感知图像哈希篡改检测使用泽尼克矩

Yan Zhao, Weimin Wei
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引用次数: 8

摘要

本文提出了一种基于泽尼克矩的图像哈希算法。该方法基于幅值的旋转不变性和泽尼克矩的修正相位。首先,输入图像被分成重叠的块。计算这些块的泽尼克矩,然后将修改后的泽尼克矩的每个振幅和相位编码为3位,形成中间哈希。最后,对中间哈希序列进行伪随机置换,得到最终哈希序列。哈希之间的相似性是用汉明距离来衡量的。实验结果表明,该方法对大多数内容保留攻击具有较强的鲁棒性。两幅不同图像之间哈希值的汉明距离大于阈值。该方法可用于检测篡改图像,并能定位图像中的篡改区域。
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Perceptual image hash for tampering detection using Zernike moments
In this paper, a new image hashing method using Zernike moments is proposed. This method is based on rotation invariance of magnitudes and corrected phases of Zernike moments. At first the input image is divided into overlapped blocks. Zernike moments of these blocks are calculated and then each of the amplitudes and phases of modified Zernike moments is then encoded into three bits to form the intermediate hash. Lastly, the final hash sequence is obtained by pseudo-randomly permuting the intermediate hash sequence. Similarity between hashes is measured with the Hamming distance. Experimental results show that this method is robust against most content-preserving attacks. The Hamming distance of Hashes between two different images is bigger than the threshold. This method can be used to detect tampering image, and can locate the tampered region in the image.
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