Papers › Cooperate or Collapse: Emergence of Sustainable Cooperation in a Society of LLM Agents

Cooperate or Collapse: Emergence of Sustainable Cooperation in a Society of LLM Agents

25 Apr 2024arXiv:2404.16698archive 2025-07-28

Giorgio Piatti, Zhijing Jin, Max Kleiman-Weiner, Bernhard Schölkopf, Mrinmaya Sachan, Rada Mihalcea

As AI systems pervade human life, ensuring that large language models (LLMs) make safe decisions remains a significant challenge. We introduce the Governance of the Commons Simulation (GovSim), a generative simulation platform designed to study strategic interactions and cooperative decision-making in LLMs. In GovSim, a society of AI agents must collectively balance exploiting a common resource with sustaining it for future use. This environment enables the study of how ethical considerations, strategic planning, and negotiation skills impact cooperative outcomes. We develop an LLM-based agent architecture and test it with the leading open and closed LLMs. We find that all but the most powerful LLM agents fail to achieve a sustainable equilibrium in GovSim, with the highest survival rate below 54%. Ablations reveal that successful multi-agent communication between agents is critical for achieving cooperation in these cases. Furthermore, our analyses show that the failure to achieve sustainable cooperation in most LLMs stems from their inability to formulate and analyze hypotheses about the long-term effects of their actions on the equilibrium of the group. Finally, we show that agents that leverage "Universalization"-based reasoning, a theory of moral thinking, are able to achieve significantly better sustainability. Taken together, GovSim enables us to study the mechanisms that underlie sustainable self-government with specificity and scale. We open source the full suite of our research results, including the simulation environment, agent prompts, and a comprehensive web interface.

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columns_non_relevant giorgiopiatti/GovSim/simulation/analysis/preprocessing.py official repository ran MIT (permissive) · 1a814f972f1c0f28 · report
compute_survival_months_stats giorgiopiatti/GovSim/simulation/analysis/plots.py official repository ran MIT (permissive) · f059157a9b113e12 · report
flatten_yaml giorgiopiatti/GovSim/simulation/analysis/preprocessing.py official repository ran MIT (permissive) · 2b2428498b1de81a · report
generate_colors giorgiopiatti/GovSim/simulation/analysis/utils.py official repository ran fingerprinted MIT (permissive) · 65c7a8b0ffd45803 · report
get_LLM_family giorgiopiatti/GovSim/utils/charts.py official repository ran fingerprinted MIT (permissive) · 0c689686bee2ab64 · report
get_model_size_version giorgiopiatti/GovSim/utils/charts.py official repository ran fingerprinted MIT (permissive) · e62384293fca0d42 · report
get_pretty_name_llm giorgiopiatti/GovSim/utils/charts.py official repository ran fingerprinted MIT (permissive) · e8de137875cb4f35 · report

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