A BLIND AUDIO STEGANALYSIS BASED ON FEATURE FUSION

被引:1
|
作者
Wei Yifang Guo Li Wang Yujie Wang Cuiping (Department of Electronic Science and Technology
机构
基金
中国国家自然科学基金;
关键词
Feature fusion; Steganalysis; Mel-cepstrum; Second-order derivative; Audio quality metrics; Linear prediction;
D O I
暂无
中图分类号
TN912.3 [语音信号处理]; TP309 [安全保密];
学科分类号
0711 ; 081201 ; 0839 ; 1402 ;
摘要
In this paper, we present a blind steganalysis based on feature fusion. Features based on Short Time Fourier Transform (STFT), which consists of second-order derivative spectrum features of audio and Mel-frequency cepstrum coefficients, audio quality metrics and features on linear prediction residue are extracted separately. Then feature fusion is conducted. The performance of the proposed steganalysis is evaluated against 4 steganographic schemes: Direct Sequence Spread Spectrum (DSSS), Quantization Index Modulation (QIM), ECHO embedding (ECHO), and Least Significant Bit em-bedding (LSB). Experiment results show that the classifying performance of the proposed detector is much superior to the previous work. Even more exciting is that the proposed methodology could detect the four steganography, with 85%+ classification accuracy achieved in all the detections, which makes the proposed steganalysis methodology capable of being regarded as a blind steganalysis, and especially useful when the steganalyzer are without the knowledge of the steganographic scheme employed in data embedding.
引用
收藏
页码:265 / 276
页数:12
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