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Text Semantic Steganalysis Based on Word Embedding

机译:基于词嵌入的文本语义隐写分析

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Most state-of-the-art detection methods against synonym substitution based steganography extract features based on statistical distortion. However, synonym substitution will cause not only statistical distortion but also semantic distortion. In this paper, we propose word embedding feature (WEF) to detect the semantic distortion. Furthermore, a fused feature called word embedding and statistical feature set (WESF) which consists of WEF and statistical feature based on word frequency is designed to improve detection performance. Experiments show that WESF can achieve lower detection error rates compared with prmethods.
机译:针对基于同义词替换的隐写术的大多数最新检测方法都基于统计失真来提取特征。但是,同义词替换不仅会导致统计失真,还会导致语义失真。在本文中,我们提出了词嵌入功能(WEF)来检测语义失真。此外,设计了一种融合的功能,称为单词嵌入和统计功能集(WESF),该功能由WEF和基于单词频率的统计功能组成,可提高检测性能。实验表明,与prmethods相比,WESF可以实现更低的检测错误率。

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