Modelling participation in road accidents of drivers with disabilities who use hand controls

IF 2.4 3区 工程技术 Q3 TRANSPORTATION
Đorđe Petrović, Dalibor Pešić, R. Mijailović, Bojana Milošević
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引用次数: 1

Abstract

Abstract Almost 200 million persons with disabilities face specific difficulties in everyday life. Private vehicles provide persons with disabilities with a high level of flexibility, a high level of time efficiency, and a better quality of life. It is sometimes necessary to make vehicle modifications to enable persons with disabilities to drive. One of the most frequent modifications is hand controls. Although drivers with disabilities who use hand controls face the same risk of road accidents as non-disabled drivers, predictors of road accidents for drivers with disabilities who use hand controls have not been the subject of earlier research. The predictors show which factors influence the occurrence of road accidents of drivers with disabilities who use hand controls. This paper aims to develop a model that describes the participation in road accidents of drivers with disabilities who use hand controls and recognises contributing predictors. A multidisciplinary team of experts identified twenty-three predictors that impact road accidents of drivers with disabilities who use hand controls. Bayesian logistic regression models have identified speeding, alcohol consumption, mobile phone usage, and especially fatigue as risky behaviours. This paper proposes several important measures that would improve the safety of drivers with disabilities using hand controls.
模拟使用手动控制的残疾司机在道路交通事故中的参与情况
近2亿残疾人在日常生活中面临特殊困难。私家车为残疾人提供了高度的灵活性、高度的时间效率和更好的生活质量。有时需要对车辆进行改装,使残疾人能够驾驶。最常见的修改之一是手动控制。虽然使用手动控制的残疾司机与非残疾司机面临着同样的道路交通事故风险,但使用手动控制的残疾司机的道路交通事故预测因素并不是早期研究的主题。预测因子显示了哪些因素会影响使用手动控制的残疾司机发生交通事故。本文旨在开发一个模型,描述使用手动控制的残疾司机在道路事故中的参与情况,并识别有助于预测的因素。一个多学科专家小组确定了23个影响使用手动控制的残疾司机道路事故的预测因素。贝叶斯逻辑回归模型已经确定超速、饮酒、使用移动电话,尤其是疲劳是危险行为。本文提出了几项重要的措施,以提高使用手动控制的残疾司机的安全性。
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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来源期刊
CiteScore
6.00
自引率
15.40%
发文量
38
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