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A robust and forensic transform for copy move digital image forgery detection based on dense depth block matching

机译:基于密集深度块匹配的复制移动数字图像伪造检测的鲁棒和法医变换

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摘要

Copy-move forgery is one of the most popular tampering artefacts in digital images. However, tampering effect in digital images makes the authentication of the processing as untrustworthy. In this paper, a combination of Fourier-Mellin and Zernike moments (FMZM) Transform is proposed which detects the copy-move region with high-speed and low-computational complexity. Here, initially an image is segmented into various blocks using marker controlled watershed management and from that proposed FMZM feature extraction is used which detects duplication. The detected regions are matched with the Dense Depth Reconstruction based lexicographically sorting. Finally, tampered outliers presented at the data are removed through RANSAC (RANdom Sample Consensus) algorithm, in which removed false matches are verified with the morphological operators. The efficiency of proposed method is measured by various performance metrics and this method earned up to 97.56%, 99.98%, and 97.12% for precision, recall, and F1-score performance, respectively.
机译:复制 - 移动伪造是数字图像中最受欢迎的篡改人工之一。然而,数字图像中的篡改效果使得处理的认证为不值得信赖。在本文中,提出了傅立叶蛋白和Zernike矩(FMZM)变换的组合,其检测具有高速和低计算复杂度的复制移动区域。这里,最初使用标记控制的流域管理分段为各种块,并且使用该提取的FMZM特征提取,用于检测重复。检测到的区域与基于致密深度重建的基于词典分类匹配。最后,通过RANSAC(随机样本共识)算法删除了在数据处呈现的篡改异常值,其中删除了错误的误差与形态运算符验证。所提出的方法的效率是通过各种性能度量来衡量的,这种方法分别获得高达97.56%,99.98%和97.12%,分别进行精度,召回和F1分数性能。

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