Visualizing crash data patterns

Q3 Engineering
P. Wagner, Ragna Hoffmann, M. Junghans, A. Leich, Hagen Saul
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引用次数: 0

Abstract

This paper demonstrates an approach that makes it easy to find patterns in traffic crash data-bases, and to specify their statistical significance. The detected patterns might help to prevent traffic crashes from happening, since they may be used to tailor campaigns to the community at hand. Unfortunately, the approach described here comes at a cost: it identifies a considerable amount of patterns, not all of them are being useful. The second disadvantage is that is needs a certain size of the data-base: here it has been applied to a data-base of the city of Berlin that contains about 1.6 Million (M) crashes from the years 2001 to 2016, of which about 0.9M had been used in the analysis.
可视化崩溃数据模式
本文展示了一种方法,可以很容易地在交通事故数据库中找到模式,并指定它们的统计显著性。检测到的模式可能有助于防止交通崩溃的发生,因为它们可以用于针对手边的社区定制活动。不幸的是,这里描述的方法是有代价的:它识别了大量的模式,并不是所有的模式都有用。第二个缺点是它需要一定规模的数据库:这里它被应用到柏林市的数据库中,该数据库包含2001年至2016年约160万(M)次崩溃,其中约90万次被用于分析。
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
Transactions on Transport Sciences
Transactions on Transport Sciences Environmental Science-Management, Monitoring, Policy and Law
CiteScore
1.40
自引率
0.00%
发文量
0
审稿时长
13 weeks
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