Copy-Move Forgery Detection Based on Euclidean Distance and Texture Feature Analysis

Ashutosh Kumara, Neha Janu
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引用次数: 1

Abstract

Digital images are important part of our life. Copy and Move forgery detection techniques are designed to detect edited part of the image. The copy and move forgery techniques are based on the feature detection and matching. The techniques which are designed so far use the Euclidean distance concept for feature matching. The feature detection techniques which are much popular like Haar transformation are used for feature extraction. In this research, the PCA algorithm is used for the simplification of features which are extracted with Haar transformation. The GLCM algorithm is used for texture feature analysis of input image. In the end, Euclidean distance is used for feature matching and mismatched features are marked as forgery. The proposed approach is implemented in MALTAB and results are analyzed in terms of accuracy.
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基于欧氏距离和纹理特征分析的复制-移动伪造检测
数字图像是我们生活中重要的一部分。复制和移动伪造检测技术的目的是检测编辑的部分图像。复制和移动伪造技术是基于特征检测和匹配的。目前设计的技术都是使用欧几里得距离概念进行特征匹配。特征提取采用Haar变换等较为流行的特征检测技术。在本研究中,采用PCA算法对Haar变换提取的特征进行简化。采用GLCM算法对输入图像进行纹理特征分析。最后,利用欧几里得距离进行特征匹配,不匹配的特征被标记为伪造。在MALTAB中实现了该方法,并对结果进行了精度分析。
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