Developing a methodology to predict PM10 concentrations in urban areas using Generalized Linear Models.

Detalhes bibliográficos
Autor(a) principal: Garcia, João
Data de Publicação: 2016
Outros Autores: Teodoro, F., Cerdeira, Rita, Coelho, Luis Manuel Rodrigues, Kumar, Prashant, Carvalho, M. G.
Tipo de documento: Artigo
Idioma: eng
Título da fonte: Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)
Texto Completo: http://hdl.handle.net/10400.26/22694
Resumo: A methodology to predict PM10 concentrations in urban outdoor environments is developed based on the generalized linear models (GLMs). The methodology is based on the relationship developed between atmospheric concentrations of air pollutants (i.e. CO, NO2,NOx, VOCs, SO2) and meteorological variables (i.e. ambient temperature, relative humidity (RH) and wind speed) for acity (Barreiro) of Portugal. The model uses air pollution and meteorological data from thePortuguese monitoring air quality station networks. The developed GLM considers PM10 concentrations as a dependent variable, and both the gaseous pollutants and meteorological variables as explanatory independent variables. A logarithmic link function was considered with a Poisson probability distribution. Particular attention was given to cases with air temperatures both below and above 25°C. The best performance for modelled results against the measured data was achieved for the model with values of air temperature above 25°C compared with themodel considering all ranges of air temperatures and with the model considering only temperature below 25°C. The model was also tested with similar data from another Portuguese city, Oporto, and results found to behave similarly. It is concluded that this model and the methodology could be adopted for other cities to predict PM10 concentrations when these data are not available by measurements from air quality monitoring stations or other acquisition means
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spelling Developing a methodology to predict PM10 concentrations in urban areas using Generalized Linear Models.A methodology to predict PM10 concentrations in urban outdoor environments is developed based on the generalized linear models (GLMs). The methodology is based on the relationship developed between atmospheric concentrations of air pollutants (i.e. CO, NO2,NOx, VOCs, SO2) and meteorological variables (i.e. ambient temperature, relative humidity (RH) and wind speed) for acity (Barreiro) of Portugal. The model uses air pollution and meteorological data from thePortuguese monitoring air quality station networks. The developed GLM considers PM10 concentrations as a dependent variable, and both the gaseous pollutants and meteorological variables as explanatory independent variables. A logarithmic link function was considered with a Poisson probability distribution. Particular attention was given to cases with air temperatures both below and above 25°C. The best performance for modelled results against the measured data was achieved for the model with values of air temperature above 25°C compared with themodel considering all ranges of air temperatures and with the model considering only temperature below 25°C. The model was also tested with similar data from another Portuguese city, Oporto, and results found to behave similarly. It is concluded that this model and the methodology could be adopted for other cities to predict PM10 concentrations when these data are not available by measurements from air quality monitoring stations or other acquisition meansRepositório ComumGarcia, JoãoTeodoro, F.Cerdeira, RitaCoelho, Luis Manuel RodriguesKumar, PrashantCarvalho, M. G.2018-05-03T09:02:33Z20162016-01-01T00:00:00Zinfo:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/articleapplication/pdfhttp://hdl.handle.net/10400.26/22694engGarcia, J.,Teodoro,F., Cerdeira, R., Coelho, L. M. R., Kumar, P. & Carvalho, M. G. (2016). Developing a methodology to predict PM10 concentrations in urban areas using Generalized Linear Models. Environmental Technology, 2016.0959-333010.1080/09593330.2016.1149228metadata only accessinfo:eu-repo/semantics/openAccessreponame:Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)instname:Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informaçãoinstacron:RCAAP2024-03-03T03:15:37Zoai:comum.rcaap.pt:10400.26/22694Portal AgregadorONGhttps://www.rcaap.pt/oai/openaireopendoar:71602024-03-20T02:07:23.942013Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos) - Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informaçãofalse
dc.title.none.fl_str_mv Developing a methodology to predict PM10 concentrations in urban areas using Generalized Linear Models.
title Developing a methodology to predict PM10 concentrations in urban areas using Generalized Linear Models.
spellingShingle Developing a methodology to predict PM10 concentrations in urban areas using Generalized Linear Models.
Garcia, João
title_short Developing a methodology to predict PM10 concentrations in urban areas using Generalized Linear Models.
title_full Developing a methodology to predict PM10 concentrations in urban areas using Generalized Linear Models.
title_fullStr Developing a methodology to predict PM10 concentrations in urban areas using Generalized Linear Models.
title_full_unstemmed Developing a methodology to predict PM10 concentrations in urban areas using Generalized Linear Models.
title_sort Developing a methodology to predict PM10 concentrations in urban areas using Generalized Linear Models.
author Garcia, João
author_facet Garcia, João
Teodoro, F.
Cerdeira, Rita
Coelho, Luis Manuel Rodrigues
Kumar, Prashant
Carvalho, M. G.
author_role author
author2 Teodoro, F.
Cerdeira, Rita
Coelho, Luis Manuel Rodrigues
Kumar, Prashant
Carvalho, M. G.
author2_role author
author
author
author
author
dc.contributor.none.fl_str_mv Repositório Comum
dc.contributor.author.fl_str_mv Garcia, João
Teodoro, F.
Cerdeira, Rita
Coelho, Luis Manuel Rodrigues
Kumar, Prashant
Carvalho, M. G.
description A methodology to predict PM10 concentrations in urban outdoor environments is developed based on the generalized linear models (GLMs). The methodology is based on the relationship developed between atmospheric concentrations of air pollutants (i.e. CO, NO2,NOx, VOCs, SO2) and meteorological variables (i.e. ambient temperature, relative humidity (RH) and wind speed) for acity (Barreiro) of Portugal. The model uses air pollution and meteorological data from thePortuguese monitoring air quality station networks. The developed GLM considers PM10 concentrations as a dependent variable, and both the gaseous pollutants and meteorological variables as explanatory independent variables. A logarithmic link function was considered with a Poisson probability distribution. Particular attention was given to cases with air temperatures both below and above 25°C. The best performance for modelled results against the measured data was achieved for the model with values of air temperature above 25°C compared with themodel considering all ranges of air temperatures and with the model considering only temperature below 25°C. The model was also tested with similar data from another Portuguese city, Oporto, and results found to behave similarly. It is concluded that this model and the methodology could be adopted for other cities to predict PM10 concentrations when these data are not available by measurements from air quality monitoring stations or other acquisition means
publishDate 2016
dc.date.none.fl_str_mv 2016
2016-01-01T00:00:00Z
2018-05-03T09:02:33Z
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.driver.fl_str_mv info:eu-repo/semantics/article
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status_str publishedVersion
dc.identifier.uri.fl_str_mv http://hdl.handle.net/10400.26/22694
url http://hdl.handle.net/10400.26/22694
dc.language.iso.fl_str_mv eng
language eng
dc.relation.none.fl_str_mv Garcia, J.,Teodoro,F., Cerdeira, R., Coelho, L. M. R., Kumar, P. & Carvalho, M. G. (2016). Developing a methodology to predict PM10 concentrations in urban areas using Generalized Linear Models. Environmental Technology, 2016.
0959-3330
10.1080/09593330.2016.1149228
dc.rights.driver.fl_str_mv metadata only access
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