A study on correlation of subjects on electrical engineering course using Artificial Neural Network (ANN) / Fathiah Zakaria … [et al.]

This paper presents a study of correlation between subjects of Diploma in Electrical Engineering (Electronics/Power) at Universiti Teknologi MARA(UiTM) Cawangan Terengganu using Artificial Neural Network (ANN). The analysis was done to see the effect of mathematical subjects (Pre-calculus and Calcul...

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Main Authors: Zakaria, Fathiah, Che Kar, Siti Aishah, Abdullah, Rina, Ismail, Syila Izawana, Md Enzai, Nur Idawati
Format: Article
Language:English
Published: Universiti Teknologi MARA 2021
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Online Access:https://ir.uitm.edu.my/id/eprint/53725/1/53725.pdf
https://ir.uitm.edu.my/id/eprint/53725/
https://myjms.mohe.gov.my
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spelling my.uitm.ir.537252023-01-20T07:34:49Z https://ir.uitm.edu.my/id/eprint/53725/ A study on correlation of subjects on electrical engineering course using Artificial Neural Network (ANN) / Fathiah Zakaria … [et al.] Zakaria, Fathiah Che Kar, Siti Aishah Abdullah, Rina Ismail, Syila Izawana Md Enzai, Nur Idawati Computers in education. Information technology Higher Education This paper presents a study of correlation between subjects of Diploma in Electrical Engineering (Electronics/Power) at Universiti Teknologi MARA(UiTM) Cawangan Terengganu using Artificial Neural Network (ANN). The analysis was done to see the effect of mathematical subjects (Pre-calculus and Calculus 1) and core subject (Electric Circuit 1) on Electronics 1. Electronics 1 is found to be a core subject with the history of high failure rate percentage (more than 25%) in previous semesters. This research has been conducted on current final semester students (Semester 5). Seven (7) models of ANN are developed to observe the correlation between the subjects. In order to develop an ANN model, ANN design and parameters need to be chosen to find the best model. In this study, historical data from students’ database were used for training and testing purpose. Total number of datasets used are 58 sets. 70% of the datasets are used for training process and 30% of the datasets are used for testing process. The Regression Coefficient, (R) values from the developed models was observed and analyzed to see the effect of the subject on the performance of students. It can be proven that Electric Circuit 1 has significant correlation with the Electronics 1 subject respected to the highest R value obtained (0.8100). The result obtained proves that student’s understanding on Electric Circuit 1 subject (taken during semester 2) has direct impact on the performance of students on Electronics 1 subject (taken during semester 3). Hence, early preventive measures could be taken by the respective parties. Universiti Teknologi MARA 2021-04 Article PeerReviewed text en https://ir.uitm.edu.my/id/eprint/53725/1/53725.pdf A study on correlation of subjects on electrical engineering course using Artificial Neural Network (ANN) / Fathiah Zakaria … [et al.]. (2021) Asian Journal of University Education (AJUE), 17 (2): 12. pp. 144-155. ISSN 2600-9749 https://myjms.mohe.gov.my
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 Computers in education. Information technology
Higher Education
spellingShingle Computers in education. Information technology
Higher Education
Zakaria, Fathiah
Che Kar, Siti Aishah
Abdullah, Rina
Ismail, Syila Izawana
Md Enzai, Nur Idawati
A study on correlation of subjects on electrical engineering course using Artificial Neural Network (ANN) / Fathiah Zakaria … [et al.]
description This paper presents a study of correlation between subjects of Diploma in Electrical Engineering (Electronics/Power) at Universiti Teknologi MARA(UiTM) Cawangan Terengganu using Artificial Neural Network (ANN). The analysis was done to see the effect of mathematical subjects (Pre-calculus and Calculus 1) and core subject (Electric Circuit 1) on Electronics 1. Electronics 1 is found to be a core subject with the history of high failure rate percentage (more than 25%) in previous semesters. This research has been conducted on current final semester students (Semester 5). Seven (7) models of ANN are developed to observe the correlation between the subjects. In order to develop an ANN model, ANN design and parameters need to be chosen to find the best model. In this study, historical data from students’ database were used for training and testing purpose. Total number of datasets used are 58 sets. 70% of the datasets are used for training process and 30% of the datasets are used for testing process. The Regression Coefficient, (R) values from the developed models was observed and analyzed to see the effect of the subject on the performance of students. It can be proven that Electric Circuit 1 has significant correlation with the Electronics 1 subject respected to the highest R value obtained (0.8100). The result obtained proves that student’s understanding on Electric Circuit 1 subject (taken during semester 2) has direct impact on the performance of students on Electronics 1 subject (taken during semester 3). Hence, early preventive measures could be taken by the respective parties.
format Article
author Zakaria, Fathiah
Che Kar, Siti Aishah
Abdullah, Rina
Ismail, Syila Izawana
Md Enzai, Nur Idawati
author_facet Zakaria, Fathiah
Che Kar, Siti Aishah
Abdullah, Rina
Ismail, Syila Izawana
Md Enzai, Nur Idawati
author_sort Zakaria, Fathiah
title A study on correlation of subjects on electrical engineering course using Artificial Neural Network (ANN) / Fathiah Zakaria … [et al.]
title_short A study on correlation of subjects on electrical engineering course using Artificial Neural Network (ANN) / Fathiah Zakaria … [et al.]
title_full A study on correlation of subjects on electrical engineering course using Artificial Neural Network (ANN) / Fathiah Zakaria … [et al.]
title_fullStr A study on correlation of subjects on electrical engineering course using Artificial Neural Network (ANN) / Fathiah Zakaria … [et al.]
title_full_unstemmed A study on correlation of subjects on electrical engineering course using Artificial Neural Network (ANN) / Fathiah Zakaria … [et al.]
title_sort study on correlation of subjects on electrical engineering course using artificial neural network (ann) / fathiah zakaria … [et al.]
publisher Universiti Teknologi MARA
publishDate 2021
url https://ir.uitm.edu.my/id/eprint/53725/1/53725.pdf
https://ir.uitm.edu.my/id/eprint/53725/
https://myjms.mohe.gov.my
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score 13.223943