一种新的统计攻击抗隐写方案,用于隐藏音频文件中的消息

Dulal C. Kar, Anusha Madhuri Nakka, A. Katangur
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引用次数: 2

摘要

我们提出了一种新的音频隐写方法,该方法在嵌入秘密信息后保留掩蔽音频的一阶统计属性。这种方法可以避免基于直方图或类似统计攻击的检测。该方法对覆盖音频中的音频样本进行分区,然后通过嵌入秘密消息的编码过程对每个分区中的样本进行重新排序。样本的划分是由单个样本的指定误差限制来控制的,而误差限制是由隐写音频中需要保持的信噪比确定的,以避免被自动化系统或人类听觉系统检测到。以8位和16位音频为例,给出了有效性和容量的实验结果。结果表明,该方法在保持抗攻击有效性的同时,可以实现高容量。
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A new statistical attack resilient steganography scheme for hiding messages in audio files
We present a novel approach for audio steganography that preserves first-order statistical properties of cover audio after embedding a secret message. This approach can avoid detection by histogram-based or similar statistical attacks. This approach partitions the audio samples in the cover audio, which is followed by reordering of the samples in each partition through an encoding process for embedding the secret message. Partitioning of samples is governed by a specified error limit on individual samples, and the error limit is determined from signal-to-noise ratio that needs to be maintained in the stego audio to avoid detection by an automated system or human auditory system. Experimental results on effectiveness as well as on capacity are presented using 8-bit and 16-bit audio as covers. It is shown that the proposed approach can achieve high capacity while maintaining its effectiveness against attacks.
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