A Normative Theory for Causal Inference and Bayes Factor Computation in Neural Circuits

Wenhao Zhang, Si Wu, Brent Doiron, Tai Sing Lee

Neural Information Processing Systems 

This study provides a normative theory for how Bayesian causal inference can be implemented in neural circuits. In both cognitive processes such as causal reasoning and perceptual inference such as cue integration, the nervous systems need to choose different models representing the underlying causal structures when making inferences on external stimuli.

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