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Digital Image Tamper Detection Technique Based on Spectrum Analysis of CFA Artifacts

机译:基于CFA伪像频谱分析的数字图像篡改检测技术

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摘要

Existence of mobile devices with high performance cameras and powerful image processing applications eases the alteration of digital images for malicious purposes. This work presents a new approach to detect digital image tamper detection technique based on CFA artifacts arising from the differences in the distribution of acquired and interpolated pixels. The experimental evidence supports the capabilities of the proposed method for detecting a broad range of manipulations, e.g., copy-move, resizing, rotation, filtering and colorization. This technique exhibits tampered areas by computing the probability of each pixel of being interpolated and then applying the DCT on small blocks of the probability map. The value of the coefficient for the highest frequency on each block is used to decide whether the analyzed region has been tampered or not. The results shown here were obtained from tests made on a publicly available dataset of tampered images for forensic analysis. Affected zones are clearly highlighted if the method detects CFA inconsistencies. The analysis can be considered successful if the modified zone, or an important part of it, is accurately detected. By analizing a publicly available dataset with images modified with different methods we reach an 86% of accuracy, which provides a good result for a method that does not require previous training.
机译:具有高性能相机和强大图像处理应用程序的移动设备的存在简化了出于恶意目的而更改数字图像的工作。这项工作提出了一种新的方法来检测基于CFA伪像的数字图像篡改检测技术,该伪像是由采集和内插像素分布的差异引起的。实验证据支持了所提出的方法检测多种操作的能力,例如,复制移动,调整大小,旋转,过滤和着色。通过计算每个像素被插值的概率,然后将DCT应用于概率图的小块,该技术可显示篡改区域。每个块上最高频率的系数值用于确定分析区域是否已被篡改。此处显示的结果是从对可公开获取的篡改图像数据集进行的司法鉴定分析中获得的。如果该方法检测到CFA不一致,则会以高亮方式突出显示受影响的区域。如果正确检测到修改后的区域或其重要部分,则认为分析成功。通过使用通过不同方法修改的图像对可公开获得的数据集进行分析,我们可以达到86%的准确性,这为不需要事先培训的方法提供了很好的结果。

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