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首页> 外文期刊>International Journal of Automotive Technology >MULTIVARIATE MODELING OF PEDESTRIAN FATALITY RISK THROUGH ON THE SPOT ACCIDENT INVESTIGATION
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MULTIVARIATE MODELING OF PEDESTRIAN FATALITY RISK THROUGH ON THE SPOT ACCIDENT INVESTIGATION

机译:基于事故现场调查的行人死亡风险的多变量建模

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摘要

Pedestrians are the most vulnerable users of public roads and represent one of the largest groups of road casualties; their death rate around the world due to vehicle-pedestrian collisions is high and tending to rise. In Spain, as in other countries of the European Union, steps have been taken to reduce the number and consequences of such accidents, with encouraging results in recent years. A key to countering this concern is the accident research activity that has obtained remarkable achievements in different fields, especially when multidisciplinary approaches are taken. This paper describes the development of a multivariate model that is able to detect the most influential parameters on the consequences of vehicle-pedestrian collision and to quantify their impact on pedestrian fatality risk. First, an accident database containing detailed information and parameters of vehicle-pedestrian collisions in Madrid has been developed. The accidents were investigated on the spot by INSIA accident investigation teams and analyzed using advanced reconstruction techniques. The model was then developed with two components: (1) a classification tree that characterizes and selects the explanatory variables, identifying their interactions, and (2) a binary logistic regression to quantify the influence of each variable and interaction resulting from the classification tree. The whole model represents an important tool for identifying, quantifying and predicting the potential impact of measures aimed at reducing injuries in vehicle-pedestrian collisions.
机译:行人是公共道路上最脆弱的使用者,是道路伤亡人数最多的群体之一;由于行人与人之间的碰撞,他们在世界范围内的死亡率很高,并且呈上升趋势。在西班牙,与欧洲联盟其他国家一样,已采取措施减少此类事故的数量和后果,近年来取得了令人鼓舞的结果。解决这一问题的关键是事故研究活动在不同领域都取得了显著成就,尤其是采用多学科方法时。本文介绍了一个多元模型的开发,该模型能够检测出对车辆与行人碰撞的后果影响最大的参数,并量化其对行人死亡风险的影响。首先,建立了一个事故数据库,其中包含马德里的行人碰撞的详细信息和参数。 INSIA事故调查小组对事故进行了现场调查,并使用先进的重建技术进行了分析。然后,该模型由两个部分开发:(1)分类树,其特征在于选择并解释解释变量,识别其相互作用;(2)二进制逻辑回归,以量化每个变量的影响以及分类树产生的相互作用。整个模型代表着一种重要的工具,可用于识别,量化和预测旨在减少行人碰撞中的伤害的措施的潜在影响。

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