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A Fast Algorithm Based on Human Visual System for Abnormal Event Detection

机译:一种基于人类视觉系统的快速算法,用于异常事件检测

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Fast abnormal event detection algorithm has high application value. But it is difficult to select appropriate feature representation to realize fast abnormal event detection. In view of HVS's dual pulse propagation theory and computational complexity, LBP and OF are used as temporal and spatial feature representation of video in this paper. Since human understanding involves the abstraction of the high-level features from low-level features, a streamlined depth learning network, PCANet, is used to extract high-level fusion features of LBP and OF. And three fusion methods are proposed in this paper. Finally, these high-level features are used to detect abnormal events. Experimental results show that the proposed algorithm performs better compared with other algorithms.
机译:快速异常事件检测算法具有高应用值。但很难选择适当的特征表示以实现快速异常事件检测。鉴于HVS的双脉冲传播理论和计算复杂性,LBP和本文用作视频的时间和空间特征表示。由于人类的理解涉及从低级功能的高级功能的抽象,因此用于提取LBP的高电平融合功能的流线型深度学习网络。本文提出了三种融合方法。最后,这些高级功能用于检测异常事件。实验结果表明,与其他算法相比,该算法的算法更好。

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