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Updated: Mar 15, 2026

The HoneyComb Paradigm for Research on Collective Human Behavior
Published on: January 19, 2019
Adaptive network models of collective decision making in swarming systems
Li Chen1, Cristián Huepe2, Thilo Gross3
1Max Planck Institute for the Physics of Complex Systems, 01187 Dresden, Germay.
Abstract:
We consider a class of adaptive network models where links can only be created or deleted between nodes in different states. These models provide an approximate description of a set of systems where nodes represent agents moving in physical or abstract space, the state of each node represents the agent's heading direction, and links indicate mutual awareness. We show analytically that the adaptive network description captures a phase transition to collective motion in some swarming systems, such as the Vicsek model, and that the properties of this transition are determined by the number of states (discrete heading directions) that can be accessed by each agent.
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