基于色度子采样的JPEG彩色图像解压缩取证

Chothmal Kumawat, Vinod Pankajakshan
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引用次数: 0

摘要

在以无损格式存储的解压缩JPEG彩色图像中识别色度子采样类型在法医分析中是重要的。它在检测局部伪造和估计源相机识别的色度平面量化步长等法医场景中非常有用。在这项工作中,我们提出了一种基于机器学习的方法,能够识别压缩过程中使用的色度子采样。该方法基于检测JPEG解压缩过程中上采样过程中相邻像素相关性的变化。这些相关性的变化是用不同方向的两样本Kolmogorov-Smirnov (KS)检验统计量来测量的。实验结果表明,该方法对色度子采样方案的识别是有效的。
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Forensics of Decompressed JPEG Color Images Based on Chroma Subsampling
Identification of the type of chroma subsampling in a decompressed JPEG color image stored in a lossless format is important in forensic analysis. It is useful in many forensic scenarios like detecting localized forgery and estimating the quantization step sizes in the chroma planes for source camera identification. In this work, we propose a machine learning-based method capable of identifying the chroma subsampling used in the compression process. The method is based on detecting the change in adjacent pixel correlations due to upsampling process in JPEG decompression. These changes in the correlation are measured using the two-sample Kolmogorov-Smirnov (KS) test statistic in different directions. The experimental results show the efficacy of the proposed method in identifying the chroma subsampling scheme.
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