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The effect of road network patterns on pedestrian safety: A zone-based Bayesian spatial modeling approach

机译:道路网络模式对行人安全的影响:基于区域的贝叶斯空间建模方法

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摘要

Pedestrian safety is increasingly recognized as a major public health concern. Extensive safety studies have been conducted to examine the influence of multiple variables on the occurrence of pedestrian-vehicle crashes. However, the explicit relationship between pedestrian safety and road network characteristics remains unknown. This study particularly focused on the role of different road network patterns on the occurrence of crashes involving pedestrians. A global integration index via space syntax was introduced to quantify the topological structures of road networks. The Bayesian Poisson-lognormal (PLN) models with conditional autoregressive (CAR) prior were then developed via three different proximity structures: contiguity, geometry-centroid distance, and road network connectivity. The models were also compared with the PLN counterpart without spatial correlation effects. The analysis was based on a comprehensive crash dataset from 131 selected traffic analysis zones in Hong Kong.The results indicated that higher global integration was associated with more pedestrian-vehicle crashes; the irregular pattern network was proved to be safest in terms of pedestrian crash occurrences, whereas the grid pattern was the least safe; the CAR model with a neighborhood structure based on road network connectivity was found to outperform in model goodness-of-fit, implying the importance of accurately accounting for spatial correlation when modeling spatially aggregated crash data.
机译:行人安全越来越被认为是主要的公共卫生问题。已经进行了广泛的安全研究,以检查多个变量对行人车辆撞击发生的影响。然而,行人安全和道路网络特征之间的明确关系仍然未知。本研究特别集中在不同的道路网络模式对涉及行人的崩溃发生的作用。引入了通过空间语法的全局集成指标来量化道路网络的拓扑结构。然后通过三种不同的接近结构开发了具有条件自回归(汽车)的贝叶斯泊松 - 逻辑(PLN)模型:Tutipity,Geometry-Firedroid距离和道路网络连接。也与PLN对应物进行比较而没有空间相关效果的模型。该分析基于来自香港131个选定的交通分析区的全面崩溃数据集。结果表明,全球融合更高的全球集成与更多的行人车祸相关;在行人碰撞事件方面证明了不规则模式网络是最安全的,而电网图案是最不安的;基于道路网络连接的邻域结构的汽车模型被发现以模型的拟合形式优于拟合,这意味着在在空间汇总崩溃数据建模时准确地算用于空间相关性的重要性。

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