Structured Outdoor Architecture Reconstruction by Exploration and Classification
Fuyang Zhang, Xiang Xu, Nelson Nauata, Yasutaka Furukawa
Abstract
This paper presents an explore-and-classify framework for structured architectural reconstruction from an aerial image. Starting from a potentially imperfect building reconstruction by an existing algorithm, our approach 1) explores the space of building models by modifying the reconstruction via heuristic actions; 2) learns to classify the correctness of building models while generating classification labels based on the ground-truth; and 3) repeat. At test time, we iterate exploration and classification, seeking for a result with the best classification score. We evaluate the approach using initial reconstructions by two baselines and two state-of-the-art reconstruction algorithms. Qualitative and quantitative evaluations demonstrate that our approach consistently improves the reconstruction quality from every initial reconstruction.
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- End-to-End Wireframe ParsingYichao Zhou, Haozhi Qi, Yi MaICCV 2019 · 190 citations
- Floor-SP: Inverse CAD for Floorplans by Sequential Room-Wise Shortest PathJiacheng Chen, Chen Liu, Jiaye Wu, Yasutaka FurukawaICCV 2019 · 90 citations
- Conv-MPN: Convolutional Message Passing Neural Network for Structured Outdoor Architecture ReconstructionFuyang Zhang, Nelson Nauata, Yasutaka FurukawaCVPR 2020
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