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Passive Forensics for Region Duplication Image Forgery Based on Harris Feature Points and Local Binary Patterns

机译:基于哈里斯特征点和局部二值模式的区域复制图像伪造被动取证

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Nowadays the demand for identifying the authenticity of an image is much increased since advanced image editing software packages are widely used. Region duplication forgery is one of the most common and immediate tampering attacks which are frequently used. Several methods to expose this forgery have been developed to detect and locate the tampered region, while most methods do fail when the duplicated region undergoes rotation or flipping before being pasted. In this paper, an efficient method based on Harris feature points and local binary patterns is proposed. First, the image is filtered with a pixelwise adaptive Wiener method, and then dense Harris feature points are employed in order to obtain a sufficient number of feature points with approximately uniform distribution. Feature vectors for a circle patch around each feature point are extracted using local binary pattern operators, and the similar Harris points are matched based on their representation feature vectors using the BBF algorithm. Finally, RANSAC algorithm is employed to eliminate the possible erroneous matches. Experiment results demonstrate that the proposed method can effectively detect region duplication forgery, even when an image was distorted by rotation, flipping, blurring, AWGN, JPEG compression, and their mixed operations, especially resistant to the forgery with the flat area of little visual structures.
机译:如今,由于广泛使用了高级图像编辑软件包,因此识别图像真实性的需求大大增加。区域重复伪造是最常用的立即篡改攻击之一。已经开发出了几种暴露这种伪造的方法来检测和定位被篡改的区域,而当复制的区域在粘贴之前经历旋转或翻转时,大多数方法都将失败。提出了一种基于Harris特征点和局部二值模式的有效方法。首先,使用逐像素自适应维纳方法对图像进行滤波,然后使用密集的哈里斯特征点,以获得足够数量的具有近似均匀分布的特征点。使用局部二进制模式运算符提取每个特征点周围的圆形补丁的特征向量,并使用BBF算法基于相似的哈里斯点的表示特征向量进行匹配。最后,采用RANSAC算法消除可能的错误匹配。实验结果表明,所提出的方法即使在旋转,翻转,模糊,AWGN,JPEG压缩及其混合操作导致图像失真的情况下,也能有效检测区域重复伪造,尤其是在视觉结构较小的平坦区域中,对伪造的抵抗力特别强。 。

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