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Papers/A Dual-Source Approach for 3D Pose Estimation from a Singl...

A Dual-Source Approach for 3D Pose Estimation from a Single Image

Hashim Yasin, Umar Iqbal, Björn Krüger, Andreas Weber, Juergen Gall

2015-09-22CVPR 2016 63D Human Pose EstimationPose RetrievalPose EstimationRetrieval3D Pose Estimation2D Pose Estimation
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Abstract

One major challenge for 3D pose estimation from a single RGB image is the acquisition of sufficient training data. In particular, collecting large amounts of training data that contain unconstrained images and are annotated with accurate 3D poses is infeasible. We therefore propose to use two independent training sources. The first source consists of images with annotated 2D poses and the second source consists of accurate 3D motion capture data. To integrate both sources, we propose a dual-source approach that combines 2D pose estimation with efficient and robust 3D pose retrieval. In our experiments, we show that our approach achieves state-of-the-art results and is even competitive when the skeleton structure of the two sources differ substantially.

Results

TaskDatasetMetricValueModel
3D Human Pose EstimationHumanEva-IMean Reconstruction Error (mm)38.9Dual-source approach
Pose EstimationHumanEva-IMean Reconstruction Error (mm)38.9Dual-source approach
3DHumanEva-IMean Reconstruction Error (mm)38.9Dual-source approach
1 Image, 2*2 StitchiHumanEva-IMean Reconstruction Error (mm)38.9Dual-source approach

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