English

Environment-Driven Emergence of Higher-Order Collective Behavior

Physics and Society 2026-02-18 v1 Mathematical Physics math.MP Applied Physics

Abstract

Collective behavior is commonly attributed to direct interactions among system components. Using a minimal stochastic model, we show that higher-order collective structure can instead emerge from shared stochastic environments, even in the absence of interactions. Quantified via the O-information, environmental fluctuations induce both redundant and synergistic dependencies, with the latter occupying larger regions of the correlation space. We establish a no-go theorem showing that time-independent coupling between the system variables and a shared stochastic environment rules out synergistic higher-order behavior. Crucially, this constraint can be overcome dynamically: transitions between redundancy and synergy arise from time-dependent environmental coupling or from the nontrivial interplay between shared environments and direct interactions. Together, these results identify environmental mediation as a distinct mechanism of higher-order collective organization beyond the conventional interaction-centric paradigm.

Keywords

Cite

@article{arxiv.2602.15256,
  title  = {Environment-Driven Emergence of Higher-Order Collective Behavior},
  author = {Felipe S. Abril-Bermúdez and David N. Fisher and Jean-Baptiste Gramain and Francisco J. Pérez-Reche},
  journal= {arXiv preprint arXiv:2602.15256},
  year   = {2026}
}

Comments

5 pages, 4 figures

R2 v1 2026-07-01T10:39:22.852Z