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Detection of Abnormal Events via Optical Flow Feature Analysis

机译:通过光流特征分析检测异常事件

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摘要

In this paper, a novel algorithm is proposed to detect abnormal events in video streams. The algorithm is based on the histogram of the optical flow orientation descriptor and the classification method. The details of the histogram of the optical flow orientation descriptor are illustrated for describing movement information of the global video frame or foreground frame. By combining one-class support vector machine and kernel principal component analysis methods, the abnormal events in the current frame can be detected after a learning period characterizing normal behaviors. The difference abnormal detection results are analyzed and explained. The proposed detection method is tested on benchmark datasets, then the experimental results show the effectiveness of the algorithm.
机译:在本文中,提出了一种新颖的算法来检测视频流中的异常事件。该算法基于光流方向描述符的直方图和分类方法。示出了光流取向描述符的直方图的细节,以描述全局视频帧或前景帧的运动信息。通过结合一类支持向量机和内核主成分分析方法,可以在表征正常行为的学习期后检测当前帧中的异常事件。分析并解释差异异常检测结果。在基准数据集上对提出的检测方法进行了测试,实验结果表明了该算法的有效性。

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