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Spatial-temporal inference of urban traffic emissions based on taxi trajectories and multi-source urban data

机译:基于出租车轨迹和多源城市数据的城市交通排放时空推断

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Vehicle trajectory data collected via GPS-enabled devices have played increasingly important roles in estimating network-wide traffic, given their broad spatial-temporal coverage and representativeness of traffic dynamics. This paper exploits taxi GPS data, license plate recognition (LPR) data, and geographical information for reconstructing the spatial and temporal patterns of urban traffic emissions. Vehicle emission factor models are employed to estimate emissions based on taxi trajectories. The estimated emissions are then mapped to spatial grids of urban areas to account for spatial heterogeneity. To extrapolate emissions from the taxi fleet to the whole vehicle population, we use Gaussian process regression (GPR) models supported by geographical features to estimate the spatially heterogeneous traffic volume and fleet composition. Unlike previous studies, this paper utilizes the taxi GPS data and LPR data to disaggregate vehicle and emission characteristics through space and time in a large-scale urban network. The results of a case study in Hangzhou, China, reveal high-resolution spatio-temporal patterns of traffic flows and emissions, and identify emission hotspots. This study provides an accessible means of inferring the environmental impact of urban traffic with multi-source urban data that are now widely available in urban areas.
机译:鉴于具有广泛的时空覆盖范围和交通动态的代表性,通过启用GPS的设备收集的车辆轨迹数据在估计网络范围的交通中起着越来越重要的作用。本文利用出租车GPS数据,车牌识别(LPR)数据和地理信息来重构城市交通排放的时空格局。车辆排放因子模型用于根据滑行轨迹估算排放。然后将估算的排放量映射到市区的空间网格,以解决空间异质性问题。为了将出租车车队的排放量推断为整个车辆人口,我们使用了受地理特征支持的高斯过程回归(GPR)模型来估计空间异构交通量和车队组成。与以前的研究不同,本文利用出租车GPS数据和LPR数据通过大规模城市网络中的空间和时间分解车辆和排放特征。在中国杭州进行的案例研究结果揭示了交通流和排放的高分辨率时空模式,并确定了排放热点。这项研究提供了一种可访问的方法,可以利用目前在城市地区广泛获得的多源城市数据来推断城市交通对环境的影响。

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