Analysis of the mixed teaching of college physical education based on the health big data and blockchain technology

In the era of health big data, with the continuous development of information technology, students’ physical health management also relies more on various information technologies. Blockchain, as an emerging technology in recent years, has the characteristics of high efficiency and intelligence. Col...

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Main Authors: Shaoqing Liu, Cun Li
Format: Article
Language:English
Published: PeerJ Inc. 2023-01-01
Series:PeerJ Computer Science
Subjects:
Online Access:https://peerj.com/articles/cs-1206.pdf
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author Shaoqing Liu
Cun Li
author_facet Shaoqing Liu
Cun Li
author_sort Shaoqing Liu
collection DOAJ
description In the era of health big data, with the continuous development of information technology, students’ physical health management also relies more on various information technologies. Blockchain, as an emerging technology in recent years, has the characteristics of high efficiency and intelligence. College physical education is an important part of college students’ health big data. Unlike cultural classes, physical education with its rich movements and activities, leaves teachers no time to monitor students’ real classroom performance. Therefore, we propose a human pose estimation method based on cross-attention-based Transformer multi-scale representation learning to monitor students’ class concentration. Firstly, the feature maps with different resolution are obtained by deep convolutional network and these feature maps are transformed into multi-scale visual markers. Secondly, we propose a cross-attention module with the multi-scales. The module reduces the redundancy of key point markers and the number of cross fusion operations through multiple interactions between feature markers with different resolutions and the strategy of moving key points for key point markers. Finally, the cross-attention fusion module extracts feature information of different scales from feature tags to form key tags. We can confirm the performance of the cross-attention module and the fusion module by the experimental results conducting on MSCOCO datasets, which can effectively promote the Transformer encoder to learn the association relationship between key points. Compared with the completive TokenPose method, our method can reduce the computational cost by 11.8% without reducing the performance.
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spelling doaj.art-b610b1b192b54a8292a69b1d7c1235da2023-01-22T15:05:08ZengPeerJ Inc.PeerJ Computer Science2376-59922023-01-019e120610.7717/peerj-cs.1206Analysis of the mixed teaching of college physical education based on the health big data and blockchain technologyShaoqing Liu0Cun Li1Langfang Health Vocational College, Langfang, Hebei, ChinaLangfang Health Vocational College, Langfang, Hebei, ChinaIn the era of health big data, with the continuous development of information technology, students’ physical health management also relies more on various information technologies. Blockchain, as an emerging technology in recent years, has the characteristics of high efficiency and intelligence. College physical education is an important part of college students’ health big data. Unlike cultural classes, physical education with its rich movements and activities, leaves teachers no time to monitor students’ real classroom performance. Therefore, we propose a human pose estimation method based on cross-attention-based Transformer multi-scale representation learning to monitor students’ class concentration. Firstly, the feature maps with different resolution are obtained by deep convolutional network and these feature maps are transformed into multi-scale visual markers. Secondly, we propose a cross-attention module with the multi-scales. The module reduces the redundancy of key point markers and the number of cross fusion operations through multiple interactions between feature markers with different resolutions and the strategy of moving key points for key point markers. Finally, the cross-attention fusion module extracts feature information of different scales from feature tags to form key tags. We can confirm the performance of the cross-attention module and the fusion module by the experimental results conducting on MSCOCO datasets, which can effectively promote the Transformer encoder to learn the association relationship between key points. Compared with the completive TokenPose method, our method can reduce the computational cost by 11.8% without reducing the performance.https://peerj.com/articles/cs-1206.pdfHealth big dataBlockchainMulti-scale cross AttentionHuman pose estimation
spellingShingle Shaoqing Liu
Cun Li
Analysis of the mixed teaching of college physical education based on the health big data and blockchain technology
PeerJ Computer Science
Health big data
Blockchain
Multi-scale cross Attention
Human pose estimation
title Analysis of the mixed teaching of college physical education based on the health big data and blockchain technology
title_full Analysis of the mixed teaching of college physical education based on the health big data and blockchain technology
title_fullStr Analysis of the mixed teaching of college physical education based on the health big data and blockchain technology
title_full_unstemmed Analysis of the mixed teaching of college physical education based on the health big data and blockchain technology
title_short Analysis of the mixed teaching of college physical education based on the health big data and blockchain technology
title_sort analysis of the mixed teaching of college physical education based on the health big data and blockchain technology
topic Health big data
Blockchain
Multi-scale cross Attention
Human pose estimation
url https://peerj.com/articles/cs-1206.pdf
work_keys_str_mv AT shaoqingliu analysisofthemixedteachingofcollegephysicaleducationbasedonthehealthbigdataandblockchaintechnology
AT cunli analysisofthemixedteachingofcollegephysicaleducationbasedonthehealthbigdataandblockchaintechnology