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Assessment of Social Cognition in Non-human Primates Using a Network of Computerized Automated Learning Device ALDM Test Systems
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Model-based algorithms shape automatic evaluative processing.

David E Melnikoff1, Benedek Kurdi2

  • 1Graduate School of Business, Stanford University, Stanford, CA 94305.

Proceedings of the National Academy of Sciences of the United States of America
|June 20, 2025
PubMed
Summary
This summary is machine-generated.

Model-based algorithms influence both deliberate and automatic evaluations, challenging existing reinforcement learning theories. This suggests automatic processing is more computationally sophisticated than previously understood.

Keywords:
automaticityevaluationmodel-based controlmodel-free controlreinforcement learning

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Area of Science:

  • Cognitive Science
  • Computational Neuroscience
  • Reinforcement Learning

Background:

  • Reinforcement learning algorithms are categorized as model-based (accurate, expensive) and model-free (cheap, error-prone).
  • Prevailing theories link model-based algorithms to deliberate control and model-free to automatic control.
  • This framework has influenced research across various psychological domains.

Purpose of the Study:

  • To investigate the alignment between model-based/model-free algorithms and deliberate/automatic evaluative processing.
  • To challenge the prevailing assumption that model-based algorithms exclusively underpin deliberate responses.

Main Methods:

  • Three preregistered behavioral experiments with 2,572 adult participants.
  • Replication of past findings and introduction of new experiments to control for confounds.
  • Multinomial processing tree modeling to analyze automatic evaluation measures.

Main Results:

  • Experiment 1 replicated previous findings but revealed confounding factors.
  • Experiments 2 and 3, after eliminating confounds, demonstrated significant model-based contributions to automatic evaluations.
  • Model-based algorithms were shown to shape both deliberate and automatic evaluative responses.

Conclusions:

  • Dominant frameworks may underestimate the prevalence of model-based algorithms in decision-making.
  • Automatic evaluative processing appears more computationally sophisticated than previously theorized.
  • The distinction between automatic and deliberate systems may not strictly map to model-free and model-based algorithms.