Optimization of Balanced Distribution of Online and Offline Biochemistry Teaching Resources Utilizing Machine Learning Algorithms and Big Data

Main Article Content

Min Li, Li Zhao, Furong Yu, Jifen Hu, Jiachen Liu, Menglai Shen, Jin Chen

Abstract

Utilizing machine learning algorithms, the current conventional optimization methods for balanced allocation of teaching resources are enhanced. These methods primarily focus on predicting the current network resource load capacity without calculating the adaptation factor, often leading to suboptimal allocation outcomes. To address this issue, we propose a balanced allocation optimization approach for online and offline biochemistry education resources, taking into account the importance degree and big data. This approach calculates the probabilistic importance of teaching resources and the user delay in distinct modes to identify the optimal balanced allocation of teaching resources. Our experimental results comfirm that this approach achieves a higher resource utilization rate and a more desirable allocation effect compared to previous methods.

Article Details

Section
Articles
Author Biography

Min Li, Li Zhao, Furong Yu, Jifen Hu, Jiachen Liu, Menglai Shen, Jin Chen

[1],# Min Li

2,# Li Zhao

3,# Furong Yu

4 Jifen Hu

5 Jiachen Liu

6 Menglai Shen

7,* Jin Chen

 

 

[1] Anhui Medical College, Hefei 230601, China

2 Anhui Medical College, Hefei 230601, China

3 Anhui Medical College, Hefei 230601, China

4 Anhui Medical College, Hefei 230601, China

5 Anhui Medical College, Hefei 230601, China

6 Hefei KingMed Center for Clinical Laboratory, Hefei, Anhui, 230088, China

7 Anhui Medical College, Hefei 230601, China

*Corresponding author: Jin Chen

Min Li, Li Zhao and Furong Yu contributed equally to this work and should be considered co-first authors.

Copyright © JES 2024 on-line: journal.esrgroups.org

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