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Impact of the infectious period on epidemics
- Source :
- Physical Review. E, Phys. Rev. E, Physical Review E (Statistical, Nonlinear, and Soft Matter Physics)
- Publication Year :
- 2017
-
Abstract
- The duration of the infectious period is a crucial determinant of the ability of an infectious disease to spread. We consider an epidemic model that is network based and non-Markovian, containing classic Kermack-McKendrick, pairwise, message passing, and spatial models as special cases. For this model, we prove a monotonic relationship between the variability of the infectious period (with fixed mean) and the probability that the infection will reach any given subset of the population by any given time. For certain families of distributions, this result implies that epidemic severity is decreasing with respect to the variance of the infectious period. The striking importance of this relationship is demonstrated numerically. We then prove, with a fixed basic reproductive ratio (R_{0}), a monotonic relationship between the variability of the posterior transmission probability (which is a function of the infectious period) and the probability that the infection will reach any given subset of the population by any given time. Thus again, even when R_{0} is fixed, variability of the infectious period tends to dampen the epidemic. Numerical results illustrate this but indicate the relationship is weaker. We then show how our results apply to message passing, pairwise, and Kermack-McKendrick epidemic models, even when they are not exactly consistent with the stochastic dynamics. For Poissonian contact processes, and arbitrarily distributed infectious periods, we demonstrate how systems of delay differential equations and ordinary differential equations can provide upper and lower bounds, respectively, for the probability that any given individual has been infected by any given time.
- Subjects :
- 0301 basic medicine
Population
Monotonic function
01 natural sciences
Communicable Diseases
03 medical and health sciences
Biological Physics
0103 physical sciences
Statistics
Quantitative Biology::Populations and Evolution
010306 general physics
education
Epidemics
Quantitative Biology - Populations and Evolution
Mathematics
Probability
education.field_of_study
Stochastic Processes
Models, Statistical
Stochastic process
Populations and Evolution (q-bio.PE)
Delay differential equation
Articles
030104 developmental biology
Infectious disease (medical specialty)
FOS: Biological sciences
Communicable disease transmission
Epidemic model
Basic reproduction number
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Physical Review. E, Phys. Rev. E, Physical Review E (Statistical, Nonlinear, and Soft Matter Physics)
- Accession number :
- edsair.doi.dedup.....8c5cc21f3a0516ac537da52159c985f5