Comparative Study for Anomaly Detection in Crowded Scenes

Mohamed Abdelghafour, Maryam ElBery, Zaki Taha
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引用次数: 4

Abstract

Nowadays, video analysis is an important research area especially from a security point of view. The discovery of unusual activities is important because it is a difficult task for humans especially with increasing number of surveillance cameras in all crowded places. That is because it requires a lot of human effort, and these activities happen rarely. Also the definition of anomaly events is different based on the location of the event. For example running in the park is a normal event but running in a restaurant is an abnormal event. The event is the same but the place was the factor of making it normal or not. The main objective of this paper is to compile what has been achieved in the field of anomaly detection and compare them, and to look at the different datasets used in the recent period. We will show how to detect and identify anomalies in videos, approaches for video anomaly detection and also what are the latest learning frameworks.
拥挤场景中异常检测的比较研究
目前,视频分析是一个重要的研究领域,特别是从安全的角度来看。发现不寻常的活动很重要,因为这对人类来说是一项艰巨的任务,尤其是在所有拥挤的地方都有越来越多的监控摄像头。这是因为它需要大量的人力,而这些活动很少发生。此外,异常事件的定义根据事件的位置而不同。例如,在公园跑步是一件正常的事情,但在餐馆跑步是一件不正常的事情。事件是相同的,但地点是使它正常与否的因素。本文的主要目的是汇编在异常检测领域取得的成就,并对它们进行比较,并查看最近一段时间使用的不同数据集。我们将展示如何检测和识别视频中的异常,视频异常检测的方法以及最新的学习框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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