Polygonal Building Extraction by Frame Field Learning
Nicolas Girard, Dmitriy Smirnov, Justin Solomon, Yuliya Tarabalka
摘要
While state of the art image segmentation models typically output segmentations in raster format, applications in geographic information systems often require vector polygons. To help bridge the gap between deep network output and the format used in downstream tasks, we add a frame field output to a deep segmentation model for extracting buildings from remote sensing images. We train a deep neural network that aligns a predicted frame field to ground truth contours. This additional objective improves segmentation quality by leveraging multi-task learning and provides structural information that later facilitates polygonization; we also introduce a polygonization algorithm that that utilizes the frame field along with the raster segmentation. Our code is available at https://github.com/Lydorn/ Polygonization-by-Frame-Field-Learning.
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引用它的顶会 Paper8
- PolyWorld: Polygonal Building Extraction with Graph Neural Networks in Satellite ImagesStefano Zorzi, Shabab Bazrafkan, Stefan Habenschuss, Friedrich FraundorferCVPR 2022 · 被引用 99 次
- Re: PolyWorld - A Graph Neural Network for Polygonal Scene ParsingStefano Zorzi, Friedrich FraundorferICCV 2023 · 被引用 12 次
- NeuFrameQ: Neural Frame Fields for Scalable and Generalizable Anisotropic QuadrangulationYing-Tian Liu, Jiajun Li, Yu-Tao Liu, Xin Yu 等ICCV 2025 · 被引用 6 次
- HoliTracer: Holistic Vectorization of Geographic Objects from Large-Size Remote Sensing ImageryYu Wang, Bo Dang, Wanchun Li, Wei Chen 等ICCV 2025 · 被引用 5 次
- ACPV-Net: All-Class Polygonal Vectorization for Seamless Vector Map Generation from Aerial ImageryWeiqin Jiao, Hao Cheng, George Vosselman, Claudio PerselloCVPR 2026 · 被引用 3 次
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- BSP-Net: Generating Compact Meshes via Binary Space PartitioningZhiqin Chen, Andrea Tagliasacchi, Hao ZhangCVPR 2020
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