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An adaptive steganography algorithm based on block sensitivity vectors using HVS features

机译:一种基于HVS特征的基于块灵敏度向量的自适应隐写算法

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Steganography is the technique to hide secret data in certain media, digital image for example, without leaving any obvious evidence. As a branch of steganography, HVS feature for years has been one of the issues researchers focus on. In this paper, we introduce an improved adaptive steganography algorithm-SVBA algorithm, which fully analyzes the area statistical properties and adopts HVS features. SVBA algorithm first divides the image into 8∗8 blocks and analyzes the mean, variance and entropy value of gray by block, then sets a sensitivity vector for each block with considering HVS features and adjusts the steganography schema dynamically according to the block sensitivity vectors. Simulation experiment results on Matlab7.0 show this algorithm has a balanced performance on efficiency, capacity, imperceptibility and robustness.
机译:隐写术是隐藏某些媒体,数字图像中的秘密数据的技术,例如,不留下任何明显的证据。作为隐写术的分支,HVS特征多年来一直是研究人员专注的问题之一。在本文中,我们介绍了一种改进的自适应隐写算法-SVBA算法,该算法完全分析了区域统计特性并采用HVS特征。 SVBA算法首先将图像划分为8 * 8块,并通过块分析灰度的平均值,方差和熵值,然后根据考虑HVS特征来为每个块设置灵敏度向量,并根据块灵敏度向量动态调整隐写术模式。 MATLAB7.0上的仿真实验结果显示该算法对效率,容量,难以忍受性和鲁棒性具有平衡的性能。

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