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The Most Potential Decision Tree Technique to Classify the Large Dataset of Students

Authors :
Ali Selamat
Afiqah Zahirah Zakaria
Hamido Fujita
Ondrej Krejcar
Source :
Lecture Notes in Electrical Engineering ISBN: 9789813340688
Publication Year :
2021
Publisher :
Springer Singapore, 2021.

Abstract

Education is one of the important fields in this challenging world. The researchers come out with the new perceptive, which is learning analytics that is a new invention for helping out the instructors, learners, and administrators. The use of learning analytics can be the medium for increasing the productivity of education for producing capable leaders in the future. Machine learning comes out with any type of techniques such as Decision Tree, Support Vector Machine, Naive Bayes, and Ensemble Classifiers. However, both Decision Tree and Ensemble Classifiers are chosen as the best potential machine learning techniques to cope with the large database of students. The Boosted Tree of Ensemble Classifiers managed to get 99.6% accuracy of training 378,005 data of students regarding the Virtual Learning Environment (VLE).

Details

ISBN :
978-981-334-068-8
ISBNs :
9789813340688
Database :
OpenAIRE
Journal :
Lecture Notes in Electrical Engineering ISBN: 9789813340688
Accession number :
edsair.doi...........dd025ead02db15a9abff3385bb2ab17f
Full Text :
https://doi.org/10.1007/978-981-33-4069-5_47