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用于在线性能的紧凑特征集的视频异常检测。

Video Anomaly Detection With Compact Feature Sets for Online Performance.

出版信息

IEEE Trans Image Process. 2017 Jul;26(7):3463-3478. doi: 10.1109/TIP.2017.2695105. Epub 2017 Apr 18.

Abstract

Over the past decade, video anomaly detection has been explored with remarkable results. However, research on methodologies suitable for online performance is still very limited. In this paper, we present an online framework for video anomaly detection. The key aspect of our framework is a compact set of highly descriptive features, which is extracted from a novel cell structure that helps to define support regions in a coarse-to-fine fashion. Based on the scene's activity, only a limited number of support regions are processed, thus limiting the size of the feature set. Specifically, we use foreground occupancy and optical flow features. The framework uses an inference mechanism that evaluates the compact feature set via Gaussian Mixture Models, Markov Chains, and Bag-of-Words in order to detect abnormal events. Our framework also considers the joint response of the models in the local spatio-temporal neighborhood to increase detection accuracy. We test our framework on popular existing data sets and on a new data set comprising a wide variety of realistic videos captured by surveillance cameras. This particular data set includes surveillance videos depicting criminal activities, car accidents, and other dangerous situations. Evaluation results show that our framework outperforms other online methods and attains a very competitive detection performance compared with state-of-the-art non-online methods.

摘要

在过去的十年中,人们对视频异常检测进行了广泛的研究,并取得了显著的成果。然而,适合在线性能的方法研究仍然非常有限。在本文中,我们提出了一种用于视频异常检测的在线框架。我们的框架的关键方面是一组紧凑的高描述性特征,这些特征是从一种新的单元结构中提取出来的,这种单元结构有助于以粗到细的方式定义支持区域。基于场景的活动,只有有限数量的支持区域被处理,从而限制了特征集的大小。具体来说,我们使用前景占有率和光流特征。该框架使用推理机制,通过高斯混合模型、马尔可夫链和词袋来评估紧凑的特征集,以检测异常事件。我们的框架还考虑了局部时空邻域中模型的联合响应,以提高检测精度。我们在流行的现有数据集和一个新的数据集上测试了我们的框架,该数据集包含了各种由监控摄像机拍摄的真实视频。这个特定的数据集包括监控视频,描绘了犯罪活动、车祸和其他危险情况。评估结果表明,我们的框架优于其他在线方法,并在与最先进的非在线方法的比较中达到了非常有竞争力的检测性能。

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