Neural mechanisms for integrating prior knowledge and likelihood in value-based probabilistic inference

In Bayesian decision theory, knowledge about the probabilities of possible outcomes is captured by a prior distribution and a likelihood function. The prior reflects past knowledge and the likelihood summarizes current sensory information. The two combined (integrated) form a posterior distribution...

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Veröffentlicht in:The Journal of neuroscience 2015-01, Vol.35 (4), p.1792-1805
Hauptverfasser: Ting, Chih-Chung, Yu, Chia-Chen, Maloney, Laurence T, Wu, Shih-Wei
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Sprache:eng
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