Tai Chi Movement Recognition Method Based on Deep Learning Algorithm

Author:

Liu Lihua1,Qing MA2ORCID,Chen Si1,Li Zhifang3

Affiliation:

1. Sports Department, Institute of Disaster Prevention, Langfang, 065201, Hebei, China

2. College of Physical Education, Jimei University, Xiamen, 361021, Fujian, China

3. 4, Sports Department, Institute of Disaster Prevention, Langfang, 065201, Hebei, China

Abstract

The current action recognition method has good effect when applied to static recognition, but, when applied to dynamic action sequence recognition, the temporal and spatial feature segmentation is too dependent on sample template, resulting in low recognition accuracy. To address the inadequacies of standard movement detection techniques in the application of comparable domains, a deep learning algorithm is utilised to recognise Tai Chi Chuan motions. For Tai Chi Chuan movement human body skeleton framework, add image depth parameter is added, and OpenPose model is utilised to estimate joint point coordinates. The ST-GCN deep learning model was created to recognise Tai Chi Chuan motions by extracting movement features from the spatiotemporal trajectory of human joints during Tai Chi Chuan movements. Instance test results show that rate of using the deep learning algorithm of gesture recognition is 89.22%, with significantly lower error detection rate, which is good for Tai chi chuan movement recognition effect.

Funder

Taichi “golden class” construction

Publisher

Hindawi Limited

Subject

General Engineering,General Mathematics

Cited by 4 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

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2. Improving Small-Scale Human Action Recognition Performance Using a 3D Heatmap Volume;Sensors;2023-07-13

3. Spatial Transformer Network with Transfer Learning for Small-scale Fine-grained Skeleton-based Tai Chi Action Recognition;IECON 2022 – 48th Annual Conference of the IEEE Industrial Electronics Society;2022-10-17

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