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Branching process models for surveillance of infectious diseases controlled by mass vaccination
C P Farrington1, M N Kanaan, N J Gay
1Department of Statistics, The Open University, Milton Keynes, MK7 6AA, UK. C.P.Farrington@open.ac.uk
Abstract:
Mass vaccination programmes aim to maintain the effective reproduction number R of an infection below unity. We describe methods for monitoring the value of R using surveillance data. The models are based on branching processes in which R is identified with the offspring mean. We derive unconditional likelihoods for the offspring mean using data on outbreak size and outbreak duration. We also discuss Bayesian methods, implemented by Metropolis-Hastings sampling. We investigate by simulation the validity of the models with respect to depletion of susceptibles and under-ascertainment of cases. The methods are illustrated using surveillance data on measles in the USA.
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