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首页> 外文期刊>Transportation research >Disentangling the city traffic rhythms: A longitudinal analysis of MFD patterns over a year
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Disentangling the city traffic rhythms: A longitudinal analysis of MFD patterns over a year

机译:解开城市交通节律:一年多的MFD模式的纵向分析

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摘要

Urban road transportation performance is the result of a complex interplay between the network supply and the travel demand. Fortunately, the framework around the macroscopic fundamental diagram (MFD) provides an efficient description of network-wide traffic performance. In this paper, we show how temporal patterns of vehicle traffic define the performance of urban road networks. We present two high-resolution traffic datasets covering a year each. We introduce a methodology to quantify the similarity of macroscopic traffic patterns. We do so by using the concepts of the MFD and a dynamic time warping (DTW) based algorithm for time series. This allows us to derive a few representative MFD clusters that capture the essential macroscopic traffic patterns. We then provide an in-depth analysis of traffic heterogeneity in the network which is indicative of the previously found clusters. Thereupon, we define a parsimonious classification approach to predict the expected MFD clusters early in the morning with high accuracy.
机译:城市道路运输性能是网络供应与旅行需求之间复杂相互作用的结果。幸运的是,宏观基础图(MFD)周围的框架提供了网络范围的交通性能的有效描述。在本文中,我们展示了车辆交通的时间模式如何定义城市道路网络的性能。我们展示了两个高分辨率的交通数据集每年覆盖一年。我们介绍一种量化宏观交通模式的相似性的方法。我们通过使用MFD的概念和基于动态时间翘曲(DTW)的时间序列算法来这样做。这允许我们从捕获基本宏观流量模式的少数代表性的MFD集群。然后,我们对网络中的交通异质性进行了深入的分析,其指示先前发现的簇。于是,我们定义了一种定义的分类方法,以预测早晨的预期MFD集群,高精度。

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