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Pattern Formation in Agent-Based and PDE Models for Evolutionary Games with Payoff-Driven Motion.
Tianyong Yao1, Chenning Xu2, Daniel B Cooney3
1Department of Mathematics, University of Michigan, Ann Arbor, MI, USA.
Spatial patterns influence cooperation. Increased hawk mobility boosts population size and payoff in diffusive hawk-dove games, but payoff-driven motion shows complex, sometimes detrimental, effects.
Area of Science:
- Evolutionary Game Theory
- Mathematical Biology
- Spatial Dynamics
Background:
- Spatial structure significantly impacts cooperative behavior and population success.
- Understanding movement dynamics is crucial for evolutionary game models.
Purpose of the Study:
- To investigate how random and directed motion affect spatial patterns and payoffs in hawk-dove games.
- To compare stochastic and deterministic (PDE) models for spatial evolutionary games.
Main Methods:
- Utilized both stochastic spatial models and partial differential equation (PDE) models.
- Analyzed the hawk-dove game dynamics under different movement strategies (diffusive vs. payoff-driven).
Main Results:
- Turing patterns emerge in diffusive motion when hawks move faster than doves, increasing population size and payoff.
- Payoff-driven motion yields decreased population size and payoff in stochastic models.
- PDE models show complex behavior with payoff-driven motion, including potential instabilities.
Conclusions:
- Hawk mobility positively influences population size and payoff in diffusive spatial games.
- Payoff-driven motion requires careful consideration in PDE models due to potential instabilities.
- Nonlocal PDE models may be better suited for spatial patterns in directed motion evolutionary games.
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