Prediction of Mental Health of Elementary School (SD) Students using the Decision Tree Algorithm with K-Fold CV testing in Bone Bolango Regency, Gorontalo Province.

Salahuddin Liputo, Frangky Tupamahu
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Abstract

Mental health is a fundamental component of the WHO definition of health, which means not only being free from disease but also being physically, mentally and socially healthy. Currently, mental health has become a major issue in modern society because if it is good it will enable us to realize our own potential, overcome the normal stresses of life, work productively, and be able to contribute to the society in which we live. In Indonesia, problems related to mental health are related to the lack of mental health detection tools. Meanwhile abroad, much research has been developed regarding mental health detection based on innovative technology using Machine Learning. This research aims to predict mental health using the Social Emotional Health Survey-Secondary (SEHS-S) as a prediction evaluation criterion using Machine Learning with the Decision Tree algorithm method with K-Fold CV testing. The sample in this research was elementary school students in Bone Bolango Regency, Gorontalo Province.  
使用决策树算法和 K-Fold CV 测试预测戈伦塔洛省 Bone Bolango 地区小学生(SD)的心理健康。
心理健康是世界卫生组织健康定义的一个基本组成部分,它不仅意味着没有疾病,还意味着身体、心理和社会健康。目前,心理健康已成为现代社会的一个重要问题,因为如果心理健康良好,我们就能发挥自己的潜能,克服正常的生活压力,富有成效地工作,并能为我们生活的社会做出贡献。在印度尼西亚,与心理健康有关的问题与缺乏心理健康检测工具有关。而在国外,基于机器学习的创新技术已经开展了大量有关心理健康检测的研究。本研究旨在以社会情感健康调查-中学(SEHS-S)为预测评估标准,利用机器学习的决策树算法方法和 K-Fold CV 测试来预测心理健康。本研究的样本是戈伦塔洛省 Bone Bolango 地区的小学生。
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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