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  4. Towards using active learning methods for human‐seat interactions to generate realistic occupant motion
 
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October 27, 2024
Journal Article
Title

Towards using active learning methods for human‐seat interactions to generate realistic occupant motion

Abstract
In the context of developing new vehicle concepts, especially autonomous vehicles with novel seating arrangements and occupant activities, predicting occupant motion can be a tool for ensuring safety and comfort. In this study, a data‐driven surrogate contact model integrated into an optimal control framework to predict human occupant behavior during driving maneuvers is presented. High‐fidelity finite element simulations are utilized to generate a dataset of interaction forces and moments for various human body configurations and velocities. To automate the generation of training data, an active learning approach is introduced, which iteratively queries the high‐fidelity finite element simulation for an additional dataset. The feasibility and effectiveness of the proposed method are demonstrated through a case study of a head interaction with an automotive headrest, showing promising results in accurately replicating contact forces and moments while reducing manual effort.
Author(s)
Fahse, Niklas  
University of Stuttgart
Harant, Monika  
Fraunhofer-Institut fĂźr Techno- und Wirtschaftsmathematik ITWM  
Obentheuer, Marius  
Fraunhofer-Institut fĂźr Techno- und Wirtschaftsmathematik ITWM  
Linn, Joachim  
Fraunhofer-Institut fĂźr Techno- und Wirtschaftsmathematik ITWM  
Fehr, JĂśrg  
Journal
Proceedings in applied mathematics and mechanics. PAMM  
Conference
International Association of Applied Mathematics and Mechanics (GAMM Annual Meeting) 2024  
Open Access
DOI
10.1002/pamm.202400142
Additional link
Full text
Language
English
Fraunhofer-Institut fĂźr Techno- und Wirtschaftsmathematik ITWM  
Keyword(s)
  • developing new vehicle concepts

  • autonomous vehicles

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