Abnormal Event Detection in Video Using N-cut Clustering

Chun-Ku Lee, Meng-Fen Ho, Wu-Sheng Wen, Chung-Lin Huang
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引用次数: 19

Abstract

This paper introduces an unusual event detection scheme in various video scenes. The proposed method finds out the video clips that are most different from the others based on the similarity measure. Each video clip is represented by the motion magnitude and direction histograms and color histogram. Without searching key-frames, we calculate the similarity matrix by using \chi^2 difference or chamfer difference as the similarity measure of features in different clips. Finally, we apply n-cut clustering. Clusters with low self-similarity value are reported as unusual events.
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基于N-cut聚类的视频异常事件检测
本文介绍了一种针对各种视频场景的异常事件检测方案。该方法基于相似性度量找出与其他视频片段差异最大的视频片段。每个视频片段由运动幅度和方向直方图以及颜色直方图表示。在不搜索关键帧的情况下,我们使用chi^2差或倒角差作为不同片段中特征的相似性度量来计算相似矩阵。最后,我们应用n-cut聚类。自相似值低的聚类被报告为异常事件。
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