JOURNAL ARTICLE

Automatic Vectorization of Power Lines from Airborne Lidar Point Clouds

Eleonora MasetAndrea Fusiello

Year: 2024 Journal:   ˜The œinternational archives of the photogrammetry, remote sensing and spatial information sciences/International archives of the photogrammetry, remote sensing and spatial information sciences Vol: XLVIII-2-2024 Pages: 225-231   Publisher: Copernicus Publications

Abstract

Abstract. In recent years, power line inspections have benefited from the use of the lidar surveying technology, which enables safe and rapid data acquisition, even in challenging environments. To further optimize monitoring operations and reduce time and costs, automatic processing of the point clouds obtained is of greatest importance. This work presents a complete pipeline for processing power line data that includes (i) lidar point cloud segmentation using a Fully Convolutional Network, (ii) individual pylon identification via DBSCAN clustering, and (iii) the automatic extraction and modelling of any number of cables using a multi-model fitting algorithm based on the J-Linkage method. The proposed procedure is tested on a 36 km-long power line, resulting in a F1-score of 97.6% for pylons and 98.5% for the vectorized cables.

Keywords:
Point cloud Computer science Lidar Pipeline (software) DBSCAN Line (geometry) Vectorization (mathematics) Cluster analysis Segmentation Identification (biology) Remote sensing Real-time computing Artificial intelligence Geology

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Topics

Remote Sensing and LiDAR Applications
Physical Sciences →  Environmental Science →  Environmental Engineering
3D Surveying and Cultural Heritage
Physical Sciences →  Earth and Planetary Sciences →  Geology
Forest ecology and management
Physical Sciences →  Environmental Science →  Nature and Landscape Conservation

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