Title of article :
Applying variable precision rough set model for clustering student suffering study’s anxiety
Author/Authors :
Yanto، نويسنده , , Iwan Tri Riyadi and Vitasari، نويسنده , , Prima and Herawan، نويسنده , , Tutut and Deris، نويسنده , , Mustafa Mat، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2012
Pages :
8
From page :
452
To page :
459
Abstract :
Computational models of the artificial intelligence such as rough set theory have several applications. Data clustering under rough set theory can be considered as a technique for medical decision making. One possible application is the clustering of student suffering study’s anxiety. In this paper, we present the applicability of variable precision rough set model for clustering student suffering studies anxiety. The proposed technique is based on the mean of accuracy of approximation using variable precision of attributes. The datasets are taken from a survey aimed to identify of studies anxiety sources among students at Universiti Malaysia Pahang (UMP). At this stage of the research, we show how variable precision rough set model can be used to groups student in each study’s anxiety. The results may potentially contribute to give a recommendation how to design intervention, to conduct a treatment in order to reduce anxiety and further to improve student’s academic performance.
Keywords :
Anxiety , Clustering , Rough set theory , Variable precision rough set model
Journal title :
Expert Systems with Applications
Serial Year :
2012
Journal title :
Expert Systems with Applications
Record number :
2350837
Link To Document :
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