Scene-aware Egocentric 3D Human Pose Estimation
Jian Wang, Lingjie Liu, Weipeng Xu, Kripasindhu Sarkar, Diogo Luvizon,, Christian Theobalt

TL;DR
This paper introduces a scene-aware egocentric 3D human pose estimation method that leverages scene constraints and depth information to improve pose accuracy in challenging scenarios with occlusions and interactions.
Contribution
The authors propose a novel scene-aware pose estimation framework using depth prediction and voxel-based features, along with new synthetic and in-the-wild datasets for training and evaluation.
Findings
Outperforms state-of-the-art methods quantitatively
Produces more accurate and physically plausible poses
Effectively handles occlusions and scene interactions
Abstract
Egocentric 3D human pose estimation with a single head-mounted fisheye camera has recently attracted attention due to its numerous applications in virtual and augmented reality. Existing methods still struggle in challenging poses where the human body is highly occluded or is closely interacting with the scene. To address this issue, we propose a scene-aware egocentric pose estimation method that guides the prediction of the egocentric pose with scene constraints. To this end, we propose an egocentric depth estimation network to predict the scene depth map from a wide-view egocentric fisheye camera while mitigating the occlusion of the human body with a depth-inpainting network. Next, we propose a scene-aware pose estimation network that projects the 2D image features and estimated depth map of the scene into a voxel space and regresses the 3D pose with a V2V network. The voxel-based…
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Taxonomy
TopicsHuman Pose and Action Recognition · Advanced Vision and Imaging · Video Surveillance and Tracking Methods
