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Privacy-preserved data hiding using compressive sensing and fuzzy C-means clustering

机译:隐私保留的数据隐藏使用压缩感测和模糊C-Means聚类

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Nowadays, digital images are confronted with notable privacy and security issues, and many research works have been accomplished to countermeasure these risks. In this article, a novel scheme for data hiding in encrypted domain is proposed using fuzzy C-means clustering and compressive sensing technologies to protect privacy of the host image. The original image is preprocessed first to generate multiple highly correlated classes with fuzzy C-means clustering algorithm. Then, all classes are further divided into two parts according to proper threshold. One is encrypted by stream cipher, and the other is encrypted and compressed simultaneously with compressive sensing technology for easy data embedding by information hider. The receiver can extract additional data and recover the original image with data-hiding key and encryption key. Experiments and analysis demonstrate that the proposed scheme can achieve higher embedding rate about additional data and better visual quality of recovered image than other state-of-the-art schemes.
机译:如今,数字图像面临着显着的隐私和安全问题,并且已经完成了许多研究作品以对策这些风险。在本文中,使用模糊C-Means聚类和压缩感测技术提出了一种用于加密域中的数据掩藏的新方案,以保护主机图像的隐私。首先预处理原始图像以产生具有模糊C均值聚类算法的多个高度相关的类。然后,根据适当的阈值,所有类别进一步分为两部分。一个由流密码加密,另一个是通过电压传感技术同时加密和压缩,以便通过信息垃圾嵌入数据。接收器可以提取附加数据并通过数据隐藏密钥和加密密钥恢复原始图像。实验和分析表明,所提出的方案可以实现额外数据的更高的嵌入率和比其他最先进的方案的恢复图像更好的视觉质量。

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