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Papers/Multi-Person Absolute 3D Human Pose Estimation with Weak D...

Multi-Person Absolute 3D Human Pose Estimation with Weak Depth Supervision

Marton Veges, Andras Lorincz

2020-04-083D Human Pose EstimationPose Estimation3D Multi-Person Pose Estimation (root-relative)3D Multi-Person Pose Estimation (absolute)3D Pose Estimation
PaperPDFCode(official)

Abstract

In 3D human pose estimation one of the biggest problems is the lack of large, diverse datasets. This is especially true for multi-person 3D pose estimation, where, to our knowledge, there are only machine generated annotations available for training. To mitigate this issue, we introduce a network that can be trained with additional RGB-D images in a weakly supervised fashion. Due to the existence of cheap sensors, videos with depth maps are widely available, and our method can exploit a large, unannotated dataset. Our algorithm is a monocular, multi-person, absolute pose estimator. We evaluate the algorithm on several benchmarks, showing a consistent improvement in error rates. Also, our model achieves state-of-the-art results on the MuPoTS-3D dataset by a considerable margin.

Results

TaskDatasetMetricValueModel
3D Multi-Person Pose Estimation (root-relative)MuPoTS-3D3DPCK82.7WDSPose
3D Human Pose EstimationMuPoTS-3D3DPCK37.3WDSPose
3D Human Pose EstimationMuPoTS-3D3DPCK82.7WDSPose
3D Multi-Person Pose Estimation (absolute)MuPoTS-3D3DPCK37.3WDSPose
Pose EstimationMuPoTS-3D3DPCK37.3WDSPose
Pose EstimationMuPoTS-3D3DPCK82.7WDSPose
3DMuPoTS-3D3DPCK37.3WDSPose
3DMuPoTS-3D3DPCK82.7WDSPose
3D Multi-Person Pose EstimationMuPoTS-3D3DPCK37.3WDSPose
3D Multi-Person Pose EstimationMuPoTS-3D3DPCK82.7WDSPose
1 Image, 2*2 StitchiMuPoTS-3D3DPCK37.3WDSPose
1 Image, 2*2 StitchiMuPoTS-3D3DPCK82.7WDSPose

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