Key result
Intelligent supervision platforms linked to ~6% more excellent physical fitness grades vs traditional methods.
Why the study?
Despite broader population improvements in fitness, university students are experiencing physical decline, necessitating new methods to monitor and promote their physical health.
Does a smart supervision platform improve physical health test grades in college students compared to a traditional platform?
Observational
Yes
Does a smart supervision platform improve physical health test grades in college students compared to a traditional platform?
A smart supervision platform for physical health improves college students' physical fitness test scores compared to traditional methods.
May improve fitness test grades in college students; leaves open efficacy pending randomized confirmation.
Due to the rapid changes in current technology, machine learning and high-performance computing in medical applications also usher in new development opportunities. They are widely used in medical data analysis, diagnostic decision-making, disease prediction, disease assisted diagnosis, disease prognosis evaluation, new drug research and development, health management, and other fields. The impact of medical application on daily life is also increasing, which makes the use of intelligent medical service decision-making more extensive. However, with the continuous improvement and development of the population’s physical fitness, the physical fitness of university students is deteriorating. Physical decline has become a common concern. Therefore, it is of great significance to investigate the physical condition of college students and find a more suitable method to promote the physical health of college students. It helps college students better engage in learning and life, enabling them to adapt to work faster and better meet the current social development needs for college students’ physical fitness. For this reason, this paper proposes the idea of building a smart supervision platform for college students’ physical health through smart medical service decision-making. Through empirical research on this platform, it is found that the method of building the platform proposed in this paper is more conducive to the improvement of college students’ physical health. The excellent grade of freshmen in this platform is 5.4% higher than that of the traditional platform, and the excellent grade of sophomores in the test is 6.31% higher than that of the traditional platform, the excellent grade of college students’ physical health test on this platform accounts for a higher proportion. The platform provides corresponding personalized sports programs through real-time monitoring of students’ physical health, so as to realize teaching students in accordance with their aptitude, scientifically guide students’ physical exercise, and accurately improve students’ physical health. Meanwhile, research on the use of big data in sports has also led to advances in machine learning and high performance computing for medical applications, which improves their shortcomings.
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Fei Guo (2023) conducted an observational in Physical health of college students. Intelligent supervision platform for physical health based on intelligent medical service decision-making vs. Traditional intelligent supervision platform of physical health was evaluated on Proportion of excellent grades in physical fitness test. The intelligent supervision platform increased the proportion of excellent physical fitness test grades by 5.4% in freshmen and 6.31% in sophomores compared to the traditional platform.
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