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Passive Crowd Speed Estimation in Adjacent Regions With Minimal WiFi Sensing

机译:相邻地区的被动人群速度估计,具有最小的WiFi感测

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In this paper, we propose a methodology for estimating the crowd speed using WiFi devices without relying on people to carry any device. Our approach not only enables speed estimation in the region where WiFi links are, but also in the adjacent possibly WiFi-free regions. More specifically, we use a pair of WiFi links in one region, whose RSSI measurements are then used to estimate the crowd speed, not only in this region, but also in adjacent WiFi-free regions. We first prove how the cross-correlation and the probability of crossing the two links implicitly carry key information about the pedestrian speeds and develop a mathematical model to relate them to pedestrian speeds. We then validate our approach with 108 experiments, in both indoor and outdoor, where up to 10 people walk in two adjacent areas, with a variety of speeds per region, showing that our framework can accurately estimate these speeds with only a pair of WiFi links in one region. For instance, the NMSE over all experiments is 0.18. We also evaluate our framework in a museum-type setting and estimate the popularity of different exhibits. We finally run experiments in an aisle in Costco, estimating key attributes of buyers' behaviors.
机译:在本文中,我们提出了一种使用WiFi设备估算人群速度的方法,而无需依赖人们携带任何设备。我们的方法不仅能够在WiFi链路所在的区域中能够估计,而且在邻近可能的无线区域中的地区。更具体地,我们在一个区域中使用一对WiFi链路,然后使用其RSSI测量来估计人群速度,不仅在该区域中,而且在相邻的无线区域中估计。我们首先证明如何互相关和交叉两个链接的概率隐含地携带关于行人速度的关键信息,并开发数学模型以将它们与行人速度相关联。然后,我们在室内和室外进行了108个实验验证了我们的方法,最高可达10人在两个相邻的区域中漫步,每个地区有多种速度,表明我们的框架可以准确地估计这些速度,只有一对WiFi链接估计这些速度在一个地区。例如,所有实验的NMSE为0.18。我们还在博物馆类型设置中评估我们的框架,并估算不同展品的普及。我们终于在Costco的过道中运行实验,估计买家行为的关键属性。

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