The efficiency of applying DWT and feature extraction into copy-move images detection

Tu Huynh-Kha, T. Le-Tien, Synh Ha-Viet-Uyen, Khoa Huynh-Van
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引用次数: 6

Abstract

The paper presents the efficiency of applying DWT into copy-move image forgery detection by developing an algorithm which combines DWT and feature extraction to improve the computational time compared to the algorithm without DWT. With the characteristic of invariant to rotation, Zernike Moments are used to extract the features of image blocks. The novelty of this article is not only combination of multiscale and features extraction but also the modification of parameters of Zernike moments in the proposed algorithm. The tested image is reduced dimension by DWT before looking for the similar regions as traces of copy-move forgery manipulation. Upon the principle that most of forged information concentrate at the low frequencies, the approximation sub-band (LL) is considered for detection. This band is then split into 16×16 overlapping blocks from which the modified Zernike moments are extracted to be block feature vectors with higher exactness than the traditional Zernike moments. These vectors are arranged into matrix and sorted lexicographically to find the similar vectors from group of consecutive vectors having correlation coefficients of 0.95. The fact that neighbor blocks may be similar and the copied regions can be comprised by many blocks and requires a distance to make sure that they are really similar, not neighbors. Simulation results running in Matlab R2013a proves the feasibility and efficiency of the proposed algorithm.
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将小波变换和特征提取应用于复制运动图像检测的效率
本文通过开发一种将DWT与特征提取相结合的算法,与不使用DWT的算法相比,提高了计算时间,从而证明了将DWT应用于复制-移动图像伪造检测的效率。利用泽尼克矩对旋转不变性的特点,提取图像块的特征。本文的新颖之处在于将多尺度与特征提取相结合,并对泽尼克矩的参数进行了修改。在寻找与复制-移动伪造操作痕迹相似的区域之前,测试图像通过DWT降维。根据大部分伪造信息集中在低频的原理,考虑采用近似子带(LL)进行检测。然后将该带分割为16×16重叠块,从中提取改进的泽尼克矩作为块特征向量,比传统的泽尼克矩精度更高。将这些向量排列成矩阵,并按字典顺序排序,从相关系数为0.95的一组连续向量中找到相似的向量。相邻块可能是相似的,复制区域可以由许多块组成,并且需要一个距离来确保它们是真正相似的,而不是相邻的。在Matlab R2013a中运行的仿真结果证明了该算法的可行性和有效性。
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