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Existence detection and embedding rate estimation of blended speech in covert speech communications

机译:秘密语音通信中混合语音的存在性检测和嵌入率估计

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摘要

Covert speech communications may be used by terrorists to commit crimes through Internet. Steganalysis aims to detect secret information in covert communications to prevent crimes. Herein, based on the average zero crossing rate of the odd–even difference (AZCR-OED), a steganalysis algorithm for blended speech is proposed; it can detect the existence and estimate the embedding rate of blended speech. First, the odd–even difference (OED) of the speech signal is calculated and divided into frames. The average zero crossing rate (ZCR) is calculated for each OED frame, and the minimum average ZCR and AZCR-OED of the entire speech signal are extracted as features. Then, a support vector machine classifier is used to determine whether the speech signal is blended. Finally, a voice activity detection algorithm is applied to determine the hidden location of the secret speech and estimate the embedding rate. The results demonstrate that without attack, the detection accuracy can reach 80 % or more when the embedding rate is greater than 10 %, and the estimated embedding rate is similar to the real value. And when some attacks occur, it can also reach relatively high detection accuracy. The algorithm has high performance in terms of accuracy, effectiveness and robustness.
机译:恐怖分子可能使用秘密语音通信通过互联网实施犯罪。隐写分析旨在检测秘密通信中的秘密信息,以防止犯罪。在此,基于奇偶差的平均零交叉率(AZCR-OED),提出了一种混合语音隐写分析算法。它可以检测混合语音的存在并估计其嵌入率。首先,计算语音信号的奇偶差(OED)并将其分为帧。计算每个OED帧的平均过零率(ZCR),并提取整个语音信号的最小平均ZCR和AZCR-OED作为特征。然后,使用支持向量机分类器来确定语音信号是否被混合。最后,使用语音活动检测算法来确定秘密语音的隐藏位置并估计嵌入率。结果表明,在没有攻击的情况下,当嵌入率大于10%时,检测精度可以达到80%或更高,并且估计的嵌入率与真实值相似。并且当发生一些攻击时,它也可以达到较高的检测精度。该算法在准确性,有效性和鲁棒性方面具有高性能。

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