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Investigating patterns of freeway crashes in Jordan: Findings from a text mining approach

Shadi Jaradat, Taqwa I. Alhadidi, Huthaifa I. Ashqar, Ahmed Hossain, Mohammed Elhenawy

2025Results in Engineering18 citationsDOIOpen Access PDF

Abstract

• Advanced text mining of 7,587 crash narratives reveals key factors in Jordanian crashes. • Violations, mechanical issues, oil leaks, and stray animals are major crash contributors. • Infrastructure improvements and driver education can reduce animal-related crashes. • First study in developing countries using text mining for freeway crash narratives. • Data-driven insights offer actionable strategies to improve traffic safety in Jordan. Effective road safety measures rely on understanding the trends and factors influencing traffic accidents. This study employs a text-mining approach to analyze crash narratives from 7,587 crash records on five major Jordanian freeways between 2018 and 2022. By applying methods such as Word Co-occurrence Network (WCN), Rapid Automatic Keyword Extraction (RAKE), Probabilistic Topic Modeling (LDA), and Association Rule Mining (ARM), the analysis uncovered key insights into traffic crash dynamics. Notable findings reveal that violations (with lift values exceeding 1.5 in ARM) and mechanical issues, such as tire explosions and vehicle failures, were primary contributors. Environmental factors, including oil leaks and stray animals, were also significant triggers. Additionally, high-risk behaviors like sudden lane changes and non-compliance with traffic rules were identified. Recommendations include infrastructure improvements, driver education, and targeted measures to mitigate animal-related crashes. This study is among the first in developing countries to use advanced text mining techniques for freeway crash narratives, addressing a critical research gap.

Topics & Concepts

Transport engineeringComputer scienceData miningEngineeringTraffic and Road SafetyTraffic Prediction and Management TechniquesSafety Warnings and Signage
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