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Urban-Hazard Risk Analysis: Mapping of Heat-Related Risks in the Elderly in Major Italian Cities

BACKGROUND: Short-term impacts of high temperatures on the elderly are well known. Even though Italy has the highest proportion of elderly citizens in Europe, there is a lack of information on spatial heat-related elderly risks. OBJECTIVES: Development of high-resolution, heat-related urban risk map...

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Autores principales: Morabito, Marco, Crisci, Alfonso, Gioli, Beniamino, Gualtieri, Giovanni, Toscano, Piero, Di Stefano, Valentina, Orlandini, Simone, Gensini, Gian Franco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4436225/
https://www.ncbi.nlm.nih.gov/pubmed/25985204
http://dx.doi.org/10.1371/journal.pone.0127277
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author Morabito, Marco
Crisci, Alfonso
Gioli, Beniamino
Gualtieri, Giovanni
Toscano, Piero
Di Stefano, Valentina
Orlandini, Simone
Gensini, Gian Franco
author_facet Morabito, Marco
Crisci, Alfonso
Gioli, Beniamino
Gualtieri, Giovanni
Toscano, Piero
Di Stefano, Valentina
Orlandini, Simone
Gensini, Gian Franco
author_sort Morabito, Marco
collection PubMed
description BACKGROUND: Short-term impacts of high temperatures on the elderly are well known. Even though Italy has the highest proportion of elderly citizens in Europe, there is a lack of information on spatial heat-related elderly risks. OBJECTIVES: Development of high-resolution, heat-related urban risk maps regarding the elderly population (≥65). METHODS: A long time-series (2001–2013) of remote sensing MODIS data, averaged over the summer period for eleven major Italian cities, were downscaled to obtain high spatial resolution (100 m) daytime and night-time land surface temperatures (LST). LST was estimated pixel-wise by applying two statistical model approaches: 1) the Linear Regression Model (LRM); 2) the Generalized Additive Model (GAM). Total and elderly population density data were extracted from the Joint Research Centre population grid (100 m) from the 2001 census (Eurostat source), and processed together using “Crichton’s Risk Triangle” hazard-risk methodology for obtaining a Heat-related Elderly Risk Index (HERI). RESULTS: The GAM procedure allowed for improved daytime and night-time LST estimations compared to the LRM approach. High-resolution maps of daytime and night-time HERI levels were developed for inland and coastal cities. Urban areas with the hazardous HERI level (very high risk) were not necessarily characterized by the highest temperatures. The hazardous HERI level was generally localized to encompass the city-centre in inland cities and the inner area in coastal cities. The two most dangerous HERI levels were greater in the coastal rather than inland cities. CONCLUSIONS: This study shows the great potential of combining geospatial technologies and spatial demographic characteristics within a simple and flexible framework in order to provide high-resolution urban mapping of daytime and night-time HERI. In this way, potential areas for intervention are immediately identified with up-to-street level details. This information could support public health operators and facilitate coordination for heat-related emergencies.
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spelling pubmed-44362252015-05-27 Urban-Hazard Risk Analysis: Mapping of Heat-Related Risks in the Elderly in Major Italian Cities Morabito, Marco Crisci, Alfonso Gioli, Beniamino Gualtieri, Giovanni Toscano, Piero Di Stefano, Valentina Orlandini, Simone Gensini, Gian Franco PLoS One Research Article BACKGROUND: Short-term impacts of high temperatures on the elderly are well known. Even though Italy has the highest proportion of elderly citizens in Europe, there is a lack of information on spatial heat-related elderly risks. OBJECTIVES: Development of high-resolution, heat-related urban risk maps regarding the elderly population (≥65). METHODS: A long time-series (2001–2013) of remote sensing MODIS data, averaged over the summer period for eleven major Italian cities, were downscaled to obtain high spatial resolution (100 m) daytime and night-time land surface temperatures (LST). LST was estimated pixel-wise by applying two statistical model approaches: 1) the Linear Regression Model (LRM); 2) the Generalized Additive Model (GAM). Total and elderly population density data were extracted from the Joint Research Centre population grid (100 m) from the 2001 census (Eurostat source), and processed together using “Crichton’s Risk Triangle” hazard-risk methodology for obtaining a Heat-related Elderly Risk Index (HERI). RESULTS: The GAM procedure allowed for improved daytime and night-time LST estimations compared to the LRM approach. High-resolution maps of daytime and night-time HERI levels were developed for inland and coastal cities. Urban areas with the hazardous HERI level (very high risk) were not necessarily characterized by the highest temperatures. The hazardous HERI level was generally localized to encompass the city-centre in inland cities and the inner area in coastal cities. The two most dangerous HERI levels were greater in the coastal rather than inland cities. CONCLUSIONS: This study shows the great potential of combining geospatial technologies and spatial demographic characteristics within a simple and flexible framework in order to provide high-resolution urban mapping of daytime and night-time HERI. In this way, potential areas for intervention are immediately identified with up-to-street level details. This information could support public health operators and facilitate coordination for heat-related emergencies. Public Library of Science 2015-05-18 /pmc/articles/PMC4436225/ /pubmed/25985204 http://dx.doi.org/10.1371/journal.pone.0127277 Text en © 2015 Morabito et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Morabito, Marco
Crisci, Alfonso
Gioli, Beniamino
Gualtieri, Giovanni
Toscano, Piero
Di Stefano, Valentina
Orlandini, Simone
Gensini, Gian Franco
Urban-Hazard Risk Analysis: Mapping of Heat-Related Risks in the Elderly in Major Italian Cities
title Urban-Hazard Risk Analysis: Mapping of Heat-Related Risks in the Elderly in Major Italian Cities
title_full Urban-Hazard Risk Analysis: Mapping of Heat-Related Risks in the Elderly in Major Italian Cities
title_fullStr Urban-Hazard Risk Analysis: Mapping of Heat-Related Risks in the Elderly in Major Italian Cities
title_full_unstemmed Urban-Hazard Risk Analysis: Mapping of Heat-Related Risks in the Elderly in Major Italian Cities
title_short Urban-Hazard Risk Analysis: Mapping of Heat-Related Risks in the Elderly in Major Italian Cities
title_sort urban-hazard risk analysis: mapping of heat-related risks in the elderly in major italian cities
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4436225/
https://www.ncbi.nlm.nih.gov/pubmed/25985204
http://dx.doi.org/10.1371/journal.pone.0127277
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