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Forecasting influenza in Europe using a metapopulation model incorporating cross-border commuting and air travel

Sarah Krämer, Sen Pei, Jeffrey Shaman

2020PLoS Computational Biology21 citationsDOIOpen Access PDF

Abstract

Past work has shown that models incorporating human travel can improve the quality of influenza forecasts. Here, we develop and validate a metapopulation model of twelve European countries, in which international translocation of virus is driven by observed commuting and air travel flows, and use this model to generate influenza forecasts in conjunction with incidence data from the World Health Organization. We find that, although the metapopulation model fits the data well, it offers no improvement over isolated models in forecast quality. We discuss several potential reasons for these results. In particular, we note the need for data that are more comparable from country to country, and offer suggestions as to how surveillance systems might be improved to achieve this goal.

Topics & Concepts

MetapopulationAir travelWork (physics)Operations researchComputer scienceGeographyEconometricsAviationEconomicsEngineeringEnvironmental healthMedicinePopulationAerospace engineeringBiological dispersalMechanical engineeringInfluenza Virus Research StudiesCOVID-19 epidemiological studiesClimate variability and models