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MetroTrack: Predictive Tracking of Mobile Events Using Mobile Phones

机译:MetroTrack:使用手机对移动事件进行预测性跟踪

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We propose to use mobile phones carried by people in their everyday lives as mobile sensors to track mobile events. We argue that sensor-enabled mobile phones are best suited to deliver sensing services (e.g., tracking in urban areas) than more traditional solutions, such as static sensor networks, which are limited in scale, performance, and cost. There are a number of challenges in developing a mobile event tracking system using mobile phones. First, mobile sensors need to be tasked before sensing can begin, and only those mobile sensors near the target event should be tasked for the system to scale effectively. Second, there is no guarantee of a sufficient density of mobile sensors around any given event of interest because the mobility of people is uncontrolled. This results in time-varying sensor coverage and disruptive tracking of events, i.e., targets will be lost and must be efficiently recovered. To address these challenges, we propose MetroTrack, a mobile-event tracking system based on off-the-shelf mobile phones. MetroTrack is capable of tracking mobile targets through collaboration among local sensing devices that track and predict the future location of a target using a distributed Kalman-Consensus filtering algorithm. We present a proof-of-concept implementation of MetroTrack using Nokia N80 and N95 phones. Large scale simulation results indicate that MetroTrack prolongs the tracking duration in the presence of varying mobile sensor density.
机译:我们建议使用人们日常生活中携带的移动电话作为移动传感器来跟踪移动事件。我们认为,具有传感器功能的移动电话比规模,性能和成本受到限制的更传统的解决方案(例如静态传感器网络)更适合提供传感服务(例如,在城市地区进行跟踪)。使用移动电话开发移动事件跟踪系统存在许多挑战。首先,需要在开始感应之前对移动传感器进行任务分配,并且仅对目标事件附近的那些移动传感器进行任务分配,以使系统有效扩展。其次,由于人们的活动不受控制,因此无法保证在任何给定的感兴趣事件周围都有足够的移动传感器密度。这导致传感器覆盖范围随时间变化并且破坏性地跟踪事件,即目标将丢失并且必须有效地恢复。为了应对这些挑战,我们提出了MetroTrack,这是一种基于现成手机的移动事件跟踪系统。 MetroTrack能够通过本地感测设备之间的协作来跟踪移动目标,这些设备使用分布式卡尔曼共识过滤算法来跟踪和预测目标的未来位置。我们提供了使用诺基亚N80和N95手机的MetroTrack的概念验证实施。大规模仿真结果表明,在移动传感器密度变化的情况下,MetroTrack可以延长跟踪持续时间。

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