Literature DB >> 11477429

Efficient computation and cue integration with noisy population codes.

S Deneve1, P E Latham, A Pouget.   

Abstract

The brain represents sensory and motor variables through the activity of large populations of neurons. It is not understood how the nervous system computes with these population codes, given that individual neurons are noisy and thus unreliable. We focus here on two general types of computation, function approximation and cue integration, as these are powerful enough to handle a range of tasks, including sensorimotor transformations, feature extraction in sensory systems and multisensory integration. We demonstrate that a particular class of neural networks, basis function networks with multidimensional attractors, can perform both types of computation optimally with noisy neurons. Moreover, neurons in the intermediate layers of our model show response properties similar to those observed in several multimodal cortical areas. Thus, basis function networks with multidimensional attractors may be used by the brain to compute efficiently with population codes.

Mesh:

Year:  2001        PMID: 11477429     DOI: 10.1038/90541

Source DB:  PubMed          Journal:  Nat Neurosci        ISSN: 1097-6256            Impact factor:   24.884


  92 in total

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7.  Fusion of visual and auditory stimuli during saccades: a Bayesian explanation for perisaccadic distortions.

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8.  Tracking population densities using dynamic neural fields with moderately strong inhibition.

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Journal:  Cogn Neurodyn       Date:  2008-04-17       Impact factor: 5.082

9.  Eye-centered representation of optic flow tuning in the ventral intraparietal area.

Authors:  Xiaodong Chen; Gregory C DeAngelis; Dora E Angelaki
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Review 10.  Gravity estimation and verticality perception.

Authors:  Christopher J Dakin; Ari Rosenberg
Journal:  Handb Clin Neurol       Date:  2018
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