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Papers

ARCH2S: Dataset, Benchmark and Challenges for Learning Exterior Architectural Structures from Point Clouds

2024-06-03 · Ka Lung Cheung, Chi Chung Lee

Precise segmentation of architectural structures provides detailed information about various building components, enhancing our understanding and interaction with our built environment. Nevertheless, existing outdoor 3D point cloud datasets have limited and detailed annotations on architectural exteriors due to privacy concerns and the expensive costs of data acquisition and annotation. To overcome this shortfall, this paper introduces a semantically-enriched, photo-realistic 3D architectural models dataset and benchmark for semantic segmentation. It features 4 different building purposes of real-world buildings as well as an open architectural landscape in Hong Kong. Each point cloud is annotated into one of 14 semantic classes.

📄 PDF Abstract BibTeX arXiv:2406.01337

Code (1)

Semanticity-Research/ARCH2S 공식 구현 pytorch

Tasks

3D Scene Reconstruction3D Semantic SegmentationPoint Cloud GenerationPoint Cloud SegmentationSegmentationSemantic Segmentation

Methods 이 논문이 사용한 방법론

3D CNN 설명 없음
3D Convolution A 3D Convolution is a type of convolution where the kernel slides in 3 dimensions as opposed to 2 dimensions with 2D…
Transformer A Transformer is a model architecture that eschews recurrence and instead relies entirely on an [attention…

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