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首页> 外文期刊>International journal of digital crime and forensics >Digital Image Forensics Based on CFA Interpolation Feature and Gaussian Mixture Model
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Digital Image Forensics Based on CFA Interpolation Feature and Gaussian Mixture Model

机译:基于CFA插值特征和高斯混合模型的数字图像取证

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摘要

According to the characteristics of the color filter array interpolation in a camera, an image splicing forgery detection algorithm based on bi-cubic interpolation and Gaussian mixture model is proposed. The authors make the assumption that the image is acquired using a color filter array, and that tampering removes the artifacts due to a demosaicing algorithm. This article extracts the image features based on the variance of the prediction error and create image feature likelihood map to detect and locate the image tampered areas. The experimental results show that the proposed method can detect and locate the splicing tampering areas precisely. Compared with bi-linear interpolation, this method can reduce the prediction error and improve the detection accuracy.
机译:根据照相机中的滤色器阵列插值的特性,提出了一种基于Bi-立方插值和高斯混合模型的图像拼接伪造检测算法。作者假设使用滤色器阵列获取图像,并且篡改由于去索算法而去除伪像。本文基于预测误差的方差提取图像特征,并创建图像特征似然映射以检测和定位图像篡改区域。实验结果表明,该方法可以精确地检测和定位拼接篡改区域。与双线性插值相比,该方法可以减少预测误差并提高检测精度。

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