3D Human Motion Posture Tracking Method Using Multilabel Transfer Learning

Author:

Zhu Libin1,Liu Lihui1ORCID

Affiliation:

1. Physical Education Department, Suihua University, Suihua 152061, China

Abstract

To overcome the high position and posture angle tracking error, long tracking loss time and posture tracking update response time, and low fitness problem of traditional human motion posture tracking methods, in this paper, a three-dimensional (3D) human motion posture tracking method using multilabel transfer learning is proposed. According to the human structure composition and degree of freedom constraints, the 3D human joint skeleton model is constructed to generate the 3D human pose image and perform the noise reduction operation. The background difference is used to detect the 3D human moving target. Using multilabel transfer learning, human motion posture features are extracted from joint position and joint angle, and the estimation results of 3D human motion posture are obtained. The tracking error of human motion posture is corrected by three-step search, and the visual 3D human motion posture tracking results are output. The results show that, compared with the traditional human motion posture tracking method, the position and posture angle tracking errors of the proposed method are 2.18 mm and 0.178 deg, respectively. The tracking loss time and posture tracking update response time are shorter, which proves that the proposed method has more advantages in tracking accuracy and higher adaptability.

Publisher

Hindawi Limited

Subject

Computer Networks and Communications,Computer Science Applications

Reference20 articles.

1. Multi-Label Metric Transfer Learning Jointly Considering Instance Space and Label Space Distribution Divergence

2. 3D human posture tracking method based on dual Kinect sensors;Q. Li;Journal of System Simulation,2020

3. Human posture tracking based on multi feature fusion in video;M. Ma;Chinese Journal of Image and Graphics,2020

4. 3D human pose estimation method based on CNN;A. W. Xiao;Journal of Wuhan University of Engineering,2019

5. Human posture recognition method based on indoor positioning technology;X. P. Huang;Journal of China University of Science and Technology,2019

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Deep Custom Transfer Learning Models for Recognizing Human Activities via Video Surveillance;2023-06-27

2. A Skeleton Posture Transfer Method from Kinect Capture;2022 International Conference on Virtual Reality, Human-Computer Interaction and Artificial Intelligence (VRHCIAI);2022-10

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