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A People Counting System for Use in CCTV Cameras in Retail

机译:零售中央电视台摄像机的人数计数系统

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This paper focuses on the feasibility of implementing a vision-based people counting system using footage from an existing surveillance camera in a restaurant establishment. The main challenge is to do so given the unique fixed viewpoint of the camera, which is optimized for security instead of data analytics. A three-step approach, namely people detection, tracking, and then people counting, is employed in creating the system. Neural networks such as YOLOv3 and Deep SORT are used. The proponents then partnered with a retail establishment in a high-traffic business district, to test the system. The results show that it is possible to achieve an accuracy of 82.76% for days when the restaurant waiting area is not crowded. The system also achieved an overall accuracy of 66.17% over five days of extensive testing, which includes extreme conditions wherein people in the video are densely packed and occluded. However, the system performance and accuracy can still be improved through downsizing the frames, retraining the models, and exploring other models.
机译:本文侧重于在餐厅建立中使用现有监控摄像头的镜头实施基于视觉的人数计数系统的可行性。考虑到相机的独特固定视点,主要挑战是这样做的,这针对安全性而不是数据分析进行了优化。一种三步的方法,即人们检测,跟踪,然后计数人员,在创建系统时使用。使用yolov3和深排等神经网络。然后,该支持者在高交通商业区零售店合作,以测试该系统。结果表明,当餐馆等候区不拥挤时,可以实现82.76%的准确性。该系统还在大量测试中实现了66.17%的总精度,包括极端条件,其中视频中的人们密集包装和堵塞。然而,通过缩小帧,再培训模型和探索其他模型,仍然可以改善系统性能和准确性。

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