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Comparative analysis of cost-weighted site ranking using alternate distance-based neighboring structures for spatial crash frequency modeling

机译:使用替代基于距离的相邻结构进行空间碰撞频率建模的成本加权站点排名的比较分析

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摘要

There are significant cost differences between alternate crash severity; cost; spatial; decay; outcomes based on severity levels. This study aims to expand residual; multivariate existing literature with the inclusion of spatial correlations among a group of intersections to compare alternate distance-based weight matrices for cost-weighted hotspot identification (HSID) purpose. Multivariate-Poisson-lognormal-spatial (MVPLNS) method was employed to develop five crash prediction models (pure-distance and decay) to jointly estimate four severity levels (fatal and severe injury, other visible injury, complaint of pain, and noninjury). Model comparison for assessment of goodness-of-fit indicated that relatively subtle matrix structures assign consistent weights that reduce model complexity and eventually enhances the overall fit. The assessment of predictive accuracy of model estimates indicated that the model fit may be correlated with a superior performance at prediction as witnessed in the case of a pure-distance model that consistently exhibited least discrepancy from actual crash counts. The evaluation of HSID performance was based on rankings obtained from cost-weighted severities. The pure-distance models were overall superior at HSID, but among these models, the more subtle model performed significantly better, which hints at the presence of correlation between model fit and HSID performance as it may be possible that benefits of superior fit transfer to equivalent HSID capabilities.
机译:备用碰撞严重性之间存在巨大的成本差异;成本;空间衰变;基于严重程度的结果。这项研究旨在扩大残留;多变量现有文献,其中包括一组相交之间的空间相关性,以比较基于距离的权重矩阵以实现成本加权热点识别(HSID)的目的。多变量泊松对数正态空间(MVPLNS)方法用于开发五个碰撞预测模型(纯距离和衰减),以共同估算四个严重性级别(致命和严重伤害,其他可见伤害,疼痛诉状和非伤害)。评估拟合优度的模型比较表明,相对细微的矩阵结构分配一致的权重,从而降低了模型的复杂性并最终提高了总体拟合度。对模型估计的预测准确性的评估表明,模型拟合可能与预测时的优异性能相关,如在纯距离模型中始终显示出与实际碰撞计数的差异最小的纯距离模型。对HSID性能的评估是基于从成本加权严重性获得的排名。纯距离模型在HSID上总体上优越,但是在这些模型中,较细微的模型的性能要好得多,这暗示了模型拟合和HSID性能之间存在相关性,因为可能会将优越拟合的好处转移到等效模型上HSID功能。

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