Back to Search Start Over

Influential groups for seeding and sustaining nonlinear contagion in heterogeneous hypergraphs.

Authors :
St-Onge, Guillaume
Iacopini, Iacopo
Latora, Vito
Barrat, Alain
Petri, Giovanni
Allard, Antoine
Hébert-Dufresne, Laurent
Source :
Communications Physics. 1/17/2022, Vol. 5 Issue 1, p1-16. 16p.
Publication Year :
2022

Abstract

Contagion phenomena are often the results of multibody interactions—such as superspreading events or social reinforcement—describable as hypergraphs. We develop an approximate master equation framework to study contagions on hypergraphs with a heterogeneous structure in terms of group size (hyperedge cardinality) and of node membership (hyperdegree). By mapping multibody interactions to nonlinear infection rates, we demonstrate the influence of large groups in two ways. First, we characterize the phase transition, which can be continuous or discontinuous with a bistable regime. Our analytical expressions for the critical and tricritical points highlight the influence of the first three moments of the membership distribution. We also show that heterogeneous group sizes and nonlinear contagion promote a mesoscopic localization regime where contagion is sustained by the largest groups, thereby inhibiting bistability. Second, we formulate an optimal seeding problem for hypergraph contagion and compare two strategies: allocating seeds according to node or group properties. We find that, when the contagion is sufficiently nonlinear, groups are more effective seeds than individual hubs. Group interactions can dramatically alter social contagion dynamics and lead to the emergence of new phenomena like abrupt transitions and critical mass effects. The authors develop an approximate master equation framework to analytically describe contagion in heterogeneous hypergraphs and study the impact of large influential groups in seeding and sustaining epidemics. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
23993650
Volume :
5
Issue :
1
Database :
Academic Search Index
Journal :
Communications Physics
Publication Type :
Academic Journal
Accession number :
154714304
Full Text :
https://doi.org/10.1038/s42005-021-00788-w