ISSN 0253-2778

CN 34-1054/N

Open AccessOpen Access JUSTC

An audio steganalysis method for echo hiding based on statistical features of power cepstrums

Cite this:
https://doi.org/10.3969/j.issn.0253-2778.2010.10.012
  • Received Date: 12 October 2009
  • Rev Recd Date: 30 November 2009
  • Publish Date: 31 October 2010
  • An audio steganalysis method for echo hiding based on statistical features of power cepstrums was proposed. In this scheme, audio signals were first divided into little segments and a hanning window was applied to each segment, then average power cepstrums of the windowed audio segments were calculated, and based on the feature that the average power cepstrums of echo hiding signals can generate peaks at echo delays, variances of differences and flatness of the average power cepstrums were calculated as statistical features, and, finally, support vector machine (SVM) was implemented as a classifier. This steganalysis method can not only detect the basic single echo kernel, but also be applied to the improved echo kernels. Experimental results show that the performance of the proposed method is satisfactory, achieving high classification accuracy even with low attenuation coefficients and regardless of the length of the embedded segments of audio signals.
    An audio steganalysis method for echo hiding based on statistical features of power cepstrums was proposed. In this scheme, audio signals were first divided into little segments and a hanning window was applied to each segment, then average power cepstrums of the windowed audio segments were calculated, and based on the feature that the average power cepstrums of echo hiding signals can generate peaks at echo delays, variances of differences and flatness of the average power cepstrums were calculated as statistical features, and, finally, support vector machine (SVM) was implemented as a classifier. This steganalysis method can not only detect the basic single echo kernel, but also be applied to the improved echo kernels. Experimental results show that the performance of the proposed method is satisfactory, achieving high classification accuracy even with low attenuation coefficients and regardless of the length of the embedded segments of audio signals.
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