Predicting Student Performance using Data Mining Techniques in Libyan High Schools

Mahjouba Ali Saleh, S. Palaniappan, N. Abdalla
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引用次数: 1

Abstract

Student performance in schools have been always the key factor for the teacher ability to teach and what brings good reputation to the school. Recently schools in Libya are facing an issue trying to figure out why students perform poorly in certain subjects and how can they know how they will perform next in the future in coming semesters in perspective subject. There are several methods proposed to predict the student’s performance, using data mining. This paper proposes using Math and English as key factors to predict the performance of the students. results and findings of the presented method in terms of predicting students’ performance based on their grades in Math and English. The results are divided in to three main sections clustering analysis using k-mean algorithm, classification analysis was done using two rounds first using Gain Ratio Evaluations to find out the top attributes that used by J84 algorithm in second round of classification, and rule association analysis using A priori algorithm. Rule association analysis is applied for the clusters generate by clustering analysis to generate the rules associated with each cluster. For each section, a list of inputs is presented with the scale used for the values followed by the results of the algorithm and explanation for the finding.
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利用数据挖掘技术预测利比亚高中学生的表现
学生在学校的表现一直是衡量教师教学能力和给学校带来良好声誉的关键因素。最近,利比亚的学校正面临着一个问题,试图弄清楚为什么学生在某些科目上表现不佳,以及他们如何知道他们在未来的学期中在未来的学科中表现如何。有几种方法提出了预测学生的表现,使用数据挖掘。本文提出以数学和英语作为预测学生成绩的关键因素。根据学生在数学和英语方面的成绩来预测学生的表现,所提出的方法的结果和发现。结果分为三个主要部分:采用k-mean算法进行聚类分析;采用两轮方法进行分类分析,首先采用增益比评价方法找出J84算法在第二轮分类中使用的顶级属性;采用A priori算法进行规则关联分析。规则关联分析是对聚类分析生成的聚类应用规则关联分析,生成与每个聚类相关联的规则。对于每个部分,提供了一个输入列表,其中包含用于值的刻度,然后是算法的结果和对发现的解释。
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