Seasonal hydrological and meteorological time series

Time series models are often used in hydrology and meteorology to model streamflows series in order to make forecasting and generate synthetic series which are inputs for the analysis of complex water resources systems. In this paper we introduce a new modeling approach for hydrologic and meteorolog...

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Autores:
Cepeda Cuervo, Edilberto
Achcar, Jorge Alberto
Andrade, Marinho G.
Tipo de recurso:
Work document
Fecha de publicación:
2019
Institución:
Universidad Nacional de Colombia
Repositorio:
Universidad Nacional de Colombia
Idioma:
spa
OAI Identifier:
oai:repositorio.unal.edu.co:unal/11821
Acceso en línea:
https://repositorio.unal.edu.co/handle/unal/11821
http://bdigital.unal.edu.co/9364/
Palabra clave:
33 Economía / Economics
55 Ciencias de la tierra / Earth sciences and geology
Hydrology time series data
Meteorological time series
Seasonal time series
Rights
openAccess
License
Atribución-NoComercial 4.0 Internacional
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spelling Atribución-NoComercial 4.0 InternacionalDerechos reservados - Universidad Nacional de Colombiahttp://creativecommons.org/licenses/by-nc/4.0/info:eu-repo/semantics/openAccesshttp://purl.org/coar/access_right/c_abf2Cepeda Cuervo, Edilberto8f2ae6e2-1778-4f83-a496-0d49efcbe66a300Achcar, Jorge Alberto99c161ab-6e01-4ba5-bf64-a6528c49b480300Andrade, Marinho G.d641d233-d05c-4ee4-8df5-4e1c6a209ac13002019-06-25T00:31:59Z2019-06-25T00:31:59Zhttps://repositorio.unal.edu.co/handle/unal/11821http://bdigital.unal.edu.co/9364/Time series models are often used in hydrology and meteorology to model streamflows series in order to make forecasting and generate synthetic series which are inputs for the analysis of complex water resources systems. In this paper we introduce a new modeling approach for hydrologic and meteorological time series assuming a continuous distribution for the data, where both the conditional mean and conditional variance parameters are modeled. Bayesian methods using standard MCMC (Markov Chain Monte Carlo Methods) are used to simulate samples for the joint posterior distribution of interest. Two applications to real data set illustrate the proposed methodology, assuming that the observations come from a normal, a gamma or a beta distribution. A first example is given by a time series of monthly averages of natural streamflows, measured in the year period ranging from 1931 to 2010 in Furnas hydroelectric dam, Brazil. A second example is given with a time series of 313 air humidity data measured in a weather station of Rio Claro, a Brazilian city located in southeastern of Brazil. These applications motivate us to introduce new classes of models to analyze hydrological and meteorological time series.application/pdfspaUniversidad Nacional de Colombia Sede Bogotá Facultad de Ciencias Departamento de EstadísticaDepartamento de EstadísticaCepeda Cuervo, Edilberto and Achcar, Jorge Alberto and Andrade, Marinho G. Seasonal hydrological and meteorological time series. Reporte técnico. Sin Definir. (No publicado)33 Economía / Economics55 Ciencias de la tierra / Earth sciences and geologyHydrology time series dataMeteorological time seriesSeasonal time seriesSeasonal hydrological and meteorological time seriesDocumento de trabajoinfo:eu-repo/semantics/workingPaperinfo:eu-repo/semantics/drafthttp://purl.org/coar/resource_type/c_8042http://purl.org/coar/version/c_b1a7d7d4d402bcceTexthttp://purl.org/redcol/resource_type/WPORIGINALNorm-Gamma-Beta-Time-Series.pdfapplication/pdf239226https://repositorio.unal.edu.co/bitstream/unal/11821/1/Norm-Gamma-Beta-Time-Series.pdffb62dd66e791d300690cd03a891063bbMD51THUMBNAILNorm-Gamma-Beta-Time-Series.pdf.jpgNorm-Gamma-Beta-Time-Series.pdf.jpgGenerated Thumbnailimage/jpeg5091https://repositorio.unal.edu.co/bitstream/unal/11821/2/Norm-Gamma-Beta-Time-Series.pdf.jpg6975ae6fdd65b8614d4ed50b590a6544MD52unal/11821oai:repositorio.unal.edu.co:unal/118212023-09-20 23:05:53.676Repositorio Institucional Universidad Nacional de Colombiarepositorio_nal@unal.edu.co
dc.title.spa.fl_str_mv Seasonal hydrological and meteorological time series
title Seasonal hydrological and meteorological time series
spellingShingle Seasonal hydrological and meteorological time series
33 Economía / Economics
55 Ciencias de la tierra / Earth sciences and geology
Hydrology time series data
Meteorological time series
Seasonal time series
title_short Seasonal hydrological and meteorological time series
title_full Seasonal hydrological and meteorological time series
title_fullStr Seasonal hydrological and meteorological time series
title_full_unstemmed Seasonal hydrological and meteorological time series
title_sort Seasonal hydrological and meteorological time series
dc.creator.fl_str_mv Cepeda Cuervo, Edilberto
Achcar, Jorge Alberto
Andrade, Marinho G.
dc.contributor.author.spa.fl_str_mv Cepeda Cuervo, Edilberto
Achcar, Jorge Alberto
Andrade, Marinho G.
dc.subject.ddc.spa.fl_str_mv 33 Economía / Economics
55 Ciencias de la tierra / Earth sciences and geology
topic 33 Economía / Economics
55 Ciencias de la tierra / Earth sciences and geology
Hydrology time series data
Meteorological time series
Seasonal time series
dc.subject.proposal.spa.fl_str_mv Hydrology time series data
Meteorological time series
Seasonal time series
description Time series models are often used in hydrology and meteorology to model streamflows series in order to make forecasting and generate synthetic series which are inputs for the analysis of complex water resources systems. In this paper we introduce a new modeling approach for hydrologic and meteorological time series assuming a continuous distribution for the data, where both the conditional mean and conditional variance parameters are modeled. Bayesian methods using standard MCMC (Markov Chain Monte Carlo Methods) are used to simulate samples for the joint posterior distribution of interest. Two applications to real data set illustrate the proposed methodology, assuming that the observations come from a normal, a gamma or a beta distribution. A first example is given by a time series of monthly averages of natural streamflows, measured in the year period ranging from 1931 to 2010 in Furnas hydroelectric dam, Brazil. A second example is given with a time series of 313 air humidity data measured in a weather station of Rio Claro, a Brazilian city located in southeastern of Brazil. These applications motivate us to introduce new classes of models to analyze hydrological and meteorological time series.
publishDate 2019
dc.date.accessioned.spa.fl_str_mv 2019-06-25T00:31:59Z
dc.date.available.spa.fl_str_mv 2019-06-25T00:31:59Z
dc.type.spa.fl_str_mv Documento de trabajo
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dc.type.version.spa.fl_str_mv info:eu-repo/semantics/draft
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url https://repositorio.unal.edu.co/handle/unal/11821
http://bdigital.unal.edu.co/9364/
dc.language.iso.spa.fl_str_mv spa
language spa
dc.relation.ispartof.spa.fl_str_mv Universidad Nacional de Colombia Sede Bogotá Facultad de Ciencias Departamento de Estadística
Departamento de Estadística
dc.relation.references.spa.fl_str_mv Cepeda Cuervo, Edilberto and Achcar, Jorge Alberto and Andrade, Marinho G. Seasonal hydrological and meteorological time series. Reporte técnico. Sin Definir. (No publicado)
dc.rights.spa.fl_str_mv Derechos reservados - Universidad Nacional de Colombia
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dc.rights.license.spa.fl_str_mv Atribución-NoComercial 4.0 Internacional
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dc.rights.accessrights.spa.fl_str_mv info:eu-repo/semantics/openAccess
rights_invalid_str_mv Atribución-NoComercial 4.0 Internacional
Derechos reservados - Universidad Nacional de Colombia
http://creativecommons.org/licenses/by-nc/4.0/
http://purl.org/coar/access_right/c_abf2
eu_rights_str_mv openAccess
dc.format.mimetype.spa.fl_str_mv application/pdf
institution Universidad Nacional de Colombia
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