Analysis and Visualization of Road Accidents Using Heatmaps Based on Web Data

Luan Sinanaj, L. A. Bexheti
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Abstract

Abstract Road accidents have increased rapidly in recent years for a variety of reasons. Analyzing and visualizing road accidents through heatmaps can help improve policies for their prevention by informing about areas with a high-risk of road accidents. The purpose of this research is to build a model for the analysis and visualization of road accidents through heatmaps. Information about road accidents is extracted from the news of the main online media portals through scripts in the Python language and Web Scraping techniques. From the extraction of about 30,000 articles from news portals for one year, only 829 were selected in the end that provided information about road accidents. As a result, and contribution of this research, a corpus was built with the geographic coordinates of road accidents and on this data our model was applied for the analysis and visualization of high-risk areas of road accidents using heatmaps. The visualization of heatmaps was done through a Python script, where it was applied to the geographic coordinates of road accidents.
利用基于网络数据的热图分析和可视化道路事故
摘要 近年来,由于各种原因,道路事故迅速增加。通过热图对道路交通事故进行分析和可视化,可以告知道路交通事故的高风险地区,从而有助于改进预防政策。本研究的目的是建立一个通过热图对道路事故进行分析和可视化的模型。通过 Python 语言脚本和网络抓取技术,从主要网络媒体门户的新闻中提取有关道路交通事故的信息。一年来,我们从新闻门户网站中提取了约 30,000 篇文章,最终只选出了 829 篇提供道路交通事故信息的文章。作为这项研究的成果和贡献,我们建立了一个包含道路交通事故地理坐标的语料库,并将我们的模型应用到这些数据上,使用热图对道路交通事故的高风险区域进行分析和可视化。热图的可视化是通过一个 Python 脚本完成的,该脚本应用于道路事故的地理坐标。
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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