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32473

Optimizing Intelligent Agent Performance in E-Learning Environment

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Last updated: 04 Jan 2025

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Abstract

The main objective of e-learning systems is to improve the student- learning performance and satisfaction. This can be achieved by providing a personalized learning experience that identifies and satisfies the individual learner's requirements and abilities. The performance of the e-learning systems can be significantly improved by exploiting dynamic selflearning capabilities that rapidly adapts to prior user interactions within the system and the continuous changes in the environment. In this paper, a dynamic multi-agent system using particle swarm optimization (DMAPSO) for e-learning systems is proposed. The system incorporates five agents that take into consideration the variations in the capabilities among the different users. First, the Project Clustering Agent (PCA) is used to cluster a set of learning resources/projects into similar groups. Second, the Student Clustering Agent (SCA) groups students according to their preferences and abilities. Third, the Student-Project Matching Agent (SPMA) is used to map each learner's group to a suitable project or particular learning resources according to specific design criteria. Fourth, the Student-Student Matching Agent (SSMA) is designed to perform the efficient mapping between different students. Finally, the Dynamic Student Clustering Agent (DSCA) is employed to continually tracks and analyzes the student's behavior within the system such as changes in knowledge and skill levels. Consequently, the DSCA adapts the e-learning environments to accommodate these variations. Experimental results demonstrate the effectiveness of the proposed system in providing near-optimal solutions in considerably less computational time.

DOI

10.21608/pserj.2018.32473

Keywords

Agent, Dynamic Environment, E_lerning, PSO

Authors

First Name

Mariam

Last Name

Al-Tarabily

MiddleName

-

Affiliation

Electrical Engineering Department, Faculty of Engineering, Port-Said University, Port-Fouad, EGYPT

Email

mariammokhtar75@hotmail.com

City

-

Orcid

-

First Name

Mahmmoud

Last Name

Marie

MiddleName

-

Affiliation

Computers and Systems Engineering, Department, Faculty of Engineering, Al-Azhar University, Cairo, EGYPT

Email

mahmoudmarie56@gmail.com

City

-

Orcid

-

First Name

Rehab

Last Name

Abd Al-Kader

MiddleName

-

Affiliation

Electrical Engineering Department, Faculty of Engineering, Port-Said University, Port-Fouad, EGYPT

Email

rehabf98@gmaill.com

City

-

Orcid

-

First Name

Gammal

Last Name

Abd Al-Azem

MiddleName

-

Affiliation

Electrical Engineering Department, Faculty of Engineering, Port-Said University, Port-Fouad, EGYPT

Email

-

City

-

Orcid

-

Volume

22

Article Issue

1

Related Issue

5483

Issue Date

2018-03-01

Receive Date

2018-02-12

Publish Date

2018-03-20

Page Start

107

Page End

119

Print ISSN

1110-6603

Online ISSN

2536-9377

Link

https://pserj.journals.ekb.eg/article_32473.html

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https://pserj.journals.ekb.eg/service?article_code=32473

Order

10

Type

Original Article

Type Code

813

Publication Type

Journal

Publication Title

Port-Said Engineering Research Journal

Publication Link

https://pserj.journals.ekb.eg/

MainTitle

Optimizing Intelligent Agent Performance in E-Learning Environment

Details

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Article

Created At

22 Jan 2023