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Searching For Hidden Messages: Automatic Detection of Steganography

机译:搜索隐藏消息:自动检测隐写术

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Steganography is the field of hiding messages in apparently innocuous media (e.g. images), and steganalysis is the field of detecting these covert messages. Almost all steganalysis consists of hand-crafted tests or human visual inspection to detect whether a file contains a message hidden by a specific Steganography algorithm. These approaches are very fragile - trivial changes in a Steganography algorithm will often render a steganalysis approach useless, and human inspection does not scale. We propose a machine learning (ML) approach to steganalysis. First, a media file is represented as a canvas - the available space within the file to hide a message. Those features that can distinguish clean from stego-bearing files are then selected. We use ML algorithms to distinguish clean and stego-bearing files. The results reported here show that ML algorithms work in both content- and compression-based image formats, outperforming at least one current hand crafted steganalysis technique in the latter. Our current work can detect previously seen (trained on) Steganography techniques, and we discuss extensions that we believe will be able to detect Steganography using more sophisticated algorithms, as well as the use of previously unseen Steganography algorithms.
机译:隐写术是在明显无害的媒体(例如图像)中隐藏消息的领域,并且sectanalysis是检测这些隐蔽消息的领域。几乎所有的杀死都包括手工制作的测试或人类的视觉检查,以检测文件是否包含特定的隐写算法隐藏的消息。这些方法非常脆弱 - 隐写算法的微不足道变化将往往会使麻木分析方法无用,人类检查不会缩放。我们提出了一种机器学习(ML)方法来沉淀。首先,媒体文件表示为画布 - 文件中的可用空间以隐藏消息。然后选择可以从标记文件中区分清洁的那些功能。我们使用ML算法来区分清洁和标记的文件。这里报道的结果表明M1算法在基于内容和压缩的图像格式中工作,优于后者的至少一个当前手工制作的隐分技术。我们当前的工作可以检测以前看到的(训练有素)的隐写技术,我们讨论了我们认为能够使用更复杂的算法检测隐写的扩展,以及使用以前看不见的隐写算法。

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