Application of the Apriori Algorithm for Traffic Crash Analysis in Thailand

IF 1.8 Q3 PUBLIC, ENVIRONMENTAL & OCCUPATIONAL HEALTH
Safety Pub Date : 2023-08-28 DOI:10.3390/safety9030058
Ittirit Mohamad, R. Kasemsri, V. Ratanavaraha, Sajjakaj Jomnonkwao
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引用次数: 0

Abstract

Accidents pose significant obstacles to economic progress and quality of life, especially in developing countries. Thailand faces such challenges and this research seeks to assess the frequency and most common causes of road accidents that lead to fatalities. This study employed the Apriori algorithm to examine the interrelationships among factors contributing to accidents in order to inform policymaking for reducing accident rates, minimizing economic and human losses, and enhancing the effectiveness of the healthcare system. By analyzing road accident data from 2015 to 2020 in Thailand (167,820 accidents causing THB 1.13 billion in damages), this article specifically focuses on the drivers responsible for fatal highway accidents. The findings reveal several interconnected variables that heighten the likelihood of fatalities, such as male gender, exceeding speed limits, riding a motorbike, traveling on straight roads, encountering dry surface conditions, and clear weather. An association rule analysis underscores the increased risk of injury or death in traffic accidents.
Apriori算法在泰国交通事故分析中的应用
事故对经济进步和生活质量构成重大障碍,特别是在发展中国家。泰国面临着这样的挑战,这项研究旨在评估导致死亡的道路交通事故的频率和最常见原因。本研究采用Apriori演算法检视事故成因之间的相互关系,以便为政策制定提供资讯,以降低事故率、减少经济和人员损失,并提高医疗保健系统的效能。通过分析泰国2015年至2020年的道路交通事故数据(167820起事故,造成11.3亿泰铢的损失),本文特别关注造成致命公路事故的司机。研究结果揭示了几个相互关联的变量,这些变量增加了死亡的可能性,比如男性、超速、骑摩托车、在直路上行驶、遇到干燥的地面条件和晴朗的天气。关联规则分析强调了交通事故中受伤或死亡的风险增加。
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
Safety
Safety Social Sciences-Safety Research
CiteScore
3.20
自引率
5.30%
发文量
71
审稿时长
7 weeks
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