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Abnormal Event Detection in Surveillance Videos Using Two-Stream Decoder

机译:使用两流解码器的监控视频异常事件检测

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Abnormal event detection in surveillance videos refers to the identification of events that deviate from the normal pattern. An autoencoder can be used to learn the normal patterns from the videos, and its reconstruction errors can be used to detect the abnormalities. Surveillance videos consist of two components: dynamic objects and a static background. Because of the nature of the static background, we can assume that the source of abnormality is from the objects. In this work, we propose the use of a two-stream decoder model to tackle the abnormal event detection problem in surveillance videos. The two-stream decoder comprised a background stream that models the static background and a foreground stream that models the dynamic objects. We also utilized a two-stream encoder to learn from optical flow, which contains motion information, and skip connections used to improve the details in the output frames. Several experiments on publicly available datasets were used to validate the effectiveness of the proposed model.
机译:监视视频中的异常事件检测是指识别偏离正常模式的事件。自动编码器可用于从视频中学习正常模式,其重构错误可用于检测异常。监控视频由两个部分组成:动态对象和静态背景。由于静态背景的性质,我们可以假定异常的来源是来自对象的。在这项工作中,我们建议使用两流解码器模型来解决监视视频中的异常事件检测问题。两流解码器包括对静态背景进行建模的背景流和对动态对象进行建模的前景流。我们还利用两流编码器从包含运动信息的光流中学习,并跳过了用于改善输出帧细节的连接。在公开可用的数据集上进行了几次实验,以验证所提出模型的有效性。

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