Passenger detection for subway transportation based on video

Victor Y. Chen, Liquan Zhang, Jia Wang
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引用次数: 4

Abstract

The purpose of this paper is to analyze passengers' moving direction through the video shot in the entrances and exits of the subway stations. The results of the analysis will be helpful to relevant departments to manage the traffic condition, making a decision in the face of emergency. First of all, this paper adopts Haar features and Adaboost algorithm to implement the detection of human's head through OpenCV; Secondly, this paper uses color histogram in the head recognition and an improved algorithm that adds the step of comparing the pixel value of the location coordinates in consecutive frames is proposed; At last, the paper realizes the human tracking through the establishment of target tracking chain and puts forward to analyze passengers' moving direction through space coordinate information.
基于视频的地铁乘客检测
本文的目的是通过在地铁站出入口拍摄的视频来分析乘客的移动方向。分析结果将有助于相关部门管理交通状况,在面临紧急情况时做出决策。首先,本文采用Haar特征和Adaboost算法,通过OpenCV实现对人体头部的检测;其次,将颜色直方图用于头部识别,并提出了一种改进算法,增加了连续帧中位置坐标像素值比较的步骤;最后,通过建立目标跟踪链实现了人的跟踪,并提出了利用空间坐标信息分析乘客的移动方向。
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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