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Nonparametric Steganalysis of QIM Steganography Using Approximate Entropy

机译:QIM隐写术的近似熵的非参数隐写分析

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摘要

This paper proposes an active steganalysis method for quantization index modulation (QIM)-based steganography. The proposed nonparametric steganalysis method uses irregularity (or randomness) in the test image to distinguish between the cover image and the stego image. We have shown that plain quantization (quantization without message embedding) induces regularity in the resulting quantized object, whereas message embedding using QIM increases irregularity in the resulting QIM-stego. Approximate entropy, an algorithmic entropy measure, is used to quantify irregularity in the test image. The QIM-stego image is then analyzed to estimate secret message length. To this end, the QIM codebook is estimated from the QIM-stego image using first-order statistics of the image coefficients in the embedding domain. The estimated codebook is then used to estimate secret message. Simulation results show that the proposed scheme can successfully estimate the hidden message from the QIM-stego with very low decoding error probability. For a given cover object the decoding error probability depends on embedding rate and decreases monotonically, approaching zero as the embedding rate approaches one.
机译:本文提出了一种基于隐写索引的主动隐写分析方法。所提出的非参数隐写分析方法使用测试图像中的不规则性(或随机性)来区分封面图像和隐身图像。我们已经表明,普通量化(无消息嵌入的量化)在生成的量化对象中引起规则性,而使用QIM进行消息嵌入会在生成的QIM隐身中增加不规则性。近似熵是一种算法上的熵度量,用于量化测试图像中的不规则性。然后,对QIM-stego图像进行分析以估计秘密消息的长度。为此,使用嵌入域中图像系数的一阶统计量从QIM隐身图像中估计QIM码本。然后,将估计的码本用于估计秘密消息。仿真结果表明,该方案能够以极低的解码错误概率成功地估计出来自QIM-stego的隐藏消息。对于给定的覆盖对象,解码错误概率取决于嵌入率,并且单调降低,随着嵌入率接近1,接近零。

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