BuildingBRep-11K: Precise Multi-Storey B-Rep Building Solids with Rich Layout Metadata
Yu Guo, Hongji Fang, Tianyu Fang, Zhe Cui

TL;DR
BuildingBRep-11K is a large, richly annotated dataset of multi-storey building B-rep models designed for training AI models in architectural geometry and layout understanding.
Contribution
The paper introduces BuildingBRep-11K, a comprehensive dataset of nearly 12,000 precise multi-storey building models with detailed metadata, generated via a shape-grammar-driven pipeline.
Findings
PointNet models can predict building attributes with reasonable accuracy.
The dataset enables defect detection with over 80% recall.
Models trained on this dataset demonstrate learnability for geometric and topological tasks.
Abstract
With the rise of artificial intelligence, the automatic generation of building-scale 3-D objects has become an active research topic, yet training such models still demands large, clean and richly annotated datasets. We introduce BuildingBRep-11K, a collection of 11 978 multi-storey (2-10 floors) buildings (about 10 GB) produced by a shape-grammar-driven pipeline that encodes established building-design principles. Every sample consists of a geometrically exact B-rep solid-covering floors, walls, slabs and rule-based openings-together with a fast-loading .npy metadata file that records detailed per-floor parameters. The generator incorporates constraints on spatial scale, daylight optimisation and interior layout, and the resulting objects pass multi-stage filters that remove Boolean failures, undersized rooms and extreme aspect ratios, ensuring compliance with architectural standards.…
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Taxonomy
Topics3D Surveying and Cultural Heritage · 3D Shape Modeling and Analysis · BIM and Construction Integration
