调色板图像的隐写分析:攻击最优奇偶校验分配算法

Xiangwei Kong, Zi-Ren Wang, Xingang You
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引用次数: 15

摘要

隐写术是一种通过将信息嵌入多媒体数据而不引起任何怀疑的通信技术。最优奇偶校验(OPA)算法是调色板图像隐写方法之一。但是目前还没有有效的隐写分析方法能够可靠地攻击它。本文提出了一种利用OPA算法检测嵌入的秘密信息的统计隐写分析方法。在分析基于gif的隐写中索引替换的RTS (replacement-transfer structure)结构的基础上,通过收敛连续替换(CCR)操作,探讨了OPA隐写图像中核心元素的奇异统计量。另一方面,我们可以通过一种特殊的滤波运算从隐写图像中估计出封面图像的统计量。利用覆盖图像统计量和隐写图像奇异统计量的估计,利用OPA算法估计GIF图像中嵌入的秘密信息的长度。实验结果表明,该算法能够准确地估计出隐藏信息的长度
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Steganalysis of Palette Images: Attack Optimal Parity Assignment Algorithm
Steganography is the art of communicating a message by embedding it into multimedia data without drawing any suspicions. Optimal parity assignment (OPA) algorithm is one of palette image steganographic methods. But there is still no effective steganalytic method that can attack it reliably. In this paper, we present a statistical steganalysis for detecting the secret messages embedded by using OPA algorithm. Based on the analysis of RTS (replacement-transfer structure) of index replacement in GIF-based steganography, we explore the singular statistic of core elements in OPA stego-images via convergent continuous replacement (CCR) operation. On the other hand, we can estimate the statistic of cover image from stego-image by a special filtering operation. With the estimation of cover image statistic and the singular statistic of the stego-image, the length of secret messages embedded in GIF images with OPA algorithm can be estimated. The experimental results indicate that our algorithm can estimate the length of hidden messages accurately
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