Learning from Accidents: Spatial Intelligence Applied to Road Accidents with Insights from a Case Study in Setubal District, Portugal

被引:1
|
作者
Nogueira, Pedro [1 ]
Silva, Marcelo [2 ]
Infante, Paulo [3 ]
Nogueira, Vitor [4 ]
Manuel, Paulo [5 ]
Afonso, Anabela [3 ]
Jacinto, Goncalo [3 ]
Rego, Leonor [6 ]
Quaresma, Paulo [4 ]
Saias, Jose [4 ]
Santos, Daniel [7 ]
Gois, Patricia [8 ]
机构
[1] Univ Evora, Portugal & Earth Sci Inst Polo Evora, Dept Geosci, P-7000671 Evora, Portugal
[2] Earth Sci Inst Polo Evora, P-7000671 Evora, Portugal
[3] Univ Evora, Res Ctr Math & Applicat, Dept Math, P-7000671 Evora, Portugal
[4] Univ Evora, Algoritmi Res Ctr, Dept Informat, P-7000671 Evora, Portugal
[5] Univ Evora, Res Ctr Math & Applicat, P-7000671 Evora, Portugal
[6] Univ Evora, Dept Math, P-7000671 Evora, Portugal
[7] Algoritmi Res Ctr, P-4800058 Guimaraes, Portugal
[8] Univ Evora, Dept Visual Arts & Design, P-7000671 Evora, Portugal
关键词
road traffic accidents; kernel density estimation; DBSCAN; Getis-Ord; KERNEL DENSITY-ESTIMATION; AUTOCORRELATION; ASSOCIATION;
D O I
10.3390/ijgi12030093
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Road traffic accidents are a major concern for modern society with a high toll on human life and involve hard to account economic consequences. New knowledge can be obtained from combining GIS tools with machine learning and artificial intelligence, developing what is, in this work, identified as spatial intelligence. This approach is tested in a case study of Setubal district, Portugal, for the period of 2016 to 2019. Departing from a heatmap analysis, and applying kernel density estimation, new spatial approaches were used, namely DBSCAN and Getis-Ord. The results obtained allowed the identification of novel meaningful locations of road traffic accidents. Consequently, the knowledge built from the underlying patterns is considered the key to developing new strategies to solve this modern social curse. The methodology proposed in this study demonstrates that the combination of expertise built from the different spatial analyses can provide a better understanding of the determinants of road traffic accidents. This approach is expected to be valuable for data analysts and decision-makers, contributing to diminishing human losses related to road traffic accidents.
引用
收藏
页数:13
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