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Role of street patterns in zone-based traffic safety analysis

机译:街道模式在基于区域的交通安全分析中的作用

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Although extensive analyses of road segments and intersections located in urban road networks have examined the role of many factors that contribute to the frequency and severity of crashes, the explicit relationship between street pattern characteristics and traffic safety remains underexplored. Based on a zone-based Hong Kong database, the Space Syntax was used to quantify the topological characteristics of street patterns and investigate the role of street patterns and zone-related factors in zone-based traffic safety analysis. A joint probability model was adopted to analyze crash frequency and severity in an integrated modeling framework and the maximum likelihood estimation method was used to estimate the parameters. In addition to the characteristics of street patterns, speed, road geometry, land-use patterns, and temporal factors were considered. The vehicle hours was also included as an exposure proxy in the model to make crash frequency predictions. The results indicate that the joint probability model can reveal the relationship between zone-based traffic safety and various other factors, and that street pattern characteristics play an important role in crash frequency prediction.
机译:尽管对城市道路网中的路段和交叉路口进行了广泛的分析,研究了许多导致事故频发和严重程度的因素的作用,但仍未充分探索街道特征与交通安全之间的明确关系。基于基于区域的香港数据库,空间语法用于量化街道模式的拓扑特征,并研究街道模式和区域相关因素在基于区域的交通安全分析中的作用。采用联合概率模型在集成建模框架中分析碰撞频率和严重性,并使用最大似然估计方法估计参数。除了街道模式的特征外,还考虑了速度,道路几何形状,土地使用模式和时间因素。车辆小时数也作为模型中的暴露指标包括在内,以进行碰撞频率预测。结果表明,联合概率模型可以揭示基于区域的交通安全与各种其他因素之间的关系,并且街道模式特征在碰撞频率预测中起着重要作用。

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