ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences
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Articles | Volume X-4/W6-2025
https://doi.org/10.5194/isprs-annals-X-4-W6-2025-81-2025
https://doi.org/10.5194/isprs-annals-X-4-W6-2025-81-2025
18 Sep 2025
 | 18 Sep 2025

CM2LoD3: Reconstructing LoD3 Building Models Using Semantic Conflict Maps

Franz Hanke, Antonia Bieringer, Olaf Wysocki, and Boris Jutzi

Keywords: LoD3, building reconstruction, semantic segmentation, semantic 3D city models, laser scanning, CityGML, uncertainty, conflict maps

Abstract. Detailed 3D building models are crucial for urban planning, digital twins, and disaster management applications. While Level of Detail 1 (LoD)1 and LoD2 building models are widely available, they lack detailed facade elements essential for advanced urban analysis. In contrast, LoD3 models address this limitation by incorporating facade elements such as windows, doors, and underpasses. However, their generation has traditionally required manual modeling, making large-scale adoption challenging. In this contribution, CM2LoD3, we present a novel method for reconstructing LoD3 building models leveraging Conflict Maps (CMs) obtained from ray-to-model-prior analysis. Unlike previous works, we concentrate on semantically segmenting real-world CMs with synthetically generated CMs from our developed Semantic Conflict Map Generator (SCMG). We also observe that additional segmentation of textured models can be fused with CMs using confidence scores to further increase segmentation performance and thus increase 3D reconstruction accuracy. Experimental results demonstrate the effectiveness of our CM2LoD3 method in segmenting and reconstructing building openings, with the 61% performance with uncertainty-aware fusion of segmented building textures. This research contributes to the advancement of automated LoD3 model reconstruction, paving the way for scalable and efficient 3D city modeling. Our project is available: https://github.com/InFraHank/CM2LoD3

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