基于学习过程的积极参与,k -均值算法的实现

Falih Pramataning Dewi, Priskila Siwi Aryni, Yuyun Umaidah
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引用次数: 2

摘要

通过各种互动和学习经历的学习过程对发展学生活动以提高教育质量有着相当大的影响。教师是决定学生在实施过程中成功与否的最重要因素。学生学习质量和积极性的发展是学习过程中成功的一个基本要素,当然,并非所有学生都能快速理解材料。这是学校在提高教育质量方面所关心的问题。本研究的目的是利用成绩与推荐参加比赛或潜在奖学金获得者的学生活动水平之间的相关性,对SMP ABC学生的活动水平进行分类。我们在这项研究中使用的数据来源来自州立初中ABC,该数据由几个变量组成,包括学生出勤率数据、学业成绩、心理运动成绩和情感价值观。本研究所使用的方法是使用K-means算法的聚类方法。这项研究的结果可以分为3个集群,其中集群0表示活跃学生多达30名,集群1表示不活跃学生多达8名,集群2表示不太活跃的学生多达21名。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Implementasi Algoritma K-Means Clustering Seleksi Siswa Berprestasi Berdasarkan Keaktifan dalam Proses Pembelajaran
The learning process through various interactions and learning experiences has a considerable influence on developing student activity to improve the quality of education. The teacher is the most important factor in determining the success of students in the implementation of the process. The development of the quality and activeness of students in learning is a basic element as a form of success in the learning process which of course not all students have a level of speed in understanding material. This is a concern for schools in improving the quality of education. The purpose of this study was to classify the level of activity of students at SMP ABC using the correlation between grades and the level of student activity who would be recommended to take part in competitions or prospective scholarship recipients. The data source that we used in this study came from the State Junior High School ABC which consists of several variables, including student attendance data, academic scores, psychomotor scores, and affective values. The method used in this research is the Clustering method with the K-means Algorithm. The results of this study can be grouped into 3 clusters including cluster 0 indicating active students as many as 30 students, cluster 1 showing inactive students as many as 8 students, and cluster 2 indicating less active students as many as 21 students.
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