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Unveiling the inter-relations between the urban streets network and its dynamic traffic flows: Planning implication

机译:揭示城市街道网络与其动态交通流之间的相互关系:规划意义

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Traffic flows have always been a major element affecting the nature of urban streets. Traffic flows influence the location of businesses, residences, and the development of real estate, land values, and built-density. In this study, we suggest that revealing the relations between the static street network and dynamic traffic flows may provide meaningful and useful insights that could be applied in planning processes. Thus, the objective of this work is to unveil the inter-relations between the dynamics of traffic flows and urban street networks in different areas of a city and between cities. We use network percolation analysis (i.e., removal of links with a speed value lower than a pre-defined threshold) to develop an innovative method to identify functional spatio-temporal street clusters that represent fluent traffic flow. We employed our method on two data sets of London and Tel Aviv centers and analyzed the dynamics of these clusters, based on their size (in terms of street length) and their spatial stability over time. Our findings revealed both the differences between the two cities as well as differences and similarities between different areas within each city. Thus, our method can be used to develop new, real-time, decision-making tools for urban and transportation planners. Today, new technologies provide big data on urban traffic flow, which can be used in developing new, adaptive tools for planning. However, urban and transportation planning are currently being challenged by real-time navigation apps that aim to find the fastest routes for their users. To be able to intervene and affect urban life quality, planners should adopt new tools that are based on real-time, short-term approaches. These will bridge the gap between static long-term urban planning and the flexible and dynamic urban rhythm, and will enable planners to keep their role in the formation of better cities.
机译:交通流量一直是影响城市街道性质的主要因素。交通流量会影响企业,住宅的位置以及房地产的开发,土地价值和建筑密度。在这项研究中,我们建议揭示静态街道网络与动态交通流之间的关系可能会提供有意义且有用的见解,可将其应用于规划过程中。因此,这项工作的目的是揭示在城市的不同区域以及城市之间交通流量的动态与城市街道网络之间的相互关系。我们使用网络渗透分析(即删除速度值低于预定义阈值的链接)开发一种创新方法来识别代表流畅交通流的功能时空街道集群。我们在伦敦和特拉维夫两个中心的数据集上采用了我们的方法,并根据它们的大小(以街道长度为单位)及其随时间的空间稳定性分析了这些集群的动态。我们的发现揭示了两个城市之间的差异以及每个城市内不同区域之间的差异和相似性。因此,我们的方法可用于为城市和交通规划者开发新的实时决策工具。如今,新技术提供了有关城市交通流量的大数据,可用于开发新的自适应规划工具。但是,当前旨在为用户找到最快路线的实时导航应用程序正在挑战城市和交通规划。为了能够干预和影响城市生活质量,规划人员应采用基于实时,短期方法的新工具。这些将弥合静态的长期城市规划与灵活而动态的城市节奏之间的鸿沟,并使规划人员能够在形成更好的城市中继续发挥作用。

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