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February 12, 2026Sociological Methodology0 citations

Computational Basis of Large Language Models’ Decision Making in Social Simulation

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JMJi Ma

Key Points

  • The aim is to explore how characters and contexts influence the decision-making behavior of large language models in social simulations.
  • Proposed methods to probe and quantify internal representations of LLMs
  • Tested in a dictator game to analyze fairness and prosocial behavior
  • Extracted vectors of variable variations from the LLM's state
  • Manipulated vectors to observe changes in decision making
  • Manipulating internal representations significantly alters the LLM's decisions
  • Findings suggest a principled approach for regulating social concepts in LLMs
  • Implications for alignment and debiasing of AI agents in social contexts

Abstract

Large language models (LLMs) increasingly serve as humanlike decision-making agents in social science and applied settings. These LLM agents are typically assigned humanlike characters and placed in real-life contexts. However, how these characters and contexts shape an LLM’s behavior remains underexplored. In this study the author proposes and tests methods for probing, quantifying, and modifying an LLM’s internal representations in a dictator game, a classic behavioral experiment on fairness and prosocial behavior. The author extracts “vectors of variable variations” (e.g., “male” to “female”) from the LLM’s internal state. Manipulating these vectors during the model’s inference can substantially alter how those variables relate to the model’s decision making. This approach offers a principled way to study and regulate how social concepts can be encoded and engineered within transformer-based models, with implications for alignment, debiasing, and designing artificial intelligence agents for social simulations in both academic and commercial applications, strengthening sociological theory and measurement.

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Cite This Study

Ji Ma (2026) studied this question.

synapsesocial.com/papers/698d6df45be6419ac0d53473https://doi.org/10.1177/00811750261421220
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