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Copy-Move Forgery Detection Technique for Forensic Analysis in Digital Images

机译:用于数字图像取证分析的复制移动伪造检测技术

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摘要

Due to the powerful image editing tools images are open to several manipulations; therefore, their authenticity is becoming questionable especially when images have influential power, for example, in a court of law, news reports, and insurance claims. Image forensic techniques determine the integrity of images by applying various high-tech mechanisms developed in the literature. In this paper, the images are analyzed for a particular type of forgery where a region of an image is copied and pasted onto the same image to create a duplication or to conceal some existing objects. To detect the copy-move forgery attack, images are first divided into overlapping square blocks and DCT components are adopted as the block representations. Due to the high dimensional nature of the feature space, Gaussian RBF kernel PCA is applied to achieve the reduced dimensional feature vector representation that also improved the efficiency during the feature matching. Extensive experiments are performed to evaluate the proposed method in comparison to state of the art. The experimental results reveal that the proposed technique precisely determines the copy-move forgery even when the images are contaminated with blurring, noise, and compression and can effectively detect multiple copy-move forgeries. Hence, the proposed technique provides a computationally efficient and reliableway of copy-move forgery detection that increases the credibility of images in evidence centered applications.
机译:由于功能强大的图像编辑工具,图像可以进行多种操作。因此,它们的真实性变得令人怀疑,尤其是当图像具有影响力时,例如在法院,新闻报道和保险索赔中。图像取证技术通过应用文献中开发的各种高科技机制来确定图像的完整性。在本文中,对图像进行了特定类型的伪造分析,其中将图像的某个区域复制并粘贴到同一图像上以创建副本或隐藏某些现有对象。为了检测复制移动伪造攻击,首先将图像划分为重叠的正方形块,并采用DCT分量作为块表示。由于特征空间的高维本质,高斯RBF核PCA被应用来实现降维特征向量表示,这也提高了特征匹配期间的效率。与现有技术相比,进行了大量实验以评估所提出的方法。实验结果表明,所提出的技术即使在图像被模糊,噪声和压缩污染的情况下,也能精确地确定复制移动伪造品,并且可以有效地检测出多个复制移动伪造品。因此,所提出的技术提供了复制移动伪造检测的计算有效且可靠的方式,从而增加了以证据为中心的应用程序中图像的可信度。

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  • 来源
    《Mathematical Problems in Engineering》 |2016年第5期|8713202.1-8713202.13|共13页
  • 作者单位

    Univ Engn & Technol, Dept Comp Engn, Taxila 47050, Pakistan;

    Univ Engn & Technol, Dept Software Engn, Taxila 47050, Pakistan;

    Univ Engn & Technol, Dept Comp Sci, Taxila 47050, Pakistan;

    Univ Engn & Technol, Dept Comp Engn, Taxila 47050, Pakistan;

    Hazara Univ, Dept Informat Technol, Mansehra 21140, Pakistan;

    Korea Univ Technol & Educ, Sch Comp Sci & Engn, Cheonan 330708, South Korea;

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