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Papers/A Lightweight Graph Transformer Network for Human Mesh Rec...

A Lightweight Graph Transformer Network for Human Mesh Reconstruction from 2D Human Pose

Ce Zheng, Matias Mendieta, Pu Wang, Aidong Lu, Chen Chen

2021-11-24Virtual Try-on3D Human Pose Estimation3D Human Shape EstimationHuman Mesh Recovery
PaperPDFCode(official)

Abstract

Existing deep learning-based human mesh reconstruction approaches have a tendency to build larger networks in order to achieve higher accuracy. Computational complexity and model size are often neglected, despite being key characteristics for practical use of human mesh reconstruction models (e.g. virtual try-on systems). In this paper, we present GTRS, a lightweight pose-based method that can reconstruct human mesh from 2D human pose. We propose a pose analysis module that uses graph transformers to exploit structured and implicit joint correlations, and a mesh regression module that combines the extracted pose feature with the mesh template to reconstruct the final human mesh. We demonstrate the efficiency and generalization of GTRS by extensive evaluations on the Human3.6M and 3DPW datasets. In particular, GTRS achieves better accuracy than the SOTA pose-based method Pose2Mesh while only using 10.2% of the parameters (Params) and 2.5% of the FLOPs on the challenging in-the-wild 3DPW dataset. Code will be publicly available.

Results

TaskDatasetMetricValueModel
3D Human Pose Estimation3DPWMPJPE88.5GTRS
3D Human Pose Estimation3DPWMPVPE106.2GTRS
3D Human Pose Estimation3DPWPA-MPJPE58.9GTRS
Pose Estimation3DPWMPJPE88.5GTRS
Pose Estimation3DPWMPVPE106.2GTRS
Pose Estimation3DPWPA-MPJPE58.9GTRS
3D3DPWMPJPE88.5GTRS
3D3DPWMPVPE106.2GTRS
3D3DPWPA-MPJPE58.9GTRS
1 Image, 2*2 Stitchi3DPWMPJPE88.5GTRS
1 Image, 2*2 Stitchi3DPWMPVPE106.2GTRS
1 Image, 2*2 Stitchi3DPWPA-MPJPE58.9GTRS

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