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Time-dependent Partitioning of Urban Traffic Network into Homogeneous Regions

机译:城市交通网络将城市交通网络划分为同质地区

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摘要

Congestion in urban areas constitutes an important problem that affects people in explicit but also implicit ways. Current research literature on Urban Traffic Estimation has shown that homogeneous distribution of vehicle density along the links of urban traffic networks plays an important role in the derivation or even the existence of the so-called Urban-Scale Macroscopic Fundamental Diagram or MFD in short. This Urban-Scale MFD can provide information that facilitates the application of perimeter traffic control strategies. In this paper, we implement a partitioning of an urban road network into homogeneous regions based on historical traffic information. Using prior information, we make informed decisions about the selection of the region on which the urban road network is based on, as well as the particular time periods for which the partitioning is to be implemented. We make use of weighted k-means, k-harmonic means and normalized spectral clustering techniques to successfully partition the region into clusters defined by low link density variability, while ensuring that the resulting partitions are spatially cohesive.
机译:城市地区拥堵构成了一个重要的问题,这些问题会影响人们的明确,而且是隐含的方式。目前关于城市交通估计的研究文献表明,沿着城市交通网络联系的车辆密度同质分布在推导中起重要作用甚至是所谓的城市规模宏观基础图或MFD的存在。这种城市规模的MFD可以提供有助于应用周边交通管制策略的信息。在本文中,我们基于历史交通信息实施了城市道路网络的分区进入同类区域。使用先前信息,我们对城市道路网络基于该区域的选择以及要实现分区的特定时间段进行了明智的决定。我们利用加权K-Means,K谐波装置和归一化的光谱聚类技术来成功地将区域分隔为由低链路密度变异性定义的簇,同时确保所得分区是空间上的内聚。

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