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Near-Miss Accidents – Classification and Automatic Detection

Beteiligte Autor*innen der JOANNEUM RESEARCH:
Autor*innen:
Thallinger, Georg and Krebs, Florian and Kolla, Eduard and Vertal, Peter and Kasanick`y, Gustáv and Neuschmied, Helmut and Ambrosch, KarlErnst
Abstract:
In this work, we propose a system that automatically identifies hazardous traffic situations in order to gather comprehensive evidence, allowing timely mitigation of dangerous traffic areas. The system employs optical and acoustic sensors, stores the recorded sensor data to an incident store, and provides an assessment of the causes and consequences of the captured situation. Three main categories of features are used to assess the risk of a traffic situation: (1) key parameters of the traffic participants such as size, their distance, acceleration and motion trajectories; (2) the occurrence of acoustic events (shouting, tire squealing, honking sounds, etc.) which often co-occur with hazardous situations; (3) global parameters which describe the current traffic situation, such as traffic volume or density. An automated detection allows to monitor an intersection for an extensive time period. Compared to traditional manual methods, this facilitates generating significantly more data, which increases the informative value of such an assessment and therefore leads to a better understanding of the hazard potential of the spot. The outcome of such an investigation will finally serve as a basis for defining and prioritizing improvements
Titel:
Near-Miss Accidents – Classification and Automatic Detection
Seiten:
144-152

Publikationsreihe

Buchtitel
First International Conference on Intelligent Transport Systems

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