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Human Mobility Monitoring in Very Low Resolution Visual Sensor Network

机译:低分辨率视觉传感器网络中的人员流动监控

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摘要

This paper proposes an automated system for monitoring mobility patterns using a network of very low resolution visual sensors (30 × 30 pixels). The use of very low resolution sensors reduces privacy concern, cost, computation requirement and power consumption. The core of our proposed system is a robust people tracker that uses low resolution videos provided by the visual sensor network. The distributed processing architecture of our tracking system allows all image processing tasks to be done on the digital signal controller in each visual sensor. In this paper, we experimentally show that reliable tracking of people is possible using very low resolution imagery. We also compare the performance of our tracker against a state-of-the-art tracking method and show that our method outperforms. Moreover, the mobility statistics of tracks such as total distance traveled and average speed derived from trajectories are compared with those derived from ground truth given by Ultra-Wide Band sensors. The results of this comparison show that the trajectories from our system are accurate enough to obtain useful mobility statistics.
机译:本文提出了一种自动系统,该系统使用超低分辨率视觉传感器(30×30像素)网络监视移动性模式。使用分辨率很低的传感器可以减少隐私问题,成本,计算需求和功耗。我们提出的系统的核心是一个强大的人员跟踪器,它使用视觉传感器网络提供的低分辨率视频。我们跟踪系统的分布式处理体系结构允许所有图像处理任务在每个视觉传感器中的数字信号控制器上完成。在本文中,我们通过实验表明,使用超低分辨率图像可以对人进行可靠的跟踪。我们还将跟踪器的性能与最新的跟踪方法进行了比较,并证明了该方法的性能优于其他跟踪器。此外,将轨迹的移动性统计数据(例如从轨迹得出的总行驶距离和平均速度)与从超宽带传感器给出的地面真实情况得出的统计信息进行了比较。比较结果表明,我们系统的轨迹足够准确,可以获得有用的流动性统计信息。

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