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Detection of object-based manipulation by the statistical features of object contour

机译:通过对象轮廓的统计特征检测基于对象的操作

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摘要

Object-based manipulations, such as adding or removing objects for digital video, are usually malicious forgery operations. Compared with the conventional double MPEG compression or frame-based tampering, it makes more sense to detect these object-based manipulations because they might directly affect our understanding towards the video content. In this paper, a passive video forensics scheme is proposed for object-based forgery operations. After extracting the adjustable width areas around object boundary, several statistical features such as the moment features of detailed wavelet coefficients and the average gradient of each colour channel are obtained and input into support vector machine (SVM) as feature vectors for the classification of natural objects and forged ones. Experimental results on several videos sequence with static background show that the proposed approach can achieve an accuracy of correct detection from 70% to 95%.
机译:基于对象的操作(例如为数字视频添加或删除对象)通常是恶意的伪造操作。与传统的双MPEG压缩或基于帧的篡改相比,检测这些基于对象的操作更有意义,因为它们可能会直接影响我们对视频内容的理解。本文提出了一种基于对象的伪造操作的被动视频取证方案。在提取对象边界周围的可调节宽度区域后,获得了一些统计特征,例如详细的小波系数的矩特征和每个颜色通道的平均梯度,并将其作为特征向量输入到支持向量机(SVM)中,用于对自然对象进行分类和伪造的。在具有静态背景的多个视频序列上的实验结果表明,该方法可以达到70%至95%的正确检测精度。

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