数据挖掘预测学生毕业使用K-NEAREST方法PGRI MAHADEWA INDONESIA的案例研究

None I Putu Yogista Putra Atmaja, None I Nyoman Bagus Suweta Nugraha, None Ni Luh Gede Ambaradewi
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引用次数: 0

摘要

毕业是教育的一个重要里程碑,是确保高等教育认证的重要考核因素。KNN (K-Nearest Neighbor)算法基于学习数据对对象进行分类,训练数据集的数量是最小和最大的。该算法对模式进行归一化,计算欧几里得距离,从最小的欧几里得距离进行投票,确定分类结果。学生毕业预测模型使用KNN方法来帮助评估学生的毕业准确性和认证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
DATA MINING MEMPREDIKSI KELULUSAN MAHASISWA MENGGUNAKAN METODE K-NEAREST NEIGHBORS (KNN) STUDI KASUS UNIVERSITAS PGRI MAHADEWA INDONESIA
Graduation is a significant milestone in education, and it is a crucial assessment factor for ensuring higher education accreditation. The K-Nearest Neighbor (KNN) algorithm classifies objects based on learning data, with a minimum and maximum number of training datasets. The algorithm normalizes patterns, calculates Euclidean distance, votes from the smallest euclidean distance, and determines the classification results. The Student Graduation Prediction Model uses the KNN method to help assess students' graduation accuracy and accreditation.
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