2023
DOI: 10.1007/s10037-023-00185-6
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Spatial networks and the spread of COVID-19: results and policy implications from Germany

Abstract: Spatial networks are known to be informative about the spatiotemporal transmission dynamics of COVID-19. Using district-level panel data from Germany that cover the first 22 weeks of 2020, we show that mobility, commuter and social networks all predict the spatiotemporal propagation of the epidemic. The main innovation of our approach is that it incorporates the whole network and updated information on case numbers across districts over time. We find that when disease incidence increases in network neighbourin… Show more

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