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Robust Coverless Image Steganography Based on DCT and LDA Topic Classification

机译:基于DCT和LDA主题分类的鲁棒无覆盖图像隐写

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摘要

In order to improve the robustness and capability of resisting image steganalysis, a novel coverless image steganography algorithm based on discrete cosine transform and latent dirichlet allocation (LDA) topic classification is proposed. First, latent dirichlet allocation topic model is utilized for classifying the image database. Second, the images belonging to one topic are selected, and 8 × 8 block discrete cosine transform is performed to these images. Then robust feature sequence is generated through the relation between direct current coefficients in the adjacent blocks. Finally, an inverted index which contains the feature sequence, dc, location coordinates, and image path is created. For the purpose of achieving image steganography, the secret information is converted into a binary sequence and partitioned into segments, and the image whose feature sequence equals to the secret information segments is chosen as the cover image according to the index. After that, all cover images are sent to the receiver. In the whole process, no modification is done to the original images. Experimental results and analysis show that the proposed algorithm can resist the detection of existing steganalysis algorithms, and has better robustness against common image processing and better ability to resist steganalysis compared with the existing coverless image steganography algorithms. Meanwhile, it is resistant to geometric attacks to some extent. It has great potential application in secure communication of big data environment.
机译:为了提高抵抗图像隐写分析的能力和鲁棒性,提出了一种基于离散余弦变换和潜在狄利克雷分配(LDA)主题分类的无覆盖图像隐写算法。首先,利用潜在狄利克雷分配主题模型对图像数据库进行分类。其次,选择属于一个主题的图像,并对这些图像执行8×8块离散余弦变换。然后,通过相邻块中直流系数之间的关系生成健壮的特征序列。最后,创建一个包含特征序列,dc,位置坐标和图像路径的倒排索引。为了达到图像隐写术的目的,将秘密信息转换成二进制序列并划分为段,并根据索引选择特征序列等于秘密信息段的图像作为封面图像。之后,所有封面图像都发送到接收器。在整个过程中,不对原始图像进行任何修改。实验结果和分析表明,与现有的无覆盖图像隐写算法相比,该算法能抵抗现有隐写分析算法的检测,对普通图像处理具有较好的鲁棒性,并且具有较好的抗隐写分析能力。同时,它在一定程度上抵抗几何攻击。在大数据环境的安全通信中具有广阔的应用前景。

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