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SemanticBridge -- A Dataset for 3D Semantic Segmentation of Bridges and Domain Gap Analysis

Published: December 17, 2025 | arXiv ID: 2512.15369v1

By: Maximilian Kellner , Mariana Ferrandon Cervantes , Yuandong Pan and more

Potential Business Impact:

Helps robots check bridges for damage automatically.

Business Areas:
Semantic Web Internet Services

We propose a novel dataset that has been specifically designed for 3D semantic segmentation of bridges and the domain gap analysis caused by varying sensors. This addresses a critical need in the field of infrastructure inspection and maintenance, which is essential for modern society. The dataset comprises high-resolution 3D scans of a diverse range of bridge structures from various countries, with detailed semantic labels provided for each. Our initial objective is to facilitate accurate and automated segmentation of bridge components, thereby advancing the structural health monitoring practice. To evaluate the effectiveness of existing 3D deep learning models on this novel dataset, we conduct a comprehensive analysis of three distinct state-of-the-art architectures. Furthermore, we present data acquired through diverse sensors to quantify the domain gap resulting from sensor variations. Our findings indicate that all architectures demonstrate robust performance on the specified task. However, the domain gap can potentially lead to a decline in the performance of up to 11.4% mIoU.

Repos / Data Links

Page Count
16 pages

Category
Computer Science:
CV and Pattern Recognition