Academic achievement prediction model using artificial neural network: a case study of UiTM Melaka Diploma in Computer Science Students / Normaziah Abdul Rahman, Fadhlina Izzah Saman and Nurulhuda Zainuddin

Neural network has emerged as a very popular area of research, both from the design and the usage points of view. It can be used to do pattern recognition and classification, prediction and control and conceptual information management. With these strengths, it could be applied to develop a model fo...

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Main Authors: Abdul Rahman, Normaziah, Saman, Fadhlina Izzah, Zainuddin, Nurulhuda
Format: Research Reports
Language:English
Published: 2011
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Online Access:http://ir.uitm.edu.my/id/eprint/42707/1/42707.pdf
http://ir.uitm.edu.my/id/eprint/42707/
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Institution: Universiti Teknologi Mara
Language: English
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spelling my.uitm.ir.427072021-03-10T00:58:12Z http://ir.uitm.edu.my/id/eprint/42707/ Academic achievement prediction model using artificial neural network: a case study of UiTM Melaka Diploma in Computer Science Students / Normaziah Abdul Rahman, Fadhlina Izzah Saman and Nurulhuda Zainuddin Abdul Rahman, Normaziah Saman, Fadhlina Izzah Zainuddin, Nurulhuda Performance. Competence. Academic achievement Melaka Universiti Teknologi MARA Neural network has emerged as a very popular area of research, both from the design and the usage points of view. It can be used to do pattern recognition and classification, prediction and control and conceptual information management. With these strengths, it could be applied to develop a model for predicting the Computer Science student's academic performance at Universiti Teknologi Mara Kampus Melaka based on their admission requirement subjects. The model will analyze a trend of past students' achievement at point of graduation in whether they graduated with a CGPA above or less than 3.00, and as a result, it is able to predict the future students' achievement. Based on the experiment, the number of students predicted to graduate with CGPA of 3.00 or above is 12 and the number of students predicted to graduate with a CGPA below 3.00 is 26.These results are very important to the faculty so that students can be steered in the right way to achieve a CGPA of at least 3.00 hence achieving the Quality Objective of UiTM Melaka which is to achieve at least 65% of fulltime students graduating with a CGPA of at least 3.00 in 2011. 2011 Research Reports NonPeerReviewed text en http://ir.uitm.edu.my/id/eprint/42707/1/42707.pdf Abdul Rahman, Normaziah and Saman, Fadhlina Izzah and Zainuddin, Nurulhuda (2011) Academic achievement prediction model using artificial neural network: a case study of UiTM Melaka Diploma in Computer Science Students / Normaziah Abdul Rahman, Fadhlina Izzah Saman and Nurulhuda Zainuddin. [Research Reports] (Unpublished)
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 Performance. Competence. Academic achievement
Melaka
Universiti Teknologi MARA
spellingShingle Performance. Competence. Academic achievement
Melaka
Universiti Teknologi MARA
Abdul Rahman, Normaziah
Saman, Fadhlina Izzah
Zainuddin, Nurulhuda
Academic achievement prediction model using artificial neural network: a case study of UiTM Melaka Diploma in Computer Science Students / Normaziah Abdul Rahman, Fadhlina Izzah Saman and Nurulhuda Zainuddin
description Neural network has emerged as a very popular area of research, both from the design and the usage points of view. It can be used to do pattern recognition and classification, prediction and control and conceptual information management. With these strengths, it could be applied to develop a model for predicting the Computer Science student's academic performance at Universiti Teknologi Mara Kampus Melaka based on their admission requirement subjects. The model will analyze a trend of past students' achievement at point of graduation in whether they graduated with a CGPA above or less than 3.00, and as a result, it is able to predict the future students' achievement. Based on the experiment, the number of students predicted to graduate with CGPA of 3.00 or above is 12 and the number of students predicted to graduate with a CGPA below 3.00 is 26.These results are very important to the faculty so that students can be steered in the right way to achieve a CGPA of at least 3.00 hence achieving the Quality Objective of UiTM Melaka which is to achieve at least 65% of fulltime students graduating with a CGPA of at least 3.00 in 2011.
format Research Reports
author Abdul Rahman, Normaziah
Saman, Fadhlina Izzah
Zainuddin, Nurulhuda
author_facet Abdul Rahman, Normaziah
Saman, Fadhlina Izzah
Zainuddin, Nurulhuda
author_sort Abdul Rahman, Normaziah
title Academic achievement prediction model using artificial neural network: a case study of UiTM Melaka Diploma in Computer Science Students / Normaziah Abdul Rahman, Fadhlina Izzah Saman and Nurulhuda Zainuddin
title_short Academic achievement prediction model using artificial neural network: a case study of UiTM Melaka Diploma in Computer Science Students / Normaziah Abdul Rahman, Fadhlina Izzah Saman and Nurulhuda Zainuddin
title_full Academic achievement prediction model using artificial neural network: a case study of UiTM Melaka Diploma in Computer Science Students / Normaziah Abdul Rahman, Fadhlina Izzah Saman and Nurulhuda Zainuddin
title_fullStr Academic achievement prediction model using artificial neural network: a case study of UiTM Melaka Diploma in Computer Science Students / Normaziah Abdul Rahman, Fadhlina Izzah Saman and Nurulhuda Zainuddin
title_full_unstemmed Academic achievement prediction model using artificial neural network: a case study of UiTM Melaka Diploma in Computer Science Students / Normaziah Abdul Rahman, Fadhlina Izzah Saman and Nurulhuda Zainuddin
title_sort academic achievement prediction model using artificial neural network: a case study of uitm melaka diploma in computer science students / normaziah abdul rahman, fadhlina izzah saman and nurulhuda zainuddin
publishDate 2011
url http://ir.uitm.edu.my/id/eprint/42707/1/42707.pdf
http://ir.uitm.edu.my/id/eprint/42707/
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