OLAP Mining with Educational Data Mart to Predict Students' Performance

被引:5
|
作者
Najm, Ihab Ahmed [1 ]
Dahr, Jasim Mohammed [2 ]
Hamoud, Alaa Khalaf [3 ]
Hashim, Ali Salah [3 ]
Awadh, Wid Akeel [3 ]
Kamel, Mohammed B. M. [4 ,5 ,6 ]
Humadi, Aqeel Majeed [7 ]
机构
[1] Tikrit Univ, Coll Comp & Math Sci, Tikrit, Iraq
[2] Directorate Educ Basrah, Basrah, Iraq
[3] Univ Basrah, Coll Comp Sci & Informat Technol, Basra, Iraq
[4] Eotvos Lorand Univ, Budapest, Hungary
[5] Hsch Furtwangen Univ, Furtwangen, Germany
[6] Univ Kufa, Kufa, Iraq
[7] Islamic Azad Univ Khorasgan, Coll Software Engn, Esfahan, Iran
关键词
OLAP mining; data mining algorithms; data mart; educational cube; OLAP; DATA WAREHOUSE;
D O I
10.31449/inf.v46i5.3853
中图分类号
TP31 [计算机软件];
学科分类号
081202 ; 0835 ;
摘要
Academic institutions always try to use a solid platform for supporting their short-to-long term decisions related to academic performance. These platforms utilize historical data and turn them into strategic decisions. The hidden patterns in the data need tools and approaches to be discovered. This paper aims to present a short roadmap for implementing educational data mart based on a data set from Alexandria Private Elementary School, located in the Basrah province of Iraq in the 2017-2018 academic year. The educational data mart is implemented, then the cube is constructed to perform OLAP operations and present OLAP reports. Next, OLAP mining is performed on the educational cube using nine algorithms, namely: decision tree with score method (entropy) and split method (complete)), decision tree with score method (entropy) and split method (complete)), decision tree with score method (entropy) and split method (both)), Logistic, Naive Bayes, Neural Network, clustering with expectation maximization, clustering with K-means clustering, and association rules mining. According to a comparison of all algorithms, clustering with expectation-maximization proved the highest accuracy with 96.76% for predicting the students' performance and 96.12% for predicting students' grades amongst all other algorithms. Povzetek:
引用
收藏
页码:11 / 19
页数:9
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