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Low-Complexity Features for JPEG Steganalysis Using Undecimated DCT

机译:使用未抽取的DCT进行JPEG隐写分析的低复杂度功能

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摘要

This paper introduces a novel feature set for steganalysis of JPEG images. The features are engineered as first-order statistics of quantized noise residuals obtained from the decompressed JPEG image using 64 kernels of the discrete cosine transform (DCT) (the so-called undecimated DCT). This approach can be interpreted as a projection model in the JPEG domain, forming thus a counterpart to the projection spatial rich model. The most appealing aspect of this proposed steganalysis feature set is its low computational complexity, lower dimensionality in comparison with other rich models, and a competitive performance with respect to previously proposed JPEG domain steganalysis features.
机译:本文介绍了一种用于JPEG图像隐写分析的新颖功能集。这些功能被设计为使用离散余弦变换(DCT)(所谓的未抽取DCT)的64个内核从解压缩的JPEG图像获得的量化噪声残差的一阶统计量。可以将这种方法解释为JPEG域中的投影模型,从而形成与投影空间丰富模型相对应的模型。此拟议的隐写分析功能集最吸引人的方面是其计算复杂度低,与其他丰富模型相比维数较低,并且相对于先前提出的JPEG域隐写分析功能而言,具有竞争优势。

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