ColorPCR: Color Point Cloud Registration with Multi-Stage Geometric-Color Fusion
Juncheng Mu, Lin Bie, Shaoyi Du, Yue Gao
Abstract
Point cloud registration is still a challenging and open problem. For example, when the overlap between two point clouds is extremely low, geo-only features may be not suf-ficient. Therefore, it is important to further explore how to utilize color data in this task. Under such circumstances, we propose ColorPCR for color point cloud registration with multi-stage geometric-color fusion. We design a Hier-archical Color Enhanced Feature Extraction module to ex-tract multi-level geometric-color features, and a GeoColor Superpoint Matching Module to encode transformation-invariant geo-color global context for robust patch corre-spondences. In this way, both geometric and color data can be used, thus leading to robust performance even under extremely challenging scenarios, such as low overlap between two point clouds. To evaluate the performance of our method, we colorize 3DMatch/3DLoMatch datasets as Color3DMatch/Color3DLoMatch and evaluations on these datasets demonstrate the effectiveness of our proposed method. Our method achieves state-of-the-art registration recall of 97.5%/88.9% on them.
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Install the CLIlune papers fulltext a7b2642e-2391-4937-b932-ee8bb0f8d8afCited by top-tier papers9
- Buffer-X: Towards Zero-Shot Point Cloud Registration in Diverse ScenesMinkyun Seo, Hyungtae Lim, Kanghee Lee, Luca Carlone et al.ICCV 2025 · 9 citations
- Diff2I2P: Differentiable Image-to-Point Cloud Registration with Diffusion PriorJuncheng Mu, Chengwei Ren, Weixiang Zhang, Liang Pan et al.ICCV 2025 · 9 citations
- GeGS-PCR: Fast and Robust Color 3D Point Cloud Registration with Two-Stage Geometric-3DGS FusionJiayi Tian, Haiduo Huang, Tian Xia, Wenzhe Zhao et al.NeurIPS 2025 · 1 citation
- SuP: Sub-cloud Driven Point Cloud RegistrationSheldon Fung, Wei Pan, Ling Cao, Fei Hou et al.CVPR 2026
- C-GenReg: Training-Free 3D Point Cloud Registration by Multi-View-Consistent Geometry-to-Image Generation with Probabilistic Modalities FusionYuval Haitman, Amit Efraim, Joseph M. FrancosCVPR 2026
Builds on15
- KPConv: Flexible and Deformable Convolution for Point CloudsHugues Thomas, Charles R. Qi, Jean-Emmanuel Deschaud, Beatriz Marcotegui et al.ICCV 2019 · 3,193 citations
- Fully Convolutional Geometric FeaturesChristopher B. Choy, Jaesik Park, Vladlen KoltunICCV 2019 · 807 citations
- Geometric Transformer for Fast and Robust Point Cloud RegistrationZheng Qin, Hao Yu, Changjian Wang, Yulan Guo et al.CVPR 2022 · 436 citations
- CoFiNet: Reliable Coarse-to-fine Correspondences for Robust PointCloud RegistrationHao Yu, Fu Li, Mahdi Saleh, Benjamin Busam et al.NeurIPS 2021 · 313 citations
- REGTR: End-to-end Point Cloud Correspondences with TransformersZi Jian Yew, Gim Hee LeeCVPR 2022 · 242 citations
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