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Vision-based People Counting for Attendance Monitoring System

机译:基于视觉的人数计入出勤监测系统

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In this paper, an automatic people detection and counting system using data collected from an over-head camera is proposed. The purpose of this research is to develop a fast and accurate intelligent people counting technique for attendance monitoring systems in offices and lecture rooms. The proposed method includes two stages working sequentially. First, the detection task is executed to find any person presented in the current frame. A deep learning architecture, MobileNetv2-SSD, was used to carry out the detecting phase. If there is any detected person, the tracking phase, which based on visual-tracking techniques, will be initialized, and keeps track of the people’s position. Based on the tracked motion path of the detected people, we can determine if there is any person who has entered or exited the room. Therefore, we can monitor the number of attending people. The testing hardware was a Raspberry Pi computer and a camera. This work has been tested on different stages of a day and achieved real-time performance with sufficient accuracy.
机译:在本文中,提出了使用从过头相机收集的数据的自动人员检测和计数系统。本研究的目的是开发一种快速准确的智能人员,用于办公室和演讲室的出勤监控系统。所提出的方法包括顺序工作的两个阶段。首先,执行检测任务以查找当前帧中呈现的任何人。使用深度学习架构MobileNetv2-SSD来执行检测阶段。如果有任何检测到的人,则将初始化基于视觉跟踪技术的跟踪阶段,并跟踪人们的位置。基于检测到的人的履带运动路径,我们可以确定是否有任何已进入或退出房间的人。因此,我们可以监控参加人数的人数。测试硬件是覆盆子PI电脑和相机。这项工作已经在一天的不同阶段进行了测试,并以足够的准确性实现了实时性能。

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