
Motorcycle safety research requires detailed and repeatable measurements of both rider behavior and vehicle dynamics, particularly during demanding or safety-critical maneuvers.
A key challenge is understanding rider behavior immediately before hazardous events, as such knowledge is critical for developing future rider-assistance and safety systems. Real road testing can provide valuable information, but it is constrained by safety, repeatability, scenario control and data observability.
An existing motorcycle riding simulator integrates a physical riding platform, BikeSim vehicle dynamics, CARLA and Unreal Engine 5 visualization, a Python supervisory application, a C/C++ integration layer, sensors, steering force feedback and motion-platform feedback. The basic closed-loop integration has been established. The next step is to improve physical consistency, rider-perceived steering fidelity, vehicle response and end-to-end system performance, while creating a reliable experimental data-acquisition platform.
The project will therefore focus on improving and validating the simulator as a human-in-the-loop research platform. The intended result is a practical system that balances simulation realism, controllability, user experience, stability and experimental repeatability, while collecting synchronized high-resolution data describing both the motorcycle and the rider.
The aim of this thesis is to improve and validate an existing motorcycle riding simulator as a high-fidelity experimental platform for rider-behavior and pre-accident safety research. The work will investigate the relationship between simulator fidelity and rider perception, with particular focus on rider trust, controllability, and behavioral realism. The resulting platform should support synchronized acquisition of rider movement, steering input, interaction forces, vehicle dynamics, and virtual-environment data.
The development and verification process will be iterative. Issues identified during verification or validation will be corrected and tested again. The rider experiment will begin only after the technical verification and scenario-based validation have been completed successfully.
The study is divided into five main steps:
1-2 master’s thesis students with an engineering background.
30 HP
Required:
Meritorious:
Industry-relevant motorcycle safety research
Contact
Christian-Nils Boda
christian-nils.boda@autoliv.com
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