Completed Psychology & Behaviour Brain & Nervous System

Adaptive decision templates in the human brain

In plain English

AI plain-English summary

The brain builds mental shortcuts—decision templates—that let us spot patterns in what we see and hear, and the researcher will map how these templates form, adapt, and transfer to new situations using brain scans and electrical recordings. Most of what we know about learning comes from studying how we repeat a single skill, not how the brain extracts general rules from experience and applies them to unfamiliar tasks. This project fills that gap by testing whether the same neural circuits that learn simple spatial patterns also handle complex timing-based rules, and how the brain retunes those circuits when the context changes. If successful, this work will reveal the fundamental brain mechanisms behind adaptive behaviour—how we generalise past experience to novel settings. This is primarily curiosity-driven fundamental science with no immediate practical application. However, understanding how the brain builds and reuses decision templates could eventually inform training programmes for lifelong learning, rehabilitation strategies after brain injury, or educational methods that help people transfer knowledge across subjects. The researcher will combine 7T MRI, MEG/EEG, and transcranial magnetic stimulation to trace these processes from fine-scale visual cortex activity to whole-brain network interactions.

View original technical description
Interacting with the surrounding environment depends on our ability to extract meaningful patterns from incoming streams of sensory information. Learning and experience are known to facilitate this skill; yet, we know little about how the brain extracts structure and generalises this knowledge to novel settings. Here, I propose to test the brain mechanisms underlying structure learning using contrasting tasks that involve learning structure in space vs. time at different levels of complexity (simple vs. complex feature contingencies). I will use computational modelling to interrogate the processes involved in learning behaviourally-relevant structures (i.e. decision templates). I will relate this system-level insight to multimodal neuroimaging to provide converging evidence for brain mechanisms that mediate learning specialisation and generalisation. I will exploit high-field imaging to test fine-scale decision templates in the visual cortex. I will combine 7T imaging with human electrophysiology (MEG/EEG) and interventions (TMS) to test for local and larger-scale brain circuits that retune decision templates through feedback and inhibitory interactions. Finally, I will test whether these mechanisms support our ability to generalise previous experience to novel contexts and tasks. This integrated approach will advance our understanding of the brain’s capacity for adaptive and resilient behaviour with implications for promoting lifelong learning.

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Researchers

Zoe Kourtzi (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Unified probabilistic modelling of adaptive spatial-temporal structures in the human brain
Neural algorithms and representations of flexible behaviour
Neural mechanisms for flexible behaviour in humans and artificial neural networks
Frontal cortical mechanisms and interactions during learning and decision making
Organising knowledge for flexible behaviour in the prefrontal-hippocampal circuitry

Original classification

Investigator Award in Science

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