A Study on Integration IRT with K-means for Learning Ability Clustering
碩士 === 中華大學 === 資訊管理學系(所) === 97 === Examination plays a role to judge learner’s learning behavior and achievement in evaluation. In most cases, good grade means good learner. Teachers do not realize what learners know and how much they understand. Learners with poor grades are becoming giving up th...
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ndltd-TW-097CHPI53960262015-11-13T04:09:14Z http://ndltd.ncl.edu.tw/handle/15557989233303175960 A Study on Integration IRT with K-means for Learning Ability Clustering 以IRT結合K-means分群法運用於學生能力分群 Mao-Fan Li 李茂帆 碩士 中華大學 資訊管理學系(所) 97 Examination plays a role to judge learner’s learning behavior and achievement in evaluation. In most cases, good grade means good learner. Teachers do not realize what learners know and how much they understand. Learners with poor grades are becoming giving up them easily. Modern evaluation, diagnoses students with learning ability not grade. There are two assumptions. First, the difficulty level of materials is suitable for the students. Second, the difficulty level of question matches the teaching material. The main purpose is diagnosing the student’s ability. This research calculates the student’s ability from online-test system with Item Response Theory (IRT). We integrate K-means to cluster learner’s ability which is calculated from item response theory. Teachers can modify the learning material adaptively and teach students in accordance with their aptitude in their courses. Wen-Chih Chang 張文智 2009 學位論文 ; thesis 0 zh-TW |
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碩士 === 中華大學 === 資訊管理學系(所) === 97 === Examination plays a role to judge learner’s learning behavior and achievement in evaluation. In most cases, good grade means good learner. Teachers do not realize what learners know and how much they understand. Learners with poor grades are becoming giving up them easily. Modern evaluation, diagnoses students with learning ability not grade. There are two assumptions. First, the difficulty level of materials is suitable for the students. Second, the difficulty level of question matches the teaching material. The main purpose is diagnosing the student’s ability. This research calculates the student’s ability from online-test system with Item Response Theory (IRT). We integrate K-means to cluster learner’s ability which is calculated from item response theory. Teachers can modify the learning material adaptively and teach students in accordance with their aptitude in their courses.
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author2 |
Wen-Chih Chang |
author_facet |
Wen-Chih Chang Mao-Fan Li 李茂帆 |
author |
Mao-Fan Li 李茂帆 |
spellingShingle |
Mao-Fan Li 李茂帆 A Study on Integration IRT with K-means for Learning Ability Clustering |
author_sort |
Mao-Fan Li |
title |
A Study on Integration IRT with K-means for Learning Ability Clustering |
title_short |
A Study on Integration IRT with K-means for Learning Ability Clustering |
title_full |
A Study on Integration IRT with K-means for Learning Ability Clustering |
title_fullStr |
A Study on Integration IRT with K-means for Learning Ability Clustering |
title_full_unstemmed |
A Study on Integration IRT with K-means for Learning Ability Clustering |
title_sort |
study on integration irt with k-means for learning ability clustering |
publishDate |
2009 |
url |
http://ndltd.ncl.edu.tw/handle/15557989233303175960 |
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