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Detection of Tampered Region Boundaries in Splicing Forgery Images

机译:剪接伪造图像中篡改区域边界的检测

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The development of technology caused a significant increase in the use of images in forensic cases. It is common that manipulated images are presented as evidence in courts which requires an authenticity check. In this study, we analyze splicing forgeries where the manipulations are obtained by combining different images. The proposed method divides the original images and the manipulated images into small sub-blocks. After the distinctive statistical information of the images is extracted using ELA (Error Level Analysis), the necessary discrimitative information is learned using a convolutional neural network. The method was tested on the CASIA dataset and is shown to perform comparable or better than some existing methods.
机译:技术的发展导致在法医案件中使用图像的显着增加。很常见的是,操纵图像被呈现为需要真实性检查的法院的证据。在本研究中,我们通过组合不同的图像来分析操纵来获得操纵的剪接伪造。该方法将原始图像和操纵图像划分为小子块。在使用ELA提取图像的独特统计信息之后(错误级别分析),使用卷积神经网络学习必要的歧视信息。该方法在CASIA数据集上进行了测试,并被示出比某些现有方法执行可比或更好。

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