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The LV dataset: A realistic surveillance video dataset for abnormal event detection

机译:LV数据集:用于异常事件检测的逼真的监控视频数据集

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In recent years, designing and testing video anomaly detection methods have focused on synthetic or unrealistic sequences. This has mainly four drawbacks: 1) events are controlled and predictable because they are usually performed by actors; 2) environmental conditions, e.g. camera motion and illumination, are usually ideal thus realistic conditions are not well reflected; 3) events are usually short and repetitive; and 4) the material is captured from scenarios that do not necessarily match the testing scenarios. This leads us to propose a new rich collection of realistic videos captured by surveillance cameras in challenging environmental conditions, the Live Videos (LV) dataset. We explore the performance of a number of state-of-the-art video anomaly detection methods on the LV dataset. Our results confirm the need to design methods that are capable of handling realistic videos captured by surveillance cameras with acceptable processing times. The proposed LV dataset, thus, will facilitate the design and testing of such new methods.
机译:近年来,设计和测试视频异常检测方法的重点是合成或不现实的序列。这主要有四个缺点:1)事件是可控的和可预测的,因为事件通常是由参与者执行的; 2)环境条件,例如摄像机的运动和照明通常是理想的,因此不能很好地反映现实条件; 3)事件通常是短暂且重复的; 4)从不一定与测试场景匹配的场景中捕获材料。这使我们提出了一个新的,丰富的现实视频集合,即在恶劣的环境条件下由监视摄像机捕获的逼真的视频,即实时视频(LV)数据集。我们探索了LV数据集上许多最新视频异常检测方法的性能。我们的结果证实需要设计能够处理可接受的处理时间的,由监控摄像机捕获的逼真的视频的方法。因此,建议的LV数据集将有助于此类新方法的设计和测试。

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