Characterizing the Spatial Determinants and Prevention of Malaria in Kenya

被引:12
作者
Gopal, Sucharita [1 ,2 ]
Ma, Yaxiong [1 ]
Xin, Chen [1 ]
Pitts, Joshua [2 ]
Were, Lawrence [3 ]
机构
[1] Boston Univ, Dept Earth & Environm, Boston, MA 02215 USA
[2] Boston Univ, Ctr Global Dev Policy, Boston, MA 02215 USA
[3] Boston Univ, Coll Hlth & Rehabil Sci, Sargent Coll, Boston, MA 02215 USA
关键词
hot spot analysis; spatial autocorrelation; geographically weighted regression; malaria; spatial non-stationarity; principal component analysis; Kenya; GEOGRAPHICALLY WEIGHTED REGRESSION; ASSOCIATION; VECTORS;
D O I
10.3390/ijerph16245078
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The United Nations' Sustainable Development Goal 3 is to ensure health and well-being for all at all ages with a specific target to end malaria by 2030. Aligned with this goal, the primary objective of this study is to determine the effectiveness of utilizing local spatial variations to uncover the statistical relationships between malaria incidence rate and environmental and behavioral factors across the counties of Kenya. Two data sources are used-Kenya Demographic and Health Surveys of 2000, 2005, 2010, and 2015, and the national Malaria Indicator Survey of 2015. The spatial analysis shows clustering of counties with high malaria incidence rate, or hot spots, in the Lake Victoria region and the east coastal area around Mombasa; there are significant clusters of counties with low incidence rate, or cold spot areas in Nairobi. We apply an analysis technique, geographically weighted regression, that helps to better model how environmental and social determinants are related to malaria incidence rate while accounting for the confounding effects of spatial non-stationarity. Some general patterns persist over the four years of observation. We establish that variables including rainfall, proximity to water, vegetation, and population density, show differential impacts on the incidence of malaria in Kenya. The El-Nino-southern oscillation (ENSO) event in 2015 was significant in driving up malaria in the southern region of Lake Victoria compared with prior time-periods. The applied spatial multivariate clustering analysis indicates the significance of social and behavioral survey responses. This study can help build a better spatially explicit predictive model for malaria in Kenya capturing the role and spatial distribution of environmental, social, behavioral, and other characteristics of the households.
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页数:19
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