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A Comparative Analysis of Classification Algorithms on Students’ Performance

Authors :
Nilar Aye
Source :
Transactions on Networks and Communications. 8:20-34
Publication Year :
2020
Publisher :
Scholar Publishing, 2020.

Abstract

Recently educational system, many features control a student’s performance. Students should be well stimulated to study their education. Motivation leads to interest, interest leads to success in their lives. Appropriate assessment of abilities encourages the students to do better in their education. Data mining is to find out patterns by analyzing a large dataset and apply those patterns to predict the possibility of the future events. Data mining is a very critical field in educational area and it provides high potential for the schools and universities. In data mining, there are various classification techniques with various levels of accuracy. This paper focuses to make comparative evaluation of four classifiers such as J48, Naive Bayesian, Bayesian Network and Decision Stump by using WEKA tool. This study is to investigate and identify the best classification technique to analyze and predict the students’ performance of University of Jordan.

Details

ISSN :
20547420
Volume :
8
Database :
OpenAIRE
Journal :
Transactions on Networks and Communications
Accession number :
edsair.doi...........68b3f90614400f76deebafe552b8a6ca
Full Text :
https://doi.org/10.14738/tnc.82.8267