Literature DB >> 35660134

A general decoding strategy explains the relationship between behavior and correlated variability.

Amy M Ni1,2, Chengcheng Huang1,2,3, Brent Doiron2,3, Marlene R Cohen1,2.   

Abstract

Improvements in perception are frequently accompanied by decreases in correlated variability in sensory cortex. This relationship is puzzling because overall changes in correlated variability should minimally affect optimal information coding. We hypothesize that this relationship arises because instead of using optimal strategies for decoding the specific stimuli at hand, observers prioritize generality: a single set of neuronal weights to decode any stimuli. We tested this using a combination of multineuron recordings in the visual cortex of behaving rhesus monkeys and a cortical circuit model. We found that general decoders optimized for broad rather than narrow sets of visual stimuli better matched the animals' decoding strategy, and that their performance was more related to the magnitude of correlated variability. In conclusion, the inverse relationship between perceptual performance and correlated variability can be explained by observers using a general decoding strategy, capable of decoding neuronal responses to the variety of stimuli encountered in natural vision.
© 2022, Ni et al.

Entities:  

Keywords:  neural coding; neuroscience; noise correlations; perception; rhesus macaque; visual attention

Mesh:

Year:  2022        PMID: 35660134      PMCID: PMC9170243          DOI: 10.7554/eLife.67258

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.713


  56 in total

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2.  Global cognitive factors modulate correlated response variability between V4 neurons.

Authors:  Douglas A Ruff; Marlene R Cohen
Journal:  J Neurosci       Date:  2014-12-03       Impact factor: 6.167

Review 3.  Cracking the Neural Code for Sensory Perception by Combining Statistics, Intervention, and Behavior.

Authors:  Stefano Panzeri; Christopher D Harvey; Eugenio Piasini; Peter E Latham; Tommaso Fellin
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4.  Perceptual training continuously refines neuronal population codes in primary visual cortex.

Authors:  Yin Yan; Malte J Rasch; Minggui Chen; Xiaoping Xiang; Min Huang; Si Wu; Wu Li
Journal:  Nat Neurosci       Date:  2014-09-07       Impact factor: 24.884

5.  Circuit Models of Low-Dimensional Shared Variability in Cortical Networks.

Authors:  Chengcheng Huang; Douglas A Ruff; Ryan Pyle; Robert Rosenbaum; Marlene R Cohen; Brent Doiron
Journal:  Neuron       Date:  2018-12-20       Impact factor: 17.173

6.  Using neuronal populations to study the mechanisms underlying spatial and feature attention.

Authors:  Marlene R Cohen; John H R Maunsell
Journal:  Neuron       Date:  2011-06-23       Impact factor: 17.173

7.  Graded Neuronal Modulations Related to Visual Spatial Attention.

Authors:  J Patrick Mayo; John H R Maunsell
Journal:  J Neurosci       Date:  2016-05-11       Impact factor: 6.167

8.  Internally generated population activity in cortical networks hinders information transmission.

Authors:  Chengcheng Huang; Alexandre Pouget; Brent Doiron
Journal:  Sci Adv       Date:  2022-06-01       Impact factor: 14.957

9.  Attention deficits without cortical neuronal deficits.

Authors:  Alexandre Zénon; Richard J Krauzlis
Journal:  Nature       Date:  2012-09-12       Impact factor: 49.962

10.  Attention-related changes in correlated neuronal activity arise from normalization mechanisms.

Authors:  Bram-Ernst Verhoef; John H R Maunsell
Journal:  Nat Neurosci       Date:  2017-05-29       Impact factor: 24.884

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  1 in total

1.  Internally generated population activity in cortical networks hinders information transmission.

Authors:  Chengcheng Huang; Alexandre Pouget; Brent Doiron
Journal:  Sci Adv       Date:  2022-06-01       Impact factor: 14.957

  1 in total

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