Radiometric fingerprinting of object surfaces using mobile laser scanning and semantic 3D road space models
arXiv cs.CV / 3/13/2026
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Key Points
- The paper introduces radiometric fingerprints of object surfaces by grouping LiDAR observations reflected from the same semantic object under varying distances, incident angles, environmental conditions, sensors, and campaigns.
- It analyzes 312.4 million beams collected over four campaigns with five LiDAR sensors on the Audi Autonomous Driving Dataset (A2D2) and links them to 6,368 semantic objects in a CityGML 3.0 Level of Detail 3 model with centimeter-level accuracy.
- The extracted fingerprints reveal recurring intra-class patterns that indicate class-dominant materials.
- The authors release the semantic model, method implementations, and the 3DSensorDB geodatabase on GitHub, enabling practical adoption for urban digital twins.
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