An Overview of Copy Move Forgery Detection Approaches

G. S, D. S
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引用次数: 1

Abstract

Images have greater expressive power than any other forms of documents. With the Internet, images are widespread in several applications. But the availability of efficient open-source online photo editing tools has made editing these images easy. The fake images look more appealing and original than the real image itself, which makes them indistinguishable and hence difficult to detect. The authenticity of digital images like medical reports, scan images, financial data, crime evidence, legal evidence, etc. is of high importance. Detecting the forgery of images is therefore a major research area. Image forgery is categorized as copy-move forgery, splicing, and retouching. In this work, a review of copy-move forgery is discussed along with the existing research on its detection and localization using both conventional and deep-learning mechanisms. The datasets used and challenges towards improving or developing novel algorithms are also presented.
拷贝移动伪造检测方法综述
图像比任何其他形式的文件都具有更强的表现力。随着互联网的发展,图像在许多应用中得到了广泛的应用。但是,高效的开源在线照片编辑工具的可用性使得编辑这些图像变得容易。假图像看起来比真实图像本身更吸引人,更原始,这使得它们难以区分,因此很难被发现。医疗报告、扫描图像、金融数据、犯罪证据、法律证据等数字图像的真实性非常重要。因此,图像伪造检测是一个重要的研究领域。图像伪造分为复制-移动伪造、拼接和修饰。在这项工作中,回顾了复制-移动伪造以及使用传统和深度学习机制对其检测和定位的现有研究。所使用的数据集和改进或开发新算法的挑战也被提出。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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