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首页> 外文期刊>IEEE Transactions on Intelligent Transportation Systems >Development and Testing of a Real-Time WiFi-Bluetooth System for Pedestrian Network Monitoring, Classification, and Data Extrapolation
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Development and Testing of a Real-Time WiFi-Bluetooth System for Pedestrian Network Monitoring, Classification, and Data Extrapolation

机译:用于行人网络监视,分类和数据外推的实时WiFi蓝牙系统的开发和测试

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摘要

A real-time pedestrian monitoring system provides information about traffic flow, speeds, travel times, and time spent in areas or transportation facilities of interest. This is useful in travel information systems and crowd management strategies, as well as in planning and emergencies in public spaces, such as airports, parks, malls, and university campuses. While there are technologies that can obtain count data for non-motorized transportation at specific locations, mast technologies cannot provide origin-destination information, trip paths, travel times, or time spent. To overcome these shortcomings, some studies have explored the use of Bluetooth (BT) sensors to capture the unique media access control (MAC) addresses of mobile devices carried by pedestrians. However, this collection method may suffer from low-detection rates. As an alternative, collecting MAC data from WiFi signals has emerged. The objective of this paper is three-fold: 1) develop and evaluate the performance of an integrated WiFi-BT system to monitor pedestrian-cyclists activity traffic; 2) develop and validate a classification method for differentiating pedestrians from bicycles; and 3) propose a simple extrapolation method that combines counts and MAC data. Among other results, relatively high detection rates were obtained for the developed WiFi system in comparison with BT sensors. In addition, high correlation between estimated and ground truth speeds and low classification errors are observed. Finally, the extrapolated WiFi counts and ground truth counts were found to be highly correlated. These results demonstrate the feasibility of the proposed system and methods to estimate travel times (speeds), to classify bicycle-pedestrian WiFi signals, and to extrapolate pedestrian MAC counts.
机译:实时行人监控系统可提供有关交通流量,速度,旅行时间以及在相关区域或交通设施中花费的时间的信息。这对于旅行信息系统和人群管理策略,以及机场,公园,购物中心和大学校园等公共场所的计划和紧急情况很有用。尽管有些技术可以获取特定位置非机动运输的计数数据,但是桅杆技术无法提供起点-目的地信息,行进路径,行进时间或花费的时间。为了克服这些缺点,一些研究探索了使用蓝牙(BT)传感器来捕获行人携带的移动设备的唯一媒体访问控制(MAC)地址。但是,这种收集方法可能存在检测率低的问题。作为替代方案,已经出现了从WiFi信号收集MAC数据的方法。本文的目标包括三个方面:1)开发和评估集成的WiFi-BT系统的性能,以监控行人骑行者的活动流量; 2)开发并验证将行人与自行车区分开的分类方法; 3)提出一种简单的外推方法,将计数和MAC数据结合在一起。除其他结果外,与BT传感器相比,已开发的WiFi系统获得了相对较高的检测率。此外,观测到的真实速度与实际速度之间的相关性很高,分类误差也很低。最后,外推的WiFi计数和地面真实计数被发现高度相关。这些结果证明了所提出的系统和方法估计行进时间(速度),对自行车行人WiFi信号进行分类以及推断行人MAC计数的可行性。

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