Phase transitions for polyadic epidemic and voter models with multiscale groups
Pia Steinmeyer1, Jan Mölter1, Christian Kuehn1,2,3
1Technical University of Munich, Department of Mathematics, School of Computation, Information and Technology, Boltzmannstraße 3, 85748 Garching bei München, Germany.
Abstract:
Polyadic (or higher-order) interactions can significantly impact the dynamics of interacting particle systems. However, previous studies have often assumed group sizes to be relatively small. In this work, we examine the influence of multiscale polyadic group interactions, where some groups are small and others are very large. We consider two paradigmatic examples, an SIS-epidemic and the adaptive voter model. On the level of the mean field, we specifically discuss the impact of the multiscale polyadic interactions on equilibrium dynamics and phase transitions. For the SIS-epidemic model, we find a region of bistability that protects the disease-free state over a wide range beyond the classical epidemic threshold from a significant outbreak. For the adaptive voter model, we show that multiscale polyadic interactions can stabilize the network or increase the convergence rate to an unbiased equilibrium.
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