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Articles

Efficacy of control measures in the control of Ebola, Liberia 2014–2015

ORCID Icon, , &
Pages 913-937 | Received 23 Nov 2017, Accepted 06 Oct 2018, Published online: 24 Oct 2018

References

  • C. Browne, H. Gulbudak and G. Webb, Modeling contact tracing win outbreaks with application to Ebola, JTB 384 (2015), pp. 33–49. doi: 10.1016/j.jtbi.2015.08.004
  • K.P. Burnham, D.R. Anderson, Model selection and multimodel inference: A practical information-theoretic approach. 2nd ed. Springer, New York, 2002.
  • A. Camachoa, A.J. Kucharskia, S. Funka, J. Bremanb, P. Piotc and W.J. Edmundsa, Potential for large outbreaks of Ebola virus disease, Epidemics 9 (2014), pp. 70–78. doi: 10.1016/j.epidem.2014.09.003
  • Centers for Disease Control and Prevention, Ebola (Ebola Virus Disease). Available at http://www.cdc.gov/vhf/ebola/transmission/index.html?s_cid=cs_3923
  • Centers for Disease Control and Prevention, About Ebola Virus Disease. Available at http://www.cdc.gov/vhf/ebola/about.html
  • O.-T. Chis, J.R. Banga and E. Balsa-Canto, Structural identifiability of systems biology models: A critical comparison of methods, PLoS One 6(11) (2011), pp. e27755. doi: 10.1371/journal.pone.0027755
  • G. Chowell, C. Viboud, L. Simonsen, Perspectives on model forcasts of the 2014–2015 Ebola epidemic in West Africa: lessons and the way forward. BMC Med. 15(42) (2017), pp. 1–8
  • G. Chowella, N.W. Hengartnerb, C. Castillo-Chaveza, P.W. Fenimorea and J.M. Hyman, The basic reproductive number of Ebola and the effects of public health measures: The cases of Congo and Uganda, J. Theor. Biol. 229(1) (2004), pp. 119–126. doi: 10.1016/j.jtbi.2004.03.006
  • J.P. Chretien, S. Raley and D.B. George, Mathematical modeling of the West Africa Ebola epidemic, eLife 4 (2015) e09186. doi: 10.7554/eLife.09186
  • M. Eisenberg, S. Robertson and J. Tien, Identifiability and estimation of multiple transmission pathways in cholera and waterborne disease, JTB 324 (2013), pp. 84–102. doi: 10.1016/j.jtbi.2012.12.021
  • S.M. Fast, S. Mekaru, J.S. Brownstein, T.A. Postlethwaite and N. Markuzon, The role of social mobilization in controlling Ebola virus in Lofa County, Liberia, PLOS Curr. Outbreaks 7 (2015). doi:10.1371/currents.outbreaks.c3576278c66b22ab54a25e122fcdbec1.
  • H. Feldmann and T.W. Geisbert, Ebola haemorrhagic fever, Lancet 377(9768) (2011), pp. 849–862. doi: 10.1016/S0140-6736(10)60667-8
  • A.A. King, M. Domenech de Cells, F.M.G. Magpantay and P. Rohani, Avoidable errors in the modelling of outbreaks of emerging pathogens, with special reference to Ebola, Proc. R. Soc. Lond. Ser. B282(1806) (2015), pp. 20150347. doi: 10.1098/rspb.2015.0347
  • J. Legrand, R.F. Grais, P.Y. Boelle, A.J. Vallerron and A. Flahault, Understanding the dynamics of Ebola epidemics, Epidemiol. Infect. 135 (2007), pp. 610–621. doi: 10.1017/S0950268806007217
  • P. Manfredi, A. d'Onofrio, Modeling the interplay between human behavior and the spread of infectious diseases, Springer, New York, 2013.
  • M. Martcheva, Avian Flu: Modeling and implications for control, J. Biol. Syst. 22(151) (2014).
  • H. Miao, X. Xia, A.S. Perelson and H. Wu, On identifiability of nonlinear ODE models and applications in in viral dynamics, SIAM Rev. 53(1) (2011), pp. 3–39. doi: 10.1137/090757009
  • M.E. Miranda, T.G. Ksiazek, T.J. Retuya, A.S. Khan, A Sanchez, C.F. Fulhorst, P.E. Rollin, A.B.Calaor, D.L. Manalo, M.C. Roces, M.M. Dayrit and C.J. Peters, Epidemiology of Ebola (Subtype reston) virus in the Philippines, J. Infect. Dis. 179 (1996), pp. 115–119. doi: 10.1086/514314
  • A. Mubayi, C. Kribs-Zaleta, M. Martcheva and C. Castillo-Chavez, A cost-based comparison of quarantine strategies for new emerging diseases, Math. Biosci. Eng. 7(3) (2010), pp. 689–719. doi: 10.3934/mbe.2010.7.687
  • C.M. Rivers, E.T. Lofgren, M. Marathe, S. Eubank and B.L. Lewis, Modeling the impact of interventions on an epidemic of Ebola in Sierra Leone and Liberia, PLOS Curr. Outbreaks (2014). doi:10.1371/currents.outbreaks.fd38dd85078565450b0be3fcd78f5ccf.
  • A. Shen, Y. Xiao and L. Rong, Modeling the effect of comprehensive interventions on Ebola virus transmission, Sci Rep 5 (2015), pp. 15818. doi: 10.1038/srep15818
  • S. Swanson, A simple model for human immunodeficiency virus based on Erlang's method of stages, SIURO 10 (2017), pp. 65–80. doi: 10.1137/17S015732
  • The New England Journal of Medicine, Ebola 2014 New Challenges, New Global Response and Responsibility. Available at http://www.nejm.org/doi/full/10.1056/nejmp1409903
  • N. Tuncer, H. Gulbudak, V. Cannataro and M. Martcheva, Structural and practical identifiability issues of immuno-epidemiological vector-host models with application to Rift Valley Fever, Bull. Math. Biol. 78(9) (2016), pp. 1796–1827. doi: 10.1007/s11538-016-0200-2
  • G. Webb, C. Browne, X. Huoet al., A model of the 2014 Ebola epidemic in West Africa with contact tracing. PLOS Current Outbreaks, (2015). doi:10.1371/currents.outbreaks.846b2a31ef37018b7d1126a9c8adf22a
  • WHO Ebola Response Team, Ebola virus disease in West Africa – the first 9 months of the epidemic and forward projections, N. Engl. J. Med. 371 (2014), pp. 1481–1495. doi: 10.1056/NEJMoa1411100
  • WHO Ebola Situation Reports. Available at http://apps.who.int/iris/bitstream/10665/137376/1/roadmapsitrep_29Oct2014_eng.pdf?ua=1
  • World Health Organization, Ebola Virus Disease Outbreak News. Available at http://www.who.int/csr/don/archive/disease/ebola/en/
  • World Health Organization, Frequently Asked Questions on Ebola Virus Disease. Available at http://www.who.int/csr/disease/ebola/faq-ebola/en/