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Extraction of Road Users' Behavior from Realistic Data According to Assumptions in Safety-Related Models for Automated Driving Systems

Aktivität: Vortrag oder PräsentationPosterpräsentationScience-to-science

Beschreibung

In this work, we utilized the methodology outlined in the IEEE Standard 2846–2022 for “Assumptions in Safety-Related Models for Automated Driving Systems” to extract information on the behavior of other road users in driving scenarios. This method includes defining high-level scenarios, determining kinematic characteristics, evaluating safety relevance, and making assumptions on reasonably predictable behaviors. The assumptions were expressed as kinematic bounds. The numerical values for these bounds were extracted using Python scripts to process realistic data from the UniD dataset. The resulting information enables Automated Driving Systems designers to specify the parameters and limits of a road user's state in a specific scenario. This information can be utilized to establish starting conditions for testing a vehicle that is equipped with an Automated Driving System in simulations or on actual roads.
Zeitraum28 Sep. 2023
Ereignistitel2023 IEEE 26th International Conference on Intelligent Transportation Systems (ITSC)
VeranstaltungstypKonferenz
OrtSpanienAuf Karte anzeigen

Wissenschaftszweige

  • 202003 Automatisierungstechnik
  • 303 Gesundheitswissenschaften
  • 501 Psychologie
  • 102029 Praktische Informatik
  • 203 Maschinenbau
  • 202 Elektrotechnik, Elektronik, Informationstechnik
  • 102 Informatik
  • 202041 Technische Informatik
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  • 501030 Kognitionswissenschaft
  • 211911 Nachhaltige Technologien
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  • 201306 Verkehrstelematik
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  • 102013 Human-Computer Interaction
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JKU-Schwerpunkte

  • Digital Transformation
  • Sustainable Development: Responsible Technologies and Management