star_pg_bc_dfix.csv from The effect of network topology on optimal exploration strategies and the evolution of cooperation in a mobile population

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Erovenko, Igor V.;Bauer, Johann;Broom, Mark;Pattni, Karan;Rychtář, Jan

Description

We model a mobile population interacting over an underlying spatial structure using a Markov movement model. Interactions take the form of public goods games, and can feature an arbitrary group size. Individuals choose strategically to remain at their current location or to move to a neighbouring location, depending upon their exploration strategy and the current composition of their group. This builds upon previous work where the underlying structure was a complete graph (i.e. there was effectively no structure). Here, we consider alternative network structures and a wider variety of, mainly larger, populations. Previously, we had found when cooperation could evolve, depending upon the values of a range of population parameters. In our current work, we see that the complete graph considered before promotes stability, with populations of cooperators or defectors being relatively hard to replace. By contrast, the star graph promotes instability, and often neither type of population can resist replacement. We discuss potential reasons for this in terms of network topology.

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Metrics

Dataset Index

0.5

FAIR Score

85%

Citations

0

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0

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Publication Details

DOI

Publisher

The Royal Society

License

Creative Commons Attribution 4.0 International

Assigned Domain

Subfield

Discrete Mathematics and Combinatorics

Field

Mathematics

Domain

Physical Sciences

Confidence Score

39%

Source

Scholar Data Model

Keywords

10299 Applied Mathematics not elsewhere classifiedFOS: Mathematics19999 Mathematical Sciences not elsewhere classified

Normalization Factors

FT

57.69

CTw

1.00

MTw

1.00