MPD: A Meteorological and Pollution Dataset: A Comprehensive Study of Machine and Deep Learning Methods for Air Pollution Forecasting

被引:0
作者
Abalo-Garcia, Alejandra [1 ]
Hernandez-Garcia, Sergio [1 ]
Ramirez, Ivan [1 ]
Schiavi, Emanuele [2 ]
机构
[1] Univ Rey Juan Carlos, Comp Sci & Stat Dept, Madrid 28933, Spain
[2] Univ Rey Juan Carlos, Appl Math Mat Sci & Engn & Elect Technol Dept, Madrid 28942, Spain
来源
IEEE ACCESS | 2025年 / 13卷
关键词
Hidden Markov models; Atmospheric modeling; Predictive models; Europe; Urban areas; Air pollution; Indexes; Nitrogen; Deep learning; Data models; Air quality prediction; deep learning; machine learning; neural networks; pollution prediction; TIME-SERIES ANALYSIS; PREDICTION; SARIMA; MODEL; AREA;
D O I
10.1109/ACCESS.2025.3547038
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Air pollution is a significant global issue, being one of the leading causes of chronic diseases affecting the respiratory and neurological systems, and resulting in millions of deaths each year. Additionally, the scarcity of air quality sensors, due to their high cost, limits the availability of accurate data. In this study, we present a dataset that combines air quality and meteorological variables, with data sourced from the historical records of the Community of Madrid. Furthermore, we propose several baseline methods for this dataset. We then validate these baseline methods using another reference dataset, outperforming previous state-of-the-art methods. All the code and data is available in https://github.com/capo-urjc/MPD.git.
引用
收藏
页码:41282 / 41299
页数:18
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