INFERENCE AND COMPUTATION WITH POPULATION CODES

Author:

Pouget Alexandre123,Dayan Peter123,Zemel Richard S.123

Affiliation:

1. Department of Brain and Cognitive Sciences, Meliora Hall, University of Rochester, Rochester, New York, 14627;

2. Gatsby Computational Neuroscience Unit, Alexandra House, 17 Queen Square, London WC1N 3AR, United Kingdom;

3. Department of Computer Science, University of Toronto, Toronto, Ontario M5S 1A4 Canada;

Abstract

▪ Abstract  In the vertebrate nervous system, sensory stimuli are typically encoded through the concerted activity of large populations of neurons. Classically, these patterns of activity have been treated as encoding the value of the stimulus (e.g., the orientation of a contour), and computation has been formalized in terms of function approximation. More recently, there have been several suggestions that neural computation is akin to a Bayesian inference process, with population activity patterns representing uncertainty about stimuli in the form of probability distributions (e.g., the probability density function over the orientation of a contour). This paper reviews both approaches, with a particular emphasis on the latter, which we see as a very promising framework for future modeling and experimental work.

Publisher

Annual Reviews

Subject

General Neuroscience

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