4.8 Article

Sharp thresholds limit the benefit of defector avoidance in cooperation on networks

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2120120119

Keywords

cooperation; metacommunity; network; game; dispersal

Funding

  1. National Research Council of the National Academies of Sciences, Engineering, and Mathematics
  2. China Scholarship Council-University of Bristol Joint Scholarships Programme
  3. Army Research Office [W911NF-18-1-0325]
  4. Ministry for Science and Culture of Lower Saxony (Helmholtz Institute for Functional Marine Biodiversity project)
  5. Volkswagen Foundation [ZN3285]

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This article analyzes the transition between homogeneous and self-organized states in a cooperation game on a spatial network. The formation of safe havens is dependent on a certain threshold in connectivity, which can be linked to the structure of the patch network and specific network motifs. Surprisingly, a forgiving defector avoidance strategy may be most favorable for cooperators.
Consider a cooperation game on a spatial network of habitat patches, where players can relocate between patches if they judge the local conditions to be unfavorable. In time, the relocation events may lead to a homogeneous state where all patches harbor the same relative densities of cooperators and defectors, or they may lead to self-organized patterns, where some patches become safe havens that maintain an elevated cooperator density. Here we analyze the transition between these states mathematically. We show that safe havens form once a certain threshold in connectivity is crossed. This threshold can be analytically linked to the structure of the patch network and specifically to certain network motifs. Surprisingly, a forgiving defector avoidance strategy may be most favorable for cooperators. Our results demonstrate that the analysis of cooperation games in ecological metacommunity models is mathematically tractable and has the potential to link topics such as macroecological patterns, behavioral evolution, and network topology.

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