Credit assignment to state-independent task representations and its relationship with model-based decision making

Volume: 116, Issue: 32, Pages: 15871 - 15876
Published: Jul 18, 2019
Abstract
Model-free learning enables an agent to make better decisions based on prior experience while representing only minimal knowledge about an environment's structure. It is generally assumed that model-free state representations are based on outcome-relevant features of the environment. Here, we challenge this assumption by providing evidence that a putative model-free system assigns credit to task representations that are irrelevant to an outcome....
Paper Details
Title
Credit assignment to state-independent task representations and its relationship with model-based decision making
Published Date
Jul 18, 2019
Volume
116
Issue
32
Pages
15871 - 15876
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