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Development of safety performance functions for Spanish two-lane rural highways on flat terrain

机译:在平坦地形上为西班牙两车道农村公路开发安全绩效功能

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Over decades safety performance functions (SPF) have been developed as a tool for traffic safety in order to estimate the number of crashes in a specific road section. Despite the steady progression of methodological innovations in the crash analysis field, many fundamental issues have not been completely addressed. For instance: Is it better to use parsimonious or fully specified models? How should the goodness-of-fit of the models be assessed? Is it better to use a general model for the entire sample or specific models based on sample stratifications? This paper investigates the above issues by means of several SPFs developed using negative binomial regression models for two-lane rural highways in Spain. The models were based on crash data gathered over a 5-year period, using a broad number of explanatory variables related to exposure, geometry, design consistency and roadside features. Results show that the principle of parsimony could be too restrictive and that it provided simplistic models. Most previous studies apply conventional measurements (i.e., R-2, BIC, AIC, etc.) to assess the goodness-of-fit of models. Seldom do studies apply cumulative residual (CURE) analysis as a tool for model evaluation. This paper shows that CURE plots are essential tools for calibrating SPF, while also providing information for possible sample stratification. Previous authors suggest that sample segmentation increases the model accuracy. The results presented here confirm that finding, and show that the number of significant variables in the final models increases with sample stratification. This paper point out that fully models based on sample segmentation and on CURE may provide more useful insights about traffic crashes than general parsimonious models when developing SPF. (C) 2016 Elsevier Ltd. All rights reserved.
机译:数十年来,安全性能功能(SPF)已被开发为交通安全工具,以估计特定路段的撞车次数。尽管在碰撞分析领域中方法创新不断发展,但许多基本问题尚未完全解决。例如:使用简约或完全指定的模型更好吗?如何评估模型的拟合优度?对整个样本使用通用模型还是根据样本分层使用特定模型更好?本文通过使用负二项式回归模型为西班牙两车道农村公路开发的几种SPF来调查上述问题。这些模型基于过去5年中收集的碰撞数据,并使用了与暴露,几何形状,设计一致性和路边特征相关的大量解释变量。结果表明,简约原则可能过于严格,并且提供了简单化的模型。先前的大多数研究都采用常规测量(即R-2,BIC,AIC等)来评估模型的拟合优度。很少有研究将累积残差(CURE)分析用作模型评估的工具。本文表明,CURE图是校准SPF的基本工具,同时还提供了可能的样品分层信息。先前的作者建议样本分割可以提高模型的准确性。此处提供的结果证实了这一发现,并表明最终模型中重要变量的数量随样品分层而增加。本文指出,在开发SPF时,基于样本分割和CURE的完全模型可能比常规的简化模型提供有关交通事故的更有用的见解。 (C)2016 Elsevier Ltd.保留所有权利。

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