[2603.00113] Position: AI Agents Are Not (Yet) a Panacea for Social Simulation

[2603.00113] Position: AI Agents Are Not (Yet) a Panacea for Social Simulation

arXiv - AI 3 min read

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Abstract page for arXiv paper 2603.00113: Position: AI Agents Are Not (Yet) a Panacea for Social Simulation

Computer Science > Multiagent Systems arXiv:2603.00113 (cs) [Submitted on 19 Feb 2026] Title:Position: AI Agents Are Not (Yet) a Panacea for Social Simulation Authors:Yiming Li, Dacheng Tao View a PDF of the paper titled Position: AI Agents Are Not (Yet) a Panacea for Social Simulation, by Yiming Li and 1 other authors View PDF HTML (experimental) Abstract:Recent advances in large language models (LLMs) have spurred growing interest in using LLM-integrated agents for social simulation, often under the implicit assumption that realistic population dynamics will emerge once role-specified agents are placed in a networked multi-agent setting. This position paper argues that LLM-based agents are not (yet) a panacea for social simulation. We attribute this over-optimism to a systematic mismatch between what current agent pipelines are typically optimized and validated to produce and what simulation-as-science requires. Concretely, role-playing plausibility does not imply faithful human behavioral validity; collective outcomes are frequently mediated by agent-environment co-dynamics rather than agent-agent messaging alone; and results can be dominated by interaction protocols, scheduling, and initial information priors, especially in policy-oriented settings. To make these assumptions explicit and auditable, we propose a unified formulation of AI agent-based social simulation as an environment-involved partially observable Markov game with explicit exposure and scheduling mechan...

Originally published on March 03, 2026. Curated by AI News.

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