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Median filtering detection using variation of neighboring line pairs for image forensics

机译:使用相邻线对的变化进行中位数滤波检测以进行图像取证

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Attention to tampering by median filtering (MF) has recently increased in digital image forensics. For the MF detection (MFD), this paper presents a feature vector that is extracted from two kinds of variations between the neighboring line pairs: the row and column directions. Of these variations in the proposed method, one is defined by a gradient difference of the intensity values between the neighboring line pairs, and the other is defined by a coefficient difference of the Fourier transform (FT) between the neighboring line pairs. Subsequently, the constructed 19-dimensional feature vector is composed of these two parts. One is the extracted 9-dimensional from the space domain of an image and the other is the 10-dimensional from the frequency domain of an image. The feature vector is trained in a support vector machine classifier for MFD in the altered images. As a result, in the measured performances of the experimental items, the area under the receiver operating characteristic curve (AUC, ROC) by the sensitivity (P-TP: the true positive rate) and 1-specificity (P-FP: the false-positive rate) are above 0.985 and the classification ratios are also above 0.979. P-e (a minimal average decision error) ranges from 0 to 0.024, and P-TP at P-FP = 0.01 ranges from 0.965 to 0.996. It is confirmed that the grade evaluation of the proposed variation-based MF detection method is rated as "Excellent (A)" by AUC is above 0.9. (C) The Authors. Published by SPIE under a Creative Commons Attribution 3.0 Unported License.
机译:最近,在数字图像取证中,人们越来越重视通过中值滤波(MF)进行篡改。对于MF检测(MFD),本文提出了一种特征向量,该特征向量是从相邻线对之间的两种变化中提取的:行方向和列方向。在所提出的方法的这些变化中,一个由相邻线对之间的强度值的梯度差定义,另一个由相邻线对之间的傅立叶变换(FT)的系数差定义。随后,构造的19维特征向量由这两部分组成。一个是从图像的空间域中提取的9维,另一个是从图像的频率域中提取的10维。在支持向量机分类器中训练特征向量,以用于更改后的图像中的MFD。结果,在测量的实验项目的性能中,通过灵敏度(P-TP:真阳性率)和1-特异性(P-FP:假性)的接收器工作特性曲线(AUC,ROC)下的面积阳性率)均高于0.985,分类率也高于0.979。 P-e(最小平均决策误差)的范围是0到0.024,P-FP = 0.01时的P-TP范围是0.965到0.996。可以确认,所提出的基于变异的MF检测方法的等级评估被AUC评为“优秀(A)”,高于0.9。 (C)作者。由SPIE根据Creative Commons Attribution 3.0 Unported License发布。

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