FacaDiffy: Inpainting Unseen Facade Parts Using Diffusion Models

Fuente: arXiv
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Auteurs principaux: Froech, Thomas, Wysocki, Olaf, Xia, Yan, Xie, Junyu, Schwab, Benedikt, Cremers, Daniel, Kolbe, Thomas H.
Format: Preprint
Publié: 2025
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author Froech, Thomas
Wysocki, Olaf
Xia, Yan
Xie, Junyu
Schwab, Benedikt
Cremers, Daniel
Kolbe, Thomas H.
author_facet Froech, Thomas
Wysocki, Olaf
Xia, Yan
Xie, Junyu
Schwab, Benedikt
Cremers, Daniel
Kolbe, Thomas H.
contents High-detail semantic 3D building models are frequently utilized in robotics, geoinformatics, and computer vision. One key aspect of creating such models is employing 2D conflict maps that detect openings' locations in building facades. Yet, in reality, these maps are often incomplete due to obstacles encountered during laser scanning. To address this challenge, we introduce FacaDiffy, a novel method for inpainting unseen facade parts by completing conflict maps with a personalized Stable Diffusion model. Specifically, we first propose a deterministic ray analysis approach to derive 2D conflict maps from existing 3D building models and corresponding laser scanning point clouds. Furthermore, we facilitate the inpainting of unseen facade objects into these 2D conflict maps by leveraging the potential of personalizing a Stable Diffusion model. To complement the scarcity of real-world training data, we also develop a scalable pipeline to produce synthetic conflict maps using random city model generators and annotated facade images. Extensive experiments demonstrate that FacaDiffy achieves state-of-the-art performance in conflict map completion compared to various inpainting baselines and increases the detection rate by $22\%$ when applying the completed conflict maps for high-definition 3D semantic building reconstruction. The code is be publicly available in the corresponding GitHub repository: https://github.com/ThomasFroech/InpaintingofUnseenFacadeObjects
format Preprint
id arxiv_https___arxiv_org_abs_2502_14940
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle FacaDiffy: Inpainting Unseen Facade Parts Using Diffusion Models
Froech, Thomas
Wysocki, Olaf
Xia, Yan
Xie, Junyu
Schwab, Benedikt
Cremers, Daniel
Kolbe, Thomas H.
Computer Vision and Pattern Recognition
Artificial Intelligence
High-detail semantic 3D building models are frequently utilized in robotics, geoinformatics, and computer vision. One key aspect of creating such models is employing 2D conflict maps that detect openings' locations in building facades. Yet, in reality, these maps are often incomplete due to obstacles encountered during laser scanning. To address this challenge, we introduce FacaDiffy, a novel method for inpainting unseen facade parts by completing conflict maps with a personalized Stable Diffusion model. Specifically, we first propose a deterministic ray analysis approach to derive 2D conflict maps from existing 3D building models and corresponding laser scanning point clouds. Furthermore, we facilitate the inpainting of unseen facade objects into these 2D conflict maps by leveraging the potential of personalizing a Stable Diffusion model. To complement the scarcity of real-world training data, we also develop a scalable pipeline to produce synthetic conflict maps using random city model generators and annotated facade images. Extensive experiments demonstrate that FacaDiffy achieves state-of-the-art performance in conflict map completion compared to various inpainting baselines and increases the detection rate by $22\%$ when applying the completed conflict maps for high-definition 3D semantic building reconstruction. The code is be publicly available in the corresponding GitHub repository: https://github.com/ThomasFroech/InpaintingofUnseenFacadeObjects
title FacaDiffy: Inpainting Unseen Facade Parts Using Diffusion Models
topic Computer Vision and Pattern Recognition
Artificial Intelligence
url https://arxiv.org/abs/2502.14940