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A social network analysis of the spread of COVID-19 in South Korea and policy implications

Wonkwang Jo, Dukjin Chang, Myoungsoon You, Ghi-Hoon Ghim

2021Scientific Reports67 citationsDOIOpen Access PDF

Abstract

This study estimates the COVID-19 infection network from actual data and draws on implications for policy and research. Using contact tracing information of 3283 confirmed patients in Seoul metropolitan areas from January 20, 2020 to July 19, 2020, this study created an infection network and analyzed its structural characteristics. The main results are as follows: (i) out-degrees follow an extremely positively skewed distribution; (ii) removing the top nodes on the out-degree significantly decreases the size of the infection network, and (iii) the indicators that express the infectious power of the network change according to governmental measures. Efforts to collect network data and analyze network structures are urgently required for the efficiency of governmental responses to COVID-19. Implications for better use of a metric such as R0 to estimate infection spread are also discussed.

Topics & Concepts

Contact tracingCoronavirus disease 2019 (COVID-19)Metropolitan areaMetric (unit)Social network analysisSocial network (sociolinguistics)Network analysisTracingSevere acute respiratory syndrome coronavirus 2 (SARS-CoV-2)2019-20 coronavirus outbreakComputer scienceGeographyData scienceMedicineVirologyEconomicsInfectious disease (medical specialty)Operations managementWorld Wide WebEngineeringElectrical engineeringSocial mediaOperating systemPathologyDiseaseOutbreakArchaeologyCOVID-19 epidemiological studiesData-Driven Disease SurveillanceMisinformation and Its Impacts