GlobalMapper: Arbitrary-Shaped Urban Layout Generation
Liu He, Daniel G. Aliaga
摘要
Modeling and designing urban building layouts is of significant interest in computer vision, computer graphics, and urban applications. A building layout consists of a set of buildings in city blocks defined by a network of roads. We observe that building layouts are discrete structures, consisting of multiple rows of buildings of various shapes, and are amenable to skeletonization for mapping arbitrary city block shapes to a canonical form. Hence, we propose a fully automatic approach to building layout generation using graph attention networks. Our method generates realistic urban layouts given arbitrary road networks, and enables conditional generation based on learned priors. Our results, including user study, demonstrate superior performance as compared to prior layout generation networks, support arbitrary city block and varying building shapes as demonstrated by generating layouts for 28 large cities.
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引用它的顶会 Paper4
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它引用的顶会 Paper18
- LayoutVAE: Stochastic Scene Layout Generation From a Label SetAkash Abdu Jyothi, Thibaut Durand, Jiawei He, Leonid Sigal 等ICCV 2019 · 被引用 194 次
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- PolyWorld: Polygonal Building Extraction with Graph Neural Networks in Satellite ImagesStefano Zorzi, Shabab Bazrafkan, Stefan Habenschuss, Friedrich FraundorferCVPR 2022 · 被引用 99 次
- Generative Layout Modeling using Constraint GraphsWamiq Para, Paul Guerrero, Tom Kelly, Leonidas J. Guibas 等ICCV 2021 · 被引用 93 次
- Constrained Graphic Layout Generation via Latent OptimizationKotaro Kikuchi, Edgar Simo-Serra, Mayu Otani, Kota YamaguchiACM MM 2021 · 被引用 80 次
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