Prediction Algorithm of Young Students’ Physical Health Risk Factors Based on Deep Learning
Young people’s physical and mental health is the foundation of society’s overall development and the key to improving people’s health quality. Middle school students’ physical examinations and monitoring work are a surefire way to ensure their healthy development. Poor vision, dental caries, overwei...
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          | Published in | Journal of healthcare engineering Vol. 2021; pp. 1 - 8 | 
|---|---|
| Main Author | |
| Format | Journal Article | 
| Language | English | 
| Published | 
        England
          Hindawi
    
        19.08.2021
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| Subjects | |
| Online Access | Get full text | 
| ISSN | 2040-2295 2040-2309 2040-2309  | 
| DOI | 10.1155/2021/9049266 | 
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| Abstract | Young people’s physical and mental health is the foundation of society’s overall development and the key to improving people’s health quality. Middle school students’ physical examinations and monitoring work are a surefire way to ensure their healthy development. Poor vision, dental caries, overweight and obesity, and high blood pressure are the most common adverse health outcomes of students caused by adolescent health risk behavior factors. Researchers have been concerned about the retinal fundus vascular system, which is the only internal vascular system that can be observed in a noninvasive state of the human body. Fundus images contain a wealth of disease-related information. Fundus images have been widely used in the field of medical auxiliary diagnosis because many important systemic diseases of the human body cause specific reactions in the fundus. Aiming to solve the problem of inseparable tiny blood vessels, this paper proposes a model of retinal vessel segmentation based on attention mechanisms. In light of the retinal arteriovenous division of discontinuous challenges, the topological structure of the constraint system along with overcoming the network and topology restrictions is monitored. Finally, simulation experiments were conducted on two publicly available datasets. The findings show that the proposed method is reliable, effective, and accurate in predicting physical health risk factors in adolescent students. | 
    
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| AbstractList | Young people's physical and mental health is the foundation of society's overall development and the key to improving people's health quality. Middle school students' physical examinations and monitoring work are a surefire way to ensure their healthy development. Poor vision, dental caries, overweight and obesity, and high blood pressure are the most common adverse health outcomes of students caused by adolescent health risk behavior factors. Researchers have been concerned about the retinal fundus vascular system, which is the only internal vascular system that can be observed in a noninvasive state of the human body. Fundus images contain a wealth of disease-related information. Fundus images have been widely used in the field of medical auxiliary diagnosis because many important systemic diseases of the human body cause specific reactions in the fundus. Aiming to solve the problem of inseparable tiny blood vessels, this paper proposes a model of retinal vessel segmentation based on attention mechanisms. In light of the retinal arteriovenous division of discontinuous challenges, the topological structure of the constraint system along with overcoming the network and topology restrictions is monitored. Finally, simulation experiments were conducted on two publicly available datasets. The findings show that the proposed method is reliable, effective, and accurate in predicting physical health risk factors in adolescent students. Young people's physical and mental health is the foundation of society's overall development and the key to improving people's health quality. Middle school students' physical examinations and monitoring work are a surefire way to ensure their healthy development. Poor vision, dental caries, overweight and obesity, and high blood pressure are the most common adverse health outcomes of students caused by adolescent health risk behavior factors. Researchers have been concerned about the retinal fundus vascular system, which is the only internal vascular system that can be observed in a noninvasive state of the human body. Fundus images contain a wealth of disease-related information. Fundus images have been widely used in the field of medical auxiliary diagnosis because many important systemic diseases of the human body cause specific reactions in the fundus. Aiming to solve the problem of inseparable tiny blood vessels, this paper proposes a model of retinal vessel segmentation based on attention mechanisms. In light of the retinal arteriovenous division of discontinuous challenges, the topological structure of the constraint system along with overcoming the network and topology restrictions is monitored. Finally, simulation experiments were conducted on two publicly available datasets. The findings show that the proposed method is reliable, effective, and accurate in predicting physical health risk factors in adolescent students.Young people's physical and mental health is the foundation of society's overall development and the key to improving people's health quality. Middle school students' physical examinations and monitoring work are a surefire way to ensure their healthy development. Poor vision, dental caries, overweight and obesity, and high blood pressure are the most common adverse health outcomes of students caused by adolescent health risk behavior factors. Researchers have been concerned about the retinal fundus vascular system, which is the only internal vascular system that can be observed in a noninvasive state of the human body. Fundus images contain a wealth of disease-related information. Fundus images have been widely used in the field of medical auxiliary diagnosis because many important systemic diseases of the human body cause specific reactions in the fundus. Aiming to solve the problem of inseparable tiny blood vessels, this paper proposes a model of retinal vessel segmentation based on attention mechanisms. In light of the retinal arteriovenous division of discontinuous challenges, the topological structure of the constraint system along with overcoming the network and topology restrictions is monitored. Finally, simulation experiments were conducted on two publicly available datasets. The findings show that the proposed method is reliable, effective, and accurate in predicting physical health risk factors in adolescent students.  | 
    
| Author | Yin, Xianping | 
    
| AuthorAffiliation | Hangzhou Wan Xiang Polytechnic, Hangzhou 310023, China | 
    
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| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/34457224$$D View this record in MEDLINE/PubMed | 
    
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| Cites_doi | 10.1177/016146811812001304 10.52810/TC.2021.100020 10.1155/2021/5568208 10.1016/j.jadohealth.2015.05.011 10.1016/j.jelectrocard.2017.08.013 10.1016/j.neucom.2020.05.106 10.1080/07448481.2015.1085059 10.1109/TBME.2016.2535311 10.1007/978-3-030-00934-2_10 10.1001/jama.2020.7840 10.1007/s11042-018-6562-8 10.1542/peds.2019-2221 10.1186/s12955-016-0415-9 10.1007/s11606-020-05845-8 10.1109/tcsvt.2020.3043026 10.4324/9780429344855-1 10.20431/2456-0030.0204003 10.52810/tpris.2021.100018 10.3390/s21041129 10.1093/eurpub/ckl051 10.3390/ijerph16203877 10.1016/j.neunet.2020.02.018 10.1007/s12652-020-02572-0 10.7326/m17-3203 10.52810/tiot.2021.100030  | 
    
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| Copyright | Copyright © 2021 Xianping Yin. Copyright © 2021 Xianping Yin. 2021  | 
    
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| References | 22 23 24 25 26 27 28 L. Walker (6) 2018; 120 10 11 12 13 14 M. K. Roche (7) 2019 16 18 19 M. Ali (17) 2020 F. Eshaghi (15) 1 2 3 4 5 8 9 20 21 37266273 - J Healthc Eng. 2023 May 24;2023:9848620  | 
    
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| Snippet | Young people’s physical and mental health is the foundation of society’s overall development and the key to improving people’s health quality. Middle school... Young people's physical and mental health is the foundation of society's overall development and the key to improving people's health quality. Middle school...  | 
    
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| SubjectTerms | Adolescent Algorithms Deep Learning Dental Caries Humans Image Processing, Computer-Assisted - methods Neural Networks, Computer Risk Factors Students  | 
    
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| Title | Prediction Algorithm of Young Students’ Physical Health Risk Factors Based on Deep Learning | 
    
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