Students’ attitude towards video-based learning: machine learning analysis with rapid software / Abdullah Sani Abd Rahman ... [et al.]

The recent computer and Internet technologies have dramatically impacted many facets of education. There has been a rapid rise mainly since the COVID19 pandemic in the use of video-based learning implemented via online classroom setting. Regardless of its usefulness and practicality, the educational...

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Main Authors: Abd Rahman, Abdullah Sani, Meutia, Rita, Hamid, Yusnaliza, Abdul Rahman, Rahayu
Format: Article
Language:English
Published: Universiti Teknologi MARA, Perak 2022
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Online Access:https://ir.uitm.edu.my/id/eprint/74902/2/74902.pdf
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Institution: Universiti Teknologi Mara
Language: English
id my.uitm.ir.74902
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spelling my.uitm.ir.749022023-07-26T09:12:42Z https://ir.uitm.edu.my/id/eprint/74902/ Students’ attitude towards video-based learning: machine learning analysis with rapid software / Abdullah Sani Abd Rahman ... [et al.] msij Abd Rahman, Abdullah Sani Meutia, Rita Hamid, Yusnaliza Abdul Rahman, Rahayu Electronic Computers. Computer Science Computer software Application program interfaces The recent computer and Internet technologies have dramatically impacted many facets of education. There has been a rapid rise mainly since the COVID19 pandemic in the use of video-based learning implemented via online classroom setting. Regardless of its usefulness and practicality, the educational technologies adoption has its challenges faced by educators. The main challenge is to get intuition of the students’ attitude that will influence the students’ performances. In supporting the intervention approaches, machine learning techniques have been widely utilized. Another challenge is the difficulty to implement machine learning analysis by the educators. The emergence of rapid software platform can be useful for them, but the existence of these software is unrenowned. The goals of this paper are to: 1) provide fundamental experimental works of the machine learning implementation based on a new rapid software framework and 2) present the ability of machine learning in classifying students’ attitude towards video-based learning. Data were collected from a university level accounting course (n=103), involving students who have different experienced or exposure on video-based online learning. Three machine learning algorithms (Support Vector Machine, Random Forest, and Decision Tree) have been tested on the dataset in a rapid software platform. The results show that all the three machine learning algorithms produced high accuracy (above 95%) prediction results based on the hold-out testing dataset. Furthermore, considering inputs of students perceive on the useful and ease of use of video-based learning as well as excluding the demography attributes in the machine learning models seems more useful in the tested case. This paper presents the fundamental design and easy implementation of machine learning for education domain useful for the inexpert data scientists in many fields. Universiti Teknologi MARA, Perak 2022-10 Article PeerReviewed text en https://ir.uitm.edu.my/id/eprint/74902/2/74902.pdf Students’ attitude towards video-based learning: machine learning analysis with rapid software / Abdullah Sani Abd Rahman ... [et al.]. (2022) Mathematical Sciences and Informatics Journal (MIJ) <https://ir.uitm.edu.my/view/publication/Mathematical_Sciences_and_Informatics_Journal_=28MIJ=29/>, 3 (2). ISSN 2735-0703 https://mijuitm.com.my/view-articles/
institution Universiti Teknologi Mara
building Tun Abdul Razak Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Mara
content_source UiTM Institutional Repository
url_provider http://ir.uitm.edu.my/
language English
topic Electronic Computers. Computer Science
Computer software
Application program interfaces
spellingShingle Electronic Computers. Computer Science
Computer software
Application program interfaces
Abd Rahman, Abdullah Sani
Meutia, Rita
Hamid, Yusnaliza
Abdul Rahman, Rahayu
Students’ attitude towards video-based learning: machine learning analysis with rapid software / Abdullah Sani Abd Rahman ... [et al.]
description The recent computer and Internet technologies have dramatically impacted many facets of education. There has been a rapid rise mainly since the COVID19 pandemic in the use of video-based learning implemented via online classroom setting. Regardless of its usefulness and practicality, the educational technologies adoption has its challenges faced by educators. The main challenge is to get intuition of the students’ attitude that will influence the students’ performances. In supporting the intervention approaches, machine learning techniques have been widely utilized. Another challenge is the difficulty to implement machine learning analysis by the educators. The emergence of rapid software platform can be useful for them, but the existence of these software is unrenowned. The goals of this paper are to: 1) provide fundamental experimental works of the machine learning implementation based on a new rapid software framework and 2) present the ability of machine learning in classifying students’ attitude towards video-based learning. Data were collected from a university level accounting course (n=103), involving students who have different experienced or exposure on video-based online learning. Three machine learning algorithms (Support Vector Machine, Random Forest, and Decision Tree) have been tested on the dataset in a rapid software platform. The results show that all the three machine learning algorithms produced high accuracy (above 95%) prediction results based on the hold-out testing dataset. Furthermore, considering inputs of students perceive on the useful and ease of use of video-based learning as well as excluding the demography attributes in the machine learning models seems more useful in the tested case. This paper presents the fundamental design and easy implementation of machine learning for education domain useful for the inexpert data scientists in many fields.
format Article
author Abd Rahman, Abdullah Sani
Meutia, Rita
Hamid, Yusnaliza
Abdul Rahman, Rahayu
author_facet Abd Rahman, Abdullah Sani
Meutia, Rita
Hamid, Yusnaliza
Abdul Rahman, Rahayu
author_sort Abd Rahman, Abdullah Sani
title Students’ attitude towards video-based learning: machine learning analysis with rapid software / Abdullah Sani Abd Rahman ... [et al.]
title_short Students’ attitude towards video-based learning: machine learning analysis with rapid software / Abdullah Sani Abd Rahman ... [et al.]
title_full Students’ attitude towards video-based learning: machine learning analysis with rapid software / Abdullah Sani Abd Rahman ... [et al.]
title_fullStr Students’ attitude towards video-based learning: machine learning analysis with rapid software / Abdullah Sani Abd Rahman ... [et al.]
title_full_unstemmed Students’ attitude towards video-based learning: machine learning analysis with rapid software / Abdullah Sani Abd Rahman ... [et al.]
title_sort students’ attitude towards video-based learning: machine learning analysis with rapid software / abdullah sani abd rahman ... [et al.]
publisher Universiti Teknologi MARA, Perak
publishDate 2022
url https://ir.uitm.edu.my/id/eprint/74902/2/74902.pdf
https://ir.uitm.edu.my/id/eprint/74902/
https://mijuitm.com.my/view-articles/
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