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Identification of source-enhanced composite images

机译:识别源增强的合成图像

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摘要

Digital images have an important function in several fields like journalism, film industry and forensic investigations. Several image editing softwares can change the content of an image very easily. Attackers use contrast enhancement for avoiding the traces left by image forgery. So it is necessary to perform contrast enhancement detection for detecting an image forgery. In the proposed system, there are three algorithms that detect the global contrast enhancement, the type of contrast enhancement operation applied and local contrast enhancement in digital images. The global contrast enhancement is detected with the identification of zero-height gap bins present in the histogram. Then the type of contrast enhancement operation applied to each image is predicted using artificial neural network and support vector machine. Later on, for the detection of local contrast enhancement mappings, the positions of detected blockwise peak or gap bins are combined and for discovering the cut and paste image forgeries, the consistency between regional artifacts is checked. To verify the effectiveness and efficiency of the proposed technique extensive experiments have verified.
机译:数字图像在新闻,电影业和法医调查等多个领域具有重要作用。多种图像编辑软件可以非常轻松地更改图像内容。攻击者使用对比度增强功能来避免图像伪造留下的痕迹。因此,有必要进行对比度增强检测以检测图像伪造。在所提出的系统中,存在三种算法来检测全局对比度增强,所应用的对比度增强操作的类型以及数字图像中的局部对比度增强。通过识别直方图中存在的零高度间隙仓来检测全局对比度增强。然后使用人工神经网络和支持向量机预测应用于每个图像的对比度增强操作的类型。随后,为了检测局部对比度增强映射,将检测到的块状峰或间隙仓的位置合并在一起,并且为了发现剪切和粘贴图像的伪造,检查区域伪影之间的一致性。为了验证所提出技术的有效性和效率,已经进行了广泛的实验。

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