DeepPointMap: Advancing LiDAR SLAM with Unified Neural Descriptors
Xiaze Zhang, Ziheng Ding, Qi Jing, Yuejie Zhang, Wenchao Ding, Rui Feng
Abstract
Point clouds have shown significant potential in various domains, including Simultaneous Localization and Mapping (SLAM). However, existing approaches either rely on dense point clouds to achieve high localization accuracy or use generalized descriptors to reduce map size. Unfortunately, these two aspects seem to conflict with each other. To address this limitation, we propose an unified architecture, DeepPointMap, achieving excellent preference on both aspects. We utilize neural network to extract highly representative and sparse neural descriptors from point clouds, enabling memory-efficient map representation and accurate multi-scale localization tasks (e.g., odometry and loop-closure). Moreover, we showcase the versatility of our framework by extending it to more challenging multi-agent collaborative SLAM. The promising results obtained in these scenarios further emphasize the effectiveness and potential of our approach.
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Builds on6
- SemanticKITTI: A Dataset for Semantic Scene Understanding of LiDAR SequencesJens Behley, Martin Garbade, Andres Milioto, Jan Quenzel et al.ICCV 2019 · 2,345 citations
- Deep Closest Point: Learning Representations for Point Cloud RegistrationYue Wang, Justin SolomonICCV 2019 · 1,026 citations
- Point-NeRF: Point-based Neural Radiance FieldsQiangeng Xu, Zexiang Xu, Julien Philip, Sai Bi et al.CVPR 2022 · 510 citations
- REGTR: End-to-end Point Cloud Correspondences with TransformersZi Jian Yew, Gim Hee LeeCVPR 2022 · 242 citations
- PCAM: Product of Cross-Attention Matrices for Rigid Registration of Point CloudsAnh-Quan Cao, Gilles Puy, Alexandre Boulch, Renaud MarletICCV 2021 · 62 citations
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