首页> 外文期刊>International Journal of System Dynamics Applications: An official publication of the Information Resources Management Association >Passive Copy- Move Forgery Detection Using Speed-Up Robust Features, Histogram Oriented Gradients and Scale Invariant Feature Transform
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Passive Copy- Move Forgery Detection Using Speed-Up Robust Features, Histogram Oriented Gradients and Scale Invariant Feature Transform

机译:使用加速鲁棒特征,直方图定向的梯度和尺度不变特征变换进行被动复制移动伪造检测

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摘要

Copy-Move is one of the most common technique for digital image tampering or forgery. Copy-Move in an image might be done to duplicate something or to hide an undesirable region. In some cases where these images are used for important purposes such as evidence in court of law, it is important to verify their authenticity. In this paper the authors propose a novel method to detect single region Copy-Move Forgery Detection (CMFD) using Speed-Up Robust Features (SURF), Histogram Oriented Gradient (HOG), Scale Invariant Features Transform (SIFT), and hybrid features such as SURF-HOG and SIFT-HOG. SIFT and SURF image features are immune to various transformations like rotation, scaling, translation, so SIFT and SURF image features help in detecting Copy-Move regions more accurately in compared to other image features. Further the authors have detected multiple regions COPY-MOVE forgery using SURF and SIFT image features. Experimental results demonstrate commendable performance of proposed methods.
机译:复制移动是用于数字图像篡改或伪造的最常见技术之一。可以在图像中进行复制移动以复制某些内容或隐藏不希望的区域。在某些情况下,这些图像用于重要目的(例如,法庭证据)时,验证其真实性很重要。在本文中,作者提出了一种新方法,该方法使用加速鲁棒特征(SURF),直方图定向梯度(HOG),尺度不变特征变换(SIFT)和混合特征等方法来检测单区域复制移动伪造检测(CMFD)。作为SURF-HOG和SIFT-HOG。 SIFT和SURF图像特征不受旋转,缩放,平移等各种变换的影响,因此与其他图像特征相比,SIFT和SURF图像特征有助于更准确地检测“复制移动”区域。此外,作者使用SURF和SIFT图像特征检测了多个区域的COPY-MOVE伪造。实验结果证明了所提出方法的出色表现。

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