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Adaptive Audio Steganography Based on Advanced Audio Coding and Syndrome-Trellis Coding

机译:基于高级音频编码和综合征格编码的自适应音频隐写术

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Most existing audio steganographic methods embed secret messages according to a pseudorandom number generator, thus some auditory sensitive parts in cover audio, such as mute or near-mute segments, will be contaminated, which would lead to poor perceptual quality and may introduce some detectable artifacts for steganalysis. In this paper, we propose a novel adaptive audio steganography in the time domain based on the advanced audio coding (AAC) and the Syndrome-Trellis coding (STC). The proposed method firstly compresses a given wave signal into AAC compressed file with a high bitrate, and then obtains a residual signal by comparing the signal before and after AAC compression. According to the quantity and sign of the residual signal, ±1 embedding costs are assigned to the audio samples. Finally, the STC is used to create the stego audio. The extensive results evaluated on 10,000 music and 10,000 speech audio clips have shown that our method can significantly outperform the conventional ±1 LSB based steganography in terms of security and audio quality.
机译:现有的大多数音频隐秘方法会根据伪随机数生成器嵌入秘密消息,因此会掩盖音频中的某些听觉敏感部分,例如静音或近乎静音的片段,这将导致感知质量较差并且可能会引入一些可检测到的伪像用于隐写分析。在本文中,我们提出了一种基于高级音频编码(AAC)和Syndrome-Trellis编码(STC)的时域自适应音频隐写术。所提出的方法首先将给定的波信号压缩到具有高比特率的AAC压缩文件中,然后通过比较AAC压缩前后的信号来获得残差信号。根据残差信号的数量和符号,将±1的嵌入成本分配给音频样本。最后,STC用于创建隐身音频。在10,000个音乐和10,000个语音音频剪辑上进行的广泛评估表明,在安全性和音频质量方面,我们的方法可以大大优于传统的基于±1 LSB的隐写技术。

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