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A method for counting moving and stationary people by interest point classification

机译:一种基于兴趣点分类的动静人数统计方法

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While the methods for people counting based on moving interest points have been shown good performance, the problem related to count static or temporarily stopped people remains particularly challenging. This paper presents a novel method for people counting which is considering moving and stationary people. The proposed method first separates the moving and static points by the motion information. Then, the temporarily static points of stationary people classified by analyzing the texture information of the points between the current and the eigenbackground image. Finally, we estimate the number of people using the moving and the temporarily static points. The experimental results show that the proposed method can identify the static points related to people correctly. Additionally, the results confirm that the proposed method reduces the estimation error in the sequences containing the many temporarily static people.
机译:尽管基于移动兴趣点的人数计数方法已显示出良好的性能,但是与统计静态或暂时停止的人数有关的问题仍然特别具有挑战性。本文提出了一种新的人数统计方法,该方法考虑了移动和静止的人员。所提出的方法首先通过运动信息将动点和静点分开。然后,通过分析当前和本征背景图像之间的点的纹理信息,对固定人的临时静态点进行分类。最后,我们估计使用移动点和临时静态点的人数。实验结果表明,该方法能够正确识别与人有关的静态点。另外,结果证实了所提出的方法减少了包含许多临时静态人员的序列中的估计误差。

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