CASSPR: Cross Attention Single Scan Place Recognition
Yan Xia, Mariia Gladkova, Rui Wang, Qianyun Li, Uwe Stilla, João F. Henriques, Daniel Cremers
Abstract
Place recognition based on point clouds (LiDAR) is an important component for autonomous robots or self-driving vehicles. Current SOTA performance is achieved on accumulated LiDAR submaps using either point-based or voxelbased structures. While voxel-based approaches nicely integrate spatial context across multiple scales, they do not exhibit the local precision of point-based methods. As a result, existing methods struggle with fine-grained matching of subtle geometric features in sparse single-shot Li-DAR scans. To overcome these limitations, we propose CASSPR as a method to fuse point-based and voxel-based approaches using cross attention transformers. CASSPR leverages a sparse voxel branch for extracting and aggregating information at lower resolution and a pointwise branch for obtaining fine-grained local information. CASSPR uses queries from one branch to try to match structures in the other branch, ensuring that both extract self-contained descriptors of the point cloud (rather than one branch dominating), but using both to inform the output global descriptor of the point cloud. Extensive experiments show that CASSPR surpasses the state-of-the-art by a large margin on several datasets (Oxford RobotCar, TUM, USyd). For instance, it achieves AR@1 of 85.6% on the TUM dataset, surpassing the strongest prior model by ∼15%. Our code will be publicly available.
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Install the CLIlune papers fulltext 9aefd76d-466c-4cfc-b09f-2ce750069408Cited by top-tier papers16
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Builds on11
- LPD-Net: 3D Point Cloud Learning for Large-Scale Place Recognition and Environment AnalysisZhe Liu, Shunbo Zhou, Chuanzhe Suo, Peng Yin et al.ICCV 2019 · 337 citations
- A Refined Laser Method and Faster Matrix MultiplicationJosh Alman, Virginia Vassilevska WilliamsSODA 2021 · 275 citations
- Pyramid Point Cloud Transformer for Large-Scale Place RecognitionLe Hui, Hang Yang, Mingmei Cheng, Jin Xie et al.ICCV 2021 · 147 citations
- SVT-Net: Super Light-Weight Sparse Voxel Transformer for Large Scale Place RecognitionZhaoxin Fan, Zhenbo Song, Hongyan Liu, Zhiwu Lu et al.AAAI 2022 · 95 citations
- ASFM-Net: Asymmetrical Siamese Feature Matching Network for Point CompletionYaqi Xia, Yan Xia, Wei Li, Rui Song et al.ACM MM 2021 · 93 citations
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