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    A message-passing approach to epidemic tracing and mitigation with apps 
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    A message-passing approach to epidemic tracing and mitigation with apps

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    Accepted version (727.8Kb)
    Journal
    Physical Review Research
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    Abstract
    With the hit of new pandemic threats, scientific frameworks are needed to understand the unfolding of the epidemic. The use of mobile apps that are able to trace contacts is of utmost importance in order to control new infected cases and contain further propagation. Here we present a theoretical approach using both percolation and message--passing techniques, to the role of contact tracing, in mitigating an epidemic wave. We show how the increase of the app adoption level raises the value of the epidemic threshold, which is eventually maximized when high-degree nodes are preferentially targeted. Analytical results are compared with extensive Monte Carlo simulations showing good agreement for both homogeneous and heterogeneous networks. These results are important to quantify the level of adoption needed for contact-tracing apps to be effective in mitigating an epidemic.
    Authors
    Bianconi, G; Sun, H; Rapisardi, G; Arenas, A
    URI
    https://qmro.qmul.ac.uk/xmlui/handle/123456789/69523
    Collections
    • Mathematics [1287]
    Licence information
    Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article's title, journal citation, and DOI.
    Copyright statements
    © 2021, American Physical Society
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