利用机器学习分析印尼传统食品的营养成分

Federico Anggito Ryseno, Fito Mardianto, Yoga Prasetyo Wibowo, Faishal Nugraha, Eka Kusuma Pratama
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引用次数: 0

摘要

本研究旨在利用聚类方法分析印尼传统食品的营养成分。在 RapidMiner Studio 的帮助下,分析了 1 346 种印尼食品的营养数据,包括热量、蛋白质、脂肪和碳水化合物。聚类结果产生了三大类:(1) 低营养食物,(2) 高营养食物,(3) 中等营养食物。通过统计分析,发现在每个属性中具有特定营养价值的食品数量存在差异。这项研究有助于更好地了解公众经常食用的印尼传统食品的营养成分。希望这项研究的结果能够帮助人们选择适合自己身体需要的食物,并为鼓励社会形成更健康的生活方式做出贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nutritional Analysis Of Traditional Indonesian Food Using Machine Learning
This research aims to analyze the nutritional composition of traditional Indonesian food using the clustering method. Nutritional data from 1,346 types of Indonesian food, including calories, protein, fat and carbohydrates, was analyzed with the help of RapidMiner Studio. The clustering results produced three main clusters: (1) foods low in nutrients, (2) foods high in nutrients, and (3) foods with moderate nutrients. Through statistical analysis, variations were found in the number of foods with certain nutritional values in each attribute. This research provides better insight into the nutritional composition of traditional Indonesian foods that are frequently consumed by the public. It is hoped that the results of this research can help individuals choose foods that suit their body's needs, as well as contribute to encouraging a healthier lifestyle in society.
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