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Public Health., 33, 107, 10.1146\u002Fannurev-publhealth-031811-124655\nBauch, 2005, Dynamically modeling SARS and other newly emerging respiratory illnesses: past, present, and future, Epidemiology, 16, 791, 10.1097\u002F01.ede.0000181633.80269.4c\nCenters for Disease Control and Prevention, 2022, National Notifiable Diseases Surveillance System (NNDSS): What is Case Surveillance?\nCeriani, 2012, The origins of the Gini index: extracts from Variabilità e Mutabilità (1912) by Corrado Gini, J. Econ. Inequal., 10, 421, 10.1007\u002Fs10888-011-9188-x\nD’Arienzo, 2020, Assessment of the SARS-CoV-2 basic reproduction number, R0, based on the early phase of COVID-19 outbreak in Italy, Biosaf. Health, 2, 57, 10.1016\u002Fj.bsheal.2020.03.004\nDelamater, 2019, Complexity of the basic reproduction number (R0), Emerg. Infect. Dis., 25, 1, 10.3201\u002Feid2501.171901\nDiekmann, 2010, The construction of next-generation matrices for compartmental epidemic models, J. R. Soc. 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Bozzuto, State-by-State estimates of R0 at the start of COVID-19 outbreaks in the USA. medRxiv [Preprint] (2020). 〈https:\u002F\u002Fwww.medrxiv.org\u002Fcontent〉\u002F10.1101\u002F2020.05.17.20104653v3 (accessed 4 September 2021).\nIves, 2021, Estimating and explaining the spread of COVID-19 at the county level in the USA, Commun. Biol., 4, 1\nJohns Hopkins University of Medicine 2022. https:\u002F\u002Fcoronavirus.jhu.edu.\nKe, 2021, Estimating the reproductive number R0 of SARS-CoV-2 in the United States and eight European countries and implications for vaccination, J. Theor. Biol., 517, 10.1016\u002Fj.jtbi.2021.110621\nKeeling, 2008\nKong, 2021, Social, economic, and environmental factors influencing the basic reproduction number of COVID-19 across countries, PLOS ONE, 16, 10.1371\u002Fjournal.pone.0252373\nKucharski, 2020, Early dynamics of transmission and control of COVID-19: a mathematical modelling study, Lancet., 20, 553, 10.1016\u002FS1473-3099(20)30144-4\nLi, 2020, Substantial undocumented infection facilitates the rapid dissemination of novel coronavirus (SARS-CoV-2), Science, 368, 489, 10.1126\u002Fscience.abb3221\nLin, 2021, Daily forecasting of regional epidemics of Coronavirus Disease with Bayesian uncertainty quantification, United States, Emerg. Infect. Dis., 27, 767, 10.3201\u002Feid2703.203364\nMallela, 2022, Bayesian inference of state-level COVID-19 basic reproduction numbers across the United States, Viruses, 14, 157, 10.3390\u002Fv14010157\nMilicevic, 2021, PM2.5 as a major predictor of COVID-19 basic reproduction number in the USA, Environ. Res., 201, 10.1016\u002Fj.envres.2021.111526\nMiller, 2022, COVID-19 data project, reliability of COVID-19 data: an evaluation and reflection, PLOS ONE, 17, 10.1371\u002Fjournal.pone.0251470\nNeumann, 2022, Implementation of a practical Markov chain Monte Carlo sampling algorithm in PyBioNetFit, Bioinformatics, 38, 1770, 10.1093\u002Fbioinformatics\u002Fbtac004\nPark, 2022, The importance of the generation interval in investigating dynamics and control of new SARS-CoV-2 variants, J. R. Soc. Interface, 19, 10.1098\u002Frsif.2022.0173\nPerkins, 2020, Estimating unobserved SARS-CoV-2 infections in the United States, Proc. Natl. Acad. Sci. USA, 117, 22597, 10.1073\u002Fpnas.2005476117\nRandolph, 2020, Herd immunity: understanding COVID-19, Immunity, 5, 737, 10.1016\u002Fj.immuni.2020.04.012\nRidenhour, 2018, Unraveling R0: Considerations for public health applications, Am. J. Public Health., 108, S445, 10.2105\u002FAJPH.2013.301704r\nRomero-Severson, 2020, Change in global transmission rates of COVID-19 through May 6 2020, PLOS ONE, 15, 10.1371\u002Fjournal.pone.0236776\nRubner, 2000, The earth mover’s distance as a metric for image retrieval, Int. J. Comput. Vis., 40, 99, 10.1023\u002FA:1026543900054\nSanche, 2020, High contagiousness and rapid spread of severe acute respiratory syndrome coronavirus 2, Emerg. Infect. 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Dis., 21, 193, 10.1016\u002FS1473-3099(20)30785-4\nLi, 2016, Stimulating influenza vaccination via prosocial motives, PLoS One, 11, 10.1371\u002Fjournal.pone.0159780\nMagli, 2020\nMoyles, 2021, Cost and social distancing dynamics in a mathematical model of COVID-19 with application to Ontario, Canada, R. Soc. Open Sci., 8, 10.1098\u002Frsos.201770\n2021\n2021\n2021\n2021\nOraby, 2014, The influence of social norms on the dynamics of vaccinating behaviour for paediatric infectious diseases, Proc. R. Soc. B, 281, 10.1098\u002Frspb.2013.3172\nPeak, 2020, Individual quarantine versus active monitoring of contacts for the mitigation of COVID-19: a modelling study, Lancet Infect. Dis., 20, 1025, 10.1016\u002FS1473-3099(20)30361-3\nPhillips, 2020, Spatial early warning signals of social and epidemiological tipping points in a coupled behaviour-disease network, Sci. 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Hyg., 90, 259, 10.1017\u002FS002217240002893X\nBaguelin, 2010, Vaccination against pandemic influenza A\u002FH1N1v in England: a real-time economic evaluation, Vaccine, 28, 2370, 10.1016\u002Fj.vaccine.2010.01.002\nBall, 2002, Optimal vaccination policies for stochastic epidemics among a population of households, Math. Biosci., 177, 333, 10.1016\u002FS0025-5564(01)00095-5\nBall, 1997, Epidemics with two levels of mixing, Ann. Appl. Probab., 7, 46, 10.1214\u002Faoap\u002F1034625252\nBall, 2004, Stochastic multitype epidemics in a community of households: estimation and form of optimal vaccination schemes, Math. Biosci., 191, 19, 10.1016\u002Fj.mbs.2004.05.001\nBansal, 2006, A comparative analysis of influenza vaccination programs, PLoS Med., 3, 1816, 10.1371\u002Fjournal.pmed.0030387\nBecker, 1997, Optimal vaccination strategies for a community of households, Math. Biosci., 139, 117, 10.1016\u002FS0025-5564(96)00139-3\nBrown, 2011, The role of optimal control in assessing the most cost-effective implementation of a vaccination programme: HPV as a case study, Math. Biosci., 231, 126, 10.1016\u002Fj.mbs.2011.02.009\nCauchemez, 2004, A Bayesian MCMC approach to study transmission of influenza: application to household longitudinal data, Stat. Med., 23, 3469, 10.1002\u002Fsim.1912\nCauchemez, 2009, Household transmission of 2009 pandemic influenza A (H1N1) virus in the United States, N. Engl. J. Med., 361, 2619, 10.1056\u002FNEJMoa0905498\nDushoff, 2007, Vaccinating to protect a vulnerable subpopulation, PLoS Med., 4, 921, 10.1371\u002Fjournal.pmed.0040174\nHall, 2007, Comparison of smallpox outbreak control strategies using a spatial metapopulation model, Epidemiol. Infect., 135, 1133, 10.1017\u002FS0950268806007783\nHollingsworth, 2011, Mitigation strategies for pandemic influenza A: balancing conflicting policy objectives, PLoS Comput. 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J., 339, b2651, 10.1136\u002Fbmj.b2651\nSadique, 2013, The effect of perceived risks on the demand for vaccination: results from a discrete choice experiment, PLOS ONE, 8, e54149, 10.1371\u002Fjournal.pone.0054149\nSalathé, 2012, Digital epidemiology, PLoS Comput. Biol., 8, e1002616, 10.1371\u002Fjournal.pcbi.1002616\nSalathé, 2011, Assessing vaccination sentiments with online social media: implications for infectious disease dynamics and control, PLoS Comput. Biol., 7, e1002199, 10.1371\u002Fjournal.pcbi.1002199\nSignorini, 2011, The use of twitter to track levels of disease activity and public concern in the U.S. during the influenza a H1N1 pandemic, PLoS ONE, 6, e19467, 10.1371\u002Fjournal.pone.0019467\nSimini, 2012, A universal model for mobility and migration patterns, Nature, 484, 96, 10.1038\u002Fnature10856\nVan Kerckhove, 2013, The impact of illness on social networks: implications for transmission and control of influenza, Am. J. 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J. Epidemiol., 50, 410, 10.1093\u002Fije\u002Fdyab010\nBilal, 2021, COVID-19 and the worsening of health inequities in Santiago, Chile, Int J. Epidemiol., 50, 1038, 10.1093\u002Fije\u002Fdyab007\nCereda, 2021, The early phase of the COVID-19 epidemic in Lombardy, Italy, Epidemics, 37, 10.1016\u002Fj.epidem.2021.100528\nEstimated COVID-19 Burden (Updated Nov. 16, 2021) 〈https:\u002F\u002Fwww.cdc.gov\u002Fcoronavirus\u002F2019-ncov\u002Fcases-updates\u002Fburden.html〉.\nFlor, 2020, Comparison of Bayesian and frequentist methods for prevalence estimation under misclassification, BMC Public Health, 20, 10.1186\u002Fs12889-020-09177-4\nGozzi, 2021, Estimating the effect of social inequalities on the mitigation of COVID-19 across communities in Santiago de Chile, Nat. Commun., 12, 10.1038\u002Fs41467-021-22601-6\nHarris, 2009, Research electronic data capture (REDCap) – a metadata-driven methodology and workflow process for providing translational research informatics support, J. Biomed. 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Available from: 〈https:\u002F\u002Fwww.minsal.cl\u002Fnuevo-coronavirus-2019-ncov\u002Finforme-epidemiologico-covid-19\u002F〉.\nMinisterio de Salud Gobierno de Chile. Departamento de Estadisticas e Información de Salud [Internet]. Datos abiertos. [cited 2021 Apr 25]. Available from: 〈https:\u002F\u002Fdeis.minsal.cl\u002F#datosabiertos〉.\nMinistry of Science Government of Chile. Data-COVID19. 2020. 〈https:\u002F\u002Fgithub.com\u002FMinCiencia\u002FDatos-COVID19〉.\nNational Institute of Statistics Government of Chile. Estimaciones y proyecciones 2002–2035 base 2017 [Internet]. 2018 [cited 2021 Jan 31]. Available from: 〈https:\u002F\u002Fwww.ine.cl\u002Festadisticas\u002Fsociales\u002Fdemografia-y-vitales\u002Fproyecciones-de-poblacion〉.\nDepartamento de Epidemiología, Ministerio de salud. Gobierno de Chille. Encuesta Nacional de Salud 2016–2017. Primeros resultados [Internet]. 2017. Available from: 〈http:\u002F\u002Fwww.encuestas.uc.cl\u002Fens\u002F〉.\nPastor-Barriuso, 2020, Infection fatality risk for SARS-CoV-2 in community dwelling population of Spain: Nationwide seroepidemiological study, BMJ, 371, m4509, 10.1136\u002Fbmj.m4509\nPinotti, 2021, Real-time seroprevalence and exposure levels of emerging pathogens in infection-naive host populations, Sci. Rep., 11, 5825, 10.1038\u002Fs41598-021-84672-1\nPollán, 2020, Prevalence of SARS-CoV-2 in Spain (ENE-COVID): a nationwide, population-based seroepidemiological study, Lancet, 396, 535, 10.1016\u002FS0140-6736(20)31483-5\nReyes-Vega, 2021, Peru COVID-19 Working Group. SARS-CoV-2 prevalence associated to low socioeconomic status and overcrowding in an LMIC megacity: a population-based seroepidemiological survey in Lima, Peru. EClinicalMedicine., 34\nRostami, 2021, SARS-CoV-2 seroprevalence worldwide: a systematic review and meta-analysis, Clin. 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