Water Filling: Unsupervised People Counting via Vertical Kinect Sensor

Xucong Zhang, Junjie Yan, Shikun Feng, Zhen Lei, Dong Yi, S. Li
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引用次数: 110

Abstract

People counting is one of the key components in video surveillance applications, however, due to occlusion, illumination, color and texture variation, the problem is far from being solved. Different from traditional visible camera based systems, we construct a novel system that uses vertical Kinect sensor for people counting, where the depth information is used to remove the affect of the appearance variation. Since the head is always closer to the Kinect sensor than other parts of the body, people counting task equals to find the suitable local minimum regions. According to the particularity of the depth map, we propose a novel unsupervised water filling method that can find these regions with the property of robustness, locality and scale-invariance. Experimental comparisons with mean shift and random forest on two databases validate the superiority of our water filling algorithm in people counting.
注水:通过垂直Kinect传感器进行无监督计数
人员计数是视频监控应用的关键组成部分之一,但由于遮挡、光照、颜色和纹理的变化,这一问题远未得到解决。与传统的基于可视摄像头的系统不同,我们构建了一个新的系统,该系统使用垂直Kinect传感器进行人数统计,其中深度信息用于消除外观变化的影响。由于头部总是比身体的其他部位更靠近Kinect传感器,人们计算任务等于找到合适的局部最小区域。根据深度图的特殊性,提出了一种新的无监督充水方法,该方法可以找到具有鲁棒性、局域性和尺度不变性的区域。在两个数据库上与mean shift和random forest进行的实验比较,验证了我们的补水算法在人口计数方面的优越性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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