
We are looking for a motivated Master's student to develop a robust perception and motion-estimation system for an XR platform operating in visually degraded environments.
The thesis will investigate how complementary sensing modalities—such as RGB or stereo cameras, infrared or thermal cameras, LiDAR or depth sensors, and an IMU—can be combined to improve pose estimation, depth perception, and 3D reconstruction when individual sensors may fail.
The work will contribute to the NEXSoS XR project, with a focus on challenging conditions such as darkness, smoke, low texture, motion blur, and partial sensor degradation. You will build on existing algorithms and open-source frameworks where appropriate, while developing the integration, calibration, synchronisation, and evaluation methodology needed for a practical multimodal system.
The following are considered a plus:

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