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Main Authors: Zhao, Jie, Li, Jianing, Chen, Weihan, Wang, Wentong, Yuan, Pengfei, Zhang, Xu, Peng, Deshu
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2407.16137
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author Zhao, Jie
Li, Jianing
Chen, Weihan
Wang, Wentong
Yuan, Pengfei
Zhang, Xu
Peng, Deshu
author_facet Zhao, Jie
Li, Jianing
Chen, Weihan
Wang, Wentong
Yuan, Pengfei
Zhang, Xu
Peng, Deshu
contents Human pose estimation remains a multifaceted challenge in computer vision, pivotal across diverse domains such as behavior recognition, human-computer interaction, and pedestrian tracking. This paper proposes an improved method based on the spatial-temporal graph convolution net-work (UGCN) to address the issue of missing human posture skeleton sequences in single-view videos. We present the improved UGCN, which allows the network to process 3D human pose data and improves the 3D human pose skeleton sequence, thereby resolving the occlusion issue.
format Preprint
id arxiv_https___arxiv_org_abs_2407_16137
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle 3D-UGCN: A Unified Graph Convolutional Network for Robust 3D Human Pose Estimation from Monocular RGB Images
Zhao, Jie
Li, Jianing
Chen, Weihan
Wang, Wentong
Yuan, Pengfei
Zhang, Xu
Peng, Deshu
Computer Vision and Pattern Recognition
Human pose estimation remains a multifaceted challenge in computer vision, pivotal across diverse domains such as behavior recognition, human-computer interaction, and pedestrian tracking. This paper proposes an improved method based on the spatial-temporal graph convolution net-work (UGCN) to address the issue of missing human posture skeleton sequences in single-view videos. We present the improved UGCN, which allows the network to process 3D human pose data and improves the 3D human pose skeleton sequence, thereby resolving the occlusion issue.
title 3D-UGCN: A Unified Graph Convolutional Network for Robust 3D Human Pose Estimation from Monocular RGB Images
topic Computer Vision and Pattern Recognition
url https://arxiv.org/abs/2407.16137