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Harvesting Multiple Views for Marker-less 3D Human Pose Annotations

About

Recent advances with Convolutional Networks (ConvNets) have shifted the bottleneck for many computer vision tasks to annotated data collection. In this paper, we present a geometry-driven approach to automatically collect annotations for human pose prediction tasks. Starting from a generic ConvNet for 2D human pose, and assuming a multi-view setup, we describe an automatic way to collect accurate 3D human pose annotations. We capitalize on constraints offered by the 3D geometry of the camera setup and the 3D structure of the human body to probabilistically combine per view 2D ConvNet predictions into a globally optimal 3D pose. This 3D pose is used as the basis for harvesting annotations. The benefit of the annotations produced automatically with our approach is demonstrated in two challenging settings: (i) fine-tuning a generic ConvNet-based 2D pose predictor to capture the discriminative aspects of a subject's appearance (i.e.,"personalization"), and (ii) training a ConvNet from scratch for single view 3D human pose prediction without leveraging 3D pose groundtruth. The proposed multi-view pose estimator achieves state-of-the-art results on standard benchmarks, demonstrating the effectiveness of our method in exploiting the available multi-view information.

Georgios Pavlakos, Xiaowei Zhou, Konstantinos G. Derpanis, Kostas Daniilidis• 2017

Related benchmarks

TaskDatasetResultRank
3D Human Pose EstimationHuman3.6M (test)
MPJPE (Average)56.89
547
3D Human Pose EstimationHuman3.6M (Protocol 2)
Average MPJPE56.9
315
3D Human Pose EstimationHuman3.6M (subjects 9 and 11)
Average Error56.9
180
3D Human Pose EstimationHuman3.6M--
160
3D Human Pose EstimationHuman3.6M (S9, S11)
Average Error (MPJPE Avg)56.9
94
3D Pose EstimationHuman3.6M
MPJPE (mm)56.9
66
3D Human Pose EstimationHuman3.6M v1 (test)
Avg Performance56.9
58
3D Human Pose EstimationHuman3.6M 13 (test)
MPJPE (mm)56.9
21
3D Human Pose EstimationKTH Multiview Football II (Sequence 1 of Player 2)
Upper Arms PCP100
17
3D Human Pose EstimationH36M (all subjects)
MPJPE56.2
13
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