Theory of physical education ecosystem based on SFIC model

Author:

Ren Ping1

Affiliation:

1. 1 Hunan City Universtiy , Yiyang, Hunan, 413000 , China .

Abstract

Abstract Through comparison and logical analysis, the author expounds the basic concepts and components of the physical education ecosystem are expounded, the SFIC physical education ecosystem model is established, and a student sports performance warning method based on machine learning is proposed. In view of the heterogeneous student behavior data, data preprocessing technology is adopted to preprocess sample data, and data characteristics are extracted based on knowledge points and item types. A sports achievement warning model (K-DNN) based on knowledge points and item types is established, and the students’ sports achievement warning model is designed and implemented. The experimental results show that, compared with DNN algorithm, Adaboost and ridgeregregression, K-DNN algorithm has the highest accuracy in predicting Ac and the lowest mean square error in predicting MS, indicating that K-DNN model has higher accuracy and better motion prediction effect.

Publisher

Walter de Gruyter GmbH

Subject

Applied Mathematics,Engineering (miscellaneous),Modeling and Simulation,General Computer Science

Reference20 articles.

1. Lucey, S. M., Aydin, K. Y., Gaichas, S. K., et al. (2021). Evaluating fishery management strategies using an ecosystem model as an operating model. Fisheries Research, 234, 234.

2. Na, J.-M., Park, S.-Y., Cho, Y.-H., & Lee, J.-H. (2021). Assessment of the environmental flow and habitat of the river ecosystem through ecosystem function model. Journal of Korea Water Resources Association, 9(3), 56-63.

3. Li, J., & Kim, S. Y. (2021). Structural Relationships among Self-Management, Self-Resilience, and Adaptability to Chinese and Korean College Life in Physical Education Majors. Knowledge E, 9(6), 57.

4. Kim, S. C. (2021). Study on a Three-Dimensional Ecosystem Modeling Framework Based on Marine Food Web in the Korean Peninsula. Korean Journal of Fisheries and Aquatic Sciences, 54(2), 49-51.

5. Madsen, D. Z. X. (2021). Adaptive feedforward control of a collaborative industrial robot manipulator using a novel extension of the Generalized Maxwell-Slip friction model. Mechanism and Machine Theory: Dynamics of Machine Systems Gears and Power Trandmissions Robots and Manipulator Systems Computer-Aided Design Methods, 155(1), 66-71.

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