Trajectory analysis at intersections for traffic rule identification

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Wang, C.; Zourlidou, S.; Golze, J.; Sester, M.: Trajectory analysis at intersections for traffic rule identification. In: Geo-spatial Information Science 24 (2021), Nr. 1, S. 75-84. DOI: https://doi.org/10.1080/10095020.2020.1843374

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Sum total of downloads: 30




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In this paper, we focus on trajectories at intersections regulated by various regulation types such as traffic lights, priority/yield signs, and right-of-way rules. We test some methods to detect and recognize movement patterns from GPS trajectories, in terms of their geometrical and spatio-temporal components. In particular, we first find out the main paths that vehicles follow at such locations. We then investigate the way that vehicles follow these geometric paths (how do they move along them). For these scopes, machine learning methods are used and the performance of some known methods for trajectory similarity measurement (DTW, Hausdorff, and Fréchet distance) and clustering (Affinity propagation and Agglomerative clustering) are compared based on clustering accuracy. Afterward, the movement behavior observed at six different intersections is analyzed by identifying certain movement patterns in the speed- and time-profiles of trajectories. We show that depending on the regulation type, different movement patterns are observed at intersections. This finding can be useful for intersection categorization according to traffic regulations. The practicality of automatically identifying traffic rules from GPS tracks is the enrichment of modern maps with additional navigation-related information (traffic signs, traffic lights, etc.).
License of this version: CC BY 4.0 Unported
Document Type: Article
Publishing status: publishedVersion
Issue Date: 2021
Appears in Collections:Fakultät für Bauingenieurwesen und Geodäsie

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pos. country downloads
total perc.
1 image of flag of Germany Germany 13 43.33%
2 image of flag of United States United States 11 36.67%
3 image of flag of No geo information available No geo information available 2 6.67%
4 image of flag of France France 2 6.67%
5 image of flag of Romania Romania 1 3.33%
6 image of flag of United Kingdom United Kingdom 1 3.33%

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