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LSB steganalysis of speech data based on distance measure and ML decision

LSB steganalysis of speech data based on distance measure and ML decision
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摘要 Steganalysis can be used to classify an object whether or not it contains hidden information. In this article, is presented, a novel approach to detect the presence of least significant bit(LSB) steganographic messages in the voice secure communication system. A distance measure, which has proven to be sensitive to LSB steganography by analysis of variance (ANOVA), is denoted to estimate the difference between the host signal and the stego signal. Then an maximum likelihood (ML) decision is combined to form the classifier. Statistical experiments show that the proposed approach has a highly accurate rate and low computational complexity. Steganalysis can be used to classify an object whether or not it contains hidden information. In this article, is presented, a novel approach to detect the presence of least significant bit(LSB) steganographic messages in the voice secure communication system. A distance measure, which has proven to be sensitive to LSB steganography by analysis of variance (ANOVA), is denoted to estimate the difference between the host signal and the stego signal. Then an maximum likelihood (ML) decision is combined to form the classifier. Statistical experiments show that the proposed approach has a highly accurate rate and low computational complexity.
出处 《The Journal of China Universities of Posts and Telecommunications》 EI CSCD 2007年第3期103-107,共5页 中国邮电高校学报(英文版)
基金 This work is supported by the Natural Science Foundation of Jiangsu Province(BK2004150);the Hi-Tech Research and Development Program of China (2006AA010102).
关键词 speech signal processing LSB steganography STEGANALYSIS ML decision speech signal processing, LSB steganography, steganalysis, ML decision
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