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Exposing Digital Image Forgeries by Detecting Contextual Abnormality Using Convolutional Neural Networks

机译:通过使用卷积神经网络检测上下文异常来暴露数字图像伪造品

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摘要

Traditionally, digital image forensics mainly focused on the low-level features of an image, such as edges and texture, because these features include traces of the image’s modification history. However, previous methods that employed low-level features are highly vulnerable, even to frequently used image processing techniques such as JPEG and resizing, because these techniques add noise to the low-level features. In this paper, we propose a framework that uses deep neural networks to detect image manipulation based on contextual abnormality. The proposed method first detects the class and location of objects using a well-known object detector such as a region-based convolutional neural network (R-CNN) and evaluates the contextual scores according to the combination of objects, the spatial context of objects and the position of objects. Thus, the proposed forensics can detect image forgery based on contextual abnormality as long as the object can be identified even if noise is applied to the image, contrary to methods that employ low-level features, which are vulnerable to noise. Our experiments showed that our method is able to effectively detect contextual abnormality in an image.
机译:传统上,数字图像取证主要关注图像的低级特征,例如边缘和纹理,因为这些特征包括图像修改历史的痕迹。但是,采用低级功能的先前方法极易受到攻击,即使对于经常使用的图像处理技术(如JPEG和调整大小)也很脆弱,因为这些技术会给低级功能增加噪音。在本文中,我们提出了一个框架,该框架使用深度神经网络来检测基于上下文异常的图像操作。提出的方法首先使用众所周知的对象检测器(例如基于区域的卷积神经网络(R-CNN))检测对象的类别和位置,并根据对象,对象的空间上下文和对象的组合来评估上下文得分。对象的位置。因此,与采用容易受噪声影响的低级特征的方法相反,即使即使对图像施加了噪声,只要能够识别出物体,提出的取证也可以基于上下文异常来检测图像伪造。我们的实验表明,我们的方法能够有效地检测图像中的上下文异常。

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