Towards an open university based on machine learning for the teaching service support system using backpropagation neural networks

The combination of information technology and machine learning fuels the rapid evolution of today's educational landscape. Revolutions in both fields and a common goal of improving education drive this transformative journey. In a time when resources and information are more readily available t...

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Vydáno v:Soft computing (Berlin, Germany) Ročník 28; číslo 5; s. 4531 - 4549
Hlavní autor: Wang, Jianjun
Médium: Journal Article
Jazyk:angličtina
Vydáno: Berlin/Heidelberg Springer Berlin Heidelberg 01.03.2024
Springer Nature B.V
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ISSN:1432-7643, 1433-7479
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Abstract The combination of information technology and machine learning fuels the rapid evolution of today's educational landscape. Revolutions in both fields and a common goal of improving education drive this transformative journey. In a time when resources and information are more readily available than ever, traditional teaching strategies are changing to include digital tools that meet the various needs of students. For a teaching services support system (TSS), this paper proposed a novel machine learning-based model that utilizes the powerful backpropagation (BP) neural network, well known for its machine learning and data analysis capabilities. Increasing the effectiveness of online learning is the primary objective of the TSS, which focuses on contributing to a complete learning environment and promoting self-directed learning. This work closely examines the construction and functionality of the BP neural network within the TSS, contribution visions into input–output mechanisms, activation functions, and weight coefficients. This novel approach can bring concerning a digital age educational revolution by increasing the effectiveness and caliber of online learning, rekindling students’ enthusiasm for learning, and making the best use of teaching resources. In addition, the research explores the field of data-mining-based online teaching support services in Open Universities. It clarifies the system’s architecture, which includes virtual teaching modules, resource management, and user authentication. Machine learning methods such as adaptive genetic algorithms and BP neural networks optimize the system’s architecture. Experimental results achieved remarkable BP neural network accuracy and stability, significantly enhancing instructional quality and student engagement. The results show an impressive 83.4% accuracy, outperforming traditional methods such as SVM, KNN, DT, RF, and XGBoost. This demonstrates how learning outcomes and productivity can be enhanced by incorporating machine learning into education.
AbstractList The combination of information technology and machine learning fuels the rapid evolution of today's educational landscape. Revolutions in both fields and a common goal of improving education drive this transformative journey. In a time when resources and information are more readily available than ever, traditional teaching strategies are changing to include digital tools that meet the various needs of students. For a teaching services support system (TSS), this paper proposed a novel machine learning-based model that utilizes the powerful backpropagation (BP) neural network, well known for its machine learning and data analysis capabilities. Increasing the effectiveness of online learning is the primary objective of the TSS, which focuses on contributing to a complete learning environment and promoting self-directed learning. This work closely examines the construction and functionality of the BP neural network within the TSS, contribution visions into input–output mechanisms, activation functions, and weight coefficients. This novel approach can bring concerning a digital age educational revolution by increasing the effectiveness and caliber of online learning, rekindling students’ enthusiasm for learning, and making the best use of teaching resources. In addition, the research explores the field of data-mining-based online teaching support services in Open Universities. It clarifies the system’s architecture, which includes virtual teaching modules, resource management, and user authentication. Machine learning methods such as adaptive genetic algorithms and BP neural networks optimize the system’s architecture. Experimental results achieved remarkable BP neural network accuracy and stability, significantly enhancing instructional quality and student engagement. The results show an impressive 83.4% accuracy, outperforming traditional methods such as SVM, KNN, DT, RF, and XGBoost. This demonstrates how learning outcomes and productivity can be enhanced by incorporating machine learning into education.
Author Wang, Jianjun
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  organization: School of Fine Arts and Design, Leshan Normal University
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CitedBy_id crossref_primary_10_1016_j_ces_2025_122381
crossref_primary_10_1016_j_aej_2025_03_095
crossref_primary_10_1109_ACCESS_2025_3562589
crossref_primary_10_3390_fi17080366
crossref_primary_10_4018_IJITN_360650
crossref_primary_10_1038_s41598_024_61593_3
crossref_primary_10_1016_j_jrras_2025_101775
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Machine learning
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SubjectTerms Adaptive algorithms
Application of Soft Computing
Artificial Intelligence
Back propagation networks
Colleges & universities
Computational Intelligence
Control
Data analysis
Data mining
Distance learning
Education
Effectiveness
Engineering
Genetic algorithms
Information technology
Machine learning
Mathematical Logic and Foundations
Mechatronics
Neural networks
Online instruction
Resource management
Robotics
Students
Support services
Support systems
Teachers
Teaching
Teaching machines
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Title Towards an open university based on machine learning for the teaching service support system using backpropagation neural networks
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