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Region duplication detection in digital images based on Centroid Linkage Clustering of key-points and graph similarity matching

机译:基于质心联动聚类的数字图像中的区域复制检测键点和图形相似性匹配

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摘要

Region duplication or copy-move forgery is an attack in which a region of an image is copied and pasted onto another location of the same image. In the recent state-of-the-art, a number of key-point based methods have been proposed for copy-move forgery detection in digital images. Though the problems of re-scaling and rotation in region duplication, have been sufficiently investigated using key-point based methods, post-processing based attacks such as flip, blur, brightness and noise, remain an open challenge in this field. In this paper, we address the problem of copy-move forgery detection in images, plus aim to identify copied regions, having undergone different geometric (such as rotation, re-scale), and post-processing attacks (such as Gaussian noise, blurring and brightness adjustment). In the proposed algorithm we introduce a region based key-point selection concept, which is considerably more discriminative than single SIFT key-point extraction. In this work, we apply Centroid Linkage Clustering, to identify duplicated regions in an image, from matched key-points. Also, we introduce a Graph Similarity Matching algorithm, to optimize false matches. Our experimental results demonstrate the efficiency of the proposed method in terms of forgery detection and localization efficiency, for a wide range of geometric and post-processing based attacks in region duplication.
机译:区域复制或复制移动伪造是一种攻击,其中将图像的区域复制并粘贴到相同图像的另一个位置。在最近的最先进的状态下,已经提出了许多基于关键点的方法在数字图像中复制移动伪造检测。尽管使用基于关键点的方法,已经充分地研究了在区域重复中重复和旋转的问题,但是基于后处理的攻击,如翻转,模糊,亮度和噪声,仍然是该领域的开放挑战。在本文中,我们解决了图像中的复制伪造检测问题,以及旨在识别复制的区域,经过不同的几何(例如旋转,重刻)和后处理攻击(如高斯噪声,模糊和亮度调整)。在所提出的算法中,我们引入了基于区域的关键点选择概念,其比单个SIFT键点提取相当多样化。在这项工作中,我们应用了质心链接群集,以识别图像中的重复区域,匹配的键点。此外,我们介绍了一个图形相似性匹配算法,以优化假匹配。我们的实验结果表明,在伪造的检测和本地化效率方面,在伪造的检测和本地化效率方面展示了基于区域复制的各种几何和后处理的效率。

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