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Detection of adaptive histogram equalization robust against JPEG compression

机译:抗JPEG压缩的自适应直方图均衡检测

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Contrast Enhancement (CE) detection in the presence of laundering attacks, i.e. common processing operators applied with the goal to erase the traces the CE detector looks for, is a challenging task. JPEG compression is one of the most harmful laundering attacks, which has been proven to deceive most CE detectors proposed so far. In this paper, we present a system that is able to detect contrast enhancement by means of adaptive histogram equalization in the presence of JPEG compression, by training a JPEG-aware SVM detector based on color SPAM features, i.e., an SVM detector trained on contrast-enhanced-then-JPEG-compressed images. Experimental results show that the detector works well only if the Quality Factor (QF) used during training matches the QF used to compress the images under test. To cope with this problem in cases where the QF cannot be extracted from the image header, we use a QF estimation step based on the idempotency properties of JPEG compression. Experimental results show good performance under a wide range of QFs.
机译:在存在洗钱攻击的情况下进行对比度增强(CE)检测,即以消除CE检测器寻找的迹线为目标的通用处理运营商,是一项艰巨的任务。 JPEG压缩是最有害的清洗攻击之一,到目前为止,事实证明,JPEG压缩会欺骗大多数CE检测器。在本文中,我们介绍了一种系统,该系统能够通过训练基于颜色SPAM特征的JPEG感知SVM检测器,即在对比度压缩下训练的SVM检测器,在存在JPEG压缩的情况下通过自适应直方图均衡检测对比度增强-增强然后JPEG压缩的图像。实验结果表明,只有在训练过程中使用的质量因数(QF)与用于压缩被测图像的质量因数匹配时,检测器才能正常工作。为了在无法从图像标题中提取QF的情况下解决此问题,我们使用基于JPEG压缩的幂等性的QF估计步骤。实验结果表明,在各种QFs下都具有良好的性能。

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