Aug 2026· Journal of Global Health· Vol 16· 0 citations· 28 references
Medicine
Abstract
Background Low-level automated vehicles (LAVs) have emerged as a new public health challenge, but the epidemiological characteristics of LAV-related crashes remain unknown. Methods Based on media reports collected by the Automated Road Traffic Crash Data Platform (ARTCDP), we analysed the characteristics of LAV-related crashes in China between 1 January 2015 and 31 August 2025. Results The ARTCDP captured 4,669 crashes involving LAVs and 324,869 involving other motor vehicles. Compared to other motor vehicles, LAVs were more frequently reported to crash during nighttime (65.3% vs. 29.1%; P < 0.001), on expressways (31.9% vs. 20.2%; P < 0.001), on straight roads without junctions (50.7% vs. 29.4%; P < 0.001), and on rainy days (57.7% vs. 53.6%; P < 0.001). They were primarily reported to crash in economically developed regions, with those in Zhejiang, Guangdong, and Shanghai accounting for 31.6% of all crashes involving LAVs. Furthermore, 20.3% of the LAVs crashes and 16.3% of other motor vehicles crashes were associated with two or more factors. Brake-related issues (48.0% vs. 26.1%; P < 0.01), hazardous road surface condition (55.6% vs. 47.9%; P < 0.01), and distracted driving behaviour (28.7% vs. 9.8%; P < 0.01) more frequently occurred in LAV-involved crashes. Conclusions Internet-based media reports detected distinct characteristics of road traffic crashes involving LAVs, meriting the attention of policymakers and law enforcement.
Official crash statistics from India's Ministry of Road Transport and Highways for 2021–2023 with recent peer-reviewed literature on machine-learning-based crash-severity prediction show measurable gains in severity-prediction accuracy, supporting more targeted interventions.
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Saudi Arabia’s rural highway network experiences a high number of severe run-off-road and rollover crashes, yet evidence-based, locally validated roadside clear-zone design guidance remains limited. This study investigates how roadside clear-zone characteristics influence the occurrence and severity of these crashes by...
Turki A. Alamoudi, Saif Alarifi· PLoS ONE· 0 citations
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Alexis James A. Macapagal, Alexis Kent C. Soriano, John Michael L. Menor et al.· International Journal of Inn...· 0 citations
This study analyzes 242,131 traffic collisions from Seattle, Washington, from 2004 to 2022 to
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