LiDAR-aid Inertial Poser: Large-scale Human Motion Capture by Sparse Inertial and LiDAR Sensors
Yiming Ren, Chengfeng Zhao, Yannan He, Peishan Cong, Han Liang, Jingyi Yu, Lan Xu, Yuexin Ma
Abstract
We propose a multi-sensor fusion method for capturing challenging 3D human motions with accurate consecutive local poses and global trajectories in large-scale scenarios, only using single LiDAR and 4 IMUs, which are set up conveniently and worn lightly. Specifically, to fully utilize the global geometry information captured by LiDAR and local dynamic motions captured by IMUs, we design a two-stage pose estimator in a coarse-to-fine manner, where point clouds provide the coarse body shape and IMU measurements optimize the local actions. Furthermore, considering the translation deviation caused by the view-dependent partial point cloud, we propose a pose-guided translation corrector. It predicts the offset between captured points and the real root locations, which makes the consecutive movements and trajectories more precise and natural. Moreover, we collect a LiDAR-IMU multi-modal mocap dataset, LIPD, with diverse human actions in long-range scenarios. Extensive quantitative and qualitative experiments on LIPD and other open datasets all demonstrate the capability of our approach for compelling motion capture in large-scale scenarios, which outperforms other methods by an obvious margin. We will release our code and captured dataset to stimulate future research.
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Install the CLIlune papers fulltext 4a3223ba-389a-4217-bc23-43883f4fcd38Cited by top-tier papers25
- Weakly Supervised 3D Multi-Person Pose Estimation for Large-Scale Scenes Based on Monocular Camera and Single LiDARPeishan Cong, Yiteng Xu, Yiming Ren, Juze Zhang et al.AAAI 2023 · 37 citations
- Human-centric Scene Understanding for 3D Large-scale ScenariosYiteng Xu, Peishan Cong, Yichen Yao, Runnan Chen et al.ICCV 2023 · 34 citations
- HybridCap: Inertia-Aid Monocular Capture of Challenging Human MotionsHan Liang, Yannan He, Chengfeng Zhao, Mutian Li et al.AAAI 2023 · 29 citations
- Dynamic Inertial Poser (DynaIP): Part-Based Motion Dynamics Learning for Enhanced Human Pose Estimation with Sparse Inertial SensorsYu Zhang, Songpengcheng Xia, Lei Chu, Jiarui Yang et al.CVPR 2024 · 23 citations
- LiveHPS: LiDAR-Based Scene-Level Human Pose and Shape Estimation in Free EnvironmentYiming Ren, Xiao Han, Chengfeng Zhao, Jingya Wang et al.CVPR 2024 · 14 citations
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- PARE: Part Attention Regressor for 3D Human Body EstimationMuhammed Kocabas, Chun-Hao P. Huang, Otmar Hilliges, Michael J. BlackICCV 2021 · 509 citations
- HuMoR: 3D Human Motion Model for Robust Pose EstimationDavis Rempe, Tolga Birdal, Aaron Hertzmann, Jimei Yang et al.ICCV 2021 · 398 citations
- Probabilistic Modeling for Human Mesh RecoveryNikos Kolotouros, Georgios Pavlakos, Dinesh Jayaraman, Kostas DaniilidisICCV 2021 · 201 citations
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