3D Geometric Shape Assembly via Efficient Point Cloud Matching
Nahyuk Lee, Juhong Min, Junha Lee, Seungwook Kim, Kanghee Lee, Jaesik Park, Minsu Cho
摘要
Learning to assemble geometric shapes into a larger target structure is a pivotal task in various practical applications. In this work, we tackle this problem by establishing local correspondences between point clouds of part shapes in both coarse- and fine-levels. To this end, we introduce Proxy Match Transform (PMT), an approximate high-order feature transform layer that enables reliable matching between mating surfaces of parts while incurring low costs in memory and computation. Building upon PMT, we introduce a new framework, dubbed Proxy Match TransformeR (PMTR), for the geometric assembly task. We evaluate the proposed PMTR on the large-scale 3D geometric shape assembly benchmark dataset of Breaking Bad and demonstrate its superior performance and efficiency compared to state-of-the-art methods. Project page: https://nahyuklee.github.io/pmtr.
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引用它的顶会 Paper3
- Combinative Matching for Geometric Shape AssemblyNahyuk Lee, Juhong Min, Junhong Lee, Chunghyun Park 等ICCV 2025 · 被引用 3 次
- GARF: Learning Generalizable 3D Reassembly for Real-World FracturesSihang Li, Zeyu Jiang, Grace Chen, Chenyang Xu 等ICCV 2025 · 被引用 2 次
- CRAG: Can 3D Generative Models Help 3D Assembly?Zeyu Jiang, Sihang Li, Siqi Tan, Chenyang Xu 等ICML 2026
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- CATs: Cost Aggregation Transformers for Visual CorrespondenceSeokju Cho, Sunghwan Hong, Sangryul Jeon, Yunsung Lee 等NeurIPS 2021 · 被引用 133 次
- Generative 3D Part Assembly via Dynamic Graph LearningGuanqi Zhan, Qingnan Fan, Kaichun Mo, Lin Shao 等NeurIPS 2020 · 被引用 113 次
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