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首页> 外文期刊>IEEE transactions on mobile computing >Pedestrian Flow Estimation Through Passive WiFi Sensing
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Pedestrian Flow Estimation Through Passive WiFi Sensing

机译:通过被动WiFi传感的行人流程估算

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In public places, even if pedestrians do not have their mobile devices connected with any WiFi access point (AP), WiFi probe requests will be broadcast, so that WiFi sniffers can be employed to crowdsource these WiFi probe packets for use. This paper tackles the problem of exploiting the passive WiFi sensing approach for pedestrian flow analysis. To be specific, a passive WiFi sensing model is first established based on a probabilistic analysis of interactions between WiFi sniffers and the moving pedestrian flow, capturing the main factors affecting pedestrian flow characteristics. On that basis, a sequential filtering algorithm is proposed based on the Rao-Blackwellized particle filter (RBPF) to produce simultaneous and efficient estimates of the pedestrian flow speed and pedestrian number utilizing the real-time sniffing results. In order to validate this study, an experimental pedestrian surveillance system using WiFi sniffers is deployed at the transfer channel of a metro station in Guangzhou, China. Extensive experiments are conducted to verify the passive sensing model, and confirm the effectiveness and advantages of the proposed algorithm. The pedestrian flow estimation not only helps to improve the safety and facility management and customer services, but also paves the way for introducing other novel applications.
机译:在公共场所,即使行人没有与任何WiFi接入点(AP)连接的移动设备,也将广播WiFi探测请求,以便可以使用WiFi嗅探器来携带这些WiFi探测数据包进行使用。本文解决了利用被动WiFi传感方法进行行人流量分析的问题。具体而言,首先基于WiFi嗅探器与移动行人流动之间的相互作用的概率分析来建立无源WiFi传感模型,捕获影响行人流动特性的主要因素。在此基础上,基于Rao-Blackwellized粒子滤波器(RBPF)提出了一种顺序滤波算法,以利用实时嗅探结果产生行人流速和行人数的同时和有效估计。为了验证这项研究,使用WiFi嗅探器的实验步行监测系统部署在中国广州地铁站的转移渠道。进行广泛的实验以验证被动感测模型,并确认所提出的算法的有效性和优点。行人流量估计不仅有助于改善安全和设施管理和客户服务,而且还为引入其他新颖应用铺平了道路。

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