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Performance analysis of image steganalysis against message size, message type and classification methods

机译:针对邮件大小,邮件类型和分类方法的图像隐写性能分析

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Image steganalysis finds its application in the field of digital investigation. Performance of any image steganalysis algorithm depends on sensitivity of features and amount of data hidden in an image. The goal of this paper is to evaluate the performance of DWT feature based steganalysis algorithms against various state-of-art steganography methods and variable message embedding rates. Feature selection and classification are the two main steps of any image steganalysis algorithm. This paper also presents the comparative performance of individual algorithms against different classification methods. The images used for quantitative evaluation are taken from image database BSDS500 which contains images of different types and textures. All the algorithms are implemented in MATLAB and they are evaluated against stego images generated by steganography tools available for data hiding methods like F5, BlindHide, HideSeek, DBS, DFF and LSB.
机译:图像隐写分析在数字调查领域得到了应用。任何图像隐写分析算法的性能都取决于特征的敏感性和图像中隐藏的数据量。本文的目的是针对各种最新的隐写方法和可变消息嵌入率,评估基于DWT特征的隐写分析算法的性能。特征选择和分类是任何图像隐写分析算法的两个主要步骤。本文还介绍了针对不同分类方法的单个算法的比较性能。用于定量评估的图像取自图像数据库BSDS500,该数据库包含不同类型和纹理的图像。所有算法均在MATLAB中实现,并且根据隐写术工具(可用于数据隐藏方法,如F5,BlindHide,HideSeek,DBS,DFF和LSB)生成的隐身图像进行评估。

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