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Epidemic threshold in pairwise models for clustered networks: closures and fast correlations
Rosanna C Barnard1, Luc Berthouze2, Péter L Simon3,4
1Department of Mathematics, School of Mathematical and Physical Sciences, University of Sussex, Falmer, Brighton, BN1 9QH, UK.
Journal of Mathematical Biology
|May 13, 2019
Summary
This study derives an analytical epidemic threshold for clustered networks using perturbation theory. The new threshold accurately predicts epidemic spread, crucial for understanding real-world disease dynamics.
Area of Science:
- Epidemiology
- Network Science
- Mathematical Biology
Background:
- The epidemic threshold is a key metric in epidemic modeling on networks.
- Existing models struggle with clustered networks, lacking theoretical results for pairwise models.
- Analytical solutions for epidemic thresholds in complex network structures are limited.
Purpose of the Study:
- To derive an analytical expression for the epidemic threshold in clustered networks using pairwise models.
- To validate the derived analytical threshold against numerical solutions of the full system.
- To investigate the influence of network properties and model choices on the epidemic threshold.
Main Methods:
- Application of perturbation theory and exploitation of fast variables within pairwise models.
- Derivation of an analytical formula for the epidemic threshold.
- Numerical simulations of epidemic dynamics on clustered networks for validation.
Main Results:
- An analytical epidemic threshold was successfully derived for pairwise models on clustered networks.
- The derived threshold shows excellent agreement with numerical solutions across various network parameters.
- The analytical threshold's form is sensitive to the choice of closure, emphasizing model selection importance.
Conclusions:
- The developed perturbation theory method provides an accurate analytical epidemic threshold for clustered networks.
- This method advances the understanding of epidemic dynamics in complex, real-world network structures.
- The approach is potentially extensible to other systems exhibiting fast variables.
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