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  5. Dopamine, Affordance and Active Inference

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Article
English
2012

Dopamine, Affordance and Active Inference

0 Datasets

0 Files

English
2012
PLoS Computational Biology
Vol 8 (1)
DOI: 10.1371/journal.pcbi.1002327

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Karl Friston
Karl Friston

University College London

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Karl Friston
Tamara Shiner
Thomas H. B. FitzGerald
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Abstract

The role of dopamine in behaviour and decision-making is often cast in terms of reinforcement learning and optimal decision theory. Here, we present an alternative view that frames the physiology of dopamine in terms of Bayes-optimal behaviour. In this account, dopamine controls the precision or salience of (external or internal) cues that engender action. In other words, dopamine balances bottom-up sensory information and top-down prior beliefs when making hierarchical inferences (predictions) about cues that have affordance. In this paper, we focus on the consequences of changing tonic levels of dopamine firing using simulations of cued sequential movements. Crucially, the predictions driving movements are based upon a hierarchical generative model that infers the context in which movements are made. This means that we can confuse agents by changing the context (order) in which cues are presented. These simulations provide a (Bayes-optimal) model of contextual uncertainty and set switching that can be quantified in terms of behavioural and electrophysiological responses. Furthermore, one can simulate dopaminergic lesions (by changing the precision of prediction errors) to produce pathological behaviours that are reminiscent of those seen in neurological disorders such as Parkinson's disease. We use these simulations to demonstrate how a single functional role for dopamine at the synaptic level can manifest in different ways at the behavioural level.

How to cite this publication

Karl Friston, Tamara Shiner, Thomas H. B. FitzGerald, Joseph M. Galea, Rick A. Adams, Harriet R. Brown, Raymond J. Dolan, Rosalyn Moran, Klaas Ε. Stephan, Sven Bestmann (2012). Dopamine, Affordance and Active Inference. PLoS Computational Biology, 8(1), pp. e1002327-e1002327, DOI: 10.1371/journal.pcbi.1002327.

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Publication Details

Type

Article

Year

2012

Authors

10

Datasets

0

Total Files

0

Language

English

Journal

PLoS Computational Biology

DOI

10.1371/journal.pcbi.1002327

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