Ego-Body Pose Estimation via Ego-Head Pose Estimation
Jiaman Li, C. Karen Liu, Jiajun Wu
Abstract
Abstract Estimating 3D human motion from an egocentric video sequence plays a critical role in human behavior understanding and has various applications in VR/AR. However, naively learning a mapping between egocentric videos and human motions is challenging, because the user's body is often unobserved by the front-facing camera placed on the head of the user. In addition, collecting large-scale, high-quality datasets with paired egocentric videos and 3D human motions requires accurate motion capture devices, which often limit the variety of scenes in the videos to lab-like environments. To eliminate the need for paired egocentric video and human motions, we propose a new method, Ego-Body Pose Estimation via Ego-Head Pose Estimation (EgoEgo), which decomposes the problem into two stages, connected by the head motion as an intermediate representation. EgoEgo first integrates SLAM and a learning approach to estimate accurate head motion. Subsequently, leveraging the estimated head pose as input, EgoEgo utilizes conditional diffusion † indicates equal contribution. to generate multiple plausible full-body motions. This disentanglement of head and body pose eliminates the need for training datasets with paired egocentric videos and 3D human motion, enabling us to leverage large-scale egocentric video datasets and motion capture datasets separately. Moreover, for systematic benchmarking, we develop a synthetic dataset, AMASS-Replica-Ego-Syn (ARES), with paired egocentric videos and human motion. On both ARES and real data, our EgoEgo model performs significantly better than the current state-of-the-art methods.
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Install the CLIlune papers fulltext a81e9826-0e5e-4a0d-9dee-5fe6802d9ddcCited by top-tier papers51
- EgoLocate: Real-time Motion Capture, Localization, and Mapping with Sparse Body-mounted SensorsXinyu Yi, Yuxiao Zhou, Marc Habermann, Vladislav Golyanik et al.SIGGRAPH 2023 · 62 citations
- Whole-Body Conditioned Egocentric Video PredictionYutong Bai, Danny Tran, Amir Bar, Yann LeCun et al.NeurIPS 2025 · 33 citations
- EgoChoir: Capturing 3D Human-Object Interaction Regions from Egocentric ViewsYuhang Yang, Wei Zhai, Chengfeng Wang, Chengjun Yu et al.NeurIPS 2024 · 31 citations
- EgoLoc: Revisiting 3D Object Localization from Egocentric Videos with Visual QueriesJinjie Mai, Abdullah Hamdi, Silvio Giancola, Chen Zhao et al.ICCV 2023 · 26 citations
- Egocentric Whole-Body Motion Capture with FisheyeViT and Diffusion-Based Motion RefinementJian Wang, Zhe Cao, Diogo C. Luvizon, Lingjie Liu et al.CVPR 2024 · 18 citations
Builds on28
- Denoising Diffusion Probabilistic ModelsJonathan Ho, Ajay Jain, Pieter AbbeelNeurIPS 2020 · 35,902 citations
- High-Resolution Image Synthesis with Latent Diffusion ModelsRobin Rombach, Andreas Blattmann, Dominik Lorenz, Patrick Esser et al.CVPR 2022 · 13,123 citations
- Habitat: A Platform for Embodied AI ResearchManolis Savva, Jitendra Malik, Devi Parikh, Dhruv Batra et al.ICCV 2019 · 1,863 citations
- AMASS: Archive of Motion Capture As Surface ShapesNaureen Mahmood, Nima Ghorbani, Nikolaus F. Troje, Gerard Pons-Moll et al.ICCV 2019 · 1,784 citations
- DROID-SLAM: Deep Visual SLAM for Monocular, Stereo, and RGB-D CamerasZachary Teed, Jia DengNeurIPS 2021 · 1,248 citations
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