A weighted logistic regression analysis for predicting the odds of head/face and neck injuries during rollover crashes.

Jingwen Hu, Clifford C Chou, King H Yang, Albert I King
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Abstract

A weighted logistic regression with careful selection of crash, vehicle, occupant and injury data and sequentially adjusting the covariants, was used to investigate the predictors of the odds of head/face and neck (HFN) injuries during rollovers. The results show that unbelted occupants have statistically significant higher HFN injury risks than belted occupants. Age, number of quarter-turns, rollover initiation type, maximum lateral deformation adjacent to the occupant, A-pillar and B-pillar deformation are significant predictors of HFN injury odds for belted occupants. Age, rollover leading side and windshield header deformation are significant predictors of HFN injury odds for unbelted occupants. The results also show that the significant predictors are different between head/face (HF) and neck injury odds, indicating the injury mechanisms of HF and neck injuries are different.

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预测侧翻事故中头部/面部和颈部受伤几率的加权逻辑回归分析。
采用加权逻辑回归,仔细选择碰撞、车辆、乘员和伤害数据,并依次调整协变量,研究翻车过程中头/脸和颈部(HFN)受伤几率的预测因素。结果表明,未系安全带的乘客比系安全带的乘客有更高的HFN伤害风险。年龄、四分之一转弯次数、侧翻起始类型、靠近乘员的最大侧向变形、a柱和b柱变形是安全带乘员HFN损伤几率的显著预测因子。年龄,侧翻前缘和挡风玻璃头部变形是显著预测HFN伤害赔率为未系安全带的乘员。结果还表明,头面损伤和颈部损伤的预测因子差异显著,表明头面损伤和颈部损伤的损伤机制不同。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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