Fuzzy Clustering-Based Grouping for Mapping the Distribution of Student Success Data

M. Mustakim, Delvi Nur Aini, Ana Uzla Batubara, Moh. Erkamim, Legito Legito
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Abstract

Learning activities are the main activity in the overall teaching and learning process in schools. This is because whether or not the achievement of educational goals depends on how the learning process is carried out by students. The uneven level of student success in learning is one of the problems in the school's efforts to realize the vision and mission of SMKN 5 Pekanbaru in preparing skilled graduates to be able to work in certain sectors by the public interest and the industrial world. In this study, mapping and grouping student grade data was carried out using the Fuzzy C-Means algorithm to provide information to the school in making the right decisions and optimizing the learning process. Furthermore, clustering was carried out in several experiments K=3 to K=7, and obtained the best validity value tested with the Silhouette Index of 0.4277 located at K=5. Then the distribution of cluster 5 on student score data was obtained with details, namely cluster 1 with a capacity of 1 student, cluster 2 with a capacity of 27 students, cluster 3 with a capacity of 1 student, cluster 4 with a capacity of 10 students, cluster 5 with a capacity of 23 students.
基于模糊聚类的分组法绘制学生成功数据分布图
学习活动是学校整个教学过程中的主要活动。这是因为教育目标的实现与否取决于学生的学习过程。学生的学习成绩参差不齐是学校努力实现北干巴鲁第五高级中等技术学校的愿景和使命的问题之一,该校的愿景和使命是培养有技能的毕业生,使他们能够在某些部门从事符合公众利益和工业界要求的工作。本研究使用模糊 C-Means 算法对学生成绩数据进行映射和分组,为学校做出正确决策和优化学习过程提供信息。此外,在 K=3 至 K=7 的几次实验中进行了聚类,并在 K=5 处获得了最佳的有效性测试值,剪影指数为 0.4277。然后详细得出了第 5 聚类在学生分数数据上的分布情况,即第 1 聚类容纳 1 名学生,第 2 聚类容纳 27 名学生,第 3 聚类容纳 1 名学生,第 4 聚类容纳 10 名学生,第 5 聚类容纳 23 名学生。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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