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Improved Object Classification and Tracking Based on Overlapping Cameras in Video Surveillance

机译:基于视频监控中的重叠摄像机的改进对象分类和跟踪

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Object classification and tracking are important in intelligent video surveillance systems. In this paper, an approach based on multiple overlapping cameras cooperation is proposed for object classification and tracking. In the proposed surveillance system, all the cameras are connected to the central computer server through network connection. Viewpoint correspondence and data fusion from multiple overlapping cameras are utilized to improve object classification and tracking in complex occlusion scenes. This paper demonstrates the benefit gained both in tracking and classification through the communication between the two individual modules. Experimental results show that the proposed method achieves higher classification accuracy and tracking performance in comparison with single-camera method.
机译:对象分类和跟踪在智能视频监控系统中非常重要。本文提出了一种基于多重重叠相机协作的方法,用于对象分类和跟踪。在所提出的监视系统中,所有相机都通过网络连接连接到中央计算机服务器。从多个重叠摄像机的视点对应和数据融合用于改善复杂遮挡场景中的对象分类和跟踪。本文通过两种单独模块之间的通信,展示了在跟踪和分类中获得的福利。实验结果表明,该方法与单摄像头法相比,达到了更高的分类精度和跟踪性能。

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