Grouping Students for Maximizing Learning from Peers
Grouping Students for Maximizing Learning from Peers
复制标题
对学生进行分组,以最大限度地向同龄人学习
DOI:
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发表时间:
2017
期刊:
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通讯作者:
Narasimha Murty Musti
中科院分区:
文献类型:
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作者:
R. Agrawal;Sharad Nandanwar;Narasimha Murty Musti
We study the problem of partitioning a class of N students into k groups of n students each ( N = k × n ), such that their learning from peer interactions is maximized. In our formalization of the problem, any student is able to increase his score in the subject the class is studying up to the score of the student who is at p -percentile among his higher ability peers. In contrast, the past work presumed that only students with score below the group mean may increase their score. We give a partitioning algorithm that maximizes total gain summed over all the students for any value of p such that 100 / (100 − p ) is integer valued. The time complexity of the proposed algorithm is only O ( N log N ). We also present experimental results using real-life data that show the superiority of the proposed algorithm over current strategies.