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Predicting students’ grades using fuzzy non-parametric regression method and ReliefF-based algorithm

Publish Year: 1392
Type: Journal paper
Language: English
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JR_ACSIJ-3-2_007

Index date: 13 April 2014

Predicting students’ grades using fuzzy non-parametric regression method and ReliefF-based algorithm abstract

In this paper we introduce two new approaches to predict the grades that university students will acquire in the final exam of a course and improve the obtained result on some featuresextracted from logged data in an educational web-based system. First we start with a new approach based on Fuzzy nonparametricregression; next, we introduce a simple algorithm using ReliefF estimated weights. The first prediction technique is yielded by integrating ridge regression learning algorithm in the Lagrangian dual space. In this approach, the distance measure for fuzzy numbers that suggested by Diamond is used and the local linear smoothing technique with the cross validation procedure for selecting the optimal value of the smoothing parameter isfuzzified to fit the presented model. Second approach is based on ReliefF attribute estimation as a weighting vector to find the bestadjusted results. Finally, to check the efficiency of the new proposed approaches, the most popular techniques of traditional data mining methods are compared with the presented methods

Predicting students’ grades using fuzzy non-parametric regression method and ReliefF-based algorithm Keywords:

Predicting students’ grades using fuzzy non-parametric regression method and ReliefF-based algorithm authors

Javad Ghasemian

School of Mathematics and Computer Sciences, Damghan University Damghan, Iran

Mahmoud Moallem

School of Mathematics and Computer Sciences, Damghan University Damghan, Iran

Yasin Alipour

Information Technology Department, Damghan University Damghan, Iran