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  Searching for rewards in graph-structured spaces

Wu, C., Schulz, E., & Gershman, S. (2019). Searching for rewards in graph-structured spaces. In Conference on Cognitive Computational Neuroscience (CCN 2019) (pp. 814-817).

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 Creators:
Wu, CM, Author           
Schulz, E1, Author           
Gershman, SJ, Author
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1External Organizations, ou_persistent22              

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 Abstract: How do people generalize and explore structured spaces? We study human behavior on a multi-armed bandit task, where rewards are influenced by the connectivity structure of a graph. A detailed predictive model comparison shows that a Gaussian Process regression model using a diffusion kernel is able to best describe participant choices, and also predict judgments about expected reward and confidence. This model unifies psychological models of function learning with the Successor Representation used in reinforcement learning, thereby building a bridge between different models of generalization.

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Language(s): eng - English
 Dates: 2019-09
 Publication Status: Issued
 Pages: -
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 Identifiers: DOI: 10.32470/CCN.2019.1041-0
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Title: Conference on Cognitive Computational Neuroscience (CCN 2019)
Place of Event: Berlin, Germany
Start-/End Date: 2019-09-13 - 2019-09-16

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Title: Conference on Cognitive Computational Neuroscience (CCN 2019)
Source Genre: Proceedings
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Pages: - Volume / Issue: - Sequence Number: PS-2B.64 Start / End Page: 814 - 817 Identifier: -