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Universal Detection of Video Steganography in Multiple Domains Based on the Consistency of Motion Vectors

机译:基于运动矢量一致性的多领域视频隐写术通用检测

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摘要

Digital video provides various types of embedding domains, which lead to a great diversity in video steganography. However, in the detection of video steganography, the existing video steganalytic features all specialize in a particular domain, and are hardly to detect the steganography in other embedding domains. In this paper, we propose a universal feature set which is capable of detecting the video steganography in multiple domains. Two popular embedding domains, i.e., partition mode (PM) domain and motion vector (MV) domain, are considered for steganalysis. The idea is based on the observation that the MVs of the sub-blocks in the same macroblock are usually different from each other, and they will tend to be consistent in values after the MV modifications or PM modifications. Thus the consistency of MVs can be used as an evidence for the steganographic embedding in two domains, and finally a 12-dimensional feature set is designed for universal detection. Extensive experiments are conducted to demonstrate the effectiveness of the proposed feature set. The results show that our feature set achieves superior universality and accuracy in both PM domain and MV domain, and even performs well in mismatched domains, where the detection model trained in one domain can directly be used to attack the steganography in another domain. Besides, the low complexity of the proposed feature set also indicates its advantage in real-time video steganalysis.
机译:数字视频提供了各种类型的嵌入域,这导致了视频隐写术的极大多样性。然而,在视频隐写术的检测中,现有的视频隐写分析功能都专门针对特定领域,并且很难在其他嵌入域中检测出隐写术。在本文中,我们提出了一种通用特征集,该特征集能够在多个域中检测视频隐写术。隐写分析考虑了两个流行的嵌入域,即分区模式(PM)域和运动向量(MV)域。该想法基于以下观察:同一宏块中的子块的MV通常彼此不同,并且在MV修改或PM修改后,它们的值趋于一致。因此,MV的一致性可以用作在两个域中进行隐写的证据,最后设计了12维特征集进行通用检测。进行了广泛的实验,以证明所提出的功能集的有效性。结果表明,我们的功能集在PM域和MV域均实现了卓越的通用性和准确性,甚至在不匹配的域中也表现出色,其中在一个域中训练的检测模型可以直接用于攻击另一域中的隐写术。此外,所提出的特征集的低复杂度也表明了其在实时视频隐写分析中的优势。

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