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Transient Dynamics of Epidemic Spreading and Its Mitigation on Large Networks

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arxiv 1903.00167 v3 pith:JTTI4JRR submitted 2019-03-01 cs.SI physics.soc-ph

classification cs.SIphysics.soc-ph
keywords dynamicsepidemicspreadingtransientanalysisdeveloplargenetwork
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In this paper, we aim to understand the transient dynamics of a susceptible-infected (SI) epidemic spreading process on a large network. The SI model has been largely overlooked in the literature, while it is naturally a better fit for modeling the malware propagation in early times when patches/vaccines are not available, or over a wider range of timescales when massive patching is practically infeasible. Nonetheless, its analysis is simply non-trivial, as its important dynamics are all transient and the usual stability/steady-state analysis no longer applies. To this end, we develop a theoretical framework that allows us to obtain an accurate closed-form approximate solution to the original SI dynamics on any arbitrary network, which captures the temporal dynamics over all time and is tighter than the existing approximation, and also to provide a new interpretation via reliability theory. As its applications, we further develop vaccination policies with or without knowledge of already-infected nodes, to mitigate the future epidemic spreading to the extent possible, and demonstrate their effectiveness through numerical simulations.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Indetermination of networks structure from the dynamics perspective

    physics.soc-ph 2019-08 conditional novelty 6.0 of 10

    The paper argues that network structure cannot be fully inferred from dynamics: fast global dynamics hides local node roles, and fast local dynamics hides global distances, an uncertainty-like tradeoff.

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