Un enfoque de visualización espacio-temporal para la exploración de datos de concentración de PM10 en Lima Metropolitana
Descripción del Articulo
Lima is considered one of the cities with the highest air pollution in Latin America. Institutions such as DIGESA, PROTRANSPORTE and SENAMHI are in charge of permanently monitoring air quality; therefore, the air quality visualization system must manage large amounts of data of different concentrati...
| Autores: | , |
|---|---|
| Formato: | tesis de grado |
| Fecha de Publicación: | 2021 |
| Institución: | Universidad Peruana Unión |
| Repositorio: | UPEU-Tesis |
| Lenguaje: | inglés |
| OAI Identifier: | oai:repositorio.upeu.edu.pe:20.500.12840/4394 |
| Enlace del recurso: | http://repositorio.upeu.edu.pe/handle/20.500.12840/4394 |
| Nivel de acceso: | acceso abierto |
| Materia: | Air quality Spatio-temporal visualization Particulate matter DTW http://purl.org/pe-repo/ocde/ford#1.05.09 |
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| dc.title.en_ES.fl_str_mv |
Un enfoque de visualización espacio-temporal para la exploración de datos de concentración de PM10 en Lima Metropolitana |
| title |
Un enfoque de visualización espacio-temporal para la exploración de datos de concentración de PM10 en Lima Metropolitana |
| spellingShingle |
Un enfoque de visualización espacio-temporal para la exploración de datos de concentración de PM10 en Lima Metropolitana Encalada Malca, Alexandra Abigail Air quality Spatio-temporal visualization Particulate matter DTW http://purl.org/pe-repo/ocde/ford#1.05.09 |
| title_short |
Un enfoque de visualización espacio-temporal para la exploración de datos de concentración de PM10 en Lima Metropolitana |
| title_full |
Un enfoque de visualización espacio-temporal para la exploración de datos de concentración de PM10 en Lima Metropolitana |
| title_fullStr |
Un enfoque de visualización espacio-temporal para la exploración de datos de concentración de PM10 en Lima Metropolitana |
| title_full_unstemmed |
Un enfoque de visualización espacio-temporal para la exploración de datos de concentración de PM10 en Lima Metropolitana |
| title_sort |
Un enfoque de visualización espacio-temporal para la exploración de datos de concentración de PM10 en Lima Metropolitana |
| author |
Encalada Malca, Alexandra Abigail |
| author_facet |
Encalada Malca, Alexandra Abigail Cochachi Bustamante, Javier David |
| author_role |
author |
| author2 |
Cochachi Bustamante, Javier David |
| author2_role |
author |
| dc.contributor.advisor.fl_str_mv |
López Gonzales, Javier Linkolk |
| dc.contributor.author.fl_str_mv |
Encalada Malca, Alexandra Abigail Cochachi Bustamante, Javier David |
| dc.subject.en_ES.fl_str_mv |
Air quality Spatio-temporal visualization Particulate matter DTW |
| topic |
Air quality Spatio-temporal visualization Particulate matter DTW http://purl.org/pe-repo/ocde/ford#1.05.09 |
| dc.subject.ocde.en_ES.fl_str_mv |
http://purl.org/pe-repo/ocde/ford#1.05.09 |
| description |
Lima is considered one of the cities with the highest air pollution in Latin America. Institutions such as DIGESA, PROTRANSPORTE and SENAMHI are in charge of permanently monitoring air quality; therefore, the air quality visualization system must manage large amounts of data of different concentrations. In this study, a spatio-temporal visualization approach was developed for the exploration of data of the PM10 concentration in Metropolitan Lima, where the spatial behavior, at different time scales, of hourly concentrations of PM10 are analyzed using basic and specialized charts. The results show that the stations located to the east side of the metropolitan area had the highest concentrations, in contrast to the stations located in the center and north that reported better air quality. According to the temporal variation, the station with the highest average of biannual and annual PM10 was the HCH station; for this season, the highest PM10 concentrations were registered in 2018, during the summer, highlighting the month of March with daily averages that reached 435 μg/m3. During the study period, the CRB was the station that recorded the lowest concentrations and the only one that met the Environmental Quality Standard for air quality. The proposed approach exposes a sequence of steps for the elaboration of charts with increasingly specific time periods according to their relevance, and statistical analysis, such as the dynamic temporal correlation, that allows to obtain a detailed visualization of the spatio- temporal variations of PM10 concentrations; furthermore, it was concluded that the meteorological variables do not indicate a causal relationship with respect to PM10 levels, but rather that the concentrations of particulate material are related to the urban characteristics of each district. |
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2021 |
| dc.date.accessioned.none.fl_str_mv |
2021-04-27T17:15:33Z |
| dc.date.available.none.fl_str_mv |
2021-04-27T17:15:33Z |
| dc.date.issued.fl_str_mv |
2021-04-13 |
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info:eu-repo/semantics/bachelorThesis |
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bachelorThesis |
| dc.identifier.uri.none.fl_str_mv |
http://repositorio.upeu.edu.pe/handle/20.500.12840/4394 |
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http://repositorio.upeu.edu.pe/handle/20.500.12840/4394 |
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eng |
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eng |
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SUNEDU |
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info:eu-repo/semantics/openAccess |
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http://creativecommons.org/licenses/by-nc-sa/3.0/es/ |
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openAccess |
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http://creativecommons.org/licenses/by-nc-sa/3.0/es/ |
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application/pdf |
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Universidad Peruana Unión |
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PE |
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López Gonzales, Javier LinkolkEncalada Malca, Alexandra AbigailCochachi Bustamante, Javier David2021-04-27T17:15:33Z2021-04-27T17:15:33Z2021-04-13http://repositorio.upeu.edu.pe/handle/20.500.12840/4394Lima is considered one of the cities with the highest air pollution in Latin America. Institutions such as DIGESA, PROTRANSPORTE and SENAMHI are in charge of permanently monitoring air quality; therefore, the air quality visualization system must manage large amounts of data of different concentrations. In this study, a spatio-temporal visualization approach was developed for the exploration of data of the PM10 concentration in Metropolitan Lima, where the spatial behavior, at different time scales, of hourly concentrations of PM10 are analyzed using basic and specialized charts. The results show that the stations located to the east side of the metropolitan area had the highest concentrations, in contrast to the stations located in the center and north that reported better air quality. According to the temporal variation, the station with the highest average of biannual and annual PM10 was the HCH station; for this season, the highest PM10 concentrations were registered in 2018, during the summer, highlighting the month of March with daily averages that reached 435 μg/m3. During the study period, the CRB was the station that recorded the lowest concentrations and the only one that met the Environmental Quality Standard for air quality. The proposed approach exposes a sequence of steps for the elaboration of charts with increasingly specific time periods according to their relevance, and statistical analysis, such as the dynamic temporal correlation, that allows to obtain a detailed visualization of the spatio- temporal variations of PM10 concentrations; furthermore, it was concluded that the meteorological variables do not indicate a causal relationship with respect to PM10 levels, but rather that the concentrations of particulate material are related to the urban characteristics of each district.LIMAEscuela Profesional de Ingeniería AmbientalGestión Ambientalapplication/pdfengUniversidad Peruana UniónPEinfo:eu-repo/semantics/openAccesshttp://creativecommons.org/licenses/by-nc-sa/3.0/es/Air qualitySpatio-temporal visualizationParticulate matterDTWhttp://purl.org/pe-repo/ocde/ford#1.05.09Un enfoque de visualización espacio-temporal para la exploración de datos de concentración de PM10 en Lima Metropolitanainfo:eu-repo/semantics/bachelorThesisreponame:UPEU-Tesisinstname:Universidad Peruana Unióninstacron:UPEUSUNEDUIngeniería AmbientalUniversidad Peruana Unión. 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La información contenida en este registro es de entera responsabilidad de la institución que gestiona el repositorio institucional donde esta contenido este documento o set de datos. El CONCYTEC no se hace responsable por los contenidos (publicaciones y/o datos) accesibles a través del Repositorio Nacional Digital de Ciencia, Tecnología e Innovación de Acceso Abierto (ALICIA).