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Grid Mapping for Spatial Pattern Analyses of Recurrent Urban Traffic Congestion Based on Taxi GPS Sensing Data

机译:基于出租车GPS感知数据的城市经常性交通拥堵空间格局分析的网格映射

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Traffic congestion is one of the most serious problems that impact urban transportation efficiency, especially in big cities. Identifying traffic congestion locations and occurring patterns is a prerequisite for urban transportation managers in order to take proper countermeasures for mitigating traffic congestion. In this study, the historical GPS sensing data of about 12,000 taxi floating cars in Beijing were used for pattern analyses of recurrent traffic congestion based on the grid mapping method. Through the use of ArcGIS software, 2D and 3D maps of the road network congestion were generated for traffic congestion pattern visualization. The study results showed that three types of traffic congestion patterns were identified, namely: point type, stemming from insufficient capacities at the nodes of the road network; line type, caused by high traffic demand or bottleneck issues in the road segments; and region type, resulting from multiple high-demand expressways merging and connecting to each other. The study illustrated that the proposed method would be effective for discovering traffic congestion locations and patterns and helpful for decision makers to take corresponding traffic engineering countermeasures in order to relieve the urban traffic congestion issues.
机译:交通拥堵是影响城市交通效率的最严重问题之一,特别是在大城市。确定交通拥堵的位置和发生的方式,是城市交通管理人员采取适当对策以缓解交通拥堵的前提。在这项研究中,基于网格映射方法,使用了北京约12,000辆出租车浮动车的历史GPS感应数据,对交通拥堵进行了模式分析。通过使用ArcGIS软件,生成了道路网络拥堵的2D和3D地图,用于交通拥堵模式的可视化。研究结果表明,确定了三种类型的交通拥堵模式:基于道路网络节点容量不足的点类型;线型,由高流量需求或路段中的瓶颈问题引起;和区域类型,这是由多个高需求的高速公路合并并相互连接而产生的。研究表明,所提出的方法对于发现交通拥堵的位置和方式将是有效的,并且有助于决策者采取相应的交通工程对策,以缓解城市交通拥堵的问题。

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