Mutation mitigates finite-size effects in spatial evolutionary games

Fuente: arXiv
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Main Authors: Shen, Chen, He, Zhixue, Shi, Lei, Tanimoto, Jun
Format: Preprint
Published: 2024
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author Shen, Chen
He, Zhixue
Shi, Lei
Tanimoto, Jun
author_facet Shen, Chen
He, Zhixue
Shi, Lei
Tanimoto, Jun
contents Agent-based simulations are essential for studying cooperation on spatial networks. However, finite-size effects -- random fluctuations due to limited network sizes -- can cause certain strategies to unexpectedly dominate or disappear, leading to unreliable outcomes. While enlarging network sizes or carefully preparing initial states can reduce these effects, both approaches require significant computational resources. In this study, we demonstrate that incorporating mutation into simulations on limited networks offers an effective and resource-efficient alternative. Using spatial optional public goods games and a more intricate tolerance-based variant, we find that rare mutations preserve inherently stable equilibria. When equilibria are affected by finite-size effects, introducing moderate mutation rates prevent finite-size-induced strategy dominance or extinction, producing results consistent with large-network simulations. Our findings position mutation as a practical tool for improving the reliability of agent-based models and emphasize the importance of mutation sensitivity analysis in managing finite-size effects across spatial networks.
format Preprint
id arxiv_https___arxiv_org_abs_2412_04654
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Mutation mitigates finite-size effects in spatial evolutionary games
Shen, Chen
He, Zhixue
Shi, Lei
Tanimoto, Jun
Physics and Society
Populations and Evolution
Agent-based simulations are essential for studying cooperation on spatial networks. However, finite-size effects -- random fluctuations due to limited network sizes -- can cause certain strategies to unexpectedly dominate or disappear, leading to unreliable outcomes. While enlarging network sizes or carefully preparing initial states can reduce these effects, both approaches require significant computational resources. In this study, we demonstrate that incorporating mutation into simulations on limited networks offers an effective and resource-efficient alternative. Using spatial optional public goods games and a more intricate tolerance-based variant, we find that rare mutations preserve inherently stable equilibria. When equilibria are affected by finite-size effects, introducing moderate mutation rates prevent finite-size-induced strategy dominance or extinction, producing results consistent with large-network simulations. Our findings position mutation as a practical tool for improving the reliability of agent-based models and emphasize the importance of mutation sensitivity analysis in managing finite-size effects across spatial networks.
title Mutation mitigates finite-size effects in spatial evolutionary games
topic Physics and Society
Populations and Evolution
url https://arxiv.org/abs/2412.04654