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Applying GIS-based Traditional Travel Demand Model for Improved Network-wide Traffic Estimation: New Brunswick Case-Study

机译:基于GIS的传统旅行需求模型改进网络范围的交通估算:新的布伦斯维克案例研究

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Traffic volume counts are used by many Departments of Transportation in planning, traffic operations, and asset management programs. Traditionally, four-step model (FSM) is based on traffic analysis zones (TAZs) structure which conveniently uses existing census geography to take advantage of demographic data available from Statistics Canada. This coarse zone structure tends to exaggerate the intra-zone trips resulting in biased and unbalanced trip distribution over roadway network and high estimation errors. Also, estimation of traffic volumes on low-class roads is ignored in most cases. Limitations above have necessitated developing a GIS-based high-fidelity travel demand model (HFTDM) capable of achieving network-wide traffic volume estimation with improved accuracy. This will require using all functional class roadway network and spatially disaggregating census-based coarse TAZ structure into grid-based fine zones based on road density areal interpolation technique. Preliminary results from a case study developed for Beresford area in the Canadian Province of New Brunswick show that the proposed methodology is promising.
机译:许多运输部门在规划,交通运营和资产管理方案中使用交通量计数。传统上,四步模型(FSM)基于交通分析区域(TAZS)结构,方便使用现有的人口普查地理学来利用加拿大统计数据的人口统计数据。这种粗糙区域结构倾向于夸大区域内的行程,导致道路网络和高估计误差的偏置和不平衡分布。此外,在大多数情况下,忽略了低级道路上的交通量的估计。上述限制需要开发基于GIS的高保真旅行需求模型(HFTDM),其能够以提高的精度实现网络宽的交通量估计。这将需要使用所有功能类道路网络以及空间分类基于人口普查的粗TAZ结构,基于道路密度面值技术的基于网格的细区。为加拿大省新不伦瑞克省的Beresford地区开发的案例研究结果表明,提出的方法是有前途的。

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