基于机器学习的城市空气质量分析与预测

K. Nandini, G. Fathima
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引用次数: 8

摘要

空气污染是影响环境中每一个生命质量的影响因素之一。监测空气污染是一个严峻的问题。在这项工作中,空气污染物预测是使用机器学习技术完成的。K Means算法用于聚类,不同的分类器如多项式逻辑回归和决策树算法用于分析基于R编程语言中可用数据的结果。基于错误率和准确率对分类器得到的结果进行比较。与决策树模型相比,多项逻辑回归模型具有较高的精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Urban Air Quality Analysis and Prediction Using Machine Learning
Air pollution is one of the influential factors that can affect the quality of every living being in the environment. Monitoring the air pollution is a scathing issue. In this work, air pollutant prediction is done using Machine learning techniques. K Means algorithm is used for clustering and different classifiers such as Multinominal Logistic Regression and Decision Tree algorithms are used to analyze the results based on available data in the R programming language. The results obtained using classifiers are compared based on error rate and accuracy. The multinominal logistic regression model has given high accuracy compared to decision tree model.
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