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1.
Front Public Health ; 8: 498, 2020.
Article in English | MEDLINE | ID: mdl-33042942

ABSTRACT

To better estimate the travel time to the most proximate health care facility (HCF) and determine differences across heterogeneous land coverage types, this study explored the use of a novel cloud-based geospatial modeling approach. Geospatial data of 145,134 cities and villages and 8,067 HCF were gathered with land coverage types, roads and river networks, and digital elevation data to produce high-resolution (30 m) estimates of travel time to HCFs across Peru. This study estimated important variations in travel time to HCFs between urban and rural settings and major land coverage types in Peru. The median travel time to primary, secondary, and tertiary HCFs was 1.9-, 2.3-, and 2.2-fold higher in rural than urban settings, respectively. This study provides a new methodology to estimate the travel time to HCFs as a tool to enhance the understanding and characterization of the profiles of accessibility to HCFs in low- and middle-income countries.


Subject(s)
Health Facilities , Health Services Accessibility , Humans , Peru , Rural Population , Travel
2.
Infect Dis Poverty ; 9(1): 32, 2020 Mar 24.
Article in English | MEDLINE | ID: mdl-32204735

ABSTRACT

Growing evidence suggests pollution and other environmental factors have a role in the development of tuberculosis (TB), however, such studies have never been conducted in Peru. Considering the association between air pollution and specific geographic areas, our objective was to determine the spatial distribution and clustering of TB incident cases in Lima and their co-occurrence with clusters of fine particulate matter (PM2.5) and poverty. We found co-occurrences of clusters of elevated concentrations of air pollutants such as PM2.5, high poverty indexes, and high TB incidence in Lima. These findings suggest an interplay of socio-economic and environmental in driving TB incidence.


Subject(s)
Air Pollutants , Air Pollution/adverse effects , Environmental Monitoring , Particulate Matter , Poverty , Tuberculosis/epidemiology , Humans , Incidence , Peru/epidemiology , Poverty Areas , Seasons , Spatio-Temporal Analysis
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