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Air Quality Assessment and Pollution Forecasting using Recurrent Artificial Neural Networks in Metropolitan Lima-Peru

Author(s)
Chardin Hoyos Cordova  
Manuel Niño Lopez Portocarrero
Rodrigo Salas
Romina Torres
Paulo Canas Rodrigues
Javier Linkolk López‐Gonzales  
Date Issued
9 de septiembre de 2021
Type
Preprint
DOI
10.21203/rs.3.rs-869832/v1
Abstract
Abstract The prediction of air pollution is of great importance in highly populated areas because it has a direct impact on both the management of the city's economic activity and the health of its inhabitants. In this work, the spatio-temporal behavior of air quality in Metropolitan Lima was evaluated and predicted using the recurrent artificial neural network known as Long-Short Term Memory networks (LSTM). The LSTM was implemented for the hourly prediction of PM10 based on the past values of this pollutant and three meteorological variables obtained from five monitoring stations. The model was evaluated under two validation schemes: the hold-out (HO) and the blocked-nested cross-validation (BNCV). The simulation results show that periods of low PM10 concentration are predicted with high precision. Whereas, for periods of high contamination, the LSTM network with BNCV has better predictability performance. In conclusion, recurrent artificial neural networks with BNCV adapt more precisely to critical pollution episodes and have better performance to forecast this type of environmental data, and can also be extrapolated to other pollutants.
Keywords

Metropolitan area

Predictability

Artificial neural net...

Air quality index

Pollution

Recurrent neural netw...

Pollutant

Air pollution

Environmental science...

Computer science

Meteorology

Machine learning

Geography

Statistics

Mathematics

Biology

Ecology

Archaeology

Organic chemistry

Chemistry

Metropolitan area

Predictability

Artificial neural net...

Air quality index

Pollution

Recurrent neural netw...

Pollutant

Air pollution

Environmental science...

Computer science

Meteorology

Machine learning

Geography

Statistics

Mathematics

Physical Sciences Env...

Physical Sciences Env...

Metrics
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