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A Statistical Algorithm for Linguistic Steganography Detection Based on Distribution of Words

机译:基于单词分布的语言隐写术检测统计算法

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In this paper, a novel statistical algorithm for linguistic steganography detection, which takes advantage of distribution of words in the text segment detected, is presented. Linguistic steganography is the art of using written natural language to hide the very presence of secret messages. Using the text data, which is the foundational media in internet Communications, as its carrier, linguistic steganography plays an important part in Information Hiding (IH) area. The previous work was mainly focused on linguistic steganography and there were few researches on linguistic steganalisys. We attempt to do something to help to fix this gap. In our experiment of detecting the three different linguistic steganography methods: NICETEXT, TEXTO and Markov-Chain-Based, the total accuracies on discovering stego-text segments and normal text segments are found to be 87.39%, 95.51%, 98.50%, 99.15% and 99.57% respectively when the segment size is 5kB, 10kB, 20kB, 30kB and 40kB. Our research shows that the linguistic steganalysis based on distribution of words is promising.
机译:在本文中,一个新的统计算法语言隐写术检测,这在文本段取词语分布的优点来检测,呈现。语言隐写术是采用书面自然语言到隐藏秘密信息的存在相当的艺术。使用文本数据,这是在因特网通信的基础媒体,作为其载体,语言隐写术起着信息隐藏(1H)区域的重要组成部分。以前的工作主要集中在语言隐写术和有对语言steganalisys研究较少。我们试图做一些事情来帮助解决这个缺口。在我们的检测三种不同的语言隐写术的方法的实验:NICETEXT,TEXTO和马尔可夫链为基础的,在发现隐秘文本段和正常文本段的总精度被发现是87.39%,95.51%,98.50%,99.15%和分别99.57%时的段大小为5kB的,10KB,20KB,30KB 40KB和。我们的研究表明,基于词的分布语言隐写是有希望的。

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