A Semi-Pareto Optimal Set based algorithm for grouping of students

Collaborative learning in traditional and e-learning environments has a significant influence on the student learning process. Forming appropriate groups of students is one of the important factors in the collaborative learning, so lots of researches have been done in this area. In this paper, the n...

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Published in4th International Conference on e-Learning and e-Teaching (ICELET 2013) pp. 10 - 13
Main Authors M. Mahdi, Barati Jozan, Fattaneh, Taghiyareh
Format Conference Proceeding
LanguageEnglish
Published IEEE 01.02.2013
Subjects
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ISSN2163-6982
DOI10.1109/ICELET.2013.6681637

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Abstract Collaborative learning in traditional and e-learning environments has a significant influence on the student learning process. Forming appropriate groups of students is one of the important factors in the collaborative learning, so lots of researches have been done in this area. In this paper, the new algorithm is proposed for grouping of students that uses modified Pareto Optimal Set concept that is called Semi-Pareto Optimal Set. The main advantages of this algorithm is that it does not limit number of student attributes in forming the groups and can uses for both heterogeneous and homogeneous groups. The results indicate that the proposed algorithm has high quality in formation groups and formed groups that are efficient in two below criteria 1) intra-group fitness that is the difference between students of groups and 2) inter- group fitness that is similarity between formed groups.
AbstractList Collaborative learning in traditional and e-learning environments has a significant influence on the student learning process. Forming appropriate groups of students is one of the important factors in the collaborative learning, so lots of researches have been done in this area. In this paper, the new algorithm is proposed for grouping of students that uses modified Pareto Optimal Set concept that is called Semi-Pareto Optimal Set. The main advantages of this algorithm is that it does not limit number of student attributes in forming the groups and can uses for both heterogeneous and homogeneous groups. The results indicate that the proposed algorithm has high quality in formation groups and formed groups that are efficient in two below criteria 1) intra-group fitness that is the difference between students of groups and 2) inter- group fitness that is similarity between formed groups.
Author Fattaneh, Taghiyareh
M. Mahdi, Barati Jozan
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Snippet Collaborative learning in traditional and e-learning environments has a significant influence on the student learning process. Forming appropriate groups of...
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SubjectTerms Clustering algorithms
collaborative learning
Electronic learning
Federated learning
grouping of student
heterogeneous and homogeneous group
Heuristic algorithms
NP-hard problem
pareto optimal set
Pareto optimization
Teamwork
Technological innovation
Training
Vectors
Title A Semi-Pareto Optimal Set based algorithm for grouping of students
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