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Retrieving dynamic origin-destination matrices from Bluetooth data

机译:从Bluetooth数据检索动态来源-目的地矩阵

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摘要

The Bluetooth technology is being increasingly used, among the Automated Vehicle Identification Systems, to retrieve important information about urban networks. Because the movement of Bluetooth-equipped vehicles can be monitored, throughout the network of Bluetooth sensors, this technology represents an effective means to acquire accurate time dependant Origin Destination information. In order to obtain reliable estimations, however, a number of issues need to be addressed, through data filtering and correction techniques. Some of the main challenges inherent to Bluetooth data are, first, that Bluetooth sensors may fail to detect all of the nearby Bluetooth-enabled vehicles. As a consequence, the exact journey for some vehicles may become a latent pattern that will need to be estimated. Second, sensors that are in close proximity to each other may have overlapping detection areas, thus making the task of retrieving the correct travelled path even more challenging.ududThe aim of this paper is twofold: to give an overview of the issues inherent to the Bluetooth technology, through the analysis of the data available from the Bluetooth sensors in Brisbane; and to propose a method for retrieving the itineraries of the individual Bluetooth vehicles. We argue that estimating these latent itineraries, accurately, is a crucial step toward the retrieval of accurate dynamic Origin Destination Matrices.
机译:在自动车辆识别系统中,越来越多地使用蓝牙技术来检索有关城市网络的重要信息。由于可以监控配备蓝牙的车辆的运动,因此可以在整个蓝牙传感器网络中进行监视,因此该技术是一种获取准确时间相关的原始目的地信息的有效手段。然而,为了获得可靠的估计,需要通过数据过滤和校正技术来解决许多问题。蓝牙数据固有的一些主要挑战是,首先,蓝牙传感器可能无法检测附近的所有启用蓝牙的车辆。结果,某些车辆的确切行程可能成为潜在的模式,需要对其进行估算。其次,彼此接近的传感器可能具有重叠的检测区域,因此使检索正确的行进路径的任务变得更具挑战性。 ud ud本文的目的是双重的:概述固有的问题通过分析布里斯班的蓝牙传感器提供的数据,将其应用于蓝牙技术;并且提出一种用于检索各个蓝牙车辆的路线的方法。我们认为,准确地估计这些潜在行程是朝着准确的动态原始目的地矩阵的检索迈出的关键一步。

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