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A model of speed profiles for urban road networks using G-means clustering

机译:基于G均值聚类的城市道路网速度剖面模型。

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In this paper, we present a method for computing speed profiles by processing GPS data collected by vehicles in an urban area. The vehicles were tracked during a five year period on the road network of the capital city of Croatia (Zagreb). Traffic congestions in Croatia appear almost exclusively in urban areas, therefore Zagreb was chosen for this study as it is by far the largest city. The profiles for the roads were computed for each day of the week, where each day was segmented into five minute intervals. As there are no congestions during the night, the free flow speed for the roads was determined by averaging vehicle speeds which were recorded during that time. The speed profiles were clustered using G-means, a variant of the k-means clustering algorithm, to reduce storage space and to categorize roads observed in future research based on their profile. By applying this algorithm we reduced the number of total speed profiles by more than 90%. The profiles were developed as part of the SORDITO project, with the goal of developing algorithms for vehicle route optimizations.
机译:在本文中,我们提出了一种通过处理市区内车辆收集的GPS数据来计算速度曲线的方法。在五年的时间里,在克罗地亚首都萨格勒布的道路网络上对车辆进行了跟踪。克罗地亚的交通拥堵几乎只出现在城市地区,因此本次研究选择了萨格勒布,因为它是迄今为止最大的城市。针对一周中的每一天计算道路轮廓,其中将每一天分成五分钟间隔。由于夜间没有拥堵,道路的自由流速度是通过平均这段时间记录的车速来确定的。速度曲线使用k均值聚类算法的一种变体G均值进行聚类,以减少存储空间并根据其轮廓对未来研究中观察到的道路进行分类。通过应用该算法,我们将总速度曲线的数量减少了90%以上。概要文件是SORDITO项目的一部分,目的是开发用于车辆路线优化的算法。

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