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Detectability-quality trade-off in JPEG counter-forensics

机译:JPEG取证中的可检测性与质量的权衡

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Removing JPEG quantization footprints from an image inevitably introduces artifacts and traces in the spatial domain. Recently, several robust methods have been proposed to detect footprints of counter-forensics and recover the image's compression history. In this paper we investigate the limitations of these detectors, by proposing an improved counter-forensic attack which adds a postprocessing denoising step besides dithering. We consider both a general-purpose denoising algorithm and one targeted to JPEG images. In the latter case, we show that this approach can successfully reduce the accuracy of detectors in the literature to that of a random decision. As a second contribution, we study the trade-off between the detectability of counter-forensics and quality of the tampered image, and show that the loss of quality is not sufficient for the analyst to use available no-reference quality assessment tools as an indicator of an attack.
机译:从图像中删除JPEG量化足迹不可避免地会在空间域中引入伪影和痕迹。近来,已经提出了几种鲁棒的方法来检测反取证的足迹并恢复图像的压缩历史。在本文中,我们通过提出一种改进的反取证攻击来研究这些检测器的局限性,该方法除了抖动之外还增加了后处理降噪步骤。我们既考虑了通用降噪算法,又考虑了针对JPEG图像的算法。在后一种情况下,我们表明该方法可以成功地将文献中检测器的精度降低到随机决策的精度。作为第二个贡献,我们研究了取证的可检测性与被篡改图像的质量之间的权衡,并表明质量损失不足以使分析人员使用可用的无参考质量评估工具作为指标攻击。

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