Topological Map Extraction From Overhead Images
Zuoyue Li, Jan Dirk Wegner, Aurélien Lucchi
摘要
We propose a new approach, named PolyMapper, to circumvent the conventional pixel-wise segmentation of (aerial) images and predict objects in a vector representation directly. PolyMapper directly extracts the topological map of a city from overhead images as collections of building footprints and road networks. In order to unify the shape representation for different types of objects, we also propose a novel sequentialization method that reformulates a graph structure as closed polygons. Experiments are conducted on both existing and self-collected large-scale datasets of several cities. Our empirical results demonstrate that our end-to-end learnable model is capable of drawing polygons of building footprints and road networks that very closely approximate the structure of existing online map services, in a fully automated manner. Quantitative and qualitative comparison to the state-of-the-arts also show that our approach achieves good levels of performance. To the best of our knowledge, the automatic extraction of large-scale topological maps is a novel contribution in the remote sensing community that we believe will help develop models with more informed geometrical constraints.
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引用它的顶会 Paper19
- SatlasPretrain: A Large-Scale Dataset for Remote Sensing Image UnderstandingFavyen Bastani, Piper Wolters, Ritwik Gupta, Joe Ferdinando 等ICCV 2023 · 被引用 216 次
- PolyWorld: Polygonal Building Extraction with Graph Neural Networks in Satellite ImagesStefano Zorzi, Shabab Bazrafkan, Stefan Habenschuss, Friedrich FraundorferCVPR 2022 · 被引用 99 次
- Joint Semantic-geometric Learning for Polygonal Building SegmentationWeijia Li, Wenqian Zhao, Huaping Zhong, Conghui He 等AAAI 2021 · 被引用 50 次
- 3D Building Reconstruction from Monocular Remote Sensing ImagesWeijia Li, Lingxuan Meng, Jinwang Wang, Conghui He 等ICCV 2021 · 被引用 46 次
- Beyond Road Extraction: A Dataset for Map Update using Aerial ImagesFavyen Bastani, Sam MaddenICCV 2021 · 被引用 19 次
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