DESIGN OF STUDENT SUCCESS PREDICTION APPLICATION IN ONLINE LEARNING USING FUZZY-KNN

Effective evaluation of student performance is crucial. Hence, many kinds of techniques are used such as statistics, physical examination and currently data mining techniques to evaluate student performance. Data mining techniques as known as Educational Data Mining (EDM) collect, process, report an...

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Main Authors: Selly Anastassia Amellia Kharis, Gatot Fatwanto Hertono, Endang Wahyuningrum, Yumiati Yumiati, Sam Rizky Irawan, T Ahmad Danial, Dimas Septian Saputra
Format: Article
Language:English
Published: Universitas Pattimura 2023-06-01
Series:Barekeng
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Online Access:https://ojs3.unpatti.ac.id/index.php/barekeng/article/view/8042
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author Selly Anastassia Amellia Kharis
Gatot Fatwanto Hertono
Endang Wahyuningrum
Yumiati Yumiati
Sam Rizky Irawan
T Ahmad Danial
Dimas Septian Saputra
author_facet Selly Anastassia Amellia Kharis
Gatot Fatwanto Hertono
Endang Wahyuningrum
Yumiati Yumiati
Sam Rizky Irawan
T Ahmad Danial
Dimas Septian Saputra
author_sort Selly Anastassia Amellia Kharis
collection DOAJ
description Effective evaluation of student performance is crucial. Hence, many kinds of techniques are used such as statistics, physical examination and currently data mining techniques to evaluate student performance. Data mining techniques as known as Educational Data Mining (EDM) collect, process, report and used to find the unseen patterns in the student dataset. EDM uses machine learning techniques to dig out useful data from multiple levels of meaningful hierarchy. Various data from intelligent computer tutors, classic computer based educational systems, online classes, academic data in educational institution, and standar assesment can be process for EDM. This led universities include open and distance learning (ODL) to collect large volume of student and learning data in their learning management systems (LMS). Students in ODL are relatively familiar with LMS and many learning activities such as number of accessing materials, student participation in discussion forum recorded in LMS. The processes of using EDM to improve the quality of educational policy maker with data-based models have become a challange that institutions of higher education face today. Therefore, this study aims to design applications that predict student performance in online learning using machine learning techniques based on EDM. The machine learning technique used in this research is Fuzzy-KNN. Testing using Fuzzy-KNN produces an accuracy of 92.5%.
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institution Kabale University
issn 1978-7227
2615-3017
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publishDate 2023-06-01
publisher Universitas Pattimura
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spelling doaj-art-da69f1beb06a40a893b3af61d4438c052025-08-20T03:35:55ZengUniversitas PattimuraBarekeng1978-72272615-30172023-06-011720969097810.30598/barekengvol17iss2pp0969-09788042DESIGN OF STUDENT SUCCESS PREDICTION APPLICATION IN ONLINE LEARNING USING FUZZY-KNNSelly Anastassia Amellia Kharis0Gatot Fatwanto Hertono1Endang Wahyuningrum2Yumiati Yumiati3Sam Rizky Irawan4T Ahmad Danial5Dimas Septian Saputra6Mathematics Department, Faculty of Science and Technology, Universitas Terbuka, IndonesiaMathematics Department, Faculty of Mathematics and Science, Universitas Indonesia, IndonesiaMathematics Education Department, Faculty of Education and Teacher Training, Universitas Terbuka, IndonesiaMathematics Education Department, Faculty of Education and Teacher Training, Universitas Terbuka, IndonesiaMathematics Department, Faculty of Mathematics and Science, Universitas Indonesia, IndonesiaMathematics Department, Faculty of Mathematics and Science, Universitas Indonesia, IndonesiaMathematics Department, Faculty of Mathematics and Science, Universitas Indonesia, IndonesiaEffective evaluation of student performance is crucial. Hence, many kinds of techniques are used such as statistics, physical examination and currently data mining techniques to evaluate student performance. Data mining techniques as known as Educational Data Mining (EDM) collect, process, report and used to find the unseen patterns in the student dataset. EDM uses machine learning techniques to dig out useful data from multiple levels of meaningful hierarchy. Various data from intelligent computer tutors, classic computer based educational systems, online classes, academic data in educational institution, and standar assesment can be process for EDM. This led universities include open and distance learning (ODL) to collect large volume of student and learning data in their learning management systems (LMS). Students in ODL are relatively familiar with LMS and many learning activities such as number of accessing materials, student participation in discussion forum recorded in LMS. The processes of using EDM to improve the quality of educational policy maker with data-based models have become a challange that institutions of higher education face today. Therefore, this study aims to design applications that predict student performance in online learning using machine learning techniques based on EDM. The machine learning technique used in this research is Fuzzy-KNN. Testing using Fuzzy-KNN produces an accuracy of 92.5%.https://ojs3.unpatti.ac.id/index.php/barekeng/article/view/8042fuzzy-knnpredictionmachine learning
spellingShingle Selly Anastassia Amellia Kharis
Gatot Fatwanto Hertono
Endang Wahyuningrum
Yumiati Yumiati
Sam Rizky Irawan
T Ahmad Danial
Dimas Septian Saputra
DESIGN OF STUDENT SUCCESS PREDICTION APPLICATION IN ONLINE LEARNING USING FUZZY-KNN
Barekeng
fuzzy-knn
prediction
machine learning
title DESIGN OF STUDENT SUCCESS PREDICTION APPLICATION IN ONLINE LEARNING USING FUZZY-KNN
title_full DESIGN OF STUDENT SUCCESS PREDICTION APPLICATION IN ONLINE LEARNING USING FUZZY-KNN
title_fullStr DESIGN OF STUDENT SUCCESS PREDICTION APPLICATION IN ONLINE LEARNING USING FUZZY-KNN
title_full_unstemmed DESIGN OF STUDENT SUCCESS PREDICTION APPLICATION IN ONLINE LEARNING USING FUZZY-KNN
title_short DESIGN OF STUDENT SUCCESS PREDICTION APPLICATION IN ONLINE LEARNING USING FUZZY-KNN
title_sort design of student success prediction application in online learning using fuzzy knn
topic fuzzy-knn
prediction
machine learning
url https://ojs3.unpatti.ac.id/index.php/barekeng/article/view/8042
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AT yumiatiyumiati designofstudentsuccesspredictionapplicationinonlinelearningusingfuzzyknn
AT samrizkyirawan designofstudentsuccesspredictionapplicationinonlinelearningusingfuzzyknn
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