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Neural basis of compositional control
Assia Chericoni1, Justin M Fine1, Taha S Ismail1
1Department of Neurosurgery, Baylor College of Medicine, Houston, TX, USA.
Nature
|August 12, 2026
Summary
Researchers explored continuous choice behavior using control theory. They found the anterior cingulate cortex, hippocampus, and orbitofrontal cortex play distinct roles in goal-directed actions and policy switching.
Area of Science:
- Neuroscience
- Cognitive Science
- Behavioral Economics
Background:
- Naturalistic goal-directed behavior involves continuous actions toward dynamic goals.
- Control theory provides a framework for understanding choices in continuous contexts, analogous to microeconomics for discrete choices.
- Continuous behavior involves blends of goals, with strategic reweighting of goal-specific control policies representing choice.
Purpose of the Study:
- To investigate the algorithmic and neural underpinnings of continuous choice behavior.
- To examine human behavior and brain activity during a continuous prey-pursuit task.
Main Methods:
- Developed a novel control-theoretic decomposition to analyze continuous behavior.
- Recorded brain activity (neural correlates) in humans performing a continuous prey-pursuit task.
- Correlated neural activity with behavioral strategies and policy changes.
Main Results:
- Pursuit strategies were modeled as a meta-controller mixing lower-level controllers for specific goals.
- Anterior cingulate cortex (ACC) neurons predicted significant shifts in policy mixtures.
- Hippocampal neurons encoded and updated latent policy states for planning, while orbitofrontal cortex (OFC) encoded task value structure.
Conclusions:
- A tripartite functional division was observed: hippocampus as state-estimating controller, ACC as meta-controller, and OFC providing value context.
- This division offers insights into the neural basis of continuous, goal-directed decision-making.
- Findings support a hierarchical control structure for complex behaviors.
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