Spatiotemporal clusters and the socioeconomic determinants of COVID-19 in Toronto neighbourhoods, Canada

被引:3
|
作者
Nazia, Nushrat [1 ]
Law, Jane [1 ,2 ]
Butt, Zahid Ahmad [1 ]
机构
[1] Univ Waterloo, Sch Publ Hlth Sci, 200 Univ Ave W, Waterloo, ON N2L 3G1, Canada
[2] Univ Waterloo, Sch Planning, 200 Univ Ave W, Waterloo, ON N2L 3G1, Canada
关键词
Space-time clusters; Spatial regression; Multiscale geographically weighted regression; (mgwr); COVID-19; Clustering analysis; DYNAMICS;
D O I
10.1016/j.sste.2022.100534
中图分类号
R1 [预防医学、卫生学];
学科分类号
1004 ; 120402 ;
摘要
The aim of this study is to identify spatiotemporal clusters and the socioeconomic drivers of COVID-19 in Toronto. Geographical, epidemiological, and socioeconomic data from the 140 neighbourhoods in Toronto were used in this study. We used local and global Moran's I, and space-time scan statistic to identify spatial and spatiotemporal clusters of COVID-19. We also used global (spatial regression models), and local geographically weighted regression (GWR) and Multiscale Geographically weighted regression (MGWR) models to identify the globally and locally varying socioeconomic drivers of COVID-19. The global regression model identified a lower percentage of educated people and a higher percentage of immigrants in the neighbourhoods as significant predictors of COVID-19. MGWR shows the best fit model to explain the variables affecting COVID-19. The findings imply that a single intervention package for the entire area would not be an effective strategy for controlling COVID-19; a locally adaptable intervention package would be beneficial.
引用
收藏
页数:14
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