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Copy-move forgery detection using adaptive keypoint filtering and iterative region merging

机译:使用自适应关键点滤波和迭代区域合并的复制移动伪造检测

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摘要

Copy-move forgery detection can generally be divided into two categories: block-based or keypoint-based methods. However, the existing block-based methods are usually lack of efficiency and the keypoint-based methods have not good detection performance. In this paper, a novel method using the adaptive keypoint filtering and iterative region merging is proposed for copy-move forgery detection. First, a feature extraction algorithm is presented to obtain the candidate keypoint pairs. Subsequently, adaptive keypoint filtering involving adaptive nearest neighbor pair filtering and outlier filtering is proposed to remove the outliers and obtain the inlier (authentic keypoint) pairs. The iterative region merging involving adaptive region iteration and region merging is proposed to iteratively generate more neighboring keypoint pairs and then merge the image segmentations (superpixels) to implement the copy-move region matting. Compared with other state-of-the-art methods, a series of experiments show that the proposed method can overcome defects and achieve better efficiency while keeping the high detection precision in copy-move forgery detection even under conditions that include various post-processing distortions.
机译:复制移动伪造检测通常可以分为两类:基于块的方法或基于关键点的方法。但是,现有的基于块的方法通常效率低下,基于关键点的方法检测性能不佳。提出了一种利用自适应关键点滤波和迭代区域合并的新方法来进行复制移动伪造检测。首先,提出了一种特征提取算法来获取候选关键点对。随后,提出了包括自适应最近邻对滤波和离群值滤波的自适应关键点滤波,以去除离群值并获得离群(真实关键点)对。提出了涉及自适应区域迭代和区域合并的迭代区域合并,以迭代方式生成更多相邻的关键点对,然后合并图像分割(超像素)以实现复制移动区域抠像。与其他最新方法相比,一系列实验表明,即使在包括各种后处理变形的条件下,该方法也可以克服缺陷并实现更高的效率,同时在复制移动伪造检测中保持较高的检测精度。 。

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