Limits of epidemic prediction using SIR models.

dc.contributor.author

Melikechi, Omar

dc.contributor.author

Young, Alexander L

dc.contributor.author

Tang, Tao

dc.contributor.author

Bowman, Trevor

dc.contributor.author

Dunson, David

dc.contributor.author

Johndrow, James

dc.date.accessioned

2025-11-22T03:11:58Z

dc.date.available

2025-11-22T03:11:58Z

dc.date.issued

2022-09

dc.description.abstract

The Susceptible-Infectious-Recovered (SIR) equations and their extensions comprise a commonly utilized set of models for understanding and predicting the course of an epidemic. In practice, it is of substantial interest to estimate the model parameters based on noisy observations early in the outbreak, well before the epidemic reaches its peak. This allows prediction of the subsequent course of the epidemic and design of appropriate interventions. However, accurately inferring SIR model parameters in such scenarios is problematic. This article provides novel, theoretical insight on this issue of practical identifiability of the SIR model. Our theory provides new understanding of the inferential limits of routinely used epidemic models and provides a valuable addition to current simulate-and-check methods. We illustrate some practical implications through application to a real-world epidemic data set.

dc.identifier

10.1007/s00285-022-01804-5

dc.identifier.issn

0303-6812

dc.identifier.issn

1432-1416

dc.identifier.uri

https://hdl.handle.net/10161/33536

dc.language

eng

dc.publisher

Springer Science and Business Media LLC

dc.relation.ispartof

Journal of mathematical biology

dc.relation.isversionof

10.1007/s00285-022-01804-5

dc.rights.uri

https://creativecommons.org/licenses/by-nc/4.0

dc.subject

Humans

dc.subject

Communicable Diseases

dc.subject

Disease Susceptibility

dc.subject

Disease Outbreaks

dc.subject

Epidemics

dc.subject

Epidemiological Models

dc.title

Limits of epidemic prediction using SIR models.

dc.type

Journal article

duke.contributor.orcid

Melikechi, Omar|0000-0003-1052-7300

pubs.begin-page

36

pubs.issue

4

pubs.organisational-group

Duke

pubs.organisational-group

Trinity College of Arts & Sciences

pubs.organisational-group

Mathematics

pubs.organisational-group

Statistical Science

pubs.organisational-group

University Institutes and Centers

pubs.organisational-group

Duke Institute for Brain Sciences

pubs.publication-status

Published

pubs.volume

85

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