Expectation and Surprise Determine Neural Population Responses in the Ventral Visual Stream

Visual cortex is traditionally viewed as a hierarchy of neural feature detectors, with neural population responses being driven by bottom-up stimulus features. Conversely, “predictive coding” models propose that each stage of the visual hierarchy harbors two computationally distinct classes of proce...

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Published inThe Journal of neuroscience Vol. 30; no. 49; pp. 16601 - 16608
Main Authors Egner, Tobias, Monti, Jim M., Summerfield, Christopher
Format Journal Article
LanguageEnglish
Published United States Society for Neuroscience 08.12.2010
Subjects
Online AccessGet full text
ISSN0270-6474
1529-2401
1529-2401
DOI10.1523/JNEUROSCI.2770-10.2010

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Abstract Visual cortex is traditionally viewed as a hierarchy of neural feature detectors, with neural population responses being driven by bottom-up stimulus features. Conversely, “predictive coding” models propose that each stage of the visual hierarchy harbors two computationally distinct classes of processing unit: representational units that encode the conditional probability of a stimulus and provide predictions to the next lower level; and error units that encode the mismatch between predictions and bottom-up evidence, and forward prediction error to the next higher level. Predictive coding therefore suggests that neural population responses in category-selective visual regions, like the fusiform face area (FFA), reflect a summation of activity related to prediction (“face expectation”) and prediction error (“face surprise”), rather than a homogenous feature detection response. We tested the rival hypotheses of the feature detection and predictive coding models by collecting functional magnetic resonance imaging data from the FFA while independently varying both stimulus features (faces vs houses) and subjects' perceptual expectations regarding those features (low vs medium vs high face expectation). The effects of stimulus and expectation factors interacted, whereby FFA activity elicited by face and house stimuli was indistinguishable under high face expectation and maximally differentiated under low face expectation. Using computational modeling, we show that these data can be explained by predictive coding but not by feature detection models, even when the latter are augmented with attentional mechanisms. Thus, population responses in the ventral visual stream appear to be determined by feature expectation and surprise rather than by stimulus features per se.
AbstractList Visual cortex is traditionally viewed as a hierarchy of neural feature detectors, with neural population responses being driven by bottom-up stimulus features. Conversely, "predictive coding" models propose that each stage of the visual hierarchy harbors two computationally distinct classes of processing unit: representational units that encode the conditional probability of a stimulus and provide predictions to the next lower level; and error units that encode the mismatch between predictions and bottom-up evidence, and forward prediction error to the next higher level. Predictive coding therefore suggests that neural population responses in category-selective visual regions, like the fusiform face area (FFA), reflect a summation of activity related to prediction ("face expectation") and prediction error ("face surprise"), rather than a homogenous feature detection response. We tested the rival hypotheses of the feature detection and predictive coding models by collecting functional magnetic resonance imaging data from the FFA while independently varying both stimulus features (faces vs houses) and subjects' perceptual expectations regarding those features (low vs medium vs high face expectation). The effects of stimulus and expectation factors interacted, whereby FFA activity elicited by face and house stimuli was indistinguishable under high face expectation and maximally differentiated under low face expectation. Using computational modeling, we show that these data can be explained by predictive coding but not by feature detection models, even when the latter are augmented with attentional mechanisms. Thus, population responses in the ventral visual stream appear to be determined by feature expectation and surprise rather than by stimulus features per se.Visual cortex is traditionally viewed as a hierarchy of neural feature detectors, with neural population responses being driven by bottom-up stimulus features. Conversely, "predictive coding" models propose that each stage of the visual hierarchy harbors two computationally distinct classes of processing unit: representational units that encode the conditional probability of a stimulus and provide predictions to the next lower level; and error units that encode the mismatch between predictions and bottom-up evidence, and forward prediction error to the next higher level. Predictive coding therefore suggests that neural population responses in category-selective visual regions, like the fusiform face area (FFA), reflect a summation of activity related to prediction ("face expectation") and prediction error ("face surprise"), rather than a homogenous feature detection response. We tested the rival hypotheses of the feature detection and predictive coding models by collecting functional magnetic resonance imaging data from the FFA while independently varying both stimulus features (faces vs houses) and subjects' perceptual expectations regarding those features (low vs medium vs high face expectation). The effects of stimulus and expectation factors interacted, whereby FFA activity elicited by face and house stimuli was indistinguishable under high face expectation and maximally differentiated under low face expectation. Using computational modeling, we show that these data can be explained by predictive coding but not by feature detection models, even when the latter are augmented with attentional mechanisms. Thus, population responses in the ventral visual stream appear to be determined by feature expectation and surprise rather than by stimulus features per se.
Visual cortex is traditionally viewed as a hierarchy of neural feature detectors, with neural population responses being driven by bottom-up stimulus features. Conversely, “predictive coding” models propose that each stage of the visual hierarchy harbors two computationally distinct classes of processing unit: representational units that encode the conditional probability of a stimulus and provide predictions to the next lower level; and error units that encode the mismatch between predictions and bottom-up evidence, and forward prediction error to the next higher level. Predictive coding therefore suggests that neural population responses in category-selective visual regions, like the fusiform face area (FFA), reflect a summation of activity related to prediction (“face expectation”) and prediction error (“face surprise”), rather than a homogenous feature detection response. We tested the rival hypotheses of the feature detection and predictive coding models by collecting functional magnetic resonance imaging data from the FFA while independently varying both stimulus features (faces vs houses) and subjects' perceptual expectations regarding those features (low vs medium vs high face expectation). The effects of stimulus and expectation factors interacted, whereby FFA activity elicited by face and house stimuli was indistinguishable under high face expectation and maximally differentiated under low face expectation. Using computational modeling, we show that these data can be explained by predictive coding but not by feature detection models, even when the latter are augmented with attentional mechanisms. Thus, population responses in the ventral visual stream appear to be determined by feature expectation and surprise rather than by stimulus features per se.
Author Monti, Jim M.
Summerfield, Christopher
Egner, Tobias
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BackLink https://www.ncbi.nlm.nih.gov/pubmed/21147999$$D View this record in MEDLINE/PubMed
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Cites_doi 10.1073/pnas.192579399
10.1523/JNEUROSCI.3730-10.2010
10.1016/j.neuron.2008.05.021
10.1093/cercor/bhn161
10.1016/j.tics.2009.04.005
10.3389/fnhum.2010.00025
10.1038/81479
10.1038/21176
10.1016/S1474-6670(17)38315-5
10.1038/nrn2787
10.3758/BF03206543
10.1016/j.visres.2008.11.001
10.1523/JNEUROSCI.4458-09.2010
10.1098/rstb.2005.1622
10.1016/B978-012375731-9/50095-1
10.1152/jn.1997.77.1.24
10.1016/S0304-3940(97)00920-8
10.1146/annurev.neuro.26.041002.131039
10.1037/0096-3445.109.2.160
10.1016/S0896-6273(00)80734-5
10.1093/cercor/13.5.508
10.1016/j.tics.2009.06.003
10.1016/S0893-6080(98)00066-5
10.1016/j.visres.2008.03.009
10.1523/JNEUROSCI.17-11-04302.1997
10.1146/annurev.neuro.23.1.473
10.1007/BF00198477
10.1038/nn.2163
10.1152/jn.01207.2005
10.1038/33402
10.1364/JOSAA.20.001434
10.1152/jn.1965.28.2.229
10.1038/4580
10.1126/science.1132028
10.1126/science.275.5306.1593
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References 2023041303474942000_30.49.16601.18
2023041303474942000_30.49.16601.19
2023041303474942000_30.49.16601.12
2023041303474942000_30.49.16601.34
2023041303474942000_30.49.16601.35
2023041303474942000_30.49.16601.10
2023041303474942000_30.49.16601.32
2023041303474942000_30.49.16601.33
2023041303474942000_30.49.16601.17
2023041303474942000_30.49.16601.14
2023041303474942000_30.49.16601.36
2023041303474942000_30.49.16601.15
2023041303474942000_30.49.16601.30
2023041303474942000_30.49.16601.31
Hubel (2023041303474942000_30.49.16601.11) 1965; 28
2023041303474942000_30.49.16601.29
Luck (2023041303474942000_30.49.16601.16) 1997; 77
2023041303474942000_30.49.16601.23
Kanwisher (2023041303474942000_30.49.16601.13) 1997; 17
2023041303474942000_30.49.16601.24
2023041303474942000_30.49.16601.21
2023041303474942000_30.49.16601.22
2023041303474942000_30.49.16601.27
2023041303474942000_30.49.16601.28
2023041303474942000_30.49.16601.25
2023041303474942000_30.49.16601.26
2023041303474942000_30.49.16601.8
2023041303474942000_30.49.16601.7
2023041303474942000_30.49.16601.6
2023041303474942000_30.49.16601.5
2023041303474942000_30.49.16601.4
2023041303474942000_30.49.16601.3
2023041303474942000_30.49.16601.20
2023041303474942000_30.49.16601.2
2023041303474942000_30.49.16601.1
2023041303474942000_30.49.16601.9
1540675 - Biol Cybern. 1992;66(3):241-51
20068583 - Nat Rev Neurosci. 2010 Feb;11(2):127-38
15937014 - Philos Trans R Soc Lond B Biol Sci. 2005 Apr 29;360(1456):815-36
19716752 - Trends Cogn Sci. 2009 Sep;13(9):403-9
9488174 - Neurosci Lett. 1998 Jan 2;240(1):58-60
9054347 - Science. 1997 Mar 14;275(5306):1593-9
12868647 - J Opt Soc Am A Opt Image Sci Vis. 2003 Jul;20(7):1434-48
9151747 - J Neurosci. 1997 Jun 1;17(11):4302-11
10845072 - Annu Rev Neurosci. 2000;23:473-500
19559644 - Trends Cogn Sci. 2009 Jul;13(7):293-301
16772516 - J Neurophysiol. 2006 Jul;96(1):40-54
20181593 - J Neurosci. 2010 Feb 24;30(8):2960-6
7381367 - J Exp Psychol. 1980 Jun;109(2):160-74
18442841 - Vision Res. 2008 Jun;48(12):1391-408
10376597 - Nature. 1999 Jun 10;399(6736):575-9
19160497 - Nat Neurosci. 2008 Sep;11(9):1004-6
12662752 - Neural Netw. 1998 Oct;11(7-8):1317-29
12679297 - Cereb Cortex. 2003 May;13(5):508-16
14283058 - J Neurophysiol. 1965 Mar;28:229-89
18667160 - Neuron. 2008 Jul 31;59(2):336-47
20203180 - J Neurosci. 2010 Mar 3;30(9):3210-9
11127838 - Nat Neurosci. 2000 Nov;3 Suppl:1199-204
12417754 - Proc Natl Acad Sci U S A. 2002 Nov 12;99(23):15164-9
15641408 - Behav Res Methods Instrum Comput. 2004 Nov;36(4):630-3
17124325 - Science. 2006 Nov 24;314(5803):1311-4
10195184 - Nat Neurosci. 1999 Jan;2(1):79-87
20631856 - Front Hum Neurosci. 2010 Mar 22;4:25
15217345 - Annu Rev Neurosci. 2004;27:611-47
19038281 - Vision Res. 2009 Jun;49(10):1129-43
10230795 - Neuron. 1999 Apr;22(4):751-61
18820290 - Cereb Cortex. 2009 May;19(5):1175-85
9560155 - Nature. 1998 Apr 9;392(6676):598-601
9120566 - J Neurophysiol. 1997 Jan;77(1):24-42
References_xml – ident: 2023041303474942000_30.49.16601.19
  doi: 10.1073/pnas.192579399
– ident: 2023041303474942000_30.49.16601.1
  doi: 10.1523/JNEUROSCI.3730-10.2010
– ident: 2023041303474942000_30.49.16601.30
  doi: 10.1016/j.neuron.2008.05.021
– ident: 2023041303474942000_30.49.16601.4
  doi: 10.1093/cercor/bhn161
– ident: 2023041303474942000_30.49.16601.9
  doi: 10.1016/j.tics.2009.04.005
– ident: 2023041303474942000_30.49.16601.3
  doi: 10.3389/fnhum.2010.00025
– ident: 2023041303474942000_30.49.16601.25
  doi: 10.1038/81479
– ident: 2023041303474942000_30.49.16601.34
  doi: 10.1038/21176
– ident: 2023041303474942000_30.49.16601.33
  doi: 10.1016/S1474-6670(17)38315-5
– ident: 2023041303474942000_30.49.16601.10
  doi: 10.1038/nrn2787
– ident: 2023041303474942000_30.49.16601.17
  doi: 10.3758/BF03206543
– ident: 2023041303474942000_30.49.16601.2
  doi: 10.1016/j.visres.2008.11.001
– ident: 2023041303474942000_30.49.16601.5
  doi: 10.1523/JNEUROSCI.4458-09.2010
– ident: 2023041303474942000_30.49.16601.8
  doi: 10.1098/rstb.2005.1622
– ident: 2023041303474942000_30.49.16601.23
  doi: 10.1016/B978-012375731-9/50095-1
– ident: 2023041303474942000_30.49.16601.12
– volume: 77
  start-page: 24
  year: 1997
  ident: 2023041303474942000_30.49.16601.16
  article-title: Neural mechanisms of spatial selective attention in areas V1, V2, and V4 of macaque visual cortex
  publication-title: J Neurophysiol
  doi: 10.1152/jn.1997.77.1.24
– ident: 2023041303474942000_30.49.16601.6
  doi: 10.1016/S0304-3940(97)00920-8
– ident: 2023041303474942000_30.49.16601.24
  doi: 10.1146/annurev.neuro.26.041002.131039
– ident: 2023041303474942000_30.49.16601.21
  doi: 10.1037/0096-3445.109.2.160
– ident: 2023041303474942000_30.49.16601.14
  doi: 10.1016/S0896-6273(00)80734-5
– ident: 2023041303474942000_30.49.16601.20
  doi: 10.1093/cercor/13.5.508
– ident: 2023041303474942000_30.49.16601.29
  doi: 10.1016/j.tics.2009.06.003
– ident: 2023041303474942000_30.49.16601.36
  doi: 10.1016/S0893-6080(98)00066-5
– ident: 2023041303474942000_30.49.16601.28
  doi: 10.1016/j.visres.2008.03.009
– volume: 17
  start-page: 4302
  year: 1997
  ident: 2023041303474942000_30.49.16601.13
  article-title: The fusiform face area: a module in human extrastriate cortex specialized for face perception
  publication-title: J Neurosci
  doi: 10.1523/JNEUROSCI.17-11-04302.1997
– ident: 2023041303474942000_30.49.16601.26
  doi: 10.1146/annurev.neuro.23.1.473
– ident: 2023041303474942000_30.49.16601.18
  doi: 10.1007/BF00198477
– ident: 2023041303474942000_30.49.16601.32
  doi: 10.1038/nn.2163
– ident: 2023041303474942000_30.49.16601.35
  doi: 10.1152/jn.01207.2005
– ident: 2023041303474942000_30.49.16601.7
  doi: 10.1038/33402
– ident: 2023041303474942000_30.49.16601.15
  doi: 10.1364/JOSAA.20.001434
– volume: 28
  start-page: 229
  year: 1965
  ident: 2023041303474942000_30.49.16601.11
  article-title: Receptive fields and functional architecture in two nonstriate visual areas (18 and 19) of the cat
  publication-title: J Neurophysiol
  doi: 10.1152/jn.1965.28.2.229
– ident: 2023041303474942000_30.49.16601.22
  doi: 10.1038/4580
– ident: 2023041303474942000_30.49.16601.31
  doi: 10.1126/science.1132028
– ident: 2023041303474942000_30.49.16601.27
  doi: 10.1126/science.275.5306.1593
– reference: 19160497 - Nat Neurosci. 2008 Sep;11(9):1004-6
– reference: 12417754 - Proc Natl Acad Sci U S A. 2002 Nov 12;99(23):15164-9
– reference: 12868647 - J Opt Soc Am A Opt Image Sci Vis. 2003 Jul;20(7):1434-48
– reference: 19038281 - Vision Res. 2009 Jun;49(10):1129-43
– reference: 20631856 - Front Hum Neurosci. 2010 Mar 22;4:25
– reference: 19559644 - Trends Cogn Sci. 2009 Jul;13(7):293-301
– reference: 20068583 - Nat Rev Neurosci. 2010 Feb;11(2):127-38
– reference: 14283058 - J Neurophysiol. 1965 Mar;28:229-89
– reference: 9488174 - Neurosci Lett. 1998 Jan 2;240(1):58-60
– reference: 11127838 - Nat Neurosci. 2000 Nov;3 Suppl:1199-204
– reference: 10195184 - Nat Neurosci. 1999 Jan;2(1):79-87
– reference: 9054347 - Science. 1997 Mar 14;275(5306):1593-9
– reference: 12662752 - Neural Netw. 1998 Oct;11(7-8):1317-29
– reference: 19716752 - Trends Cogn Sci. 2009 Sep;13(9):403-9
– reference: 7381367 - J Exp Psychol. 1980 Jun;109(2):160-74
– reference: 10376597 - Nature. 1999 Jun 10;399(6736):575-9
– reference: 16772516 - J Neurophysiol. 2006 Jul;96(1):40-54
– reference: 9151747 - J Neurosci. 1997 Jun 1;17(11):4302-11
– reference: 9120566 - J Neurophysiol. 1997 Jan;77(1):24-42
– reference: 10230795 - Neuron. 1999 Apr;22(4):751-61
– reference: 18667160 - Neuron. 2008 Jul 31;59(2):336-47
– reference: 17124325 - Science. 2006 Nov 24;314(5803):1311-4
– reference: 9560155 - Nature. 1998 Apr 9;392(6676):598-601
– reference: 20181593 - J Neurosci. 2010 Feb 24;30(8):2960-6
– reference: 18820290 - Cereb Cortex. 2009 May;19(5):1175-85
– reference: 10845072 - Annu Rev Neurosci. 2000;23:473-500
– reference: 15217345 - Annu Rev Neurosci. 2004;27:611-47
– reference: 20203180 - J Neurosci. 2010 Mar 3;30(9):3210-9
– reference: 12679297 - Cereb Cortex. 2003 May;13(5):508-16
– reference: 15641408 - Behav Res Methods Instrum Comput. 2004 Nov;36(4):630-3
– reference: 15937014 - Philos Trans R Soc Lond B Biol Sci. 2005 Apr 29;360(1456):815-36
– reference: 1540675 - Biol Cybern. 1992;66(3):241-51
– reference: 18442841 - Vision Res. 2008 Jun;48(12):1391-408
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StartPage 16601
SubjectTerms Adult
Analysis of Variance
Brain Mapping
Computer Simulation
Female
Humans
Image Processing, Computer-Assisted - methods
Magnetic Resonance Imaging - methods
Male
Models, Neurological
Oxygen - blood
Photic Stimulation - methods
Predictive Value of Tests
Reaction Time - physiology
Sensory Receptor Cells - physiology
Signal Detection, Psychological - physiology
Visual Cortex - blood supply
Visual Cortex - cytology
Visual Cortex - physiology
Visual Pathways - blood supply
Visual Pathways - physiology
Visual Perception - physiology
Young Adult
Title Expectation and Surprise Determine Neural Population Responses in the Ventral Visual Stream
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