of classifiers between cover and stego. The stego images are used to train the ensemble classifiers using the current popular steganography schemes, such HUGO and S-UNIWARD. Then, the message is embedded using STC (Syndrome Trellis Code). The experimental results show that the proposed scheme can achieve a competitive performance compared with the other steganography schemes HUGO, MVG and S-UNIWARD when using the SRM detection.
机译:为了在嵌入变化被限制为复杂的纹理区域的所有刻度和取向中的图像中的图像的统计特性,基于2维(2D)Gabor滤波器和集合分类器,提出了一种隐写方法。首先,我们使用Gabor滤波器生成的过滤图像的直方图序列特征来描述图像的纹理属性。然后,我们使用盖子和stego之间分类器的分类结果来设计失真函数。 STEGO图像用于使用当前流行的隐形方案,例如雨果和S-Uniward训练集合分类器。然后,使用STC(Syndrome Grellis Code)嵌入消息。实验结果表明,当使用SRM检测时,所提出的方案可以实现与其他隐写术计划雨果,MVG和S-UNIWAR相比的竞争性能。

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