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Geospat Health ; 8(3): S611-30, 2014 Dec 01.
Artículo en Inglés | MEDLINE | ID: mdl-25599634

RESUMEN

With the increasing awareness of the health impacts of particulate matter, there is a growing need to comprehend the spatial and temporal variations of the global abundance of ground level airborne particulate matter with a diameter of 2.5 microns or less (PM2.5). Here we use a suite of remote sensing and meteorological data products together with ground-based observations of particulate matter from 8,329 measurement sites in 55 countries taken 1997-2014 to train a machine-learning algorithm to estimate the daily distributions of PM2.5 from 1997 to the present. In this first paper of a series, we present the methodology and global average results from this period and demonstrate that the new PM2.5 data product can reliably represent global observations of PM2.5 for epidemiological studies.


Asunto(s)
Material Particulado/análisis , Contaminación del Aire/efectos adversos , Algoritmos , Monitoreo del Ambiente/métodos , Salud Global/estadística & datos numéricos , Proteínas HSP70 de Choque Térmico , Humanos , Material Particulado/efectos adversos , Tecnología de Sensores Remotos , Tiempo (Meteorología)
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