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Traffic data collection using active mobile and stationary devices

机译:使用主动移动和静止设备的流量数据收集

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In this paper, we study the complementary characteristics of stationary and mobile devices for traffic data collection. Since stationary devices continuously collect traffic data at fixed locations in a network, they can give insight of the traffic at particular locations over a longer period of time. Mobile devices have wider range and are able to collect traffic data over a larger geographic region. Thus, we argue that both types of technology should be considered to obtain high-quality information about vehicle movements. We present a traffic simulation model, which we use to study the share of successfully identified vehicles when considering both stationary and mobile technologies with varying identification rate. The results of our study, where we focus on freight transport in southern Sweden, confirms that it is possible to identify the majority of vehicles, even when the identification rate is low, and that the share of identified vehicles can be increased by using both stationary and mobile measurement devices.
机译:在本文中,我们研究了交通数据收集的静止和移动设备的互补特性。由于静止设备在网络中的固定位置连续收集交通数据,因此它们可以在更长的时间段内在特定位置处介绍交通。移动设备具有更宽的范围,并且能够通过更大的地理区域收集交通数据。因此,我们认为应该考虑两种技术,以获得有关车辆运动的高质量信息。我们提出了一种流量仿真模型,我们用于研究具有不同识别率的静止和移动技术时成功确定的车辆的份额。我们研究的结果,我们专注于瑞典南部的货运运输,确认也可以识别大部分车辆,即使识别率低,也可以通过使用静止来增加所识别的车辆的份额和移动测量设备。

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